Solve for x in this problem √x-2 +4=x

The poster needs to be designed to fit 75 square inches of printing with a 6-inch margin at the top and bottom and a 2-inch margin on either side. The aim is to minimize the amount of paper used. The dimensions of the poster that will minimize the amount of paper used are 7 inches for the vertical height and 16 inches for the horizontal width.

We need to design a rectangular poster to fit 75 square inches of printing with a 6-inch margin at the top and bottom and a 2-inch margin on either side. This means the total area of the poster will be 75 + (6 x 2) x (2 x 2) = 99 square inches. To minimize the amount of paper used, we need to find the dimensions of the poster that will give us the smallest area. Let the vertical height of the poster be h and the horizontal width be w. Then we have h + 12 = w + 4  (since the total width of the poster is h + 4 and the total height is w + 12)75 = hw. We can solve the first equation for h in terms of w: h = w - 8 + 12 = w + 4. Substituting this into the second equation, we get:75 = w(w + 4)w² + 4w - 75 = 0w = (-4 ± √676)/2 = (-4 ± 26)/2 = 11 or -15The negative value doesn't make sense in this context, so we take w = 11. Then we have h = 15. Therefore, the dimensions of the poster that will minimize the amount of paper used are 7 inches for the vertical height and 16 inches for the horizontal width.

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To find the displacement of the mass at any time t, we can use the equation of motion for a mass-spring system with damping:

m * y'' + c * y' + k * y = F(t)

Where:

m = mass of the object (2 kg)

y = displacement of the mass (in meters)

y' = velocity of the mass (in meters per second)

y'' = acceleration of the mass (in meters per second squared)

c = damping coefficient (in N*s/m)

k = spring constant (in N/m)

F(t) = external force acting on the mass (in N)

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The equation of the line perpendicular to the function y= 3 + 702 +51 - 2 at x = 0? = O x + 5y + 10 = 0 10x + 5y - 2 = 0 is 3.0 + 5y + 7 = 0..

To find the equation of a line perpendicular to the given function y = 3x + 7 at x = 0, we first need to determine the slope of the given function. The given function is in the form y = mx + b, where m is the slope. In this case, the slope is 3.

For a line to be perpendicular to another line, their slopes must be negative reciprocals of each other. The negative reciprocal of 3 is -1/3.

Using the slope-intercept form, y = mx + b, we can write the equation of the line perpendicular to y = 3x + 7 as y = (-1/3)x + b.

To find the value of b, we substitute the point (x, y) = (0, 5) into the equation:

5 = (-1/3)(0) + b

5 = b

Therefore, the equation of the line perpendicular to y = 3x + 7 at x = 0 is y = (-1/3)x + 5.

Among the given choices, the equation that matches this result is 3.0 + 5y + 7 = 0.

Hence, the correct choice is 3.0 + 5y + 7 = 0.

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Answer:

using four step process we found that f'(1) = 1, f'(2) = 1, and f'(3) = 1.

Step-by-step explanation:

To find f'(x), the derivative of f(x), we can apply the four-step process:

Identifying the function f(x).

f(x) = 6 + x

Apply the power rule of differentiation.

For any constant C, the derivative of C with respect to x is 0.

The derivative of x with respect to x is 1.

Combine the derivatives obtained in Step 2.

Since the derivative of a constant is 0, we only need to consider the derivative of x.

f'(x) = 0 + 1

      = 1

Step 4: Evaluate f'(x) at the given values of x.

  f'(1) = 1

  f'(2) = 1

  f'(3) = 1

Therefore, f'(1) = 1, f'(2) = 1, and f'(3) = 1.

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The average value of [tex]f(x) = -3x^2 - 4x + 4[/tex] over the interval [0, 3] is -11/3.

In mathematics, a function is a unique arrangement of the inputs (also referred to as the domain) and their outputs (sometimes referred to as the codomain), where each input has exactly one output and the output can be linked to its input.

To find the average value of a function f(x) over an interval [a, b], we can use the formula:

Average value = (1 / (b - a)) * ∫[a, b] f(x) dx

In this case, we want to find the average value of [tex]f(x) = -3x^2 - 4x + 4[/tex]over the interval [0, 3].

