IUPAC name i) (CH3)2 сно сH3
ii) CH2=CH-CH (CH3)2 ​

Answers

Answer 1

Answer:

i. [tex](CH_3)_2CHCH_3[/tex]

The IUPAC name  [tex](CH_3)_2CHCH_3[/tex] is  2-methylpropane.

ii) [tex]CH_2=CH-CH(CH_3)_2[/tex]

The IUPAC name of [tex]CH_2=CH-CH(CH_3)_2[/tex] is 3-methyl-1-butene.

Here are the steps on how to find the IUPAC names of these compounds:

Identify the longest carbon chain.Number the carbon atoms in the longest chain, starting from the end that is closest to a double bond or triple bond.Give the carbon atoms in the longest chain a number, starting from 1 and continuing to the end of the chain.If there are any substituents (groups of atoms that are attached to the main chain), identify them and give them a name.Write the name of the compound, starting with the name of the longest chain and then adding the names of the substituents.

In the first compound, the longest carbon chain is 3 carbons long. The double bond is on the 2nd carbon atom, so we number the carbon atoms starting from the end that is closest to the double bond. The substituents are two methyl groups, which are attached to the 1st and 3rd carbon atoms. The IUPAC name of the compound is 2-methyl propanal.

In the second compound, the longest carbon chain is 4 carbons long. The double bond is on the 2nd carbon atom, so we number the carbon atoms starting from the end that is closest to the double bond. The only substituent is a methyl group, which is attached to the 3rd carbon atom. The IUPAC name of the compound is 3-methylbut-1-ene.


Related Questions

Citric acid has three pKa's: 3.13, 4.76 and 6.39. If you add sufficient solid NaoH to 100.0mLof 0.5M citric acid to bring the pH to 4.00 Gassume all the NaoH dissolves without volume), what are the concentrations of the major species present in the solution? How many additional moles would you need to add to bring the solution to a pH of 5? Which species are present in the solution at that point?

Answers

The concentrations of the major species present in the solution with a pH of 4.00 would be H₂Cit⁻  0.199 M, HCit²⁻ 0.102 M, and Cit³⁻  0.00 M.

What are the concentrations of the major species when the pH is 4.00?

To calculate the concentrations of the major species at pH 4.00 we can set up an equation using the Henderson-Hasselbalch equation:

pH = pKa + log [A-]/[HA]

4.00 = 4.76 + log [ H₂Cit⁻]/[Citric acid]

By using the pKa and rearranging the equation:

 [ H₂Cit⁻] / [Citric acid] =[tex]10^(^p^H^ -^ p^K^a^)[/tex]

 [ H₂Cit⁻] / [Citric acid] = [tex]10^(^4^.^0^0^ -^ 4^.^7^6^)[/tex]

 [ H₂Cit⁻] / [Citric acid] = 0.398

Since the initial concentration of citric acid is 0.5 M, So:

[H₂Cit⁻] = 0.398 × 0.5 = 0.199 M

Since the initial concentration of citric acid is 0.5 M, So:

[HCit²⁻] = (0.5 - [H₂Cit⁻])

             = 0.5 - (0.398 × 0.5) = 0.102 M

 [Cit³⁻]  = 0.0 M

Because all three Hydrogen ions are not dissolved. So:

[Cit³⁻]  = 0.0 M

To bring the solution to pH 5.00, we need to add more NaOH. Since NaOH is a strong base, it reacts completely with the acid, and the additional moles required can be calculated using the equation:

Additional moles = (volume of solution in liters) × (0.5 M) × (difference in pH)

Given that the volume is 100.0 mL (0.100 L) and the difference in pH is 5.00 - 4.00 = 1.00, we can calculate the additional moles needed.

Additional moles = 0.100 L × (0.5 M) × 1.00

                            = 0.05M

Thus, to bring the solution to pH 5.00, we need to add more 0.05M NaOH.

The major species at pH 5.00 will be H2Cit-.

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what is the expected major product for the following reaction? i ii iii iv v excess cl2

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The expected major product for the given reaction i, ii, iii, iv, v in excess Cl2. 2,2,3-trichloropentane The formation of 2,2,3-trichloropentane involves the abstraction of a hydrogen from the secondary carbon atom.

In this reaction, the compound with the molecular formula C5H12 undergoes chlorination in the presence of excess chlorine. The given reaction has five types of hydrogens as shown below: i) Methyl hydrogens (CH3 group)ii) Primary hydrogens iii) Secondary hydrogens iv) Tertiary hydrogen v) Vinyl hydrogens The reactivity of the different hydrogens towards chlorine is different.

This difference in reactivity is due to the difference in the relative stabilities of the products obtained after H-Cl bond dissociation. The stability of the carbocation intermediate formed after H-Cl bond dissociation determines the reactivity of the hydrogens towards chlorine.

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For a chemical reaction to be spontaneous only at high temperatures, which conditions must be met?
ΔS <0,
ΔΗ «Ο AS > 0,
AH® < 0 DAS > 0,
AH > 0 AS < 0,
AH">0

Answers

For a chemical reaction to be spontaneous only at high temperatures, the conditions that must be met are ΔH > 0 and ΔS < 0.

What conditions must be satisfied for a chemical reaction to be spontaneous only at high temperatures?

To determine if a chemical reaction is spontaneous at high temperatures, we need to consider the enthalpy change (ΔH) and entropy change (ΔS).

In this case, the condition for a reaction to be spontaneous only at high temperatures is that the enthalpy change (ΔH) must be positive (ΔH > 0) and the entropy change (ΔS) must be negative (ΔS < 0).

A positive ΔH indicates an endothermic reaction, where heat is absorbed from the surroundings. At high temperatures, the increased thermal energy can provide the necessary activation energy for the reaction to occur.

A negative ΔS indicates a decrease in entropy or disorder in the system. Despite the decrease in entropy, the positive ΔH contributes to the overall spontaneity of the reaction at high temperatures, as the increased energy can overcome the unfavorable decrease in entropy.

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5. how much of an 800-gram sample of potassium-40 will remain after 3.9 × 109 years of radioactive decay?
1) 50 grams
2)100 grams
3)200 grams
4)400 grams

Answers

The answer to how much of an 800-gram sample of potassium-40 will remain after 3.9 × 109 years of radioactive decay is option (3) "200 grams."

The amount of an 800-gram sample of potassium-40 that will remain after 3.9 × 109 years of radioactive decay can be calculated by using the radioactive decay law. The radioactive decay law states that the number of radioactive nuclei N of a sample decreases as a function of time t. This can be given by the equation N = N₀ e^(-λt)

Where N₀ is the initial number of radioactive nuclei, λ is the decay constant, and t is the time.

