Which properties of metals are chemical properties ?

Answers

Answer 1

Answer:

Some major chemical properties include flammability, toxicity, heat of combustion, pH value, rate of radioactive decay, and chemical stability.

Explanation:

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Answer 2


chemical properties: toxic, corroded, highly flammable, explosive
physical properties: mass, density, evaporation, the shape, size or volume


Related Questions

How to round the number 314.77 to 2 significant figures

Answers

Answer:

发你如果热客人看看如果

Explanation:

Answer:

result = 310

significant figures =  2

Explanation:

How to round significant figures:

look the first non-zero digit if rounding to one significant figure, look the digit after the first non-zero digit if rounding to two significant figures. draw a vertical line after the place value digit that is required.look at the next digit.

result = 310

significant figures = 2

A student weighs out a 6.64 g sample of , transfers it to a 500. mL volumetric flask, adds enough water to dissolve it and then adds water to the 500. mL tick mark. What is the molarity of cobalt(II) fluoride in the resulting solution

Answers

Answer:

the molarity of cobalt(II) fluoride in the resulting solution is = 0.137  M

Explanation:

Given that :

a student dissolves 6.64 g of CoF₂  into 500 mL of water

volume of the solution(water) = 500 mL = 0.50 L

The standard  molar mass of CoF₂ is 96.93 g/mol

number of moles of CoF₂ = mass of CoF₂/molar mass of CoF₂

number of moles of CoF₂ = 6.64 g/96.93 g/mol

number of moles of CoF₂ = 0.0685 mol

The molarity of any given substance is known to be as the number of moles of solute dissolved in one litre of solution.

Thus ;

Molarity of  cobalt(II) fluoride CoF₂ in the resulting solution is = number of moles / Volume in (L)

Molarity of  cobalt(II) fluoride CoF₂  = 0.0685 mol/ 0.50 L

= 0.137  M

Thus ; the molarity of cobalt(II) fluoride in the resulting solution is = 0.137  M

what is the bond angle of co_{2}? enter your answer as a number with three digits only.

Answers

The bond angle of CO₂ (carbon dioxide) is approximately 180 degrees.

A complex molecule's or ion's bond angle is the angle between the two bonds, or the angle between two orbitals that contain bonding electron pairs surrounding the central atom. It is computed using a spectroscopic approach and expressed in degrees. It conveys information on how bonded electron pair distribution throughout the atoms. It aids in figuring out how the molecules' shapes should be.

Bond length,  balanced chemical equation bond angle, bond order, and bond energy (also known as bond enthalpy) are some of the bond parameters that can be used to describe covalent bonds. These bond parameters provide information on a chemical compound's stability and the potency of the chemical bonds that keep its atoms together.

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Hydrogen gas caught fire quickly in the Hindenberg accident. In comparison, neon gas and helium gas are nonreactive. This is why helium is safe for aircraft and neon is safe for electrical signs. Which statement best explains why helium and neon have similar chemical properties?

Answers

Answer:

Helium and Neon have similar chemical properties because both of them completely fill the outer shell of their atoms' electrons, so there is nothing to share with other atoms, neither with the same element nor with any other element.

Explanation:  

Helium and Neon are both  noble gases . As elements react, their atoms, by losing, acquiring, or sharing electrons, complete their outer shells. Noble gas atoms already have full outer shells, so there is no tendency for them to lose, gain, or share electrons. There are incomplete outer shells of atoms of group 1 and 7 elements (so they are reactive)

Chemical properties of HELIUM and NEON -:

In group 8(or 0) of the periodic table, on the far right side, the Noble Gases are contained. Helium, neon, argon, krypton, xenon and radon are their names. They are extremely colourless and unreactive. They do not form bonds, so they still remain as single (monatomic) atoms. There is very little chemical reactivity in them.

Hence, helium and neon have similar chemical properties as they are the most stable due to having the maximum number of valence electrons their outer shell can hold.

he levels of organization within an organism are __________, molecule, cell, __________, organ, and organ system.

Answers

Answer:

atom and tissue

Explanation:

atoms makes up molecules which makes up cell which makes up tissue which comes together to make up organs

Organelle, molecule, cells, tissues, organ, organ systems.
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How many moles of magnesium is 6.02 x 1022 atoms of magnesium?

Answers

Answer: 0.0500

Explanation:

What is the ph of a 3.97x10^-2 m aqueous solution of hx if its ka is equal to 3.0x10^-3?

