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6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan) PDF Download

Mensuration is the branch of mathematics which deals with the study of different geometrical shapes, their areas and Volume. In the broadest sense, it is all about the process of measurement. It is based on the use of algebraic equations and geometric calculations to provide measurement data regarding the width, depth and volume of a given object or group of objects

1. Pythagorean Theorem (Pythagoras' theorem)

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

In a right angled triangle, the square of the hypotenuse is equal to the sum of the squares of the other two sides

c2 = a2 + b2 where c is the length of the hypotenuse and a and b are the lengths of the other two sides

2. Pi is a mathematical constant which is the ratio of a circle's circumference to its diameter. It is denoted by π

π≈3.14≈227

3. Geometric Shapes and solids and Important Formulas
 

Geometric Shapes 

Description 

Formulas 

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Rectangle

l = Length

b = Breadth

d= Length of diagonal

Area = lb

Perimeter = 2(l + b)

d = √l2+b2

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Square

a = Length of a side

d= Length of diagonal

Area= a*a=1/2*d*d                              

Perimeter = 4a

d = 2√a

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Parallelogram

b and c are sides

b = base

h = height

                                 Area = bh

Perimeter = 2(b + c)

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Rhombus

a = length of each side

b = base

h = height

d1, d2 are the diagonal

Area = bh(Formula 1)

Area = ½*d1*d2 (Formula 2 )                    

Perimeter = 4a

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Triangle

a , b and c are sides

b = base

h = height

Area = ½*b*h (Formula 1) Area(Formula 2)                         = √S(Sa)(Sb)(Sc              where S is the semiperimeter
       S  =(a+b+c)/2 (Formula 2 for area          -Heron's formula) Perimeter = a + b + c

Radius of incircle of a triangle of area A =AS
where S is the semiperimeter
=(a+b+c)/2

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Equilateral Triangle

a = side

Area = (√3/4)*a*a               Perimeter = 3a

Radius of incircle of an equilateral                                                                  triangle of side a = a/2*√3

Radius of circumcircle of an equilateral triangle
of side a = a/√3

 

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Base a is parallel to base b

Trapezium (Trapezoid in American English)

h = height

Area = 12(a+b)h

 

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Circle

r = radius

d = diameter

d = 2r

Area = πr2 =1/4πd2

Circumference = 2πr = πd

 

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Sector of Circle

r = radius

θ = central angle

Area  = (θ/360) *π*r*r
  Arc Length, s = (θ/180)* π*r

In the radian system for angular measurement,
2π radians = 360°
=> 1 radian = 180°π
=> 1° = π180 radians
Hence,
Angle in Degrees
= Angle in Radians × 180°π
Angle in Radians
= Angle in Degrees × π180°

 

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Ellipse

Major axis length = 2a

Minor axis length = 2b

Area = πab

Perimeter ≈ 6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Rectangular Solid

l = length

w = width

h = height

Total Surface Area
= 2lw + 2wh + 2hl
= 2(lw + wh + hl)

Volume = lwh

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Cube

s = edge

Total Surface Area = 6s2

                     Volume = s3

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Right Circular Cylinder

h = height

r = radius of base

Lateral Surface Area
= (2 π r)h

Total Surface Area
= (2 π r)h + 2 (π r2)

Volume = (π r2)h

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Pyramid

h = height

B = area of the base

Total Surface Area = B + Sum of  the areas of the triangular sides

Volume = 1/3*B*h

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Right Circular Cone

h = height

r = radius of base

Lateral Surface Area=πrs
where s is the slant height =√r*r+h*h
 

Total Surface Area
                                =πrs+πr2

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Sphere

r = radius

d = diameter

 d = 2r

Surface Area =4πr*r=πd*d

Volume =4/3πr*r*r=16πd*d*d

 

4. Important properties of Geometric Shapes

a. Properties of Triangle

  1. In isosceles triangle, altitude from vertex bisects the base.
  2. An isosceles triangle is a triangle with (at least) two equal sides
  3. In an equilateral triangle, all three internal angles are each 60°
  4. In an equilateral triangle, all three internal angles are congruent to each other
  5. An equilateral triangle is a triangle in which all three sides are equal
  6. Area of a triangle formed by joining the midpoints of the sides of a given triangle is one-fourth of the area of the given triangle.
  7. Centroid divides each median into segments with a 2:1 ratio
  8. Centroid is the point where the three medians of a triangle meet.
  9. The median of a triangle divides the triangle into two triangles with equal areas
  10. The line joining the midpoint of a side of a triangle to the positive vertex is called the median
  11. Sum of any two sides of a triangle is greater than the third side.

