I was working through my exercises and they included this one that is very unlike the others.
"A particle is projected at an angle θ with initial velocity 'u'. Its horizontal displacement (x) and height (y) are connected by the equation:
y = x tanθ - gx2/2u2cos2θ
What is the maximum height to which the particle rises, and how far has it then travelled horizontally? (g is the acceleration due to gravity, a constant.)"
I thought I'd find f'(x) first, and I ended up with tanθ - 2g2u-2cos-2θx.
Then I thought I should find which value of x makes the above equal zero:
tanθ/2g2u-2cos-2θ = x
At this point, I lose faith that I'm on the right path. I feel confused about what i should do.
"A particle is projected at an angle θ with initial velocity 'u'. Its horizontal displacement (x) and height (y) are connected by the equation:
y = x tanθ - gx2/2u2cos2θ
What is the maximum height to which the particle rises, and how far has it then travelled horizontally? (g is the acceleration due to gravity, a constant.)"
I thought I'd find f'(x) first, and I ended up with tanθ - 2g2u-2cos-2θx.
Then I thought I should find which value of x makes the above equal zero:
tanθ/2g2u-2cos-2θ = x
At this point, I lose faith that I'm on the right path. I feel confused about what i should do.