QUIZ 9 : MATH 251, Section 516
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”An Aggie does not lie, cheat or steal, or tolerate those who do”
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Write up your result, detail your calculations if necessary and BOX your final answer
1. [30pts] Does there exist a vector field G such that Curl G = h2x, 3yz, −xz 2 i (support your answer) ?
2. Let S the surface given by ~r(u, v) = hv 3 − 5u, u2 , v 2 − 3i.
(a) [35pts]Find the normal vector to S at the point corresponding to (u, v) = (1, 2).
(b) [35pts]Find an equation of the tangent plane to S passing through the point (3, 1, 1).
Correction.
1. Thanks to a theorem seen in class, if such a vector field G exists then div(curl G) = 0 for all (x, y, z).
So, compute
divh2x, 3yz, −xz 2 i =
∂(2x) ∂(3yz) ∂(−xz 2 )
+
+
∂x
∂y
∂z
= 2 + 3z − 2xz 6= 0 for some (x, y, z) ∈ R3 .
So, by contraposition, there doesn’t exist such a G .
2. (a) A normal vector to a parametric surface S is ~ru × ~rv (u, v).
~ru (u, v) = h−5, 2u, 0i, so for (u, v) = (1, 2), ~ru (1, 2) = h−5, 2, 0i.
~rv (u, v) = h3v 2 , 0, 2vi, so for (u, v) = (1, 2), ~rv (1, 2) = h12, 0, 4i
~i
~ru × ~rv (1, 2) = −5
12
~j
2
0
~k 0
4
= h8, 20, −24i.
(b) The point (3, 1, 1) corresponds to r(1, 2). Then an equation of the tangent plane to S at (3, 1, 1)
is
~ru × ~rv (1, 2) • hx − 3, y − 1, z − 1i = 8(x − 3) + 20(y − 1) − 24(z − 1) = 0 ⇔ 8x + 20y − 24z = 20
⇔ 2x + 5y − 6z = 5 .