NCERT Solution class 7 Mathematics EXERCISE- 6.5

 

                    CHAPTER-6

                              EXERCISE – 6.5

Q1. PQR is a triangle , right angled at P. If PQ = 10 cm and PR = 24 cm , find QR.

SOLUTION:-

Let us draw a rough sketch of right – angled triangle

 

By the rule of Pythagoras theorem,

(QR)²= (RP)² + (PQ)²

(QR)²= (24)² + (10)²

(QR)²= 576 + 100

(QR)²= 676

QR = (676)²

QR = 26 cm.

Q2. ABC is a triangle , right angled at C. If AB = 25 cm and AC = 7 cm, find BC.

SOLUTION:-

 

 

By the rule of Pythagoras theorem,

AB² = AC² + BC²

25² = 7² + BC²

625 = 49 + BC²

625 – 49 = BC²

576 = BC²

(576)² = BC

24 = BC

BC = 24 cm.

Q3. A 15 m long ladder reached a window 12 m high from the ground on placing  it against a wall at a distance a. Find the distance of the foot of the ladder from the wall.

SOLUTION:-

By the rule of Pythagoras theorem,

(15)² = (12)² + a²

225= 144 + a²

225 -144 = a²

81 = a²

(81)² = a

9 = a

a = 9 cm.

Q4. Which of the following can be the sides of a right triangle?

(i) 2.5 cm , 6.5 cm , 6 cm.

(ii) 2 cm , 2 cm , 5 cm.

(iii) 1.5 cm , 2 cm , 2.5 cm.

In case of right – angled triangles, identify the right angles.

SOLUTION:-

(i) This triangle is  right – angled triangle.

(ii) This triangle is not right – angled triangle.

(iii) This triangle is right – angled triangle.

Q5. A tree is broken at a height of 5m from the ground and its top touches the ground at distance of 12m from the base of the tree. Find the original height of the tree.

SOLUTION:-

Let ABC is the triangle and B is the mid – point where tree is broken at the height 5 m from the ground.

Tree top touches the ground at a distance of AC = 12 m from the base of the tree,

By observing the figure we came to conclude that right angle triangle is formed at A.

From the rule of Pythagoras theorem,

BC² = AB² + AC²

BC² = 5² + 12²

BC² = 25 + 144

BC² = 169

BC = (169)²

BC = 13

Then, the original height of the tree = AB + BC

= 5 + 13

= 18 m

Q6. Angles Q and R of a ΔPQR are 25⁰and 65⁰ Write which of the following is true:

(i) PQ² + QR² = RP²

(ii) PQ² + RP² = QR²

(iii) RP² + QR² = PQ²

SOLUTION:-

Given that Angle B = 35⁰, Angle C = 55⁰

Then, Angle A = ?

We know that sum of the three interior angles of triangle is equal to 180⁰.

= Angle PQR + Angle QRP +  Angle RPQ = 180⁰

= 25⁰ + 65⁰ + Angle RPQ = 180⁰

= 90⁰ + Angle RPQ = 180⁰

= Angle RPQ = 180⁰ – 90⁰

= Angle RPQ = 90⁰

Also, we know that side opposite to the right angle is the hypotenuse.

QR² = PQ² + PR²

Hence, (ii) is true

Q7. Find the perimeter of the rectangle whose length is 40 cm and a diagonal is 41 cm.

SOLUTION:-

Let ABCD be the rectangular plot.

Then, AB = 40 cm and AC = 41 cm.

BC= ?

According to Pythagoras theorem,

From right angle triangle ABC, we have:

= AC² = AB² + BC²

= 41² = 40² + BC²

= BC² = 41² – 40²

= BC² = 1681 – 1600

= BC² = 81

= BC = 81²

= BC = 9 cm

Hence, the perimeter of the rectangle plot = 2(length + breadth)

Where , length = 40 cm,

Breadth = 9 cm

Then,

= 2(40+9)

= 2(49)

= 98 cm.

Q8. The diagonals of a rhombus measure 16 cm and 30 cm. Find its perimeter.

SOLUTION:-

Let PQRS be a rhombus , all sides of rhombus has equal length and its diagonal PR and SQ are intersecting each other at point O. Diagonals in rhombus bisect each other at 90⁰

So, PO = (PR/2)

= 16/2

= 8 cm

And, SO = (SQ/2)

= 30/2

= 15 cm

Then, consider the triangle POS and apply the Pythagoras theorem,

PS² = PO² + SO²

PS² = 8² + 15²

PS² = 64 +225

PS² = 289

PS = 289²

PS = 17  cm

Hence , the length of side of rhombus is 17 cm.

Now,

Perimeter of rhombus = 4 x side of the rhombus

= 4 x 17

= 68 cm

Perimeter of rhombus is 68 cm.