Class 10 Chapter 4 – Triangles
Exercise 4.1 Page No:
4.3
1.
Fill in the blanks using the correct word given in brackets:
(i)
All circles are ____________ (congruent, similar).
(ii)
All squares are ___________ (similar, congruent).
(iii)
All ____________ triangles are similar (isosceles, equilaterals).
(iv)
Two triangles are similar, if their corresponding angles are ____________
(proportional, equal)
(v)
Two triangles are similar, if their corresponding sides are ____________
(proportional, equal)
(vi)
Two polygons of the same number of sides are similar, if (a) ____________their
corresponding angles are and their corresponding sides are (b)____________
(equal, proportional).
Solutions:
(i) All circles are
similar.
(ii) All squares are
similar.
(iii) All equilateral
triangles are similar.
(iv) Two triangles are
similar, if their corresponding angles are equal.
(v) Two triangles are
similar, if their corresponding sides are proportional.
(vi) Two polygons of
the same number of sides are similar, if (a) equal their corresponding angles
are and their corresponding sides are (b) proportional.
Exercise 4.2 Page No:
4.19
1.
In a Δ ABC, D and E are points on the sides AB and AC respectively
such that DE || BC.
i)
If AD = 6 cm, DB = 9 cm and AE = 8 cm, Find AC.
Solution:
Given: Δ ABC,
DE ∥ BC, AD = 6 cm,
DB = 9 cm and AE = 8 cm.
Required to find AC.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
Let CE = x.
So then,
6/9 = 8/x
6x = 72 cm
x = 72/6 cm
x = 12 cm
∴ AC = AE + CE = 12 + 8
= 20.
ii)
If AD/DB = 3/4 and AC = 15 cm, Find AE.
Solution:
Given: AD/BD =
3/4 and AC = 15 cm [As DE ∥ BC]
Required to find AE.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
Let, AE = x, then CE =
15-x.
⇒ 3/4 = x/ (15–x)
45 – 3x = 4x
-3x – 4x = – 45
7x = 45
x = 45/7
x = 6.43 cm
∴ AE= 6.43cm
iii)
If AD/DB = 2/3 and AC = 18 cm, Find AE.
Solution:
Given: AD/BD =
2/3 and AC = 18 cm
Required to find AE.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
Let, AE = x and CE =
18 – x
⇒ 23 = x/ (18–x)
3x = 36 – 2x
5x = 36 cm
x = 36/5 cm
x = 7.2 cm
∴ AE = 7.2 cm
iv)
If AD = 4 cm, AE = 8 cm, DB = x – 4 cm and EC = 3x – 19, find x.
Solution:
Given: AD = 4 cm, AE =
8 cm, DB = x – 4 and EC = 3x – 19
Required to find x.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
Then, 4/ (x – 4)
= 8/ (3x – 19)
4(3x – 19) = 8(x – 4)
12x – 76 = 8(x – 4)
12x – 8x = – 32 + 76
4x = 44 cm
x = 11 cm
v)
If AD = 8 cm, AB = 12 cm and AE = 12 cm, find CE.
Solution:
Given: AD = 8 cm, AB =
12 cm, and AE = 12 cm.
Required to find CE,
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
8/4 = 12/CE
8 x CE = 4 x 12 cm
CE = (4 x 12)/8 cm
CE = 48/8 cm
∴ CE = 6 cm
vi)
If AD = 4 cm, DB = 4.5 cm and AE = 8 cm, find AC.
Solution:
Given: AD = 4 cm, DB =
4.5 cm, AE = 8 cm
Required to find AC.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
4/4.5 = 8/AC
AC = (4.5 ×
8)/4 cm
∴AC = 9 cm
vii)
If AD = 2 cm, AB = 6 cm and AC = 9 cm, find AE.
Solution:
Given: AD = 2 cm, AB =
6 cm and AC = 9 cm
Required to find AE.
DB = AB – AD = 6 – 2 =
4 cm
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
2/4 = x/ (9–x)
4x = 18 – 2x
6x = 18
x = 3 cm
∴ AE= 3cm
viii)
If AD/BD = 4/5 and EC = 2.5 cm, Find AE.
Solution:
Given: AD/BD =
4/5 and EC = 2.5 cm
Required to find AE.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
Then, 4/5 =
AE/2.5
∴ AE = 4 ×
2.55 = 2 cm
ix)
If AD = x cm, DB = x – 2 cm, AE = x + 2 cm, and EC = x – 1 cm, find the value
of x.
Solution:
Given: AD = x, DB = x
– 2, AE = x + 2 and EC = x – 1
Required to find the
value of x.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
So, x/ (x–2) = (x+2)/
(x–1)
x(x – 1) = (x – 2)(x +
2)
x2 – x – x2 + 4 = 0
x = 4
x)
If AD = 8x – 7 cm, DB = 5x – 3 cm, AE = 4x – 3 cm, and EC = (3x – 1) cm, Find
the value of x.
Solution:
Given: AD = 8x – 7, DB
= 5x – 3, AER = 4x – 3 and EC = 3x -1
Required to find x.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
(8x–7)/ (5x–3) =
(4x–3)/ (3x–1)
(8x – 7)(3x – 1) = (5x
– 3)(4x – 3)
24x2 – 29x + 7 = 20x2 –
27x + 9
4x2 – 2x – 2 = 0
2(2x2 – x – 1) = 0
2x2 – x – 1 = 0
2x2 – 2x + x – 1 = 0
2x(x – 1) + 1(x – 1) =
0
(x – 1)(2x + 1) = 0
⇒ x = 1 or x = -1/2
We know that the side
of triangle can never be negative. Therefore, we take the positive value.
∴ x = 1.
xi)
If AD = 4x – 3, AE = 8x – 7, BD = 3x – 1, and CE = 5x – 3, find the value of x.
Solution:
Given: AD = 4x – 3, BD
= 3x – 1, AE = 8x – 7 and EC = 5x – 3
Required to find x.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
So, (4x–3)/
(3x–1) = (8x–7)/ (5x–3)
(4x – 3)(5x – 3) = (3x
– 1)(8x – 7)
4x(5x – 3) -3(5x – 3)
= 3x(8x – 7) -1(8x – 7)
20x2 – 12x – 15x + 9 = 24x2 – 29x + 7
20x2 -27x + 9 = 242 -29x + 7
⇒ -4x2 + 2x + 2 = 0
4x2 – 2x – 2 = 0
4x2 – 4x + 2x – 2 = 0
4x(x – 1) + 2(x – 1) =
0
(4x + 2)(x – 1) = 0
⇒ x = 1 or x = -2/4
We know that the side
of triangle can never be negative. Therefore, we take the positive value.
