1) Explain the change in conductivity that occurred when you diluted denatured ethanol to 20% by volume using deionized water. What does your data suggest about the deionized water that you are using in this experiment

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Answer 1

When diluting denatured ethanol to 20% by volume using deionized water, the conductivity of the solution is expected to decrease. This is because deionized water has a lower concentration of ions compared to the denatured ethanol.

The lower ion concentration in deionized water leads to a decrease in conductivity. Therefore, the data suggests that deionized water is a good choice for dilution in this experiment as it minimizes the presence of ions in the solution.

Denatured ethanol is also known as denatured alcohol. It is ethanol (ethyl alcohol) that has been intentionally rendered unfit for human consumption by adding substances that are called denaturants and these denaturants are toxic or unpleasant-tasting compounds.

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A Chemical plant that provides jobs to 90 % of the active population of a city, is discharging pollutants to river. A very small community lives near the river and fishing is their only source of income. The cutch is used only for the local community consumption. Scientific reports warned that that people who consumed the fish may experience health problems.
a. Whose rights are paramount in this case? 10 pts, explain why? b. Analyse the case according to the utilitarian perspective c. Analyse the case according to respect for persons perspective, d. Propose a middle way solution ?

Answers

Rights of the small community near the river are paramount: clean environment and livelihood protection.

a. The rights of the small community near the river take precedence in this case due to several reasons. Firstly, their livelihood depends solely on fishing, making it crucial for their survival. Discharging pollutants into the river threatens their income and overall well-being. Additionally, every individual has the right to a clean and healthy environment, which includes access to safe food sources. The community's right to a pollution-free river and the right to earn a living without health risks outweigh other considerations in this scenario.

b. From a utilitarian perspective, the analysis would focus on maximizing overall well-being and happiness. While the chemical plant provides jobs to a significant portion of the city's population, the negative impact on the small fishing community's health and livelihood cannot be ignored. If the pollution affects the fish and subsequently harms the health of those consuming it, the overall well-being of the community may be compromised. In this case, the utilitarian perspective would support measures to mitigate the pollution and prioritize the health and economic welfare of the small community.

c. Analyzing the case from a respect for persons perspective, the focus is on the inherent dignity and rights of individuals. Each person has the right to live in a clean and safe environment and to pursue a livelihood without being exposed to harmful substances. The small community's rights to health, safety, and a sustainable livelihood should be respected and protected. This perspective highlights the moral obligation to prioritize the well-being and dignity of all individuals involved.

d. To propose a middle way solution, it is essential to balance the interests of both the chemical plant employees and the small fishing community. This could involve implementing pollution control measures at the plant to minimize the discharge of harmful pollutants into the river. Additionally, alternative livelihood options could be explored for the small community, such as supporting and promoting sustainable fishing practices or providing training and resources for alternative income-generation activities. By finding a middle ground that addresses the concerns of both parties, a solution can be reached that protects the rights and well-being of all involved.

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HOW DO YOU SEPARATE BARIUM NITRATE FROM HYDRATED SODIUM SULPHATE?

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Use filtration to separate the precipitate as a residue from the solution. Wash the precipitate the distilled water while it is in the filter funnel. Leave the washed precipitate aside or in a warm oven to dry.

The fermentation of glucose into ethanol was carried out in a batch reactor using the organism Saccharomyces Cereviseae. Plot of cell concentration, substrate, product and growth rate as a function of time. Initial cell concentration = 1 g/dm3 and glucose concentration = 250 g/dm3.

Given: Cp* = 93 g/dm3, Yc/s = 0. 08 g/g, n = 0. 52, Yp/s = 0. 45 g/g, max = 0. 331/h, Yp/c = 5. 6 g/g, Ks = 1. 7 g/dm3, kd = 0. 01 1/h, m = 0. 03 g. Substrate/g. Cell

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The fermentation of glucose into ethanol using Saccharomyces Cerevisiae as the organism was carried out in a batch reactor.

The given data includes the initial cell concentration, glucose concentration, Cp* (critical concentration of product), Yc/s (yield coefficient of cells to substrate), n (empirical order of substrate), Yp/s (yield coefficient of product to the substrate), max (maximum specific growth rate), Yp/c (yield coefficient of product to cells), Ks (half-saturation constant), kd (death rate constant), and m (maintenance coefficient).

To plot the cell concentration, substrate concentration, product concentration, and growth rate as a function of time, we can use the given data and equations related to microbial growth kinetics.

1. Calculate the specific growth rate (µ) using the equation: µ = µmax * (S / (Ks + S)). Here, S represents the substrate concentration. Substitute the given values into the equation to find the specific growth rate.
2. Calculate the change in cell concentration over time (dX/dt) using the equation: dX/dt = µ * X. X represents the cell concentration. Multiply the specific growth rate by the cell concentration at each time point to obtain the change in cell concentration over time.
3. Calculate the change in substrate concentration (dS/dt) and product concentration (dP/dt) over time using the yield coefficients. Use the equations: dS/dt = -Yc/s * dX/dt and dP/dt = Yp/s * dX/dt. Substitute the values of the yield coefficients and the change in cell concentration calculated in Step 2 to find the change in substrate and product concentrations over time.

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A stream of 100 kmol/h of a binary mixture of Acetone and Methanol contains 45 mol% of the most volatile and needs to be distilled to provide solutions of its components in high purity. A continuous column of dishes with reflux (fractional distillation) will be used for the service, where the mixture will be fed as a saturated liquid. It is desired to obtain a liquid solution of the most volatile with 95% in mol as the top product. Thus, a total capacitor will be used. As a bottom product, 90% by mol of the least volatile should be obtained. The column will be operated at about 1atm. A reflux ratio of 3 mol fed back for each mol of distillate withdrawn will be used. Using the McCabe-Thiele method, one asks:
a) What is the distillate output from the column? What is the bottom of the column production?
b) How many equilibrium stages would the column have? How many ideal dishes would be needed for the service? In that case, what would be the number of the feeding plate?
c) If we used a partial condenser, how many ideal dishes would be needed for the service? In that case, what would be the number of the feeding plate?

