liquidus line separates which of the following combinations of phase fields? a) alpha and alpha+beta b) Liquid and Liquid + alpha c) alpha and Liquid + alpha d) Liquid +alpha and alpha+beta

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Answer 1

The liquidus line separates the following combinations of phase fields: Liquid and Liquid + alpha. The correct option is b.

What is a phase field? A phase field is a technique for representing the microstructure of materials. It is used in materials science, mathematics, and computer science to simulate and study the behavior of materials in the solid and liquid phases. It is a multi-component field that contains information on the concentration of various components, their phase, and the local temperature, as well as other relevant variables.

The liquidus line is defined as the boundary between the liquid phase field and the field that includes both the liquid and the alpha phase. As a result, the liquidus line separates the following combinations of phase fields: Liquid and Liquid + alpha.

So, the correct option is b) Liquid and Liquid + alpha.

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Related Questions

The total response in the time domain is given as: 1 ls2+2Ew,S+W F(s)] s2+2EW,S+Wn Zero input response Zero state response After the initial condition excitation vanishes,which part of x(t) remains? Zero input response and zero state response Zero input response Zero state response None of the responses

Answers

When we solve the differential equation with zero initial conditions, we get the zero-input response. It is also referred to as a free response.

The given system's total response in the time domain is represented by:$$x(t) = [1/ls^2 + 2Ew,S + W] F(s) / [s^2 + 2EW,S + Wn]$$After the excitation of the initial condition vanishes, only the zero-state response part of x(t) remains.

Zero-state response (ZSR): When the system's initial condition is nonzero, the zero-state response is the system's output. It's the part of the response that isn't affected by the system's input.

When we solve the differential equation with zero input, we get the zero-state response (initial conditions only).The Zero-Input Response (ZIR): In a system with zero initial conditions, the Zero-Input Response (ZIR) is the system's response to zero input.

It's the part of the response that isn't affected by the system's initial conditions.

When we solve the differential equation with zero initial conditions, we get the zero-input response. It is also referred to as a free response.

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What is the percent by volume of 5.75 mL of ethyl acetate in 7.85 mL of solution?

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19.26 mL I also need the points for this so I hope this helps

i2(g) cl2(g)⇌2icl(g)kp=81.9 (at 298 k ) express your answer to three significant figures. view available hint(s)for part c kc = nothing

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The value of Kc for the given chemical reaction is 4.66 × 10⁻⁴. from the equation i2(g) cl2(g) ⇌ 2icl(g).

Given, i2(g) cl2(g) ⇌ 2icl(g) Kp = 81.9 (at 298 K)

To find: KcKp = Kc(RT)Δn

Where,Kp = 81.9 (given)R = 0.0821 L atm K⁻¹ mol⁻¹, T = 298 K, Δn = (2 + 0) - (1 + 1) = 0 - 2 = -2

Kc = Kp(RT)ΔnR = 0.0821 L atm K⁻¹ mol⁻¹, T = 298 K, Δn = -2

Kc = 81.9 × (0.0821 × 298)⁻² × (1)

Kc = 4.66 × 10⁻⁴

Explanation: We are given a chemical reaction as i2(g) cl2(g) ⇌ 2icl(g)The equilibrium constant Kp is given as 81.9 at 298 K. For this reaction, the Δn is equal to -2. To find Kc, we use the formula: Kp = Kc(RT)Δn

Where, Kp is the equilibrium constant in terms of partial pressures. R is the universal gas constant. T is the temperature in Kelvin.Δn is the difference in the number of moles of gaseous products and gaseous reactants. Kc is the equilibrium constant in terms of molar concentrations.

Rearranging the above equation, we get: Kc = Kp / (RT)Δn

Substituting the given values, we get: Kc = 81.9 × (0.0821 × 298)⁻² × (1)Kc = 4.66 × 10⁻⁴

Hence, the value of Kc for the given chemical reaction is 4.66 × 10⁻⁴.

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the solubility of ag2co3 at 21c is 24 g/l calculate the ksp at 21c

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The solubility product constant, also known as Ksp, is a chemical equilibrium constant that refers to the equilibrium between a solid and its respective dissolved ions at a particular temperature. Ksp is used to calculate the solubility of a solute in a solvent based on the given data.

The Ksp expression for [tex][tex]Ag_{2}CO_{3}[/tex][/tex] is given below: [tex]Ag_{2}CO_{3}(s) = 2Ag^{+}(aq) + CO_{3}^{2-}(aq)[/tex]

At equilibrium, the concentration of [tex]Ag^{+}[/tex] and [tex]CO_{3}^{2-}[/tex] ions will be 2x and x, respectively.

Therefore, the Ksp of [tex][tex]Ag_{2}CO_{3}[/tex][/tex]  can be calculated by the following equation:

Ksp = [ [tex]Ag^{+}[/tex]]2[CO32-]Ksp = (2x)2(x)Ksp = 4*3

The solubility of [tex][tex]Ag_{2}CO_{3}[/tex][/tex]  at 21°C is 24 g/L, so it can be converted to moles per liter.

The molar mass of Ag2CO3 is 275.75 g/mol, as follows:24 g/L ÷ 275.75 g/mol = 0.0869 M

The concentration of [tex]Ag^{+}[/tex]  and [tex]CO_{3}^{2-}[/tex] ions in the solution is therefore: [ [tex]Ag^{+}[/tex]] = 2x = 2 * 0.0869 M = 0.174 M

[[tex]CO_{3}^{2-}[/tex]] = x = 0.0869 M

Substituting these values into the Ksp equation:

Ksp = [Ag+]2[[tex]CO_{3}^{2-}[/tex]-]Ksp = (0.174 M)2(0.0869 M)Ksp = [tex]2.51 * 10^{-5}[/tex] mol2/L2

The Ksp of [tex][tex]Ag_{2}CO_{3}[/tex][/tex]  at 21°C is therefore [tex]2.51 * 10^{-5}[/tex] mol2/L2.

