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January 9 Shift 1 - Physics

Question 1. Three identical solid spheres each have mass ‘m’ and diameter ‘d’ are touching each other as shown in the figure. Calculate ratio of moment of inertia about the axis perpendicular to plane of paper and passing through point P and B as shown in the figure. Given P is centroid of the triangle.

JEE Main 2020 Shift 1 9th Jan Physics Answers

a) 13/23
b) 13/15
c) 15/13
d) 23/13

Solution:

Distance of centroid from (point P) centre of sphere = (2/3)×(√3d/2) = d/√3

By Parallel axis theorem,

Moment of Inertia about P = 3[ (2/5)M(d/2)² + M(d/√3)²] = (13/10) Md²

Moment of Inertia about B = 2[ (2/5)M(d/2)² + M(d)²] + (2/5)M(d/2)² = (23/10)Md²

Now ratio = 13/23

Answer:(a)

Question 2. A solid sphere having a radius R and uniform charge density ρ. If a sphere of radius R/2 is carved out of it as shown in the figure. Find the ratio of the magnitude of electric field at point A and B

JEE Main 2020 Papers With Solutions Physics Shift 1 Jan 9

a) 17/54
b) 18/54
c) 18/34
d) 21/34

Solution:

For solid sphere,

Field inside sphere, E = ρr/3ε₀

And field outside sphere, E = ρr³/3r²ε₀

where r is distance from centre and R is radius of sphere.

Electric field at A due to sphere of radius R (sphere 1) is zero and therefore, net electric field will be because of sphere of radius R/2 (sphere 2) having charge density (-ρ)

E_A= - ρR/2(3 ε₀)

ǀE_Aǀ = ρR/6 ε₀

Similarly, Electric field at point B = E_B = E_1B+ E_2B

E_1B = Electric Field due to solid sphere of radius R = ρr/3ε₀

E_2B = Electric Field due to solid sphere of radius R/2 which having charge density (-ρ)

=
$-\frac{\rho (\frac{R }{2})^{3}}{3(\frac{3R}{2})^{2}\varepsilon _{0}}$

= -ρR/54ε₀

E_B = E_1A + E_2A = (ρR/3ε₀) - (ρR/54ε₀)

= 17 ρR/54ε₀

$\frac{\left | E_{A} \right |}{\left | E_{B} \right |} = \frac{9}{17} =\frac{18}{34}$

Answer: (c)

Question 3. Consider an infinitely long current carrying cylindrical straight wire having radius 'a'. Then the ratio of magnetic field due to wire at distance a/3 and 2a, respectively from axis of wire is

a) 3/2
b) 2/3
c) 2
d) 1/2

Solution:

B_A=
$\frac{\mu _{0}ir}{2\pi a^{2}} = \frac{\frac{\mu _{0}ia}{3}}{2\pi a^{2}}$

$= \frac{{\mu _{0}ia}}{6\pi a^{2}} = \frac{\mu _{0}i}{6\pi a}$

B_B= μ₀i(2a)/2π(2a)² = μ₀i /4πa

B_A/B_B= 4/6 = 2/3

Answer: (b)

Question 4. Particle moves from point ? to point ? along the line shown in figure under the action of force

$\vec{F} = -x\hat{i}+ y\hat{i}$

. Determine the work done on the particle by

$\vec{F}$

in moving the particle from point A to point B (all quantities are in SI units)

JEE Main Physics 2020 Solved Paper For Shift 1 Jan 9

a) 1 J
b) 1/2 J
c) 2 J
d) 3/2 J

Solution:

$d\vec{s} = (dx \; \hat{i} + dy\; \hat{j})$

$= (-x\hat{i}+ y\hat{j}). (dx\hat{i}+ dy\hat{j})$

$=\int_{1}^{0}-x\: dx+ \int_{0}^{1}y\: dy$

= ½ + ½

= 1 J

Answer: (a)

Question 5. For the given P-V graph of an ideal gas, chose the correct V-T graph. Process BC is adiabatic. (Graphs are schematic and not to scale).

Shift 1 Jan 9 JEE Main 2020 Paper With Solutions Physics

Shift 1 Jan 9 Physics JEE Main 2020 Paper With Solutions

Solution:

For process 3 - 1; Volume is constant;

For process 1 - 2, PV^γ Constant , and PV = nRT therefore TV^γ-1 = Constant ;

therefore as V increases T decreases and also relation is non linear, so curve will not be a straight line.

For process 2-3; pressure is constant , therefore V = kT

From above, correct answer is option a.

