(b) Z, remains the same as in Eq. (9.15.4) but R, and X, are in parallel. Assuming an RC parallel combination, Zx = (5.993-j1.356) MQ 1 RK Rx (1-ju = Rx || = jwCx 1 + jwRxCx i+w Rx 5.993 R₁ = By equating the real and imaginary parts, we obtain Real(Z)² + Imag(Zx)² _ 5.993² + 1.356² Real(ZX) Re Zx = 6.3 M2 5.993 Imag(Z) Rx = 5.993² +1.3562 5.993 C₁ = = [Real(Z)² + Imag(Z)²] Cx = - -1356 2Tu₂k[5.993)² + -1.356 2z(2000)(5.9172+1.356²) = = 2.852 μF