A) , = 48 / (4+0.8571) = 9.8824 A → 12 = (6×9.8824) / (6+1) = 8.4706 A V (C÷R) 13 = 9.8824 – 8.4706 = 1.4118 A → (KCR) 4 = l3/ 2 = 0.7059 A V (C÷R) %3D %3D - %3D %3D O Z05 O A 1118 A (KCR) |

It's not a graded question, it's a quiz question just can't work out where the answers come from 

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LS %23 5 2. callum hayes CH P Search E Share Comment ISuperposition (1) * View Recording Help Review Slide Show a. Ink Ink to Ink to Ink to er Text Shape Math Replay Convert Replay ncils UNIVERSITY OF Email: pmbryant@liv.ac.uk E LIVERPOOL A) = 48/ (4+0.8571) = 9.8824 A → 12 = (6x9.8824) / (6+1) = 8.4706 AJ (C÷R) 2 = 9.8824 –8.4706 = 1.4118 A → (KCR) 4 = 13/ 2 = 0.7059 A V (C÷R) Is = 0.7059 A → l6 = 1.4118 A + (KCR) I, %3D %3D | %3D %3D %3D 3 B) I3 = 16 V / (5+0.8+1) = 2.353 A → I5 = 13/2 = 1.1765 A → = 2.353 A 9, 4 = 1.1765 A %3D , = (1x2.353) / (1 + 4) = 0.4706 A → (C÷R) 12 = 2.353 – 0.4706 = 1.8824 A ↑ (KCR) %3D %D 4. %3D %3D %3D C) Is = 24 V /3.4872 = 6.8823 A + 4 = (5.8x6.8823)/ (5.8+2) = 5.1176 (C÷R) I3 = 15 - 14 = 1.7647 A (KCR) , = (1×1.7647) / (1 + 4) = 0.3529 A (C÷R) 12 = 13 – 1, = 1.4118 A V l6 = 12 + 1, = 1.7647 A → %3D %3D C. %3D %3D %3D %66 ENotes 17:35 07/11/2021 M ily BANG &OLUFSEN end ap 6d home dn 6d delete f12 f11 6J unu lock backspace -> 80 5. 9. 0 6 } { dn 6d home

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ト 4》 DH 149 yant@liv.ac.uk UNIVERSITY OF A LIVERPOOL zir it, b) zero or short circuit c) open circuit to diode. Other ccts obey Ohms law (i.e. nt-voltage characteristics) = 2 V, Vout = 10.48; Vin = 4 V, Vout= 20.96; L 42 1 A C. Circuit . 2 Notes 17:34 07/11/2021 P. BANG & OLUFSEN pg dn home dn 6d delete pua backspace -> unu lock