MCQ
While a collector to emitter voltage is constant in a transistor, the collector current changes by $8.2\, mA$ when the emitter current changes by $8.3\, mA.$ The value of forward current ratio hfe is
  • $82$
  • B
    $83$
  • C
    $8.2 $
  • D
    $8.3$

Answer

Correct option: A.
$82$
a
(a)${h_{fe}} = {\left( {\frac{{\Delta {i_c}}}{{\Delta {i_b}}}} \right)_{{V_{ce}}}} = \frac{{8.2}}{{8.3 - 8.2}} = 82$

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free

Similar questions

A capacitor of capacitance $5\,\mu F$ is connected as shown in the figure. The internal resistance of the cell is $0.5\,\Omega $. The amount of charge on the capacitor plate is......$\mu C$
An inverted tube barometer is kept on a lift  with a moving downward with a deceleration $\alpha $ . The density of mercury is $\rho$ and acceleration due to gravity is $g$ . If the atmospheric pressure be $P_0$ then
A $12 \,m$ long vibrating string has the speed of wave $48 \,m / s$. To what frequency it will resonate ........... $cps$
A sphere of mass $50\,gm$ and diameter $20\,cm$ rolls without slipping with a velocity of $5\,cm/sec$ . Its total kinetic energy is
For the circuit shown below, calculate the value of ${I}_{{z}}$ : (In ${mA}$)
A geostationary satellite is orbiting the earth at a height $5R$ above the surface of the earth , $R$ being the radius of the earth. The time period of another satellite in hours at a height of $2R$ from the surface of the earth is
Which of the following electromagnetic waves have minimum frequency
$A$ ray of light is incident on a concave mirror. It is parallel to the principal axis and its height from principal axis is equal to the focal length of the mirror. The ratio of the distance of point $B$ to the distance of the focus from the centre of curvature is ($AB$ is the reflected ray)
Find the equivalent capacitance of the circuit between point $A$ and $B$.
As shown in the figure, two equal masses each of $2\, kg$ are suspended from a spring balance. The reading of the spring balance will be ......... $kg$