A gas turbine power plant operating on an ideal Brayton cycle has a pressure ratio of 11.6. The inlet to the compressor is at a pressure of 90kPa and a temperature of 320K. Assume air-standard assumptions, an isentropic compressor, but variable specific heats. Determine the work required, per unit mass of air, to drive the compressor. Enter the answer as a positive value, expressed in units of kJ/kg, to 1 dp [Do not include the units]

Answers

Answer 1

The work per unit mass of air required to drive the compressor is 303.2 kJ/kg.

A gas turbine power plant operates on the Brayton cycle, which consists of four processes: isentropic compression, isobaric heat addition, isentropic expansion, and isobaric heat rejection.

In this question, we have to calculate the work per unit mass of air required to drive the compressor in a gas turbine power plant that operates on an ideal Brayton cycle. We are given that the pressure ratio is 11.6, and the inlet to the compressor is at a pressure of 90 kPa and a temperature of 320 K.

First, we need to calculate the compressor's outlet temperature. We can use the following equation to calculate the compressor's outlet temperature:

[tex]$$\frac{T_2}{T_1}$=\left(\frac{P_2}{P_1}\right)^{\frac{k-1}{k}}$$[/tex]

Where, k is the ratio of specific heats.

For air, k is 1.4. Therefore, we have

[tex]$$\frac{T_2}{320}$=11.6^{\frac{1.4-1}{1.4}}$$$$\Rightarrow T_2=614.6 K$$[/tex]

Next, we need to calculate the compressor's work per unit mass of air.

We can use the following equation to calculate the compressor's work per unit mass of air:

[tex]$$\frac{W_C}{m}$=c_p\left(T_2-T_1\right)$$[/tex]

Where, [tex]c_p[/tex]  is the specific heat at constant pressure.

For air, [tex]c_p[/tex] is 1.005 kJ/kg-K. Therefore, we have

[tex]$$\frac{W_C}{m}$=1.005\left(614.6-320\right)$$$$\Rightarrow \frac{W_C}{m}=303.2 kJ/kg$$[/tex]

Therefore, the work per unit mass of air required to drive the compressor is 303.2 kJ/kg.

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Related Questions

An
account with 2.95% interest, compounded continuously, is also
available. What would the balance in this account be after 5 years
if the same $10,000 was invested?

Answers

Therefore, the balance in the account after 5 years will be 11,581.28

We have to determine the balance in the account after 5 years if the same $10,000 is invested at 2.95% interest, compounded continuously.

We know that the formula for continuously compounded interest is given by;

A = Pert

Where;

A = final amount

P = principal amount

e = 2.71828

r = annual interest rate

t = time in years

Therefore, the balance in the account after 5 years will be;

A = Pert

A = 10000 × e^(0.0295 × 5)

A = 10000 × e^0.1475

A = 10000 × 1.1581A

= 11,581.28

The balance in the account after 5 years if the same $10,000 was invested at 2.95% interest, compounded continuously is $11,581.28.

Therefore, the balance in the account after 5 years will be;

A = Pert

A = 10000 × e^(0.0295 × 5)

A = 10000 × e^0.1475

A = 10000 × 1.1581A

= 11,581.28

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The total cost function for a product is C(x) = 875 In(x + 10) + 1600 where x is the number of units produced. (a) Find the total cost of producing 200 units. (Round your answer to the nearest cent.) (b) Producing how many units will give total costs of $8500? (Round your answer to the nearest whole number.) _____units

Answers

(a) The total cost of producing 200 units is approximately $6103.53.

(b) Producing approximately 2641 units will result in total costs of $8500.

(a) To find the total cost of producing 200 units, we can substitute x = 200 into the cost function C(x) = 875 ln(x + 10) + 1600 and evaluate it.

C(200) = 875 ln(200 + 10) + 1600

C(200) ≈ 875 ln(210) + 1600

C(200) ≈ 875 × 5.347 + 1600

C(200) ≈ 4503.525 + 1600

C(200) ≈ 6103.525

Therefore, the total cost of producing 200 units is approximately $6103.53.

(b) To find the number of units that will result in total costs of $8500, we can set the cost function equal to $8500 and solve for x.

875 ln(x + 10) + 1600 = 8500

875 ln(x + 10) = 8500 - 1600

875 ln(x + 10) = 6900

Next, we can divide both sides of the equation by 875 and take the exponential of both sides to eliminate the natural logarithm:

ln(x + 10) = 6900 / 875

ln(x + 10) ≈ 7.8857

Taking the exponential:

e^(ln(x + 10)) ≈ e^7.8857

x + 10 ≈ 2650.579

x ≈ 2640.579

Rounding to the nearest whole number, producing approximately 2641 units will result in total costs of $8500.

Therefore, producing approximately 2641 units will give total costs of $8500.

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Classify the following triangle. Check all that apply

Answers

The triangle is an equilateral triangle and it is an acute triangle

Classifying the triangle by its side lengths and by its angles

From the question, we have the following parameters that can be used in our computation:

The triangle

From the figure, we can see that

The three lengths of triangle are congruent

This means that the triangle is an equilateral triangle

Also, we can see that

All angles in the triangle are less than 90

This means that the triangle is an acute triangle

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10 Convert the following units from Sl to Imperial: a) 34cm to inches b) 22 litres to gallons c) 70 kilometres to miles d) 78 kilograms to pounds e) 144 square metres to square yards f) 56 metres to feet and yards Convert the following units from Imperial to Sl: 17 | Page a) 16 ounces to grams b) 34 yards to meters c) 6.5 gallons to liters d) 487 feet to meters e) 19 acres to hectares f) 56 tons to kilograms g) 45 inches to centimeters h) 321 cubic inches to cubic meters i) 1092 miles to kilometers j) 12 pounds to kilograms 1 2 1 Dot 3 Dots 6 Dots 10 Dots 15 Dots 2. Write down the sequence of the numbers of dots. Work out the next three terms and explain in words how you got the answer. A 44mm B 60mm D 44mm 80mm 15 Draw the following two-dimensional shapes and transform them to three dimensional shapes by adding a height or 10 depth of 3cm a) Square with dimensions 250mm. b) Rectangle with dimensions 300mm by 200mm. c) Right-angled triangle with an adjacent side of 3cm and an opposite side of 2cm. d) Circle with a diameter of 400mm. e) Semi-circle with a radius of 1cm.

