Rank the following acids in strength (from weakest to strongest):
A) HNO2
B) HOCl
C) HCN
D) HI

Answers

Answer 1

The ranking of the acid from weakest to strongest is: A) HNO₂. C) HCN. B) HOCl . D) HI is Correct form.


The strength of an acid is determined by its ability to donate a hydrogen ion (H+). The more stable the conjugate base of the acid is, the stronger the acid.
HNO₂ (nitrous acid) is the weakest acid because its conjugate base (NO²⁻) is relatively stable due to resonance stabilization.
HCN (hydrocyanic acid) is slightly stronger than HNO₂ because its conjugate base (CN⁻) is less stable due to the high electronegativity of the nitrogen atom.
HOCl (hypochlorous acid) is stronger than both HNO₂ and HCN because its conjugate base (OCl⁻) is even less stable due to the high electronegativity of both the oxygen and chlorine atoms.
HI (hydroiodic acid) is the strongest acid on the list because its conjugate base (I⁻) is the most unstable due to the large size of the iodine atom, which makes it difficult to stabilize the negative charge.

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Related Questions

the density of krypton gas at 0.970 atm and 29.8°c is ________ g/l.

Answers

The density of krypton gas at 0.970 atm and 29.8°C is 3.57 g/L.

To find the density of krypton gas, we can use the Ideal Gas Law formula (PV=nRT) and the density formula (density = mass/volume). First, rearrange the Ideal Gas Law formula to solve for n/V (number of moles per volume), which is n/V = P/RT.

1. Convert the temperature to Kelvin: 29.8°C + 273.15 = 302.95 K


2. Use the Ideal Gas constant R: 0.0821 L atm/(mol K)


3. Plug in the values into the formula: n/V = (0.970 atm)/(0.0821 L atm/(mol K) x 302.95 K) = 0.03956 mol/L


4. Krypton has a molar mass of 83.8 g/mol. Multiply n/V by the molar mass to get the density: 0.03956 mol/L x 83.8 g/mol = 3.57 g/L.

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Galvanized steel, used in construction and infrastructure, consists of steel (mostly iron) coated with an outer layer of zinc metal. How does galvanizing steel protect the steel from corrosion?

Answers

Galvanizing steel involves coating the steel with a layer of zinc metal, which acts as a sacrificial anode.

When the steel is exposed to corrosive elements, such as moisture or salt, the zinc layer corrodes instead of the steel. This process is known as cathodic protection. The zinc layer corrodes slowly over time, while the steel remains protected. Additionally, the zinc layer also provides a barrier between the steel and the environment, preventing direct contact and further reducing the risk of corrosion. Therefore, galvanizing steel helps to protect the steel from corrosion and prolongs its lifespan.
Hi! Galvanized steel, used in construction and infrastructure, consists of steel (mostly iron) coated with an outer layer of zinc metal. The process of galvanizing protects the steel from corrosion by providing a barrier between the steel and the environment, as well as offering sacrificial protection. The zinc layer corrodes preferentially, preventing the underlying steel from rusting and extending its lifespan.

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10 effect of added ki. use equation 16.12 to account for your observation. explain.

Answers

The 10 effects of adding KI are:

1) Adding KI can increase the rate of a reaction.

2) Adding KI can decrease the rate of a reaction.

3) Adding KI can decrease the activation energy of a reaction.

4) Adding KI can increase the activation energy of a reaction.

5) Adding KI can change the pre-exponential factor of a reaction.

6) Adding KI can change the temperature of a reaction.

7) Adding KI can change the reaction mechanism.

8)Adding KI can change the equilibrium of a reaction.

9) Equation 16.12 can be used to account for these observations.

10) KI can affect product selectivity.

What is the effect of adding KI?

10 effects that adding KI could have on a chemical reaction, along with an explanation using Equation 16.12 to account for each observation:

1) If adding KI increases the rate of the reaction, then the rate constant k must have increased. This could be due to KI acting as a catalyst, reducing the activation energy required for the reaction to occur. The equation to account for this would be:

k = A * e^(-Ea/RT)

If KI lowers Ea, then k will increase, resulting in a faster reaction rate.

2) If adding KI decreases the rate of the reaction, then the rate constant k must have decreased. This could be due to KI reacting with one of the reactants or products, reducing its concentration and thus decreasing the rate of the reaction. The equation to account for this would be:

k = A * e^(-Ea/RT)

3) If KI lowers the concentration of a reactant, then k will decrease, resulting in a slower reaction rate.

If adding KI increases the activation energy of the reaction, then the rate constant k will decrease, resulting in a slower reaction rate. The equation to account for this would be:

k = A * e^(-Ea/RT)

If KI increases Ea, then k will decrease, resulting in a slower reaction rate.

4) If adding KI changes the pre-exponential factor A of the reaction, then the rate constant k will change in proportion to A, resulting in a faster or slower reaction rate. The equation to account for this would be:

k = A * e^(-Ea/RT)

If KI changes A, then k will change accordingly, resulting in a faster or slower reaction rate.

5) If adding KI changes the temperature of the reaction, then the rate constant k will change exponentially with respect to the change in temperature, resulting in a faster or slower reaction rate. The equation to account for this would be:

k = A * e^(-Ea/RT)

If KI changes the temperature, then the exponential term e^(-Ea/RT) will change, resulting in a faster or slower reaction rate.

6) If adding KI changes the reaction mechanism, then the rate constant k and the activation energy Ea may both change. The equation to account for this would still be:

k = A * e^(-Ea/RT)

However, the value of Ea and/or A may be different in the new mechanism, resulting in a different rate constant and reaction rate.

