Name all of the household chemicals that you found to be basic

Answers

Answer 1
Ammonia, bleach, dish soap; milk

Related Questions

How is potassium benzilate converted to benzilic acid?

Answers

Potassium benzilate can be converted to benzilic acid through a process called benzilic acid rearrangement.

This involves the acid-catalyzed rearrangement of the potassium benzilate molecule, which results in the formation of benzilic acid. The process involves the cleavage of the carbon-oxygen bond in the potassium benzilate molecule, followed by the migration of a carbonyl group to an adjacent carbon atom. This rearrangement results in the formation of the benzilic acid molecule. The use of a strong acid catalyst, such as sulfuric acid or hydrochloric acid, is typically required to facilitate the reaction.

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Why is molten salt a good conductor of electricity

Answers

Answer:

some of the salt molecules are dissociated into ions, which allows the ions to conduct electricity.

Explanation:

hope it helps

Discuss how you think oxygen levels in an estuary might be likely to rise or fall during a cold spell

Answers

Answer: In spring and summer, the uppermost layer of an estuary grows warmer and mixing between this surface water and the cooler bottom water slows. As air temperatures cool through the autumn, the surface water becomes increasingly cold and increases in density.

Explanation:

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Question 22
Another name for epsom salt is:
a. sodium sulfate
b. calcium sulfate
c. zinc sulfate
d. magnesium sulfate

Answers

The correct answer is d. magnesium sulfate. Another name for epsom salt is magnesium sulfate.

Magnesium sulfate, commonly known as Epsom salt, is a naturally occurring mineral composed of magnesium, sulfur and oxygen. It is a white crystalline solid that is highly soluble in water and has many uses, including as a bath salt, fertilizer, laxative and for various medical applications.Epsom salt is a magnesium sulfate compound that is commonly used for various home and health remedies. It is also known as magnesium sulfate, magnesium sulfate heptahydrate, and Epsomite.

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Question 27
When the chlorine is added to water
a. one acid is formed
b. two primary acids are formed
c. I-IC1 is considered the primary product
d. ozone is produced in large quantities

Answers

When the chlorine is added to water, option A: one acid is formed- called hypochlorous acid.

Hypochlorous acid (HOCl) and hypochlorite ions (OCl-), the principal disinfection components in chlorinated water, will occur when any kind of chlorine is added to water during the treatment process.

A Form of Chlorine + H₂O → HOCl + OCl⁻

Hypochlorous acid is the more efficient of the two. The pH of the water before chlorine is added determines how much of each chemical is present in the water. The hypochlorous acid will rule at lower pH values. What is referred to as "free chorine" is created when hypochlorous acid and hypochlorite ions combine. Compared to other forms of chlorine, including chloramines, free chlorine has a higher oxidation potential and is hence a more strong disinfectant.

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Why are polar protic solvents preferable for the Sn1 reactions?

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Polar protic solvents are preferable for Sn1 reactions because they are capable of stabilizing the intermediate carbocation and the leaving group through hydrogen bonding and solvation, thus promoting the reaction's rate and efficiency.

Polar protic solvents are preferable for Sn1 reactions because they have the ability to stabilize the carbocation intermediate that is formed during the reaction. The polar protic solvent can do this by solvating the carbocation through hydrogen bonding. This stabilization helps to lower the activation energy required for the reaction to occur, making it more favorable.

Additionally, the polar nature of the solvent helps to increase the rate of the reaction by facilitating the dissociation of the leaving group. Overall, the use of a polar protic solvent in Sn1 reactions can lead to increased yields and faster reaction rates.
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n
Order the specific steps needed to make a standard solution of copper (II) sulfate from anhydrous coppoer
(II) sulfate crystals.
Carefully fill the volumetric flask unit the to of the meniscus reaches the 100 mL line

Carefully transfer the dissolved solute into a volumetric flask. Be sure to rinse your
beaker with a little water and add this rinse to the volumetric flask as well

Use an eyedropper to add water until the bottom of the meniscus touches the 100 mL
line. If you overshoot, discard the solution and start over.