Answers

a) 34 cm = 13.39 inches

b) 22 liters = 4.84 gallons

c) 70 kilometers = 43.5 miles

d) 78 kilograms = 171.96 pounds

e) 144 square meters = 172.8 square yards

f) 56 meters = 183.73 feet and 61.02 yards

To convert centimeters to inches, we use the conversion factor of 1 inch = 2.54 cm. Thus, 34 cm divided by 2.54 gives us 13.39 inches.

To convert liters to gallons, we use the conversion factor of 1 gallon = 3.78541 liters. So, dividing 22 liters by 3.78541 gives us approximately 4.84 gallons.

To convert kilometers to miles, we use the conversion factor of 1 mile = 1.60934 kilometers. Therefore, dividing 70 kilometers by 1.60934 gives us approximately 43.5 miles.

To convert kilograms to pounds, we use the conversion factor of 1 kilogram = 2.20462 pounds. So, multiplying 78 kilograms by 2.20462 gives us approximately 171.96 pounds.

To convert square meters to square yards, we use the conversion factor of 1 square yard = 0.836127 square meters. Thus, dividing 144 square meters by 0.836127 gives us approximately 172.8 square yards.

To convert meters to feet and yards, we use the conversion factor of 1 meter = 3.28084 feet. Therefore, multiplying 56 meters by 3.28084 gives us approximately 183.73 feet. To convert feet to yards, we divide by 3, so 183.73 feet divided by 3 gives us approximately 61.02 yards.

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A thin-walled tube having a semi circular shape has a mean diameter of 50 mm and a wall thickness of 6 mm. If the stress concentration at the corners is neglected, what torque will cause a shearing stress of 40 MPa

Answers

The torque required to cause a shearing stress of 40 MPa in the thin-walled tube is approximately 25.13 Nm. To calculate the torque, we need to consider the shearing stress acting on the wall of the semi-circular tube.

The shearing stress can be calculated using the formula:

τ = (T * r) / (J * t)

Where:

τ = Shearing stress

T = Torque

r = Mean radius of the tube (half the diameter)

J = Polar moment of inertia of the tube cross-section

t = Wall thickness

Since the stress concentration at the corners is neglected, we can consider the tube as a thin-walled circular tube. The polar moment of inertia for a thin-walled circular tube is given by:

J = (π * (D^4 - d^4)) / 32

Where:

D = Outer diameter of the tube

d = Inner diameter of the tube

Given:

Mean diameter (D) = 50 mm

Wall thickness (t) = 6 mm

Shearing stress (τ) = 40 MPa

calculating  the inner diameter:

d = D - 2t = 50 mm - 2 * 6 mm = 38 mm

Next, we can calculate the mean radius:

r = D / 2 = 50 mm / 2 = 25 mm

the polar moment of inertia:

J = (π * (D^4 - d^4)) / 32 = (π * ((50 mm)^4 - (38 mm)^4)) / 32 ≈ 2.43e7 mm^4

Finally, rearranging the shearing stress formula to solve for torque: T = (τ * J * t) / r = (40 MPa * 2.43e7 mm^4 * 6 mm) / 25 mm ≈ 25.13 Nm . The torque required to cause a shearing stress of 40 MPa in the thin-walled tube is approximately 25.13 Nm.

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(Trig) Find the missing sides or angles from the right triangles

Answers

The measure of the missing side length of the right triangle is approximately 32.1.

What is the measure of the missing side length?

The figure in the image is a right triangle.

From the image:

Angle θ = 0.646 rad

Opposite to angle θ = 19.3

Hypotenuse =?

To solve for the missing side length, we use the trigonometric ratio.

Note that: sine = opposite / hypotensue

Plug the given values into the above formula and solve for the hypotenuse.

sin( θ ) = opposite / hypotenuse

sin( 0.646 rad  ) = 19.3 / hypotenuse

Hypotenuse = 19.3 / sin( 0.646 rad  )

Hypotenuse = 32.1

Therefore, the hypotenuse measures 32.1 units.

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A 25.00 mL sample containing BaCl2 was diluted to 500 mL. Aliquots of 50.00 mL of this solution were analyzed using Mohr and Volhard methods. The following data were obtained:
Volhard method:
Volume of AgNO3 = 50.00 mL
Volume of KSCN = 17.25 mL
Mohr method:
Volume of AgNO3 (sample titration) = 26.90 mL
Volume of AgNO3 (blank titration) = 0.20 mL
Calculate % BaCl2 using Mohr method and using Volhard method.

Answers

The percentage of Ba[tex]Cl_2[/tex] in the original 25.00 mL sample is approximately 0.1068% using the Mohr method and 0.1310% using the Volhard method.

We have,

To calculate the percentage of Ba[tex]Cl_2[/tex] using the Mohr and Volhard methods, we need to determine the amount of Ba[tex]Cl_2[/tex] present in the aliquots analyzed and then calculate the percentage based on the original 25.00 mL sample.

First, let's calculate the amount of Ba[tex]Cl_2[/tex] reacted in each method:

Mohr method:

Volume of AgN[tex]O_3[/tex] used in the sample titration = 26.90 mL

Volume of AgN[tex]O_3[/tex] used in the blank titration = 0.20 mL

The difference between these two volumes represents the volume of Ag[tex]NO_3[/tex] that reacted with Ba[tex]Cl_2[/tex] in the sample titration:

Volume of AgN[tex]O_3[/tex] reacted = 26.90 mL - 0.20 mL = 26.70 mL

Volhard method:

Volume of AgN[tex]O_3[/tex] used = 50.00 mL

Volume of KSCN used = 17.25 mL

To determine the volume of AgN[tex]O_3[/tex] that reacted with BaC[tex]l_2[/tex] in the Volhard method, we need to subtract the volume of KSCN used from the volume of AgN[tex]O_3[/tex] used:

