Draw, Illustrate and label your schematic diagram before solving the problem.

1) Given a Fixed-Biased transistor circuit with Beta DC is 200 , voltage at common collector is +22v ,base supply voltage is +11V, Base resistor is 47kOhms , collector resistor is 390 ohms ,Voltage at Base-emitter junction  is 0.7v. Determine the Q-point of collector current and Voltage at collector-emitter junction.

These might be help as a guide to solve the problem.

Transcribed Image Text:

2. Emitter Bias Determine IB, Ic, Vce, Vc, VB, and Step 1: Solve for Ig. VE in the given circuit with the base-to-emitter voltage of 0.7v. Step 2: Solve for Ic. Vcc - VBE Ic = BlB Ic = (50)40.12µA Ic = 2.01mA IB Rp + (B + 1)RE 20v – 0.7v IB = 430kN + (50 + 1)1kN Ig = 40.12µA Step 3: Solve for VCE. Step 4: Solve for Vc, VB, and VẸ- Vce = Vcc – Ic(Rc + Rg) Vce = 20v – 2.01mA(2kN + 1kN) Vce = 13.97v VE = IĘRE = IcRĘ = 2.01mA(1kN) = 2.01v Vc = VCE + Vg *Property of STI Page 4 of 6 03 Handout 1 | student.feedback@sti.edu STI IT1916 +20v = 13.97v + 2.01v = 15.98v VB = VBE + VE = 0.7v + 2.01 = 2.71v 430kN 2kN B = 50 O Vo VIN 1kN GND

Transcribed Image Text:

Emitter Bias Vcc Emitter bias is a very good and stable way to bias transistors if both positive and negative power supplies are available. Emitter bias fluctuates very Vcc – VBe Rp + (ß + 1)Rg Ic = BlB Vce = Vcc – Ic(Rc + RE) VE = IĘRE Vc = Vce + Vg or Vc = Vcc – IcRc VB = Vcc - IBRB or VB = VBE + VẸ IR = Rp Rc I, Bpc, little with temperature variation and transistor replacement. VIN VBE VE RE GND=