Sum of the angles of a triangle = 180°

b. Properties of Quadrilaterals

  1. The diagonals of a rectangle are equal and bisect each other
  2. opposite sides of a rectangle are parallel
  3. opposite sides of a rectangle are congruent
  4. opposite angles of a rectangle are congruent
  5. All four angles of a rectangle are right angles
  6. The diagonals of a rectangle are congruent

B. Square

  1. All four sides of a square are congruent
  2. Opposite sides of a square are parallel
  3. The diagonals of a square are equal
  4. The diagonals of a square bisect each other at right angles
  5. All angles of a square are 90 degrees.
  6. A square is a special kind of rectangle where all the sides have equal length

C. Parallelogram

  1. The opposite sides of a parallelogram are equal in length.
  2. The opposite angles of a parallelogram are congruent (equal measure).
  3. The diagonals of a parallelogram bisect each other.
  4. Each diagonal of a parallelogram divides it into two triangles of the same area

D. Rhombus 

  1. All the sides of a rhombus are congruent
  2. Opposite sides of a rhombus are parallel.
  3. The diagonals of a rhombus bisect each other at right angles
  4. Opposite internal angles of a rhombus are congruent (equal in size)
  5. Any two consecutive internal angles of a rhombus are supplementary; i.e. the sum of their angles = 180° (equal in size)
  6. If each angle of a rhombus is 90°, it is a square

Other properties of quadrilaterals

  1. The sum of the interior angles of a quadrilateral is 360 degrees
  2. If a square and a rhombus lie on the same base, area of the square will be greater than area of the rhombus (In the special case when each angle of the rhombus is 90°, rhombus is also a square and therefore areas will be equal)
  3. A parallelogram and a rectangle on the same base and between the same parallels are equal in area.
  4. Of all the parallelogram of given sides, the parallelogram which is a rectangle has the greatest area.
  5. Each diagonal of a parallelogram divides it into two triangles of the same area
  6. A square is a rhombus and a rectangle.

c. Sum of Interior Angles of a polygon

The sum of the interior angles of a polygon = 180(n - 2) degrees where n = number of sides Example 1 : Number of sides of a triangle = 3. Hence, sum of the interior angles of a triangle = 180(3 - 2) = 180 × 1 = 180 ° Example 2 : Number of sides of a quadrilateral = 4. Hence, sum of the interior angles of any quadrilateral = 180(4 - 2) = 180 × 2 = 360.

Solved Examples

1. An error 2% in excess is made while measuring the side of a square. What is the percentage of error in the calculated area of the square?

A. 4.04 %

B. 2.02 %

C. 4 %

D. 2 %

Answer : Option A

Explanation :

Error = 2% while measuring the side of a square.

Let the correct value of the side of the square = 100
Then the measured value = (100×(100+2))/100=102 (∵ error 2% in excess)

Correct Value of the area of the square = 100 × 100 = 10000
Calculated Value of the area of the square = 102 × 102 = 10404

Error = 10404 - 10000 = 404
Percentage Error = (Error/Actual Value)×100=(404/10000)×100=4.04%

2. A towel, when bleached, lost 20% of its length and 10% of its breadth. What is the percentage of decrease in area?

A. 30 %

B. 28 %

C. 32 %

D. 26 %

Answer : Option B

Explanation :

Let original length = 100 and original breadth = 100
Then original area = 100 × 100 = 10000

Lost 20% of length
=> New length =( Original length × (100−20))/100

=(100×80)/100=80

Lost 10% of breadth
=> New breadth= (Original breadth × (100−10))/100
=(100×90)/100=90

New area = 80 × 90 = 7200

Decrease in area
= Original Area - New Area
= 10000 - 7200 = 2800

Percentage of decrease in area
=(Decrease in Area/Original Area)×100=(2800/10000)×100=28%

3. If the length of a rectangle is halved and its breadth is tripled, what is the percentage change in its area?

A. 25 % Increase

B. 25 % Decrease

C. 50 % Decrease

D. 50 % Increase

Answer : Option D

Explanation :

Let original length = 100 and original breadth = 100
Then original area = 100 × 100 = 10000

Length of the rectangle is halved
=> New length = (Original length)/2=100/2=50

breadth is tripled
=> New breadth= Original breadth × 3 = 100 × 3 = 300

New area = 50 × 300 = 15000

Increase in area = New Area - Original Area = 15000 - 10000= 5000
Percentage of Increase in area =( Increase in Area/OriginalArea)×100=(5000/10000)×100=50%

4. The area of a rectangle plot is 460 square metres. If the length is 15% more than the breadth, what is the breadth of the plot?

