dharr

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Name: Dr. David Harrington

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Member for: 16 years, 292 days

Company/Institution: University of Victoria

Title: Professor or university staff

Location: Victoria, British Columbia, Canada

Website: http://web.uvic.ca/~dharr

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I am a professor of chemistry at the University of Victoria, BC, Canada, where my research areas are electrochemistry and surface science. I have been a user of Maple since about 1990.

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These are answers submitted by dharr

solve and plot...

Answered: dharr 1811

June 12 2021

0 1

Since the 19.58480220 is recognizable as having units of V^(-1), Vt must be in Volts, and so you want Vt from 0 to 0.0257 V. So you can solve for t and then use a parametric plot.

[Worksheet not displaying right now]

Download Vt.mw

Well, you are a moderator (note the symbol below your avatar), "a selected group of long-time MaplePrimes users with a reputation for positive contributions." - see https://www.mapleprimes.com/help/moderation.

There are some good reasons to edit others' posts; removing copyrighted content is one I've used. Another is removing duplicate copies of posted worksheets.

There are guidelines on the cited page. One of them is:

"In general, try to avoid making spelling or grammar changes unless they are particularly egregious, but feel free to edit message formatting if it messes up the display of the page." Since I don't think @acer's grammar was egregious, perhaps you are in violation :)

But seriously, this policy does not seem to have led to much difficulty.

laplace version...

Answered: dharr 1811

May 26 2021

1 1

@dharr OK, I see now what you want - here is how I would do it with laplace. Not sure about with Elziki

laplace.mw

solve,explicit...

Answered: dharr 1811

May 20 2021

1 4

solve(invEqs, {theta[1], theta[2], theta[3]}, explicit) gives two solutions, though they are many pages long. Once you have theta[1], theta[2] and theta[3], you can find sin(theta[1]) or various other derived quantities.

singular matrix...

Answered: dharr 1811

May 11 2021

3 2

Your 7x7 Matrix has only Rank 6, so it must have Determinant zero, no matter what the values of k, Bi, omega etc are. If this isn't what your expect, you will need to check the construction of the Matrix. I didn't see any obvious reason for this, like two rows or columns the same.

PolynomialInterpolation...

Answered: dharr 1811

May 06 2021

0 2

Maple does have this as a builtin command.

CurveFitting:-PolynomialInterpolation(lxi, Lu, xi)

returns -(1/3)*xi^2+(4/3)*xi+1

dsolve,dae...

Answered: dharr 1811

May 01 2021

1 0

The dsolve command solves DAE systems. See the help ?dsolve,dae. There are five DEA methods, rkf45_dae, ck45_dae, rosenbrock_dae, or mebdfi, and if you specify stiff=true, you will get the rosenbrock method. There is a brief desciption and some options described on that help page and the ?dsolve,dae_extension help page.

tangent for one solution...

Answered: dharr 1811

May 01 2021

0 0

When the two curves are tangent, then there will be only one solution, which occurs for r=e

r=e, just touching

r>e, two solutions

r<e, no real solutions

Download Number_solutions.mw

one way...

Answered: dharr 1811

April 29 2021

0 2

Here is one way. You may have to optimize plot parameters for the other plots.

Download sim_plot.mw

pdsolve...

Answered: dharr 1811

April 28 2021

1 0

pdsolve can give a general solution, which can probably be worked up with BCs and IC in some cases to give an analytical solution, though not immediately in my version for the BCs you gave (incompatible?) :

$PDESolStruc(u(t, x, y, z) = _F1(t)*_F2(x)*_F3(y)*_F4(z)-m*(_C1+_C2*sin(l^(1/2)*x/k^(1/2))+_C3*cos(l^(1/2)*x/k^(1/2)))/(l*_C1), [{diff(_F1(t), t) = _c[1]*_F1(t), diff(diff(_F2(x), x), x) = _c[2]*_F2(x), diff(diff(_F3(y), y), y) = _c[3]*_F3(y), diff(diff(_F4(z), z), z) = _F4(z)*_c[1]/k-_F4(z)*_c[2]-_F4(z)*_c[3]-_F4(z)*l/k}])$

Download pdsolve.mw

Numerical solutions are also possible, see ?pdsolve,numeric. [Edit - only for time and two space variables.]

atomic variable...