Average value = (1 / (3 - 0)) * ∫[tex][0, 3] (-3x^2 - 4x + 4) dx[/tex]

Simplifying:

Average value = (1/3) * ∫[0, 3] [tex](-3x^2 - 4x + 4) dx[/tex]

          [tex]= (1/3) * [-x^3 - 2x^2 + 4x] from 0 to 3[/tex]

          [tex]= (1/3) * (-(3^3) - 2(3^2) + 4(3)) - (1/3) * (0 - 2(0^2) + 4(0))[/tex]

             = (1/3) * (-27 - 18 + 12) - (1/3) * 0

             = (1/3) * (-33)

             = -11/3

Therefore, the average value of [tex]f(x) = -3x^2 - 4x + 4[/tex] over the interval [0, 3] is -11/3.

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The equation of the tangent plane to the surface xyz = 24 at the point (2, 4, 3) is 2x + 4y + 3z = 25.

When we want to find the equation of a tangent plane to a surface at a given point, we need to consider the partial derivatives of the surface equation with respect to each variable.

In this case, the partial derivatives are ∂(xyz)/∂x = yz, ∂(xyz)/∂y = xz, and ∂(xyz)/∂z = xy. Evaluating these partial derivatives at the point (2, 4, 3) gives us 12, 6, and 8, respectively.

Using these values, we can form the equation of the tangent plane in the form Ax + By + Cz = D, where A, B, C, and D are determined by the point and the partial derivatives. Substituting the values, we obtain 2x + 4y + 3z = 25 as the equation of the tangent plane.

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The volume of the solid bounded below by the xy-plane, on the sides by p=18, and above by p=16 is 32π units cubed.

To find the volume of the solid, we need to integrate the function over the given region. In this case, the region is bounded below by the XY-plane, on the sides by p=18, and above by p=16.

Since the region is in polar coordinates, we can express the volume element as dV = p dp dθ, where p represents the distance from the origin to a point in the region, DP is the differential length along the radial direction, and dθ is the differential angle.

To integrate the function over the region, we set up the integral as follows:

V = ∫∫R p dp dθ,

where R represents the region in the polar coordinate system.

Since the region is bounded by p=18 and p=16, we can set up the integral as follows:

[tex]V = ∫[0,2π] ∫[16,18] p dp dθ.[/tex]

Evaluating the integral, we get:

[tex]V = ∫[0,2π] (1/2)(18^2 - 16^2) dθ[/tex]

[tex]= ∫[0,2π] (1/2)(324 - 256) dθ[/tex]

[tex]= (1/2)(324 - 256) ∫[0,2π] dθ[/tex]

 = (1/2)(68)(2π)

 = 68π.

Therefore, the volume of the solid bounded below by the xy-plane, on the sides by p=18, and above by p=16 is 68π units cubed, or approximately 213.628 units cubed.

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Finding the derivative of the above equation with respect to x is necessary before substituting x = 1 and y = 2 to get dy/dx at the location (1,2).

5y3 - 57 = x3 - 9y is the given equation.

Using the chain rule to differentiate both sides with regard to x, we obtain:

3x2 - 9 * dy/dx = 15y2 * dy/dx.

With the terms rearranged, we have:

9 * dy/dx plus 15y2 * dy/dx equals 3x2.

By subtracting dy/dx, we obtain:

(15y + 9 + dy/dx) = 3x2.

Let's now replace x with 1 and y with 2:

(15(2)^2 + 9) * dy/dx = 3(1)^2.

(60 + 9) * dy/dx = 3.

69 * dy/dx = 3.

When you divide both sides by 69, you get:

dy/dx = 3/69 = 1/23.

As a result, 1/23 is the value of dy/dx at the position (1,2).

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The statement "Suppose f contains a local extremum at c but is NOT differentiable at c" indicates that the function has a local extremum at point c, but its derivative does not exist at that point. Therefore, the correct answer is D. f'(c) does not exist.

When a function has a local extremum at a point c, the derivative of the function at that point is typically zero.

However, in this case, the function is stated to be not differentiable at point c. Differentiability is a necessary condition for a function to have a well-defined derivative at a particular point.

If a function is not differentiable at a point, it means that the function does not have a well-defined tangent line at that point, and consequently, the derivative does not exist.

This lack of differentiability can occur due to sharp corners, cusps, or vertical tangents, among other reasons.

Since the function f is not differentiable at point c, the derivative f'(c) does not exist. Therefore, the correct answer is D. f'(c) does not exist.