∴ x = 1
xii)
If AD = 2.5 cm, BD = 3.0 cm, and AE = 3.75 cm, find the length of AC.
Solution:
Given: AD = 2.5 cm, AE
= 3.75 cm and BD = 3 cm
Required to find AC.
By using Thales
Theorem, [As DE ∥ BC]
AD/BD = AE/CE
2.5/ 3 = 3.75/ CE
2.5 x CE = 3.75 x 3
CE = 3.75×32.5
CE = 11.252.5
CE = 4.5
Now, AC = 3.75 + 4.5
∴ AC = 8.25 cm.
2.
In a Δ ABC, D and E are
points on the sides AB and AC respectively. For each of the following cases
show that DE ∥ BC:
i)
AB = 12 cm, AD = 8 cm, AE = 12 cm, and AC = 18 cm.
Solution:
Required to prove
DE ∥ BC.
We have,
AB = 12 cm, AD = 8 cm,
AE = 12 cm, and AC = 18 cm. (Given)
So,
BD = AB – AD = 12 – 8
= 4 cm
And,
CE = AC – AE = 18 – 12
= 6 cm
It’s seen that,
AD/BD = 8/4 = 1/2
AE/CE = 12/6 = 1/2
Thus,
AD/BD = AE/CE
So, by the converse of
Thale’s Theorem
We have,
DE ∥ BC.
Hence Proved.
ii)
AB = 5.6 cm, AD = 1.4 cm, AC = 7.2 cm, and AE = 1.8 cm.
Solution:
Required to prove
DE ∥ BC.
We have,
AB = 5.6 cm, AD = 1.4
cm, AC = 7.2 cm, and AE = 1.8 cm. (Given)
So,
BD = AB – AD = 5.6 –
1.4 = 4.2 cm
And,
CE = AC – AE = 7.2 –
1.8 = 5.4 cm
It’s seen that,
AD/BD = 1.4/4.2 = 1/3
AE/CE = 1.8/5.4 =1/3
Thus,
AD/BD = AE/CE
So, by the converse of
Thale’s Theorem
We have,
DE ∥ BC.
Hence Proved.
iii)
AB = 10.8 cm, BD = 4.5 cm, AC = 4.8 cm, and AE = 2.8 cm.
Solution:
Required to prove
DE ∥ BC.
We have
AB = 10.8 cm, BD = 4.5
cm, AC = 4.8 cm, and AE = 2.8 cm.
So,
AD = AB – DB = 10.8 –
4.5 = 6.3
And,
CE = AC – AE =
4.8 – 2.8 = 2
It’s seen that,
AD/BD = 6.3/ 4.5 =
2.8/ 2.0 = AE/CE = 7/5
So, by the converse of
Thale’s Theorem
We have,
DE ∥ BC.
Hence Proved.
iv)
AD = 5.7 cm, BD = 9.5 cm, AE = 3.3 cm, and EC = 5.5 cm.
Solution:
Required to prove
DE ∥ BC.
We have
AD = 5.7 cm, BD = 9.5
cm, AE = 3.3 cm, and EC = 5.5 cm
Now,
AD/BD = 5.7/9.5 =3/5
And,
AE/CE = 3.3/5.5 = 3/5
Thus,
AD/BD = AE/CE
So, by the converse of
Thale’s Theorem
We have,
DE ∥ BC.
Hence Proved.
3.
In a Δ ABC, P and Q are
the points on sides AB and AC respectively, such that PQ ∥ BC. If AP = 2.4
cm, AQ = 2 cm, QC = 3 cm and BC = 6 cm. Find AB and PQ.
Solution:
Given: Δ ABC, AP
= 2.4 cm, AQ = 2 cm, QC = 3 cm, and BC = 6 cm. Also, PQ ∥ BC.
Required to find: AB
and PQ.
By using Thales
Theorem, we have [As it’s given that PQ ∥ BC]
AP/PB = AQ/ QC
2.4/PB = 2/3
2 x PB = 2.4 x 3
PB = (2.4 ×
3)/2 cm
⇒ PB = 3.6 cm
Now finding, AB = AP +
PB
AB = 2.4 + 3.6
⇒ AB = 6 cm
Now, considering
Δ APQ and Δ ABC
We have,
∠A = ∠A
∠APQ = ∠ABC (Corresponding angles are equal, PQ||BC
and AB being a transversal)
Thus, Δ APQ and
Δ ABC are similar to each other by AA criteria.
Now, we know that
Corresponding parts of
similar triangles are propositional.
⇒ AP/AB = PQ/ BC
⇒ PQ = (AP/AB) x BC
= (2.4/6) x 6 = 2.4
∴ PQ = 2.4 cm.
4.
In a Δ ABC, D and E are
points on AB and AC respectively, such that DE ∥ BC. If AD = 2.4
cm, AE = 3.2 cm, DE = 2 cm and BC = 5 cm. Find BD and CE.
Solution:
Given: Δ ABC such
that AD = 2.4 cm, AE = 3.2 cm, DE = 2 cm and BE = 5 cm. Also DE ∥ BC.
Required to find: BD
and CE.
As DE ∥ BC, AB is transversal,
∠APQ = ∠ABC (corresponding angles)
As DE ∥ BC, AC is transversal,
∠AED = ∠ACB (corresponding angles)
In Δ ADE
and Δ ABC,
∠ADE=∠ABC
∠AED=∠ACB
∴ Δ ADE
= Δ ABC (AA similarity criteria)
Now, we know that
Corresponding parts of
similar triangles are propositional.
⇒ AD/AB = AE/AC = DE/BC
AD/AB = DE/BC
2.4/ (2.4 + DB) = 2/5
[Since, AB = AD + DB]
2.4 + DB = 6
DB = 6 – 2.4
DB = 3.6 cm
In the same way,
⇒ AE/AC = DE/BC
3.2/ (3.2 + EC) = 2/5
[Since AC = AE + EC]
3.2 + EC = 8
EC = 8 – 3.2
EC = 4.8 cm
∴ BD = 3.6 cm and CE =
4.8 cm.
