Why the below mentioned function plotting is unsuccessful?

조회 수: 15 (최근 30일)
Sarbhanu Saha
Sarbhanu Saha 2021년 8월 17일
댓글: Walter Roberson 2021년 8월 28일
I want to create a plot for the below given function. But, I always get the same error. The code for the plotting is:
syms a m n b r s phi E D ri ro u;
ro = 80;
E = 210000;
s = 1;
u = 3./10;
D = (E.*s.^3)./(12.*(1-u.^2));
a = 0.005;
m = 1.1492;
n = 2;
b = 0.6158;
Pi = sym(pi);
assume(r >= ri);
assume(r <= ro);
ri = linspace(5, 15, 100);
z = exp(a.*r).*((r-ri).^2).*((r-ro).^2).*cos(n.*(tan(b).*log(ri./r) + phi))./(r.^m);
dzr = diff(z,r);
dzrr = diff(dzr,r);
dzp = diff(z,phi);
dzpp = diff(dzp,phi);
dzrp = diff(dzr,phi);
q2inside = ((1./r.^3).*dzr.*dzp).*r;
q2inint = vpaintegral(q2inside,phi,[0 2.*Pi]);
q2 = (-1).*vpaintegral(q2inint,r,[ri ro]);
q1inside = (D.*((dzrr + (1./r).*dzr + (1./r.^2).*dzpp).^2 + 2.*(1-u).*(((1./r).*dzrp - (1./r.^2).*dzp).^2 - dzrr.*((1./r).*dzr + (1./r.^2).*dzpp)))).*r;
q1inint = vpaintegral(q1inside,r,[ri ro]);
q1 = Pi.*vpaintegral(q1inint,phi,[0, 2.*Pi]);
Mkrit = q1./q2;
q = double(abs(Mkrit));
plot(ri, q)
The error that i am encountering is :
Operands to the logical and (&&) and or (||) operators must be convertible to logical scalar values.
Error in sym/vpaintegral (line 182)
(isinf(b) && isempty(symvar(b)) && ~isreal(b))
Error in Graph_Try (line 23)
q2 = (-1).*vpaintegral(q2inint,r,[ri ro]);

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답변 (1개)

Walter Roberson
Walter Roberson 2021년 8월 17일
Your ri is a vector. You cannot use a vector as one of the bounds for vpaintegral, with the exception that you can supply a vector of two elements as the bounds instead of separate upper and lower boundaries.
Your expression to be integrated is a vector. Are you wanting to integrate each element of the vector with respect to each different lower bound, or are you wanting to integrate each one with respect to only its corresponding lower bound? Remember that you can arrayfun() calls to vpaintegral
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Sarbhanu Saha
Sarbhanu Saha 2021년 8월 28일
Thank you for your response. I learned about integration with varying limits. Since ri is a vector in my previous code, i so decided to make the graph using for loop. But now it does not show any point in the graph. Here is the following code:
syms a m n b r s phi E D ri ro u x;
ro = 80;
E = 70000;
s = 1;
u = 3./10;
D = (E.*s.^3)./(12.*(1-u.^2));
a = 0.005;
m = 1.1492;
n = 2;
b = 0.6158;
Pi = sym(pi);
assume(r >= ri);
assume(r <= ro);
for x = 5:0.5:15
ri = x;
z = exp(a.*r).*((r-ri).^2).*((r-ro).^2).*cos(n.*(tan(b).*log(ri./r) + phi))./(r.^m);
dzr = diff(z,r);
dzrr = diff(dzr,r);
dzp = diff(z,phi);
dzpp = diff(dzp,phi);
dzrp = diff(dzr,phi);
q2inside = ((1./r.^3).*dzr.*dzp).*r;
q2inint = vpaintegral(q2inside,phi,[0 2.*Pi]);
q1inside = (D.*((dzrr + (1./r).*dzr + (1./r.^2).*dzpp).^2 + 2.*(1-u).*(((1./r).*dzrp - (1./r.^2).*dzp).^2 - dzrr.*((1./r).*dzr + (1./r.^2).*dzpp)))).*r;
q1inint = vpaintegral(q1inside,phi,[0 2.*Pi]);
q2 = (-1).*vpaintegral(q2inint,r,[ri ro]);
q1 = Pi.*vpaintegral(q1inint,r,[ri ro]);
Mkrit = q1./q2;
q = double(abs(Mkrit));
end
plot(ri, q)
Can you suggest me what to do so that the graph is visible?
Walter Roberson
Walter Roberson 2021년 8월 28일
Ran in:
syms a m n b r s phi E D ri ro u x;
ro = 80;
E = 70000;
s = 1;
u = 3./10;
D = (E.*s.^3)./(12.*(1-u.^2));
a = 0.005;
m = 1.1492;
n = 2;
b = 0.6158;
Pi = sym(pi);
assume(r >= ri);
assume(r <= ro);
xvals = 5:0.5:15;
numx = length(xvals)
numx = 21
for xidx = 1 : numx
x = xvals(xidx);
ri = x;
z = exp(a.*r).*((r-ri).^2).*((r-ro).^2).*cos(n.*(tan(b).*log(ri./r) + phi))./(r.^m);
dzr = diff(z,r);
dzrr = diff(dzr,r);
dzp = diff(z,phi);
dzpp = diff(dzp,phi);
dzrp = diff(dzr,phi);
q2inside = ((1./r.^3).*dzr.*dzp).*r;
q2inint = vpaintegral(q2inside,phi,[0 2.*Pi]);
q1inside = (D.*((dzrr + (1./r).*dzr + (1./r.^2).*dzpp).^2 + 2.*(1-u).*(((1./r).*dzrp - (1./r.^2).*dzp).^2 - dzrr.*((1./r).*dzr + (1./r.^2).*dzpp)))).*r;
q1inint = vpaintegral(q1inside,phi,[0 2.*Pi]);
q2 = (-1).*vpaintegral(q2inint,r,[ri ro]);
q1 = Pi.*vpaintegral(q1inint,r,[ri ro]);
Mkrit = q1./q2;
q(xidx) = double(abs(Mkrit));
end
plot(xvals, q)

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