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1. Two buses start from a bus terminal with a speed of 20 km/h at interval of 10 minutes. What is the speed of a man coming from the opposite direction towards the bus terminal if he meets the buses at interval of 8 minutes?

A. 3 km/h

B. 4 km/h

C. 5 km/h

D. 7 km/h

Discuss

Solution:

Let Speed of the man is x kmph.
Distance covered in 10 minutes at 20 kmph = distance covered in 8 minutes at (20 + x) kmph.
Or,

20 \times \frac{10}{60} = \frac{8}{60} \times (20 + x)

Or, 200 = 160 + 8x
Or, 8x = 40
Hence, x = 5kmph.

Detailed Explanation:
A _____________M_______________B
A = Bus Terminal.

B = Let meeting point of first bus and the man and this distance is covered by Bus in 10 minutes. I.e. Distance A to be is covered first bus in 10 min. As AB distance can be covered by second bus in 10 minutes as well.

Distance Covered by Bus in 10 min = AB =

\frac{20}{60} \times 10

\frac{10}{3}

km.

Now, M is the Meeting Point of Second Bus with Man. Man covered distance B to M in 8 minutes.
Now, Relative distance of both Man and Bus will be same as both are traveling in opposite direction of each other. Let Speed of the man = x kmph.

Relative speed = 20 + x

To meet at Point M, bus and Man has covered the distance (AB) in 8 minutes with relative speed. And Same AB distance is covered by bus in 10 minutes. Thus,Distance covered in 8 minutes with relative speed (20 + x) kmph = distance covered by bus in 10 minuted with speed 20 kmph.

2. Walking $\frac{3}{4}$ of his normal speed, Rabi is 16 minutes late in reaching his office. The usual time taken by him to cover the distance between his home and office:

A. 48 min.

B. 60 min.

C. 42 min.

D. 62 min.

Discuss

Solution:

1^st method:

\frac{4}{3}

of usual time = Usual time + 16 minutes;
Hence,

\frac{1}{3} rd

of usual time = 16 minutes;
Thus, Usual time = 16 × 3 = 48 minutes.

2^nd method:
When speed goes down to

\frac{3}{4} th

(i.e. 75%) time will go up to

\frac{4}{3} rd

(or 133.33%) of the original time.
Since, the extra time required is 16 minutes; it should be equated to

\frac{1}{3} rd

of the normal time.
Hence, the usual time required will be 48 minutes.

3. Two trains for Mumbai leave Delhi at 6 am and 6.45 am and travel at 100 kmph and 136 kmph respectively. How many kilometers from Delhi will the two trains be together:

A. 262.4 km

B. 260 km

C. 283.33 km

D. 275 km

Discuss

Solution:

Difference in time of departure between two trains = 45 min. =

\frac{45}{60}

hour =

\frac{3}{4}

hour.
Let the distance be x km from Delhi where the two trains will be together.
Time taken to cover x km with speed 136 kmph be t hour
and time taken to cover x km with speed 100 kmph (As the train take 45 mins. more) be

t + \frac{3}{4}

\frac{4 t + 3}{4}

Now,
100 ×

\frac{4 t + 3}{4}

= 136t
Or, 25(4t + 3) = 136t
Or, 100t + 75 = 136t
Or, 36t = 75
Or, t =

\frac{75}{36}

= 2.083 hours
Then, distance x km = 136 × 2.083 ≈ 283.33 km.

4. A man takes 6 hours 15 minutes in walking a distance and riding back to starting place. He could walk both ways in 7 hours 45 minutes. The time taken by him to ride back both ways is:

A. 4 hours

B. 4 hours 30 min.

C. 4 hours 45 min.

D. 5 hours

Discuss

Solution:

Time taken in walking both the ways = 7 hours 45 minutes -------- (i)
Time taken in walking one way and riding back = 6 hours 15 minutes ----------- (ii)
By the equation (ii) × 2 - (i), we have,
Time taken by the man in riding both ways,
= 12 hours 30 minutes - 7 hours 45 minutes
= 4 hours 45 minutes.

5. A man completes a certain journey by a car. If he covered 30% of the distance at the speed of 20kmph. 60% of the distance at 40km/h and the remaining of the distance at 10 kmph, his average speed is:

A. 25 km/h

B. 28 km/h

C. 30 km/h

D. 33 km/h

Discuss

Solution:

\begin{aligned} Let the total distance be 100 km . \\ Average speed \\ = \frac{total distance covered}{time taken} \\ = \frac{100}{\frac{30}{20} + \frac{60}{40} + \frac{10}{10}} \\ = \frac{100}{\frac{3}{2} + \frac{3}{2} + 1} \\ = \frac{100}{\frac{3 + 3 + 2}{2}} \\ = \frac{100 \times 2}{8} \\ = 25 kmph \end{aligned}

