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stationary points + points of inflexion (1 Viewer)

izzy_xo

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Joined
Apr 19, 2009
Messages
59
Gender
Female
HSC
2010
hey ,

I was just wondering if anyone could help me with the following question:

the curve y=ax^3 + bx^2 - x + 5
has a point of inflexion at (1,-2) find the
values for a and b.

many thanks.
 

life92

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May 7, 2008
Messages
81
Gender
Male
HSC
2009
hey ,

I was just wondering if anyone could help me with the following question:

the curve y=ax^3 + bx^2 - x + 5
has a point of inflexion at (1,-2) find the
values for a and b.

many thanks.
y = ax^3 + bx^2 - x + 5

y' = 3ax^2 + 2bx - 1

y'' = 6ax + 2b

Since it has an inflexion at (1,-2) then y'' = 0 at (1,-2)

y'' = 6ax + 2b
0 = 6a(1) + 2b
b = -3a

Now sub this and (1,-2) into the original equation and you get...
-2 = a(1)^3 - 3a(1)^2 - 1 + 5
-2 = -2a + 4
-2a = -6
a = 3
Therefore b = -9
 

izzy_xo

Member
Joined
Apr 19, 2009
Messages
59
Gender
Female
HSC
2010
y = ax^3 + bx^2 - x + 5

y' = 3ax^2 + 2bx - 1

y'' = 6ax + 2b

Since it has an inflexion at (1,-2) then y'' = 0 at (1,-2)

y'' = 6ax + 2b
0 = 6a(1) + 2b
b = -3a

Now sub this and (1,-2) into the original equation and you get...
-2 = a(1)^3 - 3a(1)^2 - 1 + 5
-2 = -2a + 4
-2a = -6
a = 3
Therefore b = -9
Thanks :)
 

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