
A spring with spring constant 28 N/m is compressed a distance of 7.5 cm by a...
In the figure, a block of mass m = 11 kg is released from rest on a frictionless incline of angle θ = 26°. Below the block is a spring that can be compressed 3.4 cm by a force of 320 N. The block momentarily stops when it compresses the spring by 5.3 cm. (a) How far does the block move down the incline from its rest position to this stopping point? (b) What is the speed of the block...
Incline, Spring, and Friction: A block of mass 500 g is attached to a spring of spring constant 80 N m−1. The other end of the spring is attached to a support while the mass rests on a rough surface with a coefficient of friction of 0.20 that is inclined at angle of 30◦ . The block is pushed along the surface till the spring compresses by 10 cm and is then released from rest. (a) Compute how much potential...
A spring with force constant of 58 N/m is compressed by 3 cm in a hockey game machine. The compressed spring is used to accelerate a small metal "puck" with mass 27.8 grams which will then slide up an inclined surface inside the machine. Assume friction is so tiny it may be ignored in this problem. How high in cm above its initial vertical position will the puck rise before stopping (momentarily at least)? Note: Convert units as necessary.
A vertical spring with a spring coustant k = 1500 N/m is sticking up from the floor. A block with a mass of 2.6 kg is pushed downward on the spring until the spring is compressed by 4.4 cm, but the block is not connected to the spring. The block is then released at rest, and it moves upwards, leaving the spring behind. How high above its release point will the block travel before it stops and starts to fall?...
It takes 25 N to compress a spring a distance of 30 cm. That compressed spring then has a 3kg block placed in contact with it. The spring is released, causing the 3 kg block to accelerate along a frictionless floor. After leaving the spring, the 3kg block continues moving on the frictionless floor until it collides with and sticks to a 5kg block, initially at rest. What is the spring constant of the spring?
A spring (k=1500 N/m) is compressed 10 cm with a 200 gram mass on the front. How high will it launch if the spring is directed upwards? How high will the mass move if released up an 45 degree incline?
A block whose mass is m shown in the following figure, the angle of the incline being 6-30°. The block comes to rest momentarily after it has compressed the spring by 5 cm. Assume that the contact benween the block and the incline sunface is frictionless 2. 3 kg is released from rest at the top of the incline as TR (a) If the distance d that the block moved down the incline is 1 m at this [10 marks]...
M -/2 points HRW6 8.P.021 In Fig. 8-34, a 12 kg block is released from rest on an incline angled at e 30. Below the block is a spring that can be compressed 2.0 cm by a force of 270 N The block momentarily stops when it compresses the spring by 6.4 cm. 12 kg Figure 8-34 (a) How far has the block moved down the incline to this stopping point? m (b) What is the speed of the block...
d = the distance the spring
compresses
A block of mass M is placed on an inclined plane that makes an angle theta relative to the horizontal. The block and plane interact with friction coefficients. The angle of inclination is greater then that required for the block to slip and so once it is released, the mass begins to move. It slides a distance L until it makes contact with a spring with stiffness k. The spring compresses a distance...
A vertical spring (ignore its mass), whose spring constant is 980 N/m, is attached to a table and is compressed 0.160 m. (a) What speed can it give to a 0.400 kg ball when released? (b) How high above its original position (spring compressed) will the ball fly?