The Safe Drinking Water Act (SDWA) sets a limit for mercury-a toxin to the central nervous system-at 0.002 mg/L. Water suppliers must periodically test their water to ensure that mercury levels do not exceed 0.002 mg/L. Suppose water becomes contaminated with mercury at twice the legal limit (0.004 mg/L). Part A How much of this water would have to be consumed to ingest 0.150 g of mercury

Answer: The new pH of resulting solution is 6.03

Explanation:

We are adding hydrochloric acid to the solution, so it will react with salt (sodium hydrogen carbonate) only.

To calculate the number of moles for given molarity, we use the equation:

[tex]\text{Molarity of the solution}=\frac{\text{Moles of solute}\times 1000}{\text{Volume of solution (in mL)}}[/tex]

Molarity of hydrochloric acid = 0.15 M

Volume of solution = 3 mL

Putting values in above equation, we get:

[tex]0.15M=\frac{\text{Moles of hydrochloric acid}\times 1000}{3mL}\\\\\text{Moles of hydrochloric acid}=0.00045mol[/tex]

Molarity of sodium hydrogen carbonate = 0.025 M

Volume of solution = 150 mL

Putting values in above equation, we get:

[tex]0.025M=\frac{\text{Moles of sodium hydrogen carbonate}\times 1000}{150mL}\\\\\text{Moles of sodium hydrogen carbonate}=0.00375mol[/tex]

Molarity of carbonic acid = 0.045 M

Volume of solution = 150 mL

Putting values in above equation, we get:

[tex]0.045M=\frac{\text{Moles of carbonic acid}\times 1000}{150mL}\\\\\text{Moles of carbonic acid}=0.00675mol[/tex]

The chemical reaction for sodium hydrogen carbonate and hydrochloric acid follows the equation:

                  [tex]NaHCO_3+HCl\rightarrow NaCl+H_2CO_3[/tex]

Initial:        0.00375    0.00045                0.00675

Final:         0.00330          -                       0.00720          

Volume of solution = 150 + 3 = 153 mL = 0.153 L    (Conversion factor:  1 L = 1000 mL)

To calculate the pH of acidic buffer, we use the equation given by Henderson Hasselbalch:

[tex]pH=pK_a+\log(\frac{[salt]}{[acid]})[/tex]

[tex]pH=pK_a+\log(\frac{[NaHCO_3]}{[H_2CO_3]})[/tex]

We are given:

[tex]pK_a[/tex] = negative logarithm of acid dissociation constant of carbonic acid = 6.37

[tex][NaHCO_3]=\frac{0.0033}{0.153}[/tex]

[tex][H_2CO_3]=\frac{0.0072}{0.153}[/tex]

pH = ?

Putting values in above equation, we get:

[tex]pH=6.37+\log(\frac{0.0033/0.153}{0.0072/0.153})\\\\pH=6.03[/tex]

Hence, the new pH of the solution is 6.03

Answer:

1.7927 mL

Explanation:

The mass of solid taken = 4.75 g

This solid contains 21.6 wt% [tex]Ba(NO_3)_2[/tex], thus,

Mass of [tex]Ba(NO_3)_2[/tex] = [tex]\frac {21.6}{100}\times 4.75\ g[/tex] = 1.026 g

Molar mass of [tex]Ba(NO_3)_2[/tex] = 261.337 g/mol

The formula for the calculation of moles is shown below:

[tex]moles = \frac{Mass\ taken}{Molar\ mass}[/tex]

Thus,

[tex]Moles= \frac{1.026\ g}{261.337\ g/mol}[/tex]

[tex]Moles= 0.003926\ mol[/tex]

Considering the reaction as:

[tex]Ba(NO_3)_2+H_2SO_4\rightarrow BaSO_4+2HNO_3[/tex]

1 moles of [tex]Ba(NO_3)_2[/tex] react with 1 mole of [tex]H_2SO_4[/tex]

Thus,

0.003926 mole of [tex]Ba(NO_3)_2[/tex] react with 0.003926 mole of [tex]H_2SO_4[/tex]

Moles of [tex]H_2SO_4[/tex] = 0.003926 mole

Also, considering:

[tex]Molarity=\frac{Moles\ of\ solute}{Volume\ of\ the\ solution}[/tex]

Molarity = 2.19 M

So,

[tex]2.19=\frac{0.003926}{Volume\ of\ the\ solution(L)}[/tex]

