Practice 1 MAT 240

(1) Find the component form, magnitude, and a unit vector in the direction of the vector with initial point ( -4, 0, 3) and terminal point ( 2, 3, 5).

(2) For the vectors u = < 6, 3, 2> and v = < 2, -2, 0>:

(a) find 2u – 3v

(b) Find the angle between the two vectors

(c) Give a vector which is normal to both u and v.

(3) A 200 pound dolly is on a ramp at an inclination of . How much force is required to keep the dolly stationary on the ramp?

(4) If u = < -2, 4 >, and v = < 3, x > and u is orthogonal to v, what is x?

(5) Find parametric and symmetric equations of the line containing the points (-4, 0, 3) and (2, 3, 5).

(6) (a) Find the equation of the plane containing the points

(0, 2, 0), (-4, 1, 3) and (2, 3, 5).

(b) Find the intercepts, and sketch the plane

(c) Find the distance between the plane in (6) and the point Q = (6, 2, -4).

(7) Tell the type of quadric surface given by the equation, and give a rough sketch, directed down the proper axis (if that is relevant) .

(a)

(b)

(c)

(8) What are the (xy-, xz-, and yz-) traces of the following quadric surfaces?

(a)

(b)

Solutions:

(1) Subtract the components of the initial point from those of the terminal point:

u = < 2 - - 4, 3 – 0, 5 – 3> = < 6, 3, 2 >

Magnitude: ||u|| =

Unit vector:

(2)

(a) 2< 6, 3, 2 > - 3< 2, -2, 0> = <12 – 6, 6 - - 6, 4 – 0> = < 6, 12, 4 >

(b)

(c) The cross product is normal to both vectors:

(3) Model the ramp as a unit vector with a trigonometric representation:

v = cos(30)i + sin(30)j, and then the force of the truck as F = -200j (this is because the weight of the truck is driven straight down by gravity) . The force required to keep the truck up is

projvF = =

which has magnitude 100 lbs.

(4) If they are orthogonal, then their dot product is zero – so dot them up and solve for x:

(5) We need a direction vector – take the vector with the given points as initial and terminal points: u = < 2 - - 4, 3 – 0, 5 – 3> = < 6, 3, 2 >

Then choose one of the points (I'm going to use (2, 3, 5) , and use the formulas

parametric:

symmetric:

(6) (a) Let P = (0, 2, 0), Q = (-4, 1, 3) and R = (2, 3, 5).

Use these points to find a couple of vectors in the plane:

Then find the cross-product of these to generate our normal vector:

Pick a point (I'm going to use (0, 2, 0)) and use the formula;

-8(x – 0) + 26(y – 2) - 2(z – 0) = 0,

-8x +26y- 2z= 52, divide through by -2:

4x – 13y + z = -2.

note: when a plane's equation is missing a variable (here, z) that means that it is parallel to the plane

(b) Intercepts: , ,

(c) Use one of the points in plane (i'm going to use (0,2,0) ) , the normal vector

n = <4, -13, 1> and then the formula:

(7) Get it into recognizable standard form:

(a) The power on y is 1, and thus the quadric surfaces that we have seen in these situations must be solved for the variable with power 1, if present:

, this is is an elliptic paraboloid pointed in the y-direction (it's the special variable.

(b) We can either subtract away the terms on the right or left – the constant term is going to be zero, and from our list of surfaces, that means we're going to need two positive terms – so move everything to the left.

x is the special variable and direction of this elliptic cone.

(c) Move the variables all to the left: The special variable (and direction) is z, for this hyperboloid of two sheets.

(8) (a) xy: hyperbola, (b) xz: hyperbola, (c) yz: none

(b) All traces are circles – this is an ellipsoid which happens to be a sphere as well.