Volume of AgN[tex]O_3[/tex] reacted = 50.00 mL - 17.25 mL = 32.75 mL

Next, we can calculate the number of moles of BaC[tex]l_2[/tex] reacted in each method:

Molar mass of BaC[tex]l_2[/tex] = atomic mass of Ba + (2 * atomic mass of Cl)

= 137.33 g/mol + (2 * 35.45 g/mol) = 208.23 g/mol

Mohr method:

Number of moles of Ba[tex]Cl_2[/tex] = (Volume of AgN[tex]O_3[/tex] reacted / 1000) * Molarity of AgN[tex]O_3[/tex]

Assuming the molarity of AgN[tex]O_3[/tex] is 1.0 M, we can calculate:

Number of moles of BaC[tex]l_2[/tex] = (26.70 mL / 1000) * 1.0 M = 0.02670 mol

Volhard method:

Number of moles of BaC[tex]l_2[/tex] = (Volume of AgN[tex]0_3[/tex] reacted / 1000) * Molarity of AgN[tex]O_3[/tex]

Again assuming the molarity of AgN[tex]O_3[/tex] is 1.0 M:

Number of moles of BaC[tex]l_2[/tex] = (32.75 mL / 1000) * 1.0 M = 0.03275 mol

Finally, we can calculate the percentage of BaC[tex]l_2[/tex] in the original 25.00 mL sample for each method:

Mohr method:

% BaC[tex]l_2[/tex] = (Number of moles of BaC[tex]l_2[/tex] Volume of original sample) * 100

% BaC[tex]l_2[/tex] = (0.02670 mol / 25.00 mL) * 100 = 0.1068% (rounded to four decimal places)

Volhard method:

% BaC[tex]l_2[/tex] = (Number of moles of BaC[tex]l_2[/tex] / Volume of original sample) * 100

% BaC[tex]l_2[/tex] = (0.03275 mol / 25.00 mL) * 100 = 0.1310% (rounded to four decimal places)

Therefore,

The percentage of BaC[tex]l_2[/tex] in the original 25.00 mL sample is approximately 0.1068% using the Mohr method and 0.1310% using the Volhard method.

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QUESTION 04 The void space in a sand taken near a river consists of 80% air and 20% water. The dry unit weight is yd=95 KN/m³ and Gs=2.7. Determine the water content.

Answers

The water content of the sand near a river is 18 percent.

Given that,

Void space in the sand near a river: 80% air and 20% water

Dry unit weight of the sand (yd): 95 KN/m³

The specific gravity of the sand (Gs): 2.7

To determine the water content, we can use the relationship between void ratio (e), porosity (n), and water content (w).

The formulas are as follows:

e = Vv / Vs

Where e is the void ratio,

Vv is the volume of voids, and

Vs is the volume of solids

n = e / (1 + e)

Where n is the porosity

w = (n × Gs)/(1 + Gs)

Where w is the water content

Given that the void space consists of 20% water, we can calculate the porosity:

n = 0.2 / (1 - 0.2) = 0.25

Next, we can substitute the porosity and specific gravity into the water content formula:

w = (0.25 × 2.7) / (1 + 2.7) ≈ 0.18

Therefore, the water content of the sand is 18%.

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The start of a quadratic sequence is shown below.
By first working out the nth term rule, find the 20th term of this sequence.
9, 12, 17, 24, 33,

Answers

Answer:

Rule is [tex]n^2+8[/tex]

20th term is 408

Step-by-step explanation:

Notice that [tex]n^2=1,4,9,16,25,...[/tex] so if we add 8 to each term, we get [tex]n^2+8=9,12,17,24,33[/tex]. Therefore, the 20th term would be [tex]20^2+8=400+8=408[/tex]

A concrete one-way slab has a total thickness of 120 mm. The slab will be reinforced with 12 -mm-diameter bars with fy =275MPa, Cc =21MPa. Determine the area of rebar in mm2 if the total factored moment acting on 1−m width of slab is 23kN−m width of slab is 23 kN−m. Clear concrete cover is 20 mm.

Answers

The area of rebar is approximately 17,333.86 mm^2

To determine the area of rebar in mm2, we need to consider the factored moment and the properties of the reinforcement.

Step 1: Calculate the effective depth of the slab.
Effective depth (d) = total thickness of the slab - clear concrete cover
d = 120 mm - 20 mm
d = 100 mm

Step 2: Calculate the lever arm (a).
Lever arm (a) = (d/2) + (d/6)
a = (100 mm/2) + (100 mm/6)
a = 50 mm + 16.67 mm
a = 66.67 mm

Step 3: Calculate the factored moment capacity (Mn).
Mn = (0.138 * fy * A * (d - a))/(10^6)
Where:
fy = yield strength of the reinforcement = 275 MPa
A = area of the reinforcement

We can rearrange the equation to solve for A:
A = (Mn * 10^6)/(0.138 * fy * (d - a))
A = (23 kN-m * 10^6)/(0.138 * 275 MPa * (100 mm - 66.67 mm))

Converting kN-m to N-mm:
A = (23,000 N-mm * 10^6)/(0.138 * 275 MPa * (100 mm - 66.67 mm))

Simplifying the equation:
A = (23,000,000,000 N-mm)/(37.95 MPa * 33.33 mm)

Using appropriate units for area:
A = (23,000,000,000 N-mm)/(37.95 * 10^6 N/mm^2 * 33.33 mm)
A = 17,333.86 mm^2

Therefore, the area of rebar is approximately 17,333.86 mm^2.

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A solution is prepared by dissolving 2.746 g of KBr into enough water to make 561 mL. What is the molarity of the solution? KBr:MW=119.002 g/mol  a) 4.11×10^−5 mol/L  b) 4.89×10^−1 mol/L  c) 4.11×10^−2mol/L

Answers

The molarity of the solution containing 2.746 g of KBr dissolved in enough water to make 561 mL is 4.11 x 10^-2 mol/L.Hence, option (c) is correct.

Molarity is defined as the amount of solute dissolved in 1 liter of the solution. It is denoted as M and measured in mol/L. Given data: Mass of KBr = 2.746 g

Volume of water = Enough to make 561 mL or 0.561 LK

Br: MW = 119.002 g/mol The molarity of the solution can be calculated using the formula:

M = \frac{n}{V}

where n = number of moles of KBr,

V = volume of the solution in liters.