Volume = 0.0017927 L

Also, 1 L = 1000 mL

So, volume = 1.7927 mL

Answer:

change in enthalpy for 1 lb water is - 970.10872 Btu

Explanation:

Given data:

weight of water 1 lb

pressure 1 atm

temperature 212 Fahrenheit

From steam table

initial enthalpy [tex]h_1 = 1150.288 Btu/lb[/tex]

final enthalpy[tex] h_2 = 180.18 Btu/lb[/tex]

change in enthalpy is given as

[tex]\Delta h = m (h_2 -h_1)[/tex]

[tex]\Delta h = 1\times (  180.18020 - 1150.288)[/tex]

[tex]\Delta h = - 970.10872 Btu[/tex]

change in enthalpy for 1 lb water is - 970.10872 Btu

Answer

Take account the molar mass of this compound (first of all u should know the formula, S2F10) so when u have the molar mass, you can get how many grams of it, are present in 2.15 moles. The right mass is 546,3 g.

Explanation:

Molar mass in the S2F10 should be, molar mass in S (32.06 x2) + molar mass of F (18.998 x 10) = 254,1 g/m

Answer:

The Prandtl number for this example is 14,553.

Explanation:

The Prandlt number is defined as:

[tex]Pr=\frac{C_{p}*\mu}{k}[/tex]

To compute the Prandlt number for this case, is best if we use the same units in every term of the formula.

[tex]\mu=1896 \frac{lbm}{ft*h}*\frac{1000 g}{2.205 lbm}*\frac{3.281 ft}{1 m}*\frac{1h}{3600s}  =7938 \frac{g}{m*s}[/tex]

Now that we have coherent units, we can calculate Pr

[tex]Pr=\frac{C_{p}*\mu}{k}=0.66*7938/0.36=14553[/tex]

Answer:

pka = -logKa

Explanation:

pKa is defined as negative logarithm of dissociation constant, Ka.

Or, pka = -logKa

pKa define strength of an acid.

Higher pKa indicates lower strength of the acid or low dissociation of the acid.

Whereas lower pKa indicates higher strength of the acid or high dissociation of the acid.

pKa is also related with pH of the solution.

Higher the pKa, higher is the pH of the solution. This can be understood as:

Higher pKa means lower dissociation dissociation or low concentration of H+. Low H+ means high pH.

Relation between pKa and pH is given by Henderson-Hasselbalch equation,

[tex]pH=p_{Ka} + \frac{[Salt]}{[Acid]}[/tex]

Answer: (E) 300 bq

Explanation:

Half life is the amount of time taken by a radioactive material to decay to half of its original value.

Radioactive decay process is a type of process in which a less stable nuclei decomposes to a stable nuclei by releasing some radiations or particles like alpha, beta particles or gamma-radiations. The radioactive decay follows first order kinetics.

Half life is represented by [tex]t_{\frac{1}{2}[/tex]

Half life of Thallium-208 = 3.053 min

Thus after 9 minutes , three half lives will be passed, after ist half life, the activity would be reduced to half of original i.e. [tex]\frac{2400}{2}=1200[/tex], after second  half life, the activity would be reduced to half of 1200 i.e. [tex]\frac{1200}{2}=600[/tex],  and after third half life, the activity would be reduced to half of 600 i.e. [tex]\frac{600}{2}=300[/tex],

Thus the activity 9 minutes later is 300 bq.

Answer:

0.221M

Explanation:

From the question ,

The Molarity of AgNO₂ = 0.310 M

Hence , the concentration of Ag⁺ = 0.301 M

The volume of  AgNO₂  = 250 mL

and,

The Molarity of Sodium chromate = 0.160 M

The volume of Sodium chromate =  100 mL.

As the solution is mixed the final volume becomes ,

250mL +100mL = 350mL

Now, using the formula , to find the final molarity of the mixture ,

M₁V₁ ( initial ) =  M₂V₂ ( final )

substituting the values , in the above equation ,  

0.310M  *  250ml  =  M₂ * 350ml

M₂ = 0.221M

Hence , the concentration of the silver in the final solution = 0.221M

Answer:

Effect of Temperature and Pressure  on Viscosity

Case I  Liquids

Viscosity of liquids decreases with the increase in temperature.

This is due to decrease in cohesive forces in case of liquids with the increase in temperature.

Viscosity of liquids increases with the increase in pressure.  

This is due to the increase in compression due to rise in pressure.

Case II Gases

Viscosity of gases increases with the increase in temperature.

This is due to the increase in the number of collisions with the increase in temperature.  

