At a fixed temperature and pressure, the volume occupied by a gas is _____ proportional to the number of moles of gas present. For ideal gases under these conditions, equal _____ of gas contain equal numbers of particles or moles.

Answers

Answer 1

directly, volumes

At a fixed temperature and pressure, the volume occupied by a gas is directly proportional to the number of moles of gas present. For ideal gases under these conditions, equal volumes of gas contain equal numbers of particles or moles.

The physical behavior of a sample of gas can be described completely by the four variables, pressure (P), volume (V), temperature (T) and quantity (moles). These variables are interdependent. Any one of them can be determined by knowing the other three.

The volume occupied by a mole of gas at STP ( same temperature and pressure) is called the standard molar volume and is very nearly a constant for gases.

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Related Questions

Which combination of elements will form an ionic bond?
O potassium and chlorine
O oxygen and fluorine
nitrogen and helium
• sodium and calcium

Answers

potassium and chlorine combination of elements will form an ionic bond.

What makes an ionic bond?Ionic bonding, a sort of chemical bonding that involves the electrostatic attraction between two atoms or ions. sharply differing charges, is the main interaction that takes place in ionic compounds. Along with covalent and metallic bonds, ionic bonding is one of the fundamental forms of bonding. Atoms possessing an electrostatic charge are referred to as ions.Negatively charged ions are produced when atoms gain electrons (called anions). When atoms lose electrons, they produce positively charged ions (called cations). In contrast to covalence, this transfer of electrons is known as electrovalence.

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In 1983, a team of scientists discovered a fossilized bone of a giant bird when excavating land in
Brazil. After studying the fossil, the team thought that the bird was unique to South America but
had been extinct for millions of years. Many years later, another fossil from the same giant bird
was found in Nigeria. The two fossils were formed in rock that was very similar to one another.

Answers

By looking on the map and the fossil of bird found on different places shows that in past these land masses were connected.

What is Fossil?

Fossils are defined as the geologically altered remainders of the living organism which are exist in the world once or its behaviour.

Types of Fossil

There are basically five main types of fossil

Body fossilMolecular fossilTrace fossilCarbon fossilPseudo fossil

In 1983, a team of scientists discovered a fossilized bone of a giant bird when excavating land in Brazil. After studying the fossil, the team thought that the bird was unique to South America but had been extinct for millions of years. Many years later, another fossil from the same giant bird was found in Nigeria. The two fossils were formed in rock that was very similar to one another. This shows that the two land masses are connected.

Thus, we concluded that the fossil of bird found on different places shows that in past these land masses were connected.

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I NEED AN ANSWER ASAP! THIS IS DUE TOMARROW! at room temperature and standard pressure nitrogen is a gas and water is a liquid explain how the interactions between molecules cause a difference in the state of nitrogen and water

Answers

Nitrogen exists as a diatomic molecule, N2 (subscript 2). It exists as a gas at room temperature because of the type of interactions with other identical molecules: weak intermolecular forces are present between the molecules, specifically temporary dipole-dipole interactions.

These interactions are the second weakest type of intermolecular force (Van Der Waals and Hydrogen Bonds are the other two with Hydrogen Bonds being stronger).

Now the reason why Nitrogen exists as a gas is because these weak intermolecular forces can be overcome with little energy. Therefore, at room temperature, Nitrogen exists as a gas.

Now if we wanted to get liquid Nitrogen (quite common in Science demonstrations) we would have to cool Nitrogen down to -195.8°C (77.35°K). The energy of the particles would decrease so much that the dipole-dipole interactions would be strong enough to hold the molecules of Nitrogen together in a liquid state.

Intermolecular forces such as dipole-dipole forces, London dispersion forces exist between molecules and these depend on strength of electronegativity of molecule. Intermolecular forces of attraction decides the states of a matter.

What is intermolecular forces of attraction?

Intermolecular forces of attraction is force of attraction that make two molecule come closer. Intermolecular forces of attraction is directly proportional to the electronegativity of the molecule.

Intermolecular forces of attraction play an important role in deciding the states of a matter. Nitrogen is a gas because its molecule have vanderwaal force of attraction. Water is a liquid because its molecule have hydrogen bonding.

Therefore, intermolecular forces of attraction decides the states of a matter.

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You're comparing three different atoms. Atom A has 9 protons in the nucleus, Atom B has 10 protons, and Atom C has 11 protons.

a. Which atom would be least likely to react with other atoms? Why?

b. Which would form a positively charged ion? Why?