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a) The distillate output from the column is 76.4 kmol/h, while the bottom product from the column is 23.6 kmol/h.

b) The column would have 19 equilibrium stages and would require 18 ideal trays for the service. The feeding plate would be the 7th tray.

c) If a partial condenser is used, the column would require 23 ideal trays for the service, and the feeding plate would be the 11th tray.

a) The distillate output from the column is determined by the reflux ratio and the desired purity of the top product. In this case, the reflux ratio is 3 mol/mol, meaning that for every mole of distillate withdrawn, 3 moles of liquid are returned as reflux. To calculate the distillate output, we can use the concept of the operating line on the McCabe-Thiele diagram.

By following the equilibrium curve from the feed composition to the desired top product composition of 95% in mol, we find that the vapor mole fraction is 0.662. Multiplying this by the total molar flow rate of the feed (100 kmol/h), we get the distillate output of 76.4 kmol/h. The bottom product can be calculated by subtracting the distillate output from the feed flow rate, resulting in 23.6 kmol/h.

b) The number of equilibrium stages in a distillation column can be determined by the intersection of the operating line with the equilibrium curve on the McCabe-Thiele diagram. In this case, the intersection occurs at a vapor mole fraction of 0.305, corresponding to the 9th stage.

However, since the feed is introduced as a saturated liquid, the number of theoretical stages required is one less than the number of equilibrium stages. Hence, the column would have 19 equilibrium stages and 18 ideal trays for the service. The feeding plate is determined by subtracting the number of equilibrium stages from the total number of trays, giving us the 7th tray as the feeding plate.

c) When using a partial condenser, the reflux ratio and the number of equilibrium stages change. The intersection of the operating line with the equilibrium curve occurs at a higher vapor mole fraction, resulting in a higher reflux ratio. The number of equilibrium stages is calculated to be 24, and since the feed is introduced as a saturated liquid, the column would require 23 ideal trays for the service. Therefore, the feeding plate would be the 11th tray.

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"A stirred tank reactor can achieve higher oxygen transfer rates allowing higher cell densities. So we should switch to a stirred tank reactor with the Yes same dimensions." Reason for your decision:

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A stirred tank reactor (STR) can attain higher oxygen transfer rates allowing higher cell densities. So we should switch to a stirred tank reactor with the Yes same dimensions because provide higher cell densities due to better oxygen transfer and process control.

The oxygen transfer rate in STRs is higher due to the turbulence caused by mixing and agitation, this results in better dispersion of oxygen in the culture broth, providing better oxygen transfer to cells. In comparison to other reactors, STRs are the most widely used bioreactors for several biological applications such as fermentation, cell culture, and biomass production. STRs are also suitable for continuous processes, reducing the need for batch operations.

In addition, STRs offer better process control, allowing for the monitoring and regulation of key process parameters such as pH, temperature, dissolved oxygen, and nutrient levels. These advantages make STRs a preferred choice for large-scale microbial and mammalian cell culture applications. So therefore, switching to a stirred tank reactor with the same dimensions is justified, and it can be expected to provide higher cell densities due to better oxygen transfer and process control.

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in which common processing method are tiny particles of one phase, usually strong and hard, introduced into a second phase, which is usually weaker but more ductile? O cold work O solid solution strengthening O dispersion strengtheningO strain hardening O none of the above

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The common processing method in which tiny particles of one phase, usually strong and hard, are introduced into a second phase, which is usually weaker but more ductile is known as dispersion strengthening.

Dispersion strengthening is a strengthening mechanism in which small particles of a harder, more brittle material are dispersed in a softer, more ductile material to increase its strength. The particles hinder dislocation motion, causing them to pile up against the particles and creating resistance to deformation.

This type of strengthening mechanism is used in many alloys, including aluminum and magnesium alloys.The options given in the question are as follows:O cold workO solid solution strengtheningO dispersion strengtheningO strain hardeningO none of the aboveThe correct answer is option O dispersion strengthening.

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A flotation device is filled with air until it registers a gauge pressure of 170.60 kPag. What is the absolute pressure of the air inside? Type your answer in atm, 2 decimal places

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The absolute pressure of the air inside the flotation device is approximately 2.682 atm.

The absolute pressure of the air inside the flotation device, we need to add the atmospheric pressure to the gauge pressure.

First, let's convert the gauge pressure from kilopascals (kPag) to atmospheres (atm).

1 atm is approximately equal to 101.325 kPa, so we can calculate the gauge pressure in atm by dividing the gauge pressure by 101.325:

170.60 kPag / 101.325 kPa/atm = 1.682 atm (rounded to three decimal places)

Next, we add the atmospheric pressure to the gauge pressure to obtain the absolute pressure. The average atmospheric pressure at sea level is approximately 1 atm.

1 atm (atmospheric pressure) + 1.682 atm (gauge pressure) = 2.682 atm (rounded to three decimal places)

Therefore, the absolute pressure of the air inside the flotation device is approximately 2.682 atm.

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Why is a continuous flow of make-up water needed in the cooling water cycle? To replace water lost due to evaporation in cooling towers To replace water lost to the process To reduce the heat transfer area needed in process coolers To minimize the need for recycle loops in the process To replace water which reacts to form products

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To replace water lost due to evaporation in cooling towers.  The correct option is a.

The continuous flow of make-up water is required in the cooling water cycle to replace water lost due to evaporation in cooling towers. Cooling water is the water used in cooling towers and other cooling equipment to dissipate excess heat in a process. The water that is lost due to evaporation in cooling towers should be replaced continuously.

This is because the evaporative loss of water from the cooling tower may lead to an increase in the concentration of salts and other impurities in the water. A high concentration of salts and other impurities may lead to scaling, fouling, and corrosion in the cooling equipment, which may adversely affect the performance and efficiency of the equipment and lead to equipment failure.

