Answer:
I'll do the first one for you. The reason why I'm not going to do the rest is because this is pretty simple stuff. I'll explain how I got the answer, please read it ^^ the rest of the problems should be a breeze.
1. 5.454285714285714 liters, or approx. 5.45 liters
Explanation:
P1V2 = P2V2
P1 refers to the original pressure. V1 refers to the original volume, or the amount of space the gas takes up.
P2 and V2 refer to the final pressure or volume, accordingly.
You insert the values into the equation, like so:
(8.3)(46) = (70)(x)
Now, multiply.
381.8 = 70x
Use inverse operations to find the value of x. Divide 381.8 by 70 to isolate x.
381.8/70 = x
5.454285714285714 = x
The volume of the gas when the pressure is increased to 70.0 mm Hg is approximately 5.45 liters. Don't forget about the units at the end, when you write your final answer.
Important! When pressure increases, volume decreases, and vice versa. Volume and pressure for gases are inversely proportional. So even though the pressure increased, that doesn't mean the volume increases, too.
You can check your answers easily!
Just multiply your final answer by its corresponding pressure or volume and compare it to the other. I hope that made sense. Like so:
5.454285714285714 x 70 = 381.8
8.3 x 46 = 381.8
That makes P1V2 DOES equal P2V2, and your answer is correct.
I hope this helped in time for you to submit it before the deadline! Good luck.
Tips!
For #2: I'm pretty sure the mentioning of the temperature (25.0 °C) doesn't matter. You can ignore it, it won't affect your calculations.
For #4: the standard pressure in mm Hg (millimeters of mercury) is 760 mm Hg. That's your P2.
Consider the balanced chemical equation. H2O2(aq)+3I−(aq)+2H+(aq)→I3−(aq)+2H2O(l) In the first 15.0 s of the reaction, the concentration of I− drops from 1.000 M to 0.773 M.
The rate of consumption of I- in the first 15.0 seconds of the reaction is 0.227 M/s.
The given balanced chemical equation is:
H2O2(aq) + 3I-(aq) + 2H+(aq) → I3-(aq) + 2H2O(l)
From the stoichiometry of the balanced equation, we can see that the ratio between I- and H2O2 is 3:1. This means that for every 1 mole of H2O2 reacted, 3 moles of I- are consumed.
In the given time interval of 15.0 seconds, the concentration of I- decreases from 1.000 M to 0.773 M. The change in concentration is:
Δ[I-] = [I-]final - [I-]initial = 0.773 M - 1.000 M = -0.227 M
To find the rate of consumption of I-, we divide the change in concentration by the time interval:
Rate = Δ[I-] / Δt = -0.227 M / 15.0 s = -0.0151 M/s
The negative sign indicates the decrease in concentration of I-. However, since rate values are usually reported as positive values, we take the absolute value:
Rate = 0.0151 M/s
Therefore, the rate of consumption of I- in the first 15.0 seconds of the reaction is 0.0151 M/s or approximately 0.227 M/s.
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Aluminium is a metal give reason
Answer:
Aluminium is ordinarily classified as a metal. It is lustrous, malleable and ductile, and has high electrical and thermal conductivity. Like most metals, it has a close-packed crystalline structure and forms a cation in an aqueous solution.
How many moles are in 12 liters of Cl2?
Answer:
[tex]\boxed {\boxed {\sf 0.54 \ mol \ Cl_2}}[/tex]
Explanation:
A mole is any quantity of a substance that contains 6.02 × 10²³ particles. At standard temperature and pressure, or STP, 1 mole of as is equal to 22.4 liters. This is true for any gas, regardless of the specific kind.
Although it is not specified, we can assume this gas is at STP. Let's set up a ratio using this information: 22.4 L/mol
[tex]\frac {22.4 \ L \ Cl_2}{1 \ mol \ Cl_2}[/tex]
Multiply by the given number of liters: 12
[tex]12 \ L \ Cl_2 *\frac {22.4 \ L \ Cl_2}{1 \ mol \ Cl_2}[/tex]
Flip the ratio so the liters of chlorine cancel.
