parametrics 2 (1 Viewer)

[jnney]

the normal at any point P(-8p, -4p^2) on the parabola x^2=-16y cuts the y-axis at thepoint M. find the equation of the locus of the midpoint of PM.

 

[unknown88]

the normal at any point P(-8p, -4p^2) on the parabola x^2=-16y cuts the y-axis at thepoint M. find the equation of the locus of the midpoint of PM.

y = x^2 / -16 ... dy/dx = -x/8 ...sub x= -8p. so dy/dx = p = GRADIENT of P ...

y - y-cord. of P = p(gradient) [ x- x-cord of p]

y + 4p^2 = p ( x+8p)

y + 4p^2 = px +8p^2
y = px + 4p^2... Thats the equation...the question says M cuts the y-axis, therefore x=0 so sub that into equation

y = p(0) + 4p^2
y=4p^2 so M (0,4p^2) .. just find the midpoint formula and sub in values.

 

[unknown88]

reply wether my method was right or wrong

 

[jnney]

y = x^2 / -16 ... dy/dx = -x/8 ...sub x= -8p. so dy/dx = p = GRADIENT of P ...

y - y-cord. of P = p(gradient) [ x- x-cord of p]

y + 4p^2 = p ( x+8p)

y + 4p^2 = px +8p^2
y = px + 4p^2... Thats the equation...the question says M cuts the y-axis, therefore x=0 so sub that into equation

y = p(0) + 4p^2
y=4p^2 so M (0,4p^2) .. just find the midpoint formula and sub in values.

Mhm, the normal, not the tangent.

 

[unknown88]

then if its normal change the gradient to -1 / p and go just go thru my process agen

 

[jnney]

then if its normal change the gradient to -1 / p and go just go thru my process agen

Yes I did that before posting up the question. I became confused once I had found the equation.

 

[nightweaver066]

 

[bleakarcher]

x^2+4y+16=0