Dissolve the solute in the beaker with as little distilled water as possible

Measure the appropriate mass of solute CuSO4(s) and place it into a small beaker

Stopper the volumetric flask. Firmly hold the stopper in place and invert the flask 15
times to mix the solution.

Answers

Measure the appropriate mass of solute Cupric sulfate(s) and place it into a small beaker. Dissolve the solute in the beaker with as little distilled water as possible. Carefully transfer the dissolved solute into a volumetric flask.

Which technique is utilised to create crystals of copper sulphate?

One method that is frequently used to prepare copper sulphate is crystallisation. An electrolytic technique is used to create the chemical. The electrolyte solution contains sulfuric acid, and the two electrodes are composed of copper.

What method may be applied to clean up a sample of copper sulphate?

The impure sample is dissolved in a suitable solvent, heated in a water bath, and then let to stand in order to recrystallize the impure material into pure copper sulphate.

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this reaction can be replicated in teh lab by preforming a titration. if 7.21 g of caco3 solid is added to 1.2l of 0.211 mol l-1 sulfuric acid, how many moles of acid will remain after reaction

Answers

After the reaction between 7.21 g of CaCO₃ solid and 1.2 L of 0.211 mol/L sulfuric acid, 0.1812 mol of acid will remain. This reaction can be replicated in the lab by performing a titration.

To answer this question, we need to use the balanced chemical equation for the reaction between calcium carbonate (CaCO₃) and sulfuric acid (H₂SO₄):
CaCO₃ + H₂SO₄ → CaSO₄ + CO₂ + H₂O
From this equation, we can see that 1 mole of CaCO₃ reacts with 1 mole of H2SO4. Therefore, to find out how many moles of acid remain after the reaction, we need to first calculate how many moles of acid reacted with the 7.21 g of CaCO₃.
To do this, we need to convert the mass of CaCO₃ to moles. The molar mass of CaCO₃ is 100.09 g/mol, so:
7.21 g CaCO₃ x (1 mol CaCO₃ / 100.09 g CaCO₃) = 0.072 mol CaCO₃
Since 1 mole of CaCO3 reacts with 1 mole of H₂SO₄ we know that 0.072 mol of H₂SO₄ reacted in the reaction. To find out how many moles of acid remain, we need to subtract this from the initial amount of acid:
moles of H₂SO₄ = (concentration of H₂SO₄) x (volume of H₂SO₄)
moles of H₂SO₄ = (0.211 mol/L) x (1.2 L) = 0.2532 mol H₂SO₄
moles of H₂SO₄ remaining = 0.2532 mol H₂SO₄ - 0.072 mol H₂SO₄ = 0.1812 mol H₂SO₄

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A balloon is inflated with 4.0 L of gas in a room with a temperature of 26 °C. The next day the temperature in the room is 18°C. What is the volume of gas in the balloon if the pressure is constant?
SHOW YOUR WORK

Answers

Answer:

the volume of gas in the balloon is 3.89L

What increases the frequency of fog in urban areas?

Answers

There are several factors that contribute to the increased frequency of fog in urban areas. One of the main reasons is the high concentration of air pollution in cities, which can lead to the formation of fog.

Additionally, the urban heat island effect, where cities are generally warmer than surrounding rural areas, can create temperature inversions that trap moisture and increase the likelihood of fog formation.  air pollution, which is more common in urban areas and high concentration, provides particles that act as nuclei for fog droplet formation, thereby increasing the frequency of fog events. Lastly, the presence of tall buildings and other structures in urban areas can disrupt the natural flow of air, causing moisture to accumulate and form fog.

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directories and portals, web site evaluators, forums, fan clubs, and user groups are all forms of which of the following?

Answers

Online communities are designed to allow users to interact with each other, share information, and collaborate on projects.

What is projects ?

