The following molar compositions were recorded for the vapour and liquid phases of a feed mixture under equilibrium conditions.
Vapour: 29% water, 20% butanol, 29% acetone, 22% ethanol
Liquid: 31% water, 40% butanol, 11% acetone, 18% ethanol
It is desired to perform a separation to create two products: one rich in water and butanol and the other rich in acetone and ethanol.
Identify the light and heavy keys for this separation and explain why.

Answers

Answer 1

The light and heavy keys in a separation process refer to the components that have a higher and lower volatility, respectively. In this case, the light keys are water and butanol, while the heavy keys are acetone and ethanol.

To determine the light and heavy keys, we need to compare the compositions of the vapor and liquid phases under equilibrium conditions. The components with higher concentrations in the vapor phase compared to the liquid phase are considered light keys. On the other hand, the components with higher concentrations in the liquid phase compared to the vapor phase are considered heavy keys.

Looking at the given molar compositions, we can observe that the vapor phase has a higher concentration of water and butanol compared to the liquid phase. Therefore, water and butanol are the light keys in this separation.

Similarly, the liquid phase has a higher concentration of acetone and ethanol compared to the vapor phase. Hence, acetone and ethanol are the heavy keys in this separation.

The reason for water and butanol being the light keys is that they have a higher volatility and tend to vaporize more easily compared to acetone and ethanol. On the other hand, acetone and ethanol have lower volatilities and tend to remain in the liquid phase.

This information is important in the separation process because it helps determine the appropriate conditions, such as temperature and pressure, to selectively separate the desired components. By understanding the light and heavy keys, we can design a separation process that maximizes the separation of water and butanol from acetone and ethanol, producing two products that are rich in the desired components.

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Related Questions

What makes a projectile fly farther? Consider the following projectiles and indicate which do you think would fly farther. Explain each choice briefly. Marshmallow or foil ball? A pencil eraser or a Ping-Pong ball? A pea or a golf ball?

Answers

Marshmallows, ping pong balls, and golf balls are more aerodynamic and denser than foil balls, erasers, and peas, respectively. Therefore, they can fly farther and more accurately.

Projectiles are objects that are thrown or shot and are propelled through the air. The distance a projectile travels is determined by several factors, including its shape, weight, and speed.To fly farther, the projectiles must be streamlined and lightweight to reduce air resistance and increase speed. In general, the larger the projectile, the more air resistance it encounters, which reduces its speed and distance. Therefore, to fly farther, the projectile must have a smaller surface area and be streamlined.

A marshmallow would fly farther than a foil ball. When a marshmallow is compressed, it becomes denser and more aerodynamic. When thrown, the marshmallow will fly farther because of its density and shape. In contrast, a foil ball is light, so it has a low weight-to-surface-area ratio. It will not travel as far as a denser marshmallow. A pencil eraser or a Ping-Pong ball? A ping pong ball will fly farther than a pencil eraser. When it comes to the weight-to-surface-area ratio, ping-pong balls have a smaller surface area and are lightweight. When thrown, they travel at high speeds and are not affected by air resistance, which allows them to travel farther. On the other hand, erasers are light and have a large surface area, making them susceptible to air resistance. They do not travel as far as ping pong balls. A pea or a golf ball? A golf ball will travel farther than a pea. Golf balls are denser and more aerodynamic than peas. As a result, they have a higher weight-to-surface-area ratio and can travel farther. They can be thrown at high speeds without losing their velocity or accuracy, making them ideal for long-distance throwing.

In general, to fly farther, projectiles should be streamlined and lightweight. Marshmallows, ping pong balls, and golf balls are more aerodynamic and denser than foil balls, erasers, and peas, respectively. Therefore, they can fly farther and more accurately.

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When Inflatable Baby Car Seats Incorporated announced that it had greatly overestimated demand for its product, the price of its stock fell by 40%. A few weeks later, when the company was forced to recall the seats after heat in cars reportedly caused them to deflate, the stock fell by another 60% (from the new lower price). If the price of the stock is now $2.40, what was the stock selling for originally?

Answers

If the price of the stock is now $2.40 then the original stock price was $10.

In order to determine the original stock price, we need to work backwards from the current price of $2.40 and the percentage drops of 40% and 60%.

Let's assume that the original stock price was "x".

Then, we know that the stock price fell by 40% when the company overestimated demand.

This means that the new stock price was 60% of the original price (100% - 40% = 60%).

So, after the first drop, the stock price was:0.6x

Next, the company was forced to recall the seats due to them deflating in heat.

This caused the stock price to drop by another 60%, but from the new lower price of 0.6x.

This means that the new stock price was 40% of the previous price (100% - 60% = 40%).

So, after the second drop, the stock price was:0.4(0.6x) = 0.24x

Finally, we are given that the current stock price is $2.40.

Setting this equal to the second drop price, we can solve for "x":0.24x = 2.40x = $10

Therefore, the original stock price was $10.

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. A public transport system must be designed. There are several alternatives: a. Power: electric, gasoline, diesel, gas turbine. b. Medium: underground, ground, overhead. c. Support: rail, tires. Use morphological analysis (problem-solving) technique, organize and discuss the design alternatives. 2. Develop several design concepts for a domestic door security device. 3. Develop a morphological analysis for a mosquito killer device.

Answers

The morphological analysis technique helps design public transport systems considering power, medium, and support. Alternatives include electric, gasoline, diesel, and gas turbine vehicles, as well as domestic door security devices like biometric access control, motion detectors, smart locks, and door stop alarms. Mosquito killer devices can be created using ultraviolet light, heat, or chemicals, with various designs offering eco-friendliness, convenience, or cost-effective solutions.

1. Design of a Public Transport System Using the morphological analysis (problem-solving) technique, the design of a public transport system should take into account three different factors which include; power, medium, and support. These factors are broken down into specific alternatives, which include; Power: electric, gasoline, diesel, gas turbine Medium: underground, ground, overhead Support: rail, tires The electric-powered public transport system on overhead lines with tire support would be one of the ideal alternatives.

