Power = Force x Velocity
Locomotive Force 450 kW = Fv (acting up te slope) --- F = 450kW/v
Resistance Forces (acing down the slope);
80 N/t x 300 = 24,000 N and 6,000 N due to gravity (See link)
https://ibb.co/BcdhTPj
Locomotive Force - Resistance Forces = Resultant Force on Train
450,000/v - 24000 - 300,000 x 9.8/490 = 300,000 x acc --- eq 1
Divide through by 300,000
1.5/v - 0.1 = acc ----- eq 2
Where 'acc' is the acceleration of the train up the slope = v/t (m/s²)
When Vmax occurs the Resultant Force = 0 because acc = 0
Therefore from eq 2
1.5/v - 0.1 = 0
Answer (a.) ---> Vmax = 15 m/s
Part (b.)
When v < Vmax then eq 2 can be written as
dv/dt = 1.5/v - 0.1
multiply both sides by v
v.dv/dt = (1.5 - 0.1v)
v.dv/dt (1.5 - 0.1v) = 1
v.dv/(1.5 - 0.1v) = 1.dt
Now multiply both sides by 1/10 to eliminate decimals;
v.dv/(15 - v) = dt/10
Integrating the equation above would involve integration by parts (messy) therefore simplify and rearrange and reduce to the form;
-[1 - 15/(15 - v)].dv = dt/10 Now perform integral calculus;
-Σ[1 - 15/(15 - v)].dv = 1/10 Σdt
Note due to syntax limitations, Σ represents the elongated S
Integrating both sides yields;
-[v + 15ln(15 - v)] = 0.1t + k --- eq 3
v = 5 when t = 0 (bottom of slope) thus
k = -39.54
now substitute v = 10 into eq 3 to determine t
Answer (b.) t = 53.97 Seconds
Part (c.) Find 'height above sea level' (hasl) when a = 0.125 m/s²
s = ut + at²/2 (distance travelled up the slope in metres)
s = 5 x 53.97 + 0.125 x 53.97²/2
s = 451.9 metres up the slope. By application of basic trigonometry;
hasl = SinΘ x 451.9 ---> 1 x 451.9/490
Answer (c.) = 0.922 metres
or
Approx one yard in old money :-)