if I have the equation of 5/s^2+6s+25 what would be the poles
and zeros of the equation

the work done by the force is 3974.7 foot pounds.

Force (F) = 87.9

lbAngle (θ) = 87.9°

Horizontal displacement (d) = 48.3 ftTo find: Work (W)

Formula to calculate work done by a force is:

W = Fdcosθ

Where,θ = 87.9°d = 48.3 ftF = 87.9 lb

We know that the angle is given in degrees,

so we need to convert it into radians because the unit of angle in the formula is radians.θ (radians) = (87.9° * π) / 180= 1.534 radian

Work done W = Fdcosθ= 87.9 * 48.3 * cos 1.534W = 3974.7 ft lb

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The distance between the given pair of points ( -1,1 ) and (4,-3) is √41.

The distance formula used in finding the distance between two points is expressed as;

[tex]d = \sqrt{(x_2 - x_1)^2+(y_2 - y_1)^2}[/tex]

Given the data in the question;

Point 1( -1,1 )

x₁ = -1

y₁ = 1

Point 2( 4,-3 )

x₂ = 4

y₂ = -3

Plug the given values into the distance formula and simplify.

[tex]d = \sqrt{(x_2 - x_1)^2+(y_2 - y_1)^2}\\\\d = \sqrt{(4 - (-1))^2+(-3 - 1)^2}\\\\d = \sqrt{(4 + 1)^2+(-3 - 1)^2}\\\\d = \sqrt{(5)^2+(-4)^2}\\\\d = \sqrt{25+16}\\\\d = \sqrt{41}\\\\d = \sqrt{41}[/tex]

Therefore, the distance is radical form is √41.

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The area of the given regular octagon is 222.848 square inches.

apothem of length a = 8.2 in.

sides of length s = 6.8 in.

The area of a regular octagon can be calculated using the formula:

A=1/2 aP

Where, a is the apothem and P is the perimeter of the octagon.

A regular octagon is an eight-sided polygon, where all sides are of equal length and the angles are of equal measure. It is divided into eight congruent triangles, and the area of each triangle can be found out to find the total area of the octagon.

Area of each triangle:

Area of the triangle = 1/2 × apothem × side

Apothem (a) = 8.2 in

Side (s) = 6.8 in

Area of the triangle = 1/2 × 8.2 × 6.8

Area of the triangle = 27.856 in²

Area of the octagon:

Total area of octagon = 8 × (Area of the triangle)

[As there are 8 congruent triangles in the octagon]

Total area of octagon = 8 × 27.856

Total area of octagon = 222.848 in²

Therefore, the area of the given regular octagon is 222.848 square inches.

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The limit of the expression limx→6 [f(x) + 2g(x) + h(x)²] is 14.

To evaluate this limit, we can use the limit laws step by step. Let's break down the process:

First, we use the limit law for addition: limx→a [f(x) + g(x)] = limx→a f(x) + limx→a g(x). Applying this law, we have limx→6 [f(x) + 2g(x)] = limx→6 f(x) + limx→6 (2g(x)).

Since we know limx→6 f(x) = 3 and limx→6 g(x) = 5, we substitute these values into the equation: limx→6 [f(x) + 2g(x)] = 3 + 2 * 5 = 13.

Next, we use the limit law for multiplication: limx→a (c * f(x)) = c * limx→a f(x), where c is a constant. Applying this law to the term h(x)², we have limx→6 (h(x)²) = (limx→6 h(x))².

Given that limx→6 h(x) = -1, we substitute this value into the equation: (limx→6 h(x))² = (-1)² = 1.

Now, we can combine all the parts of the expression: limx→6 [f(x) + 2g(x) + h(x)²] = limx→6 [f(x) + 2g(x)] + limx→6 (h(x)²) = 13 + 1 = 14.

Therefore, the limit of the given expression limx→6 [f(x) + 2g(x) + h(x)²] is equal to 14.

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The number of cars Xenophobic Car Palace will sell in Charleston and Savannah is option D) Qc = 100, Qs = 100.

To determine the number of cars XCP will sell in Charleston (Qc) and Savannah (Qs), we need to find the quantities that maximize XCP's profit. XCP engages in price discrimination between the two cities, meaning it can charge different prices in Charleston (Pc) and Savannah (Ps) based on their respective demand curves.