The Ksp of [tex][tex]Ag_{2}CO_{3}[/tex][/tex]  at 21°C can be calculated by multiplying the concentrations of the  [tex]Ag^{+}[/tex] and CO32- ions in the solution raised to their stoichiometric coefficients, as shown in the main answer above. The Ksp of [tex][tex]Ag_{2}CO_{3}[/tex][/tex]  at 21°C is [tex]2.51 * 10^{-5}[/tex] mol2/L2.

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Calculate the molality of a solution containing 275.0-grams of methane, CH4, dissolved in 300.0-m L of water.

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The molality of a solution containing 275.0-grams of methane, CH₄, dissolved in 300.0-m L of water is 57.3 M.

What is the molarity of the solution?

The molality of a solution containing 275.0-grams of methane, CH₄, dissolved in 300.0-m L of water is calculated as follows;

The molarity of a solution is defined as the ratio of number of moles of solute to the volume of the solution in liters.

The number of moles of  275.0-grams of methane, CH₄ is;

n = 275 / 16

n = 17.19 moles

The volume of the solution in liters = 0.3 L

The molality of a solution containing 275.0-grams of methane, CH₄, dissolved in 300.0-m L of water is ;

= 17.19 moles / 0.3 L

= 57.3 M

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write a balanced half-reaction for the reduction of aqueous arsenic acid to gaseous arsine in basic aqueous solution.

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The balanced half-reaction for the reduction of aqueous arsenic acid to gaseous arsine in a basic aqueous solution is given below. Therefore, four OH- ions are added to the left side to balance the charges. The balanced half-reaction is as follows: H2AsO4- + 6e- + H2O ⟶ AsH3 + 4OH-

In the basic solution, the half-reaction is as follows: H2AsO4- + 6e- ⟶ AsH3 + 4OH-As the half-reaction is balanced with six electrons, it becomes highly essential to balance the number of atoms on both sides of the equation. To balance the half-reaction, the following steps have to be followed:1) As a first step, balance the atoms of all the elements except hydrogen and oxygen. In this case, there are no elements other than oxygen, hydrogen, arsenic, and hydroxide ions on both sides.2) Secondly, balance the atoms of oxygen by adding H2O on the side that requires oxygen. In this case, the left side requires one more oxygen, and so one H2O molecule is added to it.3) Thirdly, balance the atoms of hydrogen by adding H+ ions. In this case, the left side requires six more hydrogen atoms, so six H+ ions are added to it.4) Finally, balance the charges on both sides of the half-reaction. In this case, the left side has a net charge of 2-, while the right side has a net charge of 0. Therefore, four OH- ions are added to the left side to balance the charges. The balanced half-reaction is as follows: H2AsO4- + 6e- + H2O ⟶ AsH3 + 4OH-The above half-reaction equation is balanced in a basic medium. Arsenic acid is reduced to arsine gas by adding an appropriate reducing agent and alkali to it.

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the ksp of ba(io3)2 at 25 ∘c is 6.0×10−10. what is the molar solubility of ba(io3)2?

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The molar solubility of Ba(IO3)2 is 5.2 × 10−4 mol/L.

Solubility is the property of a substance to dissolve in a solvent at a particular temperature and pressure.

The molar solubility of Ba(IO3)2 is defined as the number of moles of the salt that dissolve to produce 1 liter of the solution at the specified temperature and pressure.

The Ksp expression of Ba(IO3)2 is given as,

Ksp = [Ba2+][IO3-]2

At equilibrium, the solubility of Ba(IO3)2 will be x.

Then, the concentrations of [Ba2+] and [IO3-] are x and 2x, respectively.

Thus, the solubility product of Ba(IO3)2 can be written as:

Ksp = [Ba2+][IO3-]2= x(2x)2= 4x3

According to the problem, Ksp = 6.0 × 10−10Thus, 4x3 = 6.0 × 10−10

The molar solubility of Ba(IO3)2 can be calculated using the following steps:

Dividing both sides by 4, we get:

x3 = 1.5 × 10−10

Cube root of both sides applied leade to:

x = 5.2 × 10−4 mol/L

The molar solubility of Ba(IO3)2 is 5.2 × 10−4 mol/L, indicating the concentration of the compound when it is dissolved in a solvent.

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if an aqueous solution of agno3 was combined with an aqueous solution of cabr2, the possible products of this reaction would be:

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When an aqueous solution of AgNO3 (silver nitrate) is combined with an aqueous solution of CaBr2 (calcium bromide), a double displacement reaction occurs. In this reaction, the positive ions (cations) and negative ions (anions) of the two reactants switch places, producing new compounds as products. Here's the step-by-step explanation:

1. Identify the cations and anions in the reactants: Ag+ and NO3- in AgNO3; Ca2+ and Br- in CaBr2.
2. Exchange the cations and anions: Ag+ pairs with Br-, and Ca2+ pairs with NO3-.
3. Write the formulas for the new compounds: AgBr (silver bromide) and Ca(NO3)2 (calcium nitrate).

So, the possible products of this reaction are silver bromide (AgBr) and calcium nitrate (Ca(NO3)2). The balanced chemical equation for this reaction is:

AgNO3 (aq) + CaBr2 (aq) → AgBr (s) + Ca(NO3)2 (aq)

This reaction results in the formation of a solid precipitate, silver bromide (AgBr), and an aqueous solution of calcium nitrate (Ca(NO3)2).

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a 0.175 m weak acid solution has a ph of 3.25. find ka for the acid.