7) If adding KI changes the equilibrium constant of the reaction, then the concentrations of reactants and products will change, and the reaction rate will either increase or decrease depending on the nature of the equilibrium shift. The equation to account for this would be:

k = A * e^(-Ea/RT)

However, the concentrations of reactants and products will be different in the new equilibrium, resulting in a different value of k and reaction rate.

8) If adding KI changes the stoichiometry of the reaction, then the rate constant k may change depending on the new reaction pathway and intermediate species involved. The equation to account for this would still be:

k = A * e^(-Ea/RT)

However, the value of A and/or Ea may be different in the new stoichiometry, resulting in a different rate constant and reaction rate.

9) If adding KI acts as an inhibitor or a poison for the reaction, then the rate constant k will decrease, resulting in a slower reaction rate. The equation to account for this would be:

k = A * e^(-E

10) KI can affect the selectivity of the reaction by promoting or inhibiting the formation of certain products, depending on the reaction conditions and the reaction mechanism.

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aldol condensation is a reaction between choose... and/or choose... . in addition to the organic product, choose... is also formed.

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Aldol condensation is a reaction between ketones and/or aldehydes. In addition to the organic product, HCI is also formed.

Aldol condensation is a reaction between two carbonyl compounds, typically an aldehyde and a ketone, in the presence of a base catalyst. The reaction involves the formation of an enolate ion from one of the carbonyl compounds, which then attacks the carbonyl carbon of the other compound, leading to the formation of a beta-hydroxy carbonyl compound known as an aldol. The reaction is named after the aldol product that is formed, which can exist in both a cis and trans configuration.

In addition to the aldol product, water is also formed as a byproduct of the reaction. The mechanism of the reaction can involve both intra- and intermolecular reactions, leading to the formation of different types of aldols.

Overall, aldol condensation is an important reaction in organic chemistry, used in the synthesis of a variety of compounds, including pharmaceuticals and natural products. It is a versatile reaction that can be used to form carbon-carbon bonds and functionalize molecules in a variety of ways.

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2. when looking at newman projections are there instances where the staggered comformation is not the lowest in energy? explain your answer.

Answers

When considering Newman projections, the staggered conformation is usually the lowest in energy due to minimized steric hindrance between substituents.

However, in certain cases, such as when attractive interactions like hydrogen bonding or stabilizing groups are present, a non-staggered conformation might be lower in energy. These specific cases depend on the molecules involved and the stabilizing forces at play.

Also, there are instances where the staggered conformation is not the lowest in energy in Newman projections. This can happen when the molecule has bulky substituents or if there is a cis arrangement of the substituents. In these cases, the eclipsed conformation may be lower in energy because the bulky substituents experience less steric strain in the eclipsed conformation. Additionally, in cis arrangements, the eclipsed conformation may be favored because it allows for greater conjugation and stability of the molecule.

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A. What is the pH at the equivalence point?
B. What is the volume of added acid at the equivalence point?
C. At what volume of added acid is the pH calculated by working an equilibrium problem based on the initial concentration and Kb of the weak base?
D. At what volume of added acid does pH=14-pKb?
E. At what volume of added acid is the pH calculated by working an equilibrium problem based on the concentration and Ka of the conjugate acid?

Answers

In a weak acid-strong base titration, the equivalence point is greater than 7. In a strong acid-weak base titration, the equivalence point is less than 7.

A. The pH at the equivalence point depends on the nature of the acid and base being titrated, as well as their concentrations. In a strong acid-strong base titration, the equivalence point is pH 7. In a weak acid-strong base titration, the equivalence point is greater than 7. In a strong acid-weak base titration, the equivalence point is less than 7.

B. The volume of added acid at the equivalence point can be calculated by using the formula: moles of acid = moles of base. Once the moles of acid and base are equal, the equivalence point is reached.

C. The pH calculated by working an equilibrium problem based on the initial concentration and Kb of the weak base is equal to the pKb of the weak base at half-equivalence point. The volume of added acid required to reach half-equivalence point can be calculated using the formula: moles of acid = (1/2) x moles of base.

D. At the volume of added acid where pH=14-pKb, the weak base is half-neutralized and the solution contains equal concentrations of the weak base and its conjugate acid. This is also the half-equivalence point. The volume of added acid required to reach this point can be calculated using the formula: moles of acid = (1/2) x moles of base.

E. At the volume of added acid where the pH is calculated by working an equilibrium problem based on the concentration and Ka of the conjugate acid, the weak base is completely neutralized and the solution contains only the conjugate acid. The volume of added acid required to reach this point can be calculated using the formula: moles of acid = moles of base.

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Rank the following anions in terms of their base strength, beginning with the weakest and ending with the strongest: HCO3-, Br-, OH-
a. HCO3- < Br- < OH-
b. OH- < Br- < HCO3-
c. Br- < HCO3- < OH-
d. Br- < OH- < HCO3-

Answers

The correct order, beginning with the weakest and ending with the strongest base, is:

a. HCO3- < Br- < OH-

This means that HCO3- is the weakest base, followed by Br-, and finally, OH- is the strongest base among the given anions.

Basicity is the number of replaceable hydrogen atoms in a particular acid. Conjugate acid of a weak base is always stronger and conjugate base of weak acid is always strong. The larger the Kb, the stronger the base and the higher the OH− concentration at equilibrium

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What is the sulfate ion concentration of the resulting solution when 75.0 mL of 1.50 M CuSO4 and 50.0 mL of 1.00 M CO2(SO4)3 are mixed together? Select an answer and submit. a 4.50 M b 2.50 M с 2.10 M d 1.30 M e 1.25 M

Answers

The sulfate ion concentration of the resulting solution when 75.0 mL of 1.50 M CuSO₄ and 50.0 mL of 1.00 M CO₂(SO₄)₃ are mixed together is (c) 2.10 M.

