ABOUT DISHA PUBLICATION CHAPTER One of the leading publishers in India, Disha Publication provides books and study materials for schools and various competitive exams being continuously held across the country. Disha's sole purpose is to encourage a student to get the best out of preparation. Disha Publication offers an online bookstore to help students buy exam books online with ease. We, at Disha provide a wide array of Bank / Engg./ Medical & Other Competitive Exam books to help all those aspirants who wish to crack their respective different levels of Bank / Engg./ Medical & Other Competitive exams. At Disha Publication, we strive to bring out the best guidebooks that students would find to be the most useful for all kind of competitive exam. 5 GEOMETRY INTRODUCTION Line : A line has length. It has neither width nor thickness. It can be extended indefinitely in both directions. Angles : An angle is the union of two non-collinear rays with a common origin. The common origin is called the vertex and the two rays are the sides of the angle. A Ray : A line with one end point is called a ray. The end point is called the origin. Origin Line segment : A line with two end points is called a segment. Parallel lines : Two lines, which lie in a plane and do not intersect, are called parallel lines. The distance between two parallel lines is constant. P Q A B We denote it by PQ || AB. Perpendicular lines : Two lines, which lie in a plane and intersect each other at right angles are called perpendicular lines. m ÐABC with vertex B C B Congruent angles : Two angles are said to be congruent, denoted by @ , if their measures are equal. Bisector of an angle : A ray is said to be the bisector of an angle if it divides the interior of the angle into two angles of equal measure. TYPES OFANGLE 1. A right angle is an angle of 90° as shown in [fig. (a)]. 2. An angle less than 90° is called an acute angle [fig. (b)]. 3. An angle greater than 90° but less than 180° is called an obtuse angle [fig (c)]. 4. An angle of 180° is a straight line [fig. (d)]. 5. An angle greater than 180° but less than 360° is called a reflex angle [fig.(e)]. We denote it by l ^ m. PROPERTIES • • • • • • • Three or more points are said to be collinear if they lie on a line, otherwise they are said to be non-collinear. Two or more lines are said to be coplanar if they lie in the same plane, otherwise they are said to be non-coplanar. A line, which intersects two or more given coplanar lines in distinct points, is called a transversal of the given lines. A line which is perpendicular to a line segment, i.e., intersect at 90° and passes through the mid point of the segment is called the perpendicular bisector of the segment. Every point on the perpendicular bisector of a segment is equidistant from the two endpoints of the segment. If two lines are perpendicular to the same line, they are parallel to each other. Lines which are parallel to the same line are parallel to each other. Fig. (b) Fig. (a) Fig. (c) Fig. (d) Fig. (e) PAIRS OF ANGLES Adjacent angles : Two angles are called adjacent angles if they have a common side and their interiors are disjoint. Q R P S 2 Ð QPR is adjacent to ÐRPS Linear Pair : Two angles are said to form a linear pair if they have a common side and their other two sides are opposite rays. The sum of the measures of the angles is 180°. N Alternate angles : In the above figure, Ð3 and Ð5, Ð2 and Ð8 are Alternative angles. When two lines are itnersected by a transversal, they form two pairs of alternate angles. The pairs of alternate angles thus formed are congruent. i.e. Ð3 = Ð5 and Ð2 = Ð8 A Interior angles : In the above figure, Ð2 and Ð5, Ð3 and Ð8 are Interior angles. B M ÐAMN + ÐBMN = 180° Complementary angles : Two angles whose sum is 90°, are complementary, each one is the complement of the other. A When two lines are intersected by a transversal, they form two pairs of interior angles. The pairs of interior angles thus formed are supplementary. i.e. Ð2 + Ð5 = Ð3 + Ð8 = 180° P Example 1 : 60° 30° C B R Q ÐABC + ÐPQR = 90° Supplementary angles : Two angles whose sum is 180° are supplementary, each one is the supplement of the other. L In figure given below, lines PQ and RS intersect each other at point O. If ÐPOR : ÐROQ = 5 : 7, find all the angles. Solution : ÐPOR + ÐROQ = 180° (Linear pair of angles) But ÐPOR : ÐROQ = 5 : 7 (Given) X S P 60° 120° N M Z Y ÐLMN + ÐXYZ = 60° + 120° = 180° Vertically Opposite angles : Two angles are called vertically opposite angles if their sides form two pairs of opposite rays. Vertically opposite angles are congruent. O R Q D A \ ÐPOR = O 5 ´ 180° = 75° 12 Similarly, ÐROQ = C B ÐAOD = ÐCOB and ÐAOC = ÐBOD Corresponding angles : Here, PQ || LM and n is transversal. Then, Ð1 and Ð5, Ð2 and Ð6, Ð3 and Ð7 and Ð4 and Ð8 are corresponding angles. When two lines are intersected by a transversal, they form four pairs of corresponding angles. The pairs of corresponding angles thus formed are congruent. i.e. Ð1 = Ð5; Ð2 = Ð6; Ð4 = Ð8; Ð3 = Ð7. 7 ´ 180° = 105° 12 Now, ÐPOS = ÐROQ = 105° (Vertically opposite angles) and ÐSOQ = ÐPOR = 75° Example 2 : In fig. if PQ || RS, ÐMXQ = 135° and ÐMYR = 40°, find ÐXMY. X P L 1 4 3 M Q 2 5 8 7 6 Q 135° n P (Vertically opposite angles) 40° M R Y S 3 Solution : Here, we need to draw a line AB parallel to line PQ, through point M as shown in figure. X P Q 135° M B A 40° Y R S Now, AB || PQ and PQ || RS Þ AB || RS Now, ÐQXM + ÐXMB = 180° (Q AB || PQ, interior angles on the same side of the transversal) But ÐQXM = 135° Þ 135° + ÐXMB = 180° \ ÐXMB = 45° ........(i) Now, ÐBMY = ÐMYR (Q AB || RS, alternate angles) \ ÐBMY = 40° ........(ii) Adding (i) and (ii), we get ÐXMB + ÐBMY = 45° + 40° i.e. ÐXMY = 85° Solution : Q Ð POR and Ð QOR for a linear pair \ Ð POR + Ð QOR = 180° (Linear pair axiom) or a + b = 180° ........ (i) But a – b = 80° ......... (ii) [Given] Adding eqs. (i) and (ii), we get 260 = 130° 2 Substituting the value of a in (1), we get 130° + b = 180° b = 180° – 130° = 50° PROPORTIONALITY THEOREM The ratio of intercepts made by three parallel lines on a transversal is equal to the ratio of the corresponding intercepts made on any other transversal by the same parallel lines. If line a || b || c, and lines l and m are two transversals, then PR QS = RT SU m l P Example 3 : An angle is twice its complement. Find the angle. Solution : If the complement is x, the angle = 2x 2x + x = 90° Þ 3x = 90° Þ x = 30° \ The angle is 2 × 30° = 60° Example 4 : The supplement of an angle is one-fifth of itself. Determine the angle and its supplement. Solution : Let the measure of the angle be x°. Then the measure of its supplementary angle is 180° – x°. 1 180 - x = x It is given that 5 Þ 5 (180° – x) = x Þ 900 – 5x = x Þ 900 = 5x + x Þ 900 = 6x Þ 6x = 900 Þ x = Example 5 : In figure, Ð POR and Ð QOP form a linear pair. If a – b = 80°, find the values of a and b. b P Q b S c U T Example 6 : In the figure, if PS = 360, find PQ, QR and RS. P x Q A 60 B y S R 90 C 120 D Solution : PA, QB, RC and SD are perpendicular to AD. Hence, they are parallel. So the intercepts are proportional. \ AB PQ = BD QS Þ 60 x = 210 360 – x Þ 2 x = 7 360 – x Þ x= R O a Q R 900 = 150 6 Supplementary angle is 180° – 150° = 30° a= 2a = 260° \ \ PQ = 80 So, QS = 360 – 80 = 280 720 = 80 9 4 Again, \ TRIANGLES The plane figure bounded by the union of three lines, which join three non-collinear points, is called a triangle. A triangle is denoted by the symbol D. The three non-collinear points, are called the vertices of the triangle. In DABC, A, B and C are the vertices of the triangle; AB, BC, CA are the three sides, and ÐA, ÐB, ÐC are the three angles. BC QR = CD RS 90 y = 120 280 – y 3 y = 4 280 – y Þ Þ y = 120 \ QR = 120 and SR = 280 – 120 = 160 Example 7 : A In figure if l || m , n || p and Ð 1 = 85° find Ð 2. n p 1 3 m 2 B C Sum of interior angles : The sum of the three interior angles of a triangle is 180°. ÐA + ÐB + ÐC = 180° Exterior angles and interior angles Solution : Q n || p and m is transversal \ Ð 1 = Ð 3 = 85° (Corresponding angles) Z A Also, m || l & p is transversal \ Ð 2 + Ð 3 = 180° (\ Consecutive interior angles) Þ Ð 2 + 85° = 180° Þ Ð 2 = 180° – 85° Þ Ð 2 = 95° Example 8 : From the adjoining diagrams, calculate Ð x, Ð y, Ð z and Ð w. x y Solution : 70° Ð y = 70° Ð x + 70 = 180° z w ..... (vertical opp. angle) \ Ð x = 180 – 70 = 110° .... (adjacent angles on a st. line or linear pair) Ð z = 70° .....