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  • UIIC ASSISTANT RECRUITMENT Numerical Ability Study Material

Digitization help student to explore and study their academic courses online, as this gives them flexibility and scheduling their learning at their convenience. Kidsfront has prepared unique course material of Numerical Ability Time And Speed for UIIC ASSISTANT RECRUITMENT student. This free online Numerical Ability study material for UIIC ASSISTANT RECRUITMENT will help students in learning and doing practice on Time And Speed topic of UIIC ASSISTANT RECRUITMENT Numerical Ability. The study material on Time And Speed, help UIIC ASSISTANT RECRUITMENT Numerical Ability students to learn every aspect of Time And Speed and prepare themselves for exams by doing online test exercise for Time And Speed, as their study progresses in class. Kidsfront provide unique pattern of learning Numerical Ability with free online comprehensive study material and loads of UIIC ASSISTANT RECRUITMENT Numerical Ability Time And Speed exercise prepared by the highly professionals team. Students can understand Time And Speed concept easily and consolidate their learning by doing practice test on Time And Speed regularly till they excel in Numerical Ability Time And Speed.


Time And Speed
Shyam is travelling on his cycle and has calculated to reach the point`A` at 2 PM, if he travels at 10 kmph. He will reach there at 12 noon, if he travels at 15 kmph. At what speed must he travel to reach A at 1 PM?

a) 5.54 s
b) 6.04 s
c) 6.36 s
d) 5.04 s



Answer
Solution
Correct Answer Is : 5.04 s
Solution Is : Total length of trains = 75 + 100 = 175 m Relative speed = 60 + 65 = 125 km/h 125 x 5/18 m/s Time taken = Total length/ Relative speed = 175 x 18/125x5 = 5.04s.
Shyam is travelling on his cycle and has calculated to reach the point`A` at 2 PM, if he travels at 10 kmph. He will reach there at 12 noon, if he travels at 15 kmph. At what speed must he travel to reach A at 1 PM?

a) 12 kmph
b) 14 kmph
c) 8 kmph
d) 11 kmph



Answer
Solution
Correct Answer Is : 12 kmph
Solution Is : (A) Suppose Shyam covers the distance in x hours @ 10 km/hr so as to reach the point A by 2 P.M. Suppose, he covers the same distance in (x-2) hours @ 15 km/hr so as to reach the point A by 12 Noon. => Shyam starts his journey at 8 A.M and the length of the journey = 60 km. => So as to reach the point A at 1 PM, Shyam must travel @ 12 km/hr.
Vivek is standing at a point "A" and walks North-east for 4 kilometres. He stops, faces South and walks till he can see point`A` exactly to his west. How far is he now from the point of A?

a) 2 km
b) 2?2 km
c) 2?3 km
d) None of these



Answer
Solution
Correct Answer Is : 2?2 km
Solution Is : (B) Vivek is 2?2 km from the point of A .
Azhar can complete a journey in 10 hours. He travels the first half of the journey at a speed of 21 km/h. and the balance at 24 km/h. Find the total distance in km?

a) 244
b) 225
c) 221
d) 230



Answer
Solution
Correct Answer Is : 225
Solution Is : Let 2x be the distance covered in 10 hours . The first half distance i.e.., x is covered at 21 km / h Second half distance i.e.., x is covered at 24 km/h 21 = x/t ---> x = 21t ---(1) 24 = x/(10-t) ---> x = 24 ( 10-t) --- (2) From Eqn (1) and (2) 21t = 24 ( 10 - t) 21t = 240 - 24t 45 t = 240 t = 5 1/3 h = 5 h 20 m From eqn (1) --- > x = 21 ( 5.33) x = 112.5 Total distance = 2x = 225 km
Ram and Rahim standing at a distance of 680 m run towards each other at a speed of 8 m/sec and 9 m/sec respectively. After how long will they meet?

a) 17 s
b) 24 sq m
c) 40 s
d) 36 s



Answer
Solution
Correct Answer Is : 40 s
Solution Is : Ram and Rahim standing at a distance of 680 m run towards each other at a speed of 8 m/sec and 9 m/sec respectively Total speed at which they are approaching each other = 8 + 9 = 17 m/s Time taken = distance / speed = 680 / 17 = 40 s .
A man travel from A to B at the rate of 7km/h and comes back from B to A at the rate of 5km/h . The average speed of the man for the whole journey is

a) 6(1/2)km/h
b) 6 km/h
c) 5(5/6) km/h
d) 5(1/6) km/h



Answer
Solution
Correct Answer Is : 5(5/6) km/h
Solution Is : The average speed =(2ab/a+ b) =(2*7*5/7+5)=70/12 =5(5/6) km/h
A train 100m long, running at 36km/h, takes 25s to pass a bridge. The length of the bridge is

a) 100m
b) 80m
c) 150m
d) 120m



Answer
Solution
Correct Answer Is : 150m
Solution Is : Speed of train=36km/h=36*(5/18)=10m/s Total distance= Length of train + Length of bridge=(100+x)m Time taken=25s Speed=distance/time 100=(100+x/25)x=250-100=150m
A student starting from his house walks at a speed of 2 1/2 km/h and reaches his school 6 minutes late. Next day starting at the same time he increases his speed by 1 km/h and reaches 6 minutes early. The distance between the school and his house is

a) 1 3/4 km
b) 3 1/2 km
c) 6 km
d) 4 km



Answer
Solution
Correct Answer Is : 1 3/4 km
Solution Is : Let the distance between the school and the house is x According to the question x/2.5 - x/3.5 = 12/60 min, 10x/25 - 10x/35 = 1/5h 2x/5-2x/7= 1/5, 14x-10x/35 = 1/5 4x=35/5, 4x = 7, x=7/4, x= 1 3/4 km
A man goes from Mysore to Bangalore at a uniform speed of 40 km/hr and comes back to Mysore at a uniform speed of 60 km/hr. His average speed for the whole journey is

a) 48 km/hr
b) 50 km/hr
c) 54 km/hr
d) 55 km/ hr



Answer
Solution
Correct Answer Is : 48 km/hr
Solution Is :
Two trains of lengths 70 m and 80 m are running at speeds of 68 km/hr and 40 km/hr rspectively on paralled tracks in opposite directions. In how many seconds will they pass each other ?

a) 10
b) 8
c) 5
d) 3



Answer
Solution
Correct Answer Is : 5
Solution Is :
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