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a) The measure of x = 3 units

b)The measure of the hypotenuse of the triangle x = 10 units

Given data ,

Let the triangle be represented as ΔABC

Now , the base length of the triangle is BC = 12 units

From the given figure of the triangle ,

For a right angle triangle

From the Pythagoras Theorem , The hypotenuse² = base² + height²

a)

x = √ ( 5 )² - ( 4 )²

On solving for x:

x = √ ( 25 - 16 )

x = √9

On further simplification , we get

x = 3 units

Therefore , the value of x = 3 units

b)

x = √ ( 8 )² + ( 6 )²

On solving for x:

x = √ ( 64 + 36 )

x = √100

On further simplification , we get

x = 10 units

Therefore , the value of x = 10 units

Hence , the hypotenuse of the triangle is x = 10 units

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the vertices of C are:

(1, 33/2), (6, 5/2), (1, 5/2), (717/157, 935/314), (1, 15/2), (14, 5/2), (942/157, 1135/314)

What are Vertices?

Vertices are defined as the highest point or the point where two straight lines intersect. Examples of peaks are mountain tops. They are also the lines that subtend an angle in a triangle.

(a) To determine the vertices of the convex set C, we need to consider the extreme points of the set. In this case, the set C is defined as the translation of the point (2,3) by the vector (1, 5/2). So, the translation can be written as:

C = {(2,3)} + (1, 5/2)

Let's calculate the vertices of C by adding the translation vector to each point in the given options:

Adding (1, 5/2) to (0,14):

(0,14) + (1, 5/2) = (1, 14 + 5/2) = (1, 33/2)

Adding (1, 5/2) to (5,0):

(5,0) + (1, 5/2) = (5 + 1, 0 + 5/2) = (6, 5/2)

Adding (1, 5/2) to (0,0):

(0,0) + (1, 5/2) = (0 + 1, 0 + 5/2) = (1, 5/2)

Adding (1, 5/2) to (560/157, 585/157):

(560/157, 585/157) + (1, 5/2) = (560/157 + 1, 585/157 + 5/2) = (717/157, 935/314)

Adding (1, 5/2) to (0,5):

(0,5) + (1, 5/2) = (0 + 1, 5 + 5/2) = (1, 15/2)

Adding (1, 5/2) to (13,0):

(13,0) + (1, 5/2) = (13 + 1, 0 + 5/2) = (14, 5/2)

Adding (1, 5/2) to (585/157, 560/157):

(585/157, 560/157) + (1, 5/2) = (585/157 + 1, 560/157 + 5/2) = (942/157, 1135/314)

Therefore, the vertices of C are:

(1, 33/2), (6, 5/2), (1, 5/2), (717/157, 935/314), (1, 15/2), (14, 5/2), (942/157, 1135/314)

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The minimum value of the function f(21,02) = (6 - 4x12 + (3.02 + 5)2 subject to X2 > e is subject to the given constraints.

To minimize the function f(21,02) = (6 - 4x12 + (3.02 + 5)2, we need to find the values of x and e that satisfy the given constraints. The constraint X2 > e suggests that the value of x squared must be greater than e.

Additionally, we are given two equations: 16ln(r) - 24 + 9p2 + 15r = 0 and 16r - 24 + 9e2r + 15e" = 0. It is stated that each of these equations has only one real root.

To find the minimum value of the function f, we need to solve the system of equations and identify the real root. Once we have the values of x and e, we can substitute them into the function and calculate the minimum value.

By utilizing appropriate mathematical techniques such as substitution or numerical methods, we can solve the equations and find the real root. Then, we can substitute the obtained values of x and e into the function f(21,02) to calculate the minimum value.

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The area of region R is 3√3 - √3/3 square units.

To find the area of region R bounded by the parabola y = 4 - x^2 and the line y = 1 in the first quadrant, we need to find the points of intersection between the parabola and the line.

First, set y = 4 - x^2 equal to y = 1: 4 - x^2 = 1

Rearranging the equation, we have:x^2 = 3

Taking the square root of both sides, we get: x = ±√3

Since we are only considering the first quadrant, we take the positive value: x = √3.

Now, to find the area of region R, we integrate the difference of the two curves with respect to x from 0 to √3.

