Mass is an intrinsic property

Mass doesn't change with location

Mass remains M regardless of gravity

Rod: I = mL²/12 Ring: I' = mR²/2 = m(L/2π)²/2

Substitute R = L/2π

Simplify to get I/I' = 2π²/3

Second hand: 360°/60s = 6°/s Hour hand: 360°/12hr = 360°/43200s

Convert to same time unit

Ratio = (6°/s)/(1/120°/s) = 720:1

Use K.E. = p²/2m where p is momentum

K.E. = (6)²/(2×4)

K.E. = 36/8 = 4.5 J

In uniform circular motion, velocity is tangential to the circle

Centripetal acceleration always points toward the center of the circle

The angle between tangential velocity and radial acceleration is always 90°

Only force acting is gravity: F = mg

F = 0.05 × 9.8 = 0.49 N

Direction is downward due to gravity

For range: R = v²sin2θ/g. For max height: H = v²sin²θ/2g

Given R = 2H, solve: v²sin2θ/g = 2(v²sin²θ/2g)

Solving gives R = 4v²/5g

Planck constant h = E/ν = [ML²T⁻²]/[T⁻¹] = [ML²T⁻¹]

Moment of Inertia I = mr² = [M][L²] = [ML²]

h/I = [ML²T⁻¹]/[ML²] = [T⁻¹] (frequency)

Use SHM equations: vmax = ωA and amax = ω²A

From vmax = ωA: 0.5 = ωA and from amax = ω²A: 1.0 = ω²A

Divide equations: amax/vmax = ω = 1.0/0.5 = 2 rad/s

Compare moments of inertia: Ring (I = MR²), Cylinder (I = ½MR²), Sphere (I = ⅖MR²)

Apply conservation of energy: mgh = ½mv² + ½Iω². Since v = Rω, substitute to get v = √(2gh/(1+I/mR²))

Compare velocities using different I values: Higher I means lower velocity, so vS > vC > vR

Apply conservation of momentum: Initial momentum = Final momentum = 0, so p₁ + p₂ = 0, where p₂ = 20 Ns

Since momenta are equal and opposite, momentum of 4 kg piece = -20 Ns

Calculate KE of 8 kg piece using K = p²/2m = (20)²/(2×8) = 25 J

First, recall the range formula for projectile motion: R = (u²sin2θ)/g where u is the initial velocity and θ is the angle of projection

Calculate for each angle: For 30°: RA = (u²sin60°)/g = (u²×0.866)/g; For 45°: RB = (u²sin90°)/g = u²/g; For 60°: RC = (u²sin120°)/g = (u²×0.866)/g

Compare the values: sin60° = sin120° = 0.866, sin90° = 1. Therefore RA = RC < RB

Apply two conditions: (1) Normal force N = mg = 50×10 = 500N, (2) Maximum friction force f = μN = 0.3×500 = 150N

Use Newton's law in horizontal direction: Maximum friction force = mass × acceleration, 150 = 50a

Solve for acceleration: a = 150/50 = 3.0 ms⁻²

Start with the component equation: Component along x-axis = rcosθ, where θ is angle with +ve x-axis

Analyze cosθ values: For +ve x-axis (0°): cos0° = 1; For +ve y-axis (90°): cos90° = 0; For -ve y-axis (270°): cos270° = 0; For 45°: cos45° = 1/√2

Conclude that cosθ has maximum value of 1 at θ = 0°, which occurs when vector is along +ve x-axis

Begin by identifying the known parameters: Time t = 10 seconds, Acceleration due to gravity g = 10 ms⁻², Initial velocity u = 0 ms⁻¹

Apply the equation for displacement in free fall: S = ut + (1/2)gt². Substitute values: S = 0 + (1/2) × 10 × 10² = 500m

Calculate average velocity using vₐᵥᵧ = S/t = 500/10 = 50 ms⁻¹

Use formula g_d = g(1 - d/R) where d is depth, R is Earth's radius

Substitute values: g_d = 9.8(1 - 1600/6400)

Calculate: g_d = 9.8(1 - 0.25) = 7.35 ms⁻²

Consider only external forces acting on system

In air, only gravity acts as external force

COM acceleration equals g regardless of individual motions

Use equations of motion: v² = u² + 2as where final velocity v = 0

For first case: 0 = (20)² + 2a(40), calculate acceleration a = -5 m/s²

For second case with u = 40 m/s and same a, use s = -u²/2a = -(40)²/2(-5) = 160 m

Calculate total height: 25 + 35 = 60m. Convert units: 6 tonnes = 6000 kg, 20 min = 1200 s

Calculate work done: mgh = 6000 × 10 × 60

Calculate power: P = work/time = 3600000/1200 = 3000W = 3kW

Consider forces in free fall: only gravity acts on body

Apply Newton's law: apparent weight = ma - mg, where a = g in free fall

Since a = g, apparent weight = m(g-g) = 0

For perpendicular vectors, dot product = 0: A⃗·B⃗ = 0

Expand: 2(-4) + 3(4) + 8α = 0

Solve: -8 + 12 + 8α = 0, so α = -1/2

Identify the values given: mass = 49.53 g (4 sig figs), volume = 1.5 cm³ (2 sig figs)

