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Applications of Integrals Practice Questions - DPP for JEE
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Page 2 = 2 × Area OBCO = 2x [Since y = 2 –x 2 is the upper curve and y = x is the lower curve] 2. (d) Given Differentiate with respect to b 3. (d) Point of intersection of and are (0, 0) and Given ? So, the parabola is Page 3 = 2 × Area OBCO = 2x [Since y = 2 –x 2 is the upper curve and y = x is the lower curve] 2. (d) Given Differentiate with respect to b 3. (d) Point of intersection of and are (0, 0) and Given ? So, the parabola is Area enclosed by is 4. (b) Point of intersection of y = sin x and y = cos x are Since, sin x = cos x on the interval ? Area of one such region sq. unit. 5. (b) Area of ?AOB = = Area of region AOB Page 4 = 2 × Area OBCO = 2x [Since y = 2 –x 2 is the upper curve and y = x is the lower curve] 2. (d) Given Differentiate with respect to b 3. (d) Point of intersection of and are (0, 0) and Given ? So, the parabola is Area enclosed by is 4. (b) Point of intersection of y = sin x and y = cos x are Since, sin x = cos x on the interval ? Area of one such region sq. unit. 5. (b) Area of ?AOB = = Area of region AOB = = = ? ratio of areas = 6. (c) f(x) = x 2 + bx - b; f '(x) = 2x + b ? f '(1) = b + 2 Equation of tangent : y - 1 = (b + 2) (x - 1) Putting x = 0 ? y = 1 - b - 2 = -b - 1 > 0 ? b < -1 Putting y = 0 ? x - 1 = - ? x = + 1 = > 0 ? b < -2 or b > -1 Combining, the two conditions = b < -2 Now, |-b -1| = 2; (b + 1) 2 = 4|b + 2| = -4b - 8 ? (b + 3) 2 = 0 ? b = -3 follows the condition b < -2 7. (b) We have y 2 = 4a(x + a) ...(i), a parabola with vertex (– a, 0) and y 2 = 4b (x – a) ...(ii), a parabola with vertex (a, 0) Solving (i) and (ii), we get Page 5 = 2 × Area OBCO = 2x [Since y = 2 –x 2 is the upper curve and y = x is the lower curve] 2. (d) Given Differentiate with respect to b 3. (d) Point of intersection of and are (0, 0) and Given ? So, the parabola is Area enclosed by is 4. (b) Point of intersection of y = sin x and y = cos x are Since, sin x = cos x on the interval ? Area of one such region sq. unit. 5. (b) Area of ?AOB = = Area of region AOB = = = ? ratio of areas = 6. (c) f(x) = x 2 + bx - b; f '(x) = 2x + b ? f '(1) = b + 2 Equation of tangent : y - 1 = (b + 2) (x - 1) Putting x = 0 ? y = 1 - b - 2 = -b - 1 > 0 ? b < -1 Putting y = 0 ? x - 1 = - ? x = + 1 = > 0 ? b < -2 or b > -1 Combining, the two conditions = b < -2 Now, |-b -1| = 2; (b + 1) 2 = 4|b + 2| = -4b - 8 ? (b + 3) 2 = 0 ? b = -3 follows the condition b < -2 7. (b) We have y 2 = 4a(x + a) ...(i), a parabola with vertex (– a, 0) and y 2 = 4b (x – a) ...(ii), a parabola with vertex (a, 0) Solving (i) and (ii), we get = = sq. unitsRead More
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Dec 26, 2024 Last updated |
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