http://www.boardofstudies.nsw.edu.au/hsc_exams/hsc2000exams/hsc00_maths/00mathematics23U.pdf
hey guys, I was wondering if someone had the time to explain to me how to do this question
It's question 10b) and I can't do any of it!
LOL
I knew that someone would ask this question eventually.
Since I have done enough 4 unit study for the day, I will reward myself with 2 unit maths xD
i) The depth of snow increases at a constant rate i.e. dh/dt = C (constant)
so h = Ct +c1 = Ct (c1 = 0 because there is no snow when t = 0)
Then we have v = A/h
i.e. dx/dt = A/h = A/Ct = k/t where k = A/C
EDIT: raniaaa!!! damn...hang on he didn't finish the Q. I will continnue then LOL
Part 2 (this is the tricky part so bear with me):
T = time when it started to snow
T + 2 = time when it covered 1 km of snow
Integration (terminal t = T and t = T+2)
After integration, dx/dt = k/t becomes
1 = k (ln (T+2) - ln T)
1 = k ln ((T+2)/T) ...i
Now T+5.5 = time when we covered 2km of snow
Integration (terminal t = T and t = T+ 5.5)
After inegration dx/dt = k/t becomes
2 = k (ln (T+5.5) - lnT)
2 = k ln ((T+5.5)/5)...ii
NOW EQUATE part i and ii
2k ln ((T+2)/T) = k ln((T+5.5)/T)
2 ln ((T+2/T) = ln ((T+5.5/T)
ln ((T+2)/T)^2) = ln ((T+5.5)/T)
((T+2)/T)^2 = (T+5.5)/T
find for T
T = 8/3
So 8/3 hours before 6am...i.e. whatever