Apply density formula: ρ = m/V = 49.53/1.5

The result is 33.02/10 = 3.302 g/cm³. The answer should have 4 sig figs as per multiplication/division rules

Apply perpendicular axis theorem: I_z = I_x + I_y

Given I_x = I_y = 20 kg m²

Calculate I_z = 20 + 25 = 45 kg m²

Use escape velocity formula: v = √(2GM/r)

Note r = 2R at space station

Calculate ratio of velocities

Calculate distance=(3/4)×πd=60π m

Calculate displacement=2R=40√2 m

Distance > Displacement verified

Draw FBD showing all forces: normal force N upward, apparent weight downward. Write N + F = mg where F is pseudo force

Calculate pseudo force F = ma = 60 × 1.8 = 108N downward

Solve N = mg - ma = 60(9.8 - 1.8) = 480N

Write K.E. equations

Express momentum in terms of K.E.

Find ratio of momenta

In inelastic collision, kinetic energy is not conserved

Mechanical energy may change due to deformation

Linear momentum must be conserved (no external force)

Calculate relative error in V

Calculate relative error in I

Add percentage errors

a = F/m = (0.6i + 0.8j) ms⁻²

vx = 6 + 0.6t, vy = -12 + 0.8t

At t = 10s, vx = 0

Compare with standard equation y = (tanθ)x - (g/2u²cos²θ)x²

Here tanθ = 1 and g/2u²cos²θ = 2/5

Solve for u giving 5 ms⁻¹

In (P-Q)/R, P and Q must have same dimensions to subtract

Other options can have valid dimensional combinations

Therefore (P-Q)/R is dimensionally inconsistent

For circular orbit, K.E. = GM₁M₂/2r

For escape velocity, total energy must be zero

Additional K.E. needed equals K

Power = Force × velocity. For constant acceleration: v = at. Force = ma (constant).

Power = ma × at = ma²t

Therefore, power is directly proportional to t

System is isolated - center of mass velocity remains constant

Initially both particles were at rest, so initial center of mass velocity = 0

By conservation of momentum, COM velocity must remain zero

In circular motion, centripetal force is required for circular path. This force is provided by tension in string.

Net force must equal mv²/r where r is radius (here l). Tension in string provides this force.

Therefore, net force = T (tension) which acts as centripetal force.

Use vector addition of velocities. Relative velocity of rain with respect to woman is vector sum of rain's velocity and negative of woman's velocity.

For equal speeds (12 ms⁻¹), resultant makes 45° with vertical. Direction is towards east due to woman's motion westward.

Umbrella should be held at 45° towards east to protect from relative rain direction.

Density = m/V = m/(πr²l). Percentage error = (Δρ/ρ)×100% = [(Δm/m) + 2(Δr/r) + (Δl/l)]×100%

Calculate each term: Δm/m = 0.003/0.3 = 0.01, Δr/r = 0.005/0.5 = 0.01, Δl/l = 0.06/6 = 0.01

Total = [0.01 + 2(0.01) + 0.01]×100% = 0.04×100% = 4%

Let v₁ be girl's speed and v₂ be escalator's speed. For stationary escalator: h = v₁t₁, where h is height and t₁ = 20s.

For stationary girl: h = v₂t₂, where t₂ = 30s. For moving escalator: h = (v₁ + v₂)t₃

Using h/v₁ = 20 and h/v₂ = 30, solve for t₃: 1/t₃ = 1/20 + 1/30. Therefore t₃ = 12 sec

Use θ = ωₒt + ½αt²

ωₒ = 0, ω = 10 = αt

θ = ½(10)(5) = 25 rad

g_h = g(1 - h/R)

g_d = g(1 - d/2R)

Equate both expressions

Use Newton's gravitational law for forces. Due to symmetry, forces from A and B are equal and make 60° with CG.

Their resultant along CG must balance force due to 4kg mass at P: 2(8G/1²)cos30° = 4G/r², where r is PG

Solving gives r = 1/√2 meters

Let's analyze forces: For slipping to occur, friction force equals centripetal force needed: μmg = mrω².

When ω doubles to 2ω, new radius r₂ must satisfy: μmg = mr₂(2ω)².

Comparing equations: r₁ω² = r₂(2ω)², so r₂ = r₁/4 = 1cm

In any collision, total momentum of system is always conserved. Individual objects' momenta can change.

Mechanical energy is not conserved in inelastic collision - some energy converts to heat/sound.

When ball hits floor, momentum transfers between ball and Earth, but total remains constant. Option C correctly identifies the conserved quantity.

Use momentum conservation: m₁u₁ + m₂u₂ = m₁v₁ + m₂v₂. Also use definition of e: e = -(v₂-v₁)/(u₂-u₁) = 2/3

Substitute values: 1(12) + 2(-24) = v₁ + 2v₂ and v₂-v₁ = -2/3(24-12)

Solve simultaneous equations to get v₁ = -28 m/s, v₂ = -4 m/s

Use displacement equations separately for x and y components. For x: x = ut + ½at² where u = 0, a = 8

From x equation: 16 = 4t², so t = 2s

Use this time in y equation: y = 10t + t² = 20 + 4 = 24m

Acceleration is constant (g) and downward. Velocity changes direction continuously.