Area of R = ∫[0, √3] (4 - x^2 - 1) dx

Simplifying the integrand, we have: Area of R = ∫[0, √3] (3 - x^2) dx

Integrating term by term, we get: Area of R = [3x - (x^3/3)] evaluated from 0 to √3

Plugging in the limits, we have: Area of R = [3√3 - (√3)^3/3] - [3(0) - (0^3/3)] , Area of R = 3√3 - (√3)^3/3

Simplifying further, we get: Area of R = 3√3 - √3/3

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The perimeter of the polygon formed by the last digits of the student codes (1, 3, 9, and 1) in the group is 3 units.

To find the perimeter of the polygon formed by the last digits of the student codes in the group, proceed as follows:

1. Determine the last digit of each student's code: The last digits given are 1, 3, 9, and 1.

2. Arrange the digits in a clockwise or counterclockwise order to form the vertices of the polygon. Let's choose counterclockwise order for this example: 1-3-9-1.

3. Identify the distances between consecutive vertices: In this case, we have the following distances: 1-3, 3-9, 9-1.

4. Calculate the length of each side: Since the last digits represent the student codes and not specific values, we can assume unit length for simplicity. Therefore, the length of each side is 1 unit.

5. Compute the perimeter: Add up the lengths of all sides to obtain the perimeter. In this case, the perimeter is 1 + 1 + 1 = 3 units.

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The function f(x) = – 2x² + 27x² – 48x + 8 has one local minimum and one local maximum. This function has a local minimum at x = 12/13 with value = 52.

What is the exponential function?

An exponential function is a mathematical function of the form: f(x) = aˣ

where "a" is a constant called the base, and "x" is a variable. Exponential functions can be defined for any base "a", but the most common base is the mathematical constant "e" (approximately 2.71828), known as the natural exponential function.

To find the local minimum of the function f(x) = -2x² + 27x² - 48x + 8, we need to determine the critical points of the function.

First, we take the derivative of the function f(x) with respect to x:

f'(x) = d/dx (-2x² + 27x² - 48x + 8)

= -4x + 54x - 48

= 52x - 48

Next, we set the derivative equal to zero to find the critical points:

52x - 48 = 0

Solving for x, we have:

52x = 48

x = 48/52

x = 12/13

So, the critical point occurs at x = 12/13.

To determine if this critical point is a local minimum or maximum, we can examine the second derivative of the function.

Taking the second derivative of f(x):

f''(x) = d²/dx² (-2x² + 27x² - 48x + 8)

= d/dx (52x - 48)

= 52

Since the second derivative f''(x) = 52 is a positive constant, it indicates that the function is concave up everywhere, implying that the critical point x = 12/13 is a local minimum.

To find the value of the function at the local minimum, we substitute x = 12/13 into the original function:

f(12/13) = -2(12/13)² + 27(12/13)² - 48(12/13) + 8

Evaluating the expression, we can find the value of the function at the local minimum.

Hence, The function f(x) = – 2x² + 27x² – 48x + 8 has one local minimum and one local maximum. This function has a local minimum at x = 12/13 with value = 52.

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The integral of [tex]\( \frac{{5x^4 + 7x^2 + x + 2}}{{x(x^2 + 1)^2}} \)[/tex] with respect to x  is [tex]\( \frac{{5}}{{2(x^2 + 1)}} + \frac{{3}}{{2(x^2 + 1)^2}} + \ln(|x|) + C \)[/tex], where C represents the constant of integration.

To evaluate the integral, we can use the method of partial fractions. We begin by factoring the denominator as [tex]\( x(x^2 + 1)^2 = x(x^2 + 1)(x^2 + 1) \)[/tex]. Since the degree of the numerator is smaller than the degree of the denominator, we can rewrite the integrand as a sum of partial fractions:

[tex]\[ \frac{{5x^4 + 7x^2 + x + 2}}{{x(x^2 + 1)^2}} = \frac{{A}}{{x}} + \frac{{Bx + C}}{{x^2 + 1}} + \frac{{Dx + E}}{{(x^2 + 1)^2}} \][/tex]

To determine the values of [tex]\( A \), \( B \), \( C \), \( D \), and \( E \)[/tex], we can multiply both sides of the equation by the denominator and then equate the coefficients of corresponding powers of x. Solving the resulting system of equations, we find that [tex]\( A = 0 \), \( B = 0 \), \( C = 5/2 \), \( D = 0 \),[/tex] and [tex]\( E = 3/2 \)[/tex].

Integrating each of the partial fractions, we obtain [tex]\( \frac{{5}}{{2(x^2 + 1)}} + \frac{{3}}{{2(x^2 + 1)^2}} + \ln(|x|) + C \)[/tex] as the final result, where C is the constant of integration.