The decay constant is related to the half-life T½ of the radioactive isotope by the equation

T½ = ln2 / λ Given that the half-life of potassium-40 is 1.28 × 10^9 years,

we can find the decay constant as follows

λ = ln2 / T½

= ln2 / (1.28 × 10^9)

= 5.43 × 10^-10 year^-1

Substituting the given values into the radioactive decay law, we get

N = 800 e^(-5.43 × 10^-10 × 3.9 × 10^9)N ≈ 200 grams

Therefore, the answer is option (3) 200 grams.

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Which of the following combinations cannot produce a buffer solution? and why explain?
a) HNO2 and NaNO2
b) HClO4 and NaClO4
c) HCN and NaCN
d) NH3 and (NH4)2SO4
e) NH3 and NH4Br

Answers

b) HClO₄ and NaClO₄ cannot produce a buffer solution as both are strong acids, while buffer solutions require a weak acid or base with its conjugate species. Other combinations involve weak acid or base pairs suitable for buffer solutions.

A buffer solution is a solution that can resist changes in pH when small amounts of acid or base are added to it. To create a buffer solution, we need a weak acid and its conjugate base or a weak base and its conjugate acid.

Let's analyze each combination:

a) HNO₂ and NaNO₂:

HNO₂ is a weak acid and NaNO₂ is the conjugate base of the weak acid. This combination can create a buffer solution.

b) HClO₄ and NaClO₄:

HClO₄ is a strong acid and NaClO₄ is the salt of the strong acid. This combination cannot create a buffer solution because there is no weak acid or weak base present.

c) HCN and NaCN:

HCN is a weak acid and NaCN is the salt of the weak acid. This combination can create a buffer solution.

d) NH₃ and (NH₄)₂SO₄:

NH₃ is a weak base and  (NH₄)₂SO₄ is the salt of the weak base. This combination can create a buffer solution.

e) NH₃ and NH₄Br:

NH3 is a weak base and NH₄Br is the salt of the weak base. This combination can create a buffer solution.

Based on the analysis, the combination that cannot produce a buffer solution is b) HClO₄ and NaClO₄. This is because both components are strong acids, and a buffer solution requires the presence of a weak acid or weak base along with its conjugate species.

In summary, combination b) HClO₄ and NaClO₄ cannot produce a buffer solution because both components are strong acids, and a buffer solution requires a weak acid or weak base with its conjugate species.

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When a molecule with acidic protons enters into an environment with a pH value that is greater than the pK, of its functional groups, the molecule will lose the proton(s) in question. Consider the structure of the amino acid histidine in its fully protonated form. How would the amino acid appear in a slightly basic environment of pH 8, given the following structure and the pK, values of the acidic protons? Bear in mind, that when the pH of the solution is greater than the pK, of the proton, that proton will be lost. proton pK Hc H. 1.8 HN H 9.2 N Hc 6.0 H View Available Hintis)

Answers

In a slightly basic environment of pH 8, the amino acid histidine will appear in a deprotonated form.

Histidine contains three acidic protons: Hc with a pK value of 1.8, HN with a pK value of 9.2, and N Hc with a pK value of 6.0. When the pH of the solution exceeds the pK values of these protons, they will be lost, resulting in a deprotonated histidine molecule.

In a slightly basic environment with a pH of 8, the pH value is greater than the pK values of both Hc (1.8) and N Hc (6.0). Therefore, these protons will be lost, and histidine will appear without those protons. However, the pH value of 8 is lower than the pK value of HN (9.2). As a result, the HN proton will remain attached to the histidine molecule.

In summary, in a slightly basic environment of pH 8, histidine will be deprotonated, losing the Hc and N Hc protons. The HN proton will remain attached to the histidine molecule since the pH value of 8 is lower than its pK value.

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In a slightly basic environment with a pH of 8, the amino acid histidine will lose the acidic protons whose pK values are lower than 8, resulting in a modified structure i.e. deprotonated form.

When the pH of a solution is higher than the pK value of an acidic proton, that proton will be lost. In the case of histidine, it has three acidic protons with different pK values: Hc (pK 1.8), HN (pK 9.2), and N Hc (pK 6.0). In a slightly basic environment with a pH of 8, the proton Hc (pK 1.8) and N Hc (pK 6.0) will be lost because their pK values are lower than 8.

As a result, the modified structure of histidine in this environment would be without these two protons. The remaining proton, HN (pK 9.2), will not be lost because its pK value is higher than the pH of 8. It is important to note that the loss of protons can affect the overall charge and chemical properties of the molecule.

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b) According to United States Environmental Protection Agency's risk assessment of human health, mercury (Hg) is the toxicant of greatest concern among 188 air toxicants emitted from power plants. Hg

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Mercury (Hg) is identified as the most concerning toxicant among 188 air toxicants emitted from power plants, according to the United States Environmental Protection Agency's risk assessment of human health.

Which toxicant is of greatest concern among air toxicants emitted from power plants, according to the EPA?

In the risk assessment conducted by the United States Environmental Protection Agency (EPA), mercury (Hg) has been identified as the toxicant of greatest concern among the 188 air toxicants emitted from power plants.

This finding underscores the significant health risks associated with mercury exposure and highlights the need for stringent control measures to mitigate its release into the environment.

Mercury is a potent neurotoxin that can have severe impacts on human health. It is particularly concerning because of its ability to accumulate in the food chain, leading to exposure through the consumption of contaminated fish and seafood.

Even at low concentrations, mercury can cause adverse effects on the nervous system, including developmental delays in children and neurological disorders in adults.

The EPA's risk assessment serves as a critical tool in understanding the potential health effects of air toxicants emitted from power plants. By identifying mercury as the most concerning toxicant, it highlights the importance of implementing effective emission control strategies and promoting the use of cleaner energy sources to reduce mercury emissions.

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Amino acids can be synthesized by reductive amination. Draw the structure of the organic compound that you would use to synthesize glutamic acid. •. You do not have to consider stereochemistry. • Draw the molecule with ionizable groups in their uncharged form. • In cases where there is more than one answer, just draw one.

Answers

The organic compound used to synthesize glutamic acid through reductive amination is α-ketoglutarate.

What is the precursor compound for synthesizing glutamic acid through reductive amination?

Reductive amination is a chemical reaction that involves the conversion of a carbonyl compound, such as an aldehyde or a ketone, into an amine. In the case of synthesizing glutamic acid, the precursor compound used is α-ketoglutarate.

α-ketoglutarate is an organic compound that belongs to the family of alpha-keto acids. It has a carboxyl group and a keto group, making it suitable for reductive amination reactions. By reacting α-ketoglutarate with an amine, such as ammonia or an amine derivative, and employing a reducing agent, such as sodium borohydride, glutamic acid can be synthesized.

Glutamic acid is one of the 20 amino acids that serve as the building blocks of proteins. It plays important roles in various biological processes, including protein synthesis and neurotransmitter function. The synthesis of glutamic acid through reductive amination using α-ketoglutarate allows for the production of this essential amino acid.

