X = 28(t + 2) — 25(t − 2) — rect (¹+¹). - So, dF(t) dt · = F₁ (t) + F₂ (t) 2 (+)........ F₁ (w) Fit replace by F₁w F₁ (1) (1) replace by F₂ (w) F2 F₁(w) = -2 [¹ + ¹] Apply Fourier transform, |jw F(w) = F₁ (w) + F₂ (w)...... equation 2 F₁(t) = -8(t + 2) + 8(t-2)........ equation 3 now t replace by w, F₁(w) F1(w) = 4jwSin²w. and F2(w) = 2 x 4Sin (2) = x 2 |F2(w) = 8Sin (²) F2(w) = -8Sin2w jw +rect ect (²/¹) equation 1.
X = 28(t + 2) — 25(t − 2) — rect (¹+¹). - So, dF(t) dt · = F₁ (t) + F₂ (t) 2 (+)........ F₁ (w) Fit replace by F₁w F₁ (1) (1) replace by F₂ (w) F2 F₁(w) = -2 [¹ + ¹] Apply Fourier transform, |jw F(w) = F₁ (w) + F₂ (w)...... equation 2 F₁(t) = -8(t + 2) + 8(t-2)........ equation 3 now t replace by w, F₁(w) F1(w) = 4jwSin²w. and F2(w) = 2 x 4Sin (2) = x 2 |F2(w) = 8Sin (²) F2(w) = -8Sin2w jw +rect ect (²/¹) equation 1.
Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
Section: Chapter Questions
Problem 1P: Visit your local library (at school or home) and describe the extent to which it provides literature...
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