Answers

The pH of a 3.97x10^-2 m aqueous solution of hx if its ka is equal to 3.0x10^-3 is 1.96.

What is pH?

pH is defined as the concentration of hydrogen ion in the solution.

Given,

Ka = 3.0x10^-3

As we know that,

Ka =( [H+] [X-])/[HX]

Let the concentration of [H+] = [X-] = x at any time t.

At the same time, concentration of [HX] = (0.0397-x)

Ka = x^2/(0.0397-x)

3.0x10^-3 = x^2/(0.0397-x)

x^2 = 0.1191 × 10^-3

x = 1.09×10^(-2)

x = 0.0109

The concentration of [H+] = 0.0109.

As we know that,

pH = -log[H+]

pH = -log(0.0109)

pH = -(-1.96)

pH = 1.96

Thus, we calculated that the value of pH of a 3.97x10^-2 m aqueous solution of hx if its ka is equal to 3.0x10^-3 is 1.96.

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A molecule
B compound
C atom
D element

A molecule B compoundC atomD element

Answers

Answer:

D. Element.

Explanation:

Atoms form elements. Elements form molecules. Molecules form compounds.

mass of 2 into 10 to power 21 number of atoms of an element is 0.4 gram what is the mass of 0.5 mole of the elements​

Answers

The mass of 0.5 mole of the element is approximately 6.025 grams.

To calculate the mass of 0.5 mole of the element, we need to know the molar mass of the element.

Given that the mass of 2 x 10^21 atoms of the element is 0.4 grams, we can use this information to find the molar mass.

The number of atoms in 1 mole of any substance is given by Avogadro's number, which is approximately 6.022 x 10^23 atoms/mol.

First, we calculate the molar mass of the element using the given information:

Molar mass = Mass of 2 x 10^21 atoms / Number of moles of 2 x 10^21 atoms

Molar mass = 0.4 g / (2 x 10^21 atoms / (6.022 x 10^23 atoms/mol))

Molar mass ≈ 0.4 g / (3.32 x 10^-2 mol)

Molar mass ≈ 12.05 g/mol

Now that we know the molar mass of the element is approximately 12.05 g/mol, we can calculate the mass of 0.5 mole of the element:

Mass = Molar mass x Number of moles

Mass = 12.05 g/mol x 0.5 mol

Mass = 6.025 grams

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Select six different types of energy. physical light chemical mechanical atomic electrical mental heat

Answers

Answer:

Mechanical energy is energy that results from movement or the location of an object. Mechanical energy is the sum of kinetic energy and potential energy.

Explanation:

Nuclear energy is energy resulting from changes in the atomic nuclei or from nuclear reactions.

Example: Nuclear fission, nuclear fusion, and nuclear decay are examples of nuclear energy. An atomic detonation or power from a nuclear plant are specific examples of this type of energy.

The diagram illustrates a sound wave and a light wave propagating through air.



What would be the BEST question to ask to explain the difference between them?

A
What are the parts of each wave?
B
What is the frequency of each wave?
C
What is the wavelength of each wave?
D
What are the properties of each wave?

Answers

Answer: C what is the wavelength of each wave?

Shafi lives 100 m away from Saif. What is Shafi’s average speed if he reaches Saif’s home in 50s?

Answers

Answer:

distance=100m

time=50s

speed=distance/time

speed=100m/50s

speed=2m/s

The table above shows the structural formulas and molar masses for three different compounds. Which of the following is a list of the compounds in order of increasing boiling points?

A. Butane < 1-propanol < acetone

B. Butane < acetone < 1-propanol

C. 1-propanol < acetone < butane

D. Acetone = butane < 1-propanol

The table above shows the structural formulas and molar masses for three different compounds. Which of

Answers

Butane < acetone < 1-propanol  is a list of the compounds in order of increasing boiling points.

Which substance has a greater boiling point?

The intermolecular interactions between molecules in a compound play a major role in boiling point. Higher boiling temperatures are a result of greater intermolecular interactions, bigger masses, and less branching.

The highest boiling point is for HF. As we go from HF to HI, the van der Waals forces of attraction between all hydrogen halides get stronger.

Boiling point rises as the difference in electronegativity grows. Additionally, the bp grows as the molecule's size does. So the sequence is CO2, CS2, CCl4, and then H2O.

Van der Waals attraction and dipole-dipole attraction draw acetone molecules together.

