these are possible answers to choose from....
a. -1/(4t^3)
b. 1/(4t^3)
c. 1/(2t^3)
d. -1/(2t^3)
or None Of These?
2007-08-05 06:57:04 · 6 answers · asked by Olivia 4 in Science & Mathematics ➔ Mathematics
t = (x)^1/2
substitute t in y,
y = x + x^1/2
dy/dx = 1 + 1/(2x^1/2)
d^2y/dx^2 = -1/(4x^3/2) = -1/(4t^3)
Answer is (A)
2007-08-05 07:02:57 · answer #1 · answered by Anonymous · 1⤊ 0⤋
y = x + sqrt(x)
dy/dx = 1 + 1/2(x^-1/2)
d2y/dx2 = -1/4 x^-3/2
= -1/4 t^-3
(a)
2007-08-05 14:11:52 · answer #2 · answered by Anonymous · 1⤊ 0⤋
I don't want to just give you a letter, but i can give you some advice
if you know your basic calcules, you can do dy/dt and dx/dt easily.
Remember that dy/dx= dy/dt * dt/dx
of dy/dx= dy/dt / dx/dt
So you can get a function for dy/dx
And d^2y/dx^2 is just what you get if you take that function, and differentiate it w.r.t. x
2007-08-05 14:07:55 · answer #3 · answered by Anonymous · 1⤊ 0⤋
x = t ²
dx / dt = 2t
d ² x / dt ² = 2
y = t ² + t
dy / dt = 2t + 1
d ² y / dt ² = 2
d ² y / dx ²
= (d ² y / dt ²) / (d ² x / dt ²) = 2 / 2 = 1
NONE of these is answer.
2007-08-05 14:14:55 · answer #4 · answered by Como 7 · 1⤊ 0⤋
hi
just now i have seen your mail pl. let me know your affordable budget for solving these problems.
thank you
2007-08-05 14:16:58 · answer #5 · answered by valivety v 3 · 0⤊ 0⤋
a?
2007-08-05 13:59:58 · answer #6 · answered by luvin_me_4_me 5 · 0⤊ 0⤋