Answer: (a)

Question 6.An electric dipole of moment

$\vec{p} = (-\hat{i}-3\hat{j}+2\hat{k})\times 10^{-29}Cm$

is at the origin (0,0,0). The electric field due to this dipole at

$\vec{r} = (\hat{i}+3\hat{j}+5\hat{k})$

is parallel to [Note that

$\vec{r} .\vec{p} = 0$

]

a) i -3j-2k
b) -i-3j+2k
c) i+3j-2k
d) -i+3j-2k

Solution:

The electric dipole of moment p = q.a where a is distance between charge.

Electric field E at position r is given by
$\frac{2K\vec{p} .\vec{r} }{\left | r \right |^{4}}$
along radial direction and
$\frac{2K\vec{p} \times \vec{r} }{\left | r \right |^{4}}$

along tangential direction , where
$\vec{r} =\hat{i}+3\hat{j}+5\hat{k}-(0\hat{i}+0\hat{j}+0\hat{k})= \hat{i}+3\hat{j}+5\hat{k}$

Since already in question,
$\vec{p}.\vec{r} =0$

This means field is along tangential direction and dipole is also perpendicular to radius vector.

Since electric field and dipole are along same line, we can write
$\vec{E} = \lambda (\vec{p})$
where λ is an arbitrary constant

From option, on putting λ = -1× 10²⁹ , we get,
$\vec{E} = \hat{i}+3\hat{j}-2\hat{k}$

Answer: (c)

Question 7. A body A of mass m is revolving around a planet in a circular orbit of radius R. At the instant the particle B has velocity , another particle of mass m/2 moving at velocity of V/2, collides perfectly inelastically with the first particle. Then, the combined body

a) Fall vertically downward towards the planet.
b) Continue to move in a circular orbit
c) Escape from the Planet’s Gravitational field
d) Start moving in an elliptical orbit around the planet

Solution:

By conservation of linear momentum and taking velocity inline for maximum momentum transfer in single direction.

(m/2)(V/2) + mV = [m + (m/2)]V_f

V_f = 5V/6

Where V is orbital velocity

Escape velocity will be √2V and at velocity less than escape velocity but greater than orbital velocity (V), the path will be elliptical. At orbital velocity (?), path will be circular. At velocity less than orbital velocity path will remain part of ellipse and it will either orbit in elliptical path whose length of semi major axis will be less than radius of circular orbit or start falling down and collide with the planet but it will not fall vertically down as path will remain part of ellipse. Hence the resultant mass will start moving in an elliptical orbit around the planet.

Answer: (d)

Question 8. Two particles of equal mass m have respective initial velocities

$\vec{u_{1}} = u\hat{i}$

and

$\vec{u_{2}} = \frac{u}{2}\hat{i} + \frac{u}{2}\hat{j}$

. They collide completely inelastically. Find the loss in kinetic energy.

a) 3mu²/4
b) √2mu²/√3
c) mu²/3
d) mu²/8

Solution:

Let v₁ and v₂ be the final velocities after collision in x and y direction respectively.

Conserving linear momentum

$mu\hat{i} + m(\frac{u}{2}\hat{i}+\frac{u}{2}\hat{j}) = 2m(v_{1}\hat{i}+v_{2}\hat{j})$

By equating i and j

v₁= 3u/4

v₂ = u/4

Initial K.E = (mv²/2) + (m/2)×(u/√2)² = 3mu²/4

Final K.E = (2m/2)×(u√10/4)² = 5mu²/8

Change in K.E = (3mu²/4) - (5mu²/8) = mu²/8

Answer: (d)

Question 9.Three harmonic waves of same frequency (v) and intensity (I₀) having initial phase angles 0, π/4, -π/4 rad respectively. When they are superimposed, the resultant intensity is close to;

a) 5.8 I₀
b) I₀
c) 3 I₀
d) 0.2 I₀

Solution:

Amplitudes can be added using vector addition A_resultant=(√2+1)A

Since, I ∝A², Where ? is intensity.

Therefore, I_res= (√2+1)² ?₀ = 5.8 ?₀ (approx.)

