If gravity did not affect the path of a horizontally thrown ball, the ball would ____.

Answers

Answer 1
Answer: If net force acting on the ball is zero(here if no gravitational force acts on the body), the ball will continue its motion in the same direction. Hope this helps.
Answer 2
Answer:

Answer:

travel Horizontally

Explanation:


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The Slowing Earth The Earth's rate of rotation is constantly decreasing, causing the day to increase in duration. In the year 2006 the Earth took about 0.840 longer to complete 365 revolutions than it did in the year 1906.What was the average angular acceleration of the Earth during this time? Give your answer in rad/s2
The power expended when a 10 N barbell is raised 2. 0 m in 2s is
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What is the component of 3i^ + 4j^ along i^+j^
A truck is moving around a circular curve at a uniform velocity of 13 m/s. If the centripetal force on the truck is 3,300 N and the mass of a the truck is 1,600 kg what's the radius of the curve.

During a race, a runner runs at a speed of 6 m/s. 2 seconds later, she is running at a speed of 10 m/s. What is the runner’s acceleration? Show your work.

Answers

v o = 6 m/s,
t = 2 s
v = 10 m/s
v = v o + a t
a t = v - v o
a = ( v - v o ) / t 
a = ( 10 m/s - 6 m/s ) / 2 s = 4 m/s / 2 s = 2 m/s²
Answer:
The runner`s acceleration is 2 m/s².

A bicyclist steadily speeds up from rest to 11.0m/s in 3.40s. How far did she travel during this time?

Answers

Answer:

To find the distance traveled by the bicyclist during the given time, we can use the formula:

Distance = (Initial Velocity * Time) + (0.5 * Acceleration * Time^2)

Since the bicyclist starts from rest, the initial velocity is 0 m/s.

Given:

Initial velocity (u) = 0 m/s

Final velocity (v) = 11.0 m/s

Time (t) = 3.40 s

Using the formula, we can calculate the distance traveled:

Distance = (0 * 3.40) + (0.5 * Acceleration * 3.40^2)

To find the acceleration, we can use the equation:

Acceleration = (Final Velocity - Initial Velocity) / Time

Acceleration = (11.0 - 0) / 3.40

Acceleration = 11.0 / 3.40

Now, we substitute the value of acceleration into the distance formula:

Distance = (0 * 3.40) + (0.5 * (11.0 / 3.40) * 3.40^2)

Simplifying further:

Distance = 0 + (0.5 * (11.0 / 3.40) * 11.56)

Distance = (0.5 * (11.0 / 3.40) * 11.56)

Distance = (0.5 * 11.0 * 3.40)

Distance = 0.5 * 37.4

Distance = 18.7 meters

Therefore, the bicyclist traveled a distance of 18.7 meters during the given time of 3.40 seconds.

In projectile mtion, what is the x-component of the initial velocity? if V= Vi = 100 m/s and the angle with horizontal axis Θ = 60 degrees

Answers

Answer:

???????????????????????

Explanation:

The x - component of the initial velocity is given as:

Ux = Vi cos theta

Ux = 100cos 60

Ux = 50m/s

When work is done on an object, the object gains energy. true or false

Answers

True. When work is done on an object, the object gains energy

Answer:

True

Explanation:

i took the quiz

How many types of quarks are there?
a. 2
b. 4
c. 6
d. 8

Answers

There are 6 types of quarks.

Answer: C. 6
The are 6 types of quarks: up, down, strange, charm, top, and bottom.
The answer:

C.6

NEED ASAP PLEASE !!! Suppose that a block is pulled 16 meters across a floor. What amount of work is done if the force used to drag the block is 22 N?

A. 200 J
B. 330 J
C. 352 J
D. 220 J

Answers

Answer: Option (C) is the correct answer.

Explanation:

Work is defined as the energy required when force is applied in a certain direction.

The expression for work, force and distance is as follows.

                        W = F × d

where,      W = work

                 F = force

                 d = distance

It is given that force applied to drag the box is 22 N and distance is 16 meters. Therefore, calculate work done as follows.

                        W = F × d

                            = 22 N × 16 meters

                            = 352 Nm               (1 Newton meter = 1 joule)

or,                   W = 352 J

Thus, we can conclude that amount of work done is 352 J.

work = force x distance
22N x 16m = 352 J