Exercise 4.3 Page No:
4.31
1.
In a Δ ABC, AD is the bisector of ∠ A, meeting side BC at D.
(i)
if BD = 2.5 cm, AB = 5 cm, and AC = 4.2 cm, find DC.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And BD = 2.5 cm, AB = 5 cm, and AC = 4.2 cm.
Required to find: DC
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
5/ 4.2 = 2.5/ DC
5DC = 2.5 x 4.2
∴ DC = 2.1 cm
(ii)
if BD = 2 cm, AB = 5 cm, and DC = 3 cm, find AC.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And BD = 2 cm, AB = 5 cm, and DC = 3 cm.
Required to find: AC
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
5/ AC = 2/ 3
2AC = 5 x 3
∴ AC = 7.5 cm
(iii)
if AB = 3.5 cm, AC = 4.2 cm, and DC = 2.8 cm, find BD.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And AB = 3.5 cm, AC = 4.2 cm, and DC = 2.8 cm.
Required to find: BD
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
3.5/ 4.2 = BD/ 2.8
4.2 x BD = 3.5 x 2.8
BD = 7/3
∴ BD = 2.3 cm
(iv)
if AB = 10 cm, AC = 14 cm, and BC = 6 cm, find BD and DC.
Solution:
Given:
In Δ ABC, AD is the bisector of ∠A meeting side BC at D. And, AB = 10 cm, AC =
14 cm, and BC = 6 cm
Required to find: BD
and DC.
Since, AD is bisector
of ∠A
We have,
AB/AC = BD/DC (AD is
bisector of ∠ A and side BC)
Then, 10/ 14 = x/ (6 –
x)
14x = 60 – 6x
20x = 60
x = 60/20
∴ BD = 3 cm and DC = (6
– 3) = 3 cm.
(v)
if AC = 4.2 cm, DC = 6 cm, and BC = 10 cm, find AB.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And AC = 4.2 cm, DC = 6 cm, and BC = 10 cm.
Required to find: AB
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
AB/ 4.2 = BD/ 6
We know that,
BD = BC – DC = 10 – 6
= 4 cm
⇒ AB/ 4.2 = 4/ 6
AB = (2 x 4.2)/ 3
∴ AB = 2.8 cm
(vi)
if AB = 5.6 cm, AC = 6 cm, and DC = 3 cm, find BC.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And AB = 5.6 cm, AC = 6 cm, and DC = 3 cm.
Required to find: BC
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
5.6/ 6 = BD/ 3
BD = 5.6/ 2 = 2.8cm
And, we know that,
BD = BC – DC
2.8 = BC – 3
∴ BC = 5.8 cm
(vii)
if AB = 5.6 cm, BC = 6 cm, and BD = 3.2 cm, find AC.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. And AB = 5.6 cm, BC = 6 cm, and BD = 3.2 cm.
Required to find: AC
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
5.6/ AC = 3.2/ DC
And, we know that
BD = BC – DC
3.2 = 6 – DC
∴ DC = 2.8 cm
⇒ 5.6/ AC = 3.2/ 2.8
AC = (5.6 x 2.8)/ 3.2
∴ AC = 4.9 cm
(viii)
if AB = 10 cm, AC = 6 cm, and BC = 12 cm, find BD and DC.
Solution:
Given: Δ ABC and
AD bisects ∠A, meeting side BC at
D. AB = 10 cm, AC = 6 cm, and BC = 12 cm.
Required to find: DC
Since, AD is the
bisector of ∠ A meeting side
BC at D in Δ ABC
⇒ AB/ AC = BD/ DC
10/ 6 = BD/ DC ……..
(i)
And, we know that
BD = BC – DC = 12 – DC
Let BD = x,
⇒ DC = 12 – x
Thus (i) becomes,
10/ 6 = x/ (12 – x)
5(12 – x) = 3x
60 -5x = 3x
∴ x = 60/8 = 7.5
Hence, DC = 12 – 7.5 =
4.5cm and BD = 7.5 cm
2.
In figure 4.57, AE is the bisector of the exterior ∠CAD meeting BC produced in E. If AB = 10 cm, AC = 6 cm, and
BC = 12 cm, find CE.
Solution:
Given: AE is the
bisector of the exterior ∠CAD and AB = 10 cm, AC = 6 cm, and BC = 12 cm.
Required to find: CE
Since AE is the
bisector of the exterior ∠CAD.
BE / CE = AB / AC
Let’s take CE as x.
So, we have
BE/ CE = AB/ AC
(12+x)/ x = 10/ 6
6x + 72 = 10x
10x – 6x = 72
4x = 72
∴ x = 18
Therefore, CE = 18 cm.
3.
In fig. 4.58, Δ ABC is a triangle such that AB/AC =
BD/DC, ∠B=70o, ∠C = 50o, find ∠BAD.
Solution:
Given: Δ ABC such that AB/AC = BD/DC, ∠B = 70o and ∠C = 50o
Required to
find: ∠BAD
We know that,
In ΔABC,
∠A = 180 – (70 +
50) [Angle sum property of a triangle]
= 180 – 120
= 60o
Since,
AB/AC = BD/DC,
AD is the angle
bisector of angle ∠A.
Thus,
∠BAD = ∠A/2 = 60/2 = 30o
Exercise 4.4 Page No: 4.37
1.
(i) In fig. 4.70, if AB∥CD, find the value of x.
Solution:
It’s given
that AB∥CD.
Required to find the
value of x.
We know that,
Diagonals of a
parallelogram bisect each other.
So,
AO/ CO = BO/ DO
⇒ 4/ (4x – 2) = (x +1)/
(2x + 4)
4(2x + 4) = (4x – 2)(x
+1)
8x + 16 = x(4x – 2) +
1(4x – 2)
8x + 16 = 4x2 – 2x + 4x – 2
-4x2 + 8x + 16 + 2 – 2x = 0
-4x2 + 6x + 8 = 0
4x2 – 6x – 18 = 0
4x2 – 12x + 6x – 18 = 0
4x(x – 3) + 6(x – 3) =
0
(4x + 6) (x – 3) = 0
∴ x = – 6/4 or x = 3
(ii)
In fig. 4.71, if AB∥CD, find the value of x.
Solution:
It’s given
that AB∥CD.
Required to find the
value of x.