Given the demand equations Qc = 1,000 - 2Pc and Qs = 500 - Ps, we can find the profit-maximizing quantities by equating marginal revenue (MR) to marginal cost (MC) for each city. MR is equal to the derivative of the demand equation with respect to quantity (Q), and MC is equal to the derivative of total cost (TC) with respect to quantity.

For Charleston, MRc = 1,000 - 4Qc, and MC = 100. Equating MRc and MC, we have:

1,000 - 4Qc = 100.

Solving for Qc, we find Qc = 100.

For Savannah, MRs = 500 - 2Qs, and MC = 100. Equating MRs and MC, we have:

500 - 2Qs = 100.

Solving for Qs, we find Qs = 100.

Therefore, the correct answer is D) Qc = 100, Qs = 100. XCP will sell 100 cars in both Charleston and Savannah to maximize its profit under price discrimination.

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The value of x = 1 does not match any of the mathematics values given (10, 12, 22, 31, 42, 55).

The given set of values for x is 10, 12, 22, 31, 42, and 55. However, none of these values equal 1. Therefore, the value of x = 1 is not present in the given set.

In mathematics and programming, the equal sign (=) is used for assignment, not for equality. So when we say "x = 1," we are assigning the value 1 to the variable x. However, in the given set, x takes the values 10, 12, 22, 31, 42, and 55, which means x can only have those specific values, not 1.

It's important to distinguish between assignment and equality. In this case, the assignment statement "x = 1" does not match any of the values in the given set. If we were looking for a value of x that equals 1, we would need to search for it in a different context or equation.

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The alternative that should be selected is alternative A.

To determine which alternative to choose, we need to compare their annual cash flows using an annual cash flow analysis and a 10% interest rate. Let's analyze each alternative:

Alternative A: It has an initial cost of $50,000 and generates an annual cash inflow of $15,000 for 10 years. The annual cash inflow remains constant throughout the life of the project.

Alternative B: It has an initial cost of $80,000 and generates an annual cash inflow of $20,000 for 5 years. At the end of the 5-year period, the unit is replaced with an identical one.

Alternative C: It has an initial cost of $100,000 and generates an annual cash inflow of $30,000 for 4 years. At the end of the 4-year period, the unit is replaced with an identical one.

To determine the present value of each alternative, we need to discount the annual cash flows at a 10% interest rate. By calculating the present value of each alternative, we can compare their net present values (NPVs). The alternative with the highest NPV should be selected.

Performing the calculations, we find that the net present value (NPV) of alternative A is the highest, indicating that it is the most financially favorable option. Therefore, alternative A should be selected.

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The unknown current is 0 Amps (I = 0 A).

To determine the unknown current in the given network, we need to use Ohm's Law and apply Kirchhoff's laws.

Let's assume the unknown current as I. According to Kirchhoff's current law (KCL), the sum of currents entering and leaving a junction is zero.

At the junction between R1, R2, and R3, we have:

I - (I1 + I2) = 0

Applying Ohm's Law, we can express the currents in terms of resistances and the unknown current:

I - (V1/R1 + V2/R2) = 0

Now, we know that V1 = I * R1 and V2 = I * R2. Substituting these values:

I - (I * R1 / R1 + I * R2 / R2) = 0

Simplifying further:

I - (I + I) = 0

I - 2I = 0

-I = 0

Therefore, the unknown current is 0 Amps (I = 0 A).

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(a) The differential equation is dS(t)/dt = -kS(t), where k is a constant.

(b) To check the solution, we need additional information or the specific form of the solution.

(c) The level of pollution after 44 seconds cannot be determined without additional information or the specific form of the solution.

(d) To find the time when the level of pollution falls to 0.008 mg per cubic meter, we need additional information or the specific form of the solution.

Explanation:

(a) The differential equation for the pollution level S(t) can be represented as dS(t)/dt = -kS(t), where k is a constant. However, we need more information or the specific form of the solution to determine the exact differential equation. This equation represents exponential decay, where the rate of change of pollution is proportional to its current value.

(b) To check the solution, we need additional information or the specific form of the solution. The value of S(10) cannot be determined without knowing the initial condition or having the specific form of the solution. It depends on the initial amount of pollution and the rate of decay.

(c) The level of pollution after 44 seconds cannot be determined without additional information or the specific form of the solution. It depends on the initial condition and the rate of decay. Without knowing these details, we cannot calculate the pollution level accurately.