Answers

Answer:

a. Atom B will be least likely to react with other atoms as it is contains 10 electrons in neutral state with E.C. : 2,8. Since it has an octet, it is stable and does not react with other atoms.

b. Atom C forms a positive ion. It contains 11 electrons in neutral state with E.C. : 2,8,1. To attain an octet, it will donate an electron to form a positive ion.

What is the maximum mass of S8 that can be produced by combining 94.0 g of each reactant?

8SO2+16H2S⟶3S8+16H2O

mass of S8 :

Answers

Mass of S₈ is 130 grams

Mass is a measure of the amount of matter that an object contains

Here given data is 94.0 g of each reactant and we have to find mass of S₈= ?

Here the reaction are given

8SO₂+16H₂S → 3S₈+16H₂O

So, 3 moles S₈ will be produced from 8 moles SO₂ and 16 moles H₂S and now determine how many moles of SO₂ and H₂S are actually present during this reaction and that will allow us to then calculate the maximum mass of S₈ that can be produced

For SO₂ = 94.0 grams/(64.1 g/mole) =1.44 moles SO₂

For H₂S = 94.0g H₂S (34.1 g/mole) = 2.70 moles H₂S

2.70 moles H₂S(3 moles S₈/18 moles H₂S) = 0.506 moles of S₈

The molar mass of S₈ is 257 g/mole.  

Therefore, 0.506 moles S₈×(257 g/mole S₈) = 130 grams S₈

So  S₈ = 130 grams

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Which sample correctly identifies how mass, mole, and atoms are related?

Sample 1, because 11 protons have a mass of 11 grams which equals 1 mole and is 6.02 x 1023 atoms.

Sample 2, because half of the atomic mass would equal half of a mole and half of 6.02 x 1023 atoms.

Sample 1, because the atomic mass equals 1 mole which is 6.02 x 1023 atoms.

Sample 2, because 2 protons is 1 mole which equals 6.02 x 1023 atoms.

Answers

Sample 2 has correctly identifies how mass, mole, and atoms are related because half of the atomic mass would equal half of a mole and half of 6.02 x 10²³ atoms.

Atomic mass of Helium (He) is 4g. In the data, it is provided that the mass of He is 2g. It means helium with half of the atomic mass.

No. of moles = Atomic mass / Molar mass

No. of moles of He = 2 / 4 = 0.5

Thus, Helium with half of atomic mass would be equal to mass of half mole i.e., 0.5 mole.

A mole of a compound contains 6.02 x 10²³ atoms. So, half mole of helium would have half atoms i.e., 3.01 x 10²³ atoms.

On consolidating, Sample 2 correctly identifies the relationship between mass, mole, and atoms because half of the atomic mass would equal half of a mole and half of 6.02 x 1023 atoms.

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The volume of a sample of hydrogen is 798 mL and it exerts 621 mm Hg pressure at 5.00°C. What volume does it occupy at standard temperature and pressure?

Answers

The volume does it occupy at standard temperature and pressure:

= 640mL

Which temperature is considered normal?

In order to establish experimental measurements under uniform conditions and enable comparisons between several sets of data, standard pressure and temperature requirements must be met.

For what use does standard temperature?

Standard temperature and pressure, or STP, is a set of parameters that scientists and engineers frequently utilize. Standard pressure is 1 atm, and standard temperature is 0° Celsius (32° Fahrenheit or 273.15 K). The characteristics of various gases, for example, are described using these values.

According to the given data:

P1V1/T1 = P2V2/T2

You simply leave that variable out from the calculation if one of these values also isn't specified because it is assumed to be a constant.

When working with moles or grams, PV=nRT is employed. If you are given grams, you must convert them to moles before you start because n is the number of moles.

STP (standard temperature and pressure) P= 1atm

T= 273K

R= 0.08206 L-atm / mol-K

P1V1/T1 = P2V2/T2

760*V1/273 = 621*798/278

V1*760*278 = 273*621*798

V1 = 640mL

The volume does it occupy at standard temperature and pressure:

= 640mL

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no marks. to determine what portion of the question you have correct, check question score at the top of the assignment. indicate which molecule (a or b) in each pair has the higher boiling point. also indicate which force, hydrogen bonding (h), dipolar (p), or dispersion (d) is responsible for the difference.

