The area of the smaller part of the circle, x 2 y 2 = a 2, cut off by the line, `x = a/sqrt2`, is the area ABCDA It can be observed that the area ABCD isThe definite integral is 2int_3^5sqrt(25 x^2)dx There are always multiple ways to approach integration problems, but this is how I solved this one We know that the equation for our circle is x^2 y^2 = 25 This means that for any x value we can determine the two y values above and below that point on the x axis using y^2 = 25 x^2 y = sqrt(25x^2) If we imagine that a lineShow Solution Okay, since we are looking for the portion of the plane that lies in front of the y z y z plane we are going to need to write the equation of the surface in the form x = g ( y, z) x = g ( y, z) This is easy enough to do x = 1 − y − z x = 1 − y − z Next, we need to determine just what D D is
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Y x 2 to polar form-Find the area of the surface G cut from the hemisphere x2y2z2=42, z≥0, by the plane z=1 and z=3 by setting up an integral Method 1 Cylindrical Coordinates Set up the Integral 2 42−r2 rdrdθ r=7 ∫15 θ=0 ∫2π 2 42−r2 rdrdθ r=7 ∫15 θ0 ∫2π (5 pts) (5 pts) (5 pts) The surface area of the hemisphere between z=1 and z=3 is 1(f x) 2f (y) 2 S ∫= −xQ Find the volume cut off from the cylinder $x^2y^2=ax$by the planes $z=0 $and $z=x$ Given Answer$\frac{128a^3}{15}$ My answer$\frac{\pi a^3}{4}$ Working So, first off, we can decipher from the question that $z$will vary from $0$to $x$ $y$will vary from $\sqrt{axx^2}$to $\sqrt{axx^2}$



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Let the parabolas y = x( c x ) and y=x2btouch each other at the point (1, 0), then View Answer If the curves a2x2 b2y2 =1and 25x2 16y2 =1cut each other orthogonally, then a2−b2= View Answer Find the equation of the tangent to the curve x=θsinθ,y=1cosθat θ=4π View AnswerCircular sector Integrate f(x, y) = over the smaller sector cut from the disk x2 4 by the rays = 77/6 and = 7/2, Unbounded region Integrate = — — 1)2/3 over the infinite rectangle 2 x <Y 2 = – 4ax;



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X 2 = 9p(9 y) (i) and x 2 = p(y 1) (ii) As, these curves cut each other at right angle, therefore their tangent at point of intersection are perpendicular to each other So, let us first find the point of intersection and slope of tangents to the curves From Eqs (i) and (ii), we get 9p(9 y) = p(y 1) 9(9 y) = y 1Solution Given y = x 2 4 x 6 Rewrite in vertex form by completing the square y = x 2 4 x 6 = (x 2) 2 10 Start y = x 2 2 units to the right y = (x 2) 2 reflection on the x axis y = (x 2) 2 shift 10 units up y = (x 2) 2 10Y locations (with respect to the moment from each force) from M x W xW n i y i i 1 W W xdW x xdW x OR W x W x



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Parabola Equation Derivation In the above equation, "a" is the distance from the origin to the focusThe f (x) curve is above the xaxis from x=0 to the point where 2x = x^2, which is x = 2 The area is INTEGRAL (2x x^2) dx = x^2 x^3/3 @x=2 0 to 2 = 4/3 That agrees with what you obtained You want the area under y = mx to be 2/3Circulation of the eld F = (y 2 z2)i (x 2 z)j (x y2)k around the curve C The boundary of the triangle cut from the plane x y z= 2 by the rst octant, counterclockwise when viewed from above like x167 #4 Sol Note that the surface S enclosed by C has parametric equations as s(x;y) = xi yj (2 x y)k;



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Graph y=3x2 y = 3x 2 y = 3 x 2 Use the slopeintercept form to find the slope and yintercept Tap for more steps The slopeintercept form is y = m x b y = m x b, where m m is the slope and b b is the yintercept y = m x b y = m x b Find the values of m m and b b using the form y = m x b y = m x bUse Stokes' theorem to evaluate ∫ C 2 x y 2 z d x 2 x 2 y z d y (x 2 y 2 = 2 y i e z j − arctan x k with S as a portion of paraboloid z = 4 − x 2 − y 2 z = 4 − x 2 − y 2 cut off by the xyplane oriented counterclockwise 363 T Use a CAS to evaluate∬ D (e x 2 y 2 x 4 2 x 2 y 2 y 4) For the following two exercises, consider a spherical ring, which is a sphere with a cylindrical hole cut so that the axis of the cylinder passes through the center of the sphere (see the following figure) 164