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Which of the following terms best describes the side chain of valine? Acidic Basic O Polar Non-polar Question 5 Nearly all naturally occuring amino acids have R configuration. True False

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Valine is a non-polar amino acid that has a branched side chain. The side chain of Valine is of isobutyl group and has a non-polar aliphatic structure. Therefore, the correct option that describes the side chain of valine is non-polar.

Amino acids are organic compounds that are the building blocks of proteins. Each amino acid molecule comprises an amino group (-NH2), a carboxylic acid group (-COOH), and a side chain (-R). There are 20 naturally occurring amino acids, and their side chains vary in their chemical and physical properties.

There are four types of amino acid side chains: Non-polar side chains Polar side chains Acidic side chains Basic side chains Valine, abbreviated as Val or V, is a non-polar, aliphatic amino acid with a branched side chain. It's one of the twenty most frequent natural amino acids found in proteins.

Almost all natural amino acids have the R-configuration, which is optically active and denotes a configuration of a molecule.

Therefore, the statement "Nearly all naturally occuring amino acids have R configuration" is true.

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Cuticle remover cream contains which of the following ingredients? a) bleach b) salicylic acid c) formaldehyde d) potassium hydroxide.

Answers

Cuticle remover cream contains potassium hydroxide. Potassium hydroxide is a strong alkali that is used in cuticle remover cream. The correct answer is option d.

Potassium hydroxide functions by softening the cuticle to allow for gentle removal. However, it is important to use it correctly and to follow the instructions provided on the packaging to prevent damaging the skin. When it comes to nail polish remover, on the other hand, some formulations include acetone, which is a potent solvent that may cause skin irritation if used excessively. Salicylic acid is an exfoliating agent that is often found in skincare products for acne-prone skin.

It functions by removing dead skin cells from the surface of the skin and unclogging pores. It is not typically found in cuticle remover cream, despite being an excellent exfoliating agent. Formaldehyde is used in nail hardeners to strengthen the nails. It is not commonly found in cuticle remover cream. Bleach is a strong oxidizing agent that is used for bleaching and cleaning purposes. It is not used in cuticle remover cream.

Therefore, the correct answer is option d) potassium hydroxide.

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Final answer:

Cuticle remover creams commonly contain potassium hydroxide, which softens and dissolves cuticle tissue. Other compounds like bleach, formaldehyde, and salicylic acid are used in different cosmetic products for different purposes.

Explanation:

Cuticle remover creams typically contain potassium hydroxide. This alkaline compound serves to soften and dissolve the cuticle tissue, making it easier to remove. It's important to note that while potassium hydroxide is effective in this task, it needs to be used with caution as overuse or incorrect use can lead to skin irritation.

Compounds such as bleach, formaldehyde, and salicylic acid are also used in various cosmetic products, but they serve different purposes. For instance, bleach is a strong disinfectant, salicylic acid is used in acne treatments, and formaldehyde is used in certain nail hardening products.

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How much heat energy, in kilojoules, is required to convert 69.0 g of ice at −18.0 ∘C to water at 25.0 ∘C ? Part B How long would it take for 1.50 mol of water at 100.0 ∘C to be converted completely into steam if heat were added at a constant rate of 22.0 J/s ?

Specific heat of ice: sice=2.09 J/(g⋅∘C)

Specific heat of liquid water: swater=4.18 J/(g⋅∘C)

Enthalpy of fusion (H2O(s)→H2O(l)): ΔHfus=334 J/g

Enthalpy of vaporization (H2O(l)→H2O(g)): ΔHvap=2250 J/g

Answers

The heat energy required to melt ice at 0 ∘C is calculated using the formula; Q = m × ΔHfus = 69.0 g × 334 J/g = 23046 J.

Part A: 69 g of ice at −18.0 ∘C is converted to water at 25.0 ∘C. To calculate how much heat energy, in kilojoules, is required to convert 69.0 g of ice at −18.0 ∘C to water at 25.0 ∘C, we will use the following steps:

Firstly, we have to convert the ice to 0 ∘C, then convert it from solid to liquid, and finally, from 0 ∘C to 25.0 ∘C. The amount of energy needed to increase the temperature of 69.0 g of ice from −18.0 ∘C to 0 ∘C is calculated using the equation; Q= m × s × ΔT= 69.0 × 2.09 J/(g ∘C) × (0 – (-18)) ∘C= 2677.4 J

The heat energy required to melt ice at 0 ∘C is calculated using the formula; Q = m × ΔHfus = 69.0 g × 334 J/g = 23046 J. The energy required to raise the temperature of 69.0 g of water from 0 ∘C to 25.0 ∘C is calculated using the equation; Q = m × s × ΔT= 69.0 g × 4.18 J/(g ∘C) × 25.0 ∘C = 7273.5 J

The total energy needed is the sum of all three values:23046 J + 7273.5 J + 2677.4 J = 32997.9 J

Therefore, 32.9979 kJ of heat energy is required to convert 69.0 g of ice at −18.0 ∘C to water at 25.0 ∘C.

Part B: In the conversion of 1.50 mol of water at 100.0 ∘C to steam, heat is added at a constant rate of 22.0 J/s. To calculate how long it will take to convert 1.50 mol of water to steam, we will use the following formula;

Q = n × ΔHvapQ = 1.50 mol × 2250 J/mol = 3375 J

The time, t, it takes to convert 3375 J of water to steam at a constant rate of 22.0 J/s is calculated as follows:

t = Q / P= 3375 J / 22.0 J/s= 153.4 s

Therefore, it takes 153.4 seconds to convert 1.50 mol of water at 100.0 ∘C to steam.

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How many unpaired electrons are in the high-spin state of W2+ in an octahedral field? unpaired electrons Part 2 (1 pt) How many unpaired electrons are in the low-spin state of W2+ in an octahedral field? unpaired electrons

Answers

In the high-spin state of W²⁺ in an octahedral field, there are four unpaired electrons.

In an octahedral field, the d-orbitals split into two energy levels: the lower energy level (t₂g) and the higher energy level (e_g). In the high-spin state, electrons are first placed in the lower energy level before pairing up. Since W²⁺ has five d-electrons, four of them will occupy the t₂g orbitals with parallel spins, resulting in four unpaired electrons.In the low-spin state of W²⁺ in an octahedral field, there are zero unpaired electrons.In the low-spin state, the electrons pair up in the t₂g orbitals before filling the higher energy e_g orbitals. Since W²⁺ has five d-electrons, all of them will pair up in the t₂g orbitals, resulting in zero unpaired electrons.Therefore, the high-spin state of W²⁺ in an octahedral field has four unpaired electrons, while the low-spin state has zero unpaired electrons.

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gabrielle wants to dissolve some salts in water. which of the following salts would form a basic solution?