Answers

Molecule (a or b) in each pair has the higher boiling point also indicate force, hydrogen bonding (h), dipolar (p), or dispersion (d) is responsible for the difference so in NH₃ and PH₃ the a molecule is high melting point and forces are dispersion force and in C₂H₅OH and CH₃OHCH₃ the molecule a has high melting point and has a dispersion force and C₄H₈ and C₁₀H₂₀ the b molecule has high melting point and has a dispersion force and in HCl and F₂ the a molecule has high boiling point and has a dipolar dipole interaction forces

The forces are electrostatic force between oppositely charged ions as in ionic bonds or through the sharing of electrons as in covalent bonds and there are four type of forces

Hydrogen bondingdipole-dipoledispersionIon dipole

So here given molecule in that we have to seen the forces and high melting point so

NH₃ and PH₃ : NH₃ has high melting point than PH₃ and has dispersion forceC₂H₅OH and CH₃OHCH₃ : C₂H₅OH has high melting point than CH₃OHCH₃ and dispersion forceC₄H₈ and C₁₀H₂₀ : C₁₀H₂₀ has high melting point than C₄H₈ and dispersion forceHCl and F₂ : HCl has high boiling point than F₂ and has a dipole interaction

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if the distance traveled from city "A" to city "B" is 625 kilometers, how many meters, cm and mm is that?

Answers

625 km

1 km = 1000 meters

625 x 1000 = 625000 meters

1 meter = 100 centimeters

625000 x 100 = 62500000 centimeters

1 cm = 10 mm

62500000 x 10 = 625000000 millimeters

Which situation shows that work is done? i. caryl is reading book. ii. caryl is writing her assignment. iii. caryl is moving the chair across the room. iv. caryl is pushing the cart from the main lobby to the garage

Answers

IV. Carol is pushing the cart from the main lobby to the garage

Work is defined as the force exerted on an object that cause the displacement of the object

The amount of work done can be derived from the product of the force and direction of displacement.

I.e W = F ×

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30 POINTS!

A 240.0 gram piece of copper is dropped into 400.0 grams of water at 24.0 °C. If the final temperature of water is 42.0 °C, what was the initial temperature of the copper piece? (5 points)
Specific heat of copper = 0.39 J/g °C

Group of answer choices

322 °C

345 °C

356 °C

364 °C

Answers

Taking into account the definition of calorimetry, the correct answer is las option: the initial temperature of the copper piece is 364°C.

Calorimetry

Calorimetry is the measurement and calculation of the amounts of heat exchanged by a body or a system.

Sensible heat is defined as the amount of heat that a body absorbs or releases without any changes in its physical state (phase change).

So, the equation that allows to calculate heat exchanges is:

Q = c×m×ΔT

where:

Q is the heat exchanged by a body of mass m.c is the specific heat substance. ΔT is the temperature variation.

Initial temperature

In this case, you know:

For copper:Mass of copper= 240 gInitial temperature of copper= UnknownFinal temperature of copper= 42 ºCSpecific heat of copper = 0.39 J/gC For water:Mass of water = 400 gInitial temperature of water= 24 ºCFinal temperature of water= 42 ºCSpecific heat of water = 4.18 J/gC

Replacing in the expression to calculate heat exchanges:

For copper: Qcopper= 0.39 J/gC × 240 g× (42 C - Initial temperature of copper)For water: Qwater= 4.18 J/gC× 400 g× (42 C - 24 C)

If two isolated bodies or systems exchange energy in the form of heat, the quantity received by one of them is equal to the quantity transferred by the other body. That is, the total energy exchanged remains constant, it is conserved.

Then, the heat that the copper gives up will be equal to the heat that the water receives. Therefore:

- Qcopper = + Qwater

- 0.39 J/gC × 240 g× (42 C - Initial temperature of copper)= 4.18 J/gC× 400 g× (42 C - 24 C)

Solving:

- 93.6 J/C× (42 C - Initial temperature of copper)= 30,096 J

- 93.6 J/C× 42 C- (- 93.6 J/C)× Initial temperature of copper= 30,096 J

- 3,931.2 J +93.6 J/C × Initial temperature of copper= 30,096 J

93.6 J/C × Initial temperature of copper= 30,096 J+ 3,931.2 J

93.6 J/C × Initial temperature of copper= 34,027.2  J

Initial temperature of copper=34,027.2  J÷ 93.6 J/C

Initial temperature of copper= 364 °C

Finally, the initial temperature of the copper is 364 °C.

