108 Vectors and geometry in three dimensions
16 Prove that a line which is not completely contained in a quadric surface
can intersect the quadric surface at most twice. Solution: Suppose the coordi-
nate system is so chosen that the given line has the equations y = z = 0, and
let the equation of the quadric surface be (2.68). A point (x,0,0) then lies on
the surface if and only if 11x2 + Gx + J = 0. If there is an x for which this
equation is not satisfied, then at least one of !1, G, I must be different from 0 and
there are at most two values of x for which the equation is satisfied.
17 The purpose of this long problem is to develop ideas about the transversals
of three given skew (no two lying in the same plane) lines PIP2, P3P4, P5P6. A
line L is called a transversal of the given lines if it intersects the lines P1P2, P3P4i
PbP6 at points Q, Q1, Qs as in Figure 2.693. For each k = 1, 2, ., 6 the coordi-nates (xk,yk,Zk) of Pk are given numbers and we want information about the
coordinates of Q, Q1, Q2. The latter coordinates are determined with the aid of
numbers X, X1, X2 for which(1) P1Q = XP1P2, P3Q1 = a1P3Q4, P5Q2 = XZP5P6
Our first step is to select a number X (or to think of X as being "fixed") and ask
whether a transversal through Q exists. If X is so chosen that the plane 7r1 con-
taining Q, P3, P4 does not intersect the line P,P66 or intersects the line P5P6 at a
point Q2 for which the line QQ2 is parallel to the line P3P4, then no transversal
through Q exists. Henceforth, we suppose that X is not so unhappily chosen.
A transversal through Q is then obtained by drawing the line L through Q and
the Point Qz where al intersects the line QsQ6. The value of X2 can be calculated
in terms of X from the equationxs + X 2(X6 - x5) Ys + X2(Y6 - ys) Z5 + X2(Z6 - Zs) 1(2) xa 1a za (^1) = 0
X4 y4 Z4 1
xl + X(xs - x1) Y1 + M(y2 - y1) zl + X(z2 - 71) 1
which says that Q2 is the point on the line PiP6 which lies in the plane a1 contain-
ingPa, P4, Q. Similarly, the value of X1 can be calculated in terms of X from the
equation
(3)
xa + X1(x4 - xa) ya + X1('4 - ya) Za + X1(24 - za)
X5 Y6 z5
xb Y6 Z6
x1 + X(xt - x1) Y1 + X(ya - yl) a1 + X(z2 - zl)
=0