Green’s Theorem, circulation form Consider the following regions R and vector fields F . a. Compute the two-dimensional curl of the vector field. b. Evaluate both integrals in Green’s Theorem and check for consistency. 17. F = 〈 2 y , − 2 x 〉 ; R is the region bounded by y = sin x and y = 0, for 0 ≤ x ≤ π
Green’s Theorem, circulation form Consider the following regions R and vector fields F . a. Compute the two-dimensional curl of the vector field. b. Evaluate both integrals in Green’s Theorem and check for consistency. 17. F = 〈 2 y , − 2 x 〉 ; R is the region bounded by y = sin x and y = 0, for 0 ≤ x ≤ π
Green’s Theorem, circulation form Consider the following regions R and vector fields F.
a. Compute the two-dimensional curl of the vector field.
b. Evaluate both integrals in Green’s Theorem and check for consistency.
17. F =
〈
2
y
,
−
2
x
〉
; R is the region bounded by y = sin x and y = 0, for 0 ≤ x ≤ π
With differentiation, one of the major concepts of calculus. Integration involves the calculation of an integral, which is useful to find many quantities such as areas, volumes, and displacement.
Green’s Theorem, circulation form Consider the following regions R and vector fields F.a. Compute the two-dimensional curl of the vector field.b. Evaluate both integrals in Green’s Theorem and check for consistency.
F = ⟨2y, -2x⟩; R is the region bounded by y = sin x and y = 0, for 0 ≤ x ≤ π.
Determine whether the line integral of each vector field (in blue) along the semicircular, oriented path (in red) is positive, negative, or zero.
Positive
Positive
Zero
Zero
Negative
Positive
-
1.
Elementary Statistics: Picturing the World (7th Edition)
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