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Angelina Lai
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I've got a 2nd order d.e. to solve in the form x'' + w2 *(x')2 = k Can this be solved using the auxiliary method? |
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Kerwin
Hui
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If w and k do not depend on t, then the substitution u=x'^2 gives 2x''=du/dx, and you get a 1st order ODE. Kerwin |
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Angelina Lai
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Oh yes of course! Thank you very much! |
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| Michael Doré |
In fact the substitution v = x' gives an 1st order ODE for v. |
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| Kerwin
Hui |
Yes. The substitution will work as long as k and w have no x dependencies. In general, f(x'',x',x)=0 - use u=x'^2, du/dx=2x'' f(x'',x',t)=0 - use u=x', u'=x'' Kerwin |
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| Angelina
Lai |
No k and w are constants. This is for my M4 coursework which is on the effect of air resistance on falling objects and we are using paper cake cups. In the revised model assuming R = kv2 the new d.e. I obtained came to the form above. I've substituted v = x' and the d.e. then becomes v' + w 2 *v2 = g Using separation of variables I somehow got the following solution v = w tanh [Aw SQRT(g)] which is not dependent on time... Did I make a mistake somewhere in the integration? Please help!!! |
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| Angelina
Lai |
Actually it's ok, I've made a stupid mistake but everything is sorted now! Anyhow, can someone just verify the particular solution with the initial conditions v = 0, x = 0 when t = 0
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| Kerwin
Hui |
Errr... what is your w ? Presumably it is k/m. The form of the solution looks right, just need to check some constants:- The terminal velocity is sqrt(g/w 2 )=sqrt(mg/k), but your solution gives sqrt(k/mg). (alternatively, use dimension analysis) Kerwin |