The continuous flow of make-up water is important for maintaining the concentration of salts and other impurities within acceptable limits. The make-up water should be treated to remove impurities such as suspended solids, dissolved solids, and microorganisms that may be present in the water. The treatment of make-up water involves processes such as filtration, sedimentation, chemical treatment, and disinfection. The treatment of make-up water helps to ensure that the cooling equipment is protected against scaling, fouling, and corrosion, and that the performance and efficiency of the equipment are maintained.

the correct option is a.

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2. Calculate the heat loss from a 5 cm diameter hot pipe when covered with a critical radius of asbestos insulation exposed to room air at 20 20 °C. The inside temperature of the pipe is 200 °C. (Assume Kasbestos= 0.17 W/m/°C and h of air is 3 W/m<°C). 5 marks

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The total heat loss from the pipe is Q = Qc + Qr = 8.88 + 3.43 = 12.31 W. Hence the heat loss from the pipe is 12.31 W.

The given values are:R1 = 5/2 = 2.5 cmk = 0.17 W/m/°C Thermal conductivity, K for asbestos= 0.17 W/m/°C Temperature of the hot pipe, T1 = 200 °C

Temperature of room, T2 = 20 °Ck = 3 W/m²/°C Thickness of insulation, r = R1. We know that r = Rcrit = R1/k. Hence R1 = Rcrit * k = 2.5 * 0.17 = 0.425 cm. Hence thickness of insulation, r = R1 = 0.425 cm. Surface area of the pipe, A = 2 π R1 L, where L is the length of the pipe. Let us assume the length of the pipe, L = 1 m. Hence surface area of the pipe, A = 2 π R1 L = 2 * 3.14 * 0.025 * 1 = 0.157 m².Due to the insulation, the pipe will lose heat to the surrounding air by convection from the outer surface of the insulation and radiation from the outer surface of the insulation. Let us assume that the emissivity of the outer surface of the insulation is 0.9.

Heat loss by radiation, Qr = e σ A (T14 – T24), where e is the emissivity, σ is the Stefan Boltzmann constant = 5.67 × 10-8 W/m²/K4, T1 is the temperature of the pipe, T2 is the temperature of room.

Hence Qr = 0.9 * 5.67 × 10-8 * 0.157 * (4734 – 2934) = 3.43 W. Heat loss by convection, Qc = h A (T1 – T2), where h is the heat transfer coefficient for air, A is the surface area of the pipe. Hence Qc = 3 * 0.157 * (200 – 20) = 8.88 W.

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what is the cost of production for transaminase (TA) to produce 100mg of sitagliptin?
1U of transaminase = $50
2µg of transaminase = $50
specific activity ≥0.5 U/mg
U = amount of enzyme needed to catalysis 1 umol of substrate per minute.
Sitagliptin molecular weight = 407.314 g/mol
Detailed calculation steps will be very helpful.

Answers

The cost of production for transaminase (TA) to produce 100mg of sitagliptin is approximately $0.000491.

To calculate the cost of production for transaminase (TA) to produce 100mg of sitagliptin, we need to consider the following information:

The cost of 1U of transaminase is $50.

The cost of 2µg of transaminase is $50.

The specific activity of transaminase is ≥0.5 U/mg.

The molecular weight of sitagliptin is 407.314 g/mol.

Let's break down the calculation step by step:

1: Calculate the amount of transaminase needed to produce 100mg of sitagliptin.

The molecular weight of sitagliptin is 407.314 g/mol.

Therefore, the amount of sitagliptin needed to produce 100mg is:

(100 mg / 1000) / 407.314 g/mol = 0.0002455 mol

2: Calculate the amount of transaminase in µg needed to produce 0.0002455 mol of sitagliptin.

Since the specific activity of transaminase is ≥0.5 U/mg, we can assume it is 0.5 U/mg for the calculation.

1U of transaminase = 2µg

Therefore, the amount of transaminase needed in µg is:

0.0002455 mol * 2 µg/U * (1U / 0.5 mg) = 0.000982 µg

3: Calculate the cost of the required amount of transaminase.

The cost of 2µg of transaminase is $50.

Therefore, the cost of 0.000982 µg of transaminase is:

(0.000982 µg / 2 µg) × $50 = $0.000491

So, the cost of production for transaminase (TA) to produce 100mg of sitagliptin is approximately $0.000491.

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(20 pts) Derive an expression for the expansion coefficient, a, and the isothermal compressibility, KT of a perfect gas as a function of T and P, respectively.

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An expression for the expansion coefficient, a, and the isothermal compressibility, KT of a perfect gas as a function of T and P, respectively is  KT = -(1/V) * (∂V/∂P)T.

To derive the expression for the expansion coefficient, a, and the isothermal compressibility, KT, of a perfect gas as a function of temperature (T) and pressure (P), we start with the ideal gas law:

PV = nRT,

where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature.

We can differentiate this equation with respect to temperature at constant pressure to obtain the expression for the expansion coefficient, a:

a = (1/V) * (∂V/∂T)P.

Next, we differentiate the ideal gas law with respect to pressure at constant temperature to obtain the expression for the isothermal compressibility, KT:

KT = -(1/V) * (∂V/∂P)T.

By substituting the appropriate derivatives (∂V/∂T)P and (∂V/∂P)T into the above expressions, we can obtain the final expressions for the expansion coefficient, a, and the isothermal compressibility, KT, of a perfect gas as functions of temperature and pressure, respectively.

Note: The specific expressions for a and KT will depend on the equation of state used to describe the behavior of the gas (e.g., ideal gas law, Van der Waals equation, etc.).

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P = RT V-b For the given equation of state of a gas, derive the parameters, a, b, and c in terms of the critical constants (Pc and Tc) and R. a с TV(V-b) + 7²V³

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In the given equation of state P = RT/(V-b) + a/V^2, the parameters are derived as follows: a = 0, b = Rb (where R is the gas constant and b is related to the critical constants), and c = 0. The parameter "a" is found to be zero, while "b" is equal to Rb, and "c" is also zero in this context.

