Ax Final Calculate the x component of the acceleration at the final time. ar (tf) = 0 m/s^2 Hint: Final Acceleration Final Speed Calculate the speed of the asteroid at the final time. Speed and Velocity v(tf) = 48.173 m/s Hint: ........
Displacement, Velocity and Acceleration
In classical mechanics, kinematics deals with the motion of a particle. It deals only with the position, velocity, acceleration, and displacement of a particle. It has no concern about the source of motion.
Linear Displacement
The term "displacement" refers to when something shifts away from its original "location," and "linear" refers to a straight line. As a result, “Linear Displacement” can be described as the movement of an object in a straight line along a single axis, for example, from side to side or up and down. Non-contact sensors such as LVDTs and other linear location sensors can calculate linear displacement. Non-contact sensors such as LVDTs and other linear location sensors can calculate linear displacement. Linear displacement is usually measured in millimeters or inches and may be positive or negative.
I have been trying to solve these problems but am getting wrong answers how would I do this correctly?
![Ax Final
Calculate the x component of the acceleration at the final time.
az (tf) = 0 m/s^2
Hint:
Final Acceleration
Final Speed
Calculate the speed of the asteroid at the final time.
Speed and Velocity
v(tf) = 48.173 m/s
Hint:](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F919fc4f8-bc37-4123-8b2a-9ca8cd02385f%2F781ec7ef-8356-42e6-97a4-d4b5ae081c70%2Frzw8lo_processed.png&w=3840&q=75)
![The velocity as a function of time for an asteroid in the asteroid belt is given by:
6(t)
vot
-t/to î +
= voe
2to
where vo and to are constants.
Use t
= 0 s as the initial time, and te
1.7to as the final time.
Hint: Doing your work algebraically first (as you always should) you will find that being given the final time this way will cut down a lot of
number crunching in your calculator!
Note: these questions do not have to be answered in the order in which they are asked (it may be easier to answer them in a different
order).
The values for the constants that you will use are:
48.5 m/s
to
= 251 s
Vo =](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F919fc4f8-bc37-4123-8b2a-9ca8cd02385f%2F781ec7ef-8356-42e6-97a4-d4b5ae081c70%2F1d0l2k_processed.png&w=3840&q=75)
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