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Answer: Ka = 5.71x10^-7

Explanation:

Let HA be the weak acidHA ==> H^+ + A^-

Ka = [H+][A-]/[HA]

Since pH = 3.25, this means [H+] = 1x10^-3.5 = 3.16x10^-4 = [A-] also.

Ka = (3.16x10^-4)(3.16x10^-4)/0.175

Ka = 5.71x10^-7

The value of Ka for the weak acid is as follows:Ka = [H+][A-] / [HA]⇒Ka = (0.009917)2 / (0.165)⇒Ka = 5.92 × 10^-5

Given information:

pH of weak acid = 3.25pH = - log[H+][H+] = antilog (-pH)= antilog (-3.25)= 5.62 x 10^(-4).

Now, 0.175 M solution of a weak acid is given.

Let’s assume that the acid is represented by the chemical formula HA.[H+] = [A-] = x (Since it is a weak acid, we can assume that it dissociates very little, so the concentration of H+ and A- ions can be taken as x).

Now, the concentration of HA can be assumed to be (0.175 - x)M.

We can apply the formula for the acid dissociation constant (Ka) of weak acids here, i.e., Ka = [H+][A-] / [HA]Ka = x2 / (0.175 - x), Ka = 5.62 × 10^-4.

Therefore, 5.62 × 10^-4 = x2 / (0.175 - x), The value of x is very small compared to 0.175.

Hence we can neglect x in comparison with 0.175.

Therefore,0.175 - x = 0.175∴5.62 × 10^-4 = x2 / (0.175)⇒x2 = 0.175 × 5.62 × 10^-4⇒x2 = 9.835 × 10^-5⇒x = √(9.835 × 10^-5)⇒x = 0.009917 mol/L

Now, [HA] = 0.175 - x = 0.175 - 0.009917 = 0.165 M

Therefore, the value of Ka for the weak acid is as follows: Ka = [H+][A-] / [HA]⇒Ka = (0.009917)2 / (0.165)⇒Ka = 5.92 × 10^-5

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Gaseous carbon monoxide reacts with hydrogen gas to form gaseous methane (CH4) and oxygen gas. Express your answer as a chemical equation. Identify all of the phases in your answer. 0 ΑΣΦ ? * . x хь x A chemical reaction does not occur for this question

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The states of the reactants and products are given as follows: CO (g) + 3 H2(g) → CH4(g) + H2O(g)Where (g) stands for the gaseous state, since all the reactants and products are in the gaseous state. Hence, the reaction is in the gaseous state. Therefore, the phases of all the components of the balanced chemical equation are gaseous.

The given reaction is: Gaseous carbon monoxide reacts with hydrogen gas to form gaseous methane (CH4) and oxygen gas. The balanced chemical equation is as follows: CO (g) + 3 H2(g) → CH4(g) + H2O(g)This reaction is an example of a reduction-oxidation (redox) reaction. In this reaction, carbon monoxide is oxidized to carbon dioxide, while hydrogen is reduced to methane. Water is formed as a byproduct of the reaction. Here, CO acts as an oxidizing agent, whereas hydrogen acts as a reducing agent. The states of the reactants and products are given as follows: CO (g) + 3 H2(g) → CH4(g) + H2O(g)Where (g) stands for the gaseous state, since all the reactants and products are in the gaseous state. Hence, the reaction is in the gaseous state. Therefore, the phases of all the components of the balanced chemical equation are gaseous.

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what is the ph of a solution made by mixing 0.30 molnaoh , 0.25 molna2hpo4 , and 0.20 molh3po4 with water and diluting to 1.00 l ? express your answer using two decimal places.

Answers

The pH of a solution that is made by mixing 0.30 mol NaOH, 0.25 mol Na₂HPO₄, and 0.20 mol  H₃PO₄ with water and diluting to 1.00 L. of the given solution is calculated as 1.44.  

The pH can be calculated using the equation: pH = -log[H⁺]Where[H⁺] = concentration of hydrogen ions in moles per liter (mol/L)

To find the [H⁺] of the given solution, we first need to calculate the concentrations of all the species in the solution. Since NaOH and Na₂HPO₄ are bases and  H₃PO₄ is an acid, we can assume that all of the NaOH and Na₂HPO₄ will react with  H₃PO₄ to form H2O and HPO₄²⁻ ions. The balanced chemical equation for the reaction is given below: 2 NaOH +  H₃PO₄ → Na₂HPO₄ + 2 H₂O1 Na₂HPO₄ +  H₃PO₄ → Na₂HPO₄ + H₂O

The reaction shows that 2 mol of NaOH react with 1 mol of  H₃PO₄ and 1 mol of Na₂HPO₄ reacts with 1 mol of  H₃PO₄. Therefore, to calculate the number of moles of H₃PO₄ remaining in the solution, we must subtract the number of moles of NaOH and Na₂HPO₄ that reacted with  H₃PO₄ from the initial number of moles of  H₃PO₄. The table below shows the initial number of moles and the number of moles that react: Species Initial number of moles

Moles that react with H₃PO₄  Remaining number of moles NaOH0.30 0.30 - 0.15 = 0.15 Na₂HPO₄ 0.25 0.25 - 0.125 = 0.125  H₃PO₄ 0.20 0.15 + 0.125 = 0.275. Now that we have the number of moles of each species in the solution, we can calculate the concentrations. The total volume of the solution is 1.00 L, so the concentration of each species is: NaOH: 0.15 mol/L Na₂HPO₄ : 0.125 mol/LHPO₄²⁻: 0.125 mol/L  H₃PO₄: 0.275 mol/L