(d) To find the time when the level of pollution falls to 0.008 mg per cubic meter, we need additional information or the specific form of the solution. Without knowing the initial condition or the rate of decay, we cannot determine the exact time when the pollution level reaches 0.008 mg per cubic meter.

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a) The derivative of the given function is 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5).

b)The derivative of the given function is 15x(x + 5)−5/2/4(x + 5)3/2.

a) y = sec^7(x/7) - sec^5(x/5)

The given function is: y = sec7(x/7) - sec5(x/5)

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dy/dx = 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5)

Thus, the derivative of the given function is 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5).

b) y = √(e^2x + e^-2x)

The given function is: y = √(e2x + e−2x)

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dy/dx = (1/2) (e2x + e−2x)−1/2 d/dx (e2x + e−2x)

On differentiating the function e2x + e−2x with respect to x, we get:

d/dx (e2x + e−2x) = 2e2x − 2e−2x

Now, substituting this value back in the original equation, we have:

dy/dx = (1/2) (e2x + e−2x)−1/2 (2e2x − 2e−2x)

Simplifying this, we get: dy/dx = (e2x + e−2x)−1/2 (e2x − e−2x)

Therefore, the derivative of the given function is

(e2x + e−2x)−1/2 (e2x − e−2x).c) g(x) = ln(x3√(4x + 1))

The given function is: g(x) = ln(x3√(4x + 1))

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dg/dx = 1/(x3√(4x + 1)) d/dx (x3√(4x + 1))

On differentiating the function x3√(4x + 1) with respect to x, we get:

d/dx (x3√(4x + 1)) = (3x2√(4x + 1) + x3/2(4x + 1)−1/2 (4))

Simplifying this, we get:

d/dx (x3√(4x + 1)) = (3x2√(4x + 1) + 2x3/2(4x + 1)−1/2)

Therefore, the derivative of the given function is:

dg/dx = 1/(x3√(4x + 1)) (3x2√(4x + 1) + 2x3/2(4x + 1)−1/2)

So, the required derivative is: dg/dx = (3√(4x + 1) + 2x/√(4x + 1))/x2√(4x + 1).d) f(x) = (x/√(x + 5))3

The given function is: f(x) = (x/√(x + 5))3

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

df/dx = 3(x/√(x + 5))2 d/dx (x/√(x + 5))

On differentiating the function x/√(x + 5) with respect to x, we get: d/dx (x/√(x + 5)) = (5/2)(x + 5)−3/2

Simplifying this, we get: d/dx (x/√(x + 5)) = (5/2)/(x + 5)3/2

Therefore, the derivative of the given function is: df/dx = 3(x/√(x + 5))2 (5/2)/(x + 5)3/2

So, the required derivative is: df/dx = 15x(x + 5)−5/2/4(x + 5)3/2.

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a. T1(N) + T2(N) = O(f(N)): True b. T1(N) - T2(N) = o(f(N)): False c. T2(N) * T1(N) = O(1): True d. T1(N) = O(T2(N)): False

a. T1(N) + T2(N) = O(f(N)): True

To justify this, we can use the definition of big O notation. If T1(N) = O(f(N)) and T2(N) = O(f(N)), it means that there exist positive constants c1 and c2, and a positive integer N0, such that for all N ≥ N0:

|T1(N)| ≤ c1 * |f(N)|

|T2(N)| ≤ c2 * |f(N)|

Now, let's consider the sum T1(N) + T2(N):

|T1(N) + T2(N)| ≤ |T1(N)| + |T2(N)| ≤ c1 * |f(N)| + c2 * |f(N)|

We can rewrite the above inequality as:

|T1(N) + T2(N)| ≤ (c1 + c2) * |f(N)|

Therefore, T1(N) + T2(N) = O(f(N)).

b. T1(N) - T2(N) = o(f(N)): False

To prove this statement false, we need to provide a counterexample. Consider the case where T1(N) = 2N and T2(N) = N. In this case, T1(N) = O(f(N)) and T2(N) = O(f(N)), where f(N) = N.

However, if we subtract T2(N) from T1(N):

T1(N) - T2(N) = 2N - N = N

Now, let's examine the relationship between N and f(N):

N = f(N)

Since the difference between T1(N) - T2(N) is equal to f(N), we can say that T1(N) - T2(N) is not strictly smaller than f(N) (o(f(N))). Hence, the statement T1(N) - T2(N) = o(f(N)) is not true in this case.

c. T2(N) * T1(N) = O(1): True

Multiplying two functions that are both bounded by O(f(N)) will result in a function that is bounded by O(f(N) * f(N)), which simplifies to O(f(N)^2).

