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RRB JE CE (CBT I) Mock Test- 2 - Civil Engineering (CE) MCQ


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30 Questions MCQ Test RRB JE Mock Test Series for Civil Engineering (CE) 2025 - RRB JE CE (CBT I) Mock Test- 2

RRB JE CE (CBT I) Mock Test- 2 for Civil Engineering (CE) 2024 is part of RRB JE Mock Test Series for Civil Engineering (CE) 2025 preparation. The RRB JE CE (CBT I) Mock Test- 2 questions and answers have been prepared according to the Civil Engineering (CE) exam syllabus.The RRB JE CE (CBT I) Mock Test- 2 MCQs are made for Civil Engineering (CE) 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for RRB JE CE (CBT I) Mock Test- 2 below.
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RRB JE CE (CBT I) Mock Test- 2 - Question 1

In a school, 1000 chocolates were distributed in such a way that each student gets chocolates equal to 10% of the total students. Find the number of chocolates that each student gets

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 1
Let the number of students = s

10 x s x s/100 = 1000

s2 = 10,000 s = 100

Each student got 10 x 100/100

=> 10 chocolates

RRB JE CE (CBT I) Mock Test- 2 - Question 2

If the cost price of 12 pen is same as the selling price of 15 pen. What is the percentage of gain or loss?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 2
CP of 12 pen = SP of 15 pen CP x 12 = SP x 15

=> CP/SP - 5 / 4…(1)

From equation (1) we can see that CP >SP, therefore there will be loss. Let the CP = 5 and SP = 4 Then Loss = 1

Loss% = loss/CP x 100

= 1/5 x 100

= 20% loss

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RRB JE CE (CBT I) Mock Test- 2 - Question 3

The following table represents marks obtained by four students in five subjects and maximum marks of each subject.

Q. Find the respective ratio of overall percentage of marks obtained by Ankil in all the five subjects and overall percentage of marks obtained by Sulal in all the five subjects.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 3
Total marks in all subjects = 200 + 150 + 50 + 100 + 200 = 700

Overall percentage of marks obtained by Ankit in all the five subjects

= (120 + 100 + 30 + 70 + 100)/700 x 100

= 420/700 x 100

= 60%

Overall percentage of marks obtained by Sujal in all the five subjects

= (180 + 80 + 40 + 90 + 150)/700 x 100

= 540/700 x 100

= 540/7%

Required ratio = 60 : 540/7

= 420 : 540

= 7 : 9

RRB JE CE (CBT I) Mock Test- 2 - Question 4

Area of rhombus is (7 + 6.5√5) cm2 and length of its one diagonal is (3 + 2√5) cm, then what is the length of its second diagonal?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 4
Area of rhombus = (First diagonal x Second diagonal) / 2

2 x Area of rhombus = (First diagonal x Second diagonal)

Let its second diagonal = (a + b√5) cm

(14 + 13√5) = (3 + 2√5) x (a + b√5)

(14 + 13√5) = (3a + 3b√5 + 2a√5 + 10b)

After comparing-

(3a + 10b) = 14 ...... (1)

(2a + 3b) = 13 ....... (2)

From (1) and (2)-

a = 8 and b = -1

Length of second diagonal = (a + b√5) = (8 - √5) cm

RRB JE CE (CBT I) Mock Test- 2 - Question 5

Solve the following expression: (∛42875 ÷ √49) + (152 - 21 x 10) - √625.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 5
= (∛42875 ÷ √49) + (152 - 21 x 10) - √625

= (35 ÷ 7) + (225 - 210) - 25

= 5 + 15 - 25

= -5

RRB JE CE (CBT I) Mock Test- 2 - Question 6

A set of 7 pipes can fill 70% of a vessel in 7 minutes. Another set of 5 pipes can fill 2/5th of the vessel in 5 minutes. A third set of 10 pipes can empty 1/3rd of the tank in 10 minutes. How much time (in minutes) will it take to fill the entire tank if all the pipes are opened at the same time?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 6
7 pipes of first set can fill 7/10th of the vessel in 7 minutes.

Hence, 7 pipes of first set can fill 1/10th of the vessel in 1 min.

5 pipes of second set can fill 2/5th of the vessel in 5 minutes

Hence, 5 pipes of second set can fill 2/25th of the vessel in 1 min.

10 pipes of third set can empty 1/3rd of the vessel in 10 minutes.

Hence, 10 pipes of third set can empty 1/30th of the vessel in 1 min

So, if all the pipes are open in one minute 1/10 + 2/25 - 1/30 = 11/75th of the vessel is filled up.