To calculate the [H⁺], we first need to find the pKa of the H₃PO₄/H₂PO₄⁻ system.  H₃PO₄ has three ionizable hydrogens, so it can act as an acid three times:pKa1 = 2.15pKa2 = 7.20pKa3 = 12.35Since the pH of the solution will be determined by the ionization of the second hydrogen, we will use pKa2. The ionization reaction for H₂PO₄⁻ is given below: H₂PO₄⁻ + H₂O ⇌ HPO₄²⁻ + H₃O⁺. The Ka for this reaction is:Ka = [H₂PO₄⁻][H₃O⁺]/[H₂PO₄⁻]Since we know the Ka and the concentration of H₂PO₄⁻ (0.275 mol/L), we can solve for [H₃O⁺]:Ka = [HPO₄⁻][H₃O⁺]/[H₂PO₄⁻]

7.20 = (0.125 mol/L)([H₃O⁺])/(0.275 mol/L)[H₃O⁺] = 0.0362 mol/L

Now that we know the [H₃O⁺], we can calculate the pH: pH = -log[H₃O⁺]pH = -log(0.0362)pH = 1.44

Therefore, the pH of the given solution is 1.44.

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δs for the following reaction is positive. true or false? n2o4(g) → 2 no2(g)

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The entropy change (ΔS) for a reaction involving a decrease in the number of moles of gas molecules will be negative, while the entropy change for a reaction involving an increase in the number of moles of gas molecules will be positive. Therefore, for the given reaction:n2o4(g) → 2 no2(g). The number of gas molecules on the left side is one, while the number of gas molecules on the right side is two. As a result, there has been an increase in the number of moles of gas molecules (from one to two).Since the number of moles of gas molecules has increased in the reaction, we can conclude that the entropy change (ΔS) for the reaction is positive. Therefore, the statement "δs for the following reaction is positive" is true.

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The given statement, "The Δs for the following reaction is positive" is true. The Δs for the given reaction is positive (True). When we talk about entropy, we talk about the randomness, disorder, or chaos of a system.

The Δs or entropy change is a measure of the extent of randomness or disorder in the system, and it is expressed in joules per Kelvin (J/K).The Δs value can be positive, negative, or zero. If the entropy of the products is greater than that of the reactants, Δs will be positive. Δs will be negative if the entropy of the reactants is greater than that of the products, while Δs will be zero if there is no change in the system's randomness or disorder.The given reaction is:N2O4(g) → 2 NO2(g)The reaction has two molecules of NO2 in the product, whereas there is only one molecule of N2O4 in the reactant. As a result, there is a greater degree of randomness in the product than in the reactant. Hence, Δs for the given reaction is positive.Therefore, the given statement, "The Δs for the following reaction is positive" is true.

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calculate the enthalpy change, δh∘, for the reverse of the formation of methane: ch4(g)→c(s)+2h2(g)

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The enthalpy change, δH∘, for the reverse of the formation of methane is +74.8 kJ/mol.

The reverse of the formation of methane from carbon and hydrogen gas is given as, ch4(g)→c(s)+2h2(g).

The formation of methane from carbon and hydrogen gas is an exothermic reaction and the reverse reaction, which is the decomposition of methane, is an endothermic reaction.

To find the enthalpy change of the reverse reaction, δH°, we can use Hess's Law, which states that the enthalpy change of a reaction is independent of the route taken.

It means that the sum of the enthalpy changes of the reactants should be equal to the sum of the enthalpy changes of the products, regardless of the reaction pathway.

In this problem, we can use the enthalpy of formation of methane from its constituent elements, carbon and hydrogen.

The enthalpy change of the formation of methane is given by the following equation:

C(s) + 2H2(g) → CH4(g) ΔH° = –74.8 kJ/mol

This means that 74.8 kJ of heat is released when 1 mole of methane is formed from carbon and hydrogen gas.

Since the reverse reaction is the decomposition of methane into its constituent elements, the enthalpy change would be the opposite sign of the enthalpy change for the formation of methane.

Therefore,

ΔH°(reverse reaction) = -ΔH°(forward reaction) ΔH°(reverse reaction)

= -(-74.8 kJ/mol)ΔH°(reverse reaction)

= +74.8 kJ/mol

Thus, the enthalpy change, δH∘, for the reverse of the formation of methane is +74.8 kJ/mol.

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A sample of a gas occupies 2.0 Liters at 25 Celsius and 700 torr. What volume will it occupy at the constant temperature and 300 mmHg? A. 141 B. 6.0L C. 4.7L D. 11 L E. 7.0 L

Answers

the volume of the gas at a constant temperature and 300 mmHg is approximately 4.67 liters.

The closest option from the given choices is C. 4.7L.

To solve this problem, we can use Boyle's law, which states that the pressure and volume of a gas are inversely proportional at constant temperature.

Boyle's Law equation:

P1 * V1 = P2 * V2

where:

P1 = initial pressure (in torr)

V1 = initial volume (in liters)

P2 = final pressure (in mmHg)

V2 = final volume (to be determined)

Let's substitute the given values into the equation:

P1 = 700 torr

V1 = 2.0 liters

P2 = 300 mmHg (Note: we need to convert it to torr)

To convert mmHg to torr, we know that 1 torr is equal to 1 mmHg. Therefore:

P2 = 300 mmHg = 300 torr

Now we can solve for V2:

P1 * V1 = P2 * V2

(700 torr) * (2.0 L) = (300 torr) * V2

Simplifying the equation:

1400 L * torr = 300 torr * V2

Dividing both sides by 300 torr:

(1400 L * torr) / (300 torr) = V2

V2 ≈ 4.67 L

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calculate the standard potential, ∘, for this reaction from its equilibrium constant at 298 k. x(s) y3 (aq)↽−−⇀x3 (aq) y(s)=4.09×10−4

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In electrochemistry, the standard potential, represented by E∘, refers to the potential of an electrochemical half-cell when all reactants and products are in their standard state. This standard state means that all species in the half-cell are at a concentration of 1 M and are under 1 atm of pressure (for gases).

