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Solve these unkowns x and y using these 2 simultaneous equations

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nathalie
nathalie el 29 de Oct. de 2023
Comentada: Walter Roberson el 29 de Oct. de 2023
Eq1= 2760 * sin (200) + m3R3L3 * sin (107) + m4R4L4 * sin (307) = 0
Eq2= 2760 * cos (200) + m3R3l3 * cos (107) + m4R4L4 * cos(307) = 0
I want to get m3r3l3 and m3r4l4 we can consider m3r3l3 as x and m4r4l4 as y

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Walter Roberson
Walter Roberson el 29 de Oct. de 2023
Ran in:
syms m3R3l3 m4R4l4
Eq1 = 2760 * sind(sym(200)) + m3R3l3 * sind(sym(107)) + m4R4l4 * sind(sym(307)) == 0
Eq1 = 
Eq2 = 2760 * cosd(sym(200)) + m3R3l3 * cosd(sym(107)) + m4R4l4 * cosd(sym(307)) == 0
Eq2 = 
sol = solve([Eq1, Eq2])
sol = struct with fields:
m3R3l3: (2760*(cos(pi/9)*sin((53*pi)/180) + cos((53*pi)/180)*sin(pi/9)))/(cos((53*pi)/180)*sin((73*pi)/180) - cos((73*pi)/180)*sin((53*pi)/180)) m4R4l4: (2760*(cos(pi/9)*sin((73*pi)/180) + cos((73*pi)/180)*sin(pi/9)))/(cos((53*pi)/180)*sin((73*pi)/180) - cos((73*pi)/180)*sin((53*pi)/180))
simplify(sol.m3R3l3)
ans = 
simplify(sol.m4R4l4)
ans = 
  2 comentarios
nathalie
nathalie el 29 de Oct. de 2023
Yes there any way to solve this final answer to get normal numbers? On matlab?
Walter Roberson
Walter Roberson el 29 de Oct. de 2023
Ran in:
No, π is transcendental. It is mathematically impossible to express it in terms of a finite series of "algebraic numbers". It is not the root of any finite polynomial with rational coefficients. π is one of the most abnormal real numbers that exist.
However you can get a more compact answer than the above:
syms m3R3l3 m4R4l4
Eq1 = 2760 * sind(sym(200)) + m3R3l3 * sind(sym(107)) + m4R4l4 * sind(sym(307)) == 0
Eq1 = 
Eq2 = 2760 * cosd(sym(200)) + m3R3l3 * cosd(sym(107)) + m4R4l4 * cosd(sym(307)) == 0
Eq2 = 
sol = solve([Eq1, Eq2])
sol = struct with fields:
m3R3l3: (2760*(cos(pi/9)*sin((53*pi)/180) + cos((53*pi)/180)*sin(pi/9)))/(cos((53*pi)/180)*sin((73*pi)/180) - cos((73*pi)/180)*sin((53*pi)/180)) m4R4l4: (2760*(cos(pi/9)*sin((73*pi)/180) + cos((73*pi)/180)*sin(pi/9)))/(cos((53*pi)/180)*sin((73*pi)/180) - cos((73*pi)/180)*sin((53*pi)/180))
simplify(sol.m3R3l3, 'steps', 1000)
ans = 
simplify(sol.m4R4l4, 'steps', 1000)
ans = 

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Más respuestas (1)

Torsten
Torsten el 29 de Oct. de 2023
Movida: Torsten el 29 de Oct. de 2023
I think you want to use sind and cosd instead of sin and cos.
This is a linear system of equations in m3R3L3 and m4R4L4. You know how to solve linear systems of equations ?

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