(b)

The upstream Froude number is:

F₁² = v²/(gy₁) = q²/(gy₁³)

Therefore, the upstream flow depth is:

y₁= [q²/(gF₁²)]^1/3 = [2²/(9.81 × 4)]^1/3 = 0.467 m.    ANSWER.

The hydraulic jump formula is:

y₂/y₁ = (1/2) [(1 + 8F₁²)^1/2 - 1] = 2.37

Therefore:

y₂ = 2.37 × 0.467 = 1.11 m.    ANSWER.

(d)

Assuming a nearly horizontal profile downstream of the H.J.:

S_o = Δy/Δx

Δx = Δy / S_o = (5.0 - y₂) / S_o = (5.0 - 1.11) / 0.01 = 389 m.    ANSWER.