Since f(N) can be any function, including a constant function, it is valid to say that T2(N) * T1(N) = O(1).

d. T1(N) = O(T2(N)): False

To disprove this statement, we need to provide a counterexample. Consider the case where T1(N) = 2N and T2(N) = N. In this case, T1(N) = O(T2(N)), as T1(N) = O(N), but T1(N) is not equal to O(T2(N)), since T2(N) = O(N) but not O(2N).

Hence, the statement T1(N) = O(T2(N)) is false in this case.

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The complete question is:

You must justify your answer. You will not earn any point if you simply say True or False (even the answer is correct). In case your answer is false, a counterexample must be given. Note: True means always true, so a valid justification is needed (such as using a rule or using a definition).

False means not always true, so you should be able to show at least once case it is not hold. So in case you think the answer should be false, you must provide a counterexample; i.e., you should show particular functions T1 and T2, such as T1 = 3N2 and T2 = 4N + 2.

Suppose T 1 (N)=O(f(N)) and T 2 (N)=O(f(N)). Which of the following are true? a. T 1 (N)+T 2(N)=O(f(N)) b. T 1(N)−T 2(N)=o(f(N)) c.T 2(N)T 1(N)​=0(1) d. T 1(N)=O(T 2 (N))

The Fourier Transform of f(t) = x(t - 1/2)cos(pt) is given by 1/2[X(f - p)exp(-j2πf(1/2)) + X(f + p)exp(-j2πf(1/2))], where X(f) is the Fourier Transform of x(t).

To find the Fourier Transform of the signal f(t) = x(t - 1/2)cos(pt), where x(t) is an arbitrary function, we can apply the time-shifting property and the modulation property of the Fourier Transform.

Let's denote F{ } as the Fourier Transform operator.

Using the time-shifting property, we have x(t - 1/2) = X(f)exp(-j2πf(1/2)), where X(f) is the Fourier Transform of x(t).

Applying the modulation property, we know that F{cos(2πft)} = 1/2[δ(f - f0) + δ(f + f0)], where δ is the Dirac delta function.

Combining these two properties, we get the Fourier Transform of f(t) as follows:

F{f(t)} = F{x(t - 1/2)cos(pt)} = X(f)exp(-j2πf(1/2)) * 1/2[δ(f - p) + δ(f + p)] = 1/2[X(f - p)exp(-j2πf(1/2)) + X(f + p)exp(-j2πf(1/2))].

In summary, the Fourier Transform of f(t) = x(t - 1/2)cos(pt) is given by 1/2[X(f - p)exp(-j2πf(1/2)) + X(f + p)exp(-j2πf(1/2))], where X(f) is the Fourier Transform of x(t).

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The function f(x) = x^6(x-5)^7, defined for x ∈ [-14, 15], is increasing on the intervals [-14, 0] and [5, 15], positive on (-14, 0) ∪ (5, 15), and achieves its minimum at x = 5.

The function f(x) = x^6(x-5)^7 is defined for x ∈ [-14, 15]. To determine where the function is increasing, we need to find the intervals where its derivative is positive. The derivative of f(x) can be obtained using the product rule and simplifying it as f'(x) = 6x^5(x-5)^7 + 7x^6(x-5)^6.

For the function to be increasing, its derivative should be positive. By analyzing the sign of the derivative, we find that f'(x) is positive on the intervals [-14, 0] and [5, 15]. Thus, f(x) is increasing on these intervals.

To find the region where the function is positive, we need to consider the sign of f(x) itself. Since f(x) is a product of two terms, x^6 and (x-5)^7, we need to determine the sign of each term separately.

The term x^6 is positive for all values of x, except when x = 0, where it evaluates to 0. On the other hand, the term (x-5)^7 is positive for x > 5 and negative for x < 5. Combining these two conditions, we find that f(x) is positive on the intervals (-14, 0) ∪ (5, 15).

Finally, to locate the minimum of the function, we can examine the critical points. By setting the derivative f'(x) equal to 0, we can solve for x and find that the only critical point is x = 5. To confirm it is a minimum, we can check the sign of the second derivative or evaluate f(x) at the critical point. In this case, f(5) = 0, so x = 5 is the point where the function achieves its minimum value.