To find the sulfate ion concentration in the resulting solution, first, determine the moles of sulfate ions contributed by each compound, then calculate the total volume of the solution and finally, find the concentration.

For CuSO₄:
75.0 mL * 1.50 mol/L = 112.5 mmol sulfate ions

For CO₂(SO₄)₃ (note that there are 3 sulfate ions in this compound):
50.0 mL * 1.00 mol/L * 3 = 150 mmol sulfate ions

Total moles of sulfate ions = 112.5 mmol + 150 mmol = 262.5 mmol

Total volume of the solution = 75.0 mL + 50.0 mL = 125.0 mL

Sulfate ion concentration = (262.5 mmol) / (125.0 mL) = 2.1 mol/L

So, the answer is c) 2.10 M.

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what is the ph of a solution prepared by mixing 50.00 ml of 0.10m nh3 with 20.00 ml of 0.010 nh4cl? assume that the volume of the solutions are additive and that ka=1.8×10−5 for nh3

Answers

To find the pH of the solution, we need to calculate the concentrations of [tex]NH_{3}[/tex] and[tex]NH_{4}^{+}[/tex]in the mixed solution and then use the equilibrium constants to determine the concentration of [tex]H_{3} O^{+}[/tex] ions. the pH of the solution is approximately 11.43.

Calculate the moles of [tex]NH_{3}[/tex] and [tex]NH_{4}^{+}[/tex]:

n([tex]NH_{3}[/tex]) = 0.050 L x 0.10 mol/L = 0.005 mol

n([tex]NH_{4}^{+}[/tex]) = 0.020 L x 0.010 mol/L = 0.0002 mol

Calculate the total volume of the mixed solution:

V = 0.050 L + 0.020 L = 0.070 L

Calculate the concentrations of [tex]NH_{3}[/tex] and [tex]NH_{4}^{+}[/tex] in the mixed solution:

[[tex]NH_{3}[/tex]] = n([tex]NH_{3}[/tex]) / V = 0.005 mol / 0.070 L = 0.071 M

[[tex]NH_{4}^{+}[/tex]] = n([tex]NH_{4}^{+}[/tex]) / V = 0.0002 mol / 0.070 L = 0.0029 M

Calculate the concentration of [tex]OH^{-}[/tex] ions from the reaction between [tex]NH_{3}[/tex] and [tex]H_{2} O[/tex]:

Kb = [[tex]NH_{4}^{+}[/tex]][[tex]OH^{-}[/tex]] / [[tex]NH_{3}[/tex]] = 1.8 x [tex]10^{-5}[/tex]

[[tex]OH^{-}[/tex]] = sqrt(Kb[[tex]NH_{3}[/tex]]) = sqrt(1.8 x [tex]10^{-5}[/tex]  x 0.071) = 2.68 x [tex]10^{-3}[/tex] M

Calculate the concentration of [tex]H_{3} O^{+}[/tex] ions from the ion product constant:

Kw = [[tex]H_{3} O^{+}[/tex]][[tex]OH^{-}[/tex]] = 1.0 x [tex]10^{-14}[/tex]

[[tex]H_{3} O^{+}[/tex]] = Kw / [[tex]OH^{-}[/tex]] = 1.0 x [tex]10^{-14}[/tex] / 2.68 x [tex]10^{-3}[/tex] M = 3.73 x [tex]10^{-12}[/tex] M

Calculate the pH of the solution:

pH = -log[[tex]H_{3} O^{+}[/tex]] = -log(3.73 x [tex]10^{-12}[/tex]) = 11.43

Therefore, the pH of the solution is approximately 11.43.

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Find the pH of each mixture of acids. 0.190 m in hcho2 (ka=1.8×10−4) and 0.220 m in hc2h3o2 (ka=1.8×10−5)

Answers

The pH of each mixture of acids: 0.190 M in HCHO₂ (ka = 1.8 × 10⁻⁴) and 0.220 M in HC₂H₃O₂ (ka = 1.8×10⁻⁵) is 2.72

To find the pH of each mixture of acids, we need to use the following equation:

Ka = [H⁺][A⁻]/[HA]

where Ka is the acid dissociation constant, [H₊] is the hydrogen ion concentration, [A⁻] is the concentration of the conjugate base, and [HA] is the concentration of the acid.

For the first acid, HCHO₂, the Ka value is 1.8×10⁻⁴. Let x be the concentration of [H⁺]. Then the concentrations of [CHO₂⁻] and [HCHO₂] are both (0.190 - x). Substituting these values into the equation above, we get:

1.8×10⁻⁴ = x₂ / (0.190 - x)

Solving for x, we get x = 0.0067 M. Therefore, the pH of the solution is:

pH = -log(0.0067) = 2.17

For the second acid, HC₂H₃O₂, the Ka value is 1.8×10⁻⁵. Let y be the concentration of [H⁺]. Then the concentrations of [C₂H₃O₂⁻] and [HC₂H₃O₂] are both (0.220 - y). Substituting these values into the equation above, we get:

1.8×10⁻⁵ = y² / (0.220 - y)

Solving for y, we get y = 0.0019 M. Therefore, the pH of the solution is:

pH = -log(0.0019) = 2.72



Thus, the pH of each mixture of acids is 2.72.

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Which solid does not react with a small amount of 3 M HNO 3 ? (A) calcium carbonate (B) manganese(II) sulfide (C) potassium sulfite (D) silver chloride

Answers

The solid does not react with a small amount of 3 M HNO3 is (D) silver chloride.

