A traveling wave on a taut string with a tension force T, is given by the wave function: y(x,t) = 0.05sin(Ttx-100rt), where x and y are in meters and t is in seconds. If the linear mass density of the string is given by p = 0.01 kg/m, then the tension force on the string is, O 0.5 N O 100 N O 25 N O 10 N O 1N

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Chapter1: Units, Trigonometry. And Vectors
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Problem 1CQ: Estimate the order of magnitude of the length, in meters, of each of the following; (a) a mouse, (b)...
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15 MCQS
A traveling wave on a taut string with a
tension force T, is given by the wave
function: y(x,t) = 0.05sin(Ttx-100rt), where x
and y are in meters and t is in seconds. If the
linear mass density of the string is given by
p = 0.01 kg/m, then the tension force on the
string is,
O 0.5 N
O 100 N
25 N
O 10 N
O 1N
A mass-spring system oscillates on a
frictionless horizontal surface in simple
harmonic motion with an amplitude A = 0.1
m. At what position (x ?) would the kinetic
energy of the system be equal to three
times its elastic potential energy (K = 3U)?
At x = +0.05 m
O At x = 10.1 m
O At x = +0.04 m
O At x = 10.08 m
At x = +0.025 m
:)
•..
Transcribed Image Text:4:31 LTE 1 Classroom a docs.google.com uccount 15 MCQS A traveling wave on a taut string with a tension force T, is given by the wave function: y(x,t) = 0.05sin(Ttx-100rt), where x and y are in meters and t is in seconds. If the linear mass density of the string is given by p = 0.01 kg/m, then the tension force on the string is, O 0.5 N O 100 N 25 N O 10 N O 1N A mass-spring system oscillates on a frictionless horizontal surface in simple harmonic motion with an amplitude A = 0.1 m. At what position (x ?) would the kinetic energy of the system be equal to three times its elastic potential energy (K = 3U)? At x = +0.05 m O At x = 10.1 m O At x = +0.04 m O At x = 10.08 m At x = +0.025 m :) •..
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