Answer: (a)

Question 10. An ideal liquid (water) flowing through a tube of non-uniform cross-sectional area, where area at A and B are 40 cm²and 20 cm²respectively. If pressure difference between A & B is 700 N/m², then volume flow rate is (density of water = 1000 kgm⁻³)

Shift 1 Jan 9 JEE Main 2020 Physics Paper With Solution

a) 2720 cm
b) 2420 cm
c) 1810 cm
d) 3020 cm

Solution:

Using equation of continuity

V_A ×Area_A= V_B ×Area_B

40V_A=20V_B

2V_A = V_B

Using Bernoulli’s equation

P_A+ ½ ρV_A² = ?_? + ½ ?V_B²

P_A- P_B = ½ ? (V_B² - V_A² )

ΔP = ½ 1000( V_B² - V_B²/4

= 500×3V_B ²/4

V_B= √(ΔP×4/1500)

= √(700×4/1500)

= √(28/15)m/s

Volume flow rate = V_B×Area_B

= 20 × 100 ×√(28/15)cm³/s

= 2732.5 cm³/s

So, answer comes nearly 2720 cm³/s

Answer: (a)

Question 11. A screw gauge advances by 3 mm on main scale in 6 rotations. There are 50 divisions on circular scale. Find least count of screw gauge?

a) 0.01 cm
b) 0.001 cm
c) 0.001 mm
d) 0.02 mm

Solution:

Pitch = 3/6 = 0.5 mm

Least count =Pitch / number of divisions

= 0.5mm/ 50

= 1100mm

= 0.01 mm

= 0.001 cm

Answer: (b)

Question 12. A telescope of aperture diameter 5 m is used to observe the moon from the earth. Distance between the moon and earth is 4 × 10⁵ km. The minimum distance between two points on the moon's surface which can be resolved using this telescope is close to (Wavelength of light is 5500 Å )

a) 60 m
b) 20 m
c) 600 m
d) 200 m

Solution:

Minimum angle for clear resolution,

θ= 1.22 (λ/a)

d = 1.22 (λ/a)d

r = 4×10⁸m

Aperture, a = 5

= 5500 A⁰

Distance = r d

= 4×10⁸×1.22 (5500×10^-10/5)

= 53.68

Nearest option is 60m.

Answer: (a)

Question 13. Radiation with wavelength 6561 Å falls on a metal surface to produce photoelectrons. The electrons are made to enter a uniform magnetic field of 3×10^-4 T. If the radius of largest circular path followed by electron is 10 mm, the work function of metal is close to;

a) 1.8 eV
b) 0.8 eV
c) 1.1 eV
d) 1.6 eV

Solution:

From photoelectric equation,

hc/λ=W+K.E _max

Where, hc = 12400 eV Å

⇒12400/6561=W+K.E _max

⇒1.89 eV=W+K.E_max…(1)

Radius of charged particle moving in a magnetic field is given by

r = mv/qB

½ mv² = K.E_max = eV

$r = \frac{\frac{\sqrt{2ev}}{m}\times m}{eB}= \frac{1}{B}\sqrt{\frac{2mv}{e}}$

⇒V=0.8 V

So, K.E_max=0.8 eV

Substituting in (1),

1.89 =W+0.8

i.e. W=1.1 eV (approx)

Answer: (c)

Question 14. Kinetic energy of the particle is ? and it's de–Broglie wavelength is ?. On increasing its K.E by Δ?, it's new de–Broglie wavelength becomes λ/2. Then Δ? is

a) 3E
b) E
c) 2E
d) 4E

Solution:

? = ℎ/??

= ℎ√(2?(??))

⇒? ∝ 1√??

?/?/2 = √(??_? / ??_?

4??? = ???

⇒Δ? = ??_? -??_?

= 4??_?−??_?

= 3??_?

= 3?

Answer: (a)

Question 15. A quantity is given by f = √(hc⁵/G), where c is speed of light, G is universal gravitational constant and h is the Planck’s constant. Dimension of f is that of;

a) area
b) energy
c) volume
d) momentum

Solution:

hc = Eλ

[E] = [ML²T^-2]

Therefore [hc] = [ML³T^-2]

[c] = [LT^-1]

[G] = [M^-1 L³T^-2]

√(hc⁵/G) = [ML²T^-2]

The above dimension is of energy.

Answer: (b)

Question 16. A vessel of depth 2h is half filled with a liquid of refractive index √2 in upper half and with a liquid of refractive index 2√2 in lower half. The liquids are immiscible. The apparent depth of inner surface of the bottom of the vessel will be;

a) 3h√2/4
b) h/√2
c) h/3√2
d) h/2(√2+1)

Solution:

Assume, air is present outside container

Apparent height as seen from liquid 1 (having refractive index ?₁ = √2 ) to liquid 2 (refractive index ?₂ = 2√2)

D = ℎ?₁/?₂ = ℎ/2

Now, actual height perceived from air, h + ℎ/2 = 3ℎ/2

Therefore, apparent depth of bottom surface of the container (apparent depth as seen from air (having refractive index ?₀ = 1) to liquid 1(having refractive index ?₁= √2 )