We know that,
Diagonals of a
parallelogram bisect each other
So,
AO/ CO = BO/ DO
⇒ (6x – 5)/ (2x + 1) =
(5x – 3)/ (3x – 1)
(6x – 5)(3x – 1) = (2x
+ 1)(5x – 3)
3x(6x – 5) – 1(6x – 5)
= 2x(5x – 3) + 1(5x – 3)
18x2 – 10x2 – 21x + 5 + x +3 = 0
8x2 – 16x – 4x + 8 = 0
8x(x – 2) – 4(x – 2) =
0
(8x – 4)(x – 2) = 0
x = 4/8 =
1/2 or x = -2
∴ x= 1/2
(iii)
In fig. 4.72, if AB ∥ CD. If OA = 3x – 19, OB = x – 4, OC = x- 3 and
OD = 4, find x.
Solution:
It’s given
that AB∥CD.
Required to find the
value of x.
We know that,
Diagonals of a
parallelogram bisect each other
So,
AO/ CO = BO/ DO
(3x – 19)/ (x – 3) =
(x–4)/ 4
4(3x – 19) = (x – 3)
(x – 4)
12x – 76 = x(x – 4)
-3(x – 4)
12x – 76 = x2 – 4x – 3x + 12
-x2 + 7x – 12 + 12x -76 = 0
-x2 + 19x – 88 = 0
x2 – 19x + 88 = 0
x2 – 11x – 8x + 88 = 0
x(x – 11) – 8(x – 11)
= 0
∴ x = 11 or x = 8
Exercise 4.5 Page No:
4.37
1.
In fig. 4.136, ΔACB ∼ ΔAPQ. If BC = 8 cm,
PQ = 4 cm, BA = 6.5 cm and AP = 2.8 cm, find CA and AQ.
Solution:
Given,
ΔACB ∼ ΔAPQ
BC = 8 cm, PQ = 4 cm,
BA = 6.5 cm and AP = 2.8 cm
Required to find: CA
and AQ
We know that,
ΔACB ∼ ΔAPQ [given]
BA/ AQ = CA/ AP = BC/
PQ [Corresponding Parts of Similar Triangles]
So,
6.5/ AQ = 8/ 4
AQ = (6.5 x 4)/ 8
AQ = 3.25 cm
Similarly, as
CA/ AP = BC/ PQ
CA/ 2.8 = 8/ 4
CA = 2.8 x 2
CA = 5.6 cm
Hence, CA = 5.6 cm and
AQ = 3.25 cm.
2.
In fig.4.137, AB ∥ QR, find the length of PB.
Solution:
Given,
ΔPQR, AB ∥ QR and
AB = 3 cm, QR = 9 cm
and PR = 6 cm
Required to find: PB
In ΔPAB and ΔPQR
We have,
∠P = ∠P [Common]
∠PAB = ∠PQR [Corresponding angles as AB||QR with PQ as
the transversal]
⇒ ΔPAB ∼ ΔPQR [By AA
similarity criteria]
Hence,
AB/ QR = PB/ PR
[Corresponding Parts of Similar Triangles are propositional]
⇒ 3/ 9 = PB/6
PB = 6/3
Therefore, PB = 2 cm
3.
In fig. 4.138 given, XY∥BC. Find the length of
XY.
Solution:
Given,
XY∥BC
AX = 1 cm, XB = 3 cm
and BC = 6 cm
Required to find: XY
In ΔAXY and ΔABC
We have,
∠A = ∠A [Common]
∠AXY = ∠ABC [Corresponding angles as AB||QR with PQ as
the transversal]
⇒ ΔAXY ∼ ΔABC [By AA
similarity criteria]
Hence,
XY/ BC = AX/ AB
[Corresponding Parts of Similar Triangles are propositional]
We know that,
(AB = AX + XB = 1
+ 3 = 4)
XY/6 = 1/4
XY/1 = 6/4
Therefore, XY = 1.5 cm
4.
In a right-angled triangle with sides a and b and hypotenuse c, the altitude
drawn on the hypotenuse is x. Prove that ab = cx.
Solution:
Consider ΔABC to
be a right angle triangle having sides a and b and hypotenuse c. Let BD be the
altitude drawn on the hypotenuse AC.
Required to prove: ab
= cx
We know that,
In ΔACB and ΔCDB
∠B = ∠B [Common]
∠ACB = ∠CDB = 90o
⇒ ΔACB ∼ ΔCDB [By AA
similarity criteria]
Hence,
AB/ BD = AC/ BC
[Corresponding Parts of Similar Triangles are propositional]
a/ x = c/ b
⇒ xc = ab
Therefore, ab = cx
5.
In fig. 4.139, ∠ABC = 90 and BD⊥AC. If BD = 8 cm, and AD = 4 cm, find CD.
Solution:
Given,
∠ABC = 90o and BD⊥AC
BD = 8 cm
AD = 4 cm
Required to find: CD.
We know that,
ABC is a right angled
triangle and BD⊥AC.
Then, ΔDBA∼ΔDCB [By AA similarity]
BD/ CD = AD/ BD
BD2 = AD x DC
(8)2 = 4 x DC
DC = 64/4 = 16 cm
Therefore, CD = 16 cm
6.
In fig.4.140, ∠ABC = 90o and BD ⊥ AC. If AC = 5.7 cm, BD = 3.8 cm and CD = 5.4 cm, Find BC.
Solution:
Given:
BD ⊥ AC
AC = 5.7 cm, BD = 3.8
cm and CD = 5.4 cm
∠ABC = 90o
Required to find: BC
We know that,
ΔABC ∼ ΔBDC [By AA similarity]
∠BCA = ∠DCA = 90o
∠AXY = ∠ABC [Common]
Thus,
AB/ BD = BC/ CD
[Corresponding Parts of Similar Triangles are propositional]
5.7/ 3.8 = BC/ 5.4
BC = (5.7 x 5.4)/ 3.8
= 8.1
Therefore, BC = 8.1 cm
7.
In the fig.4.141 given, DE ∥ BC such that AE =
(1/4)AC. If AB = 6 cm, find AD.
Solution:
Given:
DE∥BC
AE = (1/4)AC
AB = 6 cm.
Required to find: AD.
In ΔADE and ΔABC
We have,
∠A = ∠A [Common]
∠ADE = ∠ABC [Corresponding angles as AB||QR with PQ as
the transversal]
⇒ ΔADE ∼ ΔABC [By AA
similarity criteria]
Then,
AD/AB = AE/ AC
[Corresponding Parts of Similar Triangles are propositional]
AD/6 = 1/4
4 x AD = 6
AD = 6/4
Therefore, AD = 1.5 cm
8.