There is no considerable change in the viscosity of gases with the increase in pressure.

Answer:

Percent error = 20%

Explanation:

The percent error is calculated using the following equation:

Percent error = |(approximate value - exact value)| / (exact value) x 100%

In this problem, the approximate value was 184 mL and the exact value was 230.0 mL

Percent error = |(184 mL - 230.0 mL)| / (230.0 mL) x 100% = 20%

Final answer:

The percent error of the chemist's measurement is 20%, which reflects the difference between the measured value using a graduated cylinder and the actual value obtained using a calibrated device.

Explanation:

The percent error in measurement can be determined using the formula: percent error = (|actual value - measured value| / actual value) × 100%. In this case, the actual volume is 230.0 mL, while the measured volume is 184 mL.

To calculate the percent error: percent error = (|230.0 mL - 184 mL| / 230.0 mL) × 100% = (46 mL / 230.0 mL) × 100% = 20%.

So, the percent error of the chemist's measurement is 20%. This value indicates how far the initial measurement was from the actual value, reflecting the importance of using calibrated instruments for accurate measurement. The example of the quality control chemist shows the significance of both precision and accuracy in chemical measurements.

Answer: The mass of copper sulfate is 1165 grams.

Explanation:

We are given:

Number of gram-moles of copper sulfate = 7.300 g-mol

We know that:

1 g-mol = 1 mol

So, number of moles of copper sulfate = 7.300 mol

To calculate the number of moles, we use the equation:

[tex]\text{Number of moles}=\frac{\text{Given mass}}{\text{Molar mass}}[/tex]

Molar mass of copper sulfate = 159.6 g/mol

Moles of copper sulfate = 7.300 moles

Putting values in above equation, we get:

[tex]7.300mol=\frac{\text{Mass of copper sulfate}}{159.6g/mol}\\\\\text{Mass of copper sulfate}=1165g[/tex]

Hence, the mass of copper sulfate is 1165 grams.

Answer:

Option d. 4 tablets

Explanation:

Let's analyze what the pharmacist can offer: a 100 mL suspension with a concentration of 250 mg/5mL of the prescribed drug. We need to calculate the amount of drug that we have in 100 mL of suspension:

5 mL of suspension ----- 250 mg of drug

100 mL of suspension ---- x = 5000 mg of drug

Now, we take a look at what was really prescribed: a 100 mL suspension with a concentration of 300 mg/5mL of the prescribed drug. Again, we calculate the quantity of drug present in 100 mL of suspension:

5 mL of suspension ----- 300 mg of drug

100 mL of suspension ---- x = 6000 mg of drug

So, there's a difference of 1000 mg of drug per 100 mL of suspension, between what was prescribed by the doctor and what the pharmacist can offer. Therefore, considering that the tablets of the same drugs contain 250 mg of it, we would need to pulverize 4 tablets (4 × 250 mg) and add it to the 250mg/5mL of suspension to reach de prescribed concentration of cefuroxime axetil.

To achieve the desired strength of 300 mg in each 5 mL of cefuroxime axetil suspension, 4 tablets should be pulverized and added to the suspension.

To achieve the desired strength of 300 mg of drug in each 5 mL of cefuroxime axetil suspension, the pharmacist can use the 250 mg/5 mL suspension and the 250-mg scored tablets of the drug. Here is how to calculate how many tablets should be added:

Therefore, the pharmacist should pulverize and add 4 tablets to the suspension to achieve the desired strength.

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Answer:

b) Electrons with the same state must have opposite spins.

Explanation:

Pauli Exclusion Principle-

The principle states that in an atom or in a molecule, no two electrons present can have same set of the four quantum numbers.  

Even if the two electrons are present in same state which means that if it is present in the same orbital , n, l and m are same but still the forth quantum number which is spin quantum number is different for them. Both the two electrons have opposing spins having value either [tex]\frac {1}{2}[/tex] or [tex]\frac {-1}{2}[/tex].

Hence, option B is correct.

Answer:

Options A and B

Explanation:

The Pauli Exclusion Principle states that, in an atom or molecule, no two electrons can have the same four electronic quantum numbers. As an orbital can contain a maximum of only two electrons, the two electrons must have opposing spins.

Going through the options;

Option A - An electron shell can have more than two electrons. An orbital however can hold a maximum of two electrons.

Option B - This is correct because No two electrons in a atom can have the same four quantum numbers . This means that only two electrons are allowed in the same orbital, and then they have opposite spin, +1/2 and -1/2.