= (3ℎ/2)×(?₀/ ?₁ )

= (3ℎ/2)×(1/√2)

= 3ℎ/2√2

= 3√2ℎ/4

Answer: (a)

Question 17. In the given circuit diagram, a wire is joining point B & C. Find the current in this wire;

Physics JEE Main 2020 Paper With Solutions For Shift 1 Jan 9

a) 0.4 A
b) 2 A
c) 0
d) 4 A

Solution:

Since resistance 1 Ω and 4 Ω are in parallel

∴?’ = 4×1/(4+1) = 4/5

Similarly we can find equivalent resistance (?′′) for resistances 2 Ω and 3 Ω

⇒?’’ = 6/5

And ?′ and ?′′ are in series

∴ ?_???= (4/5) + (6/5) = 2 Ω

So total current flowing in the circuit ‘?’ can be given as

? = ?/?_???= 20/2 = 10A

Current will distribute in ratio opposite to resistance.

So, distribution will be as

So current in the branch BC will be ? = (4?/5) - (3?/ 5)

= ?/5

= 10/ 5

= 2 A

Answer (b)

Question 18. Two plane electromagnetic waves are moving in vacuum in whose electric field vectors are given by

$\vec{E_{1}} = E_{0}\hat{j} \cos (kx - \omega t)$

and

$\vec{E_{2}} = E_{0}\hat{k} \cos (ky - \omega t)$

. At t = 0 A charge q is at origin with velocity

$\vec{v} = 0.8c\hat{j}$

(? is speed of light in vacuum). The instantaneous force on this charge (all data are in SI units)

a)
$qE_{0}(0.4\hat{i}-3\hat{j}+0.8\hat{k})$
b)
$qE_{0}(0.8\hat{i}+\hat{j}+0.2\hat{k})$
c)
$qE_{0}(0.8\hat{i}-\hat{j}+0.4\hat{k})$
d)
$qE_{0}(-0.8\hat{i}+\hat{j}+\hat{k})$

Solution:

Given that the magnetic field vectors are:

$\vec{E_{1}} = E_{0}\hat{j} \cos (kx - \omega t)$

$\vec{E_{2}} = E_{0}\hat{k} \cos (ky - \omega t)$

Since, the variation of vectors E₁ and E₂ are along x and y respectively.

Therefore, direction of propagation of vectors E₁ and E₂ will be along x and y respectively. Since
$\vec{E}\times \vec{B}$
gives direction of propagation and E₀/B₀ = c and variation of magnetic field will be same to magnetic field.

So, the magnetic field vectors of the electromagnetic wave are given by

Answer (b)

Question 19.Consider two ideal diatomic gases A and B at some temperature T. Molecules of the gas A are rigid, and have a mass m. Molecules of the gas B have an additional vibration mode and have a mass m/4 . The ratio of molar specific heat at constant volume of gas A and B is;

a) 7/9
b) 5/9
c) 3/5
d) 5/7

Solution:

We know that,

Molar heat capacity at constant volume, ?_?= ??/2 (Where f is degree of freedom)

Since, A is diatomic and rigid, degree of freedom for A is 5

Therefore, Molar heat capacity of A at constant volume (C_v)_A = 5R/2

Since, B is diatomic and has extra degree of freedom because of vibration; degree of freedom for B is 5 + 2×1= 7 (1 vibration for each atom).

Therefore, Molar heat capacity of B at constant volume (C_V)_B = 7R/2

Ratio of molar specific heat of A and B = (C_V)_A/ (C_V)_B = 5/7

Answer: (d)

Question 20. A charged particle of mass ‘m’ and charge ‘q’ is moving under the influence of uniform electric field

$E\hat{i}$

and a uniform magnetic field

$B\hat{k}$

follow a trajectory from P to Q as shown in figure. The velocities at P and Q are respectively

$v\hat{i}$

and

$-2v\hat{j}$

. Then which of the following statements (A, B, C, D) are correct? (Trajectory shown is schematic and not to scale)

Physics Solved Paper Shift 1 JEE Main 2020 Jan 9

A. Magnitude of electric field

$\vec{E} = \frac{3}{4}\left ( \frac{mv^{2}}{qa} \right )$

B. Rate of work done by electric field at P is

$\frac{3}{4}\left ( \frac{mv^{3}}{a} \right )$

C. Rate of work done by both fields at Q is zero.

D. The difference between the magnitude of angular momentum of the particle at P and Q is 2mva.

a) A, C and D are correct
b) A, B and C are correct
c) A, B. C and D are correct
d) B, C and D are correct

Solution:

Considering statement A

Let, Net work done by magnetic field be W_B and net work done by electric field be W_E.

