134 C H A P T E R 2: Continuous-Time Systems
FIGURE 2.6
Nonlinear behavior of RL
circuit: (top)I 0 = 1 ,
B= 1 ,
v(t)=u(t),i 1 (t)=u(t),
and (bottom)I 0 = 1 ,
B=2,v(t)= 2 u(t),
i 2 (t)=( 2 −e−t)u(t),
andi 2 (t)6= 2 ii(t).− 1 0 1 2 3 4500.51v(t),i(^1t)2 v(t
),i(^2t)− 1 0 1 2 3 4500.511.52t (sec)v(t)
i 1 (t)2 v(t)
i 2 (t)Zero initial conditions
Suppose then we perform the above experiments withI 0 =0 whenB=1 and whenB=2. We geti 1 (t)=( 1 −e−t)u(t)forB=1, and forB=2 we geti 2 (t)= 2 ( 1 −e−t)u(t)
= 2 i 1 (t)which indicates the system is linear. In this case the response only depends on the inputv(t).Time invariance
Suppose now thatB=1,v(t)=u(t− 1 ), and the initial condition isI 0. The complete response isi 3 (t)=I 0 e−tu(t)+( 1 −e−(t−^1 ))u(t− 1 )IfI 0 =0, then the above response isi 3 (t)=( 1 −e−(t−^1 ))u(t− 1 ), which equalsi(t− 1 )(Equa-
tion (2.15) withB=1 andI 0 =0 delayed by 1) indicating the system is time invariant. On the
other hand, whenI 0 =1 the complete response is not equal toi(t− 1 )because the term with the
initial condition is not shifted like the second term. The system in that case is time varying. Thus,
ifI 0 =0 the system is LTI. n