Projects are complex tasks or activities that require planning, research, organization, and implementation. Projects are typically created to achieve a goal and are typically associated with a timeline, budget, and resources. Projects can be short-term, such as a science fair project, or long-term, such as a renovation project. Projects can also be small, such as a fundraising event, or large, such as a new building. Depending on the project, tasks may need to be delegated to different people or departments, and progress must be tracked in order to ensure completion.

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I NEED HELP WITH THIS SCIENCE QUESTION!!!! +21 points

Answers

Answer:

Row 2 "As the earth revolves around the sun, its nighttime view of space keeps changing."

Explanation:

What is significant about the α hydrogens on a β-dicarboxylic acid?

Answers

The significant aspect of α hydrogens on a β-dicarboxylic acid is their acidity. Due to the electron-withdrawing effect of the two carboxylic acid groups, the α hydrogens are more acidic than those in a typical alkane.

This increased acidity allows for easier deprotonation, making the α hydrogens more reactive in various chemical reactions, such as enolization and nucleophilic substitution. The α hydrogens on a β-dicarboxylic acid are significant because they are acidic and can be easily deprotonated, leading to the formation of enolate ions. These enolate ions are important intermediates in various organic reactions, such as aldol condensation and Michael addition. Additionally, the presence of the carboxylic acid groups on the β carbon atoms can further stabilize the enolate ions, making them even more reactive. Therefore, the α hydrogens on a β-dicarboxylic acid play an important role in many organic reactions.

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Assuming similar conditions, how many liters of water vapor, H2O, react to produce 1L of hydrogen gas?C(s) + H2O(g) ® CO(g) + H2(g)

Answers

To produce 1L of hydrogen gas, you will need 1L of water vapor to react with the carbon solid.

To determine the number of liters of water vapor needed to produce 1L of hydrogen gas, we need to consider the balanced chemical equation:

C(s) + H₂O(g) → CO(g) + H₂(g)

From the equation, it is clear that one mole of water vapor reacts with one mole of carbon to produce one mole of carbon monoxide and one mole of hydrogen gas. Since the ratio of moles is 1:1, the ratio of volumes (in liters) is also 1:1, assuming similar conditions.

Therefore, water vapor reacts with the carbon solid is 1L

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Question 37
The pH of a solution in which the apparent hydrogen ion concentration is equal to 1 x 10-8 moles per liter is:
a. 2
b. 4
c. 6
d. 8

Answers

This is because the pH is the negative logarithm (base 10) of the hydrogen ion concentration. So, if the hydrogen ion concentration is 1 x 10-8 moles per liter, then the pH can be calculated as follows. The correct answer is d. 8.

pH = -log[H+]
pH = -log(1 x 10-8)
pH = -(-8)
pH = 8
Therefore, the pH of the solution is 8.

To determine the pH of a solution with an apparent hydrogen ion concentration of 1 x 10^-8 moles per liter, you can use the pH formula:
pH = -log10[H+]
where [H+] represents the hydrogen ion concentration.
Step 1: Plug in the given hydrogen ion concentration into the formula:
pH = -log10(1 x 10^-8)
Step 2: Calculate the logarithm:
pH = -(-8)
Step 3: Simplify the result:
pH = 8
So, the pH of the solution is 8 (Option d).

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Write a balanced chemical equation describing the oxidation of chlorine gas by the copper(III) ion to form the chlorate ion and copper(II) in an acidic aqueous solution. Use the smallest whole-number coefficients possible.

Answers

The balanced chemical equation for the oxidation of chlorine gas (Cl₂) by the copper(III) ion (Cu³⁺) to form the chlorate ion (ClO₃⁻) and copper(II) ion (Cu²⁺) in an acidic aqueous solution is:

2 Cl₂ + 2 Cu³⁺ + 6 H₂O → 2 ClO₃⁻ + 2 Cu²⁺ + 12 H⁺

The balanced chemical equation is obtained by ensuring that the number of atoms of each element is the same on both sides of the equation. In this case, chlorine gas (Cl₂) is oxidized by the copper(III) ion (Cu³⁺) in an acidic aqueous solution, resulting in the formation of the chlorate ion (ClO₃⁻) and copper(II) ion (Cu²⁺).