The electric-powered vehicles offer a clean energy source, which reduces environmental pollution and provides a sustainable option. The overhead lines offer a less expensive option than underground installations, and tire support is both durable and practical.The diesel-powered public transport system that runs on rail support on the ground is also a feasible alternative. This option provides more versatility as it can be used in both rural and urban settings and can work in any weather condition.

2. Design Concepts for a Domestic Door Security Device Several design concepts can be developed for a domestic door security device, which include; A biometric access control device, which can read fingerprints and can only allow authorized individuals to enter the house. This is a convenient option as there are no keys to be lost or stolen.A security camera with a motion detector. This device will alert the homeowner if someone approaches the door, and they can view the person using the camera.

A smart lock, which can be operated via a mobile device. This lock uses Bluetooth or Wi-Fi technology, which makes it easy to control the lock even when away from home.A door stop alarm, which is a cost-effective security device that emits a loud noise when the door is opened. This option is ideal for renters or those who want a portable security solution.

3. Morphological Analysis for a Mosquito Killer Device To create a mosquito killer device using the morphological analysis technique, the following factors should be considered;

The mode of operation The power source The design The mosquito killer device could operate using ultraviolet light, heat, or chemicals. The device could use batteries, solar panels, or a power cord. The design of the device could be a lamp, a zapper, or a trap. By combining these factors, the following concepts could be created;A solar-powered ultraviolet lamp mosquito killer A battery-operated heat zapper mosquito killerA chemical mosquito trap that uses a power cord All these concepts would have unique benefits, which include being eco-friendly, convenient, or cost-effective.

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Aqueous hydrochloric acid (HCl) will react with solid sodium hydroxide (NaOH) to produce aqueous sodum chloride (NaCl) and liquid water ( H2O). Suppose 31.0 g of hydrochloric acid is mixed with 47.9 of sodium hydroxide. Calculate the minimum mess of hydrochioric acid that could be left over by the chemical reaction. Round your answer to 2 significant digits.

Answers

The given balanced chemical equation for the reaction is: `HCl + NaOH → NaCl + H2O`The molar mass of NaOH is 40 g/mol and the molar mass of HCl is 36.5 g/mol.

The balanced chemical equation shows that 1 mole of HCl reacts with 1 mole of NaOH. This means that to completely react with 1 mole of NaOH, 1 mole of HCl is needed.According to the question, 31.0 g of HCl and 47.9 g of NaOH are mixed. To find out the minimum mass of HCl left over, we need to first find out which of the reactants is limiting. To do this, we will have to calculate the number of moles of each reactant and compare their mole ratios.`Number of moles of HCl = mass / molar mass`= 31.0 / 36.5 = 0.849 moles.

From the balanced chemical equation, 1 mole of HCl reacts with 1 mole of NaOH. This means that 0.849 moles of HCl reacts with 0.849 moles of NaOH. But we have 1.20 moles of NaOH which is more than the required amount. This means that NaOH is the limiting reactant and all the HCl will react with NaOH leaving some NaOH unreacted.Now, we need to find out the amount of NaOH that reacted. This can be done by multiplying the number of moles of NaOH that reacted with its molar mass.`Mass of NaOH that reacted = number of moles of NaOH × molar mass of NaOH`= 0.849 × 40 = 33.96 g

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Describe spatial interpolation by inverse distance weighting
method, its equation, parameters and properties.

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Inverse distance weighting (IDW) spatial interpolation is a technique for estimating values at unknown places from nearby known values. The equation for IDW is: Z(x) = Σ [wi * Zi] / Σ wi. The power parameter (p) and the search radius (r) are among the IDW's parameters.

Spatial interpolation by inverse distance weighting (IDW) is a method used to estimate values at unknown locations based on nearby known values. It is commonly used in geostatistics and spatial analysis to fill in missing or unobserved data points in a continuous surface.


The equation for IDW is as follows:
Z(x) = Σ [wi * Zi] / Σ wi
In this equation,

Z(x) represents the estimated value at location x,

Zi represents the known value at location i, and

wi represents the weight assigned to each known value based on its distance from location x.

The parameters of IDW include the power parameter (p) and the search radius (r).

The power parameter determines the influence of each known value on the estimated value at the unknown location. A higher power value gives more weight to the closest points, while a lower power value spreads the influence of nearby points more evenly.

The search radius defines the distance within which neighboring points are considered for interpolation.

IDW has several properties that are important to consider:
1. Inverse relationship: IDW assumes an inverse relationship between distance and influence. Closer points have a greater influence on the estimated value than farther points.
2. Deterministic: IDW provides a deterministic estimate at each unknown location based on the known values within the search radius.
3. Smoothing effect: IDW tends to smooth out abrupt changes in the data. This can be an advantage when dealing with noisy or inconsistent data, but it can also result in the loss of detailed information.
4. Sensitivity to parameter selection: The choice of power parameter and search radius can significantly impact the results of IDW. It is important to select appropriate values based on the characteristics of the data and the desired outcome.

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i want an article about (the effect of particle size on liquid
and plastic limit )
you can send me the link or the name of the article
can you find an article for me

Answers

The Effect of Particle Size on Liquid and Plastic Limit

How does particle size impact the liquid and plastic limit of soils?

The particle size of soil plays a significant role in determining its liquid and plastic limits, which are important parameters in geotechnical engineering.

Liquid limit refers to the moisture content at which a soil transitions from a liquid-like state to a plastic state. Plastic limit, on the other hand, is the moisture content at which a soil can no longer be molded without cracking.

The behavior of soils in the liquid and plastic states has implications for various engineering applications, such as foundation design and slope stability analysis.

The effect of particle size on liquid and plastic limits can be attributed to the inherent properties of different soil types. Fine-grained soils, such as clays, typically have smaller particle sizes compared to coarse-grained soils like sands and gravels.

In fine-grained soils, smaller particle sizes result in a higher surface area and stronger inter-particle forces.

This leads to greater water absorption and a higher plasticity index, resulting in higher liquid and plastic limits. On the other hand, coarse-grained soils with larger particle sizes have lower surface area and weaker inter-particle forces, resulting in lower liquid and plastic limits.

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What is the verte of the parábola in the graph

Answers

Answer:

(-3, -4)

Step-by-step explanation:

The parabola's Vertex is the graph's lowest or highest point.

