mathematica解方程
Solve[{x==RCos[alpha]-RCos[alpha+beta],y==RSin[alpha]-RSin[alpha+beta]},{alpha,beta}]...
Solve[{x == R Cos[alpha] - R Cos[alpha + beta], y == R Sin[alpha] - R Sin[alpha + beta]}, {alpha, beta}]
得不到任何结果。这是为什么呢?
怎么化简 展开
得不到任何结果。这是为什么呢?
怎么化简 展开
展开全部
我怎么有结果啊——
{{beta -> -ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}}
{{beta -> -ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta -> -ArcCos[(
2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 - Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> -ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}, {beta ->
ArcCos[(2 R^2 - x^2 - y^2)/(2 R^2)],
alpha -> ArcCos[(R x^3 + R x y^2 + Sqrt[
4 R^4 x^2 y^2 - R^2 x^4 y^2 + 4 R^4 y^4 - 2 R^2 x^2 y^4 -
R^2 y^6])/(2 (R^2 x^2 + R^2 y^2))]}}
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Sievers分析仪
2025-02-09 广告
是的。传统上,对于符合要求的内毒素检测,最终用户必须从标准内毒素库存瓶中构建至少一式两份三点标准曲线;必须有重复的阴性控制;每个样品和PPC必须一式两份。有了Sievers Eclipse内毒素检测仪,这些步骤可以通过使用预嵌入的内毒素标准...
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含有三角函数的有多解问题,应该用Reduce命令来解,你若用Solve,那么只会出现0附近的一个周期内的那个解。
a = Reduce[{x == R Cos[alpha] - R Cos[alpha + beta],
y == R Sin[alpha] - R Sin[alpha + beta]}, {alpha, beta}]
Simplify@a
a = Reduce[{x == R Cos[alpha] - R Cos[alpha + beta],
y == R Sin[alpha] - R Sin[alpha + beta]}, {alpha, beta}]
Simplify@a
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