To balance the equation, we need to make sure that the number of chlorine atoms, copper atoms, and hydrogen atoms is the same on both sides of the equation.

In this case, the coefficients of the reactants and products are multiplied to achieve a balanced equation. The smallest whole-number coefficients possible are used to obtain the simplest and most balanced equation.

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Question 28 Marks: 1 The gas causing the distinct "rotten egg" odor in many water sources isChoose one answer. a. hydrogen sulfide b. carbon dioxide c. chlorine gas d. hydrogen carbonate

Answers

The gas causing the distinct "rotten egg" odor in many water sources is hydrogen sulfide (H2S).

Hydrogen sulfide (H2S) is a colorless gas with a distinct, unpleasant odor that is often described as smelling like rotten eggs. It is produced by the natural decomposition of organic matter, such as in swamps, sewage treatment plants, and manure pits. It is also produced by some industrial processes, such as petroleum refining and paper production.

Hydrogen sulfide is highly toxic, even at low concentrations, and can cause a range of health effects, including headaches, dizziness, nausea, and even death at high concentrations. It is also flammable and can form explosive mixtures with air.

In water sources, hydrogen sulfide can occur naturally or as a result of human activity, such as mining or drilling. It is often found in well water and can cause water to have a foul taste and smell. The presence of hydrogen sulfide in water can also cause corrosion of plumbing fixtures and appliances, as well as staining of clothing and other materials.

Hydrogen sulfide can be removed from water using a variety of methods, including aeration, oxidation, and chemical treatment. Aeration involves exposing the water to air, which allows the hydrogen sulfide gas to escape into the atmosphere. Oxidation involves adding an oxidizing agent, such as chlorine or hydrogen peroxide, to the water to convert the hydrogen sulfide gas to sulfate. Chemical treatment involves adding chemicals such as iron salts or activated carbon to the water to remove the hydrogen sulfide.

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how might you carry out the following selective transformations? (note that a protection step may be required, and recall that aldehydes are more reactive than ketones toward nucleophilic addition.) syntheses may require several steps.

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To carry out selective transformations, one could use various methods such as chemical reactions, catalysts, and/or specific reagents. For example, to selectively convert an aldehyde to a ketone, one could use a protecting group such as an acetal or ketal to protect the aldehyde group. Then, the ketone could be formed using an oxidizing agent such as Jones reagent or Swern oxidation.

To selectively convert a ketone to an aldehyde, one could use a reducing agent such as sodium borohydride or lithium aluminum hydride to reduce the ketone to an alcohol. Then, the alcohol could be oxidized using an oxidizing agent such as PCC or Dess-Martin periodinane to selectively convert it to an aldehyde.

In cases where an aldehyde is more reactive than a ketone, selective transformations can be carried out using nucleophiles. For example, to selectively add a nucleophile to an aldehyde, one could use a mild nucleophile such as cyanide ion or sodium bisulfite to form a cyanohydrin or a sulfite adduct, respectively. To selectively add a nucleophile to a ketone, one could use a more reactive nucleophile such as Grignard reagents or organolithium compounds.

Overall, the selective transformations required for a synthesis may require several steps, and a protection step may be required to protect the functional group that is not being transformed.

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If the rate law of a chemical reaction is k[NH4+]2[NO2-], what is the order of the reaction?

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The order of a chemical reaction is determined by the rate law equation. We have two molecules of NH4+ and one molecule of NO2- involved in the rate-determining step. When we add the exponents of these molecules, we get 2 + 1 = 3.

Therefore, the overall order of the reaction would be second order.

The rate law is k[NH4+]2[NO2-]. The exponents (2 and 1) represent the order of the reactants NH4+ and NO2- respectively.

We must understand what the term "order" means in chemistry. The order of a reaction represents the number of molecules or atoms of a reactant that are involved in the rate-determining step of the reaction. The rate-determining step is the slowest step of the reaction that controls the overall reaction rate.