Your answer: (D) silver chloride does not react with a small amount of 3 M HNO3. This is because silver chloride is relatively insoluble in nitric acid, unlike the other solids which will react to form various products.

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The solid that does not react with a small amount of 3 M HNO₃ is silver chloride (AgCl). The correct option is (D).

Silver chloride is an insoluble ionic compound, which means it does not dissolve well in water or other common solvents. When HNO₃ (nitric acid) comes into contact with the other solids, chemical reactions occur.

(A) Calcium carbonate (CaCO₃) reacts with HNO₃, producing calcium nitrate (Ca(NO₃)₂), carbon dioxide (CO₂), and water (H₂O). This reaction is due to the acidic nature of HNO₃, which can cause the release of CO₂ from CaCO₃.

(B) Manganese(II) sulfide (MnS) reacts with HNO₃, producing manganese(II) nitrate (Mn(NO₃)₂), hydrogen sulfide (H₂S), and water (H₂O). In this case, the acid reacts with the sulfide, forming hydrogen sulfide gas as a product.

(C) Potassium sulfite (K₂SO₃) also reacts with HNO₃, resulting in the formation of potassium nitrate (KNO₃) and sulfuric acid (H₂SO₄). The acid reacts with the sulfite, creating a sulfate compound and a nitrate salt.

In conclusion, silver chloride (D) does not react with a small amount of 3 M HNO₃, while the other solids undergo chemical reactions when exposed to the acid. This is due to AgCl's insoluble nature and its inability to form new compounds under these conditions.

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The equilibrium constant for the reaction A(g) → B(g)is 102. A reaction mixture initially contains [A] = 22.4M and [B] = 0.0M. Which statement is true at equilibrium?

a. The reaction mixture contains[A] = 1.0M and [B] = 21.4M. b). The reaction mixture contains [A] = 22.2M and [B] = 0.2M. c). The reaction mixture contains [A] = 0.2Mand [B] = 22.2M. d). The reaction mixture contains [A] = 11.2M and [B] = 11.2M.

Answers

The reaction mixture contains [A] = 22.2M and [B] = 0.2M. (B)

This is because the equilibrium constant, Kc, tells us the ratio of the concentration of products to reactants at equilibrium. In this case, Kc = [B]/[A] = 102. Therefore, as the reaction proceeds, the concentration of A will decrease while the concentration of B will increase until they reach equilibrium.

Using the equilibrium constant expression, [B]/[A] = 102, and the initial concentration of A, [A] = 22.4M, we can solve for the equilibrium concentrations of A and B. [B]/[A] = 102 = [B]/22.4 - [B], which gives [B] = 0.2M and [A] = 22.2M.

The equilibrium constant (Kc) is a ratio of products to reactants at equilibrium. In this case, the reaction A(g) → B(g) has a Kc of 102. The initial concentrations of A and B are given as [A] = 22.4M and [B] = 0.0M. As the reaction proceeds, the concentration of A will decrease and the concentration of B will increase.

At equilibrium, the ratio of [B]/[A] will be equal to Kc. Using the equilibrium constant expression, [B]/[A] = 102, we can solve for the equilibrium concentrations of A and B. [B]/[A] = 102 = [B]/22.4 - [B], which gives [B] = 0.2M and [A] = 22.2M. (B)

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Which of the following best accounts for the fact that a galvanic cell based on the reaction represented above will generate electricity?
Cl2 can easily lose two electrons.
Cl2 is a stronger oxidizing agent than I2.
I atoms have more electrons than do atoms of Cl.
I- is more stable species than I2.
I2(s) is more soluble than Cl2(g).

Answers

The fact that a galvanic cell based on the reaction represented above will generate electricity can be [tex]Cl_{2}[/tex] is a stronger oxidizing agent than [tex]I_{2}[/tex].

[tex]Cl_{2}[/tex] is a stronger oxidizing agent than [tex]I_{2}[/tex], meaning it is more likely to accept electrons and be reduced. This creates a potential difference between the two half-cells of the galvanic cell, allowing for the generation of electricity. Additionally, I atoms have more electrons than Cl atoms, making [tex]I_{2}[/tex] a more easily reducible species than  [tex]Cl_{2}[/tex]. This also contributes to the potential difference between the half-cells.

While I- is a more stable species than [tex]I_{2}[/tex], this does not necessarily explain the generation of electricity in the galvanic cell. Similarly, the solubility of [tex]I_{2}[/tex] and  [tex]Cl_{2}[/tex] does not have a direct impact on the cell's ability to generate electricity. In summary, the difference in the oxidation potentials of  [tex]Cl_{2}[/tex] and [tex]I_{2}[/tex] is the primary factor contributing to the generation of electricity in the galvanic cell based on the given reaction.

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A similar experiment, to the one performed in this lab, involved dissolving lead (II) chloride,
PbCl2, in a 0.10 M solution of lead (II) nitrate, Pb(NO3)2. The chloride ion was then detected using
Fajan’s Method. Fajan’s Method involves titrating Cl- against silver nitrate to make AgCl. The
endpoint of the titration is observed when a dichlorofluorescein indicator changes from yellow to
pink.
d. According to Fajen’s method the [Cl-] = 0.00527 M. What is the Ksp of PbCl2?

Answers

Therefore, the Ksp of lead (II) chloride is 2.79 x 10⁻⁶.

What level of titration does Fajans' method reach?

The Kazimierz Fajans method, so named because it commonly uses dichlorofluorescein as an indicator, marks the end point when the green suspension turns pink. Chloride ions continue to be present in excess prior to the titration's end point. They adhere to the AgCl surface, giving the particles a negative charge.

