3. Column A
Column B
a Weight of the body
b. Gravitational force
c. Friction causes wear and tear
d. Newton
e. Non-contact force
* Kilogram weight
Pulling a drawer out from a table
Force
Moving ball stops after sometime due to
Spring balance
An apple falls on the Earth due to
The leather soles of new shoes are rubbed
on a rough surface
Magnet attracts iron filings
A piece of chalk wears out as it is used on a
blackboard.
Force required to lift 100 g mass vertically
against the gravity
Force is measured in
Tiny bits of dry paper are pulled by the rubbed comb
2.03.
4.
22] 5. 6.
g. Friction produces heat
h. Push or pull
1 Contact force
1.
1. Electrostatic force
k Friction
9.
8.
7.
Answers
Answer:
what is this l can't understand
Answer:
search-icon-header
Search for questions & chapters
search-icon-image
Class 11
>>Physics
>>Laws of Motion
>>Problems on Friction
>>A box of bananas weighing 40.0N rests on
Question
Bookmark
A box of bananas weighing 40.0N rests on a horizontal surface. The coefficient of static friction between the box and the surface is 0.40 and the coefficient of kinetic friction is 0.20.
a. If no horizontal force is applied to the box and the box is at rest, how large is the friction force exerted on the box?
b. What is the magnitude of the friction force if a monkey applies a horizontal force of 6.0N to the box and the box is initially at rest?
c. What minimum horizontal force must the monkey apply to start the box in motion?
d. What minimum horizontal force must the monkey apply to keep the box moving at constant velocity once it has been started?
e. If the monkey applies a horizontal force of 180 N, What is the magnitude of the friction force and what is the box's acceleration?
Hard
Solution
verified
Verified by Toppr
a. If there is no force applied to the box, the friction force exerted is 0N a/c to the newtons 3rd law of motion
b.Static friction coefficient × weight of the box=6N
c. Monkey must apply horizontal force slightly more than the magnitude of the frictional force to start the motion
i.e. 40N x coefficient of static friction (0.40) = 16N
d. Monkey must apply a horizontal force equal to
40N x coeff of kinetic (0.20) = 8N
e. 180N to the right, minus 8N to the left (kinetic friction x weight) = 172N to the right.
as, F = ma
172=40a
this implies, a = 4.3m/s
2