Therefore, the overall order of the reaction is third order. However, the rate law only shows the concentration dependence of the reaction, which means that we only consider the exponents of the reactants in the rate law equation. The order of the reaction is second order.

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Carbon forms four single covalent bonds with other atoms.
(Never True, Always True, Sometimes True)

Answers

Always True. Carbon forms four single covalent bonds with other atoms due to its four valence electrons, allowing it to create stable compounds by sharing electrons with other atoms.

Carbon is located in group 14 of the periodic table and has 4 valence electrons. These electrons are available for bonding with other atoms, and carbon typically forms 4 single covalent bonds with other atoms, resulting in a stable octet configuration. However, there are some exceptions where carbon can form fewer or more than 4 covalent bonds. For example, in the case of carbon monoxide (CO), carbon forms a triple bond with oxygen, resulting in a total of only 2 covalent bonds. In other cases, such as with certain organic molecules, carbon can form double or triple bonds with other carbon atoms or other elements. Nonetheless, in the vast majority of cases, carbon forms 4 single covalent bonds with other atoms.

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How many neutrons are in the nucleus of an atom of 118/50 Sn?

Answers

There are 68 neutrons in the nucleus of an atom of 118/50 Sn (tin).

To determine the number of neutrons in the nucleus of an atom of 118/50 Sn, we need to understand the atomic structure and notation. The symbol "Sn" represents the element tin, and the numbers 118 and 50 are mass number (A) and atomic number (Z), respectively.

The mass number (A) is the sum of protons and neutrons in the nucleus, while the atomic number (Z) indicates the number of protons in the nucleus. In this case, the atomic number is 50, which means there are 50 protons in the tin atom.

To find the number of neutrons (N) in the nucleus, we use the following formula:

N = A - Z

Substitute the values:

N = 118 - 50

N = 68

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I would need some help on this I would really appreciate if you could help out with that one.

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The types of intermolecular forces (IMFs) present in Carbon dioxide are London dispersion forces and dipole-dipole forces. At standard temperature and pressure (STP), which is defined as 0°C and 1 atm, carbon dioxide will sublime.

What are different types of intermolecular forces?

There are several types of intermolecular forces, including London dispersion forces, dipole-dipole interactions, and hydrogen bonding.

(1) Carbon dioxide :

Type of IMFs : London dispersion forces.

Sublime at STP : Yes

(2) Hydrogen fluoride :

Type of IMFs : Dipole- Dipole

Sublime at STP : No

(3) Calcium chloride :

Type of IMFs : Ionic

Sublime at STP : No

(4) Naphthalene :

Type of IMFs : London dispersion forces

Sublime at STP : Yes

(5) Iodine :

Type of IMFs : Dipole induced dipole

Sublime at STP : Yes

(6) Sodium chloride :

Type of IMFs : Ionic

Sublime at STP : No

(6) Water :

Type of IMFs : Hydrogen Bonding

Sublime at STP : No

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Formaldehyde has the formula CH2O. How many molecules are there in 0.11 g offormaldehyde?A) 6.1 × 10-27 B) 3.7 × 10-3 C) 4.0 D) 2.2 × 1021 E) 6.6 × 1022

Answers

The answer is D) 2.2 × 10²¹ molecules.

To solve this problem, we need to use Avogadro's number, which relates the number of molecules in a substance to its mass. First, we need to calculate the molar mass of formaldehyde:

Molar mass of CH2O = (1 x 12.01) + (2 x 1.01) + 16.00 = 30.03 g/mol

Next, we can use the following equation to calculate the number of molecules in 0.11 g of formaldehyde:

Number of molecules = (0.11 g / 30.03 g/mol) x (6.02 x 10²³ molecules/mol) = 2.2 x 10²¹ molecules

Therefore, the answer is D) 2.2 x 10²¹ molecules.