NH4CN
NaCl
NH4Cl
KCN
KCl

Answers

Out of the given salts, the salt that will form a basic solution when dissolved in water is NH4CN.

Salts are ionic compounds that are formed from the reaction of an acid and a base. The positive ion of a base combines with the negative ion of an acid to form a salt. Salts are also formed by the neutralization of an acid with a base. Salts can either be acidic, basic, or neutral depending on the nature of the ions present. A basic solution is a solution with a pH value of more than 7. It contains more OH- ions than H+ ions.

Bases are substances that dissociate in water to form hydroxide ions (OH-) and cations.NH4CN when dissolved in water will form a basic solution. This is because the CN- ion of NH4CN can accept a proton (H+) from water to form hydroxide ions (OH-) that will increase the concentration of OH- ions in the solution, hence the solution will be basic.An acidic solution has a pH of less than 7 while a neutral solution has a pH of 7. NaCl, NH4Cl, KCN, and KCl are neutral salts.

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at 30 ∘c∘c how many oxygen molecules cross the lens in 1 hh ?

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In 1 hour, approximately 3.2 × 10⁸ oxygen molecules cross the contact lens due to diffusion. The flux of oxygen molecules is calculated using Fick's law of diffusion and then multiplied by the time and the area of the lens.

The diffusion of oxygen across a contact lens can be modeled by Fick's law of diffusion:

[tex]J = D \cdot A \cdot \frac{P_1 - P_2}{L}[/tex]

where:

J is the flux of oxygen molecules (molecules/m²/s)

D is the diffusion coefficient of oxygen in the contact lens (m²/s)

A is the area of the contact lens (m²)

P1 is the partial pressure of oxygen at the front of the lens (kPa)

P2 is the partial pressure of oxygen at the rear of the lens (kPa)

L is the thickness of the contact lens (m)

We know the following values:

D = 1.3 × 10⁻¹³ m²/s

A = (π * (7 mm)²) / 4 = 154 mm²

P1 = 0.2 * 101.3 kPa = 20.26 kPa

P2 = 7.3 kPa

L = 40 μm = 4 × 10⁻⁶ m

We can now solve for the flux of oxygen molecules:

[tex]J = (1.3 \times 10^{-13} , \mathrm{m}^2/\mathrm{s}) \cdot (154 , \mathrm{mm}^2) \cdot \frac{(20.26 , \mathrm{kPa} - 7.3 , \mathrm{kPa})}{(4 \times 10^{-6} , \mathrm{m})}[/tex]

= 5.7 × 10⁻¹⁰ molecules/m²/s

The number of oxygen molecules that cross the lens in 1 h is given by:

N = J * t * A

where:

N is the number of oxygen molecules (molecules)

J is the flux of oxygen molecules (molecules/m²/s)

t is the time (s)

A is the area of the contact lens (m²)

We know the following values:

J = 5.7 × 10⁻¹⁰ molecules/m²/s

t = 3600 s

A = 154 mm² = 154 × 10⁻⁶ m²

N = (5.7 × 10⁻¹⁰ molecules/m²/s) * (3600 s) * (154 × 10⁻⁶ m²)

= 3.2 × 10⁸ molecules

Therefore, the number of oxygen molecules that cross the lens in 1 h is 3.2 × 10⁸ molecules.

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Complete question :

Your cornea doesn’t have blood vessels, so the living cells of the cornea must get their oxygen from other sources. Cells in the front of the cornea obtain their oxygen from the air. Wearing a contact lens interferes with this oxygen uptake, so contact lenses are designed to permit the diffusion of oxygen. The diffusion coefficient of one brand of soft contact lenses was measured to be 1.3×10−13 m^2/s We can model the lens as a 14-mm-diameter disk with a thickness of 40 μm. The partial pressure of oxygen at the front of the lens is 20% of atmospheric pressure, and the partial pressure at the rear is 7.3 kPa.

At 30°C how many oxygen molecules cross the lens in 1 h?

N = ? molecules

Question Which is an example of heterogeneous catalysis? Select the correct answer below: a. decomposition of ozone with gaseous nitric oxide catalyst b. aqueous acid catalysis c. hydrogenation of fatty acids with nickel catalyst d. none of the above

Answers

The correct answer is option a. Decomposition of ozone with gaseous nitric oxide catalyst is an example of heterogeneous catalysis.

What is Heterogeneous catalysis?

Heterogeneous catalysis is a type of catalysis that occurs on the surface of a heterogeneous catalyst. The catalyst exists in a different phase than the reactants and products in this form of catalysis. Gaseous reactants can react with solids, liquids, or solutions in heterogeneous catalysis.The most important types of heterogeneous catalysts are solids. These are used in a wide range of applications, from refining petroleum to producing plastics, pharmaceuticals, and more. Heterogeneous catalysis involves a variety of reaction types, including adsorption, surface reaction, and desorption.In the example of decomposition of ozone with gaseous nitric oxide catalyst, the catalyst is in gaseous form while the reactants are in liquid state. Therefore, it is a heterogeneous catalysis.

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draw the lewis structure for co32- including any valid resonance structures

Answers

The CO32- ion is an anion formed when a carbon dioxide molecule reacts with water. The molecule has a trigonal planar structure, with a carbon atom in the center bonded to three oxygen atoms and a negative charge.

As a result, the carbon atom in the CO32- ion has a formal charge of +2. We must draw the Lewis structure of CO32- with valid resonance structures. Here's how to do it: Step 1: Determine the total number of valence electrons. We will calculate the total number of valence electrons by adding the valence electrons of each atom involved.CO3-2 ion contains 3 oxygen atoms and 1 carbon atom. Thus, Total number of valence electrons = Valence electrons of carbon + Valence electrons of oxygen x 3 + Charge on the ion Total number of valence electrons = 4 + 6 x 3 + 2 = 24 electrons. Step 2: Place the least electronegative atom in the center. We must place the carbon atom in the center because oxygen has higher electronegativity. Step 3: Connect the atoms with single bonds and fill out the octets of the atoms attached to the central atom. We will then add three single bonds between the carbon and oxygen atoms and fill the remaining valence electrons of the oxygen atoms with lone pairs.

Step 4: Add any leftover electrons to the central atom. Finally, we will put the remaining valence electrons on the carbon atom as lone pairs and try to rearrange the electrons to achieve more stable resonance structures.  Resonance structures of CO32-  The total number of resonance structures of CO32- is three.