Option C  - Each electron orbital (state) can only contain a maximum of two lectrons.

Option D - This is wrong because no two electrons in a atom can have the same four quantum numbers . This means that only two electrons are allowed in the same orbital, and then they must have opposite spin, +1/2 and -1/2.

Answer:

a) Absorbance

b) The absorb light most strongly in 580nm

Explanation:

Beer-Lambert law relates concentration with light absorbance. The more concentrated solution are the more molecules and the most absorbance.

Wavelenght depends of composition of solution and doesn't change with different concentrations of the same solution.

Transmittance is inversely proportional to absorbance. Thus, the more concentrated solution the less transmittance.

Colored compounds are absorb energy of visible radiation. The colour that we see is a  result of the absortion of complimentary colour (Colour wheel). Thus, a blue-green solution absorb energy of ≈600 nm. Thus, the absorb light most strongly in 580nm.

I hope it helps!

Answer:

[tex]m_{HClO_3}=12.7gHClO_3[/tex]

Explanation:

Hello,

Considering the reaction:

[tex]3Cl_2(g)+3H_2O(l)-->5HCl+HClO_3[/tex]

The molar masses of chlorine and chloric acid are:

[tex]M_{Cl_2}=35.45*2=70.9g/mol\\M_{HClO_3}=1+35.45+16*3=84.45g/mol[/tex]

Now, we develop the stoichiometric relationship to find the mass of chloric acid, considering the molar ratio 3:1 between chlorine and chloric acid, as follows:

[tex]m_{HClO_3}=31.6gCl_2*\frac{1molCl_2}{70.9gCl_2} *\frac{1molHClO_3}{3mol Cl_2} *\frac{85.45g HClO_3}{1mol HClO_3} \\m_{HClO_3}=12.7gHClO_3[/tex]

Best regards.

Answer:

4.525% is the percentage by volume of oxygen in the gas mixture.

Explanation:

Total pressure of the mixture = p = 4.42 atm

Partial pressure of the oxygen = [tex]p_1=0.20 atm[/tex]

Partial pressure of the helium = [tex]p_2[/tex]

[tex]p_1=p\times \chi_1[/tex] (Dalton law of partial pressure)

[tex]0.20 atm=4.42 atm\times \chi_1[/tex]

[tex]\chi_1=\frac{0.20 atm}{4.42 atm}=0.04525[/tex]

[tex]\chi_2=1-\chi_1=1-0.04525=0.95475[/tex]

[tex]chi_1+chi_2=1[/tex]

[tex]n_1=0.04525 mol,n_2=0.95475 mol[/tex]

According Avogadro law:

[tex]Moles\propto Volume[/tex] (At temperature and pressure)

Volume occupied by oxygen gas  =[tex]V_1[/tex]

Total moles of gases = n = 1 mol

Total Volume of the gases = V

[tex]\frac{n_1}{V_1}=\frac{n}{V}[/tex]

[tex]\frac{V_1}{V}=\frac{n_1}{n}=\frac{0.04525 mol}{1 mol}[/tex]

Percent by volume of oxygen in the gas mixture:

[tex]\frac{V_1}{V}\times 100=\frac{0.04525 mol}{1 mol}\times 100=4.525\%[/tex]

The corrected endpoint volume is approximately 50.20 mL, and its absolute uncertainty is 0.11 mL.

We have,

To calculate the corrected endpoint volume and its absolute uncertainty, we need to subtract the volume of the blank from the total volume used to reach the endpoint.

Given data:

Initial volume delivered = 49.37 ± 0.06 mL

Additional volume delivered = 1.34 ± 0.05 mL

Volume of blank = 0.51 ± 0.04 mL

Total volume without blank = Initial volume + Additional volume

Total volume without blank = (49.37 ± 0.06) mL + (1.34 ± 0.05) mL

Corrected endpoint volume = Total volume without blank - Volume of blank

Calculate the corrected endpoint volume:

Total volume without blank = 49.37 mL + 1.34 mL = 50.71 mL

Corrected endpoint volume = 50.71 mL - 0.51 mL = 50.20 mL

Next, let's calculate the absolute uncertainty in the corrected endpoint volume. Since the absolute uncertainties are given in the problem, we'll simply add them:

Absolute uncertainty in corrected endpoint volume

= Absolute uncertainty in total volume without blank + Absolute uncertainty in the volume of blank

= 0.06 mL + 0.05 mL = 0.11 mL

Therefore,

The corrected endpoint volume is approximately 50.20 mL, and its absolute uncertainty is 0.11 mL.

