Short answer
$$
t_{65mph} = \frac{m}{\delta}\ln\left(\frac{(27.8-v_1)^{\alpha} * (27.8-v_2)^{\beta} * (27.8-v_3)^{\gamma}}{(-v_1)^\alpha * (-v_2)^\beta * (-v_3)^\gamma }\right)
$$
- $\alpha = v_1(v_2-v_3)$
- $\beta = v_2(v_3-v_1) $
- $\gamma = v_3(v_1-v_2)$
- $\delta = (v_1-v_2)(v_1-v_3)(v_2-v_3)$
v1, v2 and v3 are the roots of:
$ - K_1 v^3 - K_2 v + P = (v-v_1)(v-v_2)(v-v_3) $
$ v_{1,2,3} = \sqrt[3]{u + \sqrt{u^2+v^3}} + \sqrt[3]{u - \sqrt{u^2+v^3}} $
$ u = \frac{P}{\rho C_dA} $
$v= \frac{2mgC_{rr}}{3 \rho C_dA}$
Generic final speed:
$$
t_f = \frac{m}{\delta}\ln\left(\frac{(v_f-v_1)^{\alpha} * (v_f-v_2)^{\beta} * (v_f-v_3)^{\gamma}}{(-v_1)^\alpha * (-v_2)^\beta * (-v_3)^\gamma }\right)
$$
Start time and start speed are assumed to be t=0, end time is $t_f$ and final speed is $v_f$.
Demonstration
Last equation in the question, $- K_1 v^2 + \frac{P}{v} - K_2 = m\frac{dv}{dt}$ , can be also written as:
$ - K_1 v^3 +P- K_2 v= mv\frac{dv}{dt} $
and sorting by power:
$ - K_1 v^3 - K_2 v + P= mv\frac{dv}{dt} $
Separating t and v:
$ dt= \frac{mvdv}{- K_1 v^3 - K_2 v + P} $
Mirroring:
$ \frac{mvdv}{- K_1 v^3 - K_2 v + P} = dt$
So we can now integrate on both sides
$\int {\frac{mv}{- K_1 v^3 - K_2 v + P}dv} = \int dt$
$ m\int {\frac{v}{- K_1 v^3 - K_2 v + P}dv} = \int dt$
Lower factor can be written as:
$ - K_1 v^3 - K_2 v + P = (v-v_1)(v-v_2)(v-v_3) $
being v1, v2 and v3 the roots of $ - K_1 v^3 - K_2 v + P$
Hence we can write:
$ m\int {\frac{v}{(v-v_1)(v-v_2)(v-v_3)}dv} = \int dt $
getting (source):
$$ m \frac{v_1 (v_2 - v_3) ln(v - v_1) + v_2 (v_3 - v_1) ln(v - v_2) + v_3 (v_1 - v_2) ln(v - v_3)}{(v_1 - v_2) (v_1 - v_3) (v_2 - v_3)} = t + C_0$$
Replacing with some constants for readability:
$ \alpha = v_1 (v_2 - v_3) $
$ \beta = v_2 (v_3 - v_1)$
$ \gamma = v_3 (v_1 - v_2)$
$ \delta = (v_1 - v_2) (v_1 - v_3) (v_2 - v_3) $
$$ m \frac{\alpha ln(v - v_1) + \beta ln(v - v_2) + \gamma ln(v - v_3)}{\delta} = t + C_0 $$
or
$$ \frac{m}{\delta} (\alpha ln(v - v_1) + \beta ln(v - v_2) + \gamma ln(v - v_3)) = t + C_0 $$
or
$$ \alpha ln(v - v_1) + \beta ln(v - v_2) + \gamma ln(v - v_3) = \frac{\delta}{m} (t + C_0) $$
Being:
$a*ln(b) = ln (b^a) $
we can then rewrite in this form:
$$ \ln(v - v_1)^\alpha + \ln(v - v_2)^\beta + \ln(v - v_3)^\gamma = \frac{\delta}{m} (t + C_0) $$
Then we can transform into:
$$ e^{\ln(v - v_1)^\alpha + \ln(v - v_2)^\beta + \ln(v - v_3)^\gamma} = e^{\frac{\delta}{m} (t + C_0)} $$
But this can be split into:
$$ e^{\ln(v - v_1)^\alpha}* e^{\ln(v - v_2)^\beta} * e^{\ln(v - v_3)^\gamma} = e^{\frac{\delta}{m} t} * e^{C_0} $$
which means:
$$ (v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma = e^{\frac{\delta}{m} t} * C_1 $$