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Calculate the volume of 0.500 M C2H3OH and 0.500 M CH3O-Na required to prepare 0.100 L of pH = 5.00 buffer with a buffer strength of 0.100 M. The pKa of C2H302H is 4.75. C2H302H: Number C2H3O2Na: Number

Answers

Volume of 0.500 M C2H3OH and 0.500 M CH3O-Na that is required to prepare 0.100 L of pH = 5.00 buffer with a buffer strength reaction of 0.100 M = 31.6 mL of 0.500 M C2H3OH and 17.4 mL of 0.500 M CH3O-Na

To calculate the volume of 0.500 M C2H3OH and 0.500 M CH3O-Na required to prepare 0.100 L of pH = 5.00 buffer with a buffer strength of 0.100 M, we need to make use of the Henderson-Hasselbalch equation.Henderson-Hasselbalch equation is given as:  pH = pKa + log ([A-] / [HA])Where, pH is the pH of the buffer solution.

Pka is the negative logarithm of the acid dissociation constant ([H+][A-] / [HA]).[A-] is the concentration of the conjugate base.[HA] is the concentration of the weak acid.Let us calculate the concentration of the weak acid.  From the pH value, we can calculate the [H+].5.00 = 4.75 + log ([A-] / [HA])[A-] / [HA] = antilog (5.00 - 4.75) = antilog (0.25) = 1.78[Molar]Now, the buffer strength is 0.100 M.

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Rank the following elements from largest to smallest atomic radius.
a. S
b. Na
c. Si
d. Ar
e. Al

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Elements from largest to smallest atomic radius is S > Si > Al > Na > Ar . The correct order is a. >c. >e. >b.>d.

Atomic radii is the distance between the atomic nucleus and its valence shell electrons. The elements can be ranked according to their atomic radius, as determined by the periodic table, which is arranged in order of increasing atomic number. In order to rank the following elements from largest to smallest atomic radius, the atomic number of each element is examined, and the order in which they appear in the periodic table is taken into consideration.

The atomic radii trend in the periodic table is that the atomic radius increases from right to left and from top to bottom. In order to rank the following elements from largest to smallest atomic radius, the trend of the periodic table must be taken into account.

Therefore, the order of the given elements from largest to smallest atomic radius is: S > Si > Al > Na > Ar

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A pair of vertical, open-ended glass tubes inserted into a horizontal pipe are often used together to measure flow velocity in the pipe, a configuration called a Venturi meter. Consider such an arrangement with a horizontal pipe carrying fluid of density ?. The fluid rises to heights h1 and h2 in the two open-ended tubes (see figure). The cross-sectional area of the pipe is A1 at the position of tube 1, and A2 at the position of tube 2.



Find p1, the gauge pressure at the bottom of tube 1. (Gauge pressure is the pressure in excess of outside atmospheric pressure.)



Find v1, the speed of the fluid in the left end of the main pipe.

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Gauge pressure at the bottom of tube 1 is given by the expression reaction:(p1 − p0) = (ρv12/2) − (ρv22/2) + ρgh1 − ρgh2.Here, p0 = 1 atm (the pressure outside the tubes).ρ is the density of the fluid.v1 is the fluid speed at the left end of the pipe.2.

In the vertical tubes, the fluid is at rest, hence the pressure at points 1 and 2 in the tubes must equal the pressure at point 3 in the horizontal pipe. The gauge pressure at the bottom of tube 1 is given by the expression:(p1 − p0) = (ρv12/2) − (ρv22/2) + ρgh1 − ρgh2.Here, p0 = 1 atm (the pressure outside the tubes).ρ is the density of the fluid.v1 is the fluid speed at the left end of the pipe.

Fluid speed at the left end of the main pipe, v1, is given by the expression:v1 = (2g(h1 − h2)/[(A1/A2)2 − 1])1/2This can be obtained by manipulating equations (1) and (2), using the fact that the speed of fluid at the right end of the pipe is zero.

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list the factors which influence occupational exposure to hazardous substances.

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Employers have a responsibility to provide safe working conditions for their employees. This can include providing adequate personal protective equipment, training workers on safe handling of hazardous substances, and monitoring workplace conditions to ensure compliance with safety standards.

Occupational exposure to hazardous substances is influenced by various factors that could be internal or external to the workplace. Some of these factors include:Physical and Chemical Properties of the Substance: The nature and characteristics of the substance can determine the exposure potential. It can determine how the substance gets into the body and how it is absorbed.Workplace environment: The workplace environment can significantly influence the amount of hazardous substances an individual can get exposed to. For instance, factors like room temperature, ventilation, and humidity can influence the rate at which substances evaporate and/or penetrate the skin. Protective equipment: Use of protective equipment such as gloves, respirators, and masks can prevent workers from exposure to hazardous substances. Training and education: Workers need to be trained on safe handling and disposal of chemicals. They need to know the risks and potential hazards associated with the substances they use and how to respond if they get exposed to them. Health status of the worker: Workers who are immunocompromised, pregnant or have pre-existing conditions are more likely to get exposed to hazards substances. Occupational exposure to hazardous substances can have severe effects on the health of workers. Employers have a responsibility to provide safe working conditions for their employees. This can include providing adequate personal protective equipment, training workers on safe handling of hazardous substances, and monitoring workplace conditions to ensure compliance with safety standards.

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Anandamide is a neurotransmitter that is involved in controlling mood and appetite. Which choice best describes the functional groups found in this molecule?

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Anandamide is a neurotransmitter that is involved in controlling mood and appetite. The functional groups found in this molecule are amide and ethanolamine. The correct option that describes the functional groups found in the anandamide molecule is (D) amide and ethanolamine.

What is anandamide? Anandamide is a naturally occurring fatty acid neurotransmitter that helps regulate physiological and cognitive processes such as appetite, mood, and pain. Anandamide was first discovered in the early 1990s by Raphael Mechoulam and his colleagues. Functional groups are responsible for the chemical and physical properties of organic compounds.

The chemical behavior of an organic compound is determined by its functional groups. An amide is a functional group that is derived from carboxylic acid and amine. Ethanolamine is a functional group that consists of an amino group and a hydroxyl group attached to the same carbon atom.

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the heat of fusion of ammonia is . calculate the change in entropy when of ammonia melts at .

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The heat of fusion of ammonia is 5.65 kJ/mol. Entropy is a measure of the disorder or randomness of a system. It has the symbol S and is measured in units of joules per kelvin.

The change in entropy of a system can be calculated using the formula ΔS = Qrev/T, where ΔS is the change in entropy, Qrev is the heat absorbed or released in a reversible process, and T is the temperature in kelvins.In this case, we want to calculate the change in entropy when 1 mol of ammonia melts at 195.5 K.

The heat of fusion of ammonia is 5.65 kJ/mol. We can use the following steps to calculate the change in entropy:Calculate the heat absorbed when 1 mol of ammonia melts at 195.5 K using the heat of fusion equation:Q = nΔHfwhere Q is the heat absorbed, n is the number of moles (1 mol), and ΔHf is the heat of fusion.Q = (1 mol)(5.65 kJ/mol) = 5.65 kJ

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a gas cylinder contains 2.0 mol of gas x and 6.0 mol of gas y at a total pressure of 2.1 atm. what is the partial pressure of gas y? use . 0.50 atm 1.6 atm 2.1 atm 2.8 atm

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The partial pressure of gas y is approximately 1.575 atm.