Looking at the graph, the vertex is located at (-3,-4)

A bookmark has a perimeter of 54 centimeters and an area of 152 square centimeters. What are the dimensions of the bookmark?

Answers

The bookmark has dimensions of 19 cm by 8 cm.

Given, the perimeter of a bookmark = 54 cmThe area of a bookmark = 152 sq cm

Let's assume the length of the bookmark as 'l' and the breadth as 'b'.Since, Perimeter of a rectangle = 2(l + b)Here, Perimeter = 54 cm2(l + b) = 54l + b = 54/2 - Equation 1 (Dividing by 2 into both sides)l + b

= 27 - Equation 2Area of a rectangle

= length x breadth152 = l × bl × b

= 152 - Equation 3l × b = 152

From Equation 2, b = 27 - substitute the value of b in Equation 3.l × (27 - l) = 15227l - l² - 152 = 0l² - 27l + 152 = 0Factorizing, we get (l - 8) (l - 19) = 0l = 8 or 19If l = 8 cm, then the breadth of the rectangle will be 19 cm. As the product of length and breadth should be 152 sq cm. But in this case, it's not equal to 152 sq cm.

Hence, the length of the rectangle is 19 cm, and the breadth is 8 cm. Thus, the dimensions of the bookmark are 19 cm x 8 cm.  

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Solve For X (Please show work)

Answers

The value of x in the given scenario is 17, we can use the properties of angles in a straight line and a right angle.

First, let's consider the straight line ABC. The sum of the angles on a straight line is always 180 degrees. Therefore, we have:

Angle ABD + Angle BDE + Angle EBC = 180 degrees

Substituting the given angle measures, we have:

(2x + 3) + 90 degrees + (3x + 2) = 180 degrees

Combining like terms:

5x + 95 = 180

To solve for x, we subtract 95 from both sides:

5x = 180 - 95

5x = 85

Dividing both sides by 5, we find:

x = 17

Hence, the value of x is 17.

It's important to note that in geometry problems, it's common to solve for the variable x using various angle relationships, such as supplementary angles, complementary angles, or angles on a straight line.

The specific values given in the problem determine the equation that needs to be solved. In this case, by considering the angles in a straight line, we were able to set up an equation and solve for x.

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Note the question is

ABC is a straight line, angle ABD is 2x+3, angle DBE is 90, and angle CBE is 3x+2. Then find the angle x.

What is the pH at the equivalence point in the titration of a
28.9 mL sample of a 0.326 M
aqueous nitrous acid solution with a
0.431 M aqueous barium hydroxide
solution?
pH =

Answers

The pH at the equivalence point in the titration of a 28.9 mL sample of a 0.326 M aqueous nitrous acid solution with a 0.431 M aqueous barium hydroxide solution is expected to be greater than 7, indicating a basic solution. The exact pH value will depend on the extent of hydrolysis of the nitrite ion but is likely to be around 8-10.

To determine the pH at the equivalence point in the titration of a weak acid (nitrous acid, HNO2) with a strong base (barium hydroxide, Ba(OH)2), we need to identify the nature of the resulting solution.

At the equivalence point, the moles of acid will be equal to the moles of base. In this case, 28.9 mL of a 0.326 M nitrous acid solution is titrated with a 0.431 M barium hydroxide solution. Since the reaction between nitrous acid and barium hydroxide is 1:2, we know that the moles of barium hydroxide used will be twice the moles of nitrous acid.

To calculate the moles of nitrous acid, we multiply the volume (in L) by the concentration (in mol/L):

moles of HNO2 = 0.0289 L × 0.326 mol/L = 0.00942 mol

Since the reaction is 1:2, the moles of barium hydoxide used will be:

moles of Ba(OH)2 = 2 × 0.00942 mol = 0.0188 mol

Now, we need to determine the volume of the barium hydroxide solution required to reach the equivalence point. The concentration of barium hydroxide is given as 0.431 M. Using the formula:

moles = concentration × volume

we can rearrange the formula to solve for volume:

volume = moles / concentration

volume of Ba(OH)2 = 0.0188 mol / 0.431 mol/L = 0.0436 L = 43.6 mL

Therefore, at the equivalence point, the total volume of the solution will be 43.6 mL.

To calculate the pH at the equivalence point, we need to consider the nature of the resulting solution. At the equivalence point of a strong base and a weak acid, the solution will be basic. Barium hydroxide is a strong base, and since it is in excess, the resulting solution will contain the conjugate base of the weak acid.

The conjugate base of nitrous acid is nitrite ion (NO2-). In an aqueous solution, nitrite ion can hydrolyze to produce hydroxide ions (OH-), leading to an increase in pH.

Therefore, at the equivalence point, the pH will be greater than 7, indicating a basic solution. The exact pH value will depend on the extent of hydrolysis of the nitrite ion, but it is likely to be around 8-10.

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4) Determine the force in members CD, HD, and HG of the cantilevered truss and state if the members are in tension or compression 3 ft H 4 ft -4 ft 1500 lb -4 ft-

Answers

The force in members CD, HD, and HG of the cantilevered truss can be determined by analyzing the forces and equilibrium conditions. Member CD is under compression, while members HD and HG are under tension.

1. Start by analyzing the forces at the supports and the applied load:

A downward force of 1500 lb is applied at a point 3 ft from the left support.There is a reaction force at the left support (vertical component) and a reaction moment at the right support.

2. Determine the reaction forces:

The vertical component of the reaction force at the left support must balance the applied load.The reaction moment at the right support must counteract the moment caused by the applied load.

3. Analyze member CD:

Member CD is in compression since it is being pushed inward.The force in member CD can be found by considering the equilibrium of forces at joint C.

4. Analyze members HD and HG:

Members HD and HG are in tension since they are being pulled outward.The forces in members HD and HG can be found by considering the equilibrium of forces at joint H.

5. Apply the equilibrium conditions and solve the equations:

Sum the forces in the x and y directions at joints C and H to obtain the necessary equations.Solve the equations simultaneously to find the forces in members CD, HD, and HG.