We can relate the standard potential to the equilibrium constant (K) through the Nernst Equation: E = E∘ − (RT/nF)ln(Q)where R is the gas constant, T is temperature (in K), n is the number of electrons transferred in the balanced half-reaction, F is the Faraday constant (96,485 C/mol), and Q is the reaction quotient. At standard conditions, Q = K and ln(Q) = 0, so the equation simplifies to: E = E∘ The given equation is x(s) y3 (aq) ⇽−−⇀ x3 (aq) y(s)The balanced half-reaction is:y3 (aq) + 3e− → y(s)So, n = 3 The given K is 4.09 × 10⁻⁴E = E∘ - (0.0592 V/n) log(K)E = E∘ - (0.0592 V/3) log(4.09 × 10⁻⁴)E = E∘ + 0.039 V Now, rearrange to solve for E∘:E∘ = E - 0.039 VE∘ = 0 - 0.039 VE∘ = -0.039 V Therefore, the standard potential, ∘, for the given reaction is -0.039 V.

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which isomer do you expect to have the higher standard molar entropy?

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The standard molar entropy of a substance is a measure of the degree of randomness or disorder of its particles. Generally, substances with more complex structures and more freedom of motion tend to have higher entropy values. In the case of isomers, the arrangement of atoms in the molecules is different, while the number and type of atoms are the same.

Therefore, the entropy of isomers is determined by the arrangement of atoms and their flexibility. If one isomer has a more ordered and rigid structure compared to the other, then it will have a lower standard molar entropy. Conversely, if one isomer has a more flexible and disordered structure, it will have a higher standard molar entropy. Thus, the isomer with a more complex and less ordered structure is expected to have a higher standard molar entropy.

When comparing isomers to determine which one has the higher standard molar entropy, you should consider their molecular complexity and freedom of motion. Generally, an isomer with more complex structure and greater freedom of motion will have higher standard molar entropy.


If you provide specific isomers to compare, I'd be happy to help you determine which one is expected to have the higher standard molar entropy.

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which organic compound has the primary function of energy storage

Answers

Answer: Anjlllkii

Explanation:

The organic compound that has the primary function of energy storage is triglycerides.

They are esters that are composed of a glycerol molecule linked with three fatty acids.

Triglycerides are also called triacylglycerols and are the primary constituents of body fat in human beings, and animal fats and vegetable oils are dietary sources of triglycerides.

Tridglycerides are stored in adipose tissue, which is the tissue that makes up the fat in the body.

When the body requires energy, the adipose tissue hydrolyzes triglycerides into glycerol and fatty acids.

The fatty acids are then broken down into acetyl-CoA by a process called β-oxidation.

The acetyl-CoA is then oxidized through the citric acid cycle to produce ATP, which is the body's main source of energy.

Therefore, triglycerides play a significant role in the storage and provision of energy for the body.

They are the primary form of long-term energy storage, while carbohydrates are the primary form of short-term energy storage.

Triglycerides are also involved in the transportation of fat-soluble vitamins and provide insulation and protection to the body's organs.

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what is the future of gas chromatography based on the experts

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Miniaturization and Portability: The trend towards miniaturization and portability is likely to continue in gas chromatography.

This includes the development of smaller, more compact GC instruments that can be used in field applications and point-of-care testing. Portable GC systems offer convenience and flexibility in various industries such as environmental monitoring, food safety, and pharmaceuticals.Advances in Column Technology: Continuous improvements in column technology are expected, focusing on higher efficiency and selectivity. New column materials, coatings, and stationary phases are being developed to enhance separation capabilities, increase sensitivity, and reduce analysis time.

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C(diamond) + C(graphite) AG"=-29 kJ/mol. Which of the following best explains why the reaction represented above is not observed to occur at room temperature? a. The entropy of the system decreases because the carbon atoms in graphite are less ordered than those in Lamond. b. The reaction has an extremely large activation energy due to strong three- dimensional bonding among carbon atoms in diamond. c. The reaction does not occur because it is not thermodynamically favorable d. The rate of the reaction is extremely slow because of the relatively small value of LaTeX:\DeltaGo for the reaction.

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The best explanation of why the reaction represented above is not observed to occur at room temperature is due to the reaction has an extremely large activation energy because of the strong three-dimensional bonding

among carbon atoms in diamond. The statement is option B.Explanation: Activation energy is the minimum amount of energy required to start a chemical reaction. For a reaction to occur, the energy provided to the reactant should be sufficient enough to reach the activation energy. The reaction represented above is C(diamond) + C(graphite) → 2C which is an exothermic reaction with ΔG° = -29 kJ/mol. Diamond and graphite are two different allotropes of carbon that exist in two different structures. In diamond, each carbon atom forms four covalent bonds with other carbon atoms to form a tetrahedral structure. The strong 3-D bonding between carbon atoms in diamond is why diamond is hard and has a high melting point. On the other hand, graphite has a planar hexagonal structure where each carbon atom forms three covalent bonds with other carbon atoms. Because of this bonding, graphite is soft and has a low melting point.The reaction represented above is an example of a high-temperature reaction. At room temperature, there is not enough energy to overcome the strong three-dimensional bonding among carbon atoms in diamond. Therefore, the reaction does not occur at room temperature.

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the aka of a weak monoprotic acid is 1.31×10−5.1.31×10−5. what is the ph of a 0.0812 m0.0812 m solution of this acid?