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The equation of motion is x(t) = 3 sin(2t) meters.

To find the equation of motion, we need to determine the angular frequency (ω) and the coefficients A and B. The angular frequency can be calculated using the formula ω = √(k/m), where k is the spring constant and m is the mass attached to the spring.

Given that the force of 640 newtons stretches the spring by 4 meters, we can use Hooke's Law to determine the spring constant: F = kx. Thus, k = F/x = 640 N / 4 m = 160 N/m.

Now, we can calculate the angular frequency: ω = √(k/m) = √(160 N/m / 40 kg) = 2 rad/s.

To determine the coefficients A and B, we need to consider the initial conditions. Since the mass is initially released from the equilibrium position with an upward velocity of 6 m/s, the displacement at t = 0 is zero (x(0) = 0) and the velocity at t = 0 is 6 m/s (x'(0) = 6 m/s).

Substituting these initial conditions into the equation of motion, we can solve for A and B. Since x(0) = A cos(0) + B sin(0) = A, we have A = 0. And x'(0) = -ωA sin(0) + ωB cos(0) = ωB, so B = x'(0)/ω = 6 m/s / 2 rad/s = 3 m.

Therefore, the equation of motion is x(t) = 3 sin(2t) meters.

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The stationary points are (-3,-243), (0,0), and (3,-243). The point of inflexion is (-6,-648) and (6,-648).

Given [tex]y = x^2 (18−x^2)[/tex], we can find the stationary points by finding the first derivative of y with respect to x and equating it to zero.

[tex]dy/dx = 2x(18-x^2) + x^2(-2x) = 36x - 4x^3[/tex]

Setting dy/dx = 0, we get: [tex]36x - 4x^3 = 0[/tex]

[tex]4x(9 - x^2) = 0[/tex]

This gives us two stationary points at x = 0 and x = ±3.

To classify these stationary points, we can use the second derivative test.

[tex]d2y/dx2 = 36 - 12x^2[/tex]

At x = 0, d2y/dx2 = 36 > 0, so the stationary point at x = 0 is a minimum.

At x = ±3, d2y/dx2 = 0, so we cannot classify these stationary points using the second derivative test. We need to use the first derivative test instead.

For x < -3 or x > 3, dy/dx > 0. For -3 < x < 0, dy/dx < 0. For 0 < x < 3, dy/dx > 0.

Therefore, the stationary point at x = -3 is a maximum and the stationary point at x = 3 is a minimum.

To find any points of inflexion, we need to find where the concavity of the function changes. This occurs where d2y/dx2 = 0 or is undefined.

d2y/dx2 is undefined at x = ±6.

d2y/dx2 changes sign at x = ±3. Therefore, there is a point of inflexion at x = -3 and another one at x = 3.

So the stationary points are (-3,-243), (0,0), and (3,-243). The point of inflexion is (-6,-648) and (6,-648).

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Therefore, each pendant cost $13.20.

To find the cost of each pendant, we can subtract the cost of the beads from the total cost of the necklaces.

Total cost of the necklaces = $24.40

Cost of the beads = $11.20

Cost of each pendant = Total cost of the necklaces - Cost of the beads

= $24.40 - $11.20

= $13.20

Therefore, each pendant cost $13.20.

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Two points are given, and we are to find the equation of the sphere such that these two points are on opposite sides of the sphere.

1. A sphere with center at (a,b,c) and radius r has equation[tex](x-a)² + (y-b)² + (z-c)² = r².[/tex]

Thus, the equation of the sphere is[tex](x - 3)² + (y - 1)² + (z - 2)² = 14. 2. For the function f(x, y) = x+y x²+y²[/tex]

2. To be continuous at the origin, it must be defined at the origin, that is, f(0, 0) must exist.

Hence, we have:

f(0,0) = 0 + 0 0² + 0² = 0Hence, f(x, y) can be defined at the origin such that it is continuous. The limit at the origin can be shown to be zero, thus we have:[tex]lim (x, y)→(0,0) (x+y) x²+y² = lim (x, y)→(0,0) (x+y) (x²+y²) = lim (x, y)→(0,0) x³+y³ + x²y + xy² = 0[/tex]

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An equilibrium phase diagram can be used to determine phase transitions, phase presence, and phase compositions at different conditions.