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4xy = 48 x 2 or We wish to MAXIMIZE the total VOLUME of the box V = (length) (width) (height) = (x) (x) (y) = x 2 y However, before we differentiate the righthand side, we will write it as a function of x only Substitute for y getting V = x 2 y = 12x (1/4)x 3 Now differentiate this equation, getting V' = 12 (1/4)3x 2 = 12 (3/4)x 2 = (3/4)(16 x 2)Air force x and y group resultAir force new vacancy 21Air force bharti 21Air force result 21Air force cut off 21Air force bharti new update 21Air fTwo tangent are drawn from P (1, 8) to the circle x 2 y 2 − 6 x − 4 y − 1 1 = 0 touching the circle at A and B A circle passes through the point of intersection of circles x 2 y 2 − 2 x − 6 y 6 = 0 and x 2 y 2 2 x − 6 y 6 = 0 and intersects the circumcircle of Δ PAB orthogonally If r is the radius of circle then find r



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Dr= Z C y2dx xdy = Z 2 −3 t2 dx dt dt− Z 2 −3 (4−t2) dy dt dt = Z 2 −3 −2t3 (4−t2)dt = 245/6 Example 53 Evaluate the line integral, R C(x 2 y2)dx(4xy2)dy, where C is the straight line segmentSolve your math problems using our free math solver with stepbystep solutions Our math solver supports basic math, prealgebra, algebra, trigonometry, calculus and moreIn this section we will start evaluating double integrals over general regions, ie regions that aren't rectangles We will illustrate how a double integral of a function can be interpreted as the net volume of the solid between the surface given by the function and the xy



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Show that the two curves x 2 – y 2 = r 2 and xy = c 2 where c, r are constants, cut orthogonally Solution Let (x 1, y 1) be the point of intersection of the two curves I Curve x 2 – y 2 = r 2 Differentiating wrto x II Curve xy = c 2 Differentiating wrto x Samacheer Kalvi 12th Maths Solutions Chapter 7 Applications of DifferentialFind the area of the surface G cut from the hemisphere x2y2z2=42, z≥0, by the plane z=1 and z=3 Solution The surface of the hemisphere is defined by z=16−x2−y2 z x= −2x 216−x2−y2 z y= −2y 216−x2−y2 The surface area of the hemisphere between z=1 and z=3is 1(z x) 2z (y) 2 S ∫ 1 x 16−x2−y2 ⎛ ⎝ ⎜ ⎞ ⎠ ⎟ 2 y 16−x2−y2 ⎛ ⎜ ⎞ ⎟ 2 S ∫∫ 16−x2−y2 16−x2−y2 x22 is at a distance p x2 o y2 from the same point on the y axis Its field in the y direction is then found similarly, accounting for the geometric factor to pick out the y component E 2y = kq 2 x2 o y2 p x o x2 o y2 = kq 2y (x 2y )3/2 (11) We need E 1y =−E 2y for the net vertical field to be zero (resulting in a purely horizontal field



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The expected cut off of XGroup 1/21 is 2735 (Out of 70) and 3035 (Out of 50) of YGroup 1/21 Candidates who clear the cut off will be called for the second phase Phase 2 consists of four stages that one has to clear Four stages of phase 2 are Join dehradun defence academy for best air force coaching in dehradun36 ‡ 0 1 ‡2 2 ‡ 0 4y2dz d y dx in the order d y dz dx 37 ‡ 0 1 ‡ 0 1x 1x2d y dz dx in the order dz d y dx 38 ‡ 0 4 ‡ 0 16 x2 0 16 x2z2 d y dz dx in the order dx d y dz 3944 Average value Find the following average values 39 The average temperature in the box D =8x, y, zL 0 §x §ln 2, 0 §y §ln 4, 0 §z §ln 8<Severe weather cut short New York's superstarladen concert 'Homecoming concert' in Central Park, with Barry Manilow's set being interrupted by an announceme



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Apart from these two, the equation of a parabola can also be y 2 = 4ax and x 2 = 4ay if the parabola is in the negative quadrants Thus, the four equations of a parabola are given as y 2 = 4ax;Solution Parameterise C by r(t) = (x(t),y(t) = (4 − t2,t), where −3 ≤ t ≤ 2, since −3 ≤ y ≤ 2 F= (y2,x) and dr= (dx,dy) Hence, Z C FA figure is bounded by the curves `y=x^21, y=0,x=0,a n dx=1` At what point `(a , b)` should a tangent be drawn to curve `y=x^21` for it to cut off a trapez



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