[tex]12 \ L \ Cl_2 * \frac {1 \ mol \ Cl_2}{22.4 \ L \ Cl_2}[/tex]
[tex]12 * \frac {1 \ mol \ Cl_2}{22.4 }[/tex]
[tex]\frac {12}{22.4 } \ mol \ Cl_2[/tex]
[tex]0.53571428571 \ mol \ Cl_2[/tex]
The original measurement of liters has 2 significant figures, so our answer must have the same.
For the number we found, that is the hundredth place.
0.53571428571The 5 in the thousandth place tells us to round the 3 up to a 4.
[tex]0.54 \ mol \ Cl_2[/tex]
12 liters of chlorine gas at STP is approximately 0.54 moles of chlorine gas.
Microwave ovens heat food by exciting the quantum rotational frequencies of water and certain other molecules in the food sample. Most household microwave ovens emit radiation with a wavelength of 12.2 cm. a. What is the energy of a single photon of this radiation? b. Assuming all of the photon energy is converted into heat, how many photons of this radiation must be absorbed to warm 250. mL of water from 23.1 ºC to its boiling point?
Approximately 4.44 × [tex]10^{26[/tex] photons of this microwave radiation must be absorbed to warm 250 mL of water from 23.1 ºC to its boiling point .
a. To calculate the energy of a single photon of microwave radiation, we can use the equation E = hc/λ, where E is the energy of the photon, h is Planck's constant (6.626 × 10^-34 J·s), c is the speed of light (2.998 × 10^8 m/s), and λ is the wavelength of the radiation.
Converting the wavelength to meters, we have λ = 12.2 cm = 0.122 m.
Using the equation, E = (6.626 × 10^-34 J·s × 2.998 × 10^8 m/s) / 0.122 m = 1.632 × 10^-24 J.
Therefore, the energy of a single photon of this microwave radiation is 1.632 × 10^-24 J.
b. To calculate the number of photons required to warm 250 mL of water, we need to determine the heat energy required to raise the temperature from 23.1 ºC to its boiling point (100 ºC). The heat energy can be calculated using the formula Q = mcΔT, where Q is the heat energy, m is the mass of water, c is the specific heat capacity of water (4.184 J/g·ºC), and ΔT is the change in temperature.
First, we need to convert the mass of water to grams. Since 1 mL of water is approximately equal to 1 gram, 250 mL of water is equal to 250 grams.
Next, we calculate the heat energy:
Q = (250 g) × (4.184 J/g·ºC) × (100 ºC - 23.1 ºC) = 723,280 J.
To find the number of photons, we divide the total energy (723,280 J) by the energy of a single photon:
Number of photons = 723,280 J / (1.632 ×[tex]10^{-24[/tex] J) ≈ 4.44 × 10^26 photons.
Converting the wavelength to meters, we have λ = 12.2 cm = 0.122 m.
Using the equation, E = (6.626 × [tex]10^{-34[/tex] J·s × 2.998 × [tex]10^8[/tex] m/s) / 0.122 m = 1.632 × [tex]10^{-24[/tex] J.
Therefore, the energy of a single photon of this microwave radiation is 1.632 × [tex]10^{-24[/tex] J.
b. To calculate the number of photons required to warm 250 mL of water, we need to determine the heat energy required to raise the temperature from 23.1 ºC to its boiling point (100 ºC). The heat energy can be calculated using the formula Q = mcΔT, where Q is the heat energy, m is the mass of water, c is the specific heat capacity of water (4.184 J/g·ºC), and ΔT is the change in temperature.
First, we need to convert the mass of water to grams. Since 1 mL of water is approximately equal to 1 gram, 250 mL of water is equal to 250 grams.
Next, we calculate the heat energy:
Q = (250 g) × (4.184 J/g·ºC) × (100 ºC - 23.1 ºC) = 723,280 J.
To find the number of photons, we divide the total energy (723,280 J) by the energy of a single photon (1.632 × [tex]10^{-24[/tex] J):
Number of photons = 723,280 J / (1.632 × [tex]10^{-24[/tex] J) ≈ 4.44 × [tex]10^{26[/tex] photons.
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When considering the structure for 4POC, which of the following conclusions can be made about parallel ß sheets? A. Parallel B sheets are often found in the protein interior due to the arrangement of nonpolar amino acids on both sides of the sheet. B. Parallel ß sheets are often found in the protein interior due to the arrangement of nonpolar amino acids on one side of the sheet. C. Parallel ß sheets are often found on the protein exterior due to the arrangement of nonpolar amino acids on both sides of the sheet. D. Parallel B sheets are often found on the protein exterior due to the arrangement of nonpolar amino acids on one side of the sheet.