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Answer:

81π cubic units

Step-by-step explanation:

The formula for volume of cone is given by:

V = 1/3πr^2h, where

Step 1:  Find radius:

We know that the diameter, d, is simply twice the radius.  Thus, we can find the radius of the circular base by dividing the given diameter by 2:

d = 2r

d/2 = r

9/2 = r

4.5 units = r

Thus, the radius of the circular base is 4.5 units.

Step 2:  Find volume and leave in terms of pi:

We can find the volume in terms of pi by plugging in 4.5 for r and 12 for h and simplifying:

V = 1/3π(4.5)^2(12)

V = 1/3π(20.25)(12)

V = 1/3π(243)

V = 81π cubic units

Thus, the volume of the cone in terms of pi is 81π cubic units.

The cost of the cylinder in terms of the single variable, r, alone is 2000π + πr⁴

The volume of a cylinder is given by πr²h. We know that the volume of the cylinder must be 1000π cubic feet, so we can set up the following equation:

πr²h = 1000π

h = 1000/r²

The cost of the cylinder is given by 2πr²h + πr² = 2πr²(1000/r²) + πr² = 2000π + πr⁴

The cost of the cylinder in terms of the single variable, r, alone is:

Cost of cylinder = 2000π + πr⁴

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the equation for the graph representing the height off the ground (y) as a function of time (x) is:

y = 136 * sin((π/15) * x) + 2

A graph of a function is a special case of a relation. In science, engineering, technology, finance, and other areas, graphs are tools used for many purposes.

a. Here is a description of the picture of the Ferris wheel:

The Ferris wheel has a radius of 136 m.

The lowest point on the circle is labeled as point P.

The height from the ground to point P is 2 m.

The radius of the Ferris wheel is labeled.

c. To find an equation for the graph using sine or cosine functions, we can start by considering the properties of the function:

Amplitude: The amplitude of the function represents the maximum displacement from the midline. In this case, the amplitude is equal to the radius of the Ferris wheel, which is 136 m.

Period: The period of the function is the time it takes for one complete cycle. Given that the Ferris wheel completes one full rotation in 30 minutes, the period is 30 minutes.

Midline: The midline of the function represents the average or mean value. In this case, the midline corresponds to the height from the ground to point P, which is 2 m.

Horizontal shift: Since you are sitting at the lowest point of the Ferris wheel initially, there is no horizontal shift. The graph starts at the origin.

Using this information, we can write the equation for the graph:

y = A * sin((2π/P) * (x - h)) + k

where:

A is the amplitude (136 m)

P is the period (30 minutes)

h is the horizontal shift (0)

k is the midline (2 m)

Substituting the values into the equation, we have:

y = 136 * sin((2π/30) * x) + 2

Therefore, the equation for the graph representing the height off the ground (y) as a function of time (x) is:

y = 136 * sin((π/15) * x) + 2

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S, obtained by revolving the bounded region R enclosed by the curve y = x^2 - 2x and the x-axis about the x-axis, we can use the disk method. The volume of S can be obtained by integrating the cross-sectional areas of the disks formed by slicing R perpendicular to the x-axis.

The curve y = x^2 - 2x intersects the x-axis at x = 0 and x = 2. To apply the disk method, we integrate the area of each disk formed by slicing R perpendicular to the x-axis.

The cross-sectional area of each disk is given by A(x) = πr², where r is the radius of the disk. In this case, the radius is equal to the y-coordinate of the curve, which is y = x^2 - 2x.

To compute the volume, we integrate the area function A(x) over the interval [0, 2]:

V = ∫[0, 2] π(x^2 - 2x)^2 dx.

Expanding the squared term and simplifying, we have:

V = ∫[0, 2] π(x^4 - 4x^3 + 4x^2) dx.

Integrating each term separately, we obtain:

V = π[(1/5)x^5 - (1/4)x^4 + (4/3)x^3] |[0, 2].

Evaluating the integral at the upper and lower limits, we get:

V = π[(1/5)(2^5) - (1/4)(2^4) + (4/3)(2^3)] - π(0).

Simplifying the expression, we find:

V = π[32/5 - 16/4 + 32/3] = π[32/5 - 4 + 32/3].