(corresponding angles) Ð z + Ð w = 180° ..... (adjacent angles on a st. line or linear pair) \ 70 + Ð w = 180° \ Ð w = 180° – 170° = 110° E Example 9 : From the adjoining diagram C D 70° Find (i) Ð x (ii) Ð y y Solution : Ð x = Ð EDC = 70° (corresponding angles) x B Now, Ð ADB = x = 70° A CBA=90° [AD = DB] In D ABD, Ð ABD = 180 – Ð x – Ð x = 180 – 70 – 70 = 40° Þ Ð BDC = Ð ABD = 40° (alternate angles) Þ Ð y = 40° B C Y X (i) The measure of an exterior angle is equal to the sum of the measures of the two interior opposite angles of the triangle. \ ÐACY = ÐABC + ÐBAC ÐCBX = ÐBAC + ÐBCA and ÐBAZ = ÐABC + ÐACB (ii) The sum of an interior angle and adjacent exterior angle is 180°. i.e. ÐACB + ÐACY = 180° ÐABC + ÐCBX = 180° and ÐBAC + ÐBAZ = 180° Example 10 : If the ratio of three angles of a triangle is 1 : 2 : 3, find the angles. Solution : Ratio of the three angles of a D = 1 : 2 : 3 Let the angles be x, 2x and 3x. \ x + 2x + 3x = 180° \ 6x = 180° \ x = 30° Hence the first angle = x = 30° The second angle = 2x = 60° The third angle = 3x = 90° CLASSIFICATION OF TRIANGLES Based on sides : Scalene triangle : A triangle in which none of the three sides is equal is called a scalene triangle. Isosceles triangle : A triangle in which at least two sides are equal is called an isosceles triangle. Equilateral triangle : A triangle in which all the three sides are equal is called an equilateral triangle. In an equilateral triangle, all the angles are congruent and equal to 60°. 5 Based on angles : Right triangle : If any one angle of a triangle is a right angle, i.e., 90° then the triangle is a right-angled triangle. Acute triangle : If all the three angles of a triangle are acute, i.e., less than 90°, then the triangle is an acute angled triangle. Obtuse triangle : If any one angle of a triangle is obtuse, i.e., greater than 90°, then the triangle is an obtuse-angled triangle. SOME BASIC DEFINITIONS 1. Altitude (height) of a triangle : The perpendicular drawn from the vertex of a triangle to the opposite side is called an altitude of the triangle. 2. Median of a triangle : The line drawn from a vertex of a triangle to the opposite side such that it bisects the side, is called the median of the triangle. • A median bisects the area of the triangle. 3. Orthocentre : The point of intersection of the three altitudes of a triangle is called the orthocentre. The angle made by any side at the orthocentre = 180°– the opposite angle to the side. 4. Centroid : The point of intersection of the three medians of a triangle is called the centroid. The centroid divides each median in the ratio 2 : 1. 5. Circumcentre : The point of intersection of the perpendicular bisectors of the sides of a triangle is called the circumcentre. 6. Incentre : The point of intersection of the angle bisectors of a triangle is called the incentre. (i) Angle bisector divides the opposite sides in the ratio of remaining sides (ii) BD AB c = = Example : DC AC b Incentre divides the angle bisectors in the ratio (b + c) : a, (c + a) : b and (a + b) : c CONGRUENCY OF TRIANGLES Two triangles are congruent if the sides and angles of one triangle are equal to the corresponding sides and angles of the other triangle. (i) SAS Congruence rule : Two triangles are congruent if two sides and the included angle of one triangle are equal to the sides and the included angle of the other triangle. (ii) ASA Congruence rule : Two triangles are congruent if two angles and the included side of one triangle are equal to two angles and the included side of other triangle. (iii) AAS Congruence rule : Two triangles are congruent if any two pairs of angles and one pair of corresponding sides are equal. (iv) SSS Congruence rule : If three sides of one triangle are equal to the three sides of another triangle, then the two triangles are congruent. (v) RHS Congruence rule : If in two right triangles, the hypotenuse and one side of the triangle are equal to the hypotenuse and one side of the other triangle, then the two triangles are congruent. SIMILARITY OF TRIANGLES For a given correspondence between two triangles, if the corresponding angles are congruent and their corresponding sides are in proportion, then the two triangles are said to be similar. Similarlity is denoted by ~. (i) AAA Similarlity : For a given correspondence between two triangles, if the two angles of one triangle are congruent to the corresponding two angles of the other triangle, then the two triangles are similar. (ii) SSS Similarity : If the corresponding sides of two triangles are proportional, their corresponding angles are equal and hence the triangles are similar. (iii) SAS Similarity : If one angle of a triangle is equal to one angle of the other and the sides including these angles are proportional, the triangles are similar. PROPERTIES OF SIMILAR TRIANGLES 1. If two triangles are similar, Ratio of sides = Ratio of height = Ratio of Median = Ratio of angle bisectors = Ratio of inradii = Ratio of circumradii. If DABC ~ DPQR AB AD BE = = PQ PS QT P A T E B C D Q S R The ratio of the areas of two similar triangles is equal to the ratio of the squares of the corresponding sides. If DABC ~ DPQR, then ( BC ) (AC)2 Ar(DABC) ( AB ) = = = Ar(DPQR) (PQ) 2 (QR)2 (PR)2 2 2 PYTHAGORAS THEOREM In a right triangle, the square of the hypotenuse is equal to the sum of the squares of the other two sides. C B A If a right triangle ABC right angled at B. Then, By Pythagoras theorem, AC2 = AB2 + BC2 BASIC PROPORTIONALITY THEOREM (BPT) If a line is drawn parallel to one side of a triangle, to intersect the other two sides in distinct points, the other two sides are divided in the same ratio. 6 If DABC in which a line parallel to BC intersects AB to D and AC at E. Then, By BPT, Solution : If the interior angle is x, exterior angle is 2x. A AD AE = DB EC P D E C B MID-POINT THEOREM The line segment joining the mid-points of two sides of a triangle is parallel to the third side and half of it. In DABC, if P and Q are the mid-points of AB and AC respectively 1 2 then PQ || BC and PQ = BC x Q 2x S R Q x + 2x = 180° Þ 3x = 180° Þ x = 60° \ Exterior angle = 120° Hence sum of the other two angles of triangle = 120° (Exterior angle is the sum of two opposite interior angles) Example 11 : In figure, find ÐF. A A E 12cm 80° 3 3 cm 3.8cm Q P F 6 3 cm 7.6cm C B INEQUALITIES INATRIANGLE (i) If two sides of a triangle are unequals, the angle opposite to the longer side is larger. Conversely, In any triangle, the side opposite to the larger angle is longer. (ii) 60° C If AB > AC then ÐC > ÐB The sum of any two side of a triangle is greater than the third side. C 6 cm D Solution : In triangles ABC and DEF, we have AB 3.8 1 = = DF 7.6 2 Similarly, A B B BC 6 1 AC 3 3 1 = = and = = , i.e., FE 12 2 DE 6 3 2 in the two triangles, sides are proportional. \ DABC ~ DDEF (by SSS Similarity) \ ÐB = ÐF (Corresponding angles are equal) But ÐB = 60° (Given) \ ÐF = 60° Example 12 : In the given figure, find ÐBAC and ÐXAY. A P X Q R PQ + PR > QR; PQ + QR > PR and QR + PR > PQ Example 10 : The interior and its adjacent exterior angle of a triangle are in the ratio 1 : 2. What is the sum of the other two angles of the triangle ? 