When considering the structure for 4POC, Parallel β sheets are often found in the protein interior due to the arrangement of nonpolar amino acids on both sides of the sheet. Thus, correct option is (A).
Option (A) is the proper conclusion. Because they are stabilized by interactions between nonpolar amino acids on both sides of the sheet, parallel sheets are frequently found inside proteins. These nonpolar residues can interact well with one another outside of an aqueous environment due to their hydrophobic nature. The protein structure is stabilized by this configuration.
Contrarily, parallel sheets with nonpolar amino acids on either one side of the sheet (option B) or on both sides of the sheet in the protein exterior (option C) are less frequent because doing so would expose hydrophobic residues unfavorably to the solvent and cause the protein to become instabilized.
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A sample of nitrogen gas occupies 1.83 L at 27 °C and 1.000 atm of pressure. What will
the volume be at -100 °C and the same pressure?
Answer:
1.06L = V₂
Explanation:
Charle's Law states that the volume of a gas is directly proportional to the absolute temperature when pressure remains constant.
The equation is:
V₁T₂ = V₂T₁
Where V is volume and T absolute temperature of 1, initial state and 2, final state of the gas.
V₁ = 1.83L
T₂ = -100°C + 273.15 = 173.15K
V₂ = ?
T₁ = 27°C + 273.15 = 300.15K
V₁T₂ = V₂T₁
1.83L*173.15K = V₂*300.15K
1.06L = V₂How many moles of H,O must be decomposed to form 200 moles of H,?
24,0 2H +0,
Answer:
300
Explanation:
at least 300 molecules
consider the following reaction: 2 c2h6(g) 7 o2(g) → 4 co2(g) 6 h2o(g) at stp, what is the total volume of co2 formed when 6.0 liters of c2h6 are combusted?
When 6.0 liters of [tex]C_2H_6[/tex] are combusted, the total volume of [tex]CO_2[/tex] formed at STP is approximately 12.02 liters.
To determine the total volume of [tex]CO_2[/tex] formed when 6.0 liters of [tex]C_2H_6[/tex] are combusted, we need to use the balanced chemical equation and stoichiometry.
From the balanced chemical equation:
2 [tex]C_2H_6[/tex](g) + 7 O2(g) → 4 [tex]CO_2[/tex](g) + 6 H2O(g)
We can see that the molar ratio between [tex]C_2H_6[/tex] and [tex]CO_2[/tex] is 2:4, which simplifies to 1:2. This means that for every 2 moles of [tex]C_2H_6[/tex] combusted, 4 moles of [tex]CO_2[/tex] are produced.
To solve this problem, we need to convert the given volume of [tex]C_2H_6[/tex] to moles and then use the stoichiometry to determine the volume of [tex]CO_2[/tex] produced.
Step 1: Convert volume of [tex]C_2H_6[/tex] to moles:
Using the ideal gas law, PV = nRT, at STP (Standard Temperature and Pressure), one mole of any ideal gas occupies 22.4 liters. Therefore, 6.0 liters of [tex]C_2H_6[/tex] is equal to 6.0/22.4 = 0.268 moles of [tex]C_2H_6[/tex].
Step 2: Apply stoichiometry to find moles of [tex]CO_2[/tex]:
Since the molar ratio between [tex]C_2H_6[/tex] and [tex]CO_2[/tex] is 1:2, we multiply the moles of C2H6 by the stoichiometric coefficient ratio:
0.268 moles of [tex]C_2H_6[/tex] * (4 moles [tex]CO_2[/tex] / 2 moles [tex]C_2H_6[/tex]) = 0.536 moles of CO2.
Step 3: Convert moles of [tex]CO_2[/tex] to volume:
At STP, 1 mole of any ideal gas occupies 22.4 liters. Therefore, 0.536 moles of [tex]CO_2[/tex] is equal to 0.536 * 22.4 = 12.02 liters of [tex]CO_2[/tex].
Thus, when 6.0 liters of [tex]C_2H_6[/tex] are combusted, the total volume of [tex]CO_2[/tex] formed at STP is approximately 12.02 liters.