After analyzing the forces and equilibrium conditions of the cantilevered truss, we determine that member CD is under compression, while members HD and HG are under tension. By considering the equilibrium of forces at the respective joints, the specific forces in these members can be calculated.

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Lumps of impure copper typically contain impurities such as silver, gold, cobalt, nickel, and zinc. Cobalt, nickel, and zinc are oxidized from the copper lump and exist as ions in the electrolyte. Silver and gold are not oxidized and form part of an insoluble sludge at the base of the cell. Why is it essential that silver and gold are not present as cations in the electrolyte?

Answers

The reason it is essential that silver and gold are not present as cations in the electrolyte is because they do not readily undergo oxidation. In the process of electrolysis, the impure copper lump is used as the anode, which is the positive electrode.

As electricity is passed through the electrolyte, copper ions from the lump are oxidized and dissolved into the electrolyte solution. This allows for the purification of the copper. However, if silver and gold were present as cations in the electrolyte, they would also undergo oxidation and dissolve into the solution.

This would result in the loss of these valuable metals and reduce the purity of the copper. To prevent this from happening, silver and gold are intentionally not oxidized in the electrolyte. Instead, they form an insoluble sludge at the base of the cell. This sludge can be easily separated from the purified copper, allowing for the recovery of these precious metals.

In summary, it is essential that silver and gold are not present as cations in the electrolyte because their oxidation would lead to their loss and a decrease in the purity of the copper. By forming an insoluble sludge, silver and gold can be separated from the purified copper and recovered.

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Need help!! I really don’t understand this at all and need help fast!!

Answers

The spheres are not congruent as they have different radius lengths. Thus, option B is correct.

Congruent spheres are two hemispheres that have the same radius and identical shapes. Congruent spheres exhibit equal measurements for radius, diameter, circumference, and volume when compared to one another.

The first hemisphere has a diameter of 12 in. We know that the radius is half the length of the diameter. Therefore, the length of the radius is 6 in.

The second hemisphere has a radius of 7 in.

Therefore, the radius of both spheres are different in length and hence they are not congruent.

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During a flu epidemic, the total number of students on a state university campus who had contracted influenza by the xth day was given by N(r) 8000 1+199e-1 (20) (a) How many students had influenza initially? students (b) Derive an expression for the rate at which the disease was being spread and prove that the function N is increasing on the interval (0,0). Is the function increasing, decreasing, or a constant on the interval (0, [infinity])? increasing decreasing constant

Answers

(a) The initial number of students who had influenza on the state university campus was 200 students.

(b) The expression for the rate at which the disease was being spread is [tex]199e^{(-0.05r)[/tex], and the function N is increasing on the interval (0,∞).

(a) To find the initial number of students who had influenza, we need to determine N(0) in the given expression N(r) = 8000(1+19[tex]9e^{(-0.05r))[/tex]. Plugging in r = 0, we get:

N(0) = 8000(1+1[tex]99e^{(-0.05(0)))[/tex]

N(0) = 8000(1+1[tex]99e^0)[/tex]

N(0) = 8000(1+199)

N(0) = 200 * 8000

N(0) = 160,000

Therefore, the initial number of students who had influenza is 200.

(b) To derive the expression for the rate at which the disease was being spread, we differentiate N(r) with respect to r:

dN/dr = 8000 * (0 + 199[tex]e^{(-0.05r[/tex]) * (-0.05))

dN/dr = -8000 * 0.05 * 19[tex]9e^{(-0.05r[/tex])

dN/dr = -8000 * 9.9[tex]5e^{(-0.05r[/tex])

dN/dr = -7960[tex]0e^{(-0.05r[/tex])

To determine if the function N is increasing or decreasing, we need to analyze the sign of dN/dr on the given intervals.

On the interval (0, ∞):

For any positive value of r, [tex]e^{(-0.05r[/tex]) is also positive. Therefore, the sign of dN/dr depends on the coefficient -79600. Since -79600 is negative, dN/dr is negative. This means that the function N is decreasing on the interval (0, ∞).

Therefore, the function N is increasing on the interval (0, 0) and decreasing on the interval (0, ∞).

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QUESTION 5: CALCULATED FORMULA Use the following data to calculate the Reynolds number, Re Diameter, D=29mm Density of water (kg/m³)=998 Kinematic viscosity of water-1.004x10-6m²/s Volume of water collected (liters) =11 Time to collect water volume(s)=70 Write your answer up to two decimal i.e. 1234.11 Given Answer:6,845.61 6, Correct Answer: 871.840 ± 5%

Answers

The Reynolds number (Re) is 871.8406. Rounded up to two decimal places, the answer is 871.84.

The Reynolds number (Re) is calculated using the following formula:

Re = (ρVD) / μ

where ρ is the density of water,

V is the velocity of the fluid,

D is the diameter of the pipe, and

μ is the viscosity of the fluid.

Using the given data,

Diameter, D = 29 mm

Density of water, ρ = 998 kg/m³

Kinematic viscosity of water, μ = 1.004 × [tex]10^{-6[/tex] m²/s

Volume of water collected, V = 11 liters

Time to collect water volume, t = 70 s

Conversion of liters to cubic meters; 1 liter = 0.001 cubic meters

11 liters = 11 × 0.001

= 0.011 cubic meters

The volume flow rate is given by

Q = V/tQ

= 0.011/70Q

= 0.00015714 m³/s

Substitute the values in the formula

Re = (ρVD) / μ

Re = (998 × 0.00015714 × 0.029) / (1.004 × [tex]10^{-6[/tex])

Re = 871.8406

Therefore, the Reynolds number (Re) is 871.8406. Rounded up to two decimal places, the answer is 871.84.

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catchment has a total area of 50,000 ha. The annual rainfall of the catchment is 1272 mm and the average discharge at the outlet of the catchment is 10 m³/s. In a six-month period, the total surface water storage in the catchment is found to decrease by 24 Mm³. During the same period, the average monthly evapotranspiration is estimated to be 25 mm. Determine the average infiltration rate in mm/day. Ignore other losses.

