Answer :
Answer:
(a) F = 42.86N
(c) Ff = –2.25N
(d) Ff = –4.50N
Explanation:
(a) mass of stone m = 20kg
initial speed of stone u = 0m/s
final speed of stone v = 3.0m/s
Time interval = t = 1.4s
From Newtown's second law of motion
F = m(v – u)/t = 20(3.0 – 0)/ 1.4 = 42.86N
(c) v = 0 (comes to rest) u = 3m/s
v² = u² + 2aS
S = 40m
0² = 3³ + 2a×40
80a = –9
a = –9/80 = -0.1125
Once the stone is launched the only force acting on it is Ff the frictional force,
So
Ff = ma = 20×(–0.1125)
Ff = –2.25N
Negative sign shows the force is acting in a direction opposite the direction of motion.
(d) If the stone's mass is now 40kg
Ff = 40(–0.1125) = –4.45N
Questions B & D of the question are not complete and the complete question is;
B) The sweepers in a curling competition adjust the trajectory of the stone by A. Decreasing the coefficient of friction between the stone and the ice. B. Increasing the coefficient of friction between the stone and the ice. C. Changing friction from kinetic to static. D Changing friction from static to kinetic.
D) Suppose the stone's mass is increased to 40 kg, but it is launched at the same 3 m/s. Which one of the following is true? A. The stone would now travel a longer distance before coming to rest. B. The stone would now travel a shorter distance before coming to rest. C. The coefficient of friction would now be greater. D. The force of friction would now be greater.
Answer:
A) Force exerted on stone = 42.89 N
B) The correct option is A
C) Magnitude of the friction force = 2.25N
D) The correct option is D
Explanation:
A) The first equation of motion is given as;
v = u + at
from the question,
v = 3 m/s
u = 0 m/s
t = 1.4 s
Acceleration (a) is unknown.
Thus, making a the subject,
a = (v-u)/t = (3 - 0)/1.4 = 2.1429 m/s²
Force is given as; F = ma
Thus, Force exerted on stone = 20 x 2.1429 = 42.89 N
B) The correct option is A because since friction opposes the relative motion of any object, thus when it is decreased, the object can travel some more distance.
C) Kinetic energy equation is given as;
Ek = (1/2)mv² = (1 /2)(20 x 3²) = 90 J
Now, work done = Force x Distance.
Thus, Frictional force on stone = Work done/Distance
Thus,
F = 90/40 = 2.25N
D) Formula for frictional force with coefficient of friction is given as;
F = μmg
Now, F is also known to be F = ma
Thus,
ma = μmg
So, a = μg
Where μ is coefficient of friction.
Inspecting a = μg, and the other equations of motion, none of the parameters changes with an increase in the mass except for frictional force. Hence, it means a, b, and c are wrong and answer choice D is correct. This is because when mass is increased, the overall frictional force applied is greater even though the distance remains the same.