Alternate
Speed Time and Distance mcq solution image

10% of journey's = 40 km
Then, total journey = 400 kms

\begin{aligned} And, Average speed \\ = \frac{Total distance}{Total time} \\ 30 % of journey \\ = 400 \times \frac{30}{100} \\ = 120 km \\ 60 % of journey \\ = 400 \times \frac{60}{100} \\ = 240 km \\ 10 % of journey \\ = 400 \times \frac{10}{100} \\ = 40 km \\ Average speed \\ = \frac{400}{\frac{120}{20} + \frac{240}{40} + \frac{40}{10}} \\ = \frac{400}{6 + 6 + 4} \\ = \frac{400}{16} \\ ∴ Average speed = 25 km/hr \end{aligned}

6. From two places, 60 km apart, A and B start towards each other at the same time and meet each other after 6 hour. If A traveled with $\frac{2}{3}$ of his speed and B traveled with double of his speed, they would have met after 5 hours. The speed of A is:

A. 4 km/h

B. 6 km/h

C. 10 km/h

D. 12 km/h

Discuss

Solution:

A →_______60Km_________← B
Let the speed of A = x kmph and that of B = y kmph

According to the question;
x × 6 + y × 6 = 60
Or, x + y = 10 --------- (i)
And,

(\frac{2 x}{3} \times 5) + (2 y \times 5) = 60

Or, 10x + 30y = 180
Or, x + 3y = 18 ---------- (ii)
From equation (i) × 3 - (ii)
3x + 3y - x - 3y = 30 - 18
Or, 2x = 12
Hence, x = 6 kmph

Alternate
Speed Time and Distance mcq solution image

∵

They meet after 6 hours if they walk towards each other i.e., their speed will be added.
So, their relative speed in opposite direction

= \frac{Distance}{Time} = \frac{60}{6}

Relative speed in opposite direction :

(⇌) = 10 km/h . . . . . (i)

According to the question,

\begin{aligned} \Rightarrow \frac{2}{3} A + 2 B = \frac{60}{5} \\ \Rightarrow \frac{2}{3} A + 2 B = 12 \\ \Rightarrow A + 3 B = 18 \\ \Rightarrow B^{'} s Speed  = \frac{18 - A}{3} \\ \Rightarrow A + B = 10 \\ \Rightarrow A + \frac{18 - A}{3} = 10 \\ \Rightarrow 3 A + 18 - A = 30 \\ \Rightarrow 2 A = 12 \\ \Rightarrow A's speed  =  6 km/h \end{aligned}

7. A, B and C start together from the same place to walk round a circular path of length 12km. A walks at the rate of 4 km/h, B 3 km/h and C $\frac{3}{2}$ km/h. They will meet together at the starting place at the end of:

A. 10 hours

B. 12 hours

C. 15 hours

D. 24 hours

Discuss

Solution:

Time taken to complete the revolution:
A →

\frac{12}{4}

= 3 hours
B →

\frac{12}{3}

= 4 hours
C → 12 ×

\frac{2}{3}

= 8 hours
Required time,
= LCM of 3, 4, 8.
= 24 hours.

8. Ravi and Ajay start simultaneously from a place A towards B 60 km apart. Ravi's speed is 4km/h less than that of Ajay. Ajay, after reaching B, turns back and meets Ravi at a places 12 km away from B. Ravi's speed is:

A. 12 km/h

B. 10 km/h

C. 8 km/h

D. 6 km/h

Discuss

Solution:

Ajay → (x + 4) kmph.
A ________ 60 km _________ B
Ravi → x kmph.

Let the speed of Ravi be x kmph;
Hence, Ajay's speed = (x + 4) kmph;
Distance covered by Ajay = 60 + 12 = 72 km;
Distance covered by Ravi = 60 - 12 = 48 km.

According to question,

\begin{aligned} \frac{72}{x + 4} = \frac{48}{x} \\ or, \frac{3}{x + 4} = \frac{2}{x} \\ or, 3 x = 2 x + 8 \\ or, x = 8 kmph \end{aligned}

9. The speed of A and B are in the ratio 3 : 4. A takes 20 minutes more than B to reach a destination. Time in which A reach the destination?

A. $1 \frac{1}{3}$ hours

B. 2 hours

C. $2 \frac{2}{3}$ hours

D. $1 \frac{2}{3}$ hours

Discuss

Solution:

Ratio of speed = 3 : 4
Ratio of time taken = 4 : 3 (As Speed ∝ $\frac{1}{Time},$ When distance remains constant.)
Let time taken by A and B be 4x and 3x hour respectively.

Then,
4x - 3x =

\frac{20}{60}

Or, x =

\frac{1}{3}

Hence, time taken by A = 4x
hours = 4 ×

\frac{1}{3}

1 \frac{1}{3}

hours.

10. A man covers half of his journey at 6 km/h and the remaining half at 3 km/h. His average speed is

A. 9 km/h

B. 4.5 km/h

C. 4 km/h

D. 3 km/h

Discuss

Solution:

\begin{aligned} Average speed \\ = \frac{2 x y}{x + y} \\ = \frac{2 \times 6 \times 3}{6 + 3} \\ = \frac{36}{9} \\ = 4 kmph \end{aligned}

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