In the fig.4.142 given, if AB ⊥ BC, DC ⊥ BC, and DE ⊥ AC, prove
that ΔCED ∼ ΔABC
Solution:
Given:
AB ⊥ BC,
DC ⊥ BC,
DE ⊥ AC
Required to
prove: ΔCED∼ΔABC
We know that,
From ΔABC
and ΔCED
∠B = ∠E = 90o [given]
∠BAC = ∠ECD [alternate angles
since, AB || CD with BC as transversal]
Therefore, ΔCED∼ΔABC [AA similarity]
9.
Diagonals AC and BD of a trapezium ABCD with AB ∥ DC intersect each other at the point O.
Using similarity criterion for two triangles, show that OA/ OC = OB/ OD
Solution:
Given: OC is the point
of intersection of AC and BD in the trapezium ABCD, with AB ∥ DC.
Required to
prove: OA/ OC = OB/ OD
We know that,
In ΔAOB
and ΔCOD
∠AOB = ∠COD [Vertically Opposite Angles]
∠OAB = ∠OCD [Alternate angles]
Then, ΔAOB ∼ ΔCOD
Therefore, OA/ OC
= OB/ OD [Corresponding sides are proportional]
10.
If Δ ABC and Δ AMP are two right triangles, right angled at B and M,
respectively such that ∠MAP = ∠BAC. Prove that
(i) ΔABC
∼ ΔAMP
(ii) CA/
PA = BC/ MP
Solution:
(i) Given:
Δ ABC
and Δ AMP are the two right triangles.
We know that,
∠AMP = ∠B = 90o
∠MAP = ∠BAC [Vertically Opposite Angles]
⇒ ΔABC∼ΔAMP [AA similarity]
(ii) Since, ΔABC∼ΔAMP
CA/ PA = BC/ MP
[Corresponding sides are proportional]
Hence proved.
11.
A vertical stick 10 cm long casts a shadow 8 cm long. At the same time, a tower
casts a shadow 30 m long. Determine the height of the tower.
Solution:
Given:
Length of stick = 10cm
Length of the stick’s
shadow = 8cm
Length of the tower’s
shadow = 30m = 3000cm
Required to find: the
height of the tower = PQ.
In ΔABC ∼ ΔPQR
∠ABC = ∠PQR = 90o
∠ACB = ∠PRQ [Angular Elevation of Sun is same for a
particular instant of time]
⇒ ΔABC ∼ ΔPQR [By AA similarity]
So, we have
AB/BC = PQ/QR
[Corresponding sides are proportional]
10/8 = PQ/ 3000
PQ = (3000×10)/ 8
PQ = 30000/8
PQ = 3750100
Therefore, PQ = 37.5 m
12.
In fig.4.143, ∠A = ∠CED, prove that ΔCAB ∼ ΔCED. Also find the
value of x.
Solution:
Given:
∠A = ∠CED
Required to prove:
ΔCAB ∼ ΔCED
In ΔCAB ∼ ΔCED
∠C = ∠C [Common]
∠A = ∠CED [Given]
⇒ ΔCAB ∼ ΔCED [By AA similarity]
Hence, we have
CA/ CE = AB/ ED
[Corresponding sides are proportional]
15/10 = 9/x
x = (9 x 10)/ 15
Therefore, x = 6 cm
Exercise 4.6 Page No:
4.94
1.
Triangles ABC and DEF are similar.
(i)
If area of (ΔABC) = 16 cm2, area (ΔDEF) = 25 cm2 and BC = 2.3 cm, find
EF.
(ii)
If area (ΔABC) = 9 cm2, area (ΔDEF) = 64 cm2 and DE = 5.1 cm, find
AB.
(iii)
If AC = 19 cm and DF = 8 cm, find the ratio of the area of two triangles.
(iv)
If area of (ΔABC) = 36 cm2, area (ΔDEF) = 64 cm2 and DE = 6.2 cm, find
AB.
(v)
If AB = 1.2 cm and DE = 1.4 cm, find the ratio of the area of two triangles.
Solutions:
As we know that, the
ratio of areas of two similar triangles is equal to the ratio of squares of
their corresponding sides, we get
2.
In the fig 4.178, ΔACB ∼ ΔAPQ. If BC = 10 cm,
PQ = 5 cm, BA = 6.5 cm, AP = 2.8 cm, find CA and AQ. Also, find the area
(ΔACB): area (ΔAPQ).
Solution:
Given:
ΔACB is similar
to ΔAPQ
BC = 10 cm
PQ = 5 cm
BA = 6.5 cm
AP = 2.8 cm
Required to Find: CA,
AQ and that the area (ΔACB): area (ΔAPQ).
Since, ΔACB ∼ ΔAPQ
We know that,
AB/ AQ = BC/ PQ = AC/
AP [Corresponding Parts of Similar Triangles]
AB/ AQ = BC/ PQ
6.5/ AQ = 10/5
⇒ AQ = 3.25 cm
Similarly,
BC/ PQ = CA/ AP
CA/ 2.8 = 10/5
⇒ CA = 5.6 cm
Next,
Since the ratio of
areas of two similar triangles is equal to the ratio of squares of their
corresponding sides, we have,
ar(ΔACQ): ar(ΔAPQ) =
(BC/ PQ)2
= (10/5)2
= (2/1)2
= 4/1
Therefore, the ratio
is 4:1.
3.
The areas of two similar triangles are 81 cm² and 49 cm² respectively. Find the
ration of their corresponding heights. What is the ratio of their corresponding
medians?
Solution:
Given: The areas of
two similar triangles are 81cm2 and 49cm2.
Required to find: The
ratio of their corresponding heights and the ratio of their corresponding
medians.
Let’s consider the two similar triangles as ΔABC and ΔPQR, AD
and PS be the altitudes of ΔABC and ΔPQR respectively.