Substitute the given data in the formula: Molarity, M = number of moles of KBr/Volume of the solution Molar mass of KBr (MW) = 119.002 g/mol Number of moles of KB

r = Mass of KBr/M

W= 2.746 g/119.002 g/mol

= 0.02306 mol

Volume of the solution = 0.561 L Substitute the above values in the formula:

Molarity, M = 0.02306 mol/0.561

L= 0.0411 mol/L

Therefore, the molarity of the solution is 4.11 x 10^-2 mol/L.

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Round 517.555 to the nearest hundredth. Enter your answer in the space
provided.
Answer here
SUBMIT

Answers

To round 517.555 to the nearest hundredth, we look at the digit in the thousandths place, which is 5. Since 5 is greater than or equal to 5, we round up the digit in the hundredths place, which is 5. Therefore, 517.555 rounded to the nearest hundredth is:
517.56
The number 517.555 rounded to the nearest hundredth is 517.56.

The cost of producing x smart phones is C(x)=x^2+600x+6000. (a) Use C(x) to find the average cost (in dollars) of producing 1,000 smart phones. s (b) Find the average value (in dollars) of the cost function C(x) ) over the interval from 0 to 1,000 . (Round your answer to two decimal places.) 5

Answers

(a) The average cost of producing 1,000 smart phones is $1,606.
(b) Rounded to two decimal places, the average value of the cost function C(x) over the interval from 0 to 1,000 is $435,333.33.

The cost function for producing x smart phones is given by C(x) = x^2 + 600x + 6000.

(a) To find the average cost of producing 1,000 smart phones, we need to divide the total cost by the number of smart phones produced.

Plugging in x = 1,000 into the cost function C(x), we get C(1,000) = 1,000^2 + 600(1,000) + 6,000.

Evaluating this expression, we find that C(1,000) = 1,000,000 + 600,000 + 6,000 = 1,606,000.

To find the average cost, we divide this total cost by the number of smart phones produced:

Average cost = Total cost / Number of smart phones

                       = 1,606,000 / 1,000

                       = $1,606.

Therefore, the average cost of producing 1,000 smart phones is $1,606.

(b) To find the average value of the cost function C(x) over the interval from 0 to 1,000, we need to find the average cost per smart phone produced in this interval.

We can use the formula for average value, which is the integral of the function divided by the length of the interval:

Average value = (1 / length of interval) * ∫(0 to 1,000) C(x) dx.

The length of the interval is 1,000 - 0 = 1,000.

Now, let's find the integral of C(x) from 0 to 1,000:

∫(0 to 1,000) C(x) dx = ∫(0 to 1,000) (x^2 + 600x + 6,000) dx.

Evaluating this integral, we get:

= [tex][(1/3)x^3 + 300x^2 + 6,000x][/tex] evaluated from 0 to 1,000.

= [tex][(1/3)(1,000)^3 + 300(1,000)^2 + 6,000(1,000)] - [(1/3)(0)^3 + 300(0)^2 + 6,000(0)].[/tex]

Simplifying further, we find:

= (1/3)(1,000,000,000 + 300,000,000 + 6,000,000) - 0.

= (1/3)(1,306,000,000)

= 435,333,333.33.

Now, we can find the average value of the cost function:

Average value = (1 / length of interval) * ∫(0 to 1,000) C(x) dx = (1 / 1,000) * 435,333,333.33.

= 435,333.33.

Rounded to two decimal places, the average value of the cost function C(x) over the interval from 0 to 1,000 is $435,333.33.

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Choose each correct coordinate for the vertices of A’B’C
Need asap

Answers

The correct coordinates for the vertices of triangle A' * B' * C' are:

A' * (-10, 20)

B' * (-20, -30)

C' * (20, -20)

To determine the vertices of triangle A' * B' * C', which is obtained from a transformation of triangle ABC, we need to apply the given transformation to each vertex of triangle ABC. The transformation involves scaling, translating, and rotating the original triangle.

Given:

Triangle ABC with vertices:

A(-4, 6)

B(-6, -4)

C(2, -2)

Transformation:

Dilatation: Scale factor of 5

Translation: Move 2 units to the right and 2 units down

Let's apply the transformation to each vertex:

1. Vertex A:

Applying the translation, A' = A + (2, -2) = (-4, 6) + (2, -2) = (-2, 4)

Applying the dilatation, A' = 5 * (-2, 4) = (-10, 20)

2. Vertex B:

Applying the translation, B' = B + (2, -2) = (-6, -4) + (2, -2) = (-4, -6)

Applying the dilatation, B' = 5 * (-4, -6) = (-20, -30)

3. Vertex C:

Applying the translation, C' = C + (2, -2) = (2, -2) + (2, -2) = (4, -4)

Applying the dilatation, C' = 5 * (4, -4) = (20, -20)

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Explain alkali silicate reaction

Answers

The alkali silicate reaction, also known as the alkali-silica reaction (ASR), is a chemical reaction that occurs between alkalis (such as sodium or potassium) present in cement or concrete and reactive forms of silica (such as certain types of aggregates).

This reaction results in the formation of a gel-like substance, which can cause expansion, cracking, and deterioration of the concrete structure over time.

There are no specific calculations involved in the alkali silicate reaction. However, the severity of the reaction can be B by measuring the expansion of the concrete or observing the formation of cracks and other signs of deterioration.

The alkali silicate reaction is a significant concern in the construction industry as it can lead to the degradation of concrete structures. Preventive measures such as using low-alkali cement, incorporating supplementary cementitious materials, and selecting non-reactive aggregates can help mitigate the risk of ASR. Regular monitoring, testing, and maintenance of concrete structures are essential to detect and address any signs of alkali silicate reaction at an early stage. By understanding and managing this reaction, engineers and construction professionals can ensure the durability and longevity of concrete structures.