Therefore, the volume of the solid S, obtained by revolving the bounded region R about the x-axis, using the disk method, is π[32/5 - 4 + 32/3].

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The radius of convergence, r, is 4. The series converges for values of x within a distance of 4 units from the center x = 6.

To find the radius of convergence, r, of the series ∑ [tex](-1)^n (x - 6)^n / (4^n)[/tex], we can use the ratio test. The radius of convergence represents the distance from the center of the series (x = 6) within which the series converges.

The ratio test states that for a series ∑ [tex]a_n[/tex], if the limit of the absolute value of the ratio of consecutive terms is less than 1, the series converges. Mathematically, if lim |[tex]a_{(n+1)}/a_n[/tex]| < 1, then the series converges.

In our case, the series is given by ∑ [tex](-1)^n (x - 6)^n / (4^n)[/tex]. To apply the ratio test, we calculate the ratio of consecutive terms:

|[tex](a_{(n+1)}/a_n)[/tex]| = |[tex]((-1)^{(n+1)} (x - 6)^{(n+1)} / (4^{(n+1)})) / ((-1)^n (x - 6)^n / (4^n))[/tex]|

Simplifying, we get: |(-1) (x - 6) / 4|

Taking the limit as n approaches infinity, we have:

lim |(-1) (x - 6) / 4| = |x - 6| / 4

For the series to converge, we need |x - 6| / 4 < 1.

This implies that the absolute value of x - 6 should be less than 4.

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The partial derivatives of f(x, y, z) are as follows:

∂f/∂x = 2x

∂f/∂y = -6y

∂f/∂z = 2

Arranging these partial derivatives as a vector gives us the gradient of the function:

∇f = [∂f/∂x, ∂f/∂y, ∂f/∂z] = [2x, -6y, 2]

So, the gradient of the function f(2, y, z) is:

∇f(2, y, z) = [2(2), -6y, 2] = [4, -6y, 2]

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The values of function f''(0) and f''(3) are:

To find the second derivative of the function f(x) = 3x^3 - 5x^2 + 5x + 1, we differentiate it twice.

First, find the first derivative:

f'(x) = 9x^2 - 10x + 5

Then, differentiate the first derivative to find the second derivative:

f''(x) = d/dx(9x^2 - 10x + 5)

= 18x - 10

Now we can find f''(0) and f''(3) by substituting x = 0 and x = 3 into the second derivative.

a) f''(0):

f''(0) = 18(0) - 10

= -10

b) f''(3):

f''(3) = 18(3) - 10

= 44

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The answers of the limits are:

[tex](a) \(\lim_{{x \to -3}} \frac{{3x^2 + 2x - 15}}{{5 - x}} = -\frac{{3}}{{2}}\)\\(b) \(\lim_{{u \to 2}} \frac{{2u + 2}}{{u^2 + 3}} = \frac{{6}}{{7}}\)\\(c) \(\lim_{{x \to 0}} \frac{{\sqrt{{9x^2 + 5x + 1}}}}{{2x - 1}} = -1\)\\(d) \(\lim_{{x \to \infty}} (1 - 2020x)^{\frac{{1}}{{2}}}\) does not exist (DIV)..[/tex]

Let's evaluate the limits one by one:

(a) [tex]\(\lim_{{x \to -3}} \frac{{3x^2 + 2x - 15}}{{5 - x}}\)[/tex]

To find the limit, we substitute the value -3 into the expression:

[tex]\(\lim_{{x \to -3}} \frac{{3(-3)^2 + 2(-3) - 15}}{{5 - (-3)}} = \lim_{{x \to -3}} \frac{{9 - 6 - 15}}{{5 + 3}} = \lim_{{x \to -3}} \frac{{-12}}{{8}} = -\frac{{3}}{{2}}\)[/tex]

Therefore, the limit is [tex]\(-\frac{{3}}{{2}}\)[/tex].

(b) [tex]\(\lim_{{u \to 2}} \frac{{2u + 2}}{{u^2 + 3}}\)[/tex]

Again, we substitute the value 2 into the expression:

[tex]\(\lim_{{u \to 2}} \frac{{2(2) + 2}}{{2^2 + 3}} = \lim_{{u \to 2}} \frac{{4 + 2}}{{4 + 3}} = \lim_{{u \to 2}} \frac{{6}}{{7}} = \frac{{6}}{{7}}\)[/tex]

Therefore, the limit is [tex]\(\frac{{6}}{{7}}\)[/tex].