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The pH of a 0.0812 M solution of a weak monoprotic acid with an acid dissociation constant (Ka) of 1.31×10⁻⁵ is be calculated as 3.69

Step 1: Write the equation for the dissociation of the weak acid in water. HA(aq) + H₂O(l) ⇌H₃O⁺(aq) + A⁻(aq)

Step 2: Write the expression for the acid dissociation constant (Ka) for the weak acid. Ka = [H₃O⁺][A⁻] / [HA]

Step 3: Substitute the known values into the expression for Ka and solve for [H3O+].Ka = [H₃O⁺][A-] / [HA]1.31 × 10⁻⁵ = [H₃O⁺]2 / 0.0812[H₃O⁺] = 2.04 × 10⁻⁴ M

Step 4: Calculate the pH of the solution using the following equation: pH = -log[H₃O⁺]pH = -log(2.04 × 10⁻⁴)pH = 3.69

Therefore, the pH of a 0.0812 M solution of this weak monoprotic acid is 3.69.

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A specific brand of carbonated soft drink contains about 0.240 mole% carbon dioxide dissolved in solution. The Henry's Law constant for CO2 in pure water is about 1290 atm at 17.5 °C Mass of CO2 Correct Calculate the mass of CO2 in a 355 milliliter container of the soda. In the absence of other data, assume that the drink is just CO, and water. m 2.000020 eTextbook and Media Hint Calculate the total pressure inside the can at a temperature of 17.5°C. P atm What is the mole fraction of water in the head space above the liquid in the closed container? Уно Hin The container is opened and remains at 17.5°C until the co, equilibrates with an atmosphere of 0.03 mole% CO2 inalrat 1 atm pressure What is the mass of Co, that remains dissolved in the spent beverage? What is the volume of Co, that has been discharged from the container?

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the volume of CO2 that has been discharged from the container is 0.848 mL.The given information is:Hence, the first step is to calculate the pressure of CO2 using Henry's law as follows:

Pressure of CO2 = Henry's law constant × Mole fraction of CO2Pressure of CO2 = 1290 atm × (0.240/10,000)Pressure of CO2 = 0.031 atmThen, calculate the total pressure inside the can at a temperature of 17.5°C:Total pressure inside the can = Pressure of CO2 + Vapor pressure of water at 17.5°CTotal pressure inside the can = 0.031 atm + 0.0218 atmTotal pressure inside the can = 0.0528 atmThe mole fraction of water in the head space above the liquid in the closed container can be calculated as follows:Mole fraction of water = (Partial pressure of water)/(Total pressure inside the can)Mole fraction of water = 0.0218 atm/0.0528 atmMole fraction of water = 0.413The mass of CO2 in a 355 milliliter container of the soda can be calculated as follows:Mass of CO2 = (Molar mass of CO2) × (Number of moles of CO2)Number of moles of CO2 = (Mole fraction of CO2) × (Total number of moles)Total number of moles = (Volume of container)/(Molar volume of gas at STP)Total number of moles = (355/1000) L × [(0.0528 atm)(1 L)/(0.08206 L·atm/mol·K)(290.65 K)]Total number of moles = 0.00985 molNumber of moles of CO2 = (0.240/10,000) × 0.00985 molNumber of moles of CO2 = 2.36475 × 10^-6 molMass of CO2 = (44.01 g/mol) × 2.36475 × 10^-6 molMass of CO2 = 0.0001038 gThe mass of CO2 that remains dissolved in the spent  can be calculated as follows:Mass of CO2 = (Molar mass of CO2) × (Number of moles of CO2)Number of moles of CO2 = (Mole fraction of CO2) × (Total number of moles)Total number of moles = (Volume of container)/(Molar volume of gas at STP)Total number of moles = (355/1000) L × [(1 atm)(1 L)/(0.08206 L·atm/mol·K)(290.65 K)]Total number of moles = 0.0133 molNumber of moles of CO2 = (0.240/10,000) × 0.0133 molNumber of moles of CO2 = 3.171 × 10^-6 molMass of CO2 = (44.01 g/mol) × 3.171 × 10^-6 molMass of CO2 = 0.0001396 gThe volume of CO2 that has been discharged from the container can be calculated as follows:Number of moles of CO2 that has been discharged = (Mole fraction of CO2 in atmosphere) × (Total number of moles)Total number of moles = (Volume of container)/(Molar volume of gas at STP)Total number of moles = (355/1000) L × [(1 atm)(1 L)/(0.08206 L·atm/mol·K)(290.65 K)]Total number of moles = 0.0133 molNumber of moles of CO2 that has been discharged = (0.03/10,000) × 0.0133 molNumber of moles of CO2 that has been discharged = 3.99 × 10^-6 molThe volume of CO2 that has been discharged from the container can be calculated as follows:Volume of CO2 that has been discharged = (Number of moles of CO2 that has been discharged) × (Molar volume of gas at STP)Volume of CO2 that has been discharged = (3.99 × 10^-6 mol) × [(0.08206 L·atm/mol·K)(273.15 K)/(1 atm)]Volume of CO2 that has been discharged = 8.48 × 10^-4 L (or 0.848 mL)Therefore, the mass of CO2 in a 355 milliliter container of the soda is 0.0001038 g, the total pressure inside the can at a temperature of 17.5°C is 0.0528 atm, the mole fraction of water in the head space above the liquid in the closed container is 0.413, the mass of CO2 that remains dissolved in the spent beverage is 0.0001396 g

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Water can react as both an acid and a base, depending on its environment. Because of this characteristic, water is a(n) a. amphoteric molecule. O b. autonomous C. complex O d. reactive e. conjugated QUESTION 53 A weak acid is also a a. weak electrolyte b. strong electrolyte c. nonelectrolyte O d. weak base because it produces a low concentration of ions in solution. e. strong acid QUESTION 54 The following reaction is a reversible reaction. Which of the following statements best describes what it means for this reaction to be reversible? HCOOHH2O HCOO H30+ a. This reaction only occurs in the reverse direction as written above. b. All of the reactant molecules react to make product and then all of the product molecules react to make reactants again. c. Forward and reverse reactions proceed at the same rate. d. Forward and reverse reactions occur simultaneously. e. The rate of the reverse reaction is must faster than the rate of the forward reaction.