To find the partial pressure of gas y, we need to calculate the mole fraction of gas y and then multiply it by the total pressure. The mole fraction of gas y (Xy) is the ratio of the moles of gas y to the total moles of gas (n):
Xy = (moles of gas y) / (moles of gas x + moles of gas y)In this case, gas x has 2.0 moles and gas y has 6.0 moles, so:
Xy = 6.0 / (2.0 + 6.0) = 6.0 / 8.0 = 0.75
The partial pressure of gas y (Py) is the mole fraction of gas y multiplied by the total pressure (Ptotal):
Py = Xy * Ptotal = 0.75 * 2.1 atm = 1.575 atm
Therefore, the partial pressure of gas y is approximately 1.575 atm.

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What is the coefficient of carbon dioxide after balancing the following equation? KHCO3(s)K2CO3(s)+_H2O(g)+_CO2(g) ?

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When balancing the equation KHCO3(s) → K2CO3(s) + H2O(g) + CO2(g), one must follow the law of conservation of mass to ensure that the reactants' total mass equals that of the products.

Balancing the given chemical equation. In order to balance the given chemical equation KHCO3(s) → K2CO3(s) + H2O(g) + CO2(g), we will follow the steps given below:Step 1: Count the number of atoms on both the reactant and product sides of the unbalanced equation.

Reactant side: K: 1; H: 1; C: 1; O: 3Product side:

K: 2; H: 2; C: 1; O: 3

Step 2: Balance the equation by placing the coefficients in front of the formulae so that the number of atoms of each element in the reactant side is equal to that of the product side.2 KHCO3(s) → K2CO3(s) + H2O(g) + CO2(g)Reactant side: K: 2; H: 2; C: 2; O: 6Product side: K: 2; H: 2; C: 1; O: 6The balanced equation is 2 KHCO3(s) → K2CO3(s) + H2O(g) + CO2(g).Therefore, the coefficient of CO2 after balancing the given equation is 1.150 words

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The isotope argon-42 has an excited state 1.208 MeV above the ground state. The atomic mass of the ground state of this isotope is 41.963046u What is the mass of the atom when the nucleus is in this excited state?

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The mass of an atom with an excited state of argon-42, which is 1.208 MeV above its ground state, can be calculated by subtracting the energy difference from the atomic mass of the ground state.

The atomic mass of the ground state of argon-42 is given as 41.963046u. The excited state of the isotope is 1.208 MeV (million electron volts) above the ground state. To calculate the mass of the atom in the excited state, we need to account for the energy difference.

Since mass and energy are related through Einstein's famous equation, [tex]E=mc^2[/tex], we can convert the energy difference from MeV to atomic mass units (u) by using the conversion factor 1u = 931.5 MeV/c². Thus, the energy difference is 1.208 MeV / 931.5 MeV/c² = 0.0012984u.

To find the mass of the atom in the excited state, we subtract the energy difference from the atomic mass of the ground state: 41.963046u - 0.0012984u = 41.9617476u.

Therefore, the mass of the atom when the nucleus is in the excited state is approximately 41.9617476u.

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the acid-base indicator bromcresol green is a weak acid. the yellow acid and blue base forms of the indicator are present in equal concentrations in a solution when the ph is 4.68.

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The pH of the solution is 4.68. The acid-base indicator bromcresol green is a weak acid. The yellow acid and blue base forms of the indicator are present in equal concentrations in a solution.

The pH of the solution is 4.68, which is acidic. The acid-base indicator bromcresol green is a weak acid. The yellow acid and blue base forms of the indicator are present in equal concentrations in a solution. The color of the bromcresol green indicator is yellow in acidic conditions and blue in basic conditions.The indicator bromcresol green is a weak acid and can lose one hydrogen ion (H+) to form an anion.

In acidic conditions, the H+ concentration is high, and the acid form of the indicator predominates, resulting in a yellow color. The H+ concentration is low in basic conditions, and the basic form of the indicator predominates, resulting in a blue color. The acid form and basic form of the bromcresol green indicator are present in equal concentrations in a solution of pH 4.68.The pH of the solution is 4.68, which is acidic.

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A vessel of 0.25 m^3 capacity is filled with saturated steam at 1500 kPa. If the vessel is cooled until 29% of the steam has condensed, how much heat is transferred? (For data, use the steam tables.) The heat transferred is-kJ

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Therefore, the heat transferred is -2956.8 kJ, which is approximately equal to -2957 kJ.  the heat transferred is -2957 kJ.

Given Data: Volume of vessel, V = 0.25 m³Pressure of saturated steam, P1 = 1500 kPa Final quality of steam, x2 = 0.29Formula Used:

The formula used for calculating the heat transferred in the process of steam generation or steam condensation can be given as follows, $Q = m (h2 - h1)$Here, Q = Heat transferredm = Mass of the systemh2 = Enthalpy of the final stateh1 = Enthalpy of the initial state At point 1, the given steam is completely saturated.

Therefore, from the given data, we can find out the enthalpy of the saturated steam at point 1. Enthalpy of the saturated steam at point 1,h1 = hg = 2881.6 kJ/kg (from the steam table)

Now, we need to find out the enthalpy of the final state, i.e. h2. For this, first, we need to find out the temperature of the final state.

To find out the temperature of the final state, we can use the equation,$ x2 = \frac{h2 - h_f}{h_g - h_f} $$\ Rightarrow h2 = x2(hg - hf) + hf$

We know that the final quality of the steam is 0.29. Therefore, from the steam tables, we can find out that the temperature of the final state, T2 = 122.2°C.

Enthalpy of the saturated water at T2,hf = 504.7 kJ/kg (from the steam table)Enthalpy of the saturated steam at T2,hg = 2754.9 kJ/kg (from the steam table)

Now, we can find out the enthalpy of the final state as follows,h2 = x2(hg - hf) + hf= 0.29(2754.9 - 504.7) + 504.7= 1174.04 kJ/kg

Now, we can calculate the mass of the system as follows, Mass of the system, $m = \frac{V}{v_f + x2 (v_g - v_f)}$We know that, $v_f = 0.001007 m^3/kg$$v_g = 0.1279 m^3/kg$ Substituting the given data, $m = \frac{0.25}{0.001007 + 0.29(0.1279 - 0.001007)}$$\ Rightarrow m = 1.439 kg$

Now, substituting all the values in the formula, $Q = m(h2 - h1)= 1.439(1174.04 - 2881.6)=-2956.8kJ

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what was the rate of reaction in trial 4? select the closest answer. 1.92×10−5 m⋅s−1 1.75×10−5 m⋅s−1 1.45×10−5 m⋅s−1 2.13×10−5 m⋅s−1

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The rate of reaction = change in concentration / time is given that the change in concentration is 0.000100 mol/L or 0.1 mM (since 1 mM is equivalent to 0.001 mol/L).Thus, the rate of reaction =

0.1 × 10−3 mol/L ÷ 6.9 × 10^3 s = 1.45 × 10−5 m⋅s−1.