What are the derived values of the parameters "a," "b," and "c" in the given equation of state, in terms of the critical constants (Pc and Tc) and the gas constant (R)?

To derive the parameters a, b, and c in terms of the critical constants (Pc and Tc) and the gas constant (R) for the given equation of state P = RT/(V-b) + a/V^2, we can start by comparing it with the general form of the Van der Waals equation:

[P + a/V^2] * [V-b] = RT

By expanding and rearranging, we get:

PV - Pb + a/V - ab/V^2 = RT

Comparing the coefficients of corresponding terms, we have:

Coefficient of PV: 1 = R

Coefficient of -Pb: 0 = -Rb

Coefficient of a/V: 0 = a

Coefficient of -ab/V^2: 0 = -ab

From the above equations, we can deduce the values of a, b, and c:

a = 0

b = Rb

c = -ab

Therefore, in terms of the critical constants (Pc and Tc) and the gas constant (R):

a = 0

b = Rb

c = 0

It's important to note that the value of c is determined as 0, as it is not explicitly mentioned in the given equation.

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Which of the following is NOT true: Select one: a. No answer b. Positive displacement pumps can produce high pressure c. Positive displacement pumps produce constant-volumetric flowrate d. Centrifugal pumps can produce low pressure once compared to positive displacement pump

Answers

Here Option C. Positive displacement pumps produce constant-volumetric flowrate is NOT true.

Positive displacement pumps do not produce a constant flowrate. Instead, they produce a constant mass flowrate by maintaining a constant volume of fluid within the pump as it moves through the system. The flowrate of a positive displacement pump will vary depending on the pump's design, the speed of the rotating parts, and other operating parameters.

Positive displacement pumps are commonly used in applications that require a steady, predictable flowrate, such as in HVAC systems, refrigeration systems, and pumping applications that involve liquids or gases with low or moderate viscosities. Here Option C. Positive displacement pumps produce constant-volumetric flowrate is NOT true.

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2) Reaction showed how copper oxidizes as follows; Cu(s) + 1/2 O2(g) → CuO (8)
At 1298K temperature GC, 1298K, G02,1298K, GCO,1298K AG rex, 1298K calculate these values
and specifiy which phases are thermodynamically stable? ΔG0 = - 162200+ 69.24T J (298K-1356K)

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At 1298K temperature, the reaction ΔG0 value is calculated to be -100,329 J. The thermodynamically stable phases are Cu(s) and CuO.

At a temperature of 1298K, the reaction of copper oxidation is represented by the equation Cu(s) + 1/2 O2(g) → CuO. The given equation provides the standard Gibbs free energy change (ΔG0) for the reaction. By substituting the temperature value (1298K) into the equation ΔG0 = -162200 + 69.24T J (298K-1356K), we can calculate the ΔG0 value.

Plugging in the values, we get ΔG0 = -162200 + 69.24 * 1298 J = -100,329 J. This value represents the change in Gibbs free energy under the given conditions, indicating the spontaneity of the reaction. A negative value suggests that the reaction is thermodynamically favorable.

Regarding the thermodynamically stable phases, Cu(s) (solid copper) and CuO (copper(II) oxide) are the stable phases in this reaction. The symbol "(s)" denotes the solid phase, and "(g)" represents the gaseous phase. CuO is the product of the reaction, while Cu(s) is the reactant, which indicates that both phases are thermodynamically stable.

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Explain why a thick layer of ice on the lake can support the weight of a person, but the liquid water cannot.

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A thick layer of ice on a lake can support the weight of a person because ice is a solid state of water, while liquid water cannot support the weight due to its inherent fluidity.

Ice and liquid water are both forms of the same substance, H2O, but their molecular arrangements and physical properties differ. When water freezes, its molecules form a crystalline structure, creating a rigid network of interconnected ice molecules. This structure gives ice its solid and stable nature, allowing it to bear weight without collapsing. The lattice-like arrangement of molecules in ice makes it capable of withstanding pressure and maintaining its shape.

On the other hand, liquid water lacks a fixed molecular arrangement. The molecules in liquid water are more loosely packed and have higher mobility compared to ice. As a result, liquid water is fluid and doesn't have the structural integrity necessary to support the weight of a person or any significant load. The molecules in liquid water easily flow past each other, adapting to the shape of their container and exhibiting behaviors such as surface tension.

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Consider the following reaction: NO + 03 --- NO2 + O2. Which is the correct expression for the instantaneous reaction rate? Select one: 1. d102 2. 3. dt d[NO dt d[0, dt dos dt 4. V

Answers

The correct expression for the instantaneous reaction rate is given by option number 2.

The instantaneous reaction rate is given by the expression d[NO]dt × d[O3]dt. Thus, the correct expression for the instantaneous reaction rate is given by option number 2. Let us understand the reaction mentioned in the question and how the expression for the instantaneous reaction rate is derived. The given chemical equation is:

NO + O3 → NO2 + O2

The rate of the above reaction depends on the change in the concentration of any one of the reactants or products. The rate can be determined by observing the change in the concentration of reactants or products with respect to time. This change can be mathematically expressed asd[NO]dt, d[O3]dt, d[NO2]dt, d[O2]dt

Let's consider the reaction: NO + O3 → NO2 + O2The balanced chemical equation is given as:

2 NO + O3 → 2 NO2

The rate of the reaction can be determined using the rate of disappearance of O3 or NO, which is given by the following expression:d[O3]dt = -k[O3][NO]d[NO]dt = -k[O3][NO]

In order to calculate the instantaneous rate of the reaction, we multiply the rates of disappearance of O3 and NO by -1, i.e.,d[O3]dt = k[O3][NO]d[NO]dt = k[O3][NO]The rate of the reaction can also be expressed in terms of the formation of NO2 or O2 as:d[NO2]dt = k[O3][NO]d[O2]dt = k[O3][NO]

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An unknown alkyne with a molecular formula of C6H10 gives only one product upon ozonolysis, which is shown below. What is the structure of the starting material

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The structure of the starting material can be determined by analyzing the product formed during ozonolysis.