40° 30° B C Y Solution : ÐAXB = ÐXAB = 30° (Q BX = BA) ÐABC = 30° + 30° = 60° (Exterior angle) ÐCYA = ÐYAC = 40° (Q CY = CA) ÐACB = 40° + 40° = 80° (Exterior angle) ÐBAC = 180° – (60° + 80°) = 40° (Sum of all angles of a triangle is 180°. ÐXAY = 180 – (30 + 40) = 110° 7 Example 13 : In the fig., PQ || BC, AQ = 4 cm, PQ = 6 cm and BC = 9 cm. Find QC. A Solution : In DAPC and DABC Ð ACP = Ð ABC Ð A= Ð A Þ D ACP ~ D ABC A 6 cm P 8 cm AP PC AC = = Þ AC BC AB P B Q \ C B C 10 cm 8 60 = 4.8 and AB = = 7.5 10 8 Þ AP = 4.8 cm and AB = 7.5 cm Þ AP = 6 ´ Solution : By BPT, AP 8 6 = = 6 10 AB AQ PQ = QC BC 4 6 = Þ QC = 6 cm QC 9 Example 14 : Of the triangles with sides 11, 5, 9 or with sides 6, 10, 8; which is a right triangle ? Solution : (Longest side)2 = 112 = 121; 52 + 92 = 25 + 81 = 106 \ 112 ¹ 52 + 92 So, it is not a right triangle. Again, (longest side)2 = (10)2 = 100; 62 + 82 = 36 + 64 = 100 102 = 62 + 82 \ It is a right triangle. Example 15 : In figure, Ð DBA = 132° and Ð EAC = 120°. E Show that AB > AC. Solution : A 120° As DBC is a straight line, 132° + Ð ABC = 180° Þ Ð ABC = 180° – 132° = 48° For D ABC, 132° Ð EAC is an exterior angle C 120° = Ð ABC + Ð BCA D B (ext. Ð = sum of two opp. interior Ð s) Þ 120° = 48° + Ð BCA Þ Ð BCA = 120° – 48° = 72° Thus, we find that Ð BCA > Ð ABC Þ AB > AC (side opposite to greater angle is greater) Example 16 : From the adjoining diagram, calculate (i) AB (ii) AP (iii) ar DAPC : ar DABC D ACP CP 2 82 = = 0.64 = D ABC BC2 102 QUADRILATERALS A figure formed by joining four points is called a quadrilateral. A quadrilateral has four sides, four angles and four vertices. S R P Q In quadrilateral PQRS, PQ, QR, RS and SP are the four sides; P, Q, R and S are four vertices and ÐP, ÐQ, ÐR and ÐS are the four angles. • The sum of the angles of a qudrilateral is 360°. ÐP +Ð Q + ÐR + ÐS = 360° TYPES OF QUADRILATERALS : 1. Parallelogram : A quadrilateral whose opposite sides are parallel is called parallelogram. D A C B Properties : (i) Opposite sides are parallel and equal. (ii) Opposite angles are equal. (iii) Diagonals bisect each other. (iv) Sum of any two adjacent angles is 180°. (v) Each diagonal divides the parallelogram into two triangles of equal area. 8 2. Rectangle : A parallelogram, in which each angle is a right angle, i.e., 90° is called a rectangle. A D 3. B C Properties : (i) Opposite sides are parallel and equal. (ii) Each angle is equal to 90°. (iii) Diagonals are equal and bisect each other. Rhombus : A parallelogram in which all sides are congruent (or equal) is called a rhombus. Example 17 : The angle of quadrilateral are in the ratio 3 : 5 : 9 : 13. Find all the angles of the quadrilateral. Solution : Let the angles of quadrilateral are 3x, 5x, 9x, 13x. \ 3x + 5x + 9x + 13x = 360° (Sum of the angles of quadrilateral) Þ 30x = 360° Þ x = 12° Hence angles of quadrilateral are : 3x = 3 × 12° = 36° 5x = 5 × 12° = 60° 9x = 9 × 12° = 108° 13x = 13 × 12° = 156° Example 18 : ABCD is a parallelogram. E is the mid point of the diagonal DB. DQ = 10 cm, DB = 16 cm. Find PQ. Solution : ÐEDQ = ÐEBP (Alternate angles) A 4. 5. Properties : (i) Opposite sides are parallel. (ii) All sides are equal. (iii) Opposite angles are equal. (iv) Diagonals bisect each other at right angle. Square : A rectangle in which all sides are equal is called a square. Properties : (i) All sides are equal and opposite sides are parallel. (ii) All angles are 90°. (iii) The diagonals are equal and bisect each other at right angle. Trapezium : A quadrilateral is called a trapezium if two of the opposite sides are parallel but the other two sides are not parallel. Properties : (i) The segment joining the mid-points of the non-parallel sides is called the median of the trapezium. Median = 1 ´ sum of the parallel sides 2 P B E D C Q \ ÐDEQ = ÐBEP (opposite angles) \ DDEQ @ DBEP (By ASA congruency) \ PE = EQ (EQ)2 = (DQ)2 – (DE)2 = 102 – 82 = 100 – 64 = 36 \ EQ = 6 cm and PQ = 12 cm. Example 19 : Use the information given in figure to calculate the value of x. D C x 80° 105° 73° E A B Solution : Since, EAB is a straight line \ Ð DAE + Ð DAB = 180° Þ 73° + Ð DAB = 180° i.e., Ð DAB = 180° – 73° = 107° Since, the sum of the angles of quadrilateral ABCD is 360° \ 107° + 105° + x + 80° = 360° Þ 292° + x = 360° and, x = 360° – 292° = 68° 9 Example 20 : In the adjoining kite, diagonals D intersect at O. If Ð ABO = 32° and Ð OCD = 40°, find (i) Ð ABC 40° (ii) Ð ADC C A O (iii) Ð BAD Solution : Given, ABCD is a kite. 32° (i) As diagonal BD bisects Ð ABC, Ð ABC = 2 Ð ABO = 2 × 32° = 64° (ii) Ð DOC = 90° B [diagonals intersect at right angles] Ð ODC + 40° + 90° = 180° [sum of angles in D OCD] Þ Ð ODC = 180° – 40° – 90° = 50° As diagonal BD bisects Ð ADC, Ð ADC = 2 Ð ODC = 2 × 50° = 100° (iii) As diagonal BD bisects Ð ABC Ð OBC = Ð ABO = 32° Ð BOC = 90° [diagonals intersect at right angles] Ð OCB + 90° + 32° = 180° [sum of angles in D OBC] Þ Ð OCB = 180° – 90° – 32° = 58° Ð BCD = Ð OCD + Ð OCB = 40° + 58° = 98° \ Ð BAD = Ð BCD = 98° [In kite ABCD, Ð A = Ð C) POLYGON A plane figure formed by three or more non-collinear points joined by line segments is called a polygon. A polygon with 3 sides is called a triangle. A polygon with 4 sides is called a quadrilateral. A polygon with 5 sides is called a pentagon. A polygon with 6 sides is called a hexagon. A polygon with 7 sides is called a heptagon. A polygon with 8 sides is called an octagon. A polygon with 9 sides is called a nonagon. A polygon with 10 sides is called a decagon. Regular polygon : A polygon in which all its sides and angles are equal, is called a regular polygon. Sum of all interior angles of a regular polygon of side n is given by (2n – 4) 90°. CIRCLE The collection of all the points in a plane, which are at a fixed distance from a fixed point in the plane, is called a circle. The fixed point is called the centre of the circle and the fixed distance is called the radius (r). Chord : A chord is a segment whose endpoints lie on the circle. AB is a chord in the figure. r d O A B Diameter : The chord, which passes through the centre of the circle, is called the diameter (d) of the circle. The length of the diameter of a circle is twice the radius of the circle. d = 2r Secant : A secant is a line, which intersects the circle in two distinct points. Tangent : Tangent is a line in the plane of a circle and having one and only one point common with the circle. The common point is called the point of contact. Q O P M T N PQ is a secant MN is a tangent. T is the point of contact. Semicircle : Half of a circle cut off by a diameter is called the semicircle. The measure of a semicircle is 180°. Arc : A piece of a circle between two points is called an arc. A minor arc is an arc less than the semicircle and a major arc is an arc greater than a semicircle. P (2n – 4)90° Hence, angle of a regular polygon = n Sum of an interior angle and its adjacent exterior angle is 180°. Sum of all exterior angles of a polygon taken in order is 360°. Example 21 : The sum of the measures of the angles of regular polygon is 2160°. How many sides does it have? Solution : Sum of all angles = 90° (2n – 4) Þ 2160 = 90 (2n – 4) 2n = 24 + 4 \ n = 14 Hence the polygon has 14 sides. A B Q AQB is a minor arc and APB is a major arc. Circumference : The length of the complete circle is called its circumference (C). C = 2 pr 10 Segment : The region between a chord and either of its arcs is called a segment. D C Major segment Major sector O Minor sector Minor segment Sector : The region between an arc and the two radii, joining the centre to the endpoints of the arc is called a sector. ê Equal chords of a circle subtend equal angles at the centre. ê The perpendicular from the centre of a circle to a chord bisects the chord. ê Equal chords of a circle are equidistant from the centre. ê The angle subtended by an arc at the centre is double the angle subtended by it at any point on the remaining part of the circle. ê Angles in the same segment of a circle are equal. ê Angle in a semicircle is a right angle. ê The tangent at any point of a circle is perpendicular to the radius through the point of contact. ê The length of tangents drawn from an external point to a circle are equal. CYCLIC QUADRILATERAL If all the four vertices of a quadrilateral lies on a circle then the quadrilateral is said to be cyclic quadrilateral. • The sum of either pair of the opposite angles of a cyclic quadrilateral is 180°. i.e. ÐA + ÐC = 180° ÐB + ÐD = 180° C D 30° 70° A B O Solution : Ð ACB = 90° [Angle in a semi-circle] In D ABC, Ð BAC + Ð ACB + Ð ABC = 180° [Sum of the Ð s of D is 180°] Þ Ð BAC + 90° + 70° = 180° Þ Ð BAC = (180° – 160°) = 20° Now, ABCD being a cyclic quadrilateral, we have Ð ABC + Ð ADC = 180° (Opposite Ð s of a cyclic quad. are supplementary] Þ 70° + Ð ADC = 180° Þ Ð ADC = (180° – 70°) = 110° Now, in D ADC, we have Ð CAD + Ð ADC + Ð ACD = 180° (Sum of the Ð s of a D is 180°) Þ 30° + 110° + CD = 180° Þ Ð ACD = (180° – 140°) = 40° Hence, Ð BAC = 20° and Ð ACD = 40° Example 23 : With the vertices of D ABC as centres, three circles are described, each touching the other two externally. If the sides of the triangle are 9 cm, 7 cm and 6 cm. find the radii of the circles. Solution : A Let AB = 9 cm, BC = 7 cm x and CA = 6 cm x y Let x, y, z be the radii of z circles with centres z C y A, B, C respectively. B Then, x + y = 9, y + z = 7 and z + x = 6 Adding, we get 2 (x + y + z) = 22 Þ x + y + z = 11 \ x = [(x + y + z) – (y + z)] = (11 – 7) cm = 4 cm. Similarly, y = (11 – 6) cm = 5 cm and z = (11 – 9)cm = 2 cm. Hence, the radii of circles with centres A, B, C are 4 cm, 5 cm, and 2cm