Dear Aspirants, Our IBPS Guide team is providing new series of Quantitative Aptitude Questions for NIACL AO Prelims 2021 so the aspirants can practice it on a daily basis. These questions are framed by our skilled experts after understanding your needs thoroughly. Aspirants can practice these new series questions daily to familiarize with the exact exam pattern and make your preparation effective.
Mixture and allegation
1) Vessel A contains 90 liters milk which is 60% of the quantity of vessel A and rest of quantity is water. If x liters of milk and (x + 10) liters of water is added to vessel A, then the ratio of the milk and water becomes 6:5. If vessel B contains (x + 30) liters mixture of milk and water in the ratio of 3:2, then find the quantity of milk in vessel B?
A.45 liters
B.30 liters
C.36 liters
D.48 liters
E.42 liters
Time and work
2) If 25 men can do a piece of work in 36 days working 10 hours a day, then how many men are required to complete the work working 6 hours a day in 20 days?
A.85
B.80
C.75
D.95
E.70
Ratio and proportion
3) The ratio of the total number of CSE students and ECE students is 5:4 and the ratio of number of boys in CSE department is 40% more than the number of boys in ECE departments. If the number of girls in CSE department is 170, then find the number of boys in ECE?
A.200
B.150
C.100
D.250
E.Cannot be determined
Partnership
4) A, B and C started the business with the investment in the ratio of 4:3:5 and the investment period of A, B and C is 10 months, 12 months and 8 months respectively. What is the ratio of profit of A, B and C?
A.5:4:6
B.3:2:3
C.10:9:10
D.6:5:6
E.None of these
Profit and loss
5) The marked price of the AC is 20% more than its cost price and the selling price of the AC is 15% more than its cost price. If the shopkeeper offers a discount of Rs.500 on marked price of AC, then find the selling price of AC?
A.Rs.12000
B.Rs.11800
C.Rs.12400
D.Rs.11500
E.None of these
Quadratic equation
Directions (06-10): Following question contains two equations as I and II. You have to solve both equations and determine the relationship between them and give answer as,
6) I) 3x + 4y = 45
II)2x + 3y = 32
A.x > y
B.x ≥ y
C.x = y or relationship can’t be determined.
D.x < y
E.x ≤ y
7) I) x2 – x – 600 = 0
II)y2+ 27y + 72 = 0
A.x > y
B.x ≥ y
C.x = y or relationship can’t be determined.
D.x < y
E.x ≤ y
8) I) 2x2 + 26x + 84 = 0
II)y2+ 15y + 56 = 0
A.x > y
B.x ≥ y
C.x = y or relationship can’t be determined.
D.x < y
E.x ≤ y
9) I) x2 + 29x + 210 = 0
II)y2+ 2y – 168 = 0
A.x > y
B.x ≥ y
C.x = y or relationship can’t be determined.
D.x < y
E.x ≤ y
10) I) x2 + 178 = 502
II)y2= 361
A.x > y
B.x ≥ y
C.x = y or relationship can’t be determined.
D.x < y
E.x ≤ y
Answers :
1) Answer: C
Quantity of water in vessel A = 40/60 * 90 = 60 liters
(90 + x)/(60 + x + 10) = 6/5
450 + 5x = 420 + 6x
x = 30 liters
Quantity of vessel B = 30 + 30 = 60 liters
Milk in vessel B = 3/5 * 60 = 36 liters
2) Answer: C
3) Answer: E
Total number of CSE students = 5x
Total number of ECE students = 4x
Number of boys in ECE students = 5y
Number of boys in CSE students = 5y * 140/100 = 7y
5x – 7y = 170
We cannot find the answer.
4) Answer: C
Required ratio = 4x * 10:3x * 12:5x * 8
= 40:36:40
= 10:9:10
5) Answer: D
CP of AC = 5x
MP of AC = 5x * 120/100 = 6x
SP of AC = 5x * 115/100 = 5.75x
6x – 500 = 5.75x
x = 2000
SP of AC = 5.75 * 2000 = Rs.11500
6) Answer: A
3x + 4y = 45 —–(1)
2x + 3y = 32 —–(2)
From (1) and (2)
y = 6
3x = 45 – 24
x = 7
x > y
7) Answer: C
x2 – x – 600 = 0
x2 – 25x + 24x – 600 = 0
x(x – 25) + 24(x – 25) = 0
(x + 24)(x – 25) = 0
x = -24, 25
y2 + 27y + 72 = 0
y2 + 24y + 3y + 72 = 0
y(y + 24) + 3(y + 24) = 0
(y + 3)(y + 24) = 0
y = -3, -24
Relationship between x and y cannot be established.
8) Answer: B
2x2 + 26x + 84 = 0
2x2 + 14x + 12x + 84 = 0
2x(x + 7) + 12(x + 7) = 0
(2x + 12)(x + 7) = 0
x = -6, -7
y2 + 15y + 56 = 0
y2 + 8y + 7y + 56 = 0
y(y + 8) + 7(y + 8) = 0
(y + 7)(y + 8) = 0
y = -7, -8
x ≥ y
9) Answer: E
x2 + 29x + 210 = 0
x2 + 14x + 15x + 210 = 0
x(x + 14) + 15(x + 14) = 0
(x + 15)(x + 14) = 0
x = -15, -14
y2 + 2y – 168 = 0
y2 – 12y + 14y – 168 = 0
y(y – 12) + 14(y – 12) = 0
(y + 14)(y – 12) = 0
y = -14, 12
x ≤ y
10) Answer: C
x2 + 178 = 502
x2 = 324
x = 18, -18
y2 = 361
y = 19, -19
Relationship between x and y cannot be established.
This post was last modified on October 9, 2021 11:50 am