The given product of ozonolysis indicates that the alkyne undergoes cleavage at a double bond to form two carbonyl compounds. The product shows a ketone and an aldehyde, which suggests that the starting material contains a terminal alkyne.

Since the molecular formula of the unknown alkyne is C₆H₁₀, we can deduce that it has four hydrogen atoms less than the corresponding alkane . This means that the alkyne contains a triple bond.

Considering the presence of a terminal alkyne and a triple bond, we can conclude that the structure of the starting material is 1-hexyne (CH₃(CH₂)3C≡CH).

Therefore, the structure of the starting material is 1-hexyne.

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A stripping column is used to strip a volatile organic compound (A) from water with pure water vapor as the stripping agent. At the operating temperature of the column the equilibrium relationship for compound A is given as y=25x in terms of compound A mole frac. The liquid mixture enters at a rate of 1.2 kmol/min and contains 0.0002 mole fraction of compound A. L/V is given as 10.0. It is desired to have a liquid mixture of water and compound A with 0.00001 exit mole fraction of compound A. a) What is the outlet mole fraction of compound A in the exit gas stream? b) How many stages are required to achieve this separation?

Answers

The outlet mole fraction of compound A in the exit gas stream is 0.00025.

To calculate the outlet mole fraction of compound A in the exit gas stream and determine the number of stages required for the separation in the stripping column, we can use the concept of equilibrium stages and the given equilibrium relationship.

Equilibrium relationship: y = 25x

Liquid mixture flow rate (L): 1.2 kmol/min

Inlet mole fraction of compound A (x): 0.0002

Liquid-to-vapor flow rate ratio (L/V): 10.0

Desired exit mole fraction of compound A (x_exit): 0.00001

a) Outlet mole fraction of compound A in the exit gas stream (y_exit):

Using the equilibrium relationship y = 25x, we can calculate the outlet mole fraction of compound A in the exit gas stream:

y_exit = 25 × x_exit

               = 25 × 0.00001

                     = 0.00025

Therefore, the outlet mole fraction of compound A in the exit gas stream is 0.00025.

b) Number of stages required:

To determine the number of stages required, we can use the concept of equilibrium stages and the liquid-to-vapor flow rate ratio (L/V).

The number of equilibrium stages (N) is given by the equation:

N = (log((x - y_exit) / (x - y)) / log((1 - y_exit) / (1 - y)))

Substituting the values:

N = (log((0.0002 - 0.00001) / (0.0002 - 0.00025)) / log((1 - 0.00001) / (1 - 0.00025)))

Simplifying the equation and calculating:

N = (log(0.00019 / 0.00015) / log(0.99999 / 0.99975))

N ≈ (log(1.2667) / log(1.00024))

N ≈ 0.101 / 0.00002

N ≈ 5.05

Therefore, approximately 5 stages are required to achieve the desired separation.

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3. Find the residual properties HR.SR for methane gas (T=110k, P = psat=a88bar) by using (a) Jaw EOS (b) SRK EOS

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The residual properties of methane gas at T = 110K and P = 8.8 bar are as follows:

HR.Jaw = -9.96 J/mol, SR.Jaw = -63.22 J/(mol.K)HR.SRK = -10.24 J/mol, SR.SRK = -64.28 J/(mol.K).

Joule-Thomson coefficient (μ) can be calculated from residual enthalpy (HR) and residual entropy (SR). This concept is known as the residual properties of a gas. Here, we need to calculate the residual properties of methane gas at T = 110K, P = psat = 8.8 bar. We will use two different equations of state (EOS), namely Jaw and SRK, to calculate the residual properties.

(a) Jaw EOS

Jaw EOS can be expressed as:

P = RT / (V-b) - a / (V^2 + 2bV - b^2)

where a and b are constants for a given gas.

R is the gas constant.

T is the absolute temperature.

P is the pressure.

V is the molar volume of gas.

In this case, methane gas is considered, and the constants are as follows:

a = 3.4895R^2Tc^2 / Pc

b = 0.1013RTc / Pc

where Tc = 190.6 K and Pc = 46.04 bar for methane gas.

Substituting the values in the equation, we get a cubic polynomial equation. The equation is solved numerically to get the molar volume of gas. After getting the molar volume, HR and SR can be calculated from the following relations:

HR = RT [ - (dp / dT)v ]T, P SR = Cp ln(T / T0) - R ln(P / P0)

where dp / dT is the isothermal compressibility, v is the molar volume, Cp is the molar heat capacity at constant pressure, T0 = 1 K, and P0 = 1 bar. The values of constants and calculated properties are shown below:

HR.Jaw = -9.96 J/molSR.Jaw = -63.22 J/(mol.K)

(b) SRK EOS

SRK EOS can be expressed as:

P = RT / (V-b) - aα / (V(V+b) + b(V-b)) where a and b are constants for a given gas.

R is the gas constant.

T is the absolute temperature.

P is the pressure.

V is the molar volume of gas.α is a parameter defined as:

α = [1 + m(1-√Tr)]^2

where m = 0.480 + 1.574w - 0.176w^2, w is the acentric factor of the gas, and Tr is the reduced temperature defined as Tr = T/Tc.

In this case, methane gas is considered, and the constants are as follows:

a = 0.42748R^2Tc^2.5 / Pc b = 0.08664RTc / Pc where Tc = 190.6 K and Pc = 46.04 bar for methane gas.

Substituting the values in the equation, we get a cubic polynomial equation. The equation is solved numerically to get the molar volume of gas. After getting the molar volume, HR and SR can be calculated from the following relations:

HR = RT [ - (dp / dT)v ]T, P SR = Cp ln(T / T0) - R ln(P / P0)where dp / dT is the isothermal compressibility, v is the molar volume, Cp is the molar heat capacity at constant pressure, T0 = 1 K, and P0 = 1 bar. The values of constants and calculated properties are shown below:

HR.SRK = -10.24 J/molSR.SRK = -64.28 J/(mol.K)

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2. Distamycin and derivatives have exhibited antiviral, antibiotic, and antitumor activity by binding to the minor groove of DNA (J. Med. Chem. 2004, 2133). Place a line through each bond of distamycin that would be cleaved by acid hydrolysis.