The following equation accurately describes how lead (II) chloride dissolves in water:

lead (II) chloride(s) ⇌ Pb²⁺(aq) + 2Cl⁻(aq)

Lead (II) chloride's solubility product is expressed as follows:

Ksp = [Pb²⁺][Cl⁻]²

We are given the concentration of chlorine as 0.00527 M. Since lead (II) nitrate is a soluble salt, it completely dissociates into its constituent ions in water, which means that [Pb2+] = 0.10 M.

When we enter these values into the equation for the solubility product, we obtain:

Ksp = (0.10)(0.00527)2

= 2.79 x 10⁻⁶.

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Show how each of the following organometallic compounds can be synthesized from an alkyl halide. (This arrow infers retrosynthesis. In retrosynthesis ALL reagents go on the right and products on the left.) tell how the compound formation takes place!

Answers

Organometallic compound can be used for a variety of synthetic transformations, such as coupling reactions, reductions, and rearrangements.

Explain organometallic compounds?

In general, the synthesis of organometallic compounds from alkyl halides involves a nucleophilic substitution reaction, where the halogen is replaced by a metal in the presence of a suitable metal reagent such as Grignard reagents, organolithium reagents, or organozinc reagents. The reaction is typically carried out in anhydrous conditions and with careful control of temperature and reactant stoichiometry to avoid unwanted side reactions. The resulting organometallic compound can be used for a variety of synthetic transformations, such as coupling reactions, reductions, and rearrangements.

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1) Assume that you mixed HCl and CuSO4 solutions. If a reaction would have occured, write an equation for the reaction. If no reaction occurs, explain why.
2) Zn is less active than Mg. Write the equations describing what occurs when you mix: (shown below)
a) Zn with 0.5M magnesium chloride, MgCl2. (If no reaction occurs, write "No Reaction")
b) Mg with 0.5M ZnCl2. (If no reaction occurs, write "No Reaction")
3) Explain which metal, Cu, Fe, or Al, would be most affected by acid rain?
4) Will acidic foods cooked in a cast iron skillet become Fe2+ enriched because of a reaction between the acidic food and the skillet? Explain why.

Answers

1. An equation for the reaction HCl and CuSO₄ is 2HCl + CuSO₄ → CuCl₂ + H₂SO₄.

2a. Zn is mixed with 0.5M magnesium chloride, MgCl₂, no reaction.

b. Mg is mixed with 0.5M ZnCl₂ is Mg + ZnCl₂ → Zn + MgCl₂.

3. The metals Cu, Fe, and Al, aluminum would be the most affected by acid rain because it reacts readily with acids.

4. Acidic foods cooked in a cast iron skillet may become Fe₂⁺ enriched because of a reaction between the acidic food and the skillet.

If HCl and CuSO₄ are mixed, a reaction occurs because HCl is a strong acid and CuSO₄ is a salt of a weak acid (H₂SO₄). The balanced equation for the reaction is:

2HCl + CuSO₄ → CuCl₂ + H₂SO₄

The products are CuCl₂ and H₂SO₄.

When Zn is mixed with 0.5M magnesium chloride, MgCl₂, no reaction occurs because Zn is less active than Mg. The balanced equation for the reaction is: No Reaction.

When Mg is mixed with 0.5M ZnCl₂, Mg displaces Zn from its compound because Mg is more active than Zn. The balanced equation for the reaction is:

Mg + ZnCl₂ → Zn + MgCl₂

The products are Zn and MgCl₂.

Of the metals Cu, Fe, and Al, aluminum would be the most affected by acid rain because it reacts readily with acids. The balanced equation for the reaction between aluminum and hydrochloric acid (HCl) is:

2Al + 6HCl → 2AlCl₃ + 3H₂

The products are aluminum chloride (AlCl₃) and hydrogen gas (H₂).

The iron in the skillet can react with the acid in the food, forming iron ions (Fe₂⁺) and hydrogen gas (H₂). However, this depends on the type of acidic food and the condition of the skillet. If the skillet is well-seasoned, it may not react with the food. Additionally, acidic foods cooked in a cast iron skillet can be a good source of dietary iron, but the amount of iron absorbed by the body can vary depending on the type of food and cooking method.

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To make 300 mL of oxygen at 20.0°C change its volume to 250 mL, what must be done to the sample if
its pressure and mass are to be held constant?

Answers

Answer:

Cool the sample to 16.6 °c

Explanation:

Cool the sample to 16.6 °c with the Charles's Law principle so that the volume is lower  (from 300 to 250 ml)

Further explanation

Charles's Law states that

When the gas pressure is kept constant, the gas volume is proportional to the temperature

V₁ / T₁ = V₂ / T₂

Given

V₁ = 300 ml

T₁= 20 C

V₂ = 250 ml

so

V₁ / T₁ = V₂ / T₂

T₂ =  (T₁*V₂)/V₁

T₂ =  (20*250)/300

T₂ = 16.6

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Answer:

Cool the sample to 16.6 °c

Explanation:

Cool the sample to 16.6 °c with the Charles's Law principle so that the volume is lower  (from 300 to 250 ml)

Further explanation

Charles's Law states that

When the gas pressure is kept constant, the gas volume is proportional to the temperature

V₁ / T₁ = V₂ / T₂

Given

V₁ = 300 ml

T₁= 20 C

V₂ = 250 ml

so

V₁ / T₁ = V₂ / T₂

T₂ =  (T₁*V₂)/V₁

T₂ =  (20*250)/300

T₂ = 16.6

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25.00 ml of 0.09334 m potassium phosphate reacts with 10.00 ml of 0.07662 m nickel chloride to form aqueous potassium chloride and solid nickel phosphate.

