Nonlinear springs are classified as hard or soft, depending upon the curvature of their force-deflection curve (see figure). If a delicate instrument having a mass of 5 kg is placed on a spring of length / so that its base is just touching the undeformed spring and then is inadvertently released from that position, determine the maximum deflection xm of the spring and the maximum force Fm exerted by the spring, assuming (a) a linear spring of constant
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Vector Mechanics for Engineers: Dynamics
- Solve it correctly please. I will rate accordingly.arrow_forwardCan you help me with that?arrow_forward2. A spring is hung vertically and an object of mass m attached to the lower end is then slowly lowered a distance d to the equilibrium point a. find the value of the spring constant if the magnitude of the displacement d is 2.0 cm and the mass is .55 kg b. if a second identical spring is attached to the object in parallel with the first spring, where is the new equilibrium point of the system? c. What is the effective spring constant of the two springs acting as one?arrow_forward
- 2) In figure, two blocks are connected by a massless string over a pulley of radius, 2R, and rotational inertia, I. When this system is released at rest, the blocks (masses: m₁ = m and m₂ = 3m) are moving with a constant acceleration. (The friction constant between my and the surface is equal to μ.) a) Draw the free body diagram and write the Newton's equations for both masses and pulley. b) Find the angular velocity of the pulley in 5 second. m₁-m m₂=3marrow_forwardThe value of m = 85 kgsarrow_forwardhelp with all parts of the question thanksarrow_forward
- a)Determine the minimum speed needed for the ball to stay on the curve at point ‘f’ in ms-1 b)Determine the minimum compression of the spring needed so that the ball does not leave the track at point ‘f’ in meterarrow_forward3. A box of mass m=15 kg at the packaging section of a factory comes to the top of a (0=37°) with speed vo and slides down where it is picked up for shipment. In order to avoid damage to the box a spring is used with force constant k=100N/m and the ramp maximum force Fmax=100N. The box slides a distance of -4 m down the incline before it hits the spring is 0.75. ramp as shown. The coefficient of kinetic friction between the box and entire a) Find the work done by the normal force and Vo gravity friction force on the box until it hits the spring. b) Find the maximum speed of the box at the top of the ramp if the box is to be picked up in the spring is www when maximum compression.arrow_forward3. A box of mass m=15 kg at the packaging section of a factory comes to the top of a ramp (0=37°) with speed vo and slides down where it is picked up for shipment. In order to avoid damage to the box a spring is used with force constant k=100N/m and the maximum force Fmax=100N. The box slides a distance of l=4 m down the incline before it hits the spring is 0.75. as shown. The coefficient of kinetic friction between the box and entire ramp a) Find the work done by the gravity , normal force and friction force on the box until it hits the spring. b) Find the maximum speed of the box at the top of the ramp if the box is to be picked up spring is maximum compression. when the in wwwarrow_forward
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