So,
By area of similar
triangle theorem, we have
ar(ΔABC)/ ar(ΔPQR) =
AB2/ PQ2
⇒ 81/ 49 = AB2/ PQ2
⇒ 9/ 7 = AB/ PQ
In ΔABD and ΔPQS
∠B = ∠Q [Since ΔABC ∼ ΔPQR]
∠ABD = ∠PSQ = 90o
⇒ ΔABD ∼ ΔPQS [By AA similarity]
Hence, as the
corresponding parts of similar triangles are proportional, we have
AB/ PQ = AD/ PS
Therefore,
AD/ PS = 9/7 (Ratio of
altitudes)
Similarly,
The ratio of two
similar triangles is equal to the ratio of the squares of their corresponding
medians also.
Thus, ratio of
altitudes = Ratio of medians = 9/7
4.
The areas of two similar triangles are 169 cm2and 121 cm2 respectively. If the
longest side of the larger triangle is 26 cm, find the longest side of the
smaller triangle.
Solution:
Given:
The area of two
similar triangles is 169cm2 and 121cm2.
The longest side of
the larger triangle is 26cm.
Required to find: the
longest side of the smaller triangle
Let the longer side of
the smaller triangle = x
We know that, the
ratio of areas of two similar triangles is equal to the ratio of squares of
their corresponding sides, we have
ar(larger triangle)/
ar(smaller triangle) = (side of the larger triangle/ side of the smaller
triangle)2
= 169/ 121
Taking square roots of
LHS and RHS, we get
= 13/ 11
Since, sides of
similar triangles are propositional, we can say
3/ 11 = (longer side
of the larger triangle)/ (longer side of the smaller triangle)
⇒ 13/ 11 = 26/ x
x = 22
Therefore, the longest
side of the smaller triangle is 22 cm.
5.
The area of two similar triangles are 25 cm2 and 36cm2 respectively. If
the altitude of the first triangle is 2.4 cm, find the corresponding altitude
of the other.
Solution:
Given: The area of two
similar triangles are 25 cm2 and 36cm2 respectively, the altitude of the first triangle is 2.4 cm
Required to find: the
altitude of the second triangle
We know that the ratio
of areas of two similar triangles is equal to the ratio of squares of their
corresponding altitudes, we have
⇒
ar(triangle1)/ar(triangle2) = (altitude1/ altitude2)2
⇒ 25/ 36 = (2.4)2/ (altitude2)2
Taking square roots of
LHS and RHS, we get
5/ 6 = 2.4/ altitude2
⇒ altitude2 = (2.4 x
6)/5 = 2.88cm
Therefore, the
altitude of the second triangle is 2.88cm.
6.
The corresponding altitudes of two similar triangles are 6 cm and 9 cm
respectively. Find the ratio of their areas.
Solution:
Given:
The corresponding
altitudes of two similar triangles are 6 cm and 9 cm.
Required to find:
Ratio of areas of the two similar triangles
We know that the ratio
of areas of two similar triangles is equal to the ratio of squares of their
corresponding altitudes, we have
ar(triangle1)/ar(triangle2)
= (altitude1/ altitude2)2 = (6/9)2
= 36/ 81
= 4/9
Therefore, the ratio
of the areas of two triangles = 4: 9.
7. ABC is a triangle in which ∠ A = 90°, AN ⊥ BC, BC = 12 cm and AC
= 5 cm. Find the ratio of the areas of ΔANC and ΔABC.
Solution:
Given:
Given,
ΔABC, ∠A = 90∘, AN ⊥ BC
BC= 12 cm
AC = 5 cm.
Required to find:
ar(ΔANC)/ ar(ΔABC).
We have,
In ΔANC and ΔABC,
∠ACN = ∠ACB [Common]
∠A = ∠ANC [each 90∘]
⇒ ΔANC ∼ ΔABC [AA similarity]
Since the ratio of
areas of two similar triangles is equal to the ratio of squares of their
corresponding sides, we get have
ar(ΔANC)/ ar(ΔABC) =
(AC/ BC)2 = (5/12)2 = 25/ 144
Therefore, ar(ΔANC)/
ar(ΔABC) = 25:144
8.
In Fig 4.179, DE || BC
(i)
If DE = 4m, BC = 6 cm and Area (ΔADE) = 16cm2, find the area
of ΔABC.
(ii)
If DE = 4cm, BC = 8 cm and Area (ΔADE) = 25cm2, find the area
of ΔABC.
(iii)
If DE: BC = 3: 5. Calculate the ratio of the areas of ΔADE and the
trapezium BCED.
Solution:
Given,
DE ∥ BC.
In ΔADE and ΔABC
We know that,
∠ADE = ∠B [Corresponding angles]
∠DAE = ∠BAC [Common]
Hence, ΔADE ~
ΔABC (AA Similarity)
(i) Since the
ratio of areas of two similar triangles is equal to the ratio of squares of
their corresponding sides, we have,
Ar(ΔADE)/ Ar(ΔABC) =
DE2/ BC2
16/ Ar(ΔABC) = 42/ 62
⇒ Ar(ΔABC) = (62 × 16)/ 42
⇒ Ar(ΔABC) = 36 cm2
(ii) Since the
ratio of areas of two similar triangles is equal to the ratio of squares of
their corresponding sides, we have,
Ar(ΔADE)/ Ar(ΔABC) =
DE2/ BC2
25/ Ar(ΔABC) = 42/ 82
⇒ Ar(ΔABC) = (82 × 25)/ 42
⇒ Ar(ΔABC) = 100
cm2
(iii) According to the
question,
Ar(ΔADE)/ Ar(ΔABC) =
DE2/ BC2
Ar(ΔADE)/ Ar(ΔABC) = 32/ 52
Ar(ΔADE)/ Ar(ΔABC) =
9/25
Assume that the area
of ΔADE = 9x sq units
And, area
of ΔABC = 25x sq units
So,
Area of trapezium BCED
= Area of ΔABC – Area of ΔADE
= 25x – 9x
= 16x
Now, Ar(ΔADE)/
Ar(trap BCED) = 9x/ 16x
Ar(ΔADE)/ Ar(trapBCED)
= 9/16
9.
In ΔABC, D and E are the mid- points of AB and AC respectively. Find the
ratio of the areas ΔADE and ΔABC.
Solution:
Given:
In ΔABC, D and E
are the midpoints of AB and AC respectively.
Required to find:
Ratio of the areas of ΔADE and ΔABC
Since, D and E are the
midpoints of AB and AC respectively.