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Water is an amphoteric molecule, meaning it can act as both an acid and a base depending on its environment. A weak acid is a weak electrolyte because it produces a low concentration of ions in solution.

Lastly, a reversible reaction means that the forward and reverse reactions occur simultaneously and can proceed at different rates, with the rate of the reverse reaction potentially being faster than the rate of the forward reaction. In the given reaction, HCOOH + H2O  HCOO- + H3O+, the reaction is reversible and can proceed in both the forward and reverse directions.

Water can react as both an acid and a base depending on its environment, making it an amphoteric molecule. A weak acid is also a weak electrolyte because it produces a low concentration of ions in solution. In a reversible reaction like HCOOH + H2O  HCOO- + H3O+, forward and reverse reactions occur simultaneously.

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assign an oxidation number to each atom in the reactants. na2s(aq)+nicl2(aq)→2nacl(aq)+nis(s)

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The oxidation numbers of each atom in the given reaction are as follows:

Na: +1, S: -2, Ni: +2, Cl: -1

In the given equation,Na2S(aq) + NiCl2(aq) → 2NaCl(aq) + NiS(s)

To assign oxidation numbers to the atoms in the reactants.

In the compound Na2S, Sodium (Na) has an oxidation number of +1, and sulfur (S) has -2 as it's oxidation number.

In the compound NiCl2, Nickel (Ni) has an oxidation number of +2, and Chlorine (Cl) has an oxidation number of -1.

Oxidation numbers in products are also assigned in the same manner.

2NaCl is formed as a result of combining two Na+ ions and two Cl- ions.

The oxidation state of both Na and Cl is +1 and -1, respectively.

NiS(s) is formed by combining Ni2+ and S2- ions.

The oxidation state of nickel in NiS is +2, while the oxidation state of sulfur is -2.

Thus, the oxidation states of Na, S, Ni, and Cl are +1, -2, +2, and -1, respectively.

The oxidation numbers of each atom in the given reaction are as follows:

Na: +1S: -2Ni: +2Cl: -1

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chromatography separates solutions on the basis of while distillation separates solutions on the basis of

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Distillation, separates solutions based on the differences in boiling points of the components.

What is distillation?

Based on the components of the mixture's varying affinities for a stationary phase and a mobile phase, chromatography separates solutions. The mobile phase is often a liquid or a gas, while the stationary phase might be either a solid or a liquid.

Contrarily, distillation divides solutions according to variations in the components' boiling points. The lower boiling point component will evaporate and ascend as a vapor when a combination is heated, whereas the higher boiling point component will remain in the liquid phase.

This technique takes advantage of the fact that various substances have varying boiling points. A purified component is then obtained by condensing and collecting the vapor.

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A beaker of liquid water in a sealed container is allowed to reach equilibrium vapor pressure. What happens to the concentration of water vapor in the beaker from the time the water is placed in the beaker until equilibrium is reached?

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The concentration of water vapor in the beaker will increase steadily until the equilibrium point is reached when a beaker of liquid water in a sealed container is allowed to reach equilibrium vapor pressure.

When a beaker of liquid water in a sealed container is allowed to reach equilibrium vapor pressure, the concentration of water vapor in the beaker from the time the water is placed in the beaker until equilibrium is reached will increase steadily. This happens due to the process of evaporation.Evaporation is a process in which liquid water gets converted into water vapor. It is a phase transition from liquid state to a gaseous state that takes place at a temperature below the boiling point of the liquid.

Evaporation takes place at the surface of the liquid, and it requires energy from the surroundings to happen.This process continues until the vapor pressure of the water vapor in the beaker becomes equal to the equilibrium vapor pressure of the water. At this point, the concentration of water vapor in the beaker will not change, as the rate of evaporation and the rate of condensation will become equal. This point is called the equilibrium point.Therefore, the concentration of water vapor in the beaker will increase steadily until the equilibrium point is reached when a beaker of liquid water in a sealed container is allowed to reach equilibrium vapor pressure.

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which of the following halides cannot be used for Friedel-Crafts alkylation reaction? Select one: a bromobenzene b. vinylchloride c. 2-chloropropane d. chloroethane O O e. both A& B

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e. both A & B halides cannot be used for Friedel-Crafts alkylation reaction.

Both bromobenzene (option a) and vinyl chloride (option b) cannot be used for the Friedel-Crafts alkylation reaction.

The Friedel-Crafts alkylation reaction involves the introduction of an alkyl group onto an aromatic ring using a Lewis acid catalyst, typically aluminum chloride (AlCl₃). However, bromobenzene cannot undergo the Friedel-Crafts alkylation reaction because the reaction requires the presence of a halide that is more reactive than bromide. Bromobenzene is relatively unreactive in this reaction.

Similarly, vinyl chloride, which is an alkene, cannot undergo the Friedel-Crafts alkylation reaction because it does not possess an alkyl group that can be introduced onto the aromatic ring. The reaction requires the introduction of an alkyl group (an alkane) onto the aromatic ring.

Therefore, both bromobenzene and vinyl chloride cannot be used for the Friedel-Crafts alkylation reaction.

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the hydrides of group 5a are nh3, ph3, ash3, and sbh3. arrange them from highest to lowest intermolecular forces.

