1. The position and velocity for one-dimensional motion can be derived from the following equations: 1 x1 – X; = V;t +zat² Vf = Vị + at %3D Where, x¡ is the initial position, Xf is the final position, v¡ is the initial velocity, vf is the final velocity, a is the acceleration, and t is the time.
1. The position and velocity for one-dimensional motion can be derived from the following equations: 1 x1 – X; = V;t +zat² Vf = Vị + at %3D Where, x¡ is the initial position, Xf is the final position, v¡ is the initial velocity, vf is the final velocity, a is the acceleration, and t is the time.
Related questions
Question
![1. The position and velocity for one-dimensional motion can be derived
from the following equations:
1
Xf – Xị = Vịt +,at?
2
Vf = Vị + at
Where, x; is the initial position, Xf is the final position, v; is the initial
velocity, vf is the final velocity, a is the acceleration, and t is the time.
Modify the above equations for the motion of free fall object. [Hints:
Definition of free fall object: An object that is falling under the sole
influence of gravity is called a free-falling object.]](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F9974cb88-485f-4954-981d-1d67477878d4%2Fd2840a08-7171-49cf-9fa1-d507b0b4e8ae%2Frseocg_processed.png&w=3840&q=75)
Transcribed Image Text:1. The position and velocity for one-dimensional motion can be derived
from the following equations:
1
Xf – Xị = Vịt +,at?
2
Vf = Vị + at
Where, x; is the initial position, Xf is the final position, v; is the initial
velocity, vf is the final velocity, a is the acceleration, and t is the time.
Modify the above equations for the motion of free fall object. [Hints:
Definition of free fall object: An object that is falling under the sole
influence of gravity is called a free-falling object.]

Transcribed Image Text:2. You are at the top of 40 m tall building. You drop a water balloon
from the top of the building.
A) Write down the equations of motion for the balloon's position and
velocity as it approaches towards the ground.
Expert Solution

This question has been solved!
Explore an expertly crafted, step-by-step solution for a thorough understanding of key concepts.
This is a popular solution!
Trending now
This is a popular solution!
Step by step
Solved in 2 steps