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The corrected endpoint volume of the titration is 50.20 ± 0.09 mL, which is found by subtracting the blank's volume from the total volume used and calculating the combined uncertainty.

To calculate the endpoint volume corrected for the blank and its absolute uncertainty, we need to subtract the volume used for the blank from the total volume used in the titration and then calculate the combined uncertainty of these measurements. Here is how you can do it:

The total volume delivered in the titration is the sum of the initial volume and the additional volume, which equals 49.37 mL + 1.34 mL = 50.71 mL. To find the volume corrected for the blank, we subtract the volume for the blank, which gives us 50.71 mL - 0.51 mL = 50.20 mL.

The absolute uncertainty of the titration volume is found by combining the uncertainties of the individual measurements using the square root of the sum of the squares of the uncertainties (assuming they are independent):

[tex]\(\sqrt{0.06^2 + 0.05^2 + 0.04^2}[/tex] =[tex]\sqrt{0.0036 + 0.0025 + 0.0016}[/tex] = [tex]\sqrt{0.0077} \approx 0.088\ mL\)[/tex]

Therefore, the corrected endpoint volume of the titration is 50.20 ± 0.09 mL.

Answer: The number of moles of ammonium sulfate is 0.0036 moles and its logarithmic value is -2.44

Explanation:

To calculate the number of moles for given molarity, we use the equation:

[tex]\text{Molarity of the solution}=\frac{\text{Moles of solute}\times 1000}{\text{Volume of solution (in mL)}}[/tex]

Molarity of ammonium sulfate solution = 0.72 M

Volume of solution = 4.98 mL

Putting values in above equation, we get:

[tex]0.72M=\frac{\text{Moles of ammonium sulfate}\times 1000}{4.98mL}\\\\\text{Moles of ammonium sulfate}=0.0036mol[/tex]

Taking the log (base 10) of the calculated moles of ammonium sulfate we get:

[tex]\log_{10}(0.0036)=-2.44[/tex]

Hence, the number of moles of ammonium sulfate is 0.0036 moles and its logarithmic value is -2.44

Final answer:

First, calculate the moles of (NH4)2SO4 using the molarity and volume, then find the base 10 logarithm of the result. The moles of (NH4)2SO4 are approximately 0.003586, and the logarithm is roughly -2.45.

Explanation:

To compute the moles of solute in a given volume of solution, one can use the formula moles of solute = Molarity (mol/L) × Volume of solution (L). For a 0.72 M solution of (NH4)2SO4, when given a volume of 4.98 mL (which is 0.00498 L), we calculate:

moles of solute = 0.72 mol/L × 0.00498 L = 0.0035856 mol

Now, to find the base 10 logarithm, we perform the following calculation:

LOG(moles of solute) = LOG(0.0035856) ≈ -2.45

Answer:

All three statements are true

Explanation:

Solubility equilibrium of silver acetate:

[tex]AgCH_{3}COO\rightleftharpoons Ag^{+}+CH_{3}COO^{-}[/tex]

Hence all three statements are true

Explanation:

In 1 centimeter square there are 0.00107639 square feets.

[tex] 1 cm^2=0.00107639 ft^2[/tex]

In 1 hour there 3600 seconds.

1 seconds = 0.000277778 Hours

[tex]1cm^2/s=(x)\times ft^2/h[/tex]..(1)

[tex]1 cm^2/h=\frac{1\times 0.00107639 ft^2}{1\times 0.000277778 h}[/tex]

[tex]=3.975000899 ft^2/h\approx 3.875 ft^2/h[/tex]

On comparing with (1) we get:

[tex]1 cm^2/s=(3.875)\times ft^2/h[/tex]

3.875 is the conversion factor.

Answer : The value of rate constant is, [tex]0.3607s^{-1}[/tex]

Explanation :

The Arrhenius equation is written as:

[tex]K=A\times e^{\frac{-Ea}{RT}}[/tex]

Taking logarithm on both the sides, we get:

[tex]\ln k=-\frac{Ea}{RT}+\ln A[/tex]             ............(1)

where,

k = rate constant

Ea = activation energy  = 249 kJ/mol = 249000 kJ/mol

T = temperature  = 896 K

R = gas constant  = 8.314 J/K.mole

A = pre-exponential factor  or frequency factor = [tex]1.60\times 10^{14}s^{-1}[/tex]

Now we have to calculate the value of rate constant by putting the given values in equation 1, we get:

[tex]\ln k=-\frac{249000J/mol}{8.314J/K.mol\times 896K}+\ln (1.60\times 10^{14}s^{-1})[/tex]

[tex]\ln k=-1.0198[/tex]

[tex]k=0.3607s^{-1}[/tex]

Therefore, the value of rate constant is, [tex]0.3607s^{-1}[/tex]

Ethyl chloride vapor decomposes by the first-order reaction. Given the activation energy is 249 kJ/mol and the frequency factor is 1.60 × 10¹⁴ s⁻¹, the rate constant at 896 K is 0.4870 s⁻¹.