Hence, to fill up the whole vessel, time required= 75/11 minutes.

RRB JE CE (CBT I) Mock Test- 2 - Question 7

What is the mass number of Gold?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 7
The mass number of Gold is 197. Mass number is the sum of the numbers of protons and neutrons present in the nucleus of an atom.

Mass numbers of some common elements-

Neon- 20

Sodium- 23

Silver- 108

RRB JE CE (CBT I) Mock Test- 2 - Question 8

If an article is sold for a gain of 7% instead of selling it at a loss of 13%, a trader gets Rs.1080 more. What is the selling price of the article, when the article is sold at a profit of 25%?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 8
Let cost price of article be Rsx (13 + 7)% of x = 1080

20% of x = 1080

x = 5400

SP = 125% of 5400 = 6750

RRB JE CE (CBT I) Mock Test- 2 - Question 9

There are total 10 students whose marks in an exam are 45, 65, 56, (P + 16), (2P + 3), 78, 24, (4P - 8), 44 and 48 respectively and mean marks of first 5 students is 49, then what is mean marks of last 5 students?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 9

RRB JE CE (CBT I) Mock Test- 2 - Question 10

Select the odd one out: (6 x 10-3), √[(52 + 11) x 10-6], (0.06 ÷ 102) and √0.000036.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 10
(6 x 10-3) = 0.006

√[(52 + 11) x 10-6] = 6 x 10-3 = 0.006

(0.06 ÷ 102) = 0.0006

√0.000036 = 0.006

RRB JE CE (CBT I) Mock Test- 2 - Question 11

There is a fraction such that if we add 11/30 to it then it gets reverted. Further if we subtract 1 from numerator then the fraction becomes 2/3. What is the fraction?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 11
Let the fraction = m/n

According to the 1st condition; m/n + 11/30= n/m ...(1)

According to the 2nd condition; (m - 1)/n = ⅔

=> 3m - 3 = 2n

=> 3m - 2n = 3 ...(2)

By solving equation 1,

=> 30m2 + 11mn - 30n2 = 0

=> (6m - 5n)(5m + 6n) = 0

we get the value of m/n = 5/6, -6/5

applying condition(2), m/n = (5 - 1)/6 = 4/6 = 2/3

Hence the required fraction = m/n = 5/6

RRB JE CE (CBT I) Mock Test- 2 - Question 12

How many among the following numbers are Irrational number:

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 12

RRB JE CE (CBT I) Mock Test- 2 - Question 13

Ramesh and Suresh invested same amount of money in two banks for 2 years which offer interest at the same rate, but Ramesh invested in a bank which offers compound interest and Suresh invested in a bank which offers simple interest. After two years Ramesh got Rs. 525 as interest and Suresh got Rs. 500 as interest. What is the rate of interest offered by the banks?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 13
In case of simple interest we get the same amount of interest each year.

Hence amount of interest Suresh will get in first year = 500/2 = Rs. 250

If the same amount is invested and interest rate is same then in first year the interest obtained is same whether it is simple interest or compound interest.

Hence compound interest obtained in 1st year = Rs. 250

Therefore amount of interest obtained in the 2nd year = Rs. (525 - 250) = Rs. 275

Hence rate of interest = 100 x (275 - 250)/250 = 10%

RRB JE CE (CBT I) Mock Test- 2 - Question 14

Line graph given below shows the total number of presence of employees in two different companies P and Q on five different working days from Monday to Friday.

Q. What is the sum of the average number of presence of employees in company P and average number of presence of employees in company Q on all the five working days?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 14
Average number of presence of employees in company P on all the five working days = 26 + 24 + 30 + 46 + 24 = 150

Average = 150/5 = 30

Average number of presence of employees in company Q on all the five working days = 24 + 16 + 50 + 28 + 62 = 180

Average = 180/5 = 36

Required sum = 30 + 36 = 66

RRB JE CE (CBT I) Mock Test- 2 - Question 15

If [(0.09)2 x (0.3)8 x (0.027) x 1012] / [312 x (0.3)x] = 1, then what is the value of x?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 15
[(0.09)2 x (0.3)8 x (0.027) x 1012] / [312 x (0.3)x] = 1

[(0.09)2 x (0.3)8 x (0.027) x 1012] = [312 x (0.3)x]

[(0.3)4 x (0.3)8 x (0.3)3] = [(0.3)12 x (0.3)x]