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Which of these reagents would not react with stearic acid? H2, Ni SOCl2 CH3MgI NH3/H2O LAH
The reagent that would not react with stearic acid is Lithium Aluminium Hydride (LAH).
Stearic acid is a saturated fatty acid consisting of eighteen carbon atoms. In organic chemistry, stearic acid is a common reagent that reacts with other reagents to create a range of useful compounds. In this question, we will discuss which of the following reagents would not react with stearic acid.The four reagents given are: H2, Ni; SOCl2; CH3MgI; NH3/H2O; and LAH.LAH (Lithium Aluminium Hydride) is the reagent that would not react with stearic acid. Lithium Aluminium Hydride (LAH) is a strong reducing agent that reduces carboxylic acids into alcohols. However, stearic acid, being a saturated fatty acid, does not contain any double bonds that can be reduced by the strong reducing agent LAH. Therefore, it does not react with stearic acid.The other reagents mentioned such as H2, Ni, SOCl2, CH3MgI, NH3/H2O all react with stearic acid, and would give different products depending on the reaction conditions and reagents used. Hence, the reagent that would not react with stearic acid is Lithium Aluminium Hydride (LAH).
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8. Extinction of a species could result from
*
1
evolution of a type of behavior that produces greater reproductive success
synthesis of a hormone that controls cellular communication
limited genetic variability in the species
fewer unfavorable mutations in the species
Answer:
Limited Genetic Variability
Explanation:
its 3
acetylene burns in oxygen to give co2 and h2o according to the equation below. 2 c2h2(g) 5 o2 (g) 4 co2(g) 2 h2o(g) what volume of oxygen will react completely with 21 l c2h2 ?
52.5 L of oxygen will react completely with 21 L of acetylene.
Acetylene (C₂H₂) burns in oxygen (O₂) to produce carbon dioxide (CO₂) and water (H₂O) according to the balanced equation:
2 C₂H₂(g) + 5 O₂(g) → 4 CO₂(g) + 2 H₂O(g)
To solve this, we need to use the stoichiometry of the balanced equation. The ratio between acetylene and oxygen is 2:5. In other words, for every 2 moles of acetylene, we require 5 moles of oxygen.
Here, the volume of acetylene (C₂H₂) is 21 L, we can convert it to moles using the ideal gas law equation: PV = nRT. At standard temperature and pressure (STP), the molar volume of a gas is 22.4 L/mol.
21 L of C₂H₂ * (1 mol C₂H₂ / 22.4 L C₂H₂) = 0.9375 mol C₂H₂
Using the stoichiometry, we can set up a proportion to get the number of moles of oxygen:
(0.9375 mol C₂H₂) / (2 mol C₂H₂) = (x mol O₂) / (5 mol O₂)
Solving for x, the number of moles of oxygen:
x = (0.9375 mol C₂H₂ * 5 mol O₂) / (2 mol C₂H₂)
x = 2.34375 mol O₂
Finally, we can convert the number of moles of oxygen to volume using the molar volume at STP:
2.34375 mol O₂ * (22.4 L O₂ / 1 mol O₂) = 52.5 L of O₂
Therefore, 52.5 L of oxygen will react completely with 21 L of acetylene.
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Consider this endothermic reaction at equilibrium: I2
(g) 2 I (g)
Predict the effect of these changes:
a) Increasing the temperature
b) Decreasing the temperature
Increasing the temperature will cause the equilibrium to shift towards the products, favoring the formation of more iodine atoms (I(g)). Decreasing the temperature will cause the equilibrium to shift towards the reactants, favoring the reformation of iodine molecules (I2(g)).
a) Increasing the temperature:
The equilibrium will shift towards the products.
In an endothermic reaction, increasing the temperature can be considered as adding energy to the system.
According to Le Chatelier's principle, when the temperature is increased, the equilibrium will shift in the direction that absorbs or consumes heat to counteract the temperature rise.
In this case, since the reaction is endothermic (absorbs heat), the forward reaction is favored.
The balanced equation for the reaction is:
I2(g) ⇌ 2I(g)
When the temperature is increased, the system will try to counteract the temperature rise by favoring the reaction that absorbs heat. In this case, the forward reaction is the one that absorbs heat (endothermic). Therefore, the equilibrium will shift towards the products (2I(g)) to consume the excess heat.
