Workbook guide +problem in Math. Phys.

  • Thread starter Thread starter blade86
  • Start date Start date
blade86
Messages
13
Reaction score
0
Hey I have a degree robotics and moved to theoretical physics so am still struggling to keep up with the mathematics. I was wondering if there are any good workbooks out there where I can just practice a lot of problems, mainly (special functions: Bessel, Legendre, Laplace, Integral transforms, ODEs PDEs and complex variables)?
Also some help with the following problem would be helpful:

If a cube of side length a originally at temp. T_{0} is placed in a reservoir at temp. T=0 K, show the subsequent temp. is :

T(x,t) = T_0 \Sigma_{l,m,n} 64 \over lmn \pi^3 sin[ {{l \pi} \over{a}} x] sin[ {{m \pi} \over{a}} y] sin[ {{n \pi} \over{a}} z] e^{-(l^2 + m^2 + n^2)({\pi \over a})^2 \kappa t}

where \kappa is the heat conductivity.

Any help or guidance on how to approach the solution would be much appreciated.
 
Physics news on Phys.org
blade86 said:
Hey I have a degree robotics and moved to theoretical physics so am still struggling to keep up with the mathematics. I was wondering if there are any good workbooks out there where I can just practice a lot of problems, mainly (special functions: Bessel, Legendre, Laplace, Integral transforms, ODEs PDEs and complex variables)?
Also some help with the following problem would be helpful:

If a cube of side length a originally at temp. T_{0} is placed in a reservoir at temp. T=0 K, show the subsequent temp. is :

T(x,t) = T_0 \Sigma_{l,m,n} 64 \over lmn \pi^3 sin[ {{l \pi} \over{a}} x] sin[ {{m \pi} \over{a}} y] sin[ {{n \pi} \over{a}} z] e^{-(l^2 + m^2 + n^2)({\pi \over a})^2 \kappa t}

where \kappa is the heat conductivity.

Any help or guidance on how to approach the solution would be much appreciated.
I'm not really a physics guy, but my initial reaction is to start with the heat equation.$$\frac{\partial T}{\partial t}-\frac{\kappa}{\rho c_p}\nabla^2T=0.$$

As an aside, am I the only one here who sees that mess and automatically imagines Steve Irwin yelling "Crikey! Look at the size of that thing!" ? :smile:

Edit: If you really want to get good at the math, what I've done for practice is stalk the forums and try to answer whatever questions I deem worth answering. It's actually rather effective.
 
Are you just looking for a bunch of good problems with some answers to check your work? Many university classes post homework assignments and solutions. Try
ocw.mit.edu

jason
 
Thanks for the tips, yeah answering physics forums seems like a good idea. I tried the solution.. maybe its something like this (attached pdf). but not sure about the subsequent temperature.
 

Attachments

@jasonRF yes indeed I am just looking to solve a lot of problems to become more fluent in the mathematics.
 
There is the following linear Volterra equation of the second kind $$ y(x)+\int_{0}^{x} K(x-s) y(s)\,{\rm d}s = 1 $$ with kernel $$ K(x-s) = 1 - 4 \sum_{n=1}^{\infty} \dfrac{1}{\lambda_n^2} e^{-\beta \lambda_n^2 (x-s)} $$ where $y(0)=1$, $\beta>0$ and $\lambda_n$ is the $n$-th positive root of the equation $J_0(x)=0$ (here $n$ is a natural number that numbers these positive roots in the order of increasing their values), $J_0(x)$ is the Bessel function of the first kind of zero order. I...
Are there any good visualization tutorials, written or video, that show graphically how separation of variables works? I particularly have the time-independent Schrodinger Equation in mind. There are hundreds of demonstrations out there which essentially distill to copies of one another. However I am trying to visualize in my mind how this process looks graphically - for example plotting t on one axis and x on the other for f(x,t). I have seen other good visual representations of...
Back
Top