How can i done this problem?

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Voicila Iulian-Teodor
Voicila Iulian-Teodor am 29 Mai 2016
Beantwortet: Jesús am 2 Sep. 2022
I=integral(xdy+ydx) where y=sqrt(x) O(0,0) A(1,1)
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Voicila Iulian-Teodor
Voicila Iulian-Teodor am 29 Mai 2016
i just finished an exercise with a double integral like 3<=x.^2+y.^2<=5 while x>=0 and y>=0. the function was: exp(-x.^2-y.^2)dxdy and now im doing this problem...I finished my 2nd semester and i have done my matlab courses and seminars with 9 xD
Voicila Iulian-Teodor
Voicila Iulian-Teodor am 29 Mai 2016
im looking to improve my self cuz i see a lot of potential in this program but idk from where to begin...what i have done at school is not enough. this is what i did http://www.apar.pub.ro/informatica_aplicata_2/laborator/ all 5 labs

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Roger Stafford
Roger Stafford am 29 Mai 2016
Bearbeitet: Roger Stafford am 29 Mai 2016
The integral(xdy+ydx) is equivalent to integral(1*d(x*y)). If the integral lower limit is x*y = 0*0 and the upper limit x*y = 1*1, then the integral must have a value of 1. It has nothing to do with being on the curve y = sqrt(x) except for the two endpoints.
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Voicila Iulian-Teodor
Voicila Iulian-Teodor am 30 Mai 2016
so i don't need the equation to solve it?
Roger Stafford
Roger Stafford am 30 Mai 2016
Well, I have the impression that your instructor intends for you to solve those three integrals independently and then notice that your answer in each case is the same. For example, with ϒ1 you can calculate
y = sqrt(x)
dy = (1/2)/sqrt(x)*dx
x*dy+y*dx = x*(1/2)/sqrt(x)*dx + sqrt(x)*dx = 3/2*sqrt(x)*dx
x*dy+y*dx = 3/2*sqrt(x)*dx = 3/2*x^(3/2)/(3/2) = x^(3/2)
Hence the definite integral is 1^(3/2)-0^(3/2) = 1. This is the same as x*y at (1,1) minus x*y at (0,0), namely 1.
The same kind of computation can be done with ϒ2 and ϒ3 (I assume they intended for the ϒ3 case to be a straight line from point O to point A.)
So, in answer to your question, I would say that actually you do need the equations in order to demonstrate to your instructor’s satisfaction that ∫ x*dy+y*dx does depend only on the difference of x*y at the two endpoints of your curve. (I’ve done one-third of your home work for you. I won’t tell if you don’t.)

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John BG
John BG am 30 Mai 2016
Bearbeitet: John BG am 31 Mai 2016
Hi
1.- from http://mathworld.wolfram.com/LineIntegral.html
.
.
2.- eq [2] you want to integrate a vector function F along a path or line.
F = [F1 , F2, F3] = [y , x, 0]
.
3.- eq [5] is possible because the curl of F is 0, just solve the following (from https://en.wikipedia.org/wiki/Curl_(mathematics) ) manually:
4.- So, the potential function you need to solve the integral is
phi = -[x*y , x*y, k]
5.- So, the integral of the field [y,x,0] along the arcul/arc/path/line (call it whatever you like it) y=x^.5 from point O [0 0] to point A [1 1] is the difference of potential
phi(O)-phi(A) = -phi(A)
and you get the same result whether you follow the previous arcul
[x x^.5]
or following
[x x^2]
If you find this answer of any help solving your question,
please click on the thumbs-up vote link,
thanks in advance
John
jgb2012@sky.com
Jesús
Jesús am 2 Sep. 2022
(X+y) dx + xdy =0 MATLAB como hacerlo

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