respectively. Example 24 : In the adjoining figure, 2 circles with centres Y and Z touch each other externally at point A. B A • X Conversely, if the sum of any pair of opposite angles of quadrilateral is 180°, then the quadrilateral must be cyclic. Example 22 : In the adjoining figure, C and D are points on a semi-circle described on AB as diameter. If Ð ABC = 70° and Ð CAD = 30°, calculate Ð BAC and Ð ACD. Y B A Z C Another circle, with centre X, touches the other 2 circles internally at Band C. If XY = 6cm, YZ = 9 cm and ZX = 7 cm, then find the radii of the circles. Solution : Let X, Y, Z be the radii of the circle, centres X, Y, Z respectively YAZ, XYB, XZC are straight lines (Contact of circles) XY = X – Y = 6 ..... (1) XZ = X – Z = 7 ..... (2) YZ = Y + Z = 9 ..... (3) Þ (1) + (2) + (3) 2X = 22 Þ X = 11, Y = 5, Z = 4 The radius of the circle, centre X, is 11 cm. The radius of the circle, centre Y, is 5 cm. The radius of the circle, centre Z, is 4 cm. SOME IMPORTANT THEOREMS I. If two chords of a circle intersect inside or outside the circle, then the rectangle formed by the two parts of one chord is equal in area to the rectangle formed by the two parts of the other. B B D A P 11 PQ is a tangent to a circle with centre O at a point A, AB is chord and C,D are points in the two segments of the circle formed by the chord AB. Then, ÐBAQ =Ð ACB ÐBAP = ÐADB COMMON TANGENTS FOR A PAIR OF CIRCLE (A) Length of direct common tangent L1 = (C1C 2 ) 2 – (R1 – R 2 ) 2 R1 C1 (B) C2 where C1C2 = Distance between the centres Length of transverse common tangent L 2 = (C1C 2 ) 2 – (R1 + R 2 ) 2 ; where C1C2 = Distance between the centres, and R1 and R2 be the radii of the two circles. P A C R1 D C (i) PA.PB = PC.PD R2 C1 (ii) Two chords AB and CD of a circle such that they intersect each other at a point P lying inside (fig. (i)) or outside (fig. (ii)) the circle. II. R2 C2 Example 25 : Find the angle marked as x in each of the following figures where O is the centre of the circle. If PAB is a secant to a circle intersecting it at A and B, and PT is a tangent, then PA.PB = PT 2. x O O T x (a) O P III. B A Alternate segment theorem : If a line touches a circle and from the point of contact a chord is drawn, the angle which this chord makes with the given line are equal respectively to the angles formed in the corresponding alternate segments. B C O O x (c) Solution : We know that the angle subtended by an arc at the centre is double the angle subtended by it at any point on the remaining part of the circle. 1 (a) x = 2 × 25° = 50° (b) x = ´ 110° = 55° 2 D P (b) A Q (c) x= 1 ´ 70° = 35° 2 12 Example 26 : In the figure, RS = 12 cm and radius of the circle is 10 cm. Find PB. A R S P Solution : ÐCAD = ÐDBC = 55° (Angles in the same segment) \ ÐDAB = ÐCAD + ÐBAC = 55° + 45° = 100° But ÐDAB + ÐBCD = 180° (Opposite angles of a cyclic quadrilateral) Þ ÐBCD = 180° – 100 = 80° Example 29 : In figure, ÐABC = 69°, ÐACB = 31°, find ÐBDC. O A D B Solution : RP = PS = 6 cm OS2 = PO2 + PS2 102 = PO2 + 62 PO2 = 100 – 36 = 64 PO = 8 cm \ PB = PO + OB = 8 + 10 = 18 cm Example 27 : In the figure, AB = 16 cm, CD = 12 cm and OM = 6 cm. Find ON. D N C O A M B Solution : B 69° 31° C Solution : In DABC, ÐABC + ÐACB + ÐBAC = 180° Þ 69° + 31° + ÐBAC = 180° Þ ÐBAC = 180° – 100° \ ÐBAC = 80° But ÐBAC = ÐBDC (Angles in the same segment of a circle are equal) Hence ÐBDC = 80° Example 30 : Find the length of the tangent from a point which is at a distance of 5 cm from the centre of the circle of radius 3 cm. Solution : Let AB be the tangent. DABO is a right triangle at B. 1 2 MB = ´ AB = 8 cm (perpendicular from the centre of the O circle bisects the chord) OB2 = OM2 + MB2 Þ OB2 = 62 + 82 = 36 + 64 = 100 Þ OB = 10 cm OB = OD = 10cm (Radii) OD2 = ON2 + ND2 102 = ON2 + 62 \ ON2 = 100 – 36 = 64 Hence ON = 8 cm Example 28 : In figure, ABCD is a cyclic quadrilateral in which AC and BD are its diagonals. If ÐDBC = 55° and ÐBAC = 45°, find ÐBCD. D A B C 5cm A 3cm B By pythagoras theorem, OA2 = AB2 + BO2 Þ 52 = AB2 + 32 Þ 25 = AB2 + 9 Þ AB2 = 25 – 9 = 16 \ AB = 4 Hence, length of the tangent is 4 cm. COORDINATE GEOMETRY The Cartesian Co-ordinate System : Let X'OX and YOY' be two perpendicular straight lines meeting at fixed point O then X'OX is called X axis Y'OY is called the axis of y or y axis point ‘O’ is called the origin. X axis is known as abscissa and y - axis is known as ordinate. Distance Formula: The distance between two points whose co-ordinates are given : ( x 2 - x1 ) 2 + ( y 2 - y1 ) 2 13 Then, we have ( x - 0) 2 + ( y - 0) 2 Distance from origin : x 1 + x 2 = 2, x 2 + x 3 = 8, x 3 + x 1 = 4 and, y1 + y 2 = 2, y 2 + y 3 = 2, y 3 + y1 = 6 Y 2nd Quadrant 1st Quadrant X' X O 3rd Quadrant 4th Quadrant Y' Section Formula : x = m1x 2 + m 2 x1 m1 + m 2 (Internally division) y = m1 y 2 + m 2 y1 m1 + m 2 These points divides the line segment in the ratio m1 : m2. TRIANGLE Suppose ABC be a triangle such that the coordinates of its vertices are A(x1, y1), B(x2, y2) and C(x3, y3). Then, area of the triangle 1 [ x1 (y2 - y3 ) + x 2 (y3 - y1 ) + x 3 (y1 - y2 )] 2 Centroid of triangle : The coordinates of the centroid are = Example 31 : Find the distance between the point P (a cosa, a sina) and Q (a cosb, a sinb). Solution : d2 = (a cosa– a cosb)2 + (asina – a sin b)2 = a2 (cosa– cosb)2 + a2 (sina – sin b)2 2 = 4a2 sin2 a+bü a -b ì 2 a+b + cos 2 ísin ý 2 2 þ 2 î = 4a2 sin2 a -b 2 Þ d = 2a sin 2 a -b 2 Example 32 : The coordinates of mid-points of the sides of a triangle are (1, 1), (2, 3) and (4, 1). Find the coordinates of the centroid. Solution : (x1, y1) A (2, 3) (1, 1) æ 1+ 2 + 4 1 + 3 +1 ö , ÷ \ The centroid has coordinates ç 3 3 ø è æ7 5ö i.e. ç , ÷ . è 3 3ø Example 33 : If distance between the point (x, 2) and (3, 4) is 2, then the value of x = Solution : æ x1 + x 2 + x 3 y1 + y 2 + y 3 ö , çè ÷ø 3 3 a+b b-aü a +b a -bü 2ì 2ì sin sin = a í2sin ý + a í2 cos ý 2 2 þ 2 2 þ î î From the above equations, we have x1 + x2 + x3 = 7 and y1 + y2 + y3 = 5 Solving together, we have x1 = –1, x2 = 3, x3 = 5 and y1 = 3, y2 = –1, y3 = 3 Therefore the coordinates of the vertices are (–1, 3), (3, –1) and (5, 3). æ - 1 + 3 + 5 3 -1 + 3 ö æ7 5ö , ÷ i.e. ç , ÷ . Hence, the centroid is ç 3 3 ø è è 3 3ø Alternatively: The coordinates of the centroid of the triangle formed by joining the mid points of the sides of the triangle are coincident (x3, y3) C (4, 1) B (x2, y2) Let the coordinates of the vertices be A(x1, y1), B(x2, y2) and C(x3, y3). 2 = (x - 3)2 + (2 - 4) 2 Þ 2 = (x - 3)2 + 4 Squaring both sides 4 = (x – 3)2 + 4 Þ x – 3 = 0 Þ x = 3 Example 34 : Find the co-ordinates of a point which divides the line segment joining each of the following points in the given ratio : (a) (2, 3) and (7, 8) in the ratio 2 : 3 internally (b) (–1, 4) and (0, –3) in the ratio 1 : 4 internally. Solution : (a) Let A(2, 3) and B(7, 8) be the given points. Let P(x, y) divide AB in the ratio 2 : 3 internally. Using section formula, we have, x= 2 ´ 7 + 3 ´ 2 20 = =4 2+3 5 2 ´ 8 + 3 ´ 3 25 = =5 2+3 5 \ P(4, 5) divides AB in the ratio 2 : 3 internally. (b) Let A (–1, 4) and B (0, –3) be the given points. Let P(x, y) divide AB in the ratio 1 : 4 internally Using section formula, we have 1 ´ 0 + 4 ´ ( -1) 4 x= =1+ 4 5 1 ´ ( -3) + 4 ´ 4 13 = and y = 1+ 4 5 and y = æ 4 13ö \ P ç - , ÷ divides AB in the ratio 1 : 4 internally.. è 5 5ø 14 Example 35 : Find the mid-point of the line-segment joining two points (3, 4) and (5, 12). Solution : Let A(3, 4) and B(5, 12) be the given points. Let C(x, y) be the mid-point of AB. Using mid-point formula, Solution : Area of quadrilateral = Area of D ABC + Area of D ACD D (–5,–4) C(7,–6) 3+5 4 + 12 = 4 and y = =8 2 2 \ C(4, 8) are the co-ordinates of the mid-point of the line segment joining two points (3, 4) and (5, 12). we have, x = Example 36 : The co-ordinates of the mid-point of a line segment are (2, 3). If co-ordinates of one of the end points of the line segment are (6, 5), find the co-ordiants of the other end point. Solution : Let other the end point be A(x, y) It is given that C (2, 3) is the mid point \ or or \ x+6 y+5 We can write, 2 = and 3 = 2 2 4 = x + 6 or 6=y+5 x=–2 or y= 1 A (–2, 1) be the co-ordinates of the other end point. Example 37 : The area of a triangle is 5. Two of its vertices are (2, 1) and (3, –2). The third vertex lies on y = x + 3. Find the third vertex. Solution : Let the third vertex be (x3, y3), area of triangle = A (–3,2) B (5,4) So, Area of D ABC= 1 1 | -30 - 40 - 14 |= | -84 | = 42 sq. units 2 2 So, Area of D ACD = = 1 | -3( -6 + 4) + 7( -4 - 2) + ( -5)(2 + 6) | 2 1 1 | +6 - 42 - 40 | = | -76 | = 38 sq. units 2 2 So, Area of quadrilateral ABCD = 42 + 38 = 80 sq. units. Example 39 : In the figure, find the value of x°. = A x° 25° E 1 | [x1 (y 2 - y3 ) + x 2 (y 3 - y1) + x 3 (y1 - y 2 )] | 2 35° As x1 = 2, y1 = 1, x 2 = 3, y2 = -2 , Area of D = 5 1 | 2(-2 - y3 ) + 3(y3 - 1) + x 3 (1 + 2) | 2 Þ 10 = | 3x3 + y3 – 7 | Þ 3x3 + y3 – 7 = ± 10 Taking positive sign, 3x3 + y3 – 7 = 10 Þ 3x3 + y3 = 17 Þ 5= Taking negative sign 3x3 + y3 – 7 = – 10 Þ 3x3 + y3 = –3 Given that (x3, –y3) lies on y = x + 3 So, –x3 + y3 = 3 ......... (i) ......... (ii) ......... (iii) 7 13 Solving eqs. (i) and (iii), x 3 = , y3 = 2 2 Solving eqs. (ii) and (iii), x 3 = 1 | ( -3)(4 + 6) + 5( -6 - 2) + 7(2 - 4) | 2 -3 3 , y3 = . 