A. 14 metres

B. 20 metres

C. 18 metres

D. 12 metres

Answer : Option B

Explanation :

lb = 460 m2 ------(Equation 1)

Let the breadth = b
Then length, l =( b×(100+15))/100=115b/100------(Equation 2)

From Equation 1 and Equation 2,
115b/100×b=460b2=46000/115=400⇒b=√400=20 m

5. If a square and a rhombus stand on the same base, then what is the ratio of the areas of the square and the rhombus?

A. equal to ½

B. equal to ¾

C. greater than 1

D. equal to 1

Answer: Option C

Explanation:

If a square and a rhombus lie on the same base, area of the square will be greater than area of the rhombus (In the special case when each angle of the rhombus is 90°, rhombus is also a square and therefore areas will be equal)

Hence greater than 1 is the more suitable choice from the given list

================================================================

Note : Proof

6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC | RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

Consider a square and rhombus standing on the same base 'a'. All the sides of a square are of equal length. Similarly all the sides of a rhombus are also of equal length. Since both the square and rhombus stands on the same base 'a',

Length of each side of the square = a
Length of each side of the rhombus = a

Area of the sqaure = a2 ...(1)

From the diagram, sin θ = h/a
=> h = a sin θ

Area of the rhombus = ah = a × a sin θ = a2 sin θ ...(2)

From (1) and (2)

Area of the square/Area of the rhombus= a2 /a2sinθ=1/sinθ

Since 0° < θ < 90°, 0 < sin θ < 1. Therefore, area of the square is greater than that of rhombus, provided both stands on same base.

(Note that, when each angle of the rhombus is 90°, rhombus is also a square (can be considered as special case) and in that case, areas will be equal.

6. The breadth of a rectangular field is 60% of its length. If the perimeter of the field is 800 m, find out the area of the field.

A. 37500 m2

B. 30500 m2

C. 32500 m2

D. 40000 m2

Answer: Option A

Explanation:

Given that breadth of a rectangular field is 60% of its length
b=(60/100)* l =(3/5)* l

perimeter of the field = 800 m
=> 2 (l + b) = 800
⇒2(l+(3/5)* l)=800⇒l+(3/5)* l =400⇒(8/5)* l =400⇒l/5=50⇒l=5×50=250 m

b = (3/5)* l =(3×250)/5=3×50=150 m

Area = lb = 250×150=37500 m2

7. What is the percentage increase in the area of a rectangle, if each of its sides is increased by 20%?

A. 45%

B. 44%

C. 40%

D. 42%

Answer: Option B

Explanation:

Let original length = 100 and original breadth = 100
Then original area = 100 × 100 = 10000

Increase in 20% of length.
=> New length = (Original length ×(100+20))/100=(100×120)/100=120

Increase in 20% of breadth
=> New breadth= (Original breadth × (100+20))/100=(100×120)/100=120

New area = 120 × 120 = 14400

Increase in area = New Area - Original Area = 14400 - 10000 = 4400
Percentage increase in area =( Increase in Area /Original Area)×100=(4400/10000)×100=44%

8. What is the least number of squares tiles required to pave the floor of a room 15 m 17 cm long and 9 m 2 cm broad?

A. 814

B. 802

C. 836

D. 900

Answer: Option A

Explanation:

l = 15 m 17 cm = 1517 cm
b = 9 m 2 cm = 902 cm
Area = 1517 × 902 cm2

Now we need to find out HCF(Highest Common Factor) of 1517 and 902.
Let's find out the HCF using long division method for quicker results

902)  1517  (1  

     -902

-----------------

615)  902  (1

    -       615

-----------------

      287)  615 (2              

 

                 -574

            -----------------

      41)  287  (7

              -287

            ----------- 
                 0                   
           ------------

Hence, HCF of 1517 and 902 = 41

Hence, side length of largest square tile we can take = 41 cm
Area of each square tile = 41 × 41 cm2

Number of tiles required = (1517×902)/(41×41)=37×22=407×2=814

9. A rectangular parking space is marked out by painting three of its sides. If the length of the unpainted side is 9 feet, and the sum of the lengths of the painted sides is 37 feet, find out the area of the parking space in square feet?