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Answer:

the correct answer is 364

q = m * c * ΔT

where q is the heat absorbed or released, m is the mass of the substance, c is the specific heat capacity of the substance, and ΔT is the change in temperature.

We can assume that the heat lost by the copper is gained by the water, so:

q(copper) = -q(water)

where the negative sign indicates that the copper loses heat while the water gains heat.

The specific heat capacity of copper is 0.39 J/g °C, so:

q(copper) = 240.0 g * 0.39 J/g °C * (T(copper) - 24.0 °C)

The specific heat capacity of water is 4.18 J/g °C, so:

q(water) = 400.0 g * 4.18 J/g °C * (42.0 °C - T(copper))

Setting q(copper) equal to -q(water), we get:

240.0 g * 0.39 J/g °C * (T(copper) - 24.0 °C) = -400.0 g * 4.18 J/g °C * (T(copper) - 42.0 °C)

Simplifying and solving for T(copper), we get:

T(copper) = [(400.0 g * 4.18 J/g °C * 42.0 °C) + (240.0 g * 0.39 J/g °C * 24.0 °C)] / (240.0 g * 0.39 J/g °C + 400.0 g * 4.18 J/g °C)

T(copper) = 364.1 °C

Therefore, the initial temperature of the copper piece was 364.1 °C.

Hence, the answer is "364 °C".

calculate the concentrations of H2????????3, H????????3−, ????????32− ???????????? ????H− at equilibrium in a solution that was initially 0.10 m in ????????2????????3. H2????????3: K????1

Answers

Since total volume is 1.00 L, the number of intelligencers is equal to molar attention.

The equilibrium constant K c = ( H 2)( I 2)( HI) 254.4 = x × x(0.0400 −2 x) 254.4 =( x(0.0400 −2 x)) 254.4 =( x(0.0400 −2 x))

Equilibrium

When a system is in equilibrium, neither its internal energy state nor its state of agitation tend to vary over time. If a simple mechanical body suffers neither direct acceleration nor angular acceleration, it is considered to be in equilibrium; unless disturbed by an external force, this state will last forever. Equilibrium exists for a single flyspeck if the vector sum of all forces acting on it is zero.

A rigid body is said to be in equilibrium if, in addition to the nations listed for the flyspeck over, the vector sum of all ropes acting on the body equals zero so that its state of rotational stir does not change. This is how a rigid body is distinguished from a flyspeck by having the property of extension.

When modest, externally motivated deportations from an equilibrium result in forces that have a tendency to oppose the deportation and bring the body or flyspeck back to the equilibrium state, the equilibrium is said to be stable.

Examples are a weight that is suspended from a spring or a slipup that is placed face down on a position face. If the least deviation results in forces that tend to promote relegation, the equilibrium is unstable. A balanced ball bearing serves as an example.

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Correct question -

calculate the concentrations of H2, H3−, 32− H− at equilibrium in a solution that was initially 0.10 m in 2 3. H2 3: K1?

scientist are always learning new things. which of the following shows how scientists use observations to gain new understanding about the world?

Answers

The statement scientists have discovered new planets orbiting a star by detecting a wobble in the star's motion shows how scientists use observations to gain a new understanding of the world (Option A).

What is a planet's orbit?

A planet's orbit is a route that a planet as a celestial body has around its star in a star system. The orbit of a planet can be detected by observing the light emitted by the star, which is fundamental for astronomers.

Therefore, we can conclude that scientists discovered new planets through the identification of features associated with star's movement in space (Option A).

Complete question:

Scientists are always learning new things. Which of the following shows howscientists use observations to gain new understanding about the world?

A. Scientists have discovered new planets orbiting a star by

detecting a wobble in the star's motion.

B. Scientists hope to learn more about how many stars are in space.

C. Scientists wonder if other planets can support life, and some

scientists wonder if there are aliens.

D. Scientists are familiar with some galaxies, but they do not know

how many galaxies exist.

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Students were asked to select methods to increase the rate of dissolving a solid. Which methods would increase the rate? Select all that may apply.

Select 3 correct answer(s)

1. Increasing the pressure so that a solid dissolves in the solution.

2. Shaking/stirring the mixture causing an increase in the rate of dissolution.

3. Grinding the solute to increase the surface area.

4. Decreasing the pressure so that a solid dissolves in the solution.

5. Increasing the temperature in order to increase molecule collisions.

Answers

5. Increasing the temperature to increase molecule collisions.

What factor increases the solubility of a solid in a solution?