A first-order reaction is a chemical reaction in which the rate of reaction is directly proportional to the concentration of the reacting substance.

Let's consider the first-order reaction for the decomposition of ethyl chloride.

C₂H₅Cl → C₂H₄ + HCl

The activation energy is 249 kJ/mol and the frequency factor is 1.60 × 10¹⁴ s⁻¹. We can find the value of the rate constant at 896 K using the Arrhenius equation.

[tex]k = A \times e^{-Ea/R \times T} \\\\k = (1.60 \times 10^{14}s^{-1} ) \times e^{-(249 \times 10^{3} J/mol)/(8.314 J/mol.K) \times 896K} = 0.4870 s^{-1}[/tex]

where,

Ethyl chloride vapor decomposes by the first-order reaction. Given the activation energy is 249 kJ/mol and the frequency factor is 1.60 × 10¹⁴ s⁻¹, the rate constant at 896 K is 0.4870 s⁻¹.

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Answer:

46.004 g/mol

Explanation:

Scottish physicist Thomas Graham formulated a law known as Graham's law of effusion in 1848. He conducted an experiment and found the relationship between the rate of effusion of a gas and its molar mass as:

[tex]r=\sqrt {\frac {1}{M}}[/tex]

where,  

r is the rate of effusion of a gas

M is the molar mass of the gas.

Also, r = v/t

And for two gases taking different t₁ and t₂ to effuse, the formula is:

[tex]\frac {t_2}{t_1}=\sqrt {\frac {M_2}{M_1}}[/tex]

So,

For Neon :

[tex]t_1[/tex] = 8.61 minutes

[tex]M_1[/tex] = 20.1797 g/mol

For unkown gas:

[tex]t_2[/tex] = 13.0 minutes

[tex]M_2[/tex] = ? g/mol

[tex]\frac {13.0}{8.61}=\sqrt {\frac {M_2}{20.1797}}[/tex]

Molar mass of unknown gas = 46.004 g/mol

Answer:

Hands-free eyewash stations, sand bucket, fire blankets, fire extinguishers, fire alarm system and first aid kit.

Explanation:

Working in laboratories has many risks, therefore, preventive measures that should be incorporated to avoid the occurrence of any laboratory accidents.

Some of the important emergency equipment that should be available in laboratories are: hands-free eyewash stations, sand bucket, fire blankets, fire extinguishers, fire alarm system, chemical storage cabinet, first aid kits and fume hood.

Some of the personal protective equipment include lab coats, goggles, safety gloves and face shield.

Answer:

Sr(C₂H₃O₂)₂(s) + 2H₂O (l) ⇄ Sr(OH)₂(s) + 2C₂H₃OOH(aq)

Explanation:

Sr(C₂H₃O₂)₂ is a salt, formed by a metal cation (Sr⁺²) and an anion (C₂H₃O₂⁻). This ionic compound must ionize in water, making an equilibrium, which will react with the water equilibrium.

The equilibrium of the salt is:

Sr(C₂H₃O₂)₂(s) ⇄ Sr⁺²(aq) + C₂H₃O₂⁻(aq)

And the water equilibrium:

H₂O (l) ⇄ H⁺ (aq) + OH⁻(aq)

So, Sr⁺² must react with OH⁻ to form the hydroxide Sr(OH)₂, and C₂H₃O₂⁻ must react with H⁺ to form the acid C₂H₃OOH. Sr is a metal of group 2, so the base will be a little soluble in water, and the solid may precipitate. C₂H₃OOH is a weak acid, and soluble in water, so it will be in aqueous form. The reaction is:

Sr(C₂H₃O₂)₂(s) + 2H₂O (l) ⇄ Sr(OH)₂(s) + 2C₂H₃OOH(aq)

Final answer:

Strontium acetate (Sr(C2H3O2)2) dissociates in water to form Sr2+ and 2 C2H3O2- ions. The dissociation is represented by the equation Sr(C2H3O2)2 (s) → Sr2+ (aq) + 2 C2H3O2- (aq).

