If the ball is not black, it must be white. Therefore, P(White | Not Black) = 1.

Total balls = 5 + 3 = 8. Probability of red = 5/8.

After drawing one red marble, there are 4 red and 3 green marbles left. The probability of drawing a green marble is 3/7.

The total number of balls that are not red is 5 (3 blue + 2 green). The probability that the ball is blue given it is not red is P(Blue | Not Red) = 3/5.

Total balls = 10. Probability of green = 3/10.

The probability of drawing a red marble is independent of the order. Therefore, P(First | Red) = 1/5.

The total number of non-red marbles is 5 (3 green + 2 blue). Therefore, P(Green | Not Red) = 3/5.

The total number of non-red marbles is 5 (3 green + 2 blue). The probability that the marble is green given that it is not red is P(Green | Not Red) = 3/5.

The total number of marbles that are not blue is 8 (5 red + 3 green). The probability of drawing a green marble is 3/8.

After drawing a black ball, there are 5 white and 2 black balls left. The probability of drawing a white ball next is 5/7.

After drawing a black ball, there are 5 white and 2 black balls left. The probability of drawing a white ball next is 5/7.

The probability of not drawing a black ball is the probability of drawing a white ball, which is 5/8.

The probability of drawing 2 white balls = (5/8) * (4/7) = 20/56 = 5/14.

Frictional force = μk * N = 0.4 * 100 N = 40 N. Net force = applied force - frictional force = 50 N - 40 N = 10 N.

Net force = applied force - frictional force. Frictional force = μ_k * N = 0.4 * 10 kg * 9.8 m/s² = 39.2 N. Net force = 50 N - 39.2 N = 10.8 N. Acceleration = F/m = 10.8 N / 10 kg = 1.08 m/s², approximately 1 m/s².

Frictional force = μk * N = 0.3 * 100 N = 30 N. Net force = applied force - frictional force = 50 N - 30 N = 20 N.

Using tan(θ) = height/distance, we have tan(θ) = 30/40 = 0.75. Therefore, θ = tan⁻¹(0.75) ≈ 36.87 degrees.

Using tan(60°) = height/distance, we have distance = height/tan(60°) = 40/√3 = 20√3 m.

Using tan(θ) = height/distance, we have tan(θ) = 40/30. Therefore, θ = tan⁻¹(4/3) ≈ 53.13 degrees.

Using tan(θ) = height/distance, we have θ = tan^(-1)(50/40) = tan^(-1)(1.25) which is approximately 60 degrees.

Energy stored U = 1/2 * C * V² = 1/2 * 10 × 10^-6 F * (50 V)² = 0.0125 J.

Charge (Q) on a capacitor is given by Q = C * V. Thus, Q = 4μF * 12V = 48μC.

Energy U = 1/2 * C * V² = 1/2 * 5 × 10^-6 F * (12 V)² = 0.36 mJ.

Capacitive reactance (X_C) is given by X_C = 1/(2πfC). If the frequency (f) increases, X_C decreases.

Capacitive reactance (X_C) is given by X_C = 1 / (2πfC). Rearranging gives f = 1 / (2πX_CC). Substituting X_C = 50 ohms and C = 10 x 10^-6 F gives f = 318.31 Hz, approximately 1 kHz.

Charge Q is given by Q = CV. Here, Q = 4 µF * 12 V = 48 µC.

The energy (U) stored in a capacitor is given by U = 1/2 CV², where C is the capacitance and V is the potential difference.

Energy stored in a capacitor is given by U = 1/2 CV² = 1/2 * 3 x 10^-6 F * (12 V)² = 0.36 mJ.

The potential V across a capacitor is directly proportional to the charge. If the charge is doubled, the potential also doubles.

The voltage across the capacitor decreases exponentially over time when connected to a resistor due to discharge.