Angle between v and g is minimum when velocity has maximum downward component - at the highest point of trajectory.

This occurs at only one point - when projectile reaches maximum height and begins descending.

Let's analyze forces on projectile: Only gravity acts in absence of air resistance.

With constant acceleration (g), vertical motion is quadratic while horizontal motion is uniform.

This combination gives parabolic path only in absence of air resistance. With air resistance, path is more complex.

Least count = (1 MSD - 1 VSD)/No. of VSD = (0.5mm - x)/50

One VSD = 49/50 × 0.5mm

Therefore, least count = (0.5 - 0.49)/50 = 0.01mm

Velocity v = dx/dt = 3t². Set v = 0 to find when particle stops

3t² = 0 gives t = 0

At t = 0, x = 0³+3 = 0m. This is displacement when velocity is zero!

For maximum range, projection angle is 45°. Use range formula: R = (u²sin2θ)/g

At 45°, sin2θ = 1. Therefore, R = u²/g

Substitute R = 16000m, g = 10m/s²: 16000 = u²/10. Solving gives u = 400 m/s

Forces on upper mass: T₁ up, weight+T₂ down. Net force = ma

For 5kg mass: T₁ - 5g - T₂ = 5a. For 3kg mass: T₂ - 3g = 3a

Solve simultaneous equations: T₁ = (m₁+m₂)(g+a) = 94.4N

Forces on bob: tension and weight. Net force provides centripetal acceleration

tanθ = v²/(rg) where v is car's speed, r is track radius

θ = arctan(10²/(10×10)) = π/4 radians

Max height h = (u²sin²θ)/(2g). Compare heights for θ₀ and (90°-θ₀)

Use trigonometric relation sin(90°-θ) = cosθ

Ratio h₁/h₂ = sin²θ₀/sin²(90°-θ₀) = 2tanθ₀:1

First, let's convert everything to standard units. For angular speed, we need rad/s. Remember: rpm to rad/s conversion is: ω = (2π×rpm)/60. So 1200rpm = 125.66 rad/s and 3120rpm = 326.73 rad/s

Now we can treat this like a uniform acceleration problem. Just like linear acceleration is Δv/Δt, angular acceleration is Δω/Δt. Here, Δω = (326.73 - 125.66) rad/s and Δt = 16s

Therefore, α = (326.73 - 125.66)/16 = 4 rad/s². Always check units! We wanted rad/s² and that's what we got.

Picture this: initially, 60cm (or 0.6m) of the chain is hanging down creating a U-shape. As we pull it up, each small segment of the chain needs different amounts of work because they start at different heights. This isn't like lifting a single mass!

We need to use integration here. The work done is actually related to the center of mass of the hanging part. For a uniform chain, the center of mass of the hanging part is at half the hanging length. As we pull it up, this changes.

Using the formula W = mgl²/2n where l is hanging length and n is total length, we get: W = (4×10×0.6²)/(2×2) = 3.6 Joules. Notice how we used the initial hanging length (0.6m) in our calculation!

Let's first understand what center of mass is - it's the point where entire mass of body can be considered concentrated. For example, when you balance a ruler on your finger, you're finding its center of mass.

Now, center of gravity is actually the point where net gravitational force acts. Earth's gravitational field isn't uniform - it varies as 1/r². For small objects like a book or ball, this variation is negligible, but for large objects like skyscrapers, it matters!

This is why for large bodies, these points differ slightly. Imagine a tall building - the top is slightly farther from Earth's center than the bottom, so gravity acts differently. But if our object is tiny compared to Earth's radius (6371 km), we can treat the gravitational field as uniform, making these points coincide.

Compare with true value 3.678 cm

A closer to true value (accuracy)

B has less variation (precision)

Apply Kepler's laws

Angular momentum conserved

Area swept per time constant

Analyze one complete revolution

Speed is constant, not zero

Velocity average is zero

Calculate normal force N=mg=10×10=100N

Find friction force f=μN=0.5×100=50N

Net force=60-50=10N, a=10/10=1ms⁻²

Use v=v₀+at

Average velocity=displacement/time

v(avg)=(v²-v₀²)/2at

Activity = Rate of decay = dN/dt

Analyze dimensions: N is dimensionless

Therefore dimensions are [T⁻¹]

Use g'=gR²/(R+h)²

Substitute h=R/2

Calculate g'=(9.8)(4/9)=4.4ms⁻²

Apply triangle inequality: a-b ≤R≤ a+b

For 4,8 units: 4≤R≤12

3 units not possible in range

Use energy conservation: mgh₁+½mv₁²=mgh₂

Consider 50% energy loss

Calculate initial velocity: v=√(2gh)=14m/s

Analyze MI formula: I=mr²

Position of axis affects r

Therefore MI depends on axis position