2 2 æ 7 13 ö æ -3 3 ö So the third vertex are çè , ÷ø or çè , ÷ø 2 2 2 2 Example 38 : Find the area of quadrilateral whose vertices, taken in order, are A (–3, 2), B(5, 4), C (7, – 6) and D (–5, – 4). 60° B D C Solution : In the D ABC, Ð A + Ð B + Ð ACB = 180° Þ 25° + 35° + Ð ACB = 180° Þ Ð ACB = 120° Now, Ð ACB + Ð ACD = 180° (linear pair) or 120° + Ð ACD = 180° or Ð ACD = 60° = Ð ECD Again in the D CDE, CE is produced to A. Hence, Ð AED = Ð ECD + Ð EDC Þ x = 60° + 60° = 120° Example 40 : Find the equation of the circle whose diameter is the line joining the points (– 4, 3) and (12, – 1). Find the intercept made by it on the y-axis. Solution : The equation of the required circle is (x + 4) (x – 12) + (y – 3) (y + 1) = 0 On the y-axis, x = 0 Þ – 48 + y2 – 2y – 3 = 0 Þ y2 – 2y – 51 = 0 Þ y= 1 ± 52 Hence the intercept on the y-axis = 2 52 = 4 13 15 Solution : (a) The triangle PQR is isosceles Þ MN || QR by converse of Proportionally theorem (b) Again by converse of proportionally theorem, MN || QR Example 41 : In figure, if l || m , then find the value of x. Solution : As l || m and DC is P transversal \ Ð D + Ð 1 = 180° 60° + Ð 1 = 180° Ð 1 = 120° Here, Ð 2 = Ð 1 = 120° (vertically opposite angles) In the D ABC Ð A + Ð B + Ð C = 180° 25° + x° + 120° = 180° or x = 35° D 60° m 1 M N C 2 A 25° x° B Example 42 : M and N are points on the sides PQ and PR respectively of a D PQR. For each of the following cases state whether MN is parallel to QR : (a) PM= 4, QM = 4.5, PN = 4, NR = 4.5 (b) PQ = 1.28, PR = 2.56, PM = 0.16, PN = 0.32 Q R Example 43 : The point A divides the join the points (– 5, 1) and (3, 5) in the ratio k : 1 and coordinates of points B and C are (1, 5) and (7, –2) respectively. If the area of D ABC be 2 units, then find the value (s) of k. Solution : æ 3k - 5 5k + 1ö , A º çè ÷ , Area of D ABC = 2 units k +1 k +1 ø 1 é 3k - 5 5k + 1ö æ æ 5k + 1 ö ù Þ 2 ê k + 1 (5 + 2) + 1çè -2 - k + 1 ÷ø + 7 çè k + 1 - 5÷ø ú = ± 2 ë û Þ 14k – 66 = ± 4 (k +1) Þ k = 7 or 31/9 EXERCISE 1. In triangle ABC, angle B is a right angle. If (AC) is 6 cm, and D is the mid-point of side AC. The length of BD is 3. A ABCD is a square of area 4, which is divided into four non overlapping triangles as shown in the fig. Then the sum of the perimeters of the triangles is A B D C D B (a) 4 cm 2. (b) 6cm (c) 3 cm (d) 3.5 cm AB is diameter of the circle and the points C and D are on the circumference such that ÐCAD = 30°. What is the measure of ÐACD ? D A (a) C 8(2 + 2 ) (b) 8(1 + 2 ) (d) 4(2 + 2 ) 4(1 + 2 ) The sides of a quadrilateral are extended to make the angles as shown below : (c) 4. 75° x° C 70° B 115° 90° (a) 40° (c) 30° (b) 50° (d) 90° What is the value of x ? (a) 100 (c) 80 (b) 90 (d) 75 16 5. AB ^ BC and BD ^ AC. And CE bisects the angle C. ÐA = 30º. The, what is ÐCED. D B A 30 D E E B 6. 7. 8. C (a) 30° (b) 60° (c) 45° (d) 65° Instead of walking along two adjacent sides of a rectangular field, a boy took a short cut along the diagonal and saved a distance equal to half the longer side. Then the ratio of the shorter side to the longer side is (a) 1/2 (b) 2/3 (c) 1/4 (d) 3/4 In a triangle ABC, points P, Q and R are the mid-points of the sides AB, BC and CA respectively. If the area of the triangle ABC is 20 sq. units, find the area of the triangle PQR (a) 10 sq. units (b) 5.3 sq. units (c) 5 sq. units (d) None of these PQRS is a square. SR is a tangent (at point S) to the circle with centre O and TR = OS. Then, the ratio of area of the circle to the area of the square is P S 14. 15. (a) 1 : 4 (b) 1: 2 (c) 1 : 3 (d) Insufficient data Find the co-ordinates of the point which divides the line segment joining the points (4, –1) and (–2, 4) internally in the ratio 3 : 5 (a) æ6 7ö ç , ÷ è4 2ø (b) æ4 8ö ç , ÷ è7 7ø (c) æ7 7ö ç , ÷ è4 8ø (d) æ 7 8ö ç , ÷ è 12 4 ø In DABC, DE | | BC and (a) D O 9. (b) 11 / 7 (c) 3 / p (d) 7 / 11 Two circles touch each other internally. Their radii are 2 cm and 3 cm. The biggest chord of the outer circle which is outside the inner circle is of length (a) 10. 12. 13. 16. (c) 100 2 m (d) 10 2 m The sum of the interior angles of a polygon is 1620°. The number of sides of the polygon are : (a) 9 (b) 11 (c) 15 (d) 12 From a circular sheet of paper with a radius of 20 cm, four circles of radius 5cm each are cut out. What is the ratio of the uncut to the cut portion? (a) 1 : 3 (b) 4 : 1 (c) 3 : 1 (d) 4 : 3 In the adjoining the figure, points A, B, C and D lie on the circle. AD = 24 and BC = 12. What is the ratio of the area of the triangle CBE to that of the triangle ADE (a) 2.1 cm (b) 3.1 cm (c) 1.2 cm (d) 2.3 cm In the adjoining figure, AC + AB = 5 AD and AC – AD = 8. Then the area of the rectangle ABCD is D (b) 3 2 cm (c) 2 3 cm (d) 4 2 cm A triangle and a parallelogram are constructed on the same base such that their areas are equal. If the altitude of the parallelogram is 100 m, then the altitude of the triangle is : (a) 100 m (b) 200 m C 17. C A B (a) 36 (b) 50 (c) 60 (d) Cannot be answered In the given fig. AB | | QR, find the length of PB. P A Q 18. 3cm. 9 cm. m. 6c 11. 2 2 cm E B R p/3 AD 3 = . If AC = 5.6 cm, find AE. DB 5 A T Q A C B R (a) 3 cm (b) 2 cm (c) 4 cm (d) 6 cm In DABC, AD is the bisector of ÐA if AC = 4.2 cm., DC = 6 cm., BC = 10 cm., find AB. (a) 2.8 cm (b) 2.7 cm (c) 3.4 cm (d) 2.6 cm 19. 20. 21. 22. Two circles of radii 10 cm. 8 cm. intersect and length of the common chord is 12 cm. Find the distance between their centres. (a) 13.8 cm (b) 13.29 cm (c) 13.2 cm (d) 12.19 cm ABCD is a cyclic quadrilateral in which BC || AD, ÐADC = 110° and ÐBAC = 50° find ÐDAC (a) 60° (b) 45° (c) 90° (d) 120° The length of a ladder is exactly equal to the height of the wall it is resting against. If lower end of the ladder is kept on a stool of height 3 m and the stool is kept 9 m away from the wall the upper end of the ladder coincides with the tip of the wall. Then, the height of the wall is (a) 12 m (b) 15 m (c) 18 m (d) 11 m In a triangle ABC, the internal bisector of the angle A meets BC at D. If AB = 4, AC = 3 and ÐA = 60° , then the length of AD is (a) 24. 25. 26. 2 3 (a) 15 ( 2 - 1) 2 29. D C (b) A 2( 2 - 1)2 B E D 30. C (a) 15° (b) 30° (c) 20° (d) 45° AB and CD two chords of a circle such that AB = 6 cm CD = 12 cm. And AB || CD . The distance between AB and CD is 3 cm. Find the radius of the circle. . (a) 31. (c) 3 4 (d) 5 3 ABCD is a square, F is the mid-point of AB and E is a point on BC such that BE is one-third of BC. If area of DFBE = 108 m2, then the length of AC is : (b) 3 5 (a) 63 m (c) 32. (b) 63 2 m 2 5 36 2 m (d) 72 2 m On a semicircle with diameter AD, chord BC is parallel to the diameter. Further, each of the chords AB and CD has length 2, while AD has length 8. What is the length of BC? B C 60° A 20° D 33. 27. B (d) None of these ( 2 - 1) 2 / 2 If ABCD is a square and BCE is an equilateral triangle, what is the measure of the angle DEC? A B A (c) 12 3 7 3 3 (d) 6 8 7 In a quadrilateral ÐABCD, ÐB = 90° and AD2 = AB2 + BC2 + CD2, then ÐACD is equal to : (a) 90° (b) 60° (c) 30° (d) None of these How many sides a regular polygon has with its sum of interior angles eight times its sum of exterior angles? (a) 16 (b) 24 (c) 18 (d) 30 The Co-ordinates of the centroid of the triangle ABC are (6, 1). If two vertices A and B are (3, 2) and (11, 4) find the third vertex (a) (4, –3) (b) (2, 1) (c) (2, 4) (d) (3, 3) In given fig, if ÐBAC = 60° and ÐBCA = 20° find ÐADC (c) 23. (b) 28. 