An increase in the temperature of the solution can increase the solubility of a solid solute. For example, a greater amount of sugar will dissolve in warm water as compared to in cold water. The size of solute particles, stirring of the solution and increasing temperature of the solution are the three factors that can affect the solubility of a solid in a solvent. Increasing the surface area of the solute will also increase the rate of dissolving in a solution as well as increase the temperature of the solvent. Stirring will increase the speed which also increases the rate of dissolving a solid solute in a solution which helps in attaining higher solubility.

So we can conclude that temperature is the factor that increases the solubility of a solid into a solution.

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Answer:

Increase temp

Shaking/ stirring

Grinding

Explanation:

Chatgpt hehehehe

You are tasked with making a series of Furosemide calibration standards for analysis by HPLC with fluorescence detection.

(a) Given Furosemide has a molecular weight of 330.7 g/mol, what weight of furosemide would you need to make a stock solution of 0.001 M (10-3 M) concentration ?

(b) How would you then make up a series of standards from this stock solution, of concentrations 10-4, 10-5, 10-6, 10-7 and 10-8 M Furosemide?


Answers

(a) To make a stock solution of 0.001 M concentration, you would need to weigh out 33.07 mg of furosemide.

(b) To make up a series of standards from the stock solution, you would first dilute the stock solution with water to make a working solution of 10-4 M concentration. You would then take 1 mL of the working solution and dilute it with water to make a 10-5 M concentration standard, and so on, until you have standards of 10-4, 10-5, 10-6, 10-7, and 10-8 M concentrations.

If an msds identifies that a chemical is flammable what should you do?

A.keep the container sealed at the times
B.keep the chemical away from fire
C.dilute the chemical so it is less flammable
D.use another chemical that is not flammable

Answers

The answer is B, keep the chemical away from fire. Flammable chemicals should be kept away from an open flame.

A polar organic solvent that is capable of forming intermolecular hydrogen bonds is called a polar _____ solvent. This type of solvent forms ion-dipole interactions with _____.

Answers

A polar organic solvent that is capable of forming intermolecular hydrogen bonds is called a polar protic solvent. This type of solvent forms ion-dipole interactions with anions.

What is a polar organic solvent?

Polar solvents are solvents that have both  “positive” and “negative” charge at different places in their structures and will dissolve other polar substances. An example of polar solvent is Water; other polar solvents include acetone, acetonitrile, dimethylformamide (DMF), dimelthylsulfoxide (DMSO), isopropanol, and methanol.

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A certain volume of gas was heated from 0°C to 25°C. The degree of change in Kelvin is?

Answers

Answer:

25 K

Explanation:

298-273=25 Kelvin

Question 3
1 pts
To find the volume of your element, you completed wate displacement, which is
calculated by Final volume - Initial volume. Originally 13. mL of water was placed into
the graduated cylinder. After you object was placed into the graduated cylinder, the
water level raised to 19.5 mL. Calculate the volume of the object.

Answers

The volume of the object is calculated out to be 6.5 mL when the volume of your element completed displacement which is calculated.

What is the displacement and how the volume of the object is calculated out to be so?Displacement is the shortest distance between the initial point and the final point.Here in this question given the initial volume to be 13 mL , and the final volume to be 19.5 mL.To calculate the volume which is supposed to be the final volume , we will substract the volumes given.The substraction of the initial volume and the final volume would be 19.5 - 13 which equals 6.5 mL.This is how the final volume of the object is calculated out to be 6.5 mL.

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What is the energy of a 4.25 x 10^8 Hz wave? *I'll reward Brainiest for the correct answer! I really need this, hah*

Answers

The energy of a 4.25 x 10⁸ Hz wave is 2.816 × 10-²⁵J.

How to calculate energy?

The energy of a wave can be calculated by multiplying the Planck's constant by the frequency of the wave as follows:

E = hf

Where;

E = energy (J)h = Planck's constant (6.626 × 10-³⁴ J/s)f = frequency (Hz)

According to this question, the frequency of a wave is given as: 4.25 x 10⁸ Hz. The energy can be calculated as follows:

E = 6.626 × 10-³⁴ × 4.25 x 10⁸ Hz

E = 2.816 × 10-²⁵J

Therefore, 2.816 × 10-²⁵J is the energy of the wave.

