The equation of projectile is y=16x-(x^(...

The equation of projectile is `y=16x-(x^(2))/(4)` the horizontal range is:-

Promotional Banner

Promotional Banner

Similar Questions

Explore conceptually related problems

The equation of a projectile is y = ax - bx^(2) . Its horizontal range is

The equation of a projectile is y = ax - bx^(2) . Its horizontal range is

The equation of projectile is y = 16 x - (5 x^2)/(4) . Find the horizontal range.

The equation of projectile is y = 16 x - (5 x^2)/(4) . Find the horizontal range.

The equation of projectile is y = 16 x - (5)/(4)x^(2) find the horizontal range

The equation of projectile is y = 16 x - (5)/(4)x^(2) find the horizontal range

The equation of a projectile is y = sqrt(3)x - ((gx^2)/2) the horizontal range is

The equation of a projectile is y = sqrt(3)x - ((gx^2)/2) the horizontal range is

The equation of motion of a projectile is y = 12 x - (3)/(4) x^2 . The horizontal component of velocity is 3 ms^-1 . What is the range of the projectile ?

The equation of motion of a projectile is y = 12 x - (3)/(4) x^2 . The horizontal component of velocity is 3 ms^-1 . What is the range of the projectile ?

Recommended Questions

The equation of projectile is y=16x-(x^(2))/(4) the horizontal range i...
Text Solution
|
The equation of projectile is y = 16 x - (5 x^2)/(4) . Find the horizo...
Text Solution
|
The equation of motion of a projectile is y = 12 x - (3)/(4) x^2. The ...
Text Solution
|
Trajectory of particle in projectile motion is y=(x-x^(2)//80) , x and...
Text Solution
|
The equation of projectile is y=16x-(x^(2))/(4) the horizontal range i...
Text Solution
|
The equation of projectile is y = 16 x - (5)/(4)x^(2) find the horizon...
Text Solution
|
[" The equation of trajectory of a projectile is "],[y=ax-bx^(2)" wher...
Text Solution
|
The equation of a projectile is y = ax - bx^(2) . Its horizontal range...
Text Solution
|
Equations of trajectory of a projectile are x=4 t, y= 3t - 5 t ^(2) , ...
Text Solution
|