Explanation:

The behavior of Sr(C2H3O2)2 (s) in water can be described as a process where the solid salt dissociates into its constituent ions. When dissolved in water, strontium acetate separates into strontium ions and acetate ions according to the following equation:

Sr(C2H3O2)2 (s) → Sr2+ (aq) + 2 C2H3O2− (aq)

This representation is known as the dissociation equation for the ionic compound in water. The process demonstrates the compound breaking down from a solid to freely moving ions in an aqueous solution.

Answer:

Mass fraction: 73,6% n-hexane; 26,4% dichloromethane

Mole fraction: 73,0% n-hexane; 27,0% dichloromethane

Explanation:

With a basis of 100 mL:

Mass of n-hexane:

85 mL ×[tex]\frac{0,655g}{1mL}[/tex] = 55,7 g

Mass of dichloromethane

15 mL ×[tex]\frac{1,33g}{1mL}[/tex] = 20,0 g

Total mass = 20,0 g + 55,7 g = 75,7 g

Mass fraction of n-hexane:

[tex]\frac{55,7g}{75,7g}[/tex] =73,6%

Mass fraction of dichloromethane:

[tex]\frac{20,0g}{75,7g}[/tex] = 26,4%

Moles of n-hexane:

55,7 g ×[tex]\frac{1mol}{86,18 g}[/tex] = 0,65 moles

Mass of dichloromethane

20,0g ×[tex]\frac{1mol}{84,93 g}[/tex] = 0,24 moles

Total moles: 0,65 moles + 0,24 moles = 0,89 moles

Molar fraction of n-hexane:

[tex]\frac{0,65moles}{0,89moles}[/tex] =73,0%

Molar fraction of dichloromethane:

[tex]\frac{0,24moles}{0,89moles}[/tex] = 27,0%

I hope it helps!

Answer:

a) 44.442 grams of aluminium chloride is produced.

b) 8.996 grams of the excess reactant that id aluminum is left unreacted.

Explanation:

[tex]2Al(s) + 3Cl_2(g)\rightarrow 2AlCl_3(s)[/tex]

Moles of aluminum = [tex]\frac{13.49 g}{27 g/mol}=0.4996 mol[/tex]

Moles of chlorine gas = [tex]\frac{35.45}{35.5 g/mol}=0.4993 mol[/tex]

According to reaction, 1 mol aluminum reacts with 3 moles of chlorine gas.

Then 0.4996 moles of aluminum will react with:

[tex]\frac{3}{1}\times 0.4996 mol=1.4988 mol[/tex] of chlorine gas

Then 0.4993 moles of chlorine gas will react with:

[tex]\frac{1}{3}\times 0.4993 mol=0.1664 mol[/tex] of aluminum

As we can see that moles of an aluminium are in excess. Hence, aluminium is an excess reagent.

So moles of aluminum chloride will depend upon moles of chlorine gas.

According to reaction 3 moles of chlorine gas give 2 moles of aluminium chloride.

Then 0.4993 mole of chlorine gas will give:

[tex]\frac{2}{3}\times 0.4993 mol=0.3329 mol[/tex] of aluminium chloride .

Mass of 0.3329 moles of aluminium chloride :

=0.3329 mol × 133.5 g/mol= 44.442 g

44.442 grams of aluminium chloride is produced.

Moles of aluminium left unreacted = 0.4996 mol - 0.1664 mol = 0.3332 mol

Mass of 0.3332 moles of aluminum :

0.3332 mol × 27 g/mol = 8.996 g[/tex]

8.996 grams of the excess reactant that id aluminum is left unreacted.

Using stoichiometry, we calculate how much aluminum chloride is formed from given masses of aluminum and chlorine and determine the excess reactant remaining. This requires finding the limiting reactant, using the balanced chemical equation, and converting between moles and grams.