By Work-Energy theorem

W_?+?_?= (1/2)?(2?)²− (1/2) mv²

⇒ 0+??_?2? = (3/2) ??²

?_? = (3/4) ??²/??

So, statement A is correct

Now, considering statement B

Rate of work done at P = Power of electric force

= ??_??

= (3/4) ??³/?

So, statement B is correct

Now, considering statement C

At Q,

Vector E perpendicular to vector v.

Vector B perpendicular to vector v.

So, dw/dt = 0 for both forces
$\frac{dw}{dt}= q(\vec{E}+\vec{v}\times \vec{B}).\vec{v}$

So, statement C is correct

Now, considering statement D

Angular momentum should be defined about a point which is not given in question but let’s find angular momentum about origin.

Change in magnitude of angular momentum of the particle at P and Q about origin

$\Delta \vec{L} = \Delta \vec{L_{P}}-\Delta \vec{L_{Q}}$

$\Delta \vec{L_{Q}}= m (2v)(2a)$

$\Delta \vec{L_{P}}= m (v)(a)$

Hence, Δ? = 3mva

So, statement D is wrong.

Answer: (b)

Question 21. In a fluorescent lamp choke (a small transformer) 100 V of reversible voltage is produced when choke changes current in from 0.25 A to 0 A in 0.025 ms. The self-inductance of choke (in mH) is estimated to be;

Solution:

Fluorescent lamp choke will behave as an inductor

By using faraday law to write induced emf,

∈ -L dI/dt = 0

100 = L(0.25)×10³/0.025

L = 100×10^-4 H

= 10 mH

Answer: (10)

Question 22.A wire of length l = 0.3 m and area of cross section 10^–2 cm² and breaking stress 4.8×10⁷ N/m² is attached with block of mass 10 kg. Find the maximum possible value of angular velocity (???/?) with which block can be moved in a circle with string fixed at one end.

Solution:

Breaking stress ? = T/A

T = ??²l

⇒ ? = ??²l/?

⇒ ?²= Aσ/mI

= (4.8×10⁷×10⁻⁶)/ 10×0.3 = 16

⇒? = 4 ???/?

Answer: (4)

Question 23. The distance x covered by a particle in one dimension motion varies as with time ? as x² = at² + 2bt + c, where a, b, c are constants. Acceleration of particle depend on x as x^–n , the value of n is;

Solution:

Let v be velocity,α be the acceleration then,

x² = at² + 2bt + c

2xv = 2at + 2b

xv = at + b ..(i)

v = (at + b)/x

Now, differentiating equation (i)

v² + αx = a

αx = a - (at+b)²/x²

α= a(at² +2bt+c)-(at+b²)/x³

α= ac - b²/x³

α ∝ x^-3

Answer: (3)

Question 24. A rod of length 1 m pivoted at one end is released from rest when it makes 30° from the horizontal as shown in the figure below.

Physics JEE Main 2020 Solved Paper Shift 1 Jan 9

If ω of rod is √? at the moment it hits the ground, then find n.

Solution:

By using conservation of energy,

mg (?/2)sin30^∘= (½)(m?²/3)ω²

On solving ω² = 15

?=√15

Therefore, n = 15.

Answer: (15)

Question 25. In the given circuit both diodes are ideal having zero forward resistance and built-in potential of 0.7 V. Find the potential of point E in volts.

Physics Solved Paper Shift 1 JEE Main 2020 Jan 9

Solution:

We have to apply nodal analysis on both left and right side and check what can be voltage at E. For nodal analysis, voltage at B, F and G will be 0 volts and voltage at A will be 12.7 volt and voltage at H will be 4 volts.

If, we apply Nodal from right side, voltage at E will be 12 volt (diode between A and E will be forward biased). Now voltage at E is 12 volt and voltage at H is 4 volt and since, diode between E and H is reversed biased and any difference of voltage is possible across reverse biased. So, this is possible.

If, we apply Nodal from left side, voltage at E will be 3.3 volt (diode between E and H will be forward biased). Now voltage at E is 3.3 volt and voltage at A is 12 volt and since, diode between E and A is forward biased and in forward biased difference of voltage of 0.7 volt is allowable. So, this case is not possible. Therefore current will also not flow through GH. Hence, V_E = 12 V.

Answer (12)

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Video Lessons - JEE Physics

JEE Main 2020 Physics Paper January 9 Shift 1

JEE Main 2020 Physics Paper With Solutions Jan 9 Shift 1