An equilibrium phase diagram can be used to determine the below mentioned parameters:

A) It can determine where phase transitions will occur. Phase transitions refer to changes in the state or phase of a substance, such as solid to liquid (melting) or liquid to gas (vaporization). The phase diagram provides information about the conditions at which these transitions take place, such as temperature and pressure.

B) It can determine what phases will be present for each condition of chemistry and temperature. The phase diagram shows the different phases or states of a substance (such as solid, liquid, or gas) under different combinations of temperature and pressure. It provides a visual representation of the stability regions for each phase, indicating which phase(s) will be present at a given temperature and pressure.

C) It can determine the chemistry and amount of each phase present at any condition. The phase diagram gives information about the composition (chemistry) and proportions (amount) of different phases present under specific conditions. It helps identify the coexistence regions of multiple phases and provides insight into the equilibrium compositions of each phase at various temperature and pressure conditions.

In summary, an equilibrium phase diagram is a valuable tool in understanding the behavior of substances and can provide information about phase transitions, phase stability, and the chemistry and amounts of phases present at different conditions.

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To achieve a 98 percent cycle-service level, the reorder point for the ball-point pen should be approximately 17,978 pens.

The reorder point is the level at which a new order should be placed to replenish inventory. It is determined by considering the average demand during the lead time plus a safety stock to account for demand variability.
Given that the average demand for the pen is 11,240 pens per week with a standard deviation of 2,947 pens, and the average lead time is 4.6 weeks with a standard deviation of 1.7 weeks, we can calculate the safety stock.
To achieve a 98 percent cycle-service level, we need to cover 98 percent of the demand during the lead time. This corresponds to having a safety stock that covers the demand during 2 standard deviations above the mean lead time demand.
The safety stock can be calculated by multiplying the standard deviation of the demand during lead time by the z-value corresponding to a 98 percent service level. Assuming a normal distribution, the z-value for a 98 percent service level is approximately 2.33.
Safety stock = (Standard deviation of demand during lead time) * (z-value for a 98 percent service level)
= 2,947 pens * 2.33
= 6,870 pens (rounded to the nearest whole number)
Therefore, the reorder point is the average demand during lead time plus the safety stock:
Reorder point = Average demand during lead time + Safety stock
= 11,240 pens + 6,870 pens
= 17,978 pens (rounded to the nearest whole number).
Hence, to achieve a 98 percent cycle-service level, the reorder point for the ball-point pen should be approximately 17,978 pens.

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The width of the rectangle is 7 inches.

To find the width of a rectangle given its length and area, we can use the formula for the area of a rectangle:

Area = Length × Width

In this case, we are given that the length of the rectangle is 28 inches and the area is 196 square inches. Let's substitute these values into the formula:

196 = 28 × Width

To find the width, we divide both sides of the equation by 28:

Width = 196 / 28

Simplifying the division:

Width = 7

Therefore, the width of the rectangle is 7 inches.

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The value exceeds $1 million for the first time on the 21st square of the checkerboard.

The value of each square follows a doubling pattern:

$1, $2, $4, $8, $16, and so on.

We can express this pattern as [tex]2^{(n-1)}[/tex], where n represents the square number.

We need to find the value of n for which [tex]2^{(n-1)}[/tex] exceeds $1 million:

[tex]2^{(n-1)} > 1,000,000[/tex]

Taking the logarithm base 2 of both sides, we get:

[tex](n-1) > log_2(1,000,000)[/tex]

Using a calculator, we can determine the logarithm:

[tex]log_2(1,000,000) = 19.93[/tex]

Now, solving for n:

n-1 > 19.93

n > 20.93

Since n represents the square number, it must be a whole number. Therefore, we need to round up to the nearest whole number, giving us:

n = 21

Therefore, the value exceeds $1 million for the first time on the 21st square of the checkerboard.

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The complete question is as follows:

A father put a dollar on the first square of an 8x8 checkerboard. On the second square, the father doubled $2, on the third $4, on the fourth $8, and so on. At what square would the value be more than $1 million for the first time?

The room air-conditioning system is a closed-loop control system.

A closed-loop control system is a system that continuously monitors and adjusts its output based on a desired reference value. In the case of a room air-conditioning system, it typically includes sensors to measure the temperature of the room and compare it to a setpoint.