We can say,
DE || BC (By converse
of mid-point theorem)
Also, DE = (1/2)
BC
In ΔADE and ΔABC,
∠ADE = ∠B (Corresponding angles)
∠DAE = ∠BAC (common)
Thus, ΔADE ~
ΔABC (AA Similarity)
Now, we know that
The ratio of areas of
two similar triangles is equal to the ratio of square of their corresponding
sides, so
Ar(ΔADE)/ Ar(ΔABC) =
AD2/ AB2
Ar(ΔADE)/ Ar(ΔABC) = 12/ 22
Ar(ΔADE)/ Ar(ΔABC) =
1/4
Therefore, the ratio
of the areas ΔADE and ΔABC is 1:4
10.
The areas of two similar triangles are 100 cm2 and 49 cm2 respectively. If
the altitude of the bigger triangles is 5 cm, find the corresponding altitude
of the other.
Solution:
Given: The area of the
two similar triangles is 100cm2 and 49cm2. And the altitude of the bigger triangle is 5cm.
Required to find: The
corresponding altitude of the other triangle
We know that,
The ratio of the areas
of the two similar triangles is equal to the ratio of squares of their
corresponding altitudes.
ar(bigger triangle)/
ar(smaller triangle) = (altitude of the bigger triangle/ altitude of the
smaller triangle)2
(100/ 49) = (5/
altitude of the smaller triangle)2
Taking square root on
LHS and RHS, we get
(10/ 7) = (5/ altitude
of the smaller triangle) = 7/2
Therefore, altitude of
the smaller triangle = 3.5cm
11.
The areas of two similar triangles are 121 cm2 and 64 cm2 respectively. If
the median of the first triangle is 12.1 cm, find the corresponding median of
the other.
Solution:
Given: the area of the
two triangles is 121cm2 and 64cm2 respectively and the median of the first triangle is 12.1cm
Required to find: the
corresponding median of the other triangle
We know that,
The ratio of the areas
of the two similar triangles are equal to the ratio of the squares of their
medians.
ar(triangle1)/
ar(triangle2) = (median of triangle 1/median of triangle 2)2
121/ 64 = (12.1/
median of triangle 2)2
Taking the square
roots on both LHS and RHS, we have
11/8 = (12.1/ median
of triangle 2) = (12.1 x 8)/ 11
Therefore, Median of
the other triangle = 8.8cm
Exercise 4.7 Page No:
4.119
1.
If the sides of a triangle are 3 cm, 4 cm, and 6 cm long, determine whether the
triangle is a right-angled triangle.
Solution:
We have,
Sides of triangle as
AB = 3 cm
BC = 4 cm
AC = 6 cm
On finding their
squares, we get
AB2 = 32 = 9
BC2 = 42 = 16
AC2 = 62 = 36
Since, AB2 + BC2 ≠ AC2
So, by converse of
Pythagoras theorem the given sides cannot be the sides of a right triangle.
2.
The sides of certain triangles are given below. Determine which of them are
right triangles.
(i)
a = 7 cm, b = 24 cm and c = 25 cm
(ii)
a = 9 cm, b = 16 cm and c = 18 cm
(iii)
a = 1.6 cm, b = 3.8 cm and c = 4 cm
(iv)
a = 8 cm, b = 10 cm and c = 6 cm
Solutions:
(i) Given,
a = 7 cm, b = 24 cm
and c = 25 cm
∴ a2 = 49, b2 = 576 and c2 = 625
Since, a2 + b2 = 49 + 576 = 625 = c2
Then, by converse of
Pythagoras theorem
The given sides are of
a right triangle.
(ii) Given,
a = 9 cm, b = 16 cm
and c = 18 cm
∴ a2 = 81, b2 = 256 and c2 = 324
Since, a2 + b2 = 81 + 256 = 337 ≠ c2
Then, by converse of
Pythagoras theorem
The given sides cannot
be of a right triangle.
(iii) Given,
a = 1.6 cm, b = 3.8 cm
and C = 4 cm
∴ a2 = 2.56, b2 = 14.44 and c2 = 16
Since, a2 + b2 = 2.56 + 14.44 = 17 ≠ c2
Then, by converse of
Pythagoras theorem
The given sides cannot
be of a right triangle.
(iv) Given,
a = 8 cm, b = 10 cm
and C = 6 cm
∴ a2 = 64, b2 = 100 and c2 = 36
Since, a2 + c2 = 64 + 36 = 100 = b2
Then, by converse of
Pythagoras theorem
The given sides are of
a right triangle
3.
A man goes 15 metres due west and then 8 metres due north. How far is he from
the starting point?
Solution:
Let the starting point
of the man be O and final point be A.
In ∆ABO,
by Pythagoras theorem
AO2 = AB2 + BO2
⇒ AO2 = 82 + 152
⇒ AO2 = 64 + 225 = 289
⇒ AO =
√289 = 17m
∴ the man is 17m
far from the starting point.
4.
A ladder 17 m long reaches a window of a building 15 m above the ground. Find
the distance of the foot of the ladder from the building.
Solution:
In ∆ABC, by Pythagoras
theorem
AB2 + BC2 = AC2
⇒ 152 + BC2 = 172
225 + BC2 = 172
BC2 = 289 – 225
BC2 = 64
∴ BC = 8 m
Therefore, the
distance of the foot of the ladder from building = 8 m
5.
Two poles of heights 6 m and 11 m stand on a plane ground. If the distance
between their feet is 12 m, find the distance between their tops.
Solution:
Let CD and AB be the
poles of height 11m and 6m.
Then, its seen that CP
= 11 – 6 = 5m.
From the figure, AP
should be 12m (given)
In triangle APC, by
applying Pythagoras theorem, we have
AP2 + PC2 = AC2
122 + 52 = AC2
AC2 = 144 + 25 = 169
∴ AC = 13 (by taking
sq. root on both sides)
Thus, the distance
between their tops = 13 m.
6.
In an isosceles triangle ABC, AB = AC = 25 cm, BC = 14 cm. Calculate the
altitude from A on BC.
Solution:
Given,
∆ABC, AB = AC = 25 cm
and BC = 14.
In ∆ABD and ∆ACD, we
see that
∠ADB = ∠ADC
[Each = 90°]
AB = AC
[Given]
AD = AD
[Common]
Then, ∆ABD ≅ ∆ACD [By RHS
condition]
Thus, BD = CD = 7 cm
[By
corresponding parts of congruent triangles]
Finally,
In ∆ADB, by Pythagoras
theorem
AD2 + BD2 = AB2
⇒ AD2 + 72 = 252
AD2 = 625 – 49 = 576
∴ AD = √576 = 24
cm
7.