Increasing the temperature will cause the equilibrium to shift towards the products, favoring the formation of more iodine atoms (I(g)).
b) Decreasing the temperature:
The equilibrium will shift towards the reactants.
In an endothermic reaction, decreasing the temperature can be considered as removing energy from the system.
According to Le Chatelier's principle, when the temperature is decreased, the equilibrium will shift in the direction that releases heat to counteract the temperature drop.
In this case, since the reaction is endothermic (absorbs heat), the reverse reaction is favored.
The balanced equation for the reaction is:
I2(g) ⇌ 2I(g)
When the temperature is decreased, the system will try to counteract the temperature drop by favoring the reaction that releases heat.
In this case, the reverse reaction is the one that releases heat (exothermic). Therefore, the equilibrium will shift towards the reactants (I2(g)) to generate more heat.
Decreasing the temperature will cause the equilibrium to shift towards the reactants, favoring the reformation of iodine molecules (I2(g)).
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Which of the following general reactions appropriately models a combination reaction?
A. A+B⟶+B
B. C⟶A+B
C. A+B⟶C
D. A+B⟶C+D
The appropriate model for a combination reaction is A+B⟶C (option C)
What is combination reaction?A combination reaction represents a chemical transformation where multiple substances unite to generate a fresh entity. It follows a general format of A + B → C, with A and B acting as the reactants that undergo a fusion to yield the product C.
Combination reactions commonly exhibit exothermic characteristics, denoting the release of heat. This phenomenon arises due to the increased stability of the resultant products compared to the initial reactants.
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A gas expands in volume from 29.3 mL to 80.1 mL at constant temperature.
(a) Calculate the work done (in joules) if the gas expands against a vacuum: Enter your answer in scientific notation.
(b) Calculate the work done (in joules) against a constant pressure of 3.5 atm: Enter your answer in scientific notation.
(c) Calculate the work done (in joules) against a constant pressure of 10.1 atm: Enter your answer in scientific notation.
A gas expands in volume from 29.3 mL to 80.1 mL at constant temperature.
(a) The work done (in joules) if the gas expands against a vacuum is 0.
(b) The work done (in joules) against a constant pressure of 3.5 atm is -12.7 J.
(c) The work done (in joules) against a constant pressure of 10.1 atm is -36.6 J.
To calculate the work done during the expansion of a gas, we can use the formula:
Work (W) = -PΔV
Where P is the pressure and ΔV is the change in volume.
(a) If the gas expands against a vacuum, it means there is no external pressure opposing the expansion. In this case, the work done is zero because there is no pressure acting against the gas.
W = 0 (no work done against a vacuum)
(b) If the gas expands against a constant pressure of 3.5 atm, we need to convert the pressure to SI units (Pascals) before calculating the work.
Given:
Initial volume (V1) = 29.3 mL = 29.3 × 10⁻⁶L
Final volume (V2) = 80.1 mL = 80.1 × 10⁻⁶ L
Pressure (P) = 3.5 atm = 3.5 × 101325 Pa
ΔV = V2 - V1 = (80.1 × 10⁻⁶ L) - (29.3 × 10⁻⁶ L)
W = -PΔV = -(3.5 × 101325 Pa) × [(80.1 - 29.3) × 10⁻⁶) L]
W ≈ -12.7 J.
Therefore, the work done against a constant pressure of 3.5 atm is approximately -12.7 J.
(c) Similarly, for a constant pressure of 10.1 atm:
Pressure (P) = 10.1 atm = 10.1 × 101325 Pa
ΔV = V2 - V1 = (80.1 × 10⁻⁶ L) - (29.3 × 10⁻⁶) L)
W = -PΔV = -(10.1 × 101325 Pa) × [(80.1 - 29.3) × 10⁻⁶L]
W ≈ -36.6 J.
Therefore, the work done against a constant pressure of 10.1 atm is approximately -36.6 J.
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What should you use to compare one substance with another substance in a reaction?
Answer:
metal or other acids
Explanation: hope u get it right
Arrange the following compounds in increasing order of their reactivity in nucleophilic addition reactions. Ethanal, Propanal, Propanone, Butanone
The increasing order of reactivity of the given compounds in nucleophilic addition reactions