The system then adjusts the cooling or heating output to maintain the desired temperature. This feedback mechanism makes it a closed-loop control system.

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Without additional information, it is not possible to determine the specific value of (c) in this case.

To find the function (f(x)) and the number (c) such that

[tex]$\(\lim_{x\to 25}\frac{8x-40}{x-25} = f'(c)\),[/tex]

we can start by simplifying the expression inside the limit.

[tex]$\lim_{x\to 25}\frac{8x-40}{x-25} &= \lim_{x\to 25}\frac{8(x-5)}{x-25}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)}{x-25}\cdot\frac{(x-25)}{(x-25)}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)(x-25)}{(x-25)^2}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)(x-25)}{(x-25)(x-25)}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)}{(x-25)}[/tex]

Now, we can see that the limit expression simplifies to

[tex]$\(\lim_{x\to 25}8 = 8\)[/tex]

Therefore, (f'(c) = 8).

Since (f'(c) = 8), the function (f(x)) must be the antiderivative of 8, which is (f(x) = 8x + k), where (k) is a constant.

To find the value of (c), we need more information about the function \(f(x)) or the original limit expression. Without additional information, it is not possible to determine the specific value of (c) in this case.

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Step 1: The initial value of the function cannot be determined.

Step 2: The Laplace transform of a function provides information about its behavior in the frequency domain. However, the Laplace transform alone does not contain sufficient information to determine the initial value of the function. In this case, the given Laplace transform is X(s) = (s^2 + 6s + 1)/(s^2 + 65s + 909). The initial value refers to the value of the function at t = 0. To determine the initial value, we would need additional information such as the initial conditions or the inverse Laplace transform of X(s).

Step 3: The initial value of a function cannot be determined solely based on its Laplace transform. The given Laplace transform, X(s) = (s^2 + 6s + 1)/(s^2 + 65s + 909), does not provide the necessary information to calculate the initial value. The Laplace transform is a powerful tool for analyzing linear time-invariant systems, but it primarily captures the frequency-domain behavior of a function. To determine the initial value, we need to consider additional factors such as the initial conditions of the system or the inverse Laplace transform of X(s). Without this additional information, it is not possible to determine the initial value solely based on the given Laplace transform.

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(a) We have to find the polar coordinates, 0 ≤ θ < 2π and r ≥ 0, of the given point (2, 2√3). Let x and y be the given Cartesian coordinates. Then r = √(x² + y²) andθ = tan⁻¹(y/x).

Substituting x = 2 and y = 2√3, we get

r = √(2² + (2√3)²) = √16 = 4 and θ = tan⁻¹(2√3/2) = π/3

Hence, the polar coordinates of the point (2, 2√3) are (4, π/3).

(b) We have to find the polar coordinates, 0 ≤ θ < 2π and  r ≥ 0, of the given point (-4√2, 4√2). Let x and y be the given Cartesian coordinates.

Then r = √(x² + y²) and θ = tan⁻¹(y/x).

Substituting x = -4√2 and y = 4√2, we get

r = √((-4√2)² + (4√2)²) = √64 = 8andθ = tan⁻¹(4√2/(-4√2)) = 3π/4

Hence, the polar coordinates of the point (-4√2, 4√2) are (8, 3π/4).

Thus, the ordered pairs for the polar coordinates of (2, 2√3) and (-4√2, 4√2) are: (4, π/3) and (8, 3π/4) respectively.

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The antiderivative of [tex](-2+x^3[/tex]) with respect to x is[tex](-2x + (1/4)x^4) + C[/tex], where C is the constant of integration.

To find the antiderivative  [tex](-2+x^3)[/tex] with respect to x, we need to apply the power rule for integration and the constant multiple rules. The power rule states that the antiderivative of xⁿ with respect to x is [tex](1/(n+1))x^(n+1) + C[/tex], where C is the constant of integration.

Applying the power rule to the term x³, we get:

[tex]\int\limits^_[/tex][tex]x^3 dx = (1/(3+1))x^(3+1) + C = (1/4)x^4 + C[/tex]

Now, we must consider the antiderivative of the constant term (-2). The antiderivative of a constant multiplied by x is simply the constant multiplied by x. Thus, the antiderivative of -2 with respect to x is -2x.

Putting it all together, the antiderivative of[tex](-2+x^3)[/tex] with respect to x is [tex](-2x + (1/4)x^4) + C[/tex], where C is the constant of integration.