The foot of a ladder is 6 m away from a wall and its top reaches a window 8 m
above the ground. If the ladder is shifted in such a way that its foot is 8 m
away from the wall, to what height does its tip reach?
Solution:
Let’s assume the
length of ladder to be, AD = BE = x m
So, in ∆ACD, by
Pythagoras theorem
We have,
AD2 = AC2 + CD2
⇒ x2 = 82 + 62 … (i)
Also, in ∆BCE, by
Pythagoras theorem
BE2 = BC2 + CE2
⇒ x2 = BC2 + 82 … (ii)
Compare (i) and (ii)
BC2 + 82 = 82 + 62
⇒ BC2 + 62
⇒ BC = 6 m
Therefore, the tip of
the ladder reaches to a height od 6m.
8.
Two poles of height 9 in and 14 m stand on a plane ground. If the distance
between their feet is 12 m, find the distance between their tops.
Solution:
Comparing with the
figure, it’s given that
AC = 14 m, DC = 12m
and ED = BC = 9 m
Construction: Draw EB ⊥ AC
Now,
It’s seen that AB = AC
– BC = (14 – 9) = 5 m
And, EB = DC = 12m
[distance between their feet]
Thus,
In ∆ABE, by Pythagoras
theorem, we have
AE2 = AB2 + BE2
AE2 = 52 + 122
AE2 = 25 + 144 = 169
⇒ AE = √169 = 13 m
Therefore, the
distance between their tops = 13 m
9.
Using Pythagoras theorem determine the length of AD in terms of b and c shown
in Fig. 4.219
Solution:
We have,
In ∆BAC, by Pythagoras
theorem, we have
BC2 = AB2 + AC2
⇒ BC2 = c2 + b2
⇒ BC = √(c2 + b2)
In ∆ABD and ∆CBA
∠B = ∠B
[Common]
∠ADB = ∠BAC
[Each 90°]
Then, ∆ABD ͏~ ∆CBA
[By AA similarity]
Thus,
AB/ CB = AD/ CA
[Corresponding parts of similar triangles are proportional]
c/ √(c2 + b2) = AD/ b
∴ AD = bc/ √(c2 + b2)
10.
A triangle has sides 5 cm, 12 cm and 13 cm. Find the length to one decimal
place, of the perpendicular from the opposite vertex to the side whose length
is 13 cm.
Solution:
From the fig. AB =
5cm, BC = 12 cm and AC = 13 cm.
Then, AC2 = AB2 + BC2.
⇒ (13)2 = (5)2 + (12)2 = 25 + 144 = 169 = 132
This proves that ∆ABC
is a right triangle, right angled at B.
Let BD be the length
of perpendicular from B on AC.
So, area of ∆ABC = (BC
x BA)/ 2 [Taking BC as the altitude]
= (12 x 5)/ 2
= 30 cm2
Also, area of ∆ABC =
(AC x BD)/ 2 [Taking BD as the altitude]
= (13 x BD)/ 2
⇒ (13 x BD)/ 2 = 30
BD = 60/13 = 4.6 (to
one decimal place)
11.
ABCD is a square. F is the mid-point of AB. BE is one third of BC. If the area
of ∆ FBE = 108cm2, find the length of AC.
Solution:
Given,
ABCD is a square. And,
F is the mid-point of AB.
BE is one third of BC.
Area of ∆ FBE = 108cm2
Required to find:
length of AC
Let’s assume the sides
of the square to be x.
⇒ AB = BC = CD = DA = x
cm
And, AF = FB = x/2 cm
So, BE = x/3 cm
Now, the area of ∆ FBE
= 1/2 x BE x FB
⇒ 108 = (1/2) x (x/3) x
(x/2)
⇒ x2 = 108 x 2 x 3 x 2 = 1296
⇒ x = √(1296) [taking
square roots of both the sides]
∴ x = 36cm
Further in ∆ ABC, by
Pythagoras theorem, we have
AC2 = AB2 + BC2
⇒ AC2 = x2 + x2 =
2x2
⇒ AC2 = 2 x (36)2
⇒ AC = 36√2 = 36 x
1.414 = 50.904 cm
Therefore, the length
of AC is 50.904 cm.
12.
In an isosceles triangle ABC, if AB = AC = 13cm and the altitude from A on BC
is 5cm, find BC.
Solution:
Given,
An isosceles triangle
ABC, AB = AC = 13cm, AD = 5cm
Required to find: BC
In ∆ ADB, by using
Pythagoras theorem, we have
AD2 + BD2 = 132
52 + BD2 = 169
BD2 = 169 – 25 = 144
⇒BD = √144 = 12 cm
Similarly, applying
Pythagoras theorem is ∆ ADC we can have,
AC2 = AD2 + DC2
132 = 52 + DC2
⇒ DC = √144 = 12 cm
Thus, BC = BD + DC =
12 + 12 = 24 cm
13.
In a ∆ABC, AB = BC = CA = 2a and AD ⊥ BC. Prove that
(i)
AD = a√3 (ii) Area (∆ABC) = √3 a2
Solution:
(i) In ∆ABD and ∆ACD,
we have
∠ADB = ∠ADC = 90o
AB = AC
[Given]
AD = AD [Common]
So, ∆ABD ≅ ∆ACD [By RHS condition]
Hence, BD = CD = a [By
C.P.C.T]
Now, in ∆ABD, by
Pythagoras theorem
AD2 + BD2 = AB2
AD2 + a2 = 2a2
AD2 = 4a2 – a2 = 3a2
AD = a√3
(ii) Area (∆ABC) = 1/2
x BC x AD
= 1/2 x (2a) x (a√3)
= √3 a2
14.
The lengths of the diagonals of a rhombus is 24cm and 10cm. Find each side of
the rhombus.
Solution:
Let ABCD be a rhombus
and AC and BD be the diagonals of ABCD.
So, AC = 24cm and BD =
10cm
We know that diagonals
of a rhombus bisect each other at right angle. (Perpendicular to each other)
So,
AO = OC = 12cm and BO
= OD = 3cm
In ∆AOB, by Pythagoras
theorem, we have
AB2 = AO2 + BO2
= 122 + 52
= 144 + 25
= 169
⇒ AB = √169 = 13cm
Since, the sides of
rhombus are all equal.
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