17 The figure shows a rectangle ABCD with a semi-circle and a circle inscribed inside it as shown. What is the ratio of the area of the circle to that of the semi-circle? C (a) 60° (b) 45° (c) 80° (d) 90° In a triangle ABC, the lengths of the sides AB, AC and BC are 3, 5 and 6 cm, respectively. If a point D on BC is drawn such that the line AD bisects the angle A internally, then what is the length of BD ? (a) 2 cm (b) 2.25 cm (c) 2.5 cm (d) 3 cm 34. 35. D (a) 7.5 (b) 7 (c) 7.75 (d) None of the above The line x + y = 4 divides the line joining the points (–1, 1) and (5, 7) in the ratio (a) 2 : 1 (b) 1 : 2 (c) 1 : 2 externally (d) None of these If the three vertices of a rectangle taken in order are the points (2, –2), (8, 4) and (5, 7). The coordinates of the fourth vertex is (a) (1, 1) (b) (1, –1) (c) (–1, 1) (d) None of these The centroid of a triangle, whose vertices are (2, 1), (5, 2) 18 such that BA ^ ED and EF ^ BC, then find value of Ð ABC + Ð DEF. A D P and (3, 4) is 36. 37. (a) æ 8 7ö çè , ÷ø 3 3 (b) æ 10 7 ö çè , ÷ø 3 3 (c) æ 10 7 ö çè - , ÷ø 3 3 (d) æ 10 7 ö çè , - ÷ø 3 3 E If O be the origin and if the coordinates of any two points Q1 and Q2 be (x1, y1) and (x2, y2) respectively, then OQ1.OQ2 cos Q1OQ2 = (a) x1x2 – y1y2 (b) x1y1 – x2y2 (c) x1x2 + y1y2 (d) x1y1 + x2y2 In the given figure, AB || CD, Ð BAE = 45º, ÐDCE = 50º and Ð CED = x, then find the value of x. 43. D B 50º A 38. 39. 40. H (a) 85º (b) 95º (c) 60º (d) 20º If the coordinates of the points A, B, C be (4, 4), (3, – 2) and (3, – 16) respectively, then the area of the triangle ABC is: (a) 27 (b) 15 (c) 18 (d) 7 Arc ADC is a semicircle and DB ^ AC. If AB = 9 and BC = 4, find DB. (a) 6 (b) 8 (c) 10 (d) 12 In the given figure given below, E is the mid-point of AB and F is the midpoint of AD. if the area of FAEC is 13, what is the area of ABCD ? E 108° 72° C (a) 18 (b) 12 (c) 16 (d) 6 In the figure given below, AB is a diametre of the semicircle APQB, centre O, Ð POQ = 48º cuts BP at X, calculate ÐAXP. Q P X B C A F (a) 120º (b) 180º (c) 150º (d) 210º In the figure AG = 9, AB = 12, AH = 6, Find HC. A Q xº 45º C B 44. 48º 45. A B O (a) 50º (b) 55º (c) 66º (d) 40º OA is perpendicular to the chord PQ of a circle with centre O. If QR is a diametre, AQ = 4 cm, OQ = 5 cm, then PR is equal to P B A Q F O R C D 41. (a) 19.5 (b) 26 (c) 39 (d) None of these Given the adjoining figure. Find a, b, c C 50º b A 42. c 36º 46. (a) 6 cm (b) 4 cm. (c) 8 cm (d) 10 cm In the cyclic quadrilateral ABCD BCD =120º , m(arc DZC) = 7º, find DAB and m (arc CXB). C Z X D B D a 70º B (a) 74º, 106º, 20º (b) 90º, 20º, 24º (c) 60º, 30º, 24º (d) 106º, 24º, 74º In the given figure, Ð ABC and Ð DEF are two angles A (a) 60º, 70º (c) 60º, 50º (b) 60º, 40º (d) 60º,60º 19 47. In the figure , if NT 9 = and if MB = 10, find MN. AB 5 E xº M 54º D B A 950 N 48. 49. 850 A 650 T (a) 5 (b) 4 (c) 28 (d) 18 The perimeter of the triangle whose vertices are (– 1,4), (– 4, –2), (3, –4), will be : (a) 38 (b) 16 (c) 42 (d) None of the above In the figure, AB = 8, BC = 7 m, ÐABC = 1200. Find AC. 54. 55. A 8 M 50. 53. B 1200 C (a) 11 (b) 12 (c) 13 (d) 14 Give that segment AB and CD are parallel, if lines l, m and n intersect at point O. Find the ratio of q to ÐODS l q A X m 56. 57. n P B 58. O 2x y R C 51. 2y D Q S 59. (a) 2 : 3 (b) 3 : 2 (c) 3 : 4 (d) Data insufficient In the given figure, AB is chord of the circle with centre O, BT is tangent to the circle. The values of x and y are P 60. y O B X T 52. 61. 32º A (a) 52º, 52º (b) 58º, 52º (c) 58º, 58º (d) 60º, 64º In the given figure, m Ð EDC = 54°. m Ð DCA = 40°. Find x, y and z. Y zº yº x 40º C B (a) 20°, 27°, 86° (b) 40°, 54°, 86° ° ° ° (c) 20 , 27 , 43 (d) 40°, 54°, 43° The distance between two parallel chords of length 8 cm each in a circle of diameter 10 cm is (a) 6 cm (b) 7 cm (c) 8 cm (d) 5.5 cm In a quadrilateral ABCD, the bisectors of ÐA and ÐB meet at O. If ÐC = 70° and ÐD = 130°, then measure of ÐAOB is (a) 40° (b) 60° (c) 80° (d) 100° In DABC, E and D are points on sides AB and AC respectively such that ÐABC = ÐADE. If AE = 3 cm, AD = 2 cm and EB = 2 cm, then length of DC is (a) 4 cm (b) 4.5 cm (c) 5.0 cm (d) 5.5 cm In a circle with centre O, AB is a chord, and AP is a tangent to the circle. If ÐAOB = 140°, then the measure of ÐPAB is (a) 35° (b) 55° (c) 70° (d) 75° In DABC, ÐA < ÐB. The altitude to the base divides vertex angle C into two parts C1 and C2, with C2 adjacent to BC. Then (a) C1 + C2 = A + B (b) C1 – C2 = A – B (c) C1 – C2 = B – A (d) C1 + C2 = B – A If O is the in-centre of DABC; if ÐBOC = 120°, then the measure of ÐBAC is (a) 30° (b) 60° (c) 150° (d) 75° Two parallel chords of a circle of diameter 20 cm are 12 cm and 16 cm long. If the chords are in the same side of the centre, then the distance between them is (a) 28 cm (b) 2 cm (c) 4 cm (d) 8 cm In a D ABC, AB BD = , Ð B = 70° and ÐC = 50°, then AC DC Ð BAD = ? (a) 60° (b) 20° (c) 30° (d) 50° In a D ABC, AD, BE and CF are three medians. The perimeter of DABC is always ( ) (a) equal to AD + BE + CF (b) greater than AD + BE + CF (c) less than AD + BE + CF (d) None of these ( ( ) ) 20 62. 63. 64. 65. 66. 67. 68. 69. 70. 71. In a D ABC, AD, BE and CF are three medians. Then the ratio ( AD + BE + CF) : ( AB + AC + BC ) is 3 3 (a) equal to (b) less than 4 4 3 1 (c) greater than (d) equal to 4 2 Two circles with radii 25 cm and 9 cm touch each other externally. The length of the direct common tangent is (a) 34 cm (b) 30 cm (c) 36 cm (d) 32 cm If AB = 5 cm, AC = 12 and AB ^ AC then the radius of the circumcircle of DABC is (a) 6.5 cm (b) 6 cm (c) 5 cm (d) 7 cm The radius of the circumcircle of the triangle made by xaxis, y-axis and 4x + 3y = 12 is (a) 2 unit (b) 2.5 unit (c) 3 unit (d) 4 unit The length of the circum-radius of a triangle having sides of lengths 12 cm, 16 cm and 20 cm is (a) 15 cm (b) 10 cm (c) 18 cm (d) 16 cm If D is the mid-point of the side BC of D ABC and the area of D ABD is 16 cm2, then the area of D ABC is (a) 16 cm2 (b) 24 cm2 (c) 32 cm2 (d) 48 cm2 ABC is a triangle. The medians CD and BE intersect each other at O. Then D ODE : D ABC is (a) 1 : 3 (b) 1 : 4 (c) 1 : 6 (d) 1 : 12 If P, R, T are the area of a parallelogram, a rhombus and a triangle standing on the same base and between the same parallels, which of the following is true? (a) R < P < T (b) P > R > T (c) R = P = T (d) R = P = 2T AB is a diameter of the circumcircle of D APB; N is the foot of the perpendicular drawn from the point P on AB. If AP = 8 cm and BP = 6 cm, then the length of BN is (a) 3.6 cm (b) 3 cm (c) 3.4 cm (d) 3.5 cm Two circles with same radius r intersect each other and one passes through the centre of the other. Then the length of the common chord is 3 r (d) 5r 2 The bisector of ÐA of DABC cuts BC at D and the circumcircle of the triangle at E. Then (a) AB : AC = BD : DC (b) AD : AC = AE : AB (c) AB : AD = AC : AE (d) AB : AD = AE : AC (a) 72. r (b) 3r (c) 73. 74. 75. 76. 77. 78. 79. 80. 81. 82. 83. 84. Two circles intersect each other at P and Q. PA and PB are two diameters. Then ÐAQB is (a) 120° (b) 135° (c) 160° (d) 180° O is the centre of the circle passing through the points A, B and C such that ÐBAO = 30°, ÐBCO = 40° and ÐAOC = x°. What is the value of x ? (a) 70° (b) 140° (c) 210° (d) 280° A and B are centres of the two circles whose radii are 5 cm and 2 cm respectively. The direct common tangents to the circles meet AB extended at P. Then P divides AB. (a) externally in the ratio 5 : 2 (b) internally in the ratio 2 : 5 (c) internally in the ratio 5 : 2 (d) externally in the ratio 7 : 2 A, B, P are three points on a circle having centre O. If ÐOAP = 25° and ÐOBP = 35°, then the measure of ÐAOB is (a) 120° (b) 60° (c) 75° (d) 150° Side BC of DABC is produced to D. If ÐACD = 140° and ÐABC = 3ÐBAC, then find ÐA. (a) 55° (b) 45° (c) 40° (d) 35° The length of tangent (upto the point of contact) drawn from an external point P to a circle of radius 5 cm is 12 cm. The distance of P from the centre of the circle is (a) 11 cm (b) 12 cm (c) 13 cm (d) 14 cm ABCD is a cyclic quadrilateral, AB is a diameter of the circle. If ÐACD = 50°, the value of ÐBAD is (a) 30° (b) 40° (c) 50° (d) 60° Two circles of equal radii touch externally at a point P. From a point T on the tangent at P, tangents TQ and TR are drawn to the circles with points of contact Q and R respectively. The relation of TQ and TR is (a) TQ < TR (b) TQ > TR (c) TQ = 2TR (d) TQ = TR When two circles touch externally, the number of common tangents are (a) 4 (b) 3 (c) 2 (d) 1 D and E are the mid-points of AB and AC of DABC. If ÐA = 80°, ÐC = 35°, then ÐEDB is equal to (a) 100° (b) 115° (c) 120° (d) 125° If the inradius of a triangle with perimeter 32 cm is 6 cm, then the area of the triangle in sq. cm is (a) 48 (b) 100 (c) 64 (d) 96 If two circles of radii 9 cm and 4 cm touch externally, then the length of a common tangent is (a) 5 cm (b) 7 cm (c) 8 cm (d) 12 cm ANSWER KEY 1 2 3 4 5 6 7 8 9 10 11 (c) (a) (b) (c) (b) (d) (c) (a) (d) (b) (b) 12 13 14 15 16 17 18 19 20 21 22 (c) (a) (c) (a) (c) (b) (a) (b) (a) (b) (b) 23 24 25 26 27 28 29 30 31 32 33 (a) (c) (a) (c) (b) (d) (a) (a) (b) (b) (b) 34 35 36 37 38 39 40 41 42 43 44 (c) (b) (c) (a) (d) (a) (b) (a) (b) (b) (c) 45 46 47 48 49 50 51 52 53 54 55 (a) (c) (d) (d) (c) (c). (c) (b) (a) (d) (d) 56 57 58 59 60 61 62 63 64 65 66 (c) (c) (b) (b) (c) (b) (c) (b) (a) (b) (b) 67 68 69 70 71 72 73 74 75 76 77 (c) (d) (d) (a) (b) (d) (d) (b) (a) (a) (d) 78 79 80 81 82 83 84 (c) (b) (d) (b) (b) (d) (d) 21 HINTS & SOLUTIONS 1. (c) In a right angled D, the length of the median is length of the hypotenuse . Hence BD = 2. 