To answer the question about how much aluminum chloride is produced when 13.49 g of Al and 35.45 g of Cl2 react, we need to use stoichiometry, which is the method of quantitatively relating the products and reactants in a chemical reaction. Here is the step-by-step explanation:

To find the excess reactant remaining:

Answer:

(a) Density of the air = 1.204 kg/m3

(b) Pressure = 93772 Pa or 0.703 mmHg

(c) Force needed to open the door =  15106 N

Explanation:

(a) The density of the air at 22 deg C and 1 atm can be calculated using the Ideal Gas Law:

[tex]\rho_{air}=\frac{P}{R*T}[/tex]

First, we change the units of P to Pa and T to deg K:

[tex]P=1 atm * \frac{101,325Pa}{1atm}=101,325 Pa\\\\ T=22+273.15=293.15^{\circ}K[/tex]

Then we have

[tex]\rho_{air}=\frac{P}{R*T}=\frac{101325Pa}{287.05 J/(kg*K)*293.15K} =1.204 \frac{kg}{m3}[/tex]

(b) To calculate the change in pressure, we use again the Ideal Gas law, expressed in another way:

[tex]PV=nRT\\P/T=nR/V=constant\Rightarrow P_{1}/T_{1}=P_{2}/T_{2}\\\\P_{2}=P_{1}*\frac{T_{2}}{T_{1}}=101325Pa*\frac{7+273.15}{22+273.15}=101,325Pa*0.9254=93,772Pa\\\\P2=93,772 Pa*\frac{1mmHg}{133,322Pa}= 0.703 mmHg[/tex]

(c) To calculate the force needed to open we have to multiply the difference of pressure between the inside of the freezer and the outside and the surface of the door. We also take into account that Pa = N/m2.

[tex]F=S_{door}*\Delta P=2m^{2} *(101325Pa - 93772Pa)=2m^{2} *7553N/m2=15106N[/tex]

By converting the given natural logarithm equation to its equivalent exponential form, we find that e^0.863 equals x. Therefore, calculating this gives us x as approximately 2.37 when rounded to three significant figures.

The equation given is in the form of a natural logarithm (ln x), where 'ln' stands for the natural logarithm and 'x' is the variable we need to solve for. The natural logarithm of a number is the power to which the constant 'e' (approximately equal to 2.7182818) must be raised to equal the number. Therefore, to solve the equation, we need to convert the equation back to the exponential form using the property of logarithms that states a^b=c is equivalent to log_a c = b. As such, ln x = 0.863 becomes e^0.863 = x.

When you calculate e^0.863, you will get x to be approximately 2.37 when rounded to three significant figures (the zero after the decimal point is a significant figure because it's located to the right).

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Final answer:

To solve the equation 'ln x = 0.863', rewrite it as 'e0.863 = x' and calculate the value, which is approximately 2.37 to three significant figures.

Explanation:

To solve for x when given the equation ln x = 0.863, we need to use the property of logarithms that allows us to rewrite the equation in exponential form. The base of the natural logarithm (ln) is e, so we can rewrite the equation as e0.863 = x. Using a calculator, we find that e0.863 is approximately 2.37. Therefore, x ≈ 2.37 to three significant figures.

Answer:

66,3 g of MgSO₄· 7 H₂O

Explanation:

Some salts must be hydrated to increase solubility.

Magnesium sulfate heptahydrate has as molecular formula

MgSO₄· 7 H₂O

The molecular weight is the sum of atomic weights. Thus:

1 Mg × (24,305 g/mol) = 24,305 g/mol

1 S × (32,065 g/mol) = 32,065 g/mol

11 O × (15,999 g/mol) = 175,989 g/mol

14 H × (1,008 g/mol) = 14,112 g/mol

Molecular weight: 246,471 g/mol

269 mmol are 0,269 mol (m is mili: 1×10⁻³. It means 269×10⁻³ = 0,269)

0,269 mol of MgSO₄· 7 H₂O × (246,471 g / mol) = 66,3 g of MgSO₄· 7 H₂O

I hope it helps!

Answer:

5.8 g

Explanation:

Molecular weight in Daltons is equivalent to the molecular weight in grams per mole.

The amount of NaCl required is calculated as follows:

(2 mol/L)(50 mL)(1 L/1000 mL) = 0.1 mol

This amount is converted to grams using the molar mass (58 g/mol).

(0.1 mol)(58 g/mol) = 5.8 g

Final answer:

To prepare a 2M stock solution of NaCl, dissolve 5.8 grams of NaCl in 50ml of water, using the molar mass of NaCl which is 58 g/mol.

Explanation:

To make a 2M stock solution of NaCl, you would need to dissolve the number of grams equivalent to 2 moles of NaCl in 50ml of water. Since the molecular weight of NaCl is 58 Da (or 58 g/mol), we calculate the mass as follows:

Therefore, to prepare a 2M solution, you would dissolve 5.8 grams of NaCl in 50ml of water.