Answer:
Explanation:
given,
two identical spring have identical spring constant
mass 'm' is hanging on one spring and mass of '2m' on another wall.
energy of the two system is same
energy of the system having mass 'm'
energy of the system having mass '2m'
now, Energy are same
we know
Answer:
option A
Explanation:
given,
momentum of blue car in west direction = Pa = 2 kg.m/s
momentum of red cart in east direction = Pb = 3 kg.m/s
total momentum of the two cart = ?
Pa = 2 Kg.m/s
Pb = -3 kg.m/s
Total momentum
P = Pa + Pb
P = 2 - 3
P = - 1 kg.m/s
hence, the total momentum of the two carts after the collision is 1.0 kg•m/s
The correct answer is option A
Answer:
Speed of the bicyclist when going to city = 14 miles per hour.
Speed while return trip = 8 miles per hour.
Explanation:
Let the speed of the bicyclist when going to city = x miles per hour.
Speed while return trip = x - 6 miles per hour.
Total time taken = 11 hrs = Time for the trip to city + time taken for return trip.
Also, Time = Distance / Time.
So,
56 / x + 56 / ( x -6) = 11
11x² -178x + 336 = 0
Solving for x we get:
Acceptable x = 14 miles per hour.
Speed while return trip = x - 6 miles per hour = 8 miles per hour.
To find the average speed on each part of the trip, use the formula Average speed = Total distance/Total time and set up an equation to solve for the unknown speeds.
To find the average speed on each part of the trip, we can use the formula Average speed = Total distance/Total time. Let's assume the average speed on the first part of the trip (56 miles) is x mph. Since the return trip is made at a speed that is 6 mph slower, the average speed on the second part of the trip is (x - 6) mph. We know that the total time for the round trip is 11 hours. So, we can set up the equation:
56/x + 56/(x - 6) = 11
Now, we can solve this equation to find the value of x, which represents the average speed on the first part of the trip. Once we have x, we can find the average speed on the second part of the trip by subtracting 6 from x.
#SPJ3
Latency heat is that heat which is either released or absorbed when a substance changes its physical state at constant temperature eg. from solid to liquid at the melting point or from liquid to gas at boiling point.
The change of phase always occurs with a change of heat. However the temperature does not change because that heat energy is used to overcome cohesive forces between molecules of that substance, no part of heat energy is used to increase the kinetic energy of the molecules. Similarly, heat energy is released and molecules of that substance comes closer but temperature doesn't decrease. So its temperature will not rise/decrease since the kinetic energy of molecules remains the same.
It is a horizontal line along x-axis.
Answer:
so car A will move with speed 10 m/s in opposite direction
Explanation:
As we know that when two cars collide then the momentum of two cars will remains conserved
so here we have
mass of two cars = 100 kg
speed of car A = 8 m/s
speed of car B = - 10 m/s
after collision the speed of car B = +8 m/s
now by momentum conservation equation
so we have
so we have
so car A will move with speed 10 m/s in opposite direction