3. (a) (b) 1 the 2 2 æx ö 2 2 ç + y÷ = x + y è2 ø 1 AC = 3cm. 2 x2 + y 2 + xy = x 2 + y 2 4 ÐD = 180 - ÐB = 180 - 70 = 110° \ ÐACD = 180 - ÐD - ÐCAD 180 - 110 - 30 = 40° A a D x 2 + 4xy = 4 x 2 7. O C a y 3 = x 4 (c) Consider for an equilateral triangle. Hence DABC consists of 4 such triangles with end points on mid points AB, BC and CA A 4xy = 3x 2 Þ 4 y = 3x Þ B ABCD is square a 2 = 4 Þ a = 2 AC = BD = 2 2 perimeters of four triangles P R = AB + BC + CD + DA + 2(AC + BD) 4. = 8 + 2(2 2 + 2 2 ) = 8(1 + 2 ) (c) Sum of all the exterior angles of a polygon taken in order is 360°. B Q 1 Þ ar (DABC) = ar (DPQR) 4 Þ ar (DPQR) = 5 sq. units 75° 8. x° (a) a S P a r O a r Q 115° 90° 5. i.e. x + 90 + 115 + 75 = 360 or x = 360° – 280° = 80° or x = 80° (b) In DABC, ÐC = 180 - 90 - 30 = 60° (d) D C A According to question, ( x + y) - x 2 + y 2 = ( x + y) - R Þ a 2 = 3r 2 or a = 3r 22 2 ´r Area of circle 22 22 p = 7 = = = \ Area of square ( 3r) 2 7 ´ 3 21 3 9. (d) 2 cm x 2 + y2 y r T In DSOR , a 2 + r 2 = (2r ) 2 = 4r 2 60 \ DDCE = = 30° 2 Again in DDEC , ÐCED = 180 - 90 - 30 = 60° 6. a O' 1 cm B C B O AB = \ 32 - 12 = 2 2 cm AC = 4 2 cm 3 cm 2 2 cm x 2 x = x 2 + y2 2 C A 22 10. (b) Let the common base be x m. Now, area of the triangle = area of the parallelogram 16. (c) 1 ´ x ´ Altitude of the triangle = x × 100 2 11. Þ ( 2n – 4) ´ (c) p 2 p p = 1620 ´ 2 180 Ratio of uncut portion (p ´ 20 ´ 20) - (100p) = Ratio of cut portion (4 ´ p ´ 5 ´ 5) = 13. (a) b a B a 2 + b 2 = (b + 8) 2 = b 2 + 64 + 16b or a 2 = 16b + 64 = (4b - 8) 2 = 16b 2 + 64 - 64b [From (iii)] 17. Þ 16b 2 - 80b = 0 or b = 0 or 5 Putting b = 5 in (iii), a = 4b – 8 = 20 – 8 = 12 Area of rectangle = 12 ´ 5 = 60 (b) DPAB ~ DPQR PB PR PB 6 = Þ = AB QR 3 9 300p 3 = 100 p 1 AD = 24, BC = 12 C ....(i) AC + AB = 5AD or AC + a = 5b ....(ii) AC - AD = 8 or AC = b + 8 Using (i) and (ii) , a + b + 8 = 5b or a + 8 = 4b ...(iii) Using Pythagorous theorem, 1620 ´ 2 = 18 ( 2n – 4) = 180 or 2n = 22 or n = 11 12. a b A Altitude of the triangle = 200 m (b) The sum of the interior angles of a polygon of n sides is given by the expression (2n – 4) D \ PB = 2 cm 18. A (a) In DBCE & DADE since ÐCBA = ÐCDA (Angles by same arc) ÐBCE = ÐDAE (Angles by same arc) ÐBEC = ÐDEA (Opp. angles) ? 4.2 cm \ ÐBCE & ÐDAE are similar Ds with sides in the ratio 1 : 2 Ratio of area = 1:4 ( i.e square of sides) 14. (c) Here x1 = 4, x 2 = -2, y1 = -1, y 2 = 4 B 4 cm D using angle bisector theorem and m1 = 3 and m 2 = 5 15. 19. \ AB = 2.8 cm (b) Here, OP = 10 cm; O'P = 8 cm P æ7 7ö \ The required point is ç , ÷ è4 8ø (a) In DABC, DE | | BC By applying basic Proportionality theorem, AD AE = DB EC AD 3 = (Given) But DB 5 \ AE 3 AE 3 AE 3 = or or = = AC 8 EC + AE 5 + 3 EC 5 AE 3 = Þ 8AE = 3 × 5.6 Þ AE = 3 × 5.6 /8 5.6 8 \ AE = 2.1 cm. or C AC DC 4.2 AB = Þ = AB BD 6 4 m x + m 2 x1 3( -2) + 5( 4) 7 \x = 1 2 = = m1 + m 2 3+5 4 m y + m 2 y1 3(4) + 5(-1) 7 and y = 1 2 = = m1 + m 2 3+5 8 6 cm 10 8 O L O' Q PQ = 12 cm 1 ´ 12 Þ PL = 6 cm 2 In rt. DOLP , OP 2 = OL2 + LP 2 (using Pythagoras theorem) \ PL = 1/2 PQ Þ PL = Þ (10 ) 2 = OL2 + (6) 2 Þ OL2 = 64 ; OL = 8 In DO' LP, (O ' L) 2 = O ' P 2 - LP 2 = 64 – 36 = 28 O'L2 = 28 Þ O ' L = 28 23 O'L = 5.29 cm \ OO' = OL + O' L = 8 + 5.29 O O' = 13.29 cm 20. (a) ÐABC + ÐADC = 180° (sum of opposites angles of cyclic quadrilateral is 180°) A 3 4 2 12 3 ´ x ´3´ = 2x 7 1 7 2 2 2 (a) We have, AD = AB + BC + CD2 Þy= 23. A D D 50° 110° C B 90° B 21. (b) Þ ÐABC + 110° = 180° ( ABCD is a cyclic quadrilateral ) Þ ÐABC = 180 – 110 Þ ÐABC = 70° (Q AD || BC) \ ÐABC + ÐBAD = 180° (Sum of the interior angles on the same side of transversal is 180°) 70° + Ð BAD = 180° Þ ÐBAD = 180° – 70° = 110° Þ ÐBAC + ÐDAC = 110° Þ 50° + ÐDAC = 110° Þ ÐDAC = 110° – 50 ° = 60° 24. p = 8 ´ 2p 2 or (2n – 4) = 32 or n = 18 (a) Let the third vertex be ( x, y) \ The centroid of the triangle is given (6, 1). 25. x + x2 + x3 3 + 11 + x Þ 1 =6Þ = 6 Þ 14 + x = 18 3 3 Þ x=4 y1 + y 2 + y 3 2+ 4+ y =1Þ =1Þ 6 + y = 3 3 3 y = –3 \ Third vertex is (4, –3) (c) In DABC, ÐB = 180° – (60° + 20°) (By ASP) A and 3 3m 26. 9m Using pythagoras , x2 + 81 = (3 + x)2 22. In DABC AC2 = AB2 + BC2 Þ AD2 = AC2 + CD2 Þ ÐACD = 90° (c) Let n be the number of sides of the polygon Now, sum of interior angles = 8 × sum of exterior angles i.e. (2n – 4) ´ 3+x x or x 2 + 81 = 9 + x 2 + 6 x Þ 6 x = 72 or x = 12m Height of wall = 12 + 3 =15 m (b) A 60° 20° y C D x Using the theorem of angle of bisector, 4 3 BD AB 4 Þ BD = x & DC = x = = 7 7 DC AC 3 In DABD, by sine rule, sin 30 = sin B 4/ 7x y In DABC, by sine rule; or D B 4 30 30 3 B C 27. C Þ ÐB = 100° But ÐB + ÐD = 180° (Q ABCD is a cyclic quadrilateral; Sum of opposite is 180°) 100° + ÐD = 180° Þ ÐADC = 80° A (b) As AD biseets CA, we have ......(i) sin 60 sin B = x 3 3 sin 30.y = [putting the value of sin B from (i)] 2x 4 / 7x ´ 3 BD DC = AB AC or DC 5 = BD 3 or DC 5 + 1 = +1 BD 3 3 B 5 D 6 C 24 or DC + BD 5 + 3 = BD 3 or BC 8 = BD 3 28. 29. BD = Area of DFEB = x2 = 108 12 Þ x2 = 108 × 12 = 1296 In DADC, we have AC2 = AD2 + DC2 = x2 + x2 = 2x2 = 2 × 1296 = 2592 C D In DDEC , ÐDCE = 90° + 60° = 150° 32. (b) C 4 E O 4 BO = radius = 4 = AO B D E O F \ BC = AD – AE – FD = 8 - (using Pythagoras theorem) 1 1 ö æ r 2 = x 2 + (6) 2 ç\ ED = CD = ´ 12 = 6cm ÷ 2 2 ø è æ -1 + 1 - 4 ö 1 = (b) Ratio = - ç è 5 + 7 - 4 ÷ø 2 34. (c) Let fourth vertex be (x, y), then and ....(i) In rt. DOFB, (OB) 2 = (OF) 2 + (FB) 2 35. Þ r 2 = ( x + 3) 2 + (3) 2 Þ r 2 = x 2 + 6 x + 9 + 9 36. ....(ii) x +8 2+5 = 2 2 y + 4 -2 + 7 = Þ x = -1, y = 1 2 2 2 + 5 + 3 10 1+ 2 + 4 7 = = and y = 3 3 3 3 (c) From triangle OQ1Q2, by applying cosine formula. Y (b) x= From (i) and (ii), we get x 2 + 36 = x 2 + 6 x + 18 Þ 36 = 6x + 18 Þ 36 - 18 = 6x 18 = 6x Þ 3 = x For (i), r2 = (3)2 + (6)2 r2 = 9 + 36 Þ r2 = 45 r = 45 Þ r = 3 5 cm. (b) Let the side of the square be x, then x x and BF = BE = 2 3 1 1 - = 7 (Q AE = FD) 2 2 33. (OD) 2 = (OE) 2 + (ED) 2 Þ r 2 = x 2 + 36 D æ 22 + 42 - 42 ö 2 1 ÷= = AE = 2 cos A = 2 ´ ç ç 2´ 2´ 4 ÷ 4 2 è ø AB || CD (Given) Let ‘r’ be the radius of the circle Now in rt. D OED, 31. C A F Þ r 2 = x 2 + 6 x + 18 B 2 6cm A AC = 2592 = 36 2 or 180 - 150 = 15° 2 (a) Draw OE ^ CD and OF ^ AB 1 x x x2 ´ ´ = 2 3 2 12 Now, 60 ÐCDE = ÐDEC = C D E 30. B E BC ´ 3 6 ´ 3 9 = = = 2.25 cm 8 8 4 (d) Let the radius of the semi- circle be R and that of the circle be r, then from the given data, it is not possible to express r in terms of R. Thus option (d) is the correct alternative. B (a) A or F A Q2 (x 2 , y2 ) Q1 (x1 , y1 ) O X 25 Q1Q22 = OQ12 + OQ22 - 2OQ1.OQ 2 cos Q1OQ 2 46. or (x1 - x 2 ) 2 + (y1 - y 2 ) 2 = x12 + y12 + x 22 + y 22 - 2OQ1.OQ2 cos q 37. or x1x 2 + y1y2 = OQ1.OQ2 cos Q1OQ 2 (a) ÐEDC = ÐBAD = 45º (alternate angles) \ x = DEC = 180º – (50º + 45º) = 85º. 38. (d) 39. 1 [56 – 60 + 18] = 7 2 (a) m Ð ADC = 90º (Angle subtended by the diameter on a circle is 90°) D (c) m Ð DAB + 180º – 120º = 60º (Opposite angles of a cyclic quadrilateral) m (arc BCD) = 2m Ð DAB = 120º. Z (b) 41. (a) 42. (b) 43. (b) X D B 1 [4 - (2 + 16) + 3 (-16 - 4) + 3 (4 + 2)] 2 A = 40. C C B A \ D ADC is a right angled triangle. \ (DB)2 = BA × BC .. (DB is the perpendicular to the hypotenuse) = 9 × 4 = 36 \ DB = 6 As F is the mid-point of AD, CF is the median of the triangle ACD to the side AD. Hence area of the triangle FCD = area of the triangle ACF. Similarly area of triangle BCE = area of triangle ACE. \ Area of ABCD = Area of (CDF + CFA + ACE + BCE) = 2 Area (CFA + ACE) = 2 × 13 = 26 sq. units. a + 36º + 70º = 180º (sum of angles of triangle) Þ a = 180º – 36º – 70º = 74º b = 36º + 70º(Ext. angle of triangle ) = 106º c = a – 50º (Ext. angle of triangle ) =74º – 50º = 24º. Since the sum of all the angle of a quadrilateral is 360º We have Ð ABC + Ð BQE + Ð DEF + Ð EPB = 360º \Ð ABC + Ð DEF = 180º [Q BPE = EQB = 90º ] m Ð AHG = 180 – 108 = 720 \ Ð AHG = Ð ABC .....