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Which one of the following is most likely to gain electrons when forming an ion? Al
K
Cu
Br
Cr

Answers

Answer:

Br

Explanation:

looking at all options:

Al = Al3+ + 3e-

K=K+ + e-

Cu = Cu2+ + 2e-

Br + 2e- = Br2-

Cr = Cr3+ + 3e-

answer is Br.

a student prepared a stock solution by dissolving 10.0 g of koh in enough water to make 150. ml of solution. she then took 15.0 ml of the stock solution and diluted it with enough water to make water to make 65.0 ml of a final solution. what is the concentration of koh for the final solution?a student prepared a stock solution by dissolving 10.0 g of koh in enough water to make 150. ml of solution. she then took 15.0 ml of the stock solution and diluted it with enough water to make water to make 65.0 ml of a final solution. what is the concentration of koh for the final solution?0.356 m2.81 m0.274 m3.65 m

Answers

The concentration of KOH in the final solution is approximately 0.0153 M.

The stock solution is prepared by dissolving 10.0 g of KOH in enough water to make 150 ml of solution. This gives us the concentration of the stock solution.

Concentration of stock solution = mass of solute / volume of solution

Concentration of stock solution = 10.0 g / 150 ml = 0.067 M

The student then takes 15.0 ml of the stock solution and dilutes it with enough water to make 65.0 ml of the final solution.

To calculate the concentration of the final solution, we can use the dilution equation:

C1V1 = C2V2

Where:

C1 = concentration of stock solution

V1 = volume of stock solution used

C2 = concentration of the final solution

V2 = volume of the final solution

Plugging in the values:

(0.067 M)(15.0 ml) = C2(65.0 ml)

Solving for C2 (concentration of the final solution):

C2 = (0.067 M)(15.0 ml) / 65.0 ml

C2 = 0.0153 M

Therefore, the concentration of KOH in the final solution is approximately 0.0153 M.

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The beta decay of cesium-137 has a half-life of 30.0 years. How many years must pass to reduce a 25.0 mg sample of cesium-137 to 9.38 mg?

Answers

Answer:

t = 42.4 years

Explanation:

To find the amount of time needed for the sample to decay, you need to use the half-life equation:

\(N(t) = N_0(\frac{1}{2})^{t/h}\)

In this equation,

-----> N(t) = final mass (mg)

-----> N₀ = initial mass (mg)

-----> t = time passed (yrs)

-----> h = half-life (yrs)

You can find how much time passed by plugging the given variables into the equation and solving for "t". The final answer should have 3 sig figs like the given values.

N(t) = 9.38 mg                       t = ? yrs

N₀ = 25.0 mg                        h = 30.0 yrs

\(N(t) = N_0(\frac{1}{2})^{t/h}\)                                <----- Half-life equation

\(9.38mg = 25.0mg(\frac{1}{2})^{t/30.0yrs}\)              <----- Insert variables

\(0.3752 = (\frac{1}{2})^{t/30.0yrs}\)                          <----- Divide both sides by 25.0 mg

\(ln(0.3752) = ln((\frac{1}{2})^{t/30.0yrs})\)              <----- Take the natural log of both sides

\(ln(0.3752) = \frac{t}{30.0yrs} ln(\frac{1}{2})\)                   <----- Rearrange the exponent

\(-9.803 = \frac{t}{30.0yrs} (-0.6931)\)                 <----- Solve the natural logs

\(1.1414= \frac{t}{30.0yrs}\)                                  <----- Divide both sides by -0.6931

\(42.4 yrs= t\)                                        <----- Multiply both sides by 30.0 yrs

ethyl acetate has a normal boiling point of 77°c, and a vapor pressure of 73 torr at 20.°c. what is the δhvap of ethyl acetate in kj/mol?

Answers

The ΔHvap of ethyl acetate in the given conditions is 35.08 kJ/mol.

Enthalpy of vaporization:

To find the ΔHvap (enthalpy of vaporization) of ethyl acetate in kJ/mol, you can use the Clausius-Clapeyron equation, which is:

ln(P1/P2) = (ΔHvap/R) * (1/T2 - 1/T1)

Given:
Normal boiling point (T2) = 77°C = 350.15 K (converting to Kelvin by adding 273.15)
Vapor pressure at 20°C (P1) = 73 Torr
Temperature at P1 (T1) = 20°C = 293.15 K (converting to Kelvin)
P2 = 760 Torr (normal atmospheric pressure at boiling point)
R = 8.314 J/(mol*K) (universal gas constant)

First, plug the values into the equation:

ln(73/760) = (ΔHvap/8.314) * (1/350.15 - 1/293.15)

Now, solve for ΔHvap:

ΔHvap = 8.314 * (ln(73/760) / (1/350.15 - 1/293.15))

ΔHvap ≈ 35079 J/mol (rounded to the nearest whole number)

Finally, convert ΔHvap to kJ/mol:

ΔHvap ≈ 35.08 kJ/mol (rounded to two decimal places)

So, the ΔHvap of ethyl acetate is approximately 35.08 kJ/mol.

