1
WB JEE 2025
MCQ (Single Correct Answer)
+1
-0.25
Change Language

Manufacturers supply a zener diode with zener voltage $\mathrm{V}_{\mathrm{z}}=5.6 \mathrm{~V}$ and maximum power dissipation $P_{\mathrm{z}, \max }=\frac{1}{4} \mathrm{~W}$. This zener diode is used in the following circuit. Calculate the minimum value of the resistance $R_s$ in the circuit so that the zener diode will not burn when the input voltage is $\mathrm{V}_{\mathrm{in}}=10 \mathrm{~V}$.

WB JEE 2025 Physics - Electronic Devices Question 2 English

A
$98.56 \Omega$
B
$170 \cdot 52 \Omega$
C
$306 \cdot 21 \Omega$
D
$412.37 \Omega$
2
WB JEE 2025
MCQ (Single Correct Answer)
+1
-0.25
Change Language

A force $\vec{F}=a \hat{i}+b \hat{j}+c \hat{k}$ is acting on a body of mass $m$. The body was initially at rest at the origin. The co-ordinates of the body after time ' $t$ ' will be

A
$\frac{a t^2}{2 m}, \frac{b t^2}{2m}, \frac{c t^2}{2 m}$
B
$\frac{a t^2}{2 m}, \frac{b t^2}{m}, \frac{c t^2}{2 m}$
C
$\frac{a t^2}{m}, \frac{b t^2}{2 m}, \frac{c t^2}{2 m}$
D
$\frac{a t^2}{2 m}, \frac{b t^2}{2 m}, \frac{c t^2}{m}$
3
WB JEE 2025
MCQ (Single Correct Answer)
+1
-0.25
Change Language

Figure shows the graph of angle of deviation $\delta$ versus angle of incidence i for a light ray striking a prism. The prism angle is

WB JEE 2025 Physics - Geometrical Optics Question 1 English

A
30$^\circ$
B
45$^\circ$
C
60$^\circ$
D
75$^\circ$
4
WB JEE 2025
MCQ (Single Correct Answer)
+1
-0.25
Change Language

Two charges $+q$ and $-q$ are placed at points $A$ and $B$ respectively which are at a distance $2 L_{\mathrm{p} p a t}$ $C$ is the mid point of $A$ and $B$. The workdone in moving a charge $+Q$ along the semicircle $\operatorname{CSD}\left(W_V\right)$ and along the line $\mathrm{CBD}\left(W_2\right)$ are

WB JEE 2025 Physics - Electrostatics Question 1 English

A
$\frac{q Q}{4 \pi \epsilon_0 L}, \frac{q Q}{4 \pi \epsilon_0 L}$
B
$\frac{-Q q}{6 \pi \epsilon_0 L}, \frac{-Q q}{6 \pi \epsilon_0 L}$
C
$\frac{-Q q}{6 \pi \epsilon_0 L}, \frac{-Q q}{12 \pi \epsilon_0 L}$
D
$\frac{q Q}{4 \pi \epsilon_0 L}, 0$
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