Class 7 Exam > Class 7 Notes > Mathematics (Maths) Class 7 > RD Sharma Solutions: Constructions (Exercise 17.5)
Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 PDF Download
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Page 1
1. Draw a right triangle with hypotenuse of length 5 cm and one side of length 4 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 4 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 5 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
2. Draw a right triangle whose hypotenuse is of length 4 cm and one side is of length
2.5 cm.
Solution:
Page 2
1. Draw a right triangle with hypotenuse of length 5 cm and one side of length 4 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 4 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 5 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
2. Draw a right triangle whose hypotenuse is of length 4 cm and one side is of length
2.5 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 2.5 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 4 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
3. Draw a right triangle having hypotenuse of length 5.4 cm, and one of the acute
angles of measure 30
o
Solution:
Let ABC be the right triangle at A such that hypotenuse BC = 5.4 cm. Let C = 30
o
.
Therefore ?A + ?B + ?C = 180
o
?B = 180
o
- 30
o
- 90
o
= 60
o
Steps of construction:
1. Draw a line segment BC = 5.4 cm.
Page 3
1. Draw a right triangle with hypotenuse of length 5 cm and one side of length 4 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 4 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 5 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
2. Draw a right triangle whose hypotenuse is of length 4 cm and one side is of length
2.5 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 2.5 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 4 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
3. Draw a right triangle having hypotenuse of length 5.4 cm, and one of the acute
angles of measure 30
o
Solution:
Let ABC be the right triangle at A such that hypotenuse BC = 5.4 cm. Let C = 30
o
.
Therefore ?A + ?B + ?C = 180
o
?B = 180
o
- 30
o
- 90
o
= 60
o
Steps of construction:
1. Draw a line segment BC = 5.4 cm.
2. Draw angle CBY = 60
o
3. Draw angle BCX of measure 30
o
with X on the same side of BC as Y.
4. Let BY and CX intersects at A.
5. Then ABC is the required triangle.
4. Construct a right triangle ABC in which AB = 5.8 cm, BC = 4.5 cm and ?C = 90
o
.
Solution:
Steps of construction:
1. Draw a line segment BC = 4.5 cm.
2. Draw ?BCX of measure 90
o
3. With center B and radius AB = 5.8 cm, draw an arc of the triangle to intersect ray CX
at A.
4. Join AB to obtain the desired triangle ABC.
5. ABC is the required triangle.
5. Construct a right triangle, right angled at C in which AB = 5.2 cm and BC= 4.6 cm.
Solution:
Page 4
1. Draw a right triangle with hypotenuse of length 5 cm and one side of length 4 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 4 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 5 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
2. Draw a right triangle whose hypotenuse is of length 4 cm and one side is of length
2.5 cm.
Solution:
Steps of construction:
1. Draw a line segment QR = 2.5 cm.
2. Draw ?QRX of measure 90
o
.
3. With center Q and radius PQ = 4 cm, draw an arc of the triangle to intersect ray RX at
P.
4. Join PQ to obtain the desired triangle PQR.
5. PQR is the required triangle.
3. Draw a right triangle having hypotenuse of length 5.4 cm, and one of the acute
angles of measure 30
o
Solution:
Let ABC be the right triangle at A such that hypotenuse BC = 5.4 cm. Let C = 30
o
.
Therefore ?A + ?B + ?C = 180
o
?B = 180
o
- 30
o
- 90
o
= 60
o
Steps of construction:
1. Draw a line segment BC = 5.4 cm.
2. Draw angle CBY = 60
o
3. Draw angle BCX of measure 30
o
with X on the same side of BC as Y.
4. Let BY and CX intersects at A.
5. Then ABC is the required triangle.
4. Construct a right triangle ABC in which AB = 5.8 cm, BC = 4.5 cm and ?C = 90
o
.
Solution:
Steps of construction:
1. Draw a line segment BC = 4.5 cm.
2. Draw ?BCX of measure 90
o
3. With center B and radius AB = 5.8 cm, draw an arc of the triangle to intersect ray CX
at A.
4. Join AB to obtain the desired triangle ABC.
5. ABC is the required triangle.
5. Construct a right triangle, right angled at C in which AB = 5.2 cm and BC= 4.6 cm.
Solution:
Steps of construction:
1. Draw a line segment BC = 4.6 cm.
2. Draw ?BCX of measure 90
o
3. With center B and radius AB = 5.2 cm, draw an arc of the triangle to intersects ray CX
at A.
4. Join AB to obtain the desired triangle ABC.
5. ABC is the required triangle.
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Oct 24, 2024 Last updated |
Document Description: RD Sharma Solutions: Constructions (Exercise 17.5) for Class 7 2024 is part of Mathematics (Maths) Class 7 preparation.
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