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why was it more difficult to design an experiment that would prove the existence of neutrons than it was to design an experiment that would prove the existence of either protons or electrons?

Answers

It was difficult difficult to design an experiment that would prove the existence of neutrons than it was to design an experiment that would prove the existence of either protons or electrons because neutrons are smaller than either protons or electrons, so their presence is much more difficult to detect.

Generally neutrons, along with protons, are defined as subatomic particles which are found inside the nucleus of every atom. But the only exception is hydrogen, where the nucleus contains only a single proton. Neutrons basically have a neutral electric charge (neither negative nor positive) and have slightly more mass than positively charged protons.

Neutrons are neither positively charged nor negatively charged ion and usually are of very small size. Hence, neutrons are difficult to be determined in an experiment.

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Para el elemento de Z-56 b, que formula minima tiene el compuesto que forma con 17-cl¿ c, que tipo de union hay en dicho compuesto¿ d, cual es la estructura de lewis del compuesto formado¿

Answers

Answer:

ver explicacion

Explanation:

El elemento que tiene el número atómico 56 en la tabla periódica del bario. El bario es un elemento del grupo dos.

Se combina con el cloro para formar cloruro de bario. que tiene la fórmula BaCl2 de acuerdo con la valencia de ambos elementos.

El cloruro de bario es un compuesto iónico.

if you started with 2.34 grams of methane and 8.32 grams of oxeygyn and the combustion reaction went to completion how many grams of CO2 would be produced

Answers

Answer:

Mass of CO₂ produced  = 5.72 g

Explanation:

Given data:

Mass of methane = 2.34 g

Mass of oxygen = 8.32 g

Mass of CO₂ produced = ?

Solution:

Chemical equation:

CH₄ + 2O₂    →      CO₂ + 2H₂O

Number of moles of methane:

Number of moles = mass/molar mass

Number of moles =  2.34 g/ 16 g/mol

Number of moles = 0.146 mol

Number of moles of oxygen:

Number of moles = mass/molar mass

Number of moles =  8.32 g/ 32 g/mol

Number of moles = 0.26 mol

Now we will compare the moles of carbon dioxide with oxygen and methane.

                         CH₄             :              CO₂

                           1                 :              1

                        0.146            :           0.146

                         O₂                :               CO₂

                          2                 :                   1

                     0.26                :              1/2×0.26 = 0.13 mol

Less number of moles of CO₂ are produced by oxygen thus oxygen will react as limiting reactant.

Mass of CO₂:

Mass = number of moles × molar mass

Mass = 0.13 mol ×  44 g/mol

Mass = 5.72 g

Which of the following adaptations found in animals in deciduous forests protects against predators?
a.
fat storage
b.
migration
c.
hibernation
d.
camouflage


Please select the best answer from the choices provided

A
B
C
D

Should be D

Answers

Answer:

The answer is D. Camouflage

Answer:

THE ANSWER IS D) CAMOUFLAGE

1. Isotopes of are atoms of the same element that vary in
A. protons
B. neutrons
C. protons and neutrons
D. neutrons and mass

2. What do these 2 atoms have in common? B-10 and B-11?
A. both have same number of neutrons
B. both have 5 electrons
C. both have 6 protons
D. both have same mass

Explain how you got your answer

Answers

Answer:

1. D

2. B

Explanation:

1. Isotopes vary in neutrons. Due to this variance, the difference in neutrons change the mass of the element.

Note: the amount of protons in an element never changes. The number of protons (the atomic number on the periodic table) identifies the element in question. If you add or subtract protons, you change the element.

2. B-10 and B-11 are two isotopes of the element Boron: One with 10 neutrons, and another with 11 neutrons. Because they contain a variance of neutrons, they do not have the same mass. This cancels choices A and D.

The protons of an element are equal to the atomic number of that element. Borons atomic number is 5 (according to the periodic table), so it contains 5 protons. This cancels choice C as the element with 6 protons is Carbon.