A. 126 sq. ft.

B. 64 sq. ft.

C. 100 sq. ft.

D. 102 sq. ft.

Answer : Option A

Explanation : 

Let l = 9 ft.
Then l + 2b = 37
=> 2b = 37 - l = 37 - 9 = 28
=> b = 282 = 14 ft.

Area = lb = 9 × 14 = 126 sq. ft.

10. A large field of 700 hectares is divided into two parts. The difference of the areas of the two parts is one-fifth of the average of the two areas. What is the area of the smaller part in hectares?

A. 400

B. 365

C. 385

D. 315

Answer : Option D

Explanation :

Let the areas of the parts be x hectares and (700 - x) hectares.

Difference of the areas of the two parts = x - (700 - x) = 2x - 700

one-fifth of the average of the two areas = 15[x+(700−x)]2
=15×7002=3505=70

Given that difference of the areas of the two parts = one-fifth of the average of the two areas
=> 2x - 700 = 70
=> 2x = 770
x=7702=385

Hence, area of smaller part = (700 - x) = (700 – 385) = 315 hectares.

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FAQs on 6. Mensuration, Quantitative Aptitude, Civil Service Examination,RPSC - RAS RPSC Prelims Preparation - Notes, Study Material & Tests - RPSC RAS (Rajasthan)

1. What is mensuration in the context of the Civil Service Examination?
Ans. Mensuration is a branch of mathematics that deals with the measurement of geometric figures such as length, area, volume, and surface area. In the context of the Civil Service Examination, mensuration often appears as a topic in the Quantitative Aptitude section, where candidates are tested on their ability to solve problems related to these measurements.
2. What are some common mensuration formulas that I should know for the Civil Service Examination?
Ans. Some common mensuration formulas that you should know for the Civil Service Examination include: - Area of a rectangle: length x width - Area of a square: side x side - Area of a triangle: (base x height) / 2 - Area of a circle: π x radius^2 - Volume of a cube: side x side x side - Volume of a cylinder: π x radius^2 x height - Surface area of a sphere: 4π x radius^2 Make sure to familiarize yourself with these formulas and practice applying them to various problems.
3. How can I improve my skills in solving mensuration problems for the Civil Service Examination?
Ans. To improve your skills in solving mensuration problems for the Civil Service Examination, you can follow these steps: 1. Understand the formulas: Make sure you are familiar with the formulas related to mensuration and understand how to apply them correctly. 2. Practice regularly: Solve a variety of mensuration problems from previous year question papers and practice sets to enhance your problem-solving skills. 3. Learn different approaches: Explore different approaches to solving mensuration problems, as there can be multiple ways to tackle a given problem. This will help you develop flexibility in your problem-solving abilities. 4. Time management: Work on improving your speed and accuracy while solving mensuration problems. Time management is crucial during the examination, so practice solving problems within a given time limit. 5. Seek guidance: If you face difficulties in understanding any specific concept or problem, seek guidance from mentors, teachers, or online resources to clarify your doubts.
4. Can you provide some examples of mensuration problems that have appeared in previous Civil Service Examinations?
Ans. Here are some examples of mensuration problems that have appeared in previous Civil Service Examinations: 1. Find the area of a rectangle with length 8 cm and width 5 cm. 2. Calculate the volume of a cylinder with a radius of 4 cm and a height of 10 cm. 3. A circular garden has a radius of 7 meters. Find the circumference of the garden. 4. The base of a pyramid is a square with a side length of 6 cm. If the height of the pyramid is 9 cm, find its volume. 5. A triangular field has a base of 12 meters and a height of 8 meters. Calculate its area. These examples give you an idea of the types of mensuration problems that can be expected in the Civil Service Examination.
5. Are there any specific strategies to solve mensuration problems quickly during the Civil Service Examination?
Ans. Yes, here are some strategies to solve mensuration problems quickly during the Civil Service Examination: 1. Read the problem carefully: Understand the given problem statement and identify the measurements or dimensions mentioned. 2. Visualize the figure: Try to visualize the geometric figure described in the problem to gain a better understanding of its shape and dimensions. 3. Identify the relevant formula: Determine which mensuration formula is applicable to the given problem. This will help you quickly calculate the required measurement. 4. Substitute values: Substitute the given values into the formula and calculate the desired measurement. 5. Double-check calculations: Always double-check your calculations to avoid any errors or mistakes. 6. Use approximation: If the answer options are far apart, you can use approximation techniques to quickly estimate the answer and eliminate incorrect options. By following these strategies, you can effectively solve mensuration problems within the given time constraints of the Civil Service Examination.
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