How Do You Calculate Initial Speed and Maximum Height in Parabolic Motion?

  • Thread starter Thread starter RobSchneider
  • Start date Start date
  • Tags Tags
    Degrees Motion
AI Thread Summary
A cricket ball thrown at a 45-degree angle travels 20 meters horizontally, prompting calculations for its initial speed and maximum height. The initial speed is estimated at 19.7 m/s, but further analysis suggests it should be recalculated to 14 m/s using the range equation. The maximum height reached by the ball is initially assumed to be 10 meters but is later corrected to 5 meters based on the vertical component of the initial velocity. The discussion emphasizes the importance of understanding the relationship between horizontal and vertical motion in parabolic trajectories. Accurate calculations are essential for determining both initial speed and maximum height.
RobSchneider
Messages
2
Reaction score
0

Homework Statement



A cricket ball is thrown upwards at an angle of 45 degrees and pitches 20m from the thrower. What was the balls initial speed and how high does it rise?

Homework Equations





The Attempt at a Solution



Initial Speed- 19.7 m/s
Height- 10(??) m
 
Physics news on Phys.org
RobSchneider said:

Homework Statement



A cricket ball is thrown upwards at an angle of 45 degrees and pitches 20m from the thrower. What was the balls initial speed and how high does it rise?

Homework Equations





The Attempt at a Solution



Initial Speed- 19.7 m/s
Height- 10(??) m

Maximum height can be solved with logic.

When projected at 45 degrees, the initial vertical and horizontal components of velocity are equal.

The horizontal velocity remains the same throughout the flight.
The vertical component reduced to zero in the first half of the trip, then gains the same magnitude of velocity in the second half [coming down rather than going up.

Consider the gain of maximum height.
Velocity drops from the initial vel to zero at a steady rate, so the average velocity is one half of that.
The horizontal velocity has remained the same throughout.
That means the average horizontal velocity is twice the average vertical velocity.
That means the object will travel twice as far horizontally as it does vertically.
All this takes place during the first half of the flight.
in the whole flight, the ball traveled 20m horizontally, so in the first half of the trip, the ball traveled only 10m - and gained a height only half of that.
 
An equation that might be useful in this problem is the range equation, where ∆x = ((v-init.)^2 * sin (2α)/g), where α is the angle & g is gravitational acceleration (9.8 m/s^2). Solve for v-init to get 14 m/s.

You then divide the initial speed into its components by dividing both of them (x & y) by sqrt(2), since the angle is 45 degrees. Use the y-component as the initial velocity & 0 as the final velocity in the equation ((v-final)^2) = ((v-init)^2) - 2*g*y, where g is the gravitational acceleration & y is the change in height.
Solve for y to get 5 m.
 
RobSchneider said:

Homework Statement



A cricket ball is thrown upwards at an angle of 45 degrees and pitches 20m from the thrower. What was the balls initial speed and how high does it rise?

Homework Equations





The Attempt at a Solution



Initial Speed- 19.7 m/s
Height- 10(??) m

As you will see by the thought solution, and the formula solution, you Height answer is incorrect. The Initial Speed figure is also incorrect.
Perhaps if you showed how you got those figures we may be able to see where you went wrong.
 

Thread 'Rolling without slipping on a curved surface'

Kindly see the attached pdf. My attempt to solve it, is in it. I'm wondering if my solution is right. My idea is this: At any point of time, the ball may be assumed to be at an incline which is at an angle of θ(kindly see both the pics in the pdf file). The value of θ will continuously change and so will the value of friction. I'm not able to figure out, why my solution is wrong, if it is wrong .
View full post »

Thread 'Struggling to understand the concept of this question (ice cube in water optics question)'

TL;DR Summary: I came across this question from a Sri Lankan A-level textbook. Question - An ice cube with a length of 10 cm is immersed in water at 0 °C. An observer observes the ice cube from the water, and it seems to be 7.75 cm long. If the refractive index of water is 4/3, find the height of the ice cube immersed in the water. I could not understand how the apparent height of the ice cube in the water depends on the height of the ice cube immersed in the water. Does anyone have an...
View full post »

Similar threads

A ball is thrown w/initial speed vi at an angle 𝜃i with the horizontal
Replies
5
Views
1K
Oblique soccer shot calculation task
Replies
38
Views
4K
Calculating a ratio in Free Fall motion
Replies
7
Views
5K
Projectile Motion Kinematics: Finding maximum height
Replies
14
Views
3K
How Long to Reach Maximum Height for a 70 m/s Projectile at 45 Degrees?
Replies
5
Views
2K
Distance of projectile - only speed given
Replies
4
Views
2K
Find Projectile Flight Time Given Only Maximum Height
Replies
4
Views
2K
Projectile Motion Soccer Ball Problem
Replies
22
Views
5K
How Do You Correctly Cancel Angular Momentum in Physics Problems?
Replies
3
Views
1K
Potential energy of ball thrown upwards
Replies
5
Views
14K

Hot Threads

Recent Insights

Back
Top