(same angle with different names) \ D AHG – DABC .....(AA test for similarity) AG AH = ; AC AB 9 6 = 12 AC 12 x 9 = 18 6 \ HC = AC – AH = 18 – 6 = 12 \ AC = 1 (48º) 2 (Ðat centre = 2 at circumference on same PQ) 24º Ð AQB = 90º (ÐIn semi- circle) Ð QXB = 180º – 90º – 24º ( Ðsum of D ) = 66º 44. (c) b = 45. (a) AO = OQ2 - AQ2 = 52 - 42 = 9 = 3 Now, from similar Ds QAO and QOR OR = 2OA = 2× 3 = 6 cm. 47. \m (arc CXB) = m (BCD) – m (arc DZC) = 120º – 70º = 50º . (d) Ð MBA = 180º – 95º = 85º Ð AMB = Ð TMN ...(Same angles with different names) \ D MBA – D MNT ......(AA test for similarity) MB AB = MN NT 48. .......(proportional sides) 10 5 90 = \ MN = = 18. MN 9 5 (d) The three length AB, BC, AC will be AB = [(-1 + 4)2 + (4 + 2)2 ] = 45 BC = [(-4 - 3)2 + (-2 + 2) 2 ] = 7 2 + 22 = 53 49. AC = 42 + 82 = 80 Perimeter = AB + BC + AC (c) m Ð ABM = 180º –120º = 60º \ D AMB is a 30º – 60º – 90º triangle. \ AM MB = 3 3 AB = ×8=4 3 2 2 1 1 AB = x 8 = 4 2 2 (AC)2 = (AM)2 + (MC)2 = (4 50. 3 )2 + (4 +7)2 = 48 + 121 = 169 ; AC = 169 = 13. (c) Let the line m cut AB and CD at point P and Q respectively Ð DOQ = x (exterior angle) Hence, Y + 2x (corresponding angle) \y=x ...(1) Also . Ð DOQ = x (vertically opposite angles) In D OCD, sum of the angles = 180° \ y + 2y + 2x + x =180° 3x + 3y = 180° x + y = 60 ...(2) From (1) and (2) x = y = 30 = 2y = 60 \ Ð ODS = 180 – 60 = 120° \ q = 180 – 3x = 180 – 3(30) = 180 – 90 = 90°. \ The required ratio = 90 : 120 = 3 : 4. 26 51. 52. (c) Given AB is a circle and BT is a tangent, ÐBAO = 32º Here, Ð OBT = 90º [ QTangent is ^ to the radius at the point of contact] OA = OB [Radii of the same circle] \Ð OBA = ÐOAB = 32º [Angles opposite to equal side are equal] \Ð OBT = Ð OBA + Ð ABT = 90º or 32º + x = 90º . Ð x = 90º – 32º = 58º . Also, Ð AOB = 180º – ÐOAB – ÐOBA = 180º – 32º – 32º = 116º 1 Now Y = AOB 2 [Angle formed at the center of a circle is double the angle formed in the remaining part of the circle] 1 = × 116º = 58º . 2 1 (b) m Ð ACD = M(are CXD) = m Ð DEC 2 \ m Ð DEC = x = 40° 1 \ m Ð ECB = m (are EYC) = m Ð EDC 2 \ m Ð ECB = y = 54º 54 + x + z = 180° (Sum of all the angles of a triangle) 54 + 40 + z = 180° \ z = 86°. A + B + C + D = 360 A + B = 360 – (130 + 70) = 160° A B + = 80° 2 2 In D AOB, A B + + 0 = 180° 2 2 0 = 180° – 80° = 100° 55. 56. 57. (d) (c) (a) M D O A In D AOB, ÐA + ÐB + ÐO = 180° ÐA + Ð B = 180 – 140° = 40° ÐA = ÐB = 20° {AO = BO} ÐPAO = 90° A ÐPAB + ÐBAO = 90° ÐPAB = 90° – 20° = 70° (c) A 58. (b) 59. (b) In D ADC, A + D + C1 = 180°; A + C1 = 180° – 90° = 90° In D BDC, B + D + C2 = 180°; B + C2 = 180° – 90° = 90° A + C1 = B + C 2 C1 – C2 = B – A 6 cm C 6 cm C O 10 = 5 cm 2 (d) A cm 10 In DADO, OD = AM = MB = 54. B 8 cm D Two parallel chords AB & CD & AB = CD = 8 cm Diameter of circle = AD = 10 cm. AB = 4 cm. 2 DAOM is Right angle D, AO2 = AM2 + OM2 52 = 42 + OM2 OM2 = 25 – 16 = 9 Þ OM = 3 cm. Similarly, OM = ON = 3 cm \ Distance between parallel chords = MN = OM + ON = 3 + 3 = 6 cm (AO)2 - AD2 = 100cm 2 - 64cm 2 = 6 cm In DBCO, OC = OB2 - CB2 = 100cm 2 - 36cm 2 = 8 cm distance between chords = OC – OD = 2cm 60. A (c) B A O 130° D 70° 70° C O B D 8 cm radius = AO = OD = B 60° C N \ P C1 C2 B 53. ...(1) B 50° D C 27 AB BD = AC DC According to angle bisector theorem which states that the angle bisector, like segment AO, divides the sides of the triangle proportionally. Therefore, ÐA being the bisector of triangle. In D ABC, ÐA + ÐB + ÐC = 180° ÐA = 180° – 70° = 60° BC2 = 25 + 144 BC2 = 169 Given, ÐBAD = 61. 65. E 63. D B 67. 68. AP ^ PQ . Draw BR ^ AP. Then BRQP is a rctangle. (Tangent ^ radius at point of contact) In D ABR, AB2 = AR2 + BR2 (34)2 = (16)2 + (BR)2 BR2 = 1156 – 256 = 900 BR = 900 = 30 cm (a) In D ABC, BC2 = AB2 + AC2 s(s - a)(s - b)(s - c) Area of Triangle = 24 ´ 12 ´ 8 ´ 4 = 8 × 3 × 4 cm2 12 ´ 16 ´ 20 R= = 10 cm 4 ´ 8 ´ 3´ 4 (c) Area of DABD = 16 cm2 Area of DABC = 2 × Area of DABD [Q In triangle, the midpoint of the opposite side, divides it into two congruent triangles. So their areas are equal and each is half the area of the original triangle] Þ 32 cm2 1 (d) Area of DODE = OK ´ DE 2 1æ 1 ö = ç BC ´ OK ÷ 2è 2 ø A D K 1é 1 æ2 öù = ê BC ´ ç AF - AF ÷ ú 4ë 3 2 è øû 69. B F C 1 1 é1 ù 1 = ´ ê AF ´ BC ú = area of DABC = 1 : 12 4 3 ë2 û 12 (d) Parallelogram Area = l × b Rhombus Area = l × b l ´b 2 Therefore R = P = 2T. (a) Since AB is a diameter. Then ÐAPB = 90° (angle in the semicircle) DBPN ~ DAPB So, BN = BP2 / AB Triangle Area = 70. E O 1 = [BC ´ (AO - AK)] 4 C Let the two circles with centre A, B and radii 25 cm and 9 cm touch each other externally at point C. Then AB = AC + CB = 25 + 9 = 34 cm. Let PQ the direct common tangent. i.e., BQ ^ PQ and 64. abc 4 ´ Area of triangle [where a, b and c are sides of triangle] Circum Radius (R)= C P 9R 16 A Q (b) a+b+c é ù = 24ú êë\ s = 2 û (c) (b) BC 13 = = 6.5 cm 2 2 (b) Putting x = 0 in 4x + 3y = 12 we get y = 4 Putting y = 0 in 4x + 3y = 12 we get x = 3 The triangle so formed is right angle triangle with points (0, 0) (4, 0) (0, 3) Area of Triangle = Let ABC be the triangle and D, E and F are midpoints of BC, CA and AB respectively. Hence, in D ABD, AD is median AB + AC > 2 AD ...(1) Similarly, we get BC + AC > 2 CF ...(2) BC + AB > 2 BE ...(3) On adding the above in equations, we get (AB + AC + BC + AC + BC + AB) > 2 (AD + BE + CF) 2 (AB + AC + BC) > 2 (AD + BE + CF) \ AB + AC + BC > AD + BE + CF Thus, the perimeter of triangle is greater than the sum of the medians. 62. C O So diameter is the hypotenus of triangle = 16 + 9 = 5 unit radius = 2.5 unit 66. B 12 5 Radius of triangle = 60° = 30° 2 F B BC = 169 = 13 cm A (b) A BC2 = (5)2 + (12)2 BN = 6´6 = 3.6cm 10 28 71. (b) In DAOM r2 = AM2 + x2 AM2 = r2 – x2 ...(1) In DAMO' r2 = (r – x)2 + AM2 AM2 = r2 – (r – x)2 ...(2) From eqns. (1) & (2) r2 – x2 = r2 – (r – x)2 Þ 2rx = r2 r O x A A 76. (a) In DOBP. OB = OP (Q radius) \ Ð OBP = Ð OPB = 35º 25º In D AOP OA = OP (Q radius) O \ Ð OAP = Ð OPA = 25º Now, Ð APB = Ð OPA + ÐOPB 35º P B = 25º + 35º = 60º Hence, ÐAOB = 2ÐAPB (Angle be substended by are at centre is twice) = 2 × 60º = 120º r M O' B r 2 From eq. (1) Þx= A 77. (d) 2 3 ærö AM 2 = r 2 - ç ÷ = r 2 4 è2ø AM = 3 r 2 140º Length of chord AB = 2AM = 2 ´ 72. B 3 r = 3r 2 (d) (d) O¢ O Ð BAC = A B Q 78. (c) A B S A 30º O B xº 40º C P T D PQB and D PRA are similar triangle by AAA criteria. AP AR 5 = = \ BP BQ 2 P divides AB externally in the ratio of 5 : 2 P 5 cm 75. p p + Þ p or 180° 2 2 (b) In DAOB AO = BO (radii of circles) \ ÐABO = ÐBAO = 30º In DBOC BO = CO (radii of circles) \ ÐBCO = ÐOBC = 40º ÐABC = ÐABO + ÐOBC ÐABC = 30° + 40° = 70° 2 × ÐABC = ÐAOC Þ x° = 140 R (a) Q 12 cm O p ÐBQP = (Angle in the semicircle is 90°) 2 74. 140 = 35º 4 A p ÐAQP = (Angle in the semicircle is 90°) 2 ÐAQB = ÐAQP + ÐBQP = D ÐACB + ÐACD = 180º (linear pair) \ ÐACB = 180º – 140º = 40º In D ABC Ð BAC + Ð ABC + Ð ACB = 180º Ð BAC + 3 Ð BAC + 40º = 180º 4 ÐBAC = 180º – 40º P 73. C AP is a tangent and OA is a radius. Therefore, OA is ^ at AP. So, In D OAP OP2 = 52 + 122 OP2 = 25 + 144 = 169 C D OP = 13 cm 50º 79. (b) In D ABC, Ð ACB = 90º A \ ÐACB + ÐACD O Þ 90º + 50º = 140º As angle mode by triangle in semicircle is equal to 90º. \ In quad. ABCD ÐBAD + ÐBCD = 180º angle of (opp. pair of quad is equal to 180º) Ð BAD = 180º – 140º = 40º 80. (d) T Q R P B 29 TP = TQ [The length of tangents drawn from an external point to a circle are equal] Similarly, TP = TR Using both equation, we get TQ = TR The relation of TQ and TR is TQ = TR. 81. (b) D A 83. (d) Area of triangle = Inradius × Semi-perimeter = 6 ×16 = 96 sq. cm 84. A (d) O 9 cm F B C 9 cm 4 cm 4 cm O' C E B There are three common tangents AB, CD and EF A 82. (b) DE is parallel to BC So Ð AED = ÐC = 35º 80º Since ÐA = 80º Then Ð ADE = 65º E Ð EDB is supplement to ÐADE. D So, Ð EDB = 180º – Ð ADE = 180º – 65º = 115º 35º C B In figure, AC = AO – CO = 9 cm – 4 cm = 5 cm {CO = BO'} Also, CB = OO¢ = 13 cm In D ABC AB = CB2 - AC 2 (13cm)2 - (5cm)2 = 12 cm =