(0.3)15 / (0.3)12 = (0.3)x

(0.3)3 = (0.3)x

x = 3

RRB JE CE (CBT I) Mock Test- 2 - Question 16

In one revolution, the object travels______ distance.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 16
In one revolution, the object travels 2πr distance. Revolution means a circular motion around an axis located outside the object. E.g., Rounding a curve in a car, merry go round, etc.
RRB JE CE (CBT I) Mock Test- 2 - Question 17

Sita buys a parker pen at Rs. 100 and sell it to Geeta at Rs. 120. Geeta sells this pen to Radha at a price of Rs. 80. Radha sells it back to Sita at Rs. 90. Sita sells it to Roma at Rs. 150. What is Sita's profit/loss %?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 17
C.P. of pen for Sita = Rs 100

S.P. of pen for Sita = Rs 150 - 90 + 120 = 180

Profit % = [(180 - 100)/100] x 100 = 80%

RRB JE CE (CBT I) Mock Test- 2 - Question 18

Mahesh is travelling at a distance of 1200 km in Japan by Bullet train. Due to some technical fault in the engine of the train, speed of the train was reduced by 100 km/hr thus overall time of his journey increased by 24 minutes. What was the normal speed of the bullet train?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 18
Let the normal speed of the bullet train is N km/hr and the corresponding time taken is A hours.

Hence; 1200/N = A .. (1)

According to the 2nd condition; 1200/(N - 100) = A + 2/5 .. (2)

Equation (2) - Equation (1); 1200/(N - 100) - 1200/N = 2/5

If we will try to solve this equation then it will become too lengthy. Hence such questions we should solve by using the options.

Out of the given options, option (c) satisfies above equation.

Hence; N = 600 km/hr

RRB JE CE (CBT I) Mock Test- 2 - Question 19

If 4x - 1/3x = 9, then what is the value of (144x4 - 1)/(27x2 + 2x)?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 19
(12x2 - 1)/3x = 9

=> (12x2 - 1)/3x = 9

=> 12x2 - 1 = 27x ------- (i)

Now,

(144x4 - 1)/(27x2 + 2x)

= [(12x2 - 1)(12x2 + 1)]/[x(27x + 2)] ------- [(a2 - b2 = (a - b)(a + b)]

= [27x(27x -1 + 1 +1)]/[x(27x + 2)] ---- {Putting the value of equation (i)]

= [27x(27x + 2)]/[x(27x + 2)]

= 27

RRB JE CE (CBT I) Mock Test- 2 - Question 20

What is the simplified value of (cos3 x/sin x) + (cos2 x.cot3 x)?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 20
cos3 x/sin x + cos2 x cot3 x

= (cos3 x/sin3 x) sin2 x + cos2 x cot3 x

= cot3 x sin2 x + cos2 x cot3 x

= cot3 x (sin2 x + cos2 x)

= cot3 x

RRB JE CE (CBT I) Mock Test- 2 - Question 21

If 25% of (A + B) is 30% of (A - B), then B is what percent of A?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 21
=> 25/100(A + B) = 30/100(A - B)

=> 5A + 5B = 6A - 6B => A = 11B

=> Let p% of B is equal to A

=> p/100 x B = A

=> But B = 11A

RRB JE CE (CBT I) Mock Test- 2 - Question 22

What is the ∠SRO if O is the centre of circle, ∠SPO = 550 and ∠POR = 1150

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 22
In quadrilateral PQRS, ∠SRQ = 180 − ∠SPO = 180 − 55 = 125

[Sum of opposite angle of a cyclic quadrilateral is 1800.]

∠ROQ = 180 − ∠POR = 1800 − 115 = 65

In △QOR, ∠OQR = ∠ORQ [Angles opposite or same side] ∠ROQ + ∠OQR + ∠ORQ = 180

650 + ∠ORQ + ∠ORQ = 180

∠ORQ = (1800 − 65)/2 = 57.5

RRB JE CE (CBT I) Mock Test- 2 - Question 23

A number 135 is split into three parts in such a way that all the three parts are in increasing Arithmetic Progression. The Product of the two largest parts is 2160, then what is the ratio of the smallest part to the highest part?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 23
Let the three numbers are: (a - d), a, (a + d) respectively.