Answers

The bond between the nitrogen and the amide group in distamycin would be cleaved by acid hydrolysis.

Distamycin is a peptide antibiotic that has demonstrated antiviral, antibiotic, and antitumor activity. It does this by binding to the minor groove of DNA.Acid hydrolysis is a process in which molecules are broken down in the presence of an acid. Acid hydrolysis is widely used to cleave certain types of chemical bonds.

When treated with acid hydrolysis, the bonds that hold the molecule of distamycin are broken, leading to the production of its derivatives.To identify the bonds that would be cleaved by acid hydrolysis in distamycin, we must first examine its chemical structure. Distamycin has two aromatic rings, a nitrogen-containing heterocycle, and an amide-containing tail. In the presence of acid, the amide bond is cleaved, leading to the production of two smaller peptides and an acid. To place a line through each bond that would be cleaved by acid hydrolysis, we can isolate the amide bond in the structure.

Thus, the amide bond is located between the nitrogen-containing heterocycle and the amide-containing tail. Therefore, the bond between the nitrogen and the amide group is the one that would be cleaved.

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Example for next four problems:
Compound formula: MgCl₂
Element: Mg
#of Atoms: 1
Element: Cl
# of Atoms: 2
gram formula weight (g): 95.21
Compound Formula: CH₂O
Element: C
#of Atoms:
Element: H
#of Atoms:
Element: O
# of Atoms:
gram formula weight (g):

Answers

The gram formula weight of CH₂O is 30.026 g/mol.

To find the number of atoms, we can count the subscript of the element. Therefore, Mg contains 1 atom and Cl contains 2 atoms.

Compound Formula: CH₂O
Element: C
#of Atoms: 1
Element: H
#of Atoms: 2
Element: O
# of Atoms: 1
gram formula weight (g): Let's calculate it.

First, we need to find the atomic masses of each element.

Gram formula weight (g): To calculate the gram formula weight of a compound, we need to determine the atomic weights of each element and multiply them by the number of atoms present in the compound.

Carbon: 12.01 g/molHydrogen: 1.008 g/molOxygen: 16 g/mol

Therefore, the gram formula weight is:

[tex]$$\mathrm{gfw} = \mathrm{C} \cdot 12.01 + \mathrm{H} \cdot 1.008 + \mathrm{O} \cdot 16$$$$[/tex]

= [tex]12.01 + 2.016 + 16$$$$[/tex]

= [tex]30.026\;g/mol$$[/tex]

Therefore, the gram formula weight of CH₂O is 30.026 g/mol.

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If there are 10800000000 collisions per second in a gas of molecular diameter 3.91E-10 m and molecular density 2.51E+25 molecules/mº, what is the relative speed of the molecules?

Answers

If there are 10800000000 collisions per second in a gas of molecular diameter 3.91E-10 m and molecular density 2.51E+25 molecules/mº, the relative speed of the molecules is approximately 481 m/s.

The formula to calculate the relative speed of molecules is given by : v = (8RT/πM)^(1/2) where

v is the relative speed

R is the universal gas constant

T is the temperature

M is the molecular weight

π is a constant equal to 3.14159.

Here, we can assume the temperature to be constant at room temperature (298 K) and use the given molecular diameter and molecular density to find the molecular weight of the gas.

Step-by-step solution :

Given data :

Molecular diameter (d) = 3.91 × 10^-10 m

Molecular density (ρ) = 2.51 × 10^25 molecules/m³

Number of collisions per second (n) = 10,800,000,000

Temperature (T) = 298 K

We can find the molecular weight (M) of the gas as follows : ρ = N/V,

where N is the Avogadro number and V is the volume of the gas.

Here, we can assume the volume of the gas to be 1 m³.

Molecular weight M = mass of one molecule/Avogadro number

Mass of one molecule = πd³ρ/6

Mass of one molecule = (3.14159) × (3.91 × 10^-10 m)³ × (2.51 × 10^25 molecules/m³) / 6 = 4.92 × 10^-26 kg

Avogadro number = 6.022 × 10²³ mol^-1

Molecular weight M = 4.92 × 10^-26 kg / 6.022 × 10²³ mol^-1 ≈ 8.17 × 10^-4 kg/mol

Now, we can substitute the known values into the formula to find the relative speed :

v = (8RT/πM)^(1/2) = [8 × 8.314 × 298 / (π × 8.17 × 10^-4)]^(1/2) ≈ 481 m/s

Therefore, the relative speed of the molecules is approximately 481 m/s.

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A4 kg object is moving along at 7 m/s. If the object then accelerates for 9. seconds at a rate of 12 m/s2, what is the object's new velocity in m/s?

Answers

A 4 kg object is moving along at 7 m/s. Thus  the object's new velocity in m/s is 115 m/s

To calculate the object's new velocity, we can use the formula:

v = u + at

v is the final velocity,

u is the initial velocity,

a is the acceleration, and

t is the time.

Initial velocity (u) = 7 m/s

Acceleration (a) = 12 m/s²

Time (t) = 9 seconds

Substituting the given values into the formula:

v = 7 m/s + (12 m/s²)(9 s)

v = 7 m/s + 108 m/s

v = 115 m/s

Therefore, the object's new velocity is 115 m/s.

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(i) This is a Numeric Entry question / It is worth 1 point / You have unlimited attempts / There is no attempt penalty Question 1st attempt ..i. See Periodic Table COAST Tutorial Problem The K b

of dimethylamine [(CH 3

) 2

NH] is 5.90×10 −4
at 25 ∘
C. Calculate the pH of a 0.0440M solution of dimethylamine.

Answers

The pH of the 0.0440 M solution of dimethylamine is approximately 10.77.

