RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2 (Updated for 2024)

RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2

RD Sharma Class 9 Mathematics Chapter 14 Exercise 14.2 Solutions for Quadrilaterals are provided here. In this exercise, students will learn about the various types of quadrilaterals like rectangles, squares, rhombuses, and many more. RD Sharma Solutions given here include the solutions to all the questions enlisted under Exercise 14.2. Students are advised to click on the below link and download the PDF now. 

Download RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2

 


RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2

Access RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2

Question 1: Two opposite angles of a parallelogram are (3x – 2)0 and (50 – x) 0. Find the measure of each angle of the parallelogram.

Solution:

GivenTwo opposite angles of a parallelogram are (3x – 2)0 and (50 – x) 0.

We know that opposite sides of a parallelogram are equal.

(3x – 2)0 = (50 – x) 0

3x + x = 50 + 2

4x = 52

x = 13

Angle x is 130

Therefore,

(3x-2) 0 = (3(13) – 2) = 370

(50-x) 0 = (50 – 13) = 370

Adjacent angles of a parallelogram are supplementary.

x + 37 = 1800

x = 1800 − 37= 1430

Therefore, the required angles are : 370, 1430, 370 and 1430.

Question 2: If the angle of a parallelogram is two-thirds of its adjacent angle, find the angles of the parallelogram.

Solution:

Let the measure of the angle be x. Therefore, a measure of the adjacent angle is 2x/3.

We know, the adjacent angle of a parallelogram is supplementary.

x + 2x/3 = 1800

3x + 2x = 5400

5x = 5400

or x = 1080

Measure of second angle is 2x/3 = 2(1080)/3 = 720

Similarly measure of 3rd and 4th angles are 1080 and 720

Hence, the four angles are 1080, 720, 1080, 720

Question 3: Find the measure of all the angles of a parallelogram, if one angle is 240 less than twice the smallest angle.

Solution:

Given: One angle of a parallelogram is 240 less than twice the smallest angle.

Let x be the smallest angle, then

x + 2x – 240 = 1800

3x – 240 = 1800

3x = 1080 + 240

3x = 2040

x = 2040/3 = 680

So, x = 680

Another angle = 2x – 240 = 2(680) – 240 = 1120

Hence, the four angles are 680, 1120, 680, 1120.

Question 4: The perimeter of a parallelogram is 22cm. If the longer side measures 6.5cm what is the measure of the shorter side?

Solution:

Let x be the shorter side of a parallelogram.

Perimeter = 22 cm

Longer side = 6.5 cm

Perimeter = Sum of all sides = x + 6.5 + 6.5 + x

22 = 2 ( x + 6.5 )

11 = x + 6.5

or x = 11 – 6.5 = 4.5

Therefore, the shorter side of a parallelogram is 4.5 cm

We have included all the information regarding CBSE RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2. If you have any queries feel free to ask in the comment section. 

FAQ: RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2

Can I download RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2 PDF free?

Yes, you can download RD Sharma Class 9 Solutions Chapter 14 Exercise 14.2 PDF free.

What are the benefits of studying RD Sharma Class 9 Solutions?

By practicing RD Sharma Class 9 Solutions, students can earn higher academic grades. Our experts solve these solutions with utmost accuracy to help students in their studies.

Is RD Sharma enough for Class 12 Maths?

RD Sharma is a good book that gives you thousands of questions to practice.

Leave a Comment

Top 10 Professional Courses With High-Paying Jobs 2024 Top 8 Online MCA Colleges in India 2024 Skills You Will Gain from an Online BBA Programme How to stay motivated during distance learning Things to know before starting with first year of medical school