Answers

The catchment has a 50,000 ha area, with an average annual rainfall of 1272 mm and a discharge of 10 m³/s. Over a six-month period, the total surface water storage decreased by 24 Mm³. The average monthly evapotranspiration was 25 mm. The average infiltration rate is 6.0135 mm/day.

Catchment's area is 50,000 ha, its average annual rainfall is 1272 mm and the average discharge at its outlet is 10 m³/s. During a six-month period, the total surface water storage in the catchment decreased by 24 Mm³. The average monthly evapotranspiration during the same period was estimated at 25 mm. The average infiltration rate in mm/day is what we need to calculate.

CalculationTotal storage of water at the beginning of the period (So) = 0 m³Total surface water storage at the end of the period (Se) = -24 Mm³

Area of catchment = 50,000

ha = 500 km²

Length of period = 6 months = 182.5 days

The decrease in storage of surface water is given by the following equation:

(Se - So) = Precipitation - Evapotranspiration - Discharge - Infiltration

Where

So = initial storage and

Se = final storage

Also, discharge, infiltration and evapotranspiration are in volume per unit time, so to determine their value for the period of interest, we must multiply them by the period's length.

Infiltration is the only variable that we don't know. We can use the equation above to calculate it. By making some substitutions, we get:

Infiltration = Precipitation - Evapotranspiration - Discharge - (Se - So)

Infiltration = (1272/1000 mm/day) * 182.5 days - (25 mm/day) * 182.5 days - (10 m³/s) * 86,400 s/day - (-24,000,000 m³) / (500,000 * 182.5)

Infiltration = 6.0135 mm/day

The average infiltration rate in mm/day is 6.0135.

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Given the function of f(x)=e^xsinx at x = 0.5 and h = 0.25 What is the value of X₁-1? a. 0.25 b. 0.5 c. 0.75 d. 01

Answers

The value of X₁-1 for the function f(x) = e^xsin(x) at x = 0.5 and h = 0.25 is 0.75.

To find the value of X₁-1, we need to evaluate the function f(x) = e^xsin(x) at x = 0.5 and h = 0.25.

X₁-1 represents the value of the function at x = 0.5 - h, where h is given as 0.25.

Substituting x = 0.5 - h into the function, we get f(0.5 - h) = e^(0.5 - h)sin(0.5 - h).

Since h = 0.25, we can rewrite this as f(0.25) = e^(0.5 - 0.25)sin(0.5 - 0.25).

Simplifying further, f(0.25) = e^0.25sin(0.25).

Therefore, the value of X₁-1 is 0.75.

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The density of a gas depends on its molar mass. Under the same conditions, gases with molar masses less than air will float, while those with molar masses greater than the molar mass of air will sink in air. Air has the equivalent of a molar mass of 29 g/mole. How do you think that value was obtained?

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The average molar mass of air is approximately 28.56 g/mol. However, this value is often rounded to 29 g/mol for simplicity.

The molar mass of air, which is approximately 29 g/mol, was obtained by calculating the average molar mass of the gases present in the atmosphere. The Earth's atmosphere is composed of various gases such as nitrogen (N2), oxygen (O2), carbon dioxide (CO2), and trace amounts of other gases.

To determine the molar mass of air, we consider the relative abundance of each gas and its molar mass. For example, nitrogen gas (N2) makes up about 78% of the atmosphere, while oxygen gas (O2) accounts for about 21%. The remaining gases, including carbon dioxide and others, have much lower concentrations.

We can calculate the average molar mass of air by multiplying the molar mass of each gas by its respective abundance, then summing these values. For instance, nitrogen has a molar mass of approximately 28 g/mol, while oxygen has a molar mass of around 32 g/mol. Multiplying the molar mass of nitrogen by its abundance (0.78) and the molar mass of oxygen by its abundance (0.21), we get:

(28 g/mol * 0.78) + (32 g/mol * 0.21) = 21.84 g/mol + 6.72 g/mol = 28.56 g/mol

Therefore, the average molar mass of air is approximately 28.56 g/mol. However, this value is often rounded to 29 g/mol for simplicity.

It's important to note that the molar mass of air can vary slightly depending on factors such as location, altitude, and atmospheric conditions. Nevertheless, 29 g/mol is a commonly accepted value used for calculations involving the density of gases.

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Two clay specimens A and B, of thickness 2cm and 3 cm, has equilibrium voids ratios 0.65 and 0.70 respectively under a pressure of 200kN/m². If the equilibrium voids. ratio of the two soils reduced to 0.48 to 0.60 respectively when the pressure was increased to 400kN/m², find the ratio of coefficients of permeability of the two specimens. The time required by the specimen A to reach 40 degree of consolidation is one fourth of that required by specimen B for reaching 40% degree of consolidation.

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Equilibrium voids ratio It refers to the ratio of the volume of voids to the volume of solids when the soil is subjected to a stress, and there is no further expulsion or absorption of water from it. In other words, it's the voids' quantity in a soil sample that has been drained to an equilibrium state under a particular load.

Coefficient of Permeability Permeability coefficient is the capacity of a porous material to allow the flow of a fluid. The coefficient of permeability is a function of the nature of the material and the fluid flowing through it. In soil mechanics, it is often referred to as hydraulic conductivity. Consolidation Consolidation is the method by which soil settles when it is subjected to a load. The process takes place in three stages: primary, secondary, and tertiary. During consolidation, voids in the soil decrease, and the soil mass becomes denser. Two clay specimens, A and B, of thickness 2cm and 3 cm, have equilibrium voids ratios of 0.65 and 0.70, respectively, under a pressure of 200kN/m².

If the equilibrium voids ratio of the two soils decreased to 0.48 to 0.60, respectively, when the pressure was increased to 400kN/m², the ratio of coefficients of permeability of the two specimens is given by:The equation for the ratio of coefficients of permeability of two specimens is; we get;

`K_A/K_B=((t_{50B}/t_{50A})((e_{0,B}-e_{av})/(e_{0,A}-e_{av})))^2`

Now, we know that the time required by specimen A to reach 40% degree of consolidation is one fourth of that required by specimen B for reaching 40% degree of consolidation.Therefore,`t_{50B}=4*t_{50A}`

Substituting the values in the equation, we get;`K_A/K_B=((4)(0.70 - 0.59)/(0.65 - 0.59))^2 = 2.07`

Hence, the ratio of coefficients of permeability of the two specimens is 2.07.

