141. When a proton is released from rest in a room, it starts with an initial acceleration $${a_0}$$ towards West. When it is projected towards North with a speed $${v_0}$$ it moves with an initial acceleration $${3a_0}$$ towards West. The electric and magnetic fields in the room are

A $$\frac{{m{a_0}}}{e}\,{\text{West,}}\,\frac{{2m{a_0}}}{{e{v_0}}}\,{\text{up}}$$
B $$\frac{{m{a_0}}}{e}\,{\text{West,}}\,\frac{{2m{a_0}}}{{e{v_0}}}\,{\text{down}}$$
C $$\frac{{m{a_0}}}{e}\,{\text{East,}}\,\frac{{3m{a_0}}}{{e{v_0}}}\,{\text{up}}$$
D $$\frac{{m{a_0}}}{e}\,{\text{East,}}\,\frac{{3m{a_0}}}{{e{v_0}}}\,{\text{down}}$$
Answer :   $$\frac{{m{a_0}}}{e}\,{\text{West,}}\,\frac{{2m{a_0}}}{{e{v_0}}}\,{\text{down}}$$
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142. The magnetic moment of a circular coil carrying current is

A directly proportional to the length of the wire in the coil
B inversely proportional to the length of the wire in the coil
C directly proportional to the square of the length of the wire in the coil
D inversely proportional to the square of the length of the wire in the coil
Answer :   directly proportional to the square of the length of the wire in the coil
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143. Two identical particles having the same mass $$m$$ and charges $$+q$$  and $$-q$$  separated by a distance $$d$$ enter a uniform magnetic field $$B$$ directed perpendicular to paper inwards with in speeds $${v_1}$$ and $${v_2}$$ as shown in Fig. The particles will not collide if
Magnetic Effect of Current mcq question image

A $$d > \frac{m}{{Bq}}\left( {{v_1} + {v_2}} \right)$$
B $$d < \frac{m}{{Bq}}\left( {{v_1} + {v_2}} \right)$$
C $$d > \frac{{2m}}{{Bq}}\left( {{v_1} + {v_2}} \right)$$
D $${v_1} = {v_2}$$
Answer :   $$d > \frac{{2m}}{{Bq}}\left( {{v_1} + {v_2}} \right)$$
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144. In an ammeter $$0.2\% $$  of main current passes through the galvanometer. If resistance of galvanometer is $$G,$$ the resistance of ammeter will be:

A $$\frac{1}{{499}}G$$
B $$\frac{{499}}{{500}}G$$
C $$\frac{1}{{500}}G$$
D $$\frac{{500}}{{499}}G$$
Answer :   $$\frac{1}{{500}}G$$
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145. A current $$I$$ flows in an infinitely long wire with cross section in the form of a semi-circular ring of radius $$R.$$ The magnitude of the magnetic induction along its axis is:

A $$\frac{{{\mu _0}I}}{{2{\pi ^2}R}}$$
B $$\frac{{{\mu _0}I}}{{2\pi R}}$$
C $$\frac{{{\mu _0}I}}{{4\pi R}}$$
D $$\frac{{{\mu _0}I}}{{{\pi ^2}R}}$$
Answer :   $$\frac{{{\mu _0}I}}{{{\pi ^2}R}}$$
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146. Three particles, an electron $$\left( e \right),$$  a proton $$\left( p \right)$$ and a helium atom $$\left( He \right)$$  are moving in circular paths with constant speeds in the $$x - y$$   plane in a region where a uniform magnetic field $$B$$ exists along $$z$$-axis. The times taken by $$e,p$$  and $$He$$  inside the field to complete one revolution are $${t_e},{t_p}$$ and $${t_{He}}$$ respectively. Then,

A $${t_{He}} > {t_p} = {t_e}$$
B $${t_{He}} > {t_p} > {t_e}$$
C $${t_{He}} = {t_p} = {t_e}$$
D None of these
Answer :   $${t_{He}} > {t_p} > {t_e}$$
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147. An infinitely long current carrying wire and a small current carrying loop are in the plane of the paper as shown. The redius of the loop is $$a$$ and distance of its centre from the wire is $$d\left( {d > > a} \right).$$   If the loop applies a force $$F$$ on the wire then:
Magnetic Effect of Current mcq question image

A $$F = 0$$
B $$F \propto \left( {\frac{a}{d}} \right)$$
C $$F \propto \left( {\frac{{{a^2}}}{{{d^3}}}} \right)$$
D $$F \propto {\left( {\frac{a}{d}} \right)^2}$$
Answer :   $$F \propto {\left( {\frac{a}{d}} \right)^2}$$
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148. A uniform magnetic field is directed out of the page. A charged particle, moving in the plane of the page, follows a clockwise spiral of decreasing radius as shown. A reasonable explanation is
Magnetic Effect of Current mcq question image

A the charge is positive and slowing down
B the charge is negative and slowing down
C the charge is positive and speeding up
D the charge is negative and speeding up
Answer :   the charge is positive and slowing down
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149. Two concentric coils each of radius equal to 2 $$\pi \,cm$$  are placed at right angles to each other. 3 ampere and 4 ampere are the currents flowing in each coil respectively. The magnetic induction in $$Weber/{m^2}$$   at the centre of the coils will be $$\left( {{\mu _0} = 4\pi \times {{10}^{ - 7}}Wb/A.m} \right)$$

A $${10^{ - 5}}$$
B $$12 \times {10^{ - 5}}$$
C $$7 \times {10^{ - 5}}$$
D $$5 \times {10^{ - 5}}$$
Answer :   $$5 \times {10^{ - 5}}$$
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150. An on-planar loop of conducting wire carrying a current $$I$$ is placed as shown in the figure. Each of the straight sections of the loop is of length $$2a.$$ The magnetic field due to this loop at the point $$P\left( {a,0,a} \right)$$   points in the direction
Magnetic Effect of Current mcq question image

A $$\frac{1}{{\sqrt 2 }}\left( { - \hat j + \hat k} \right)$$
B $$\frac{1}{{\sqrt 3 }}\left( { - \hat j + \hat k + \hat i} \right)$$
C $$\frac{1}{{\sqrt 3 }}\left( {\hat i + \hat j + \hat k} \right)$$
D $$\frac{1}{{\sqrt 2 }}\left( {\hat i + \hat k} \right)$$
Answer :   $$\frac{1}{{\sqrt 2 }}\left( {\hat i + \hat k} \right)$$
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