A ball oscillating on a spring with spring constant 45 N/m has a maximum displacement of 18 cm. The ball's speed is 3.7 m/s when its displacement is 12 cm. Part A What is the ball's mass? Express your answer with the appropriate units. m = Submit Value Units Previous Answers Request Answer ?
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- A 12-cm-long spring is attached to the ceiling. When a 1.5 kg mass is hung from it, the spring stretches to a length of 18 cm. Part A What is the spring constant k? Express your answer with the appropriate units. View Available Hint(s) k = Submit Part B y' = μᾶ Value Submit How long is the spring when a 3.0 kg mass is suspended from it? Express your answer with the appropriate units. View Available Hint(s) μà Units Value ? UnitsPart A After landing on an unfamiliar planet, a space explorer constructs a simple pendulum of length 55.0 cm. The explorer finds that the pendulum completes 96.0 full swing cycles in a time of 129 s What is the magnitude of the gravitational acceleration on this planet? Express your answer in meters per second per second. > View Available Hint(s) Tempiates Symbols undo rego Tését keyboard shortcuts Help 9planet m/s? Submit Prevlous AnawereA 1100-kg car moving on a horizontal surface has speed v = 60 km/h when it strikes a horizontal coiled spring and is brought to rest in a distance of 2.6 m. Part A What is the spring stiffness constant of the spring? Express your answer to two significant figures and include the appropriate units. k= Value Submit Ċ Units 1 ? Previous Answers Request Answer X Incorrect; Try Again; 5 attempts remaining
- Needs Complete typed solution with 100 % accuracy.Part A Find the coefficient of kinetic friction between a 3.75-kg block and the horizontal surface on which it rests if an 84.0-N/m spring must be stretched by 6.40 cm to pull it with constant speed. Assume that the spring pulls in the horizontal direction. Ην ΑΣφ Submit Request AnswerOn a frictionless, horizontal air track, a glider oscillates at the end of an ideal spring of force constant 2.30 N/cm. The graph in the figure (Figure 1) shows the acceleration of the glider as a function of time. Part A Find the mass of the glider. Express your answer with the appropriate units. For related problemsolving tips and strategies, you may want to view a Video Tutor Solution of Angular frequency, frequency, and period in shm. Value Units m = Part B Find the maximum displacement of the glider from the equilibrium point. Figure Express your answer with the appropriate units. HÀ ? ar (m/s³) A = Value Units 12.0 6.0 t (s) 0/10 0.20 030 0.40 -6.0 -12.0 Part C Find the maximum force the spring exerts on the glider. Express your answer with the appropriate units.
- A 10 kg runaway grocery cart runs into a spring with spring constant 240 N/m and compresses it by 62 cm. Part A What was the speed of the cart just before it hit the spring? Express your answer with the appropriate units. V = ☐ μA Value Submit Request Answer Units ?Part A Agent Arlene devised the following method of measuring the muzzle velocity of a rifle (the figure below). She fires a bullet into a 4.116-kg wooden block resting on a smooth surface, and attached to a spring of spring constant k = 162.3 N/m. The bullet, whose mass is 7.870 g, remains embedded in the wooden block. She measures the maximum distance that the block compresses the spring to be 9.460 cm . (Figure 1) What is the speed v of the bullet? Express your answer to four significant figures and include the appropriate units. HA ? Value Units V = Submit Request Answer Provide Feedback Figure 1 of 1 win M m 9.460 cm M+ mQUESTION 9 A 10-kg block is attached to one end of a horizontal spring on a level, frictionless surface. The other end of the spring is attached to a vertical support. The spring obeys Hooke's law and has a spring constant of k = 160 N/m. A physics student pulls the block outward so that the spring stretches by 40 cm. The student releases the block at time t = 0.00 s. Which of the following equations properly gives the position as a function of time? a. x(t) = (- 1.6 m/s)sin(4.0t) b. x(t) = (- 6.4 m/s2)cos(4.0t) C. x(t) = (10 m)cos(4.0t) d. x(t) = (0.40 m)cos(4.0t) e. x(t) = (4.0 m)cos(0.40t)