Note: The amount of protons in an atom is balanced out by the same amount of electrons to allow for a neutral charge of the element (i.e., the protons, which contain a positive charge, and electrons, which contain a negative charge, cancel each other out. In the case of Boron: +5 protons - 5 electrons = 0 charge). This is why choice B is correct, as the consideration of an ion is not necessary for this question.

Example: PuC2Prunium corninePrunium cornide

Name these Ionic Compounds using the “Periodic Table of Food”:
2. BPo
3. Bl2Tu
4. Cr2Sn
5. LiSr2
6. Or3Ba2

Example: PuC2Prunium corninePrunium cornideName these Ionic Compounds using the Periodic Table of Food:2.

Answers

The name of the ionic compounds include:

2. BPo is Berry Polonium oxide

3. Bl₂Tu is Blueberry Tungsten dichloride

4. Cr₂Sn is Cranberry Tin oxide

5. LiSr₂ is Lime Strontium dichromate

6. Or₃Ba₂ is Orange Barium trioxide

What is Ionic Compounds?

Ionic compounds are chemical compounds formed by the electrostatic attraction between positively and negatively charged ions. They are composed of positively charged ions, called cations, and negatively charged ions, called anions. Ionic compounds are typically formed by the reaction of a metal with a nonmetal, or of a metal and a polyatomic ion.

In an ionic compound, the number of positive charges must equal the number of negative charges so that the compound has a neutral overall charge. Ionic compounds tend to have high melting and boiling points, as well as good electrical conductivity in their molten or dissolved states, but are typically brittle solids at room temperature.

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What are the hydronium and hydroxide ion concentrations in a solution whose ph is 6.52?

Answers

A solution with a pH of 6.52 has a hydronium ion concentration of 3.02x10-7 mol/L and a hydroxide ion concentration of 3.31x10-8 mol/L.

The hydronium ion concentration of a solution can be calculated from pH by using \(10^{-pH}\). For a pH of 6.52, hydronium ion concentration is 3.02x10-7 mol/L.

The concentration of hydroxide ions can be determined by identifying the value of pOH. The sum of pOH and pH is equal to 14, which is based on the negative logarithm of the ion-product constant of water. At a pH of 6.52, pOH is equal to 7.48.

The relationship between pOH and hydroxide ion concentration is the same as the relationship between pH and hydronium ion concentration. With this, the hydroxide ion concentration at pOH of 7.48 is \(10^{-7.48}\) or 3.31x10-8 mol/L.

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A mole of one element contains _______ number of atoms as a mole of another element.

Answers

A mole of one element contains Same number of atoms as a mole of another element.

The atomic mass of an element, that is found on the periodic table, may be used to determine the amount of moles in a system. Typically, this mass represents the average of the element's abundant forms found on earth. The mass of an element is given as the average of all of its earthly isotopes. The molar mass of a material is the weight of a mole of that substance. In chemistry, the molar mass is frequently used in converting grams of a chemical to moles. The periodic table lists an element's molar mass, which is its atomic weight in grams per mole (g/mol).

The average mass of an element's atoms expressed in atomic mass units is known as its atomic mass (amu, also known as daltons, D). The weight of the each isotope is combined by its abundance to get the atomic mass, which is a weighted average of all the isotopes of that element.

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How many moles are in 5.9g NaCl?

Answers

Answer :

n = 5.9/58.5 = 0.10085


Step by step explanation :

Given mass = 5.9g

Molar mass of Na (sodium) = 23g

Molar mass of Cl (chlorine) =35.5

Number of moles(n) = Given mass / Molar mass of NaCl

Molar mass NaCl = 23+35.5 =58.5

n = 5.9/58.5 = 0.10085

If a 5.0 L flask contains exactly one mole of hydrogen gas and one mole of chlorine gas, what can you conclude about this situation

Answers

We can infer that the conditions are suitable for a complete reaction between hydrogen and chlorine gases to form hydrogen chloride gas, and the gases are present in stoichiometric amounts for this reaction to occur.

In this situation, we have a 5.0 L flask that contains one mole of hydrogen gas (H₂) and one mole of chlorine gas (Cl₂). From this information, we can conclude that the gases are present in stoichiometric amounts according to the balanced chemical equation for the reaction between hydrogen and chlorine:

H₂ + Cl₂ → 2HCl

The equation tells us that one mole of hydrogen gas reacts with one mole of chlorine gas to produce two moles of hydrogen chloride (HCl) gas. Since we have equal moles of hydrogen and chlorine gases, they are present in the ideal ratio for a complete reaction to occur.