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Methylene chloride is a common ingredient of paint removers. Besides being an imitant, it also may be absorbed through skin. When using this paint remover, protective gloves should be wom. If butyl rubber gloves (0.08 cm thick) are used, what is the diffusive flux of methylene chloride through the glove? Diffusion coefficient in butyl rubber: D=110×10 −8
cm 2
/s, surface concentrations: C 1

=0.44 g/cm 3
,C 2

= 0.02 g 2
cm 3

Answers

The diffusive flux of methylene chloride through the glove is [tex]-0.22 g/cm^2-s.[/tex]. This indicates that some methylene chloride can pass through the glove and should be handled with caution.

The diffusive flux of methylene chloride through the glove can be determined by using Fick's first law of diffusion, which relates the diffusive flux of a species through a medium to its concentration gradient and diffusivity. The equation for Fick's law is given by J = -D(dc/dx), where J is the diffusive flux, D is the diffusion coefficient, and dc/dx is the concentration gradient.

For this problem, the diffusive flux of methylene chloride through the butyl rubber glove can be calculated as follows:

J = -D(dc/dx)

=[tex]-110 x 10^-8 cm^2/s x (0.44 - 0.02) g/cm^3 / (0.08 cm)[/tex]

= -0[tex].22 g/cm^2-s[/tex]

Therefore, the diffusive flux of methylene chloride through the glove is[tex]-0.22 g/cm^2-s.[/tex]

This indicates that some methylene chloride can pass through the glove and should be handled with caution.

:Therefore, the diffusive flux of methylene chloride through the glove is [tex]-0.22 g/cm^2-s.[/tex]. This indicates that some methylene chloride can pass through the glove and should be handled with caution.

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When we use the term ideal fluid, we neglect: O density O pressure O energy conservation O friction and we assume laminar flow

Answers

When using the term ideal fluid, the assumption of neglecting friction is made. Frictional forces are not considered in ideal fluid analysis, while other factors such as density, pressure, energy conservation, and laminar flow are still accounted for.

An ideal fluid is a theoretical concept used in fluid mechanics to simplify the analysis of fluid flow. When considering an ideal fluid, certain assumptions are made to simplify the equations and calculations involved. These assumptions include neglecting friction.

Friction is the resistance encountered by a fluid when it flows over a surface or through a pipe. In real-world scenarios, frictional forces play a significant role in fluid flow, causing energy losses and affecting the behavior of the fluid. However, when dealing with ideal fluids, friction is ignored to simplify the analysis.

Other options listed in the question:

- Density: In ideal fluid analysis, density is not neglected. The density of the fluid is still considered and can affect the calculations.

- Pressure: In ideal fluid analysis, pressure is also considered and plays a role in determining the fluid behavior.

- Energy conservation: Energy conservation is still a fundamental principle in fluid mechanics, even when dealing with ideal fluids. It is not neglected.

- Laminar flow: The assumption of laminar flow is often made when analyzing ideal fluids. Laminar flow refers to smooth, orderly flow without turbulence. It is one of the simplifying assumptions used in ideal fluid analysis.

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This question is from Hydrographic surveying.
What is the maximum Total Vertical Uncertainty allowed for a IHO
Special Order MBES survey in 15m of water?

Answers

The maximum Total Vertical Uncertainty allowed for an IHO Special Order Multibeam Echo Sounder (MBES) survey in 15m of water is 0.08 + 0.015h, where h is the depth of the water in meters.

The International Hydrographic Organization (IHO) sets standards for hydrographic surveys. The total vertical uncertainty (TVU) is one of these requirements. It determines the maximum acceptable margin of error for the depth measurements, which are a crucial component of hydrographic surveying.

The maximum total vertical uncertainty allowed for an IHO Special Order Multibeam Echo Sounder (MBES) survey in 15m of water is 0.08 + 0.015h, where h is the depth of the water in meters. The formula for total vertical uncertainty is expressed as:

TVU = 0.08 + 0.015h

Where:

TVU = Total Vertical Uncertainty

h = Depth of the water in meters

The maximum TVU allowed varies based on the depth of the water. The formula indicates that the TVU rises as the water depth increases.

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in some cases the metal ceramic (PFM) can cause various
problem like
A.Gum staining
B.all answer are correct
C.release of metallic ions into the gingival tissue
D.allergies

Answers

Metal ceramic (PFM) restorations can cause various problems including gum staining, release of metallic ions into the gingival tissue, and allergies in some cases.

Gum Staining: The metal portion of the restoration may become exposed over time due to wear, chipping, or gum recession. This exposure can cause visible gum staining, leading to aesthetic concerns.

Release of Metallic Ions: Metal components in PFM restorations, such as alloys containing base metals like nickel, chromium, or cobalt, can gradually release metallic ions into the surrounding oral tissues. This process, known as metal ion leaching, occurs due to corrosion or interaction with saliva and oral fluids. The release of these ions may cause localized tissue reactions or sensitivity in some individuals.

Allergies: Some individuals may develop allergic reactions or hypersensitivity to the metals used in PFM restorations. Allergies can manifest as oral discomfort, inflammation, or allergic contact dermatitis in the surrounding tissues.

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A composite function. The inner and outer function must be the following equation accordingly. Logarithmic Functions: y=log1.5​(x) Exponential Function : y=2x Determine the Instantaneous Rate of Change at x=A Choose a value for A in the domain of your function and show full calculations. Is the function increasing at that point? How do you know?. No marks are given if your solution includes: e or In, differentiation, integration.

Answers

The given function is increasing at the point x = A = 2, and the instantaneous rate of change at the point is approximately 2.

For this question, we use the properties of increasing and decreasing functions, the instantaneous rate of change, and their equations.

Usually, to calculate the instantaneous rate of change of the function at a point, we use differentiation. But this time, we'll use a slightly different approach.

The composite function is given by:

f(x) = log₁.₅(x²)

We rewrite this function as follows.

f(x) = log₁.₅(x²) = log₁.₅(x * x) = log₁.₅(x) + log₁.₅(x)

Now, we determine the value of f(A), using A = 2 as our chosen value.

This turns out to be:

f(2) = log₁.₅(2) + log₁.₅(2)

log₁.₅(2) =  log(2)/ log(1.5)

              = 0.3010/0.176

              = 1.7095

So, f(2) = 1.7095 + 1.7095

            = 3.419

To determine whether the function is increasing at x = A, we can evaluate f(x) for a value slightly greater than A, such as x = 2.1.