(c) [tex]\(\lim_{{x \to 0}} \frac{{\sqrt{{9x^2 + 5x + 1}}}}{{2x - 1}}\)[/tex]

Substituting 0 into the expression:

[tex]\(\lim_{{x \to 0}} \frac{{\sqrt{{9(0)^2 + 5(0) + 1}}}}{{2(0) - 1}} = \lim_{{x \to 0}} \frac{{\sqrt{{1}}}}{{-1}} = \lim_{{x \to 0}} -1 = -1\)[/tex]

Therefore, the limit is -1.

(d) [tex]\(\lim_{{x \to \infty}} (1 - 2020x)^{\frac{{1}}{{2}}}\)[/tex]

As x approaches infinity, the term [tex]\((1 - 2020x)\)[/tex] tends to be negative infinity. Therefore, the expression [tex]\((1 - 2020x)^{\frac{{1}}{{2}}}\)[/tex] is undefined.

Therefore, the limit does not exist (DIV).

Therefore,

[tex](a) \(\lim_{{x \to -3}} \frac{{3x^2 + 2x - 15}}{{5 - x}} = -\frac{{3}}{{2}}\)\\(b) \(\lim_{{u \to 2}} \frac{{2u + 2}}{{u^2 + 3}} = \frac{{6}}{{7}}\)\\(c) \(\lim_{{x \to 0}} \frac{{\sqrt{{9x^2 + 5x + 1}}}}{{2x - 1}} = -1\)\\(d) \(\lim_{{x \to \infty}} (1 - 2020x)^{\frac{{1}}{{2}}}\) does not exist (DIV)..[/tex]

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The correct z-limits of integration to find the volume of the region D are given by option C, which is [tex]\sqrt{(x^{2} + y^{2} )} \leq z \leq \sqrt{25 - x^{2} - y^{2}}[/tex].

To determine the z-limits of integration, we need to consider the bounds of the region D. The region is bounded below by the cone [tex]z=\sqrt{(x^{2} + y^{2} )}[/tex] and above by the sphere [tex]x^{2} + y^{2} + z^{2} = 25[/tex].

The lower bound is defined by the cone, which is given by [tex]z=\sqrt{(x^{2} + y^{2} )}[/tex]. This means that the z-coordinate starts at the value  [tex]\sqrt{(x^{2} + y^{2} )}[/tex] when we integrate over the region.

The upper bound is defined by the sphere, which is given by [tex]x^{2} + y^{2} + z^{2} = 25[/tex]. By rearranging the equation, we have [tex]z^{2} = 25 - x^{2} - y^{2}[/tex]. Taking the square root of both sides, we obtain [tex]z=\sqrt{25-x^{2} -y^{2} }[/tex]. This represents the maximum value of z within the region.

Therefore, the correct z-limits of integration are  [tex]\sqrt{(x^{2} + y^{2} )} \leq z \leq \sqrt{25 - x^{2} - y^{2}}[/tex], which corresponds to option C. This choice ensures that we consider all z-values within the region D when integrating in the order [tex]dzdydx[/tex] to find its volume.

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The complete question is:

Let D be the region bounded below by the cone [tex]z=\sqrt{(x^{2} + y^{2} )}[/tex] and above by the sphere [tex]x^{2} + y^{2} + z^{2} = 25[/tex]. Then the z-limits of integration to find the volume of D, using rectangular coordinates and taking the order of integration as [tex]dzdydx[/tex] are:

A. [tex]25 - x^{2} - y^{2} \leq z \leq \sqrt{(x^{2} + y^{2} )}[/tex]

B. [tex]\sqrt{(x^{2} + y^{2} )} \leq z \leq 25 - x^{2} - y^{2}[/tex]

C. [tex]\sqrt{(x^{2} + y^{2} )} \leq z \leq \sqrt{25 - x^{2} - y^{2}}[/tex]

D. None of these

The inflow rate is constant and can be denoted as 200 kg/s.

to find the differential equation that describes the rate of change of the water in the pool, we need to consider the inflow and outflow rates.

given:

- the initial mass of water in the pool is 10,000 kg at t = 0.

- bob pumps water into the pool at a constant rate of 200 kg/s.