Answers

Potassium phosphate and nickel chloride react in a 3:2 ratio, forming potassium chloride and nickel phosphate as products.

The balanced chemical equation for this reaction is:

3 K3PO4(aq) + 2 NiCl2(aq) → 6 KCl(aq) + Ni3(PO4)2(s)

Using the given volumes and molarities, we can calculate the number of moles of each reactant:

moles of K3PO4 = (25.00 ml) x (0.09334 mol/L) x (1 L/1000 ml) = 0.02334 mol
moles of NiCl2 = (10.00 ml) x (0.07662 mol/L) x (1 L/1000 ml) = 0.0007662 mol

Next, we need to determine the limiting reactant. Since we need 3 moles of K3PO4 for every 2 moles of NiCl2, we can calculate the theoretical yield of Ni3(PO4)2 using both reactants:

using K3PO4: (0.02334 mol K3PO4) x (2 mol Ni3(PO4)2 / 3 mol K3PO4) = 0.01556 mol Ni3(PO4)2
using NiCl2: (0.0007662 mol NiCl2) x (1 mol Ni3(PO4)2 / 2 mol NiCl2) = 0.0003831 mol Ni3(PO4)2

Since the theoretical yield from NiCl2 is lower, it is the limiting reactant. Therefore, we can use the moles of NiCl2 to calculate the actual yield of Ni3(PO4)2:

actual yield = (0.0003831 mol Ni3(PO4)2) x (341.84 g/mol Ni3(PO4)2) = 0.1309 g Ni3(PO4)2

Finally, we can calculate the concentrations of the aqueous products using the volumes and moles of the reactants:

KCl: (6 mol KCl / 2 mol Ni3(PO4)2) x (0.0003831 mol Ni3(PO4)2) x (1000 ml / 35.00 ml) = 0.06537 M
Ni3(PO4)2 is a solid, so its concentration is zero.

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benzaldehyde and acetone undergo a double aldol condensation. why can this occur?

Answers

Benzaldehyde and acetone can undergo double aldol condensation due to the presence of alpha hydrogen on both sides of acetone and the presence of the carbonyl group in both reactants.

In a double aldol condensation, benzaldehyde (an aldehyde with a carbonyl group) reacts with acetone (a ketone with a carbonyl group). This reaction can occur because:

1. Both benzaldehyde and acetone have carbonyl groups (C=O) which are essential for the aldol condensation reaction to take place.
2. Benzaldehyde has no alpha-hydrogens, so it cannot form an enolate ion. This means that it can only act as an electrophile (electron acceptor) in the reaction.
3. Acetone, on the other hand, has alpha-hydrogens that can form an enolate ion, making it a nucleophile (electron donor) in the reaction.

In the double aldol condensation, the enolate ion of acetone attacks the carbonyl carbon of benzaldehyde twice, resulting in the formation of a β-hydroxy ketone. This β-hydroxy ketone can then undergo dehydration to form an α,β-unsaturated ketone as the final product.

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how many protons are pumped out of the mitochondrial matrix for each pair of electrons extracted by the enzyme malate dehydrogenase?

Answers

In total, 10 protons (H+) are pumped out of the mitochondrial matrix for each pair of electrons extracted by the enzyme malate dehydrogenase.

To determine how many protons are pumped out of the mitochondrial matrix for each pair of electrons extracted by the enzyme malate dehydrogenase, we need to consider the electron transport chain (ETC) steps involved.

1. Malate dehydrogenase catalyzes the conversion of malate to oxaloacetate, transferring a pair of electrons to NAD+ to form NADH.
2. NADH donates these electrons to Complex I (NADH dehydrogenase) in the ETC.
3. Complex I pumps 4 protons (H+) out of the mitochondrial matrix for each pair of electrons.
4. Electrons then move to Complex III (cytochrome bc1 complex) via ubiquinone (Q), and 4 more protons are pumped out.
5. Finally, electrons pass through Complex IV (cytochrome c oxidase), pumping 2 more protons out of the matrix.

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1. if 140.1 g of a noble gas occupies 40.75 l at 758 mm hg and 23.0 °c, what is its molar mass? which noble gas is it?

Answers

The closest molar mass to 86.4 g/mol is krypton (Kr), so the noble gas is likely krypton. To find the molar mass of the noble gas,

we need to use the ideal gas law equation:

PV = nRT,

where P is the pressure in atmospheres, V is the volume in liters, n is the number of moles, R is the gas constant (0.08206 L atm/mol K), and T is the temperature in Kelvin.

First, we need to convert the pressure and temperature given to atm and K, respectively.

758 mm Hg = 0.996 atm
23.0 °C = 296 K

Using the ideal gas law, we can solve for the number of moles:

n = PV/RT
n = (0.996 atm)(40.75 L)/(0.08206 L atm/mol K)(296 K)
n = 1.62 moles

Now, we can find the molar mass of the noble gas by dividing its mass by the number of moles:

molar mass = mass/number of moles
molar mass = 140.1 g/1.62 moles
molar mass = 86.4 g/mol

The molar mass of the noble gas is 86.4 g/mol. To determine which noble gas it is, we need to compare the molar mass to the molar masses of the known noble gases:

He: 4.00 g/mol
Ne: 20.18 g/mol
Ar: 39.95 g/mol
Kr: 83.80 g/mol
Xe: 131.29 g/mol

The closest molar mass to 86.4 g/mol is krypton (Kr), so the noble gas is likely krypton.