So, for the function:

f(2.1) = log₁.₅(2.1) + log₁.₅(2.1)

log₁.₅(2.1) =  log(2.1)/ log(1.5)

               = 0.322/0.176

               = 1.829

f(2.1) = 1.829 + 1.829 = 3.658.

So, f(2.1) > f(2) for the function.

Thus, the function is increasing at the point A = 2.

Now, to calculate the instantaneous rate of change, we use the following equation.

Instantaneous rate of change = Lim(h -> 0) [(f(A + h) - f(A)) / h]

If we plug in A = 2,

f(A) = f(2) ≈ 3.419

Lim(h -> 0) [(f(A + h) - f(A)) / h] = lim(h -> 0) [(f(2 + h) - 3.419) / h]

As we know, 'h' needs to be small enough to be comparable to zero. We'll take h = 0.0001 for our needs.

[(f(2.0001) - 5.41902) / 0.0001] ≈ (3.4192 - 3.419) / 0.0001

Instantaneous rate of change ≈ (0.0002) / (0.0001)

                                                 ≈ 2

Therefore, the instantaneous rate of change at the point is 2.

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Using standard heats of formation, calculate the standard enthalpy change for the following reaction. NH4NO3(aq) N₂O(g) + 2H₂0 (1) ANSWER: kJ

Answers

Using standard heats of formation,the standard enthalpy change for the given reaction is -124.5 kJ/mol.

The standard enthalpy change for the reaction NH4NO3(aq) → N2O(g) + 2H2O(l) can be calculated using the standard heats of formation.

First, we need to identify the standard heats of formation for each compound involved in the reaction. The standard heat of formation (ΔHf°) is the enthalpy change that occurs when one mole of a compound is formed from its elements in their standard states at a given temperature and pressure.

The standard heats of formation for NH4NO3(aq), N2O(g), and H2O(l) are as follows:
- NH4NO3(aq): -365.5 kJ/mol
- N2O(g): 81.6 kJ/mol
- H2O(l): -285.8 kJ/mol

Next, we need to determine the stoichiometric coefficients of the compounds in the balanced equation. From the equation, we can see that 1 mole of NH4NO3(aq) produces 1 mole of N2O(g) and 2 moles of H2O(l).

Now, we can calculate the standard enthalpy change using the formula:
ΔH = Σ(nΔHf° products) - Σ(mΔHf° reactants)

Plugging in the values, we have:
ΔH = (1 mol × 81.6 kJ/mol) + (2 mol × -285.8 kJ/mol) - (1 mol × -365.5 kJ/mol)
   = 81.6 kJ/mol - 571.6 kJ/mol + 365.5 kJ/mol
   = -124.5 kJ/mol

Therefore, the standard enthalpy change for the given reaction is -124.5 kJ/mol.

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Ionization energy refers to the amount of energy required to add an electron to the valence shell of a gaseous atom.
True or False?

Answers

Ionization energy refers to the amount of energy required to remove an electron from a neutral atom, creating a positively charged ion.

The ionization energy increases from left to right and from the bottom to the top of the periodic table.

The ionization energy is the amount of energy required to remove the most loosely held electron from a neutral gaseous atom, to form a positively charged ion. The amount of energy required is measured in kJ/mol.

The more energy required, the more difficult it is to remove the electron, thus the higher the ionization energy value.The first ionization energy increases as we move from left to right across a period because the number of protons increases and so does the atomic number of the elements.

This means that the effective nuclear charge increases as well, thus it becomes more difficult to remove electrons. Therefore, it takes more energy to remove the electron. Consequently, the ionization energy increases.The ionization energy also increases as we move from bottom to top in a group. This is because the valence electrons are closer to the nucleus as we move up the group. This makes it more difficult to remove the valence electrons, thus the ionization energy increases.

The statement is False. The ionization energy refers to the amount of energy required to remove an electron from a neutral atom, creating a positively charged ion.

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A city averages 14 hours of daylight in June, 10 hours of daylight in December, and 12 hours of daylight
in both March and September. Assume that the number of hours of daylight varies sinusoidally over a
period of one year. Write two different equations for the number of hours of daylight over time in
months where t= 1 is January (the first month of the year), t=2 is February etc

Answers

The two equations for the number of hours of daylight over time in months are:

1) y = 2sin[(π/6)t] + 12

2) y = -2sin[(π/6)t] + 12

The given problem states that the number of hours of daylight varies sinusoidally over a period of one year. This indicates that the function that models the number of hours of daylight should be a sinusoidal function.

To find the equation for the number of hours of daylight, we need to consider the key parameters: the amplitude, period, and phase shift of the sinusoidal function.

In the first equation, y = 2sin[(π/6)t] + 12, the amplitude is 2, which represents the maximum deviation from the average of 12 hours of daylight. The period is determined by the coefficient of t, which is π/6. Since the period of one year corresponds to 12 months, the coefficient is chosen to divide the period equally among the 12 months.

The phase shift, or horizontal shift, is not explicitly mentioned in the problem, so it is assumed to be zero. Adding 12 to the equation ensures that the average daylight hours are accounted for.

In the second equation, y = -2sin[(π/6)t] + 12, the only difference is the negative amplitude (-2). This equation represents the situation where the number of daylight hours is below the average.

By using these equations, one can calculate the number of daylight hours for each month of the year based on the given sinusoidal variation.

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Given the function f(x) = 5x^2 – 6x + 4, find and simplify the difference quotient ( f(x+h) - f(x) ) / h.

Answers

The simplified difference quotient is 10x + 5h – 6.

To find the difference quotient for the function f(x) = 5x^2 – 6x + 4, we need to evaluate the expression (f(x+h) - f(x)) / h.

