In the circuit shown in the figure, the input voltage `V_(i)` is `20V,V_(BE)=0` and `V_(CE)=0`. The values of `I_(B),I_(C)` and `beta` are given by: A. `I_(B)=40 muA,I_(C)=10mA,beta=250`B. `I_(B)=25 muA,I_(C)=5mA,beta=200`C. `I_(B)=20 muA,I_(C)=5mA,beta=250`D. `I_(B)=40 muA,I_(C)=5mA,beta=125`

In the circuit shown in the figure, the input voltage `V_(i)` is `20V,

1.	In the circuit shown in the figure, the input voltage `V_(i)` is `20V,V_(BE)=0` and `V_(CE)=0`. The values of `I_(B),I_(C)` and `beta` are given by: A. `I_(B)=40 muA,I_(C)=10mA,beta=250`B. `I_(B)=25 muA,I_(C)=5mA,beta=200`C. `I_(B)=20 muA,I_(C)=5mA,beta=250`D. `I_(B)=40 muA,I_(C)=5mA,beta=125`
Answer» Correct Answer - D `V_(i)=I_(B)R_(B)+V_(BE)` `20=I_(B)xx(500xx10^(3))+0` `I_(B)=20/(500xx10^(3))=40 muA` `V_(CC)=I_(C)R_(C)+V_(CE)` `20=I_(C)xx(4xx10^(3))+0` `I_(C)=50xx10^(-3)=5mA` `beta=(I_(C))/(I_(B))=(5xx10^(-3))/(40xx10^(-6))=125`

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In the circuit shown in the figure, the input voltage `V_(i)` is `20V,V_(BE)=0` and `V_(CE)=0`. The values of `I_(B),I_(C)` and `beta` are given by: A. `I_(B)=40 muA,I_(C)=10mA,beta=250`B. `I_(B)=25 muA,I_(C)=5mA,beta=200`C. `I_(B)=20 muA,I_(C)=5mA,beta=250`D. `I_(B)=40 muA,I_(C)=5mA,beta=125`

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