Answered: dharr 1811

April 26 2021

2 1

To make b^1 a name, select it with the mouse, and then use the right-click (ctrl-click on mac) menu to choose 2-D math -> convert to -> atomic variable.

atomic.mw

output=Array...

Answered: dharr 1811

April 26 2021

1 1

You can set up a Vector of r values, say rvals, at which you want the solution, and then use output=rvals. The output is a 2x1 Matrix, from which you can extract the information you want.

dsolvetable.mw

axes=none...

Answered: dharr 1811

April 25 2021

2 1

The option axes=none removes the axes and labels.

general solution not general enough...

Answered: dharr 1811

April 20 2021

2 2

If you substitute r=3/2 in Maple's general solution you get zero, so it will never match the initial condition. So Maple's general solution is not general enough; a bug IMO. Going through the standard separation of variables steps leads to an analytical solution.

restart; with(PDEtools); heat := diff(u(r, t), t) = (diff(r^2*(diff(u(r, t), r)), r))/r^2; bc1 := u(1, t) = 0; bc2 := u(2, t) = 0; bc := bc1, bc2; ic := u(r, 0) = -sin(Pi*r); sol := pdsolve([heat, bc], HINT = `*`)

diff(u(r, t), t) = (2*r*(diff(u(r, t), r))+r^2*(diff(diff(u(r, t), r), r)))/r^2

u(r, t) = Sum(I*_C1(n)*sin(2*Pi*n*r)*exp(-4*Pi^2*n^2*t)/r, n = 1 .. infinity)

The "general" solution above is always zero at r=3/2

Look for a separation of variable solution

(diff(f(t), t))/f(t) = ((diff(diff(g(r), r), r))*r+2*(diff(g(r), r)))/(r*g(r))

lhs function of t only and rhs function of r only, so each are equal to the separation constant, which we write as -lambda^2

-lambda^2 = ((diff(diff(g(r), r), r))*r+2*(diff(g(r), r)))/(r*g(r))

If given both boundary conditions, dsolve gives the trivial solution and two others; the third one works up to Maple's general solution above.

sol1 := dsolve({der, g(1) = 0, g(2) = 0}, {lambda, g(r)})

${lambda = _C1, g(r) = 0}, {lambda = 2*Pi*_Z3+Pi, g(r) = _C2*sin((2*Pi*_Z3+Pi)*r)/r}, {lambda = 2*Pi*_Z2, g(r) = _C2*sin(2*Pi*_Z2*r)/r}$

Taking both solutions, we have lambda a positive integer, with

gr := a__n*sin(n*Pi*r)/r; leq := lambda = n*Pi

a__n*sin(Pi*n*r)/r

Use this lambda in the time part

>	$eval(-lambda^2 = lhs(heat2), leq); ft := rhs(dsolve({%, f(0) = 1}))$

-Pi^2*n^2 = (diff(f(t), t))/f(t)

And the general solution is the sum over positive n of:

exp(-Pi^2*n^2*t)*a__n*sin(Pi*n*r)/r

So we now want to solve the initial condition part.
The a__n values are different for each term

-sin(Pi*r) = Sum(a__n*sin(Pi*n*r)/r, n = 1 .. infinity)

Since we know the sin functions are orthogonal for different n we can see that multiplying by and integrating will send all terms except m=n to zero

And for m=n

We need to solve

eq := `assuming`([int(r*sin(n*Pi*r)*rhs(ic), r = 1 .. 2) = (1/2)*a__n], [n::posint])

-2*n*((-1)^n+1)/(Pi^2*(n^4-2*n^2+1)) = (1/2)*a__n

-4*n*((-1)^n+1)/(Pi^2*(n-1)^2*(n+1)^2)

We see that odd n gives zero and n=1 needs to be treated separately

Inserting nto the general solution gives

>	$sol6 := eval(sol4, {a__n = a1, n = 1})+Sum(eval(sol4, a__n = an), n = 2 .. infinity)$

-(3/2)*exp(-Pi^2*t)*sin(Pi*r)/r+Sum(-4*exp(-Pi^2*n^2*t)*n*((-1)^n+1)*sin(Pi*n*r)/(Pi^2*(n-1)^2*(n+1)^2*r), n = 2 .. infinity)

Check it with pdetest - won't simplify to zero so try select r and t values - last value not zero maybe still something not quite right or a numerical error?