Step 1: Substitute (x + h) into the function f(x) for f(x+h):

f(x + h) = 5(x + h)^2 – 6(x + h) + 4

Step 2: Simplify the expression for f(x + h):

f(x + h) = 5(x^2 + 2hx + h^2) – 6(x + h) + 4
        = 5x^2 + 10hx + 5h^2 – 6x – 6h + 4

Step 3: Substitute x into the function f(x):

f(x) = 5x^2 – 6x + 4

Step 4: Subtract f(x) from f(x + h):

f(x + h) - f(x) = (5x^2 + 10hx + 5h^2 – 6x – 6h + 4) - (5x^2 – 6x + 4)
               = 5x^2 + 10hx + 5h^2 – 6x – 6h + 4 - 5x^2 + 6x - 4
               = 10hx + 5h^2 – 6h

Step 5: Divide the difference by h:

(f(x + h) - f(x)) / h = (10hx + 5h^2 – 6h) / h
                     = 10x + 5h – 6

Therefore, the simplified difference quotient is 10x + 5h – 6.

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a count went up from 450 to 600 what was the approximate percent increase

Answers

Answer:15%

Step-by-step explanation:

i used my brain

Answer: 15%
Explanation: Take 450\600 and you will get .75 that’s the difference, subtract that from 1 (100 percent in decimal form) and you get .15, .15 as a percent is 15%

The gas phaserreversible reaction 2A-B-2 kes place in anothermal batch reactor with an initial volume of 200 L and was made out of steel The reactor is loaded with equimolar quantities of A and B and with 200 moles in total initially. The reaction is fest order with respect to A and first order with respect to 8 Choose the correct value for the concentration of product when the degree of conversion 08

Answers

The concentration of the product when the degree of conversion is 0.8 depends on the specific rate constant and the stoichiometry of the reaction.

In a first-order reversible reaction, the rate of reaction is proportional to the concentration of the reactant raised to the power of its order. In this case, the reaction is first order with respect to both A and B. The rate law for the forward reaction can be expressed as:

Rate = k1 * [A] * [B]

Since the reaction is reversible, there is also a reverse reaction with its own rate constant, k2. The rate law for the reverse reaction can be expressed as:

Rate_reverse = k2 * [product]

The degree of conversion, ξ, is defined as the fraction of A that has reacted. In this case, the initial moles of A and B are both 200, so the total initial moles is 400. If the degree of conversion is 0.8, it means that 80% of A has reacted, leaving 20% unreacted.

To determine the concentration of the product when ξ = 0.8, we need to consider the stoichiometry of the reaction. From the balanced equation, we can see that for every two moles of A that react, one mole of product is formed. Therefore, if 80% of A has reacted, the concentration of the product would be 40% of the initial concentration of A and B.

In summary, when the degree of conversion is 0.8, the concentration of the product would be 40% of the initial concentration of A and B. This is based on the stoichiometry of the reaction and the assumption that the reaction follows first-order kinetics with respect to both A and B.

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Which isomer of C5H12 would be the best
fuel? Why?
__________________________________________________________________
Explain how 1,2-dimethyl-cyclopropene can form geometric
isomers.
___________

Answers

The best fuel among the isomers of C5H12 would be 2,2-dimethylbutane due to its high octane rating and favorable combustion properties.

2,2-dimethylbutane, one of the isomers of C5H12, is the best fuel for several reasons. Firstly, it possesses a high octane rating, which measures a fuel's resistance to knocking in internal combustion engines. Higher octane fuels are less prone to premature combustion, ensuring a smoother and more efficient engine operation.

2,2-dimethylbutane's branched structure and symmetrical arrangement of methyl groups contribute to its high octane rating, making it a desirable choice for fuel.

Additionally, 2,2-dimethylbutane exhibits favorable combustion properties. Its compact and symmetrical structure allows for efficient vaporization and mixing with air, promoting thorough combustion. This results in a higher energy release during combustion, leading to increased power output in engines.

Furthermore, the branching of the carbon chain in 2,2-dimethylbutane reduces the likelihood of carbon chain reactions, minimizing the formation of harmful emissions such as carbon monoxide and nitrogen oxides.

In comparison to other isomers of C5H12, such as n-pentane and iso-pentane, 2,2-dimethylbutane offers superior performance as a fuel due to its higher octane rating and improved combustion characteristics. These properties make it an ideal choice for applications where efficient and clean combustion is crucial, such as in automobile engines.

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A company plans to construct a wastewater treatment plant to treat and dispose of its wastewater. Construction of a wastewater treatment plant is expected to cost $3 million and an operating cost of $

Answers

Constructing a wastewater treatment plant is expected to cost $3 million, with additional operating costs.

Constructing a wastewater treatment plant involves significant upfront costs, estimated at $3 million. This includes expenses related to site preparation, infrastructure development, construction of treatment units, installation of necessary equipment, and other associated costs.

The high cost is attributed to the complex nature of wastewater treatment facilities, which require specialized engineering and technology to ensure effective treatment and disposal of wastewater.

In addition to the construction cost, operating the wastewater treatment plant incurs ongoing expenses. These operating costs encompass various aspects such as energy consumption, maintenance and repairs, labor wages, chemicals for treatment processes, and administrative expenses.

The specific operating costs can vary depending on the size of the plant, the treatment technologies employed, the volume and characteristics of the wastewater being treated, and regulatory requirements.

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Use the References to access important values if needed for this question. The following information is given for aluminum, Al, at 1 atm: Bolling point =2467.0∘C Heat of vaporization =2.52×10^3cal/g Melting point =660.0 ∘C Heat of fusion =95.2cal/g How many kcal of energy must be removed from a 37.7 g sample of liquid aluminum in order to freeze it at its normal melting point of 660.0 ∘C ? Energy removed =

Answers

3.584 kcal of energy must be removed from the 37.7 g sample of liquid aluminum to freeze it at its normal melting point of 660.0 °C.

The amount of energy needed to transform a substance from a solid to a liquid at its melting point is known as the heat of fusion.

In this case, the heat of fusion for aluminum is given as 95.2 cal/g.

and, the mass of the sample is 37.7 g.

Now, use the formula:

Energy removed = Heat of fusion × Mass

                            = 95.2 cal/g × 37.7 g

                            = 3584.24 cal

Since 1 kcal (kilocalorie) is equal to 1000 cal.

So, Energy removed = 3584.24 cal ÷ 1000

                                  = 3.584 kcal

So, 3.584 kcal of energy must be removed.