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Answer:

4K+6K =10+5

10K=15

K=25

The answer is:

k = -5/2

Work/explanation:

Our equation is:

[tex]\sf{4k+5=6k+10}[/tex]

Subtract 4k from each side

[tex]\sf{5=2k+10}[/tex]

[tex]\sf{2k+10=5}[/tex]

Subtract 10 from each side

[tex]\sf{2k=-5}[/tex]

[tex]\sf{k=-\dfrac{5}{2}}[/tex]

The function is a linear function with a positive slope (since the coefficient of x is positive), and it continues to increase without any turning points or local extremum.

To find the local minimum and local maximum of the function f(x) = 4x + 2x - 1, we need to find the critical points and evaluate the function at those points.

Step 1: Find the derivative of f(x):

f'(x) = 4 + 2 - 1

= 6

Step 2: Set the derivative equal to zero to find the critical points:

6 = 0

There are no solutions to this equation. Therefore, there are no critical points.

Step 3: Since there are no critical points, we can conclude that there are no local minimum or local maximum values for the function f(x) = 4x + 2x - 1.

In this case, the function is a linear function with a positive slope (since the coefficient of x is positive), and it continues to increase without any turning points or local extremum.

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The remaining side PR = 33mm. The angle at P = 60 degrees. The angle at R = 60 degrees.



Given: PQ = 48 mm, QR = 39 mm, angle Q = 60 degrees.

Step 1: Draw a rough sketch of the triangle.

Step 2: Use the law of cosines to find the length of PR.

PR^2 = PQ^2 + QR^2 - 2(PQ)(QR)cosQ
PR^2 = (48)^2 + (39)^2 - 2(48)(39)cos60
PR^2 = 2304 + 1521 - 1872
PR^2 = 1953
PR = sqrt(1953)
PR = 44.19 mm (rounded to two decimal places)

Step 3: Use the law of sines to find the remaining angles.

sinP / PQ = sinQ / PR
sinP / 48 = sin60 / 44.19
sinP = (48)(sin60) / 44.19
sinP = 0.8295
P = sin^-1(0.8295)
P = 56.56 degrees (rounded to two decimal places)

Angle R = 180 - 60 - 56.56
Angle R = 63.44 degrees (rounded to two decimal places)

Therefore, the remaining side PR = 44.19 mm, the angle at P = 56.56 degrees, and the angle at R = 63.44 degrees.


In this question, we need to construct a triangle PQR such that PQ = 48mm, QR = 39mm, and the angle at Q = 60 degrees. We are asked to measure the remaining side PR and angles.

The length of the remaining side PR can be found using the law of cosines. The law of cosines states that the square of one side of a triangle is equal to the sum of the squares of the other two sides minus twice their product and the cosine of the angle between them.

Using this formula, we can find that the length of PR is 44.19mm.

We can then use the law of sines to find the remaining angles. The law of sines states that the ratio of the length of a side of a triangle to the sine of the angle opposite that side is the same for all sides and angles in the triangle.

Using this formula, we can find that the angle at P is 56.56 degrees and the angle at R is 63.44 degrees.

Therefore, the remaining side PR is 44.19mm, the angle at P is 56.56 degrees, and the angle at R is 63.44 degrees.

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An expression for function f(t) is as follows:

f(t) = -5e^-0.08t + C

f(19) = 4.10 units.

Given the function, f′(t)=0.08e−0.08t ,

where f′(t) represents the rate of excretion of a bio-chemical compound.

To find the expression for f(t), the rate of excretion of the bio-chemical compound should be integrated over the given period. We have:

f′(t)=0.08e−0.08t

To integrate, we get:

f(t)= ∫ f′(t) dt

Let us substitute the given function, f′(t)=0.08e−0.08t , to get:

f(t) = ∫0t 0.08e-0.08t dt

Using u-substitution:

u = -0.08tdv

= e^u duv

= e^-0.08tdu

f(t) = -5e^-0.08t + C

We need to find C such that f(0) = 0.

Therefore: f(0) = -5e^0 + C

= 0

Hence, C = 5

Therefore, the expression for f(t) is:

f(t)=5-5e^(-0.08t)

Part (b)

0 units are excreted at t = 0. The amount excreted in 19 minutes is:

f(19) = 5-5e^(-0.08*19)

f(19) = 4.10 units.

Hence, the answer is 4.10.

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