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What was the initial pressure of a balloon that had an initial temperature of 124K but was pressurized to 200.6 kPa, reducing the temperature to 74K?,

Answers

Answer:

P1 = 334.16 kPa

Explanation:

We can use the combined gas law to solve this problem, which relates the initial pressure, temperature, and volume of a gas to its final pressure, temperature, and volume, assuming the number of moles of gas is constant.

The formula for the combined gas law is:

(P1 x V1) / T1 = (P2 x V2) / T2

where P1 is the initial pressure, V1 is the initial volume, T1 is the initial temperature, P2 is the final pressure, V2 is the final volume, and T2 is the final temperature.

We are given the initial temperature T1 = 124 K, the final temperature T2 = 74 K, and the final pressure P2 = 200.6 kPa. We want to find the initial pressure P1.

Assuming the volume of the balloon is constant, we can set V1 = V2, and the equation becomes:

P1 / T1 = P2 / T2

Substituting the values, we get:

P1 / 124 K = 200.6 kPa / 74 K

Solving for P1, we get:

P1 = (124 K / 74 K) x 200.6 kPa

P1 = 334.16 kPa

Therefore, the initial pressure of the balloon was 334.16 kPa.

How many Br atoms are in 2.50 g of Br?A) 1.88x1022 Br atoms D) 6.02 x 1023 Br atomsB) 1.51 x 1024 Br atoms E) 9.42 x 1021 Br atomsC) 7.54 x 1021 Br atoms

Answers

The number of Br atoms in 2.50 g of B r is 1.88 × 10²² Br atoms. Hence, option A is correct.

Generally, molecular mass of an element is defined as the sum of the masses of the elements which are present in the molecule. Molecular mass is basically obtained by multiplying the atomic mass of an element with the number of atoms in the molecule and then adding the masses of all the elements in the molecule.

Given mass of Br = 2.50 g

Molar Mass of Br = 79.904 g\mol

Number of moles of Br = 2.50 g/ 79.904 g/mol = 0.0313 mole

Each mole of Br atoms contain 6.023 × 10²³ atoms.

0.0313 mole of Br will contain = 0.0313 mole of Br × (6.023 × 10²³ atoms / 1 mole of Br) = 1.88 × 10²² Br atoms.

Hence, option A is correct.

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What does these signs of ∆G tell us?∆G < 0∆G > 0∆G = 0

Answers

The signs of ∆G tell us about the direction and magnitude of the change in Gibbs free energy of a chemical reaction.

When ∆G is less than 0, it indicates that the reaction is exergonic, meaning that it releases energy and is thermodynamically favorable. When ∆G is greater than 0, it indicates that the reaction is endergonic, meaning that it requires energy input and is thermodynamically unfavorable. When ∆G is equal to 0, it indicates that the reaction is at equilibrium, with no net change in the concentrations of reactants and products. Therefore, these signs of ∆G provide crucial information about the energy changes and thermodynamic feasibility of a chemical reaction.
Hi! These signs of ∆G tell us about the spontaneity of a chemical reaction. When ∆G < 0, the reaction is spontaneous and occurs without external energy input. When ∆G > 0, the reaction is non-spontaneous and requires external energy to occur. When ∆G = 0, the reaction is at equilibrium, and there is no net change in the concentrations of reactants and product.

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Ch19: Which one of the following reactions have a positive value for ΔS?1. C10H8 (g) --> C10H8(s)2. F3BNH3(g) --> BF3(g) + NH3(g)3. N2(g) + 3H2 (g) --> 2NH3(g)4. CS2 (g) + 4H2 (g) --> CH4 (g) + 2H2S (g)

Answers

The sign of ΔS plays an important role in determining the spontaneity of a chemical reaction. If ΔS is positive, the reaction is more likely to occur spontaneously, while if ΔS is negative, the reaction may require external energy input to occur.

In thermodynamics, ΔS represents the change in entropy of a system during a chemical reaction. Entropy is a measure of the degree of disorder or randomness in a system. When a chemical reaction occurs, the entropy of the products and the reactants may change. The sign of ΔS determines whether a reaction is exothermic or endothermic.