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Do bacterial cells have DNA?

Answers

Answer: Yes, most bacterial cells have double stranded dna

Explanation:

Answer:

yes

Explanation:

prokaryotic cells are unique bacteria that has DNA. it has a single cell called nucleoid in a cytoplasm that organise DNA differently

the soaps, shampoos, and detergents, in addition to baking soda and washing soda, were diluted prior to use in the laboratory. a. why was it necessary to dilute these substances prior to determining their ph?

Answers

It is necessary to dilute the given substances prior to determining the pH because the concentrated solutions prevent contact with the pH meter and give lower values.

A solution's acidity may be determined by looking at its pH, which is a measurement of hydrogen ion concentration. Pure water slightly separates into ions with roughly equal amounts of hydrogen and hydroxyl (OH) ions.

Detergents, soaps, and shampoos all include surfactants, and when they are concentrated, their activity prevents the surfactant from making adequate contact with the pH meter's electrode, resulting in readings that are a little lower than they should be. The pH is determined correctly when the surfactant activity is diluted in the solution.

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Watch the video of Norman. What type of energy transformation is happening?

Norman sliding his foot across the floor.



A Electrical energy is created by friction when his foot slides across the floor.

B The mechanical energy of his foot moving across the floor is transformed into chemical energy.

C When his foot is sliding across the floor, it creates heat energy through friction.

D When his foot rubs against the floor, the energy of motion changes into light energy.

Answers

Norman sliding his foot across the floor would create heat energy through friction (C)

When a person is sliding on the floor, the foot would rub against the floor. The process would result in friction between the feet and the floor.

In addition to that, the potential energy (resting energy) is getting converted to kinetic energy (energy resulting from motion). The difference between the energy of an object at resting state and motion would result in production of heat energy. This is caused mainly due to friction.

Thus, when Norman’s foot is sliding across the floor, it would create heat energy through friction.

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Our school garden needs some ammonium fertilizer
prepare a fertilizer of ammonium salt,try to use NPK

Answers

To prepare ammonium fertilizer we will react ammonia gas with nitric acid to form a solution and heat also get released during this.

What is ammonium fertilizer and how it is prepared?We have always studied about fertilizer , and its uses back in our earlier classes.Fertilizers are used to sprinkle onto the plants for its either resistant or better growth expectation.Ammonium fertilizer have a significant role in the fertilizer industry pf agriculture as it is prepared by the three main component of the chemical life that is NPK.NPK goes for nitrogen, phosphorus, and K stands for potassium.All three can be used in combine for to produce considerable amount of ammonium fertilizer.

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How much heat is required to heat 100 g of water is from 80.0°C to 85.4°C? The specific heat of water is 4.184 J/g°C.​

Answers

The amount of heat energy required to heat 100 g of water from 80.0°C to 85.4°C is 2259.36J.

How to calculate energy?

The amount of energy required to heat a substance can be calculated using the following formula:

Q = mc∆T

Where;

Q = quantity of heatm = mass of substanceC = specific heat capacity∆T = change in temperature

According to this question, 100 g of water is from 80.0°C to 85.4°C. The amount of heat energy can be calculated as follows:

Q = 100 × 4.184 × {85.4 - 80}

Q = 2259.36J

Therefore, 2259.36J is the amount of heat energy required to heat that amount of water.

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a 0.0718 mol sample of an unknown gas contained in a 2.00 l flask is found to have a density of 1.51 g/l. the molecular weight of the unknown gas is g/mol.

Answers

The molecular weight of the unknown gas is  42.06 g.

Find out the molecular weight of unknown gas.

The idea is that the density of the gas tells you the mass of this gas that occupies exactly 1 L under some unspecified pressure and temperature conditions.

In this case, you know that the density of the gas was 1.51g/L.

This means that 1.51 g/L of this gas occupies exactly 1 L under the pressure and temperature conditions used in the experiment.

You are also aware that the total volume of the flask is 2.00 L. At this point, you can use the density of the gas to calculate the mass of gas required to fill the given volume with the sample.

[tex]2.00 L . \frac{1.51g}{1L} =3.02g[/tex]

You must now determine the mass of exactly one mole in order to determine the molar mass of the gas. Since you are aware that this sample contains 0.0718 moles of gas and weighs 12.5 g, you can infer that one mole will weigh that much.