Therefore, the correct answer is

1.45 × 10−5 m⋅s−1.

The given rate of reaction in trial 4 can be obtained by dividing the change in concentration by the time it took for the change to occur. The correct answer is:

1.45 × 10−5 m⋅s−1

How to get the answer?Given that the change in concentration is 0.000100 mol/L and the time is 6.9 × 10^3 seconds. Therefore the rate of reaction = change in concentration / timeIt is given that the change in concentration is 0.000100 mol/L or 0.1 mM (since 1 mM is equivalent to 0.001 mol/L).Thus, the rate of reaction

= 0.1 × 10−3 mol/L ÷ 6.9 × 10^3 s = 1.45 × 10−5 m⋅s−1.

Therefore, the correct answer is 1.45 × 10−5 m⋅s−1.

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You are tasked with finding the enantiomeric excess of a sample of R-carvone. You dissolve 1.429 g of the liquid in ethanol and dilute to exactly 9.0 mL. You put this liquid in a polarimetry cell that measures 10 cm in length. When you read the sample in a polarimeter, you find a rotation of -3.3 degrees. The published specific rotation for pure R-carvone is -62. What is the enantiomeric excess of this sample? Formulas: 20 20 (dm) and c(g/mL) % ee = x 100 1xc 20 (al literature lal sample a [

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The enantiomeric excess of the sample of R-carvone is 0.042%.

Enantiomeric excess is a term used to describe the excess of one enantiomer in a mixture of two enantiomers. Enantiomeric excess (ee) is a measure of the relative amount of an enantiomer in a mixture of two enantiomers. The following formula may be used to determine the enantiomeric excess:

% ee = x 100 1xc 20 (al literature lal sample a % ee = (a-b)/(a+b) x 100%

Where a is the percentage of the major enantiomer and b is the percentage of the minor enantiomer.

Polarimetry: It is a technique for measuring the optical rotation of a substance. The amount of rotation that a substance causes when polarized light passes through it is known as optical rotation. Polarimetry is used to determine the specific rotation of a substance, which is the amount of rotation per unit length of a sample. To calculate the enantiomeric excess of R-carvone, we must first calculate the specific rotation of the sample, which is given by the following formula:

[a]20 = α/10cl

Where α is the observed rotation, c is the concentration in g/mL, and l is the path length in dm.

Substituting the given values, we have:

[a]20 = -3.3/10 x 1.429/9= -0.0261 dm³/g cm

Now, the specific rotation of pure R-carvone is given as -62°.

To find the enantiomeric excess of the sample, we use the following formula

:% ee = [(observed specific rotation / specific rotation of pure R-carvone) - 1] x 100 Substituting the values we get:% ee

= [(-0.0261/-62) - 1] x 100= (0.00042) x 100= 0.042%

Therefore, the enantiomeric excess of the sample of R-carvone is 0.042%.

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Titanium reacts with iodine to form titanium(III) iodide, emitting heat, via the following reaction: 2Ti(s)+3I2(g)→2TiI3(s),ΔHorxn=−839kJ Part A) Determine the mass of titanium that reacts if 1.75×103 kJ of heat is emitted by the reaction Part B) Determine the mass of iodine that reacts if 1.75×103 kJ of heat is emitted by the reaction.

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In the given reaction, 1.75×10³ kJ of heat is emitted. To determine the mass of titanium and iodine that reacts, we need to use the stoichiometry of the reaction and the enthalpy change.

To find the mass of titanium that reacts, we can use the stoichiometry of the reaction. From the balanced equation, we can see that 2 moles of titanium react with 3 moles of iodine to form 2 moles of titanium(III) iodide. Using the molar mass of titanium (approximately 47.87 g/mol), we can calculate the moles of titanium involved in the reaction:

[tex]\[\text{moles of titanium} = \frac{\text{kJ of heat emitted}}{\Delta H_{\text{rxn}}} \times \frac{2 \text{ moles Ti}}{839 \text{ kJ}}\][/tex]

Substituting the given values, we find:

[tex]\[\text{moles of titanium} = \frac{1.75 \times 10^3 \text{ kJ}}{-839 \text{ kJ}} \times \frac{2 \text{ moles Ti}}{1}\][/tex]

Calculating this expression gives us the moles of titanium involved in the reaction. To find the mass of titanium, we multiply the moles of titanium by the molar mass:

[tex]\[\text{mass of titanium} = \text{moles of titanium} \times \text{molar mass of titanium}\][/tex]

Similarly, to find the mass of iodine that reacts, we use the stoichiometry of the reaction. From the balanced equation, we can see that 3 moles of iodine react with 2 moles of titanium to form 2 moles of titanium(III) iodide. Using the molar mass of iodine (approximately 126.90 g/mol), we can calculate the moles of iodine involved in the reaction:

[tex]\[\text{moles of iodine} = \frac{\text{kJ of heat emitted}}{\Delta H_{\text{rxn}}} \times \frac{3 \text{ moles I}_2}{839 \text{ kJ}}\][/tex]

Substituting the given values, we find:

[tex]\[\text{moles of iodine} = \frac{1.75 \times 10^3 \text{ kJ}}{-839 \text{ kJ}} \times \frac{3 \text{ moles I}_2}{1}\][/tex]

Calculating this expression gives us the moles of iodine involved in the reaction. To find the mass of iodine, we multiply the moles of iodine by the molar mass:

[tex]\[\text{mass of iodine} = \text{moles of iodine} \times \text{molar mass of iodine}\][/tex]

By substituting the molar masses of titanium and iodine into the respective equations, we can calculate the masses of titanium and iodine involved in the reaction.

