Class 7 Exam > Class 7 Notes > Mathematics (Maths) Class 7 (Old NCERT) > RD Sharma Solutions: Constructions (Exercise 17.5)
Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT) PDF Download
| Download, print and study this document offline |
Please wait while the PDF view is loading
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.
Read More
|
77 videos|386 docs|39 tests
|
About this Document
4.94/5
Rating
Sep 22, 2025
Last updated
Related Exams
Document Description: RD Sharma Solutions: Constructions (Exercise 17.5) for Class 7 2025 is part of Mathematics (Maths) Class 7 (Old NCERT) preparation.
The notes and questions for RD Sharma Solutions: Constructions (Exercise 17.5) have been prepared according to the Class 7 exam syllabus. Information about RD Sharma Solutions: Constructions (Exercise 17.5) covers topics
like and RD Sharma Solutions: Constructions (Exercise 17.5) Example, for Class 7 2025 Exam. Find important definitions, questions, notes, meanings, examples, exercises and tests below for RD Sharma Solutions: Constructions (Exercise 17.5).
Introduction of RD Sharma Solutions: Constructions (Exercise 17.5) in English is available as part of our Mathematics (Maths) Class 7 (Old NCERT)
for Class 7 & RD Sharma Solutions: Constructions (Exercise 17.5) in Hindi for Mathematics (Maths) Class 7 (Old NCERT) course.
Download more important topics related with notes, lectures and mock test series for Class 7
Exam by signing up for free. Class 7: Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT)
Description
Full syllabus notes, lecture & questions for Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT) - Class 7 | Plus excerises question with solution to help you revise complete syllabus for Mathematics (Maths) Class 7 (Old NCERT) | Best notes, free PDF download
Information about RD Sharma Solutions: Constructions (Exercise 17.5)
In this doc you can find the meaning of RD Sharma Solutions: Constructions (Exercise 17.5) defined & explained in the simplest way possible. Besides explaining types of
RD Sharma Solutions: Constructions (Exercise 17.5) theory, EduRev gives you an ample number of questions to practice RD Sharma Solutions: Constructions (Exercise 17.5) tests, examples and also practice Class 7
tests
Related Searches
study material
,Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT)
,Exam
,Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT)
,practice quizzes
,mock tests for examination
,video lectures
,Viva Questions
,Important questions
,Semester Notes
,ppt
,Objective type Questions
,Summary
,Extra Questions
,Constructions (Exercise 17.5) RD Sharma Solutions | Mathematics (Maths) Class 7 (Old NCERT)
,MCQs
,Previous Year Questions with Solutions
,past year papers
,Free
,Sample Paper
,shortcuts and tricks
,
Additional Information about RD Sharma Solutions: Constructions (Exercise 17.5) for Class 7 Preparation
RD Sharma Solutions: Constructions (Exercise 17.5) Free PDF Download
The RD Sharma Solutions: Constructions (Exercise 17.5) is an invaluable resource that delves deep into the core of the Class 7 exam.
These study notes are curated by experts and cover all the essential topics and concepts, making your preparation more efficient and effective.
With the help of these notes, you can grasp complex subjects quickly, revise important points easily,
and reinforce your understanding of key concepts. The study notes are presented in a concise and easy-to-understand manner,
allowing you to optimize your learning process. Whether you're looking for best-recommended books, sample papers, study material,
or toppers' notes, this PDF has got you covered. Download the RD Sharma Solutions: Constructions (Exercise 17.5) now and kickstart your journey towards success in the Class 7 exam.
Importance of RD Sharma Solutions: Constructions (Exercise 17.5)
The importance of RD Sharma Solutions: Constructions (Exercise 17.5) cannot be overstated, especially for Class 7 aspirants.
This document holds the key to success in the Class 7 exam.
It offers a detailed understanding of the concept, providing invaluable insights into the topic.
By knowing the concepts well in advance, students can plan their preparation effectively.
Utilize this indispensable guide for a well-rounded preparation and achieve your desired results.
RD Sharma Solutions: Constructions (Exercise 17.5) Notes
RD Sharma Solutions: Constructions (Exercise 17.5) Notes offer in-depth insights into the specific topic to help you master it with ease.
This comprehensive document covers all aspects related to RD Sharma Solutions: Constructions (Exercise 17.5).
It includes detailed information about the exam syllabus, recommended books, and study materials for a well-rounded preparation.
Practice papers and question papers enable you to assess your progress effectively.
Additionally, the paper analysis provides valuable tips for tackling the exam strategically.
Access to Toppers' notes gives you an edge in understanding complex concepts.
Whether you're a beginner or aiming for advanced proficiency, RD Sharma Solutions: Constructions (Exercise 17.5) Notes on EduRev are your ultimate resource for success.
RD Sharma Solutions: Constructions (Exercise 17.5) Class 7 Questions
The "RD Sharma Solutions: Constructions (Exercise 17.5) Class 7 Questions" guide is a valuable resource for all aspiring students preparing for the
Class 7 exam. It focuses on providing a wide range of practice questions to help students gauge
their understanding of the exam topics. These questions cover the entire syllabus, ensuring comprehensive preparation.
The guide includes previous years' question papers for students to familiarize themselves with the exam's format and difficulty level.
Additionally, it offers subject-specific question banks, allowing students to focus on weak areas and improve their performance.
Study RD Sharma Solutions: Constructions (Exercise 17.5) on the App
Students of Class 7 can study RD Sharma Solutions: Constructions (Exercise 17.5) alongwith tests & analysis from the EduRev app,
which will help them while preparing for their exam. Apart from the RD Sharma Solutions: Constructions (Exercise 17.5),
students can also utilize the EduRev App for other study materials such as previous year question papers, syllabus, important questions, etc.
The EduRev App will make your learning easier as you can access it from anywhere you want.
The content of RD Sharma Solutions: Constructions (Exercise 17.5) is prepared as per the latest Class 7 syllabus.
|
© EduRev
|
Education Revolution
|
|
Signup to see your scores
go up within 7 days!
Access 1000+ FREE Docs, Videos and Tests
Takes less than 10 seconds to signup