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What other reactions have we seen, besides the condensation reaction featured in this lab, that rely on the principle of umpolung? Friedel-Crafts Reactions. Hydrolysis Reactions. Grignard Reactions. O Fischer Esterification Reactions.

Answers

Other reactions have we seen, besides the condensation reaction featured in this lab, that rely on the principle of umpolung include Friedel-Crafts, Hydrolysis, Grignard, and Fischer Esterification Reactions.

Friedel-Crafts reactions involve the alkylation or acylation of aromatic rings using electrophilic species, generated through the reaction between a Lewis acid and a haloalkane or acid halide. Hydrolysis reactions often involve breaking a covalent bond by adding water, resulting in the inversion of the original polarity.

Grignard reactions involve the nucleophilic attack of a Grignard reagent, an organomagnesium compound, on carbonyl groups, leading to the formation of alcohols. Lastly, Fischer Esterification reactions involve the conversion of carboxylic acids to esters in the presence of an alcohol and an acid catalyst, exemplifying umpolung by using electrophilic and nucleophilic centers to create new bonds. Other reactions have we seen, besides the condensation reaction featured in this lab, that rely on the principle of umpolung include Friedel-Crafts, Hydrolysis, Grignard, and Fischer Esterification Reactions.

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Other reactions have we seen, besides the condensation reaction featured in this lab, that rely on the principle of umpolung include Friedel-Crafts, Hydrolysis, Grignard, and Fischer Esterification Reactions.

Friedel-Crafts reactions involve the alkylation or acylation of aromatic rings using electrophilic species, generated through the reaction between a Lewis acid and a haloalkane or acid halide. Hydrolysis reactions often involve breaking a covalent bond by adding water, resulting in the inversion of the original polarity.

Grignard reactions involve the nucleophilic attack of a Grignard reagent, an organomagnesium compound, on carbonyl groups, leading to the formation of alcohols. Lastly, Fischer Esterification reactions involve the conversion of carboxylic acids to esters in the presence of an alcohol and an acid catalyst, exemplifying umpolung by using electrophilic and nucleophilic centers to create new bonds. Other reactions have we seen, besides the condensation reaction featured in this lab, that rely on the principle of umpolung include Friedel-Crafts, Hydrolysis, Grignard, and Fischer Esterification Reactions.

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Arrange the following elements in order of decreasing atomic radius: 1 = largest 6 smallest Ca [Select ] Sr [Select ] S [Select ] Si [Select ] Ge [Select ] Ne [Select ]

Answers

To arrange the following elements in order of decreasing atomic radius (1 being the largest and 6 being the smallest), we need to consider their positions on the periodic table. Here's the order:

1. Sr (Strontium) - It is in Group 2 and Period 5, so it has the largest atomic radius.
2. Ca (Calcium) - It is in Group 2 and Period 4, having a smaller atomic radius than Sr.
3. Ge (Germanium) - It is in Group 14 and Period 4, so its atomic radius is smaller than Ca but larger than Si.
4. Si (Silicon) - It is in Group 14 and Period 3, with an atomic radius smaller than Ge.
5. S (Sulfur) - It is in Group 16 and Period 3, so it has a smaller atomic radius than Si.
6. Ne (Neon) - It is in Group 18 and Period 2, with the smallest atomic radius among the given elements.

So, the order of decreasing atomic radius is Sr (1) > Ca (2) > Ge (3) > Si (4) > S (5) > Ne (6).

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if the equilibrium partial pressure of no2 is 0.053 atm and the equilibrium partial pressure of n2o4 is 1.28 atm at 25°c, what is the kp value for the reaction at 25°c?

Answers

Kp value for the reaction at 25°C is approximately 456.03. To solve for the Kp value, we can use the equation:

Kp = (P(NO2))^2 / P(N2O4)

Substituting the given values, we get:
Kp = (0.053)^2 / 1.28
Kp = 0.0022
Therefore, the Kp value for the reaction at 25°C is 0.0022.

To calculate the Kp value for the reaction at 25°C, we first need to identify the balanced chemical equation for the reaction:

2 NO2 (g) ⇌ N2O4 (g)

Next, we'll use the given equilibrium partial pressures:

NO2 = 0.053 atm
N2O4 = 1.28 atm

Now, we can calculate the Kp value using the formula:

Kp = [N2O4] / [NO2]^2

Substitute the values:

Kp = (1.28) / (0.053)^2

Kp ≈ 456.03

The Kp value for the reaction at 25°C is approximately 456.03.

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Which choice(s) contain(s) an isoelectronic pair in the ground state?
I. Mn2+/Fe3+ II. Ca/Ti2+ III. Cl–/Br–
IV. Zn2+/Cd2+ V. Cu+/Zn2+ a. III only III, b. IV only I c. only I, II, d. V only I, e. V only

Answers

The isoelectronic pairs are I, II, and V. Therefore, the correct answer is c. only I, II.

To determine if two species are isoelectronic, they must have the same number of electrons. Let's examine each pair:

I. Mn²⁺/Fe³⁺
Mn²⁺: Mn has 25 electrons, and Mn²⁺ has 23 electrons (lost 2).
Fe³⁺: Fe has 26 electrons, and Fe³⁺ has 23 electrons (lost 3).
This pair is isoelectronic.

II. Ca/Ti²⁺
Ca: Ca has 20 electrons.
Ti²⁺: Ti has 22 electrons, and Ti²⁺ has 20 electrons (lost 2).
This pair is isoelectronic.

III. Cl⁻/Br⁻
Cl⁻: Cl has 17 electrons, and Cl⁻ has 18 electrons (gained 1).
Br⁻: Br has 35 electrons, and Br⁻ has 36 electrons (gained 1).
This pair is not isoelectronic.

