- Sep 19, 2000
- 10,286
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[edit]Forgot the Cream Filling[/edit]
Ok, Im in AP Calculus. We are at dirivitives and tangent lines (not too far). Just so you know this is one of the last problems and missing it really will not hurt me much, Plus Im going to get help from the teacher tommorrow anyways
. The questions goes something like this (btw Our second math teacher who is pretty smart could not figure it out ether.)
Find Constant K such that the line is tangent to a point on the function
Function Line
k/x -3/4*x + 3
we are dealing with dirivitives and So we know that it has to deal with the slope, Right? so
f'(x)= -kx^-2 and the slope of the line -3/4 Therefore we should be able to conclude that -kx^-2 = -3/4 Thats about how far we got. Im going to ramble here, but I dont know if im on the right track or not.
k/x = -3/4*x+3 so k= -3/4*x^2 + 3x so 4k = -3x^2 + 12x 4k = x(-3x + 12).
Any help?
Ok, Im in AP Calculus. We are at dirivitives and tangent lines (not too far). Just so you know this is one of the last problems and missing it really will not hurt me much, Plus Im going to get help from the teacher tommorrow anyways
. The questions goes something like this (btw Our second math teacher who is pretty smart could not figure it out ether.)Find Constant K such that the line is tangent to a point on the function
Function Line
k/x -3/4*x + 3
we are dealing with dirivitives and So we know that it has to deal with the slope, Right? so
f'(x)= -kx^-2 and the slope of the line -3/4 Therefore we should be able to conclude that -kx^-2 = -3/4 Thats about how far we got
. Im going to ramble here, but I dont know if im on the right track or not.k/x = -3/4*x+3 so k= -3/4*x^2 + 3x so 4k = -3x^2 + 12x 4k = x(-3x + 12).
Any help?
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