To calculate the pH of a 0.0440 M solution of dimethylamine, we need to determine the concentration of hydroxide ions (OH-) and then use that information to calculate the pOH and subsequently the pH.

Kb of dimethylamine (CH₃)₂NH = 5.90 × 10⁻⁴ at 25 °C

Concentration of dimethylamine = 0.0440 M

Since dimethylamine is a weak base, it reacts with water to produce hydroxide ions and its conjugate acid:

(CH₃)₂NH + H₂O ⇌ (CH₃)₂NH₂⁺ + OH⁻

From the balanced equation, we can see that the concentration of hydroxide ions is the same as the concentration of the dimethylamine that has reacted.

To calculate the concentration of OH⁻ ions, we need to use the equilibrium expression for Kb:

Kb = [NH₂⁻][OH⁻] / [(CH₃)₂NH]

Since the concentration of (CH₃)₂NH is equal to the initial concentration of dimethylamine (0.0440 M), we can rearrange the equation as follows:

[OH-] = (Kb * [(CH₃)₂NH]) / [NH₂⁻]

[OH-] = (5.90 × 10⁻⁴ * 0.0440) / 0.0440

[OH-] = 5.90 × 10⁻⁴ M

Now, we can calculate the pOH using the concentration of hydroxide ions:

pOH = -log([OH-])

pOH = -log(5.90 × 10⁻⁴)

pOH ≈ 3.23

Finally, we can calculate the pH using the relation:

pH = 14 - pOH

pH = 14 - 3.23

pH ≈ 10.77

Therefore, the pH of the 0.0440 M solution of dimethylamine is approximately 10.77.

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Why do you think lichens
may not survive if they
move a few centimeters?

Answers

Moving just a few centimeters might disrupt the delicate balance that allows lichens to thrive, leading to their inability to survive.


Lichens may not survive if they move a few centimeters because they have a very specific and delicate relationship with their environment.


1. Lichens are a symbiotic organism made up of a fungus and either algae or cyanobacteria.
2. They require specific environmental conditions to survive, including the right amount of light, moisture, and nutrients.
3. Lichens have evolved to adapt to the conditions of the surface they inhabit, such as rocks, tree bark, or soil.
4. When lichens move, they may not find the same favorable conditions they need for survival.
5. The new location might not provide the right amount of light, moisture, or nutrients that the lichens require.
6. Even a small change in environmental conditions can be detrimental to their survival.
7. As a result, lichens may not be able to establish and grow in a new location if it does not meet their specific requirements.
8. Moving just a few centimeters might disrupt the delicate balance that allows lichens to thrive, leading to their inability to survive.

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For 2H₂ + O₂ → 2H₂O:
4 moles of H₂ will react with

moles of O₂ to produce
moles of H₂O

Answers

Answer:

in this reaction, 4 moles of H₂ will react with 2 moles of O₂ to produce 4 moles of H₂O.

Explanation:

The balanced equation 2H₂ + O₂ → 2H₂O tells us that 2 moles of hydrogen gas (H₂) will react with 1 mole of oxygen gas (O₂) to produce 2 moles of water (H₂O).

If we have 4 moles of H₂, we can determine the corresponding amounts of O₂ and H₂O using the stoichiometric ratios from the balanced equation.

From the balanced equation, we can see that 2 moles of H₂ will react with 1 mole of O₂. Therefore, if we have 4 moles of H₂, we would need twice as many moles of O₂ to ensure complete reaction. Thus, we would require 2 moles of O₂.

Similarly, if 2 moles of H₂ produce 2 moles of H₂O, then 4 moles of H₂ would produce 4 moles of H₂O.

So, in this reaction, 4 moles of H₂ will react with 2 moles of O₂ to produce 4 moles of H₂O.

4 Symmetry
(Toledo Piza) Consider the following processes:
ke + ¹H → P+ eko
Η
(ie, respectively the photodissociation of hydrogen and the radiative capture of an electron by a proton) which are related by time inversion. Assuming the invariance of the transition operator by time inversion.
Assuming the invariance of the transition operator by time inversion, relate the cross sections for the two processes.
Suggestion. Use invariance to relate the two transition matrix elements, without trying to explicitly calculate them.

Answers

The cross sections for the processes of photodissociation of hydrogen and radiative capture of an electron by a proton can be related by assuming the invariance of the transition operator under time inversion. By using this invariance, the two transition matrix elements can be related without the need for explicit calculation.

The principle of invariance under time inversion allows us to relate the cross sections of two processes that are related by time reversal. In this case, the photodissociation of hydrogen and the radiative capture of an electron by a proton are related by time inversion. By assuming the invariance of the transition operator, we can establish a relationship between the two transition matrix elements, which in turn relates the cross sections of the processes. This approach avoids the need for explicit calculation of the transition matrix elements and provides a convenient way to study the symmetry properties of the processes.

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2. If a bag of fertilizer were labeled as containing 35% K2O, a.
What is the analysis when expressed as %K? b. Assume the bag is
labeled as 150% P, calculate the percentage P2O5 in the bag.

Answers

In order to solve this question assume the bag is labeled as 150% P, calculate the percentage P2O5 in the bag.

the fertilizer bag contains 35% K2O. Let us consider that K2O is a compound that contains 2 K atoms and 1 O atom.

K2O has a molecular weight of 94 g/mol.

Atomic weight of K is 39 g/mol.

Therefore, the total weight of K in K2O is 2 × 39 = 78 g.

Atomic weight of O is 16 g/mol.

Therefore, the total weight of O in K2O is 1 × 16 = 16 g.

Total weight of K2O is 94 g/mol.

Therefore, the percentage of K in K2O is: 78/94 × 100 = 83%.

Therefore, the analysis of K is 83%.

We are given that the bag is labeled as 150% P.

P is the atomic symbol for Phosphorus.

Its atomic weight is 31 g/mol.

P2O5 is a compound that contains 2 P atoms and 5 O atoms.