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Corrosion of steel reinforcing rebar in concrete structures can be induced by, anodic polarisation current deicing salts cathodic polarisation current corrosion inhibitors

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The corrosion of steel reinforcing rebar in concrete structures can be induced by various factors. One such factor is the presence of deicing salts. These salts are commonly used on roads and sidewalks during winter to melt ice and snow. However, when these salts come into contact with the concrete, they can penetrate the concrete and reach the reinforcing steel. The presence of chloride ions in the salts can initiate corrosion by breaking down the passive layer on the steel surface, leading to the formation of rust.

Another factor that can induce corrosion is anodic polarization current. This refers to the flow of electric current from the rebar to the surrounding concrete. When the rebar is exposed to moisture and oxygen, an electrochemical reaction occurs, causing the steel to corrode. Anodic polarization current can increase the rate of corrosion by providing a pathway for the movement of electrons.

On the other hand, cathodic polarization current can help protect the rebar from corrosion. This refers to the flow of electric current from the concrete to the rebar. By applying a protective layer of a cathodic material, such as zinc, to the rebar, the zinc acts as a sacrificial anode and attracts the corrosion reactions away from the steel. This process is known as cathodic protection and is commonly used in structures that are prone to corrosion.

Corrosion inhibitors are substances that can be added to concrete to prevent or slow down the corrosion of the reinforcing steel. These inhibitors work by either forming a protective barrier on the steel surface or by reducing the corrosion rate. Examples of corrosion inhibitors include organic compounds, such as amines, and inorganic compounds, such as calcium nitrite. These inhibitors can be effective in extending the service life of concrete structures and reducing maintenance costs.

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8653382037x940357e9873556329=?

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Its basically unfined

Provide an appropriate response, The data bolow are the temperatures on randomly chosen days duning the summer in one city and the number of employee absences din the sa Siltert oner a 133 b. 9 C 12 d. M

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The best predicted value of y when x = 94 is 11.1

How to predict the best predicted value of y when x = 94

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

Temperature, x 72 85 91 90 88 98 75 100 80

Absencees, y 3 7 10 10 8 15 4 15 5

Using the least squares, we have the following summary

Sum of X = 779Sum of Y = 77Mean X = 86.5556Mean Y = 8.5556Sum of squares (SSX) = 736.2222Sum of products (SP) = 330.2222

The regression equation is

y = mx + b

Where

m =  SP/SSX = 330.22/736.22 = 0.44854

b = MY - bMX = 8.56 - (0.45*86.56) = -30.26773

So, we have

y = 0.44x - 30.27

When x = 94, we have

y = 0.44 * 94 - 30.27

y = 11.1

Hence, the prediction is 11.1

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Question

Provide an appropriate response, The data bolow are the temperatures on randomly chosen days duning the summer in one city and the number of employee absences

Which is the best predicted value of y when x = 94

Temperature, x 72 85 91 90 88 98 75 100 80

Absencees, y 3 7 10 10 8 15 4 15 5

using high asphalt cement content or low air void ratio in
concrete mix leads to several distress types, list two

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When high asphalt cement content or low air void ratio is used in concrete mix, it can lead to distresses such as bleeding and rutting.

When using high asphalt cement content or low air void ratio in concrete mix, two types of distresses that it leads to are bleeding and rutting.

Bleeding is the phenomenon when water is displaced from the fresh concrete mix and moves towards the surface. Bleeding results in the formation of a layer of water on the surface of the concrete, which can cause problems in the final surface texture of the concrete.

Rutting in concrete

Rutting is a distress that is characterized by a depression or groove formed by repeated loading on a pavement. The repeated loading causes the concrete to deform and leads to the formation of a rut. Rutting is typically seen in pavements that are subjected to heavy traffic loads such as highways or airports.

Therefore, when high asphalt cement content or low air void ratio is used in concrete mix, it can lead to distresses such as bleeding and rutting.

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Ashkan Oil & Gas Company claims to have developed a fuel, called AKD, whose chemical formula is C8H18 (octane) and has all the same thermodynamic properties, transport properties, etc. as C8H18. The only difference between C8H18 and AKD is that AKD has 10% higher heating value than octane. If AKD* fuel were used instead of C8H18, how would each of the following be affected? In particular, state whether the property would increase, decrease or remain the same, and if there is a change, would it be by more than, less than, or equal to 10%. No credit without explanation! a) Burning velocity (SL) of a stoichiometric octane-air flame Soot concentration in the products of a very rich premixed octane-air flame c) Indicated thermal efficiency of an ideal diesel cycle d) CO emissions from a premixed-charge engine operating at wide-open throttle e) Thrust Specific Fuel Consumption (TSFC) of an afterburning turbojet with no TAB limit in the afterburner

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Ashkan Oil & Gas Company claims to have developed a fuel, called AKD, whose chemical formula is C_8H_18 (octane) and has all the same thermodynamic properties, transport properties, etc. as C_8H_18. The only difference between C8H18 and AKD is that AKD has 10% higher heating value than octane.

If AKD* fuel were used instead of C8H18, the following would be affected as follows:

a) Burning velocity (SL) of a stoichiometric octane-air flame: The SL of a stoichiometric octane-air flame would remain unchanged with the use of AKD fuel, as it has all the same thermodynamic and transport properties as C8H18.

b) Soot concentration in the products of a very rich premixed octane-air flame: There would be an increase in soot concentration in the products of a very rich premixed octane-air flame with the use of AKD fuel. The increase in soot concentration would be by more than 10%.

c) Indicated thermal efficiency of an ideal diesel cycle: There would be no change in the indicated thermal efficiency of an ideal diesel cycle with the use of AKD fuel, as it has all the same thermodynamic and transport properties as C8H18. The indicated thermal efficiency of an ideal diesel cycle would remain the same.

d) CO emissions from a premixed-charge engine operating at wide-open throttle: There would be no change in CO emissions from a premixed-charge engine operating at wide-open throttle with the use of AKD fuel, as it has all the same thermodynamic and transport properties as C8H18. CO emissions from a premixed-charge engine operating at wide-open throttle would remain the same.

e) Thrust Specific Fuel Consumption (TSFC) of an afterburning turbojet with no TAB limit in the afterburner: There would be a decrease in the Thrust Specific Fuel Consumption (TSFC) of an afterburning turbojet with no TAB limit in the afterburner with the use of AKD fuel. The decrease in the TSFC would be by more than 10%.