- the outflow rate is given by t² kg/s at time t.

let's denote the mass of water in the pool at time t as m(t). we can now analyze the rates of change:

1. inflow rate: bob pumps water into the pool at a constant rate of 200 kg/s. 2. outflow rate: the outflow rate is given by t² kg/s. this means that at any given time t, the rate at which water leaves the pool is t² kg/s.

the rate of change of the water in the pool, dm(t)/dt, is equal to the difference between the inflow and outflow rates.

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The integral that determines how much work is required to pump the water to a pipe 1 meter above the top of the tank is:

**W = ∫6pπr²hg dh**

The work required to pump the water to a pipe 1 meter above the top of the tank can be found using the formula:

W = Fd

where W is the work done, F is the force required to lift the water, and d is the distance the water is lifted.

The force required to lift the water can be found using:

F = mg

where m is the mass of the water and g is the acceleration due to gravity.

The mass of the water can be found using:

m = pV

where p is the density of water and V is the volume of water.

The volume of water can be found using:

V = Ah

where A is the area of the base of the tank and h is the height of the water.

The area of the base of the tank can be found using:

A = πr²

where r is the radius of the tank.

Therefore, we have:

V = Ah = πr²h

m = pV = pπr²h

F = mg = pπr²hg

d = 8 - 3 + 1 = 6 meters

So, the integral that determines how much work is required to pump the water to a pipe 1 meter above the top of the tank is:

**W = ∫6pπr²hg dh**

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The exact value of sin θ can be determined by using the Pythagorean identity and the given information that cos θ is equal to 3/4 in Quadrant IV. The simplified form of sin θ is -√7/4.

In Quadrant IV, the cosine value is positive (given as 3/4). To find the sine value, we can use the Pythagorean identity: sin^2 θ + cos^2 θ = 1.

Plugging in the given value of cos θ:

sin^2 θ + (3/4)^2 = 1.

Rearranging the equation and solving for sin θ:

sin^2 θ = 1 - (9/16),

sin^2 θ = 16/16 - 9/16,

sin^2 θ = 7/16.

Taking the square root of both sides:

sin θ = ± √(7/16).

Since we are in Quadrant IV, where the sine is negative, we take the negative sign:

sin θ = - √(7/16).

To simplify the radical, we can factor out the perfect square from the numerator and the denominator:

sin θ = - √(7/4) * √(1/4),

sin θ = - (√7/2) * (1/2),

sin θ = - √7/4.

Therefore, the exact value of sin θ, in simplest form, is -√7/4.

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The limits of integration are from 1 to 5 because we are rotating the curve on the interval 1 < x < 5.

To calculate the surface area of the solid, we can use the formula for the surface area of a solid of revolution:

S = ∫[a,b] 2πy√(1+(dy/dx)^2) dx.

First, we need to find the derivative dy/dx of the given curve y = 5xe^(-6x). Taking the derivative, we get dy/dx = 5e^(-6x) - 30xe^(-6x).

Next, we substitute the expression for y and dy/dx into the formula:

S = ∫[1,5] 2π(5xe^(-6x))√(1+(5e^(-6x) - 30xe^(-6x))^2) dx.

This integral represents the surface area of the curved portion of the solid.

To account for the flat portion of the solid, we need to add the surface area of the circle formed by rotating the line x = -1. The radius of this circle is the distance between the line x = -1 and the curve y = 5xe^(-6x). We can find this distance by subtracting the x-coordinate of the curve from -1, so the radius is (-1 - x). The formula for the surface area of a circle is A = πr^2, so the surface area of the flat portion is:

A = π((-1 - x)^2) = π(x^2 + 2x + 1).

Thus, the integral for the total surface area is:

S = ∫[1,5] 2π(5xe^(-6x))√(1+(5e^(-6x) - 30xe^(-6x))^2) dx + ∫[1,5] π(x^2 + 2x + 1) dx.

Note that the limits of integration are from 1 to 5 because we are rotating the curve on the interval 1 < x < 5.

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Step-by-step explanation:

You need to either graph the equation or manipulate the equation into the standard form for a circle  ( often requiring 'completing the square' procedure)

circle equation:

        (x-h)^2 + (y-k)^2  = r^2    where (h,l) is the center   r = radius

x^2  - 6x      +     y^2 + 10 y  = 2    'complete the square for x and y

x^2 -6x +9    +     y^2 +10y + 25   = 2  + 9   + 25      reduce both sides

(x-3)^2           +  (y+5)^2    = 36     (36 is 6^2   so r = 6)

   center is  3, -5