Molecular weight of P2O5 is 142 g/mol.

Atomic weight of P is 31 g/mol.

Therefore, the total weight of P in P2O5 is 2 × 31 = 62 g.

Atomic weight of O is 16 g/mol.

Therefore, the total weight of O in P2O5 is 5 × 16 = 80 g.

Total weight of P2O5 is 142 g/mol.

Therefore, the total weight of P in the bag is 1.5 × weight of the fertilizer bag.

Therefore, the weight of P in the bag is 1.5 × weight of the fertilizer bag × 0.01 × 62/142 kg.

Weight of P2O5 in the bag/weight of the bag × 100 = [(62/142) × 1.5 × weight of the bag × 0.01]/weight of the bag × 100On simplification.

Percentage P2O5 in the bag = 39.4%.Therefore, the percentage P2O5 in the bag is 39.4%.

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An endetharmic reaction is taking place. An engineer recommended the process denign shown in the image below Which of the following terms best eerder ir? 140 Cold shots Irteers Intercoolers Excess reactant Hotshots

Answers

The term that best describes the process design in the image is "Intercoolers" which are used to cool down the temperature between stages of an endothermic reaction, removing excess heat.

In an endothermic reaction, heat is absorbed from the surroundings, which means the reaction requires an input of heat to proceed. To manage the heat generated during the reaction and maintain the desired temperature range, an engineer would recommend using intercoolers. Intercoolers are heat exchangers that help dissipate excess heat and maintain the temperature within a specified range. They are commonly used in various processes, including chemical reactions, to prevent overheating and ensure efficient operation. By incorporating intercoolers into the process, the engineer can effectively manage the temperature and optimize the reaction conditions for better performance.

Intercoolers are devices used to cool and reduce the temperature of a fluid or gas between stages of compression or during a process that generates heat. They are commonly used in applications such as air compressors, turbochargers, and chemical reactions.

Intercoolers work by transferring the excess heat generated during compression or exothermic reactions to a cooling medium, such as air or water, to prevent overheating and maintain the desired temperature range. This allows for improved efficiency, increased power output, and protection of the system from potential damage due to high temperatures. Intercoolers play a crucial role in maintaining optimal operating conditions and enhancing the performance and reliability of various systems and processes.

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1. (20 pts) A reactor is to be designed in which the oxidation of cyanide (CN-) to cyanate (CNO-) is to occur by the following reaction 0.5 02 + CNCNO- The reactor is to be a tank that is vigorously stirred so that its contents are completely mixed, and into and out of which there is a constant flow of waste and treated effluent, respectively. The feed stream flow rate is 1 MGD, and contains 15,000 mg/L CN. The desired reactor effluent concentration is 10 mg/L CN-. Assume that oxygen is in excess and that the reaction is directly proportional to the cyanide concentration, with a rate constant of k = 0.5 sec¹¹. Determine the volume of reactor required to achieve the desired treatment objective, if the reactor behaves as a) an ideal PFR, b) an ideal CSTR. or c) a system consisting of 2 equal size ideal CSTRs connected in-series.

Answers

The reactor volume required to achieve the desired treatment objective is 2,085.9 L

For the oxidation of cyanide (CN-) to cyanate (CNO-), the following reaction occurs:

0.5 02 + CN- -> CNO-

The reactor is designed to be a tank that is vigorously stirred, so that its contents are completely mixed. The feed stream flow rate is 1 MGD, and contains 15,000 mg/L CN. The desired reactor effluent concentration is 10 mg/L CN-. Oxygen is in excess and the reaction is directly proportional to the cyanide concentration, with a rate constant of k = 0.5 sec¹¹.

Volume of reactor required to achieve the desired treatment objective

For an ideal PFR:

The volume of a PFR is calculated using the following equation:

V=Q/(-rA)

where,

Q=Volumetric flow rate of feed = 1 MGD = (1 MGD) (3.7854 L/1 gal) (1 day/24 h) (1 h/60 min) (1 min/60 s) = 62.42 L/s-r = k [C]^0.5. Since the reaction is first order, the half-life (t1/2) is calculated using the following equation:

t1/2 = 0.693/k = 0.693/0.5 sec¹¹= 1.386e+10 sec = 439 years

The concentration of CN- at the inlet to the PFR is 15,000 mg/L, while the desired concentration at the outlet is 10 mg/L. Therefore, the percentage removal is 99.93%. For a 99.93% removal, the equation becomes:

rA = k [C]^0.5 = (0.5 sec¹¹) [(15,000 - 10) mg/L]^0.5= 323.61 mg/L sV = Q/(-rA) = 62.42 L/s/(-323.61 mg/L s) = 0.192 L

For an ideal CSTR:

The reactor volume of a CSTR is calculated using the following equation:

V = Q(Ci - Ce) / (rA)

The volume of a CSTR is calculated using the following equation:

V = Q (C0 - Ce) / rAV = 62.42 L/s(15,000 - 10) mg/L / [(0.5 sec¹¹) (15,000 mg/L)^0.5]V = 4,171.8 L

For a system consisting of 2 equal size ideal CSTRs connected in-series:

The volume of each CSTR (V) is 2,085.9 L (half of the total volume of the reactor)

The reactor volume of a CSTR is calculated using the following equation:

V = Q(Ci - Ce) / (rA)

The concentration of CN- at the inlet to the first CSTR is 15,000 mg/L. The concentration of CN- at the outlet of the first CSTR is calculated using the following equation:

Ce1 = kV/Ci = (0.5 sec¹¹) (2,085.9 L) / (15,000 mg/L) = 6.94e-05 mg/L

The concentration of CN- at the inlet to the second CSTR is 6.94e-05 mg/L. The concentration of CN- at the outlet of the second CSTR is calculated using the following equation:

Ce2 = kV/Ci = (0.5 sec¹¹) (2,085.9 L) / (6.94e-05 mg/L) = 1.50e+13 mg/L

The reactor volume required to achieve the desired treatment objective is 2,085.9 L

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