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Joy solved this multiplication problem. Her work is shown below. 4 times 23 = 82 Which addition expression can Joy use to check if her answer is correct? What is the correct answer to the multiplication problem?

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Answer:

Joy's multiplication problem is 4 times 23. If she made a mistake in her calculation, she can check her work using an addition expression. Because multiplication is repeated addition, the equivalent addition expression to "4 times 23" would be "23 + 23 + 23 + 23". She could add up these four 23s to check her multiplication.

The correct answer to the multiplication problem "4 times 23" is 92, not 82. Joy can verify this by adding 23 four times:

23 + 23 = 46

46 + 23 = 69

69 + 23 = 92

So, her addition check would also result in 92, confirming that the correct answer to the multiplication problem is indeed 92, not 82.

Equation: PCl_5 (g) + E ⇌ PCl_3 (g) + Cl_2 (g).At equilibrium the concentrations of PCl_5(g), PCl_3(g) and Cl_2(g) were found to be 4.5 mol/L, 2.7 mol/L and 1.6 mol/L, respectively. The equilibrium constant, Kc, for the systems is calculated to be

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The equilibrium constant, Kc, for this system is 1.08 mol/L.

At equilibrium, the concentrations of the substances involved in the reaction remain constant. The equilibrium constant, Kc, is a numerical value that represents the ratio of the concentrations of the products to the concentrations of the reactants, each raised to the power of their respective stoichiometric coefficients.

In this case, the equation is PCl5 (g) + E ⇌ PCl3 (g) + Cl2 (g), and the concentrations at equilibrium are 4.5 mol/L for PCl5(g), 2.7 mol/L for PCl3(g), and 1.6 mol/L for Cl2(g).

To calculate the equilibrium constant, Kc, we can use the formula:

Kc = [PCl3] * [Cl2] / [PCl5]

Substituting the given concentrations:

Kc = (2.7 mol/L) * (1.6 mol/L) / (4.5 mol/L)

Kc = 1.08 mol/L

Therefore, the equilibrium constant, Kc, for this system is 1.08 mol/L.

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Problem 2 Refer to the cross-section of the short column shown below. The cross-section dimensions and material properties for the column are the same as with the beam in the previous problem. x2 X1 X1 h 1. Calculate the nominal axial load (Px) due to eccentricity ex. [15] 2. Calculate the nominal axial load (Pny) due to eccentricity ey. [15] X2 b partment

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To calculate the nominal axial load (Px) due to eccentricity ex, we need to consider the equation for the axial load in a short column with eccentricity:

Px = P + M/ex

1. Calculate Px due to eccentricity ex:

The formula for calculating the bending moment in a rectangular cross-section is:

M = (P × e × (h/2)) / (b × h^2/12)

Now we can calculate M:

M = (P × e × (h/2)) / (b × h^2/12)

M = (50 × 25 × (200/2)) / (100 × 200^2/12)

M = 25 × 10000 / (100 × 40000/12)

M = 25 × 10000 / (100 × 333.33)

M ≈ 7500 kNm

Now we can calculate Px:

Px = P + M/ex

Px = 50 + (7500 / 25)

Px = 50 + 300

Px = 350 kN

Therefore, the nominal axial load (Px) due to eccentricity ex is 350 kN.

2. Calculate the nominal axial load (Pny) due to eccentricity ey:

The same formula applies to calculate Pny, but this time we'll use the eccentricity ey and the bending moment My:

Pny = P + My/ey

We need to calculate the bending moment My due to eccentricity ey.

M = (P × e × (b/2)) / (h × b^2/12)

Now we can calculate My:

My = (P × e × (b/2)) / (h × b^2/12)

My = (50 × 15 × (100/2)) / (200 × 100^2/12)

My = 15 × 7500 / (200 × 10000/12)

My = 15 × 7500 / (200 × 0.012)

My ≈ 281.25 kNm

Now we can calculate Pny:

Pny = P + My/ey

Pny = 50 + (281.25 / 15)

Pny = 50 + 18.75

Pny = 68.75 kN

Therefore, the nominal axial load (Pny) due to eccentricity ey is approximately 68.75 kN.

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Discuss the principal differences in approaches on contract control such as substantive and procedural entitlements between the Standard Form of Building Contract and New Engineering Contract in Hong Kong.

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The principal differences in approaches on contract control between the Standard Form of Building Contract and New Engineering Contract in Hong Kong can be summarized as follows: the SBC adopts a more traditional and risk-allocating approach, while the NEC promotes collaboration and risk-sharing.

The NEC focuses on clear and unambiguous contract language, comprehensive change management, and rigorous time and cost control mechanisms. The SBC, while it may also address these aspects, may not have the same level of clarity, rigor, and emphasis on collaboration. It is important for parties involved in construction projects to understand these differences to effectively manage contractual obligations and minimize disputes.

The principal differences in approaches on contract control, such as substantive and procedural entitlements, between the Standard Form of Building Contract (SBC) and the New Engineering Contract (NEC) in Hong Kong are as follows:

1. Risk Allocation: The SBC follows a traditional approach where risks are typically allocated to the contractor, while the NEC adopts a more collaborative approach by allocating risks to the party best able to manage them. The NEC promotes risk-sharing and encourages cooperation between the employer and contractor.

2. Contractual Clarity: The NEC places a strong emphasis on clear and unambiguous contract language. It uses plain language and defines key terms explicitly to avoid misunderstandings. On the other hand, the SBC may be more reliant on common law principles and interpretations, which can lead to a greater degree of ambiguity.

3. Change Management: The NEC incorporates a comprehensive change management mechanism through its compensation events provision. It allows for timely identification, assessment, and valuation of any changes to the scope of work, ensuring that fair compensation is provided. The SBC, while it also includes provisions for variations, may not have the same level of clarity and rigor in managing changes.