Bringing C1 to left:
$$ \frac{(v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma}{C_1} = e^{\frac{\delta}{m} t} $$
Applying logarithm again:
$$ \ln{\frac{(v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma}{C_1}} = \ln{e^{\frac{\delta}{m} t}} $$
$$ \ln{\frac{(v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma}{C_1}} = \frac{\delta}{m} t $$
and finally:
$$ t = \frac{m}{\delta} \ln{\frac{(v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma}{C_1}} $$
We need to calculate C1 value. This can be done considering initial conditions:
t=0, v=0
Putting these values in previous equation:
$$ \frac{(v - v_1)^\alpha * (v - v_2)^\beta * (v - v_3)^\gamma}{C_1} = e^{\frac{\delta}{m} t} $$
we get:
$$ \frac{(0 - v_1)^\alpha * (0 - v_2)^\beta * (0 - v_3)^\gamma}{C_1} = e^{\frac{\delta}{m} 0}$$
$$ \frac{(-v_1)^\alpha * (-v_2)^\beta * (-v_3)^\gamma}{C_1} = e^0 $$
$$ (-v_1)^\alpha * (-v_2)^\beta * (-v_3)^\gamma = C1 $$
This means that, for final conditions tf = unknown and vf = known we have:
(1) $
t_f = \frac{m}{\delta}\ln\left(\frac{(v_f-v_1)^{\alpha}(v_f-v_2)^{\beta}(v_f-v_3)^{\gamma}}{(-v_1)^\alpha * (-v_2)^\beta * (-v_3)^\gamma }\right)
$
V1, V2, V3 calculation
Now we only need v1, v2 and v3,which are the solutions of the equation:
$-K_1v^3 - K_2 v + P= 0$
Adding "missing" coefficient:
$-K_1v^3 + 0 v^2- K_2 v + P= 0$
This is a 3rd grade equation, whose solutions can be determined as follows:
It can be expressed in the form of
$ax^3 + bx^2 + cx + d = 0$
being:
- a = $-K_1 = - 0.5 \rho C_dA$
- b = 0
- c = $-K_2 = -mgC_{rr}$
d = P
Solutions are (source):
$ x = \sqrt[3]{q + \sqrt{q^2 + (r-p^2)^3}} + \sqrt[3]{q - \sqrt{q^2 + (r-p^2)^3}} + p = \sqrt[3]{q + s} + \sqrt[3]{q - s} + p $
where (considering b=0)
$p = \frac{-b}{3a} = 0 $
$q = p^3 + \frac{bc-3ad}{6a^2} = - \frac{d}{2a} = - \frac{P_{ower}}{2 (- 0.5 \rho C_dA)} = \frac{P_{ower}}{\rho C_dA}$
$r = \frac{c}{3a} = \frac{-mgC_{rr}}{3(- 0.5 \rho C_dA)} = \frac{2mgC_{rr}}{3 \rho C_dA}$
$s = \sqrt{q^2+(r-p^2)^3} = \sqrt{q^2+r^3} = \sqrt{(\frac{P_{ower}}{\rho C_dA})^2+(\frac{2mgC_{rr}}{3 \rho C_dA})^3} $
Shortly:
$q = \frac{P_{ower}}{\rho C_dA}$
$s = \sqrt{(\frac{P_{ower}}{\rho C_dA})^2+(\frac{2mgC_{rr}}{3 \rho C_dA})^3} $
Due to p = 0 (as b=0):
$ x = \sqrt[3]{q + s} + \sqrt[3]{q - s} $
replacing:
$ x_{1,2,3} = \sqrt[3]{\frac{P_{ower}}{\rho C_dA} + \sqrt{(\frac{P_{ower}}{\rho C_dA})^2+(\frac{2mgC_{rr}}{3 \rho C_dA})^3}} + \sqrt[3]{\frac{P_{ower}}{\rho C_dA} - \sqrt{(\frac{P_{ower}}{\rho C_dA})^2+(\frac{2mgC_{rr}}{3 \rho C_dA})^3}} $
This gives 3 values x1, x2 and x3 which must replace v1, v2 and v3 in the final equation (1) found before.