Additionally, the fact that the flask is a 5.0 L volume provides information about the conditions under which the reaction takes place. Assuming that the gases behave ideally, the volume is large enough to accommodate the gases without any significant deviations from ideal gas behavior.

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Explain whether hydrogen bonding is present between hydrogen

fluoride (HF) molecules

Answers

Hydrogen bonding occurs when hydrogen is bonded to an oxygen or nitrogen or fluorine atom. In this case, the hydrogen atom in a hydrogen fluoride molecule will be able to bond to the fluoride atom of another hydrogen fluoride molecule, forming a hydrogen bond.

Yes HF , Hydrogen Fluoride can form hydrogen bonds with each other due to below mentioned reasons .

What is Hydrogen Bonding ?

A hydrogen bond is an intermolecular force (IMF) that forms a special type of dipole-dipole attraction when a hydrogen atom bonded to a strongly electronegative atom exists in the vicinity of another electronegative atom with a lone pair of electrons.

Intermolecular forces (IMFs) occur between molecules.

Hydrogen bonds are are generally stronger than ordinary dipole-dipole and dispersion forces, but weaker than true covalent and ionic bonds.

Yes HF , Hydrogen Fluoride can form hydrogen bonds with each other because

The hydrogen atom develops a partial positive charge as a result of the difference in electronegativity between hydrogen and fluorinethe fluorine atom has 3 lone pairs of electrons

Hydrogen bonds are formed between the partial positive hydrogen atom and the lone pairs present on the fluorine atom of a neighboring hydrogen fluoride molecule.

Each partial positive hydrogen can form a hydrogen bond with one lone pair of electrons present on the fluorine atom of a neighboring hydrogen fluoride molecule.

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molecules move in random directions when heated in a heat engine, and because of the lack of uniformity in direction of molecular movement, true or false

Answers

The statement "molecules move in random directions when heated in a heat engine, and because of the lack of uniformity in the direction of molecular movement" is true.

When a heat engine is heated, molecules absorb heat energy and their kinetic energy increases. The kinetic energy of molecules causes them to move around. However, this movement is not uniform, and the molecules move in random directions.

A heat engine is a device that converts thermal energy into mechanical energy. Heat engines operate on the principle of thermodynamics.

They work by taking in thermal energy from a high-temperature reservoir, converting some of it into mechanical energy, and then releasing the remaining thermal energy to a low-temperature reservoir.The internal combustion engine in a car, the steam engine in an old locomotive, and the turbine in a power plant are all examples of heat engines. They all convert heat energy into mechanical energy to perform work.

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an aqueous solution of ca(oh)2 with a ph of 14.235 is prepared in a 500.00 ml volumetric flask by adding 91.138 ml of a ca(oh)2 stock solution. what is the concentration of the ca(oh)2 stock solution (units are m)?

Answers

The concentration of the Ca(OH)₂ stock solution is 0.00511 M.

The pH of an aqueous solution of Ca(OH)₂ can be calculated using the following equation,

pH = 14 - log([Ca(OH)₂])

where [Ca(OH)₂] is the concentration of Ca(OH)₂ in moles per liter (M).

Since the solution has a pH of 14.235, we can plug this value into the equation and solve for [Ca(OH)₂]:

14.235 = 14 - log([Ca(OH)₂])

log([Ca(OH)₂]) = 14 - 14.235 = -0.235

[Ca(OH)₂] = 10^(-0.235) = 0.00513 M

The Ca(OH)₂ stock solution was diluted to a final volume of 500.00 ml by adding 91.138 ml of the stock solution to a volumetric flask and filling up to the mark with water. Therefore, the number of moles of Ca(OH)₂ in the stock solution can be calculated as:

moles of Ca(OH)₂ = concentration × volume = [Ca(OH)₂] × (91.138/1000) = 0.000467 moles

The stock solution was diluted to a final volume of 500.00 ml, so the final concentration of the Ca(OH)₂ solution is:

final concentration = moles / volume = 0.000467 moles / 0.500 L = 0.000934 M

Therefore, the concentration of the Ca(OH)₂ stock solution is:

concentration = final concentration × (final volume / initial volume) = 0.000934 M × (500.00 ml / 91.138 ml) = 0.00511 M

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