[tex]1 mol. gas .\frac{3.02g}{0.0718} =42.06g[/tex]

As a result, the gas's molar mass can be expressed as molar mass = 42.06 g/ mol.

This indicates that 42.06 g makes up 1 mole of this gas.

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Clarice is doing a science experiment. She has a beaker containing 10 grams of sugar. She adds 5 grams of a mystery substance. After mixing the two together, a solid is produced and the container becomes very hot. No gases are released.

1. How many grams of the new substance should Clarice expect there to be in the jar at the end of the experiment?

2. What law supports this answer?

3. Explain how the law supports your answer.

Answers

1. The amount, in grams, of the new substance that Clarice should expect is 15 grams.

2. The law that supports the answer is the law of conservation of mass.

3. The law opines that mass is conserved in every chemical reaction.

What is the law of conservation of mass?

The law of conservation of mass states that masses are conserved in chemical reactions. They can, however, change forms during the course of reactions.

In other words, if 10 grams of sugar reacts with 5 grams of another substance, the total amount of the final product should be the addition of the two masses. Unless parts of the reactants or products have been converted to something else that is not captured.

So, in the case of Clarice, the mass of the new substance that should be expected would be:

10 + 5 = 15 grams.

Since gases were not involved in the reaction and there is no mass loss in any other form. The mass of the final product should be 15 grams.

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two paragraph summary of why isn't the sun on fire?
please I need this one quick..​

Answers

The Sun does not "burn" as we think of logs in a fire or paper burning. The Sun glows because it is a very big ball of gas, and a process called nuclear fusion is taking place in its core.

Nuclear fusion occurs when one proton smashes into another proton so hard that they stick together and release some energy as well. This energy then heats the other materials (other protons and electrons and such) nearby.

This heating eventually grows out from the center (or core) of the star to the outside, finally leaving the surface and radiating out into space to be the heat and light we know stars emit.

People, including scientists, sometimes say that the Sun "burns hydrogen" to make it glow. But that is just a figure of speech. Hydrogen doesn't burn, it fuses, into helium. So no oxygen is required!

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what volume (ml) of 0.0755 m phosphoric acid can be neutralized with 130 ml of 0.245 m sodium hydroxide? what volume (ml) of 0.0755 m phosphoric acid can be neutralized with 130 ml of 0.245 m sodium hydroxide? 2340 141 1270 422 7.21

Answers

146 mL of 0.0755 m phosphoric acid can be neutralized with 130 ml of 0.245 m sodium hydroxide.

First of all, let's write a balanced equation.

The balanced equation is given below.

H₃PO₄ + 3 NaOH ⇒ Na₃PO₄ + 3 H₂O

Now calculate the moles of sodium hydroxide taking part in the reaction.

130 ml of 0.245 m sodium hydroxide react.

0.13 L x  0.245/L = 0.03185 moles

Now let's calculate the reacting moles of H₃PO₄.

The molar ratio of H₃PO₄ to NaOH is 1:3.

The reacting moles of H₃PO₄ are 1/3 x 0.03185 moles = 0.011 moles

Let's calculate the reacting volume of phosphoric acid

We have 0.011 moles of H₃PO₄ are in a 0.0755 M solution.

0.011 mol x 1L/0.0755 x 1,000 mL1/L = 145.6 mL (approx 146 mL)

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The rectangular object below has a mass of 198,000 grams.
A) What is the volume of the rectangular prism?
B) What is the density of the object? (Round your answer to the nearest hundredths place)
C) What rectangular prism made out of ?

Answers

A. 0.225

B. 4.6 kg/m3.

C. These six faces are made of three pairs of congruent faces.

For an object to be a right-angled prism all six faces must be rectangular opposite faces must be equal, and cross-sections along the length must be equal. You can draw a rectangle on the paper, but you can also make a rectangular prism out of real materials such as wood. A right-angle prism is a three-dimensional object with rectangular faces. A right-angled prism is a cube if all the faces of the prism are squares.

Prisms are named for the shape of their faces. A right-angle prism is therefore a simple prism that has rectangles as faces. A closed three-dimensional shape, but based on two rectangles. A prism is a three-dimensional shape bounded by flat faces on all sides. Prisms have two types of faces. The top and bottom are the same and are called the base. Prisms are named after the shape of these bases. For example, if the base of a prism is triangular it is called a triangular prism.

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