56 Ordinary Differential Equations
b. Solve the initial value problemI 1
Y = (x + 2); y(l) =^4and specify the interva l on which the solution exists and is unique.c. Solve the initial value problemI 1
y = (x + 2); y(-7) =^3and sp ecify the interva l on which the solution exists and is unique.SOLUTION
a. Integrating equation (3), we find the general solution to b e(4)
ix 1
y(x ) = (t+ 2 )dt+C=lnlx+2l+C.Since the function g ( x ) = 1 / ( x + 2) is defined and continuous on theinterva ls (-oo, -2) and (-2, oo ) , equation ( 4) is the general solution of
differentia l equation (3) on the interva ls (-oo, -2) and (- 2, oo ).
b. To solve the initia l value problem(5)
I 1
y = (x + 2); y(l) =^4a ll we n eed to do is find the value of C in the general solution ( 4) which
will yield y(l) = 4. Setting x = 1 in (4), we see that C must satisfyy(l) =lnl1+2l+C=4.
Solving for C, we get C = 4 - ln3. Substituting this value into (4)
produces the following general solution to the IVP (5)(6)
Ix+ 21
y( x ) = ln Ix + 21+4 - ln3 = ln -
3Since t he initia l condition, y(l) = 4, is sp ecified a t x = 1 E (-2, oo) ,
equation (6) is the unique solution of the IVP (5) on the interval (-2, oo ).c. To solve the initia l value problem(7) y'
1y(-7) = 3
(x + 2 )'
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