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pls answer asap pls i will upvote
A 6-m simply supported beam with an overhang of 1.5 m carries a uniform distributed load of 24 kN/m. Calculate the maximum positive moment (kN-m) within the beam.

Answers

The maximum positive moment within the beam is 18 kN-m within the span and 54 kN-m at the end of the overhang.

To calculate the maximum positive moment within the beam, we need to consider two sections: one within the span and one at the end of the overhang.

Within the span:

The maximum positive moment within the span occurs at the support (simply supported beam). The formula to calculate the maximum moment at the support due to a uniform distributed load is:

M_max = (wL^2)/8

Where:

M_max is the maximum moment

w is the distributed load per unit length (24 kN/m)

L is the length of the span (6 m)

Plugging in the values:

M_max = (24 kN/m * 6 m^2) / 8

M_max = 144 kN-m / 8

M_max = 18 kN-m

Therefore, the maximum positive moment within the span is 18 kN-m.

At the end of the overhang:

The maximum positive moment occurs at the end of the overhang due to the concentrated load from the overhang. The formula to calculate the maximum moment at the end of the overhang due to a concentrated load is:

M_max = P * a

Where:

M_max is the maximum moment

P is the concentrated load (24 kN/m * 1.5 m = 36 kN)

a is the distance from the support to the point of maximum moment (1.5 m)

Plugging in the values:

M_max = 36 kN * 1.5 m

M_max = 54 kN-m

Therefore, the maximum positive moment at the end of the overhang is 54 kN-m. In summary, the maximum positive moment within the beam is 18 kN-m within the span and 54 kN-m at the end of the overhang.

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The first order bright fringe is located at 10 mm from the central bright. Which of the following is/are true about the situation? A. The width of the bright fringe is 10 cm. B. The distance between consecutive bright fringe is 10 cm. C. The distance between the light source and the screen is 10 cm. 23. In Young's double slits experiment, A. the slits refract light. B. the wavelength of the light source increases and decreases alternatively. C. the width of the central bright is inversely proportional to the distance between slits. 24. A beam of monochromatic light is diffracted by a slit of width 0.45 mm. The diffraction pattern forms on a wall 1.5 m beyond the slit. The width of the central maximum is 2.0 mm. Which of the following is/are TRUE about the experiment? A. The wavelength of the light is 600 nm. B. The width of each bright fringe is 2.0 mm C. The distance between dark fringes is 1.0 mm Devi conducted a light diffraction experiment using a red light. She got the diffraction pattern as shown in FIGURE 7. The distance between indicated dark fringes was measured as 2.5 mm. Which of the following statement is/are TRUE about the experiment? A. She used diffraction grating to get the pattern. B. The width of the central maximum was 2.5 mm. C. The distance between consecutive bright fringes was 2.5 mm. Project ObjectiveThe objective of this project is to use an integrated development environment (IDE) such as NetBeans or Eclipse to develop a java program to practice various object-oriented development concepts including objects and classes, inheritance, polymorphism, interfaces, and different types of Java collection objects.Project Methodology Students shall form groups of two (2) students to analyze the specifications of the problem statement to develop a Java program that provides a candidate solution of the presented problem. Submission of the project shall be via YU LMS no later than 19-05-2022 (late submissions are accepted with a penalty of 10% for each day after the deadline).Problem StatementYour team is appointed to develop a Java program that handles part of the academic tasks at Al Yamamah University, as follows: The program deals with students records in three different faculties: college of engineering and architecture (COEA), college of business administration (COBA), college of law (COL), and deanship of students affairs. COEA consists of four departments (architecture, network engineering and security, software engineering, and industrial engineering) COBA consists of five departments (accounting, finance, management, marketing, and management information systems). COBA has one graduate level program (i.e., master) in accounting. COL consist of two departments (public law and private law). COL has one graduate level program (i.e., master) in private law. A student record shall contain student_id: {YU0000}, student name, date of birth, address, date of admission, telephone number, email, major, list of registered courses, status: {active, on-leave} and GPA. The program shall provide methods to manipulate all the students record attributes (i.e., getters and setters, add/delete courses). Address shall be treated as class that contains (id, address title, postal code) The deanship of students affairs shall be able to retrieve the students records of top students (i.e., students with the highest GPA in each department). You need to think of a smart way to retrieve the top students in each department (for example, interface). The security department shall be able to retrieve whether a student is active or not. You need to create a class to hold courses that a student can register (use an appropriate class-class relationship). You cannot create direct instances from the faculties directly. You need to track the number of students at the course, department, faculty, and university levels. You need to test your program by creating at least three (3) instances (students) in each department. Suppose that we are given the following information about an causal LTI system and system impulse response h[n]:1.The system is causal.2.The system function H(z) is rational and has only two poles, at z=1/4 and z=1.3.If input x[n]=(-1)n, then output y[n]=0.4.h[infty]=1 and h[0]=3/2.Please find H(z). Methanol flows in a pipe 25 mm in diameter and 10 m long. Methanol enters the tube at 23C at a mass flow rate of 3.6 kg/s. If the mean outlet temperature is 27 C and the surface temperature of the tube is constant. Determine the surface temperature of the tube. 1. Write a balanced chemical equation for the acid dissociation reaction of acetic acid with water. Then write a correct equilibrium constant expression, Ka , for this reaction and list the known Ka value (cite the source from which you obtained the value). Type answer here. } The following questions refer to Part 1 of this experiment in which you diluted a stock acetic acid solution with water. 2. Three two-port circuits, namely Circuit 1 , Circuit 2 , and Circuit 3 , are interconnected in cascade. The input port of Circuit 1 is driven by a 6 A de current source in parallel with an internal resistance of 30. The output port of Circuit 3 drives an adjustable load impedance ZL. The corresponding parameters for Circuit 1, Circuit 2, and Circuit 3, are as follows. Circuit 1: G=[0.167S0.50.51.25] Circuit 2: Circuit 3: Y=[2001068001064010640106]S Z=[335340003100310000] a) Find the a-parameters of the cascaded network. b) Find ZL such that maximum power is transferred from the cascaded network to ZL. c) Evaluate the maximum power that the cascaded two-port network can deliver to ZI.