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The acquired business is considered a separate business segment distinct from all other operations of Ilocos Norte Corporation. The factory building was estimated to have a 30-year remaining useful life while machineries were estimated to have a fifteen and twenty-year useful lives for machinery A and B, respectively. Assets are to be depreciated using straight-line method to zero residual values. Late in 2021, because of technological changes in the industry and reduced selling prices for its products, the company believes that its asset(s) of this business segment have been impaired. The company estimates that the business segment will produce cash inflows of P4,000,000 and will incur cash outflows of P2,950,000 each year for the next ten years (the revised useful life of the segment as a whole). It is not able to determine the fair value of the asset based on a current selling price of the factory and machinery. The company's discount rate is 12%. It was further determined that the entire business segment can be disposed of for a total of P6,500,000 net of costs to sell.What is the recoverable amount the business segment as of December 31, 2021?5,250,0006,500,0005,932,734O 5,215,980 starting with the following equation, feo(s) al(s) fe(l) alo(s) calculate the moles of feo that will be required to produce 645 grams of fe. what objects did sapi artists create for export during the 16th century? making which dietary change can help lower ldl cholesterol levels? Asejere Enterprises Financial year ends on 31 December every year. The firm paid for electricity bill up to 31 July, 2016. The monthly electricity bill rate is N1,500. As the firm did not receive the next bill until 28 February, 2017, no payment was made for the period from August to December, 2006. Required: (a) Determine the amount of electricity expenses for the year ended 31 December, 2016. (b) The amount of electricity expenses that should be accrued for in the year 2016. (c) The Journal entries to be raided to reflect the accruals. I took this test and got a 67 just looking to see what I did wrong!Thanks in advance for your assistanceFor each group below, select the sentence that is completely correct.NOUNS1.In the early 2000's many companys established Web sites.In the early 2000s many company's established Web sites.In the early 2000s many companies established Web sites. I need help with my sales presentation.Choose a day to day product which has a better value for money, better rating, budget friendly and discuss the following;1. Describe its three main features.2. Each feature must be supported by 2 benefits of that feature.Duration for the sales presentation is 2 minutes. if exports exceed imports, as in recent years, then __________ exists. if exports exceed imports, as in recent years, then __________ exists. damage to the type ii cells of the lungs would contribute to what is this mean?? explain this part of book "kisses fromkatie"Every day I have spent in Uganda has been beautifullyoverwhelming; everywhere I have looked, raw, filthy, human need andbrokenness h Capital and Revenue Expenditures On December 2, Green River Inflatables Co. paid $2,740 to install a hydraulic lift and $51 for an air filter for one of its delivery trucks. Journalize the entries for the new lift. December 2 Journalize the entry for air filter expenditures. December 2 What amount of interest expense should be recorded on June 30 and December 31 of this year? (Round your final answers to nearest whole dollar amount.) June 30 December 31 Interest expense References eBook & Resources P10-6 Part 2 Worksheet Required information 9.09 points P10-6 Part 3 3. What amount of cash should be paid to investors June 30 and December 31 of this year? June 30 December 31 Cash paid Suppose, the 1-year loan can be refinanced at 3.75% in the second year. Calculate the cumulative net interest income for both years. Hint: Reconstruct the spreadsheet analysis shown in the video.1)$0.75 million2)$2.25 million3)$1.50 million4)$3.00 million5)None of the above The president of the retailer Prime Products has just approached the company's bank with a request for a $93.000, 90-day loan The purpose of the loan is to assist the company in acquiring inventories. Because the company has had some difficulty in paying off its loans in the past, the loan officer has asked for a cash budget to help determine whether the loan should be made. The following data are available for the months April through June, during which the loan will be used a. On April 1, the start of the loan period, the cash balance will be $36.000. Accounts receivable on April 1 will total $179.200, of which $153,600 will be collected during April and $20,480 will be collected during May. The remainder will be uncollectible b Past experience shows that 30% of a month's sales are collected in the month of sale, 60% in the month following sale, and 8% in the second month following sale. The other 2% is bad debts that are never collected. Budgeted sales and expenses for the three- month period follow Sales (011 on account) Merchandise purchases Payroll Lease payments Advertising Equipment purchases Depreciation April $ 232,000 $ 105,000 $ 22,500 $33,469 $ 63,500 5 $ 17,860 May $ 476,000 $ 163,500 $ 22.300 $ 31,400 $63.600 50 $ 37.se June 5 296,000 $ 135,500 $ 25,900 591,409 $ 41,650 S 102.ee $ 17,800 c. Merchandise purchases are paid in full during the month following purchase. Accounts payable for merchandise purchases during March, which will be paid in April, total $162,500. d. In preparing the cash budget, assume that the $93,000 loan will be made in April and repaid in June. Interest on the loan will total $1,280 Required: 1. Calculate the expected cash collections for April, May, and June, and for the three months in total 2. Prepare a cash budget, by month and in total, for the three-month period. Answer is not complete. Beginning cash balance Add receipts Prime Products Cash Budget S Collections from customers Total cash available Less cash disbursements Merchandise purchases Payroll Loase payments Advertising Equipment purchases Total cash disbursements Excess (deficiency) of cash available over disbursements Financing + Borrowings Repayments Interest Total financing Ending cash balance $ April 36,000 223,200 250,200 162.500 162,500 96,700 0 96,700 May 302,480 302,480 0 302,400 $302.400 < Prev June 392.960 392,960 0 392,900 0 $302.960 3 of 6 Quarter 918,640 918,640 D 918.640 0 $910,640 Next > The president of the retailer Prime Products has just approached the company's bank with a request for a $93.000, 90-day loan. The purpose of the loan is to assist the company in acquiring inventories. Because the company has had some difficulty in paying off its loans in the past, the loan officer has asked for a cash budget to help determine whether the loan should be made. The following data are available for the months April through June, during which the loan will be used a. On April 1, the start of the loan period, the cash balance will be $36,000. Accounts receivable on April 1 will total $179,200, of which $153,600 will be collected during April and $20,480 will be collected during May. The remainder will be uncollectible b. Past experience shows that 30% of a month's sales are collected in the month of sale, 60% in the month following sale, and 8% in the second month following sale. The other 2% is bad debts that are never collected. Budgeted sales and expenses for the three- month period follow April May June $ 476,000 $ 296,000 Sales (all on account) Merchandise purchases Payroll $ 232,000 $ 188,000 $ 163,500 $ 135,500 Lease payments Advertising $ 22,000 $ 31,400 $ 63,600 50 $ 22,000 $31,400 $63,600 $ 00 $ 17,000 $ 26,900 $31,400 $ 41,680 $ 102,000 $ 17,000 Equipment purchases Depreciation $ 17,900 c Merchandise purchases are paid in full during the month following purchase. Accounts payable for merchandise purchases during March, which will be paid in April, total $162,500 d. In preparing the cash budget, assume that the $93,000 loan will be made in April and repaid in June. Interest on the loan will total $1,280 Beginning cash balance Add receipts Prime Products Cash Budget April $ Collections from customers Total cash available Less cash disbursements Merchandise purchases Payroll Lease payments Advertising Equipment purchases Total cash disbursements Excess (deficiency) of cash available over disbursements Financing Borrowings Repayments Interest Total financing Ending cash balance 36,000 223,200 259,200 162,500 162,500 96,700 0 $ 96,700 May June 302,480 392,900 302,480 -392,900 0 0 302.400 392,960 0 $302.480 $382.960 Prev 3db #I Quarter 918,640 918,640 0 918,640 0 $918,640