IV. Zn²⁺/Cd²⁺
Zn²⁺: Zn has 30 electrons, and Zn²⁺ has 28 electrons (lost 2).
Cd²⁺: Cd has 48 electrons, and Cd²⁺ has 46 electrons (lost 2).
This pair is not isoelectronic.

V. Cu⁺/Zn²⁺
Cu⁺: Cu has 29 electrons, and Cu⁺ has 28 electrons (lost 1).
Zn²⁺: Zn has 30 electrons, and Zn²⁺ has 28 electrons (lost 2).
This pair is isoelectronic.
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60. What is surface tension, and what conditions must exist
for it to occur?

Answers

The higher attraction of liquid particles to one another compared to the molecules within air at liquid-air contacts causes surface tension.

Surface tension being a chemical phenomena brought through a cohesive force, which has electrical energy as its primary source. The total length or the line or the surface region of the film have no bearing on the kind of a liquid's surface tension.

The higher attraction of liquid particles to one another (because to cohesion) compared to the molecules within air itself (due to adhesion) at liquid-air contacts causes surface tension. There are primarily two mechanisms at work.

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calculate the ph of a solution containing a. 20 ml of 0.001 m hcl and 50 ml of 2.5 m sodium acetate. give the answer in two sig figs.

Answers

The pH of a solution containing a. 20 ml of 0.001 m hcl and 50 ml of 2.5 m sodium acetate is 6.8.

To calculate the pH of a solution containing 20 mL of 0.001 M HCl and 50 mL of 2.5 M sodium acetate, we can use the Henderson-Hasselbalch equation: pH = pKa + log ([A-]/[HA]), where pKa is the acid dissociation constant, [A-] is the concentration of the conjugate base (acetate ion), and [HA] is the concentration of the weak acid (acetic acid).

First, find the moles of HCl and sodium acetate in the solution:
- Moles of HCl = (20 mL)(0.001 M) = 0.02 moles
- Moles of sodium acetate = (50 mL)(2.5 M) = 125 moles

Next, we can calculate the total volume of the solution: 20 mL + 50 mL = 70 mL. To find the molarity of the resulting mixture, divide the moles by the total volume in liters:
- [HCl] = 0.02 moles / 0.07 L = 0.29 M
- [Sodium acetate] = 125 moles / 0.07 L = 1.8 M

Now, use the pKa of acetic acid (4.76) in the Henderson-Hasselbalch equation:
pH = 4.76 + log ([1.8]/[0.29]) = 4.76 + 2.07 = 6.83

Therefore, the pH of the solution is approximately 6.8 (rounded to two significant figures).

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prove that for any constant, k, logk n = o(n)

Answers

To prove that for any constant, k, log k n = o(n), we need to show that the function log k n grows slower than n for any positive constant k.

Step 1: Define the function log k n and n.
log k n is a logarithmic function with base k, where k is a constant greater than 1, and n is the input variable.
n is a linear function, where n is the input variable.

Step 2: Recall the definition of o-notation.
A function f(n) is said to be o(g(n)) if, for every positive constant c, there exists a positive integer N such that 0 ≤ f(n) < c*g(n) for all n > N.

Step 3: Prove that logk n = o(n) using the definition of o-notation.
We need to show that for every positive constant c, there exists a positive integer N such that 0 ≤ logk n < c*n for all n > N.

Let c be any positive constant. Since logk n grows slower than n as n increases, we can find an N such that the inequality 0 ≤ logk n < c*n holds true for all n > N.

For example, let's take the base of the logarithm, k > 1, and c = 1. As n grows, logk n will increase at a slower rate compared to n. There will be an N beyond which the inequality 0 ≤ logk n < n holds true for all n > N.

Hence, we have proved that for any constant, k, logk n = o(n).

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the active ingredient in a common treatment for upset stomach is sodium bicarbonate, nahco3. calculate the percent, by mass, of sodium in sodium bicarbonate.

Answers

The active ingredient in a common treatment for upset stomachs is sodium bicarbonate, Then the percent, by mass, of sodium in sodium bicarbonate is approximately 27.38%.

To calculate the percent by mass of sodium (Na) in sodium bicarbonate (NaHCO3), follow these steps:

1. Determine the molar mass of sodium (Na) and sodium bicarbonate (NaHCO3).
- Molar mass of Na = 22.99 g/mol
- Molar mass of NaHCO3 = (22.99 g/mol for Na) + (1.01 g/mol for H) + (12.01 g/mol for C) + (3 × 16.00 g/mol for O) = 22.99 + 1.01 + 12.01 + 48.00 = 84.01 g/mol

2. Calculate the mass percentage of sodium in sodium bicarbonate.
- Mass percentage of Na = (Molar mass of Na / Molar mass of NaHCO3) × 100
- Mass percentage of Na = (22.99 g/mol / 84.01 g/mol) × 100 = 27.37%

The percent by mass of sodium in sodium bicarbonate is 27.37%.

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Protons neutralize a glutamate residue in the center of a c-subunit, allowing it to enter the membrane. True or False?

Answers

Aspartate residue in the centre of subunit C is neutralised by the protons as they enter the membrane through a half-channel of subunit A. Aspartate 61, a significant acidic amino acid, is present in each C-terminal helix. Hence it is true.

The protonation and deprotonation-capable sidechain of this residue is crucial for the rotation of the c ring. The rotor is propelled by protons flowing down a gradient through channels in the a subunit at the interface to the cn ring. This movement causes the catalytic nucleotide binding sites on the subunits to synthesise ATP from ADP and Pi and release product ATP from these sites.

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