According to questions:

a(a + d) = 2160 ...... (1)

(a - d) + a + (a + d) = 135

a = 45

From equation (1)

45(45 + d) = 2160

(45 + d) = 48

d = 3

Required ratio = (a - d) : (a + d) = 42 : 48 = 7 : 8

RRB JE CE (CBT I) Mock Test- 2 - Question 24

Simplify the value of 3[{1/(√9 - √8)} - {1/(√9 + √8)}] + (2 - 3√2)2.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 24
= 3[{1/(√9 - √8)} - {1/(√9 + √8)}] + (2 - 3√2)2

= 3[{(√9 + √8) - (√9 - √8)}/(√9 - √8)(√9 + √8)] + (2 - 3√2)2

= 3[2√8] + (2 - 3√2)2

= 6√8 + (4 + 18 - 12√2)

= 12√2 + (22 - 12√2)

= 22

RRB JE CE (CBT I) Mock Test- 2 - Question 25

There are 7 students in a class whose weights are: 54 kg, 45 kg, 48 kg, A kg, 42 kg, 50 kg and 55 kg. If the mean of their weights is 49 kg, then what is the median of their weights?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 25
Mean of their weights = (54 + 45 + 48 + A + 42 + 50 + 55)/7 = 49

294 + A = 343

A = 49 kg

Arrange the weights in ascending order = 42, 45, 48, 49, 50, 54, 55

Median of their weights = 4th term in series = 49 kg

RRB JE CE (CBT I) Mock Test- 2 - Question 26

The LCM of two numbers is 2376, and their HCF is 22. Find their difference, if the sum of numbers is 682.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 26
Let the number be 22x and 22y

22x + 22y = 682

x + y = 31 → (1)

22x x 22y = 2376 x 22

xy = 108 → (2)

Solving (1) and (2), we get

x = 27 and y = 4

Difference = 22x - 22y

= 22(27 - 4)

= 22 x 23

= 506

RRB JE CE (CBT I) Mock Test- 2 - Question 27

60 liters of first mixture of milk and water is mixed with another 40 liters mixture of milk and water. After mixing the mixture, the mixture is sold at the cost of pure milk, then what is the percent profit gained if the ratio of milk to water in the first and second mixture is 7: 5 and 3: 5, respectively? Given below are the steps involved. Arrange them in sequential order.

(A) Amount of milk and water in first mixture is 60 x (7/12) = 35 liters and 60 x (5/12) = 25 liters respectively.

(B) Total amount of milk and water is final mixture is (35 + 15) = 50 liters and (25 + 25) = 50 liters respectively.

(C) Percent profit earned = [(100 - 50)/50] x 100 = 100%

(D) Amount of milk and water in second mixture is 40 x (3/8) = 15 liters and 40 x (5/8) = 25 litres respectively.

(E) Cost price of final mixture = 50 x 1 = 50 and selling price of final mixture = 100 x 1 = 100

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 27
The correct arrangement is:

(A) Amount of milk and water in first mixture is 60 x (7/12) = 35 litres and 60 x (5/12) = 25 liters respectively.

(D) Amount of milk and water in second mixture is 40 x (3/8) = 15 liters and 40 x (5/8) = 25 liters respectively.

(B) Total amount of milk and water is final mixture is (35 + 15) = 50 litres and (25 + 25) = 50 liters respectively.

(E) Cost price of final mixture = 50 x 1 = 50 and selling price of final mixture = 100 x 1 = 100

(C) Per cent profit earned = [(100 - 50)/50] x 100 = 100%

RRB JE CE (CBT I) Mock Test- 2 - Question 28

If cosec θ = x + 1/4x, then the value of cosec θ + cot θ is:

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 28
Let cosec θ + cot θ = k

⇒ cosec θ - cot θ = 1/k

On adding, we get

2 cosec θ = k + 1/k = 2(x + 1/4x) = k + 1/k

⇒ x + 1/2x = k + 1/k ⇒ k = 2x

RRB JE CE (CBT I) Mock Test- 2 - Question 29

At present, the sum of ages of R and K is 63 years. The ratio of their ages after 7 years will be 7: 4 , what is the present age of R?

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 29
Let the present age of R is x

⇒ present age of K is 63 - x

7 years later

R's age = x + 7

K's age = 63 - x + 7= 70 - x

⇒ (x + 7) / (70 - x) = 7 / 4

⇒ 4x + 28= 490 - 7x

⇒ 11x = 462

⇒ x = 42 years

therefore present age of R = 42 years

RRB JE CE (CBT I) Mock Test- 2 - Question 30

If 5 girls can embroider a dress in 9 days, then the number of days taken by 3 girls will be _____.

Detailed Solution for RRB JE CE (CBT I) Mock Test- 2 - Question 30
Days taken by 5 girls to embroider a dress = 9 days

Days taken by 1 girl to embroider a dress = 9 x 5 days

Days taken by 3 girls to embroider a dress = 9 × 5/3 days = 15 days

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