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The order of intermolecular forces in the hydrides of group 5A is NH3 > PH3 > AsH3 > SbH3.

This is because the intermolecular forces are inversely proportional to the size of the molecules.

:Intermolecular forces are the forces of attraction and repulsion that exist between molecules. These forces can be classified into four categories:London dispersion forces, dipole-dipole forces, hydrogen bonding, and ion-dipole forces. The strength of these forces increases as the size of the molecule increases.Therefore, the order of intermolecular forces in the hydrides of group 5A is NH3 > PH3 > AsH3 > SbH3.

This is because the size of the molecules decreases as you move from NH3 to SbH3. NH3 has the highest intermolecular forces because it is the largest molecule, while SbH3 has the lowest intermolecular forces because it is the smallest molecule.

Summary: The hydrides of group 5A are NH3, PH3, AsH3, and SbH3. The order of intermolecular forces in these molecules is NH3 > PH3 > AsH3 > SbH3. This is because the intermolecular forces are inversely proportional to the size of the molecules.

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identify the oxidizing agent in the following reaction: zn (s) cucl2 (aq) --> zncl2 (aq) cu (s)

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The oxidizing agent in the given reaction is CuCl2.

In the reaction, Zinc (Zn) is being oxidized to form Zn2+ ions.

This means that Zn is losing electrons to form Zn2+.

This makes Zn the reducing agent .

On the other hand, Cu2+ ions are gaining electrons to form solid copper (Cu). This makes Cu2+ ions the oxidizing agent.Thus, the balanced equation is given below:Zn (s) + CuCl2 (aq) → ZnCl2 (aq) + Cu The oxidizing agent in the reaction: Zn (s) + CuCl2 (aq) → ZnCl2 (aq) + Cu (s) is CuCl2.

:In the given reaction, Zinc is oxidized and Copper ions are reduced, therefore the oxidizing agent is CuCl2.The oxidation half reaction is given below: Zn(s) → Zn2+(aq) + 2e-Reduction half reaction is given below: Cu2+(aq) + 2e- → Cu(s)CuCl2 gets reduced to Cu and Zinc gets oxidized to form Zn2+ ions.

Summary:Thus, the oxidizing agent in the given reaction is CuCl2.

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the equilibrium constant kp for the reaction co(g) cl2(g) ⥫⥬ cocl2(g) is 5.62 × 1035 at 25°c. calculate δg°f for cocl2 at 25°c.

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In thermodynamics, the Gibbs energy change, ΔG°f, measures the free energy transformation of a chemical reaction at standard conditions. the Gibbs energy change, ΔG°f of CoCl2 at 25°C is 89.87 kJ/mol.

Using the Equilibrium constant, we can calculate the free energy change, ΔG°f of the given reaction, which is Co(g) + Cl2(g) ⇌ CoCl2(g). The equation for free energy change at standard conditions and equilibrium constant is:ΔG° = -RTlnKpHere, Kp is the equilibrium constant. R is the universal gas constant (8.314 J/K·mol), T is the temperature in Kelvin (K), and ln is the natural logarithm. For the given equation, the values are given as follows: Kp = 5.62 × 10^35 at 25°C.T = 298K.ΔG° =?Therefore, the equation for the Gibbs energy change, ΔG°f of the given reaction is:ΔG°f = ΔG°f(COCl2) - [ΔG°f(CO) + ΔG°f(Cl2)]We need to use the standard values of free energy of formation of the elements given in the table to calculate ΔG°f of COCl2. The standard values of free energy of formation at 298K are:ΔG°f(CO) = -110.53 kJ/molΔG°f(Cl2) = 0 kJ/molΔG°f(COCl2) =?Now, substitute all the values into the equation for ΔG°:ΔG° = -RT ln KpΔG° = -8.314 × 298 × ln (5.62 × 10^35)ΔG° = -8.314 × 298 × 80.221ΔG° = -200,404.6 J/molΔG°f(COCl2) = ΔG°f(CO) + ΔG°f(Cl2) - ΔG°ΔG°f(COCl2) = -110.53 + 0 - (-200404.6 / 1000)ΔG°f(COCl2) = -110.53 + 200.40ΔG°f(COCl2) = 89.87 kJ/molHence, the Gibbs energy change, ΔG°f of CoCl2 at 25°C is 89.87 kJ/mol.

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h2(g)+f2(g) ⟶ 2h+(aq)+2f−(aq) express the potential in volts to two decimal places.

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The potential of the reaction H2(g) + F2(g) ⟶ 2H+(aq) + 2F-(aq) is +2.87 volts.

The potential of the reaction H2(g) + F2(g) ⟶ 2H+(aq) + 2F-(aq) is determined by the difference in standard reduction potentials of the involved species.

The potential of a reaction can be calculated using the Nernst equation, which relates the standard reduction potentials of the species involved and the concentrations of reactants and products. In this reaction, hydrogen gas (H2) is being oxidized to form hydrogen ions (H+) while fluorine gas (F2) is being reduced to form fluoride ions (F-).

The standard reduction potentials for the half-reactions are as follows:

H2(g) ⟶ 2H+(aq) + 2e- E° = 0.00 V

F2(g) + 2e- ⟶ 2F-(aq) E° = +2.87 V

To calculate the potential of the overall reaction, we subtract the reduction potential of the oxidized species from the reduction potential of the reduced species:

E°reaction = E°reduction (reduced species) - E°reduction (oxidized species)

E°reaction = (+2.87 V) - (0.00 V)

E°reaction = +2.87 V

Therefore, the potential of the reaction H2(g) + F2(g) ⟶ 2H+(aq) + 2F-(aq) is +2.87 volts.

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