Among the reactions listed, the one that has a positive value for ΔS is

[tex]N_2(g) + 3H_2(g) --> 2NH_3(g).[/tex]

This reaction involves the synthesis of ammonia, which is an endothermic process. The reactants have lower entropy than the products, meaning that the system becomes more disordered during the reaction. The entropy of the products is greater than the entropy of the reactants, so the ΔS is positive.

In contrast, the reactions of

[tex]C_{10}H_8(g) --> C_{10}H_8(s), F_3BNH_3(g) --> BF_3(g) + NH_3(g),\\ and\  CS_2(g) + 4H_2(g) --> CH_4(g) + 2H_2S(g)[/tex]

have negative values for ΔS. These reactions involve the formation of solids or liquids, and the system becomes more ordered during the reaction. The entropy of the products is lower than the entropy of the reactants, so the ΔS is negative.

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Which of the following describes how blood helps to maintain homeostasis by working with the immune system?

Answers

Homeostasis is the process by which a body is able to adapt to different conditions and keep the body in relatively stable internal conditions at all times.

During homeostasis, blood helps regulate the body temperature by eliminating excess heat, maintaining the pH balance of the body, and maintaining the internal osmotic pressure.

The immune system assists in homeostasis by screening and destroying pathogens and helps prevent autoimmunity as well as regulates immune reactions periodically. If the immune system fails to do these processes, then it may result in the appearance of cancer.

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Answer:

c

Explanation:

of two different liquids are poured through a funnel with a narrow exit tube, and the time for all of the liquid to flow through is recorded. here are some results: trial time to flow through funnel liquid x liquid y 1 2 3 note: the two liquids have the same density. what's different about liquids x and y? your answer should be the one- or two-word name of a physical property.

Answers

After analyzing the given values for two different liquid, the physical quantity where both liquids differ is viscosity.

The viscosity of a liquid is a proportion of its protection from distortion at a given rate. For fluids, it compares to the casual idea of "viscosity": for instance, syrup has a higher consistency than water.

Viscosity evaluates the inside frictional power between adjoining layers of liquid that are in relative movement. For example, when a thick liquid is constrained through a cylinder, it streams more rapidly close to the cylinder's pivot than close to its walls. Tests show that some pressure (like a strain contrast between the two finishes of the cylinder) is expected to support the stream. This is on the grounds that a power is expected to conquer the rubbing between the layers of the liquid which are in relative movement. For a cylinder with a steady pace of stream, the strength of the remunerating force is corresponding to the liquid's consistency.

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Full Question ;

ml. or two different liquids are poured through a funnel with a narrow exit tube, and the time for all of the liquid to flow through is recorded. Here are some results: time to flow through funnel trial Liquid X Liquid Y 1 2 1.90 1.81 1.94 9.36 9.69 10.15 3 Note: the two liquids have the same density What's different about liquids X and Y? Your answer should be the one or two-word name of a physical property ?

consider a situation where a student incorrectly identified their aldehyde and ketone and thus added the incorrect volume of each in the chemical reaction. what affect would this have on the product of the chemical reaction?

Answers

If a student incorrectly identified their aldehyde and ketone and added the incorrect volume of each in the chemical reaction.

it could have a significant impact on the resulting product. Aldehydes and ketones have different chemical properties and reactivity, which can affect the outcome of the reaction. If the incorrect volume is added, it could lead to a different ratio of reactants and affect the overall yield of the product.

Additionally, the incorrect aldehyde or ketone could react differently and produce a different product altogether. It is important to accurately identify and measure the reactants in a chemical reaction to ensure the desired product is obtained.

If a student incorrectly identified their aldehyde and ketone, and added the incorrect volume of each in the chemical reaction, it could potentially affect the product of the reaction.

This may lead to a lower yield, formation of unintended by-products, or even failure to produce the desired product altogether. Proper identification and accurate measurements are crucial for successful chemical reactions.

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