4. Time and Cost Control: The NEC places significant emphasis on time and cost control through its program and cost provisions. It requires the contractor to submit detailed programs and cost information, which are regularly monitored and assessed by the project manager. In contrast, the SBC may have less stringent requirements for program and cost management.

1. Risk Allocation: In the SBC, the risk allocation is often based on the principle of "contractor beware," where the contractor assumes responsibility for most risks associated with the project. For example, if there are unforeseen ground conditions, the contractor may be responsible for dealing with them. In the NEC, risks are allocated based on the party best able to manage them. If the employer retains control over a risk, such as a design-related risk, they will bear the consequences if issues arise.

2. Contractual Clarity: The NEC focuses on clarity and uses plain language to ensure that the contract terms are easily understood by all parties involved. This reduces the chances of misinterpretation and disputes. For example, the NEC provides clear definitions for key terms and uses the "Defined Cost" concept for cost calculation, which helps avoid ambiguity. The SBC, while it may also strive for clarity, might rely more on traditional legal language, which can lead to differing interpretations.

3. Change Management: The NEC has a robust change management mechanism through its compensation events provision. Compensation events include any event that entitles the contractor to additional time or cost due to a change in the scope of work. The NEC provides clear procedures for notifying, assessing, and valuing compensation events. This promotes transparency and fairness in dealing with changes. The SBC may have provisions for variations, but they might not be as detailed or explicit as those in the NEC.

4. Time and Cost Control: The NEC has specific provisions for time and cost control. The contractor is required to submit a detailed program and update it regularly, allowing the project manager to monitor progress. The project manager can assess the contractor's performance against the program and take appropriate actions. Similarly, the contractor is required to provide cost information through the Defined Cost mechanism, which facilitates better cost control. The SBC may have less stringent requirements for program and cost management, leading to potential challenges in monitoring and controlling time and cost.

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3. Consider the statement: The sum of any two integers is odd if and only if at least one of them is odd. (a) Define predicates as necessary and write the symbolic form of the statement using quantifiers. (b) Prove or disprove the statement. Specify which proof strategy is used.

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The statement "The sum of any two integers is odd if and only if at least one of them is odd" is explored and proven using a direct proof strategy. Predicates are defined, and the symbolic form of the statement using quantifiers is presented.

a) To symbolically represent the given statement using quantifiers, we can define predicates and introduce quantifiers accordingly. Let P(x) represent the predicate "x is an integer" and Q(x) represent the predicate "x is odd." The symbolic form of the statement using quantifiers is as follows:

"For all integers x and y, (P(x) ∧ P(y)) → (Q(x + y) ↔ (Q(x) ∨ Q(y)))."

b) To prove the statement, we can use a direct proof strategy. We need to show that the implication in the symbolic form holds in both directions.

(i) Direction 1: If the sum of any two integers is odd, then at least one of them is odd.

Assume that P(x) and P(y) are true, where x and y are integers.

Assume that Q(x + y) is true, i.e., the sum of x and y is odd.

We need to prove that either Q(x) or Q(y) is true.

Since the sum of x and y is odd, at least one of them must be odd.

Therefore, the implication holds in this direction.

(ii) Direction 2: If at least one of two integers is odd, then the sum of those integers is odd.

Assume that P(x) and P(y) are true, where x and y are integers.

Assume that either Q(x) or Q(y) is true.

We need to prove that Q(x + y) is also true.

If either x or y is odd, their sum x + y will be odd.

Therefore, the implication holds in this direction.

Since both directions of the implication have been proven, we can conclude that the statement "The sum of any two integers is odd if and only if at least one of them is odd" is true.

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If the concentration of hydrogen changes from 0.01 to 0.001, what would be the change in the half-cell potential (V) of the oxygen (Nernst equation: 002/20 - 02/20 -0.059pH)?

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The change in the half-cell potential (V) of the oxygen electrode when the concentration of hydrogen changes from 0.01 to 0.001.  the change in the half-cell potential (ΔV) due to the change in hydrogen concentration.V = (0.02/20 - 0.001/20 - 0.059pH)

The Nernst equation relates the half-cell potential (V) to the concentrations of reactants or products involved in the redox reaction.  In this case, the Nernst equation provided is 0.02/20 - 0.02/20 - 0.059pH, where 0.02 represents the concentration of oxygen (O2), 0.02 represents the concentration of hydrogen (H2), and 0.059 is the constant representing the Faraday's constant divided by the number of electrons involved in the reaction.

The change in the half-cell potential (ΔV) when the concentration of hydrogen changes from 0.01 to 0.001, we need to calculate the half-cell potential for both concentrations and subtract the two values.

Using the Nernst equation, we can plug in the corresponding hydrogen concentrations and calculate the half-cell potential for each case.

When the concentration of hydrogen is 0.01:

V = (0.02/20 - 0.01/20 - 0.059pH)

When the concentration of hydrogen is 0.001:

V = (0.02/20 - 0.001/20 - 0.059pH)

By subtracting the two half-cell potentials, we can determine the change in the half-cell potential (ΔV) due to the change in hydrogen concentration.

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Define fugacity and fugacity coefficients for pure species and for species in a mixture. b) Equations (1) and (2) below are the expressions for Gibbs energy, first, for a state at pressure P; second, for a low-pressure reference state, denoted by *, both for temperature T: G = F(T) + RT Infi G = T(T) + RTinfi (2) By using equation (1) and (2) derive an expression for fugacity as shown in equation (3) In n4=[-(S-Si)] (3) R 573.15 = ii. For water at a temperature of 300C, calculate the values of fugacity fi and fugacity coefficient p from data in the steam tables at pressure of 3950 kPa and at saturation pressure. Molecular weight of water is 18.015 g/mol. At 300C and low-pressure reference state (1kPa), water is an ideal gas (steam) and its entropy and enthalpy values are H = 3076.8 J. g and S = 10.3450 J.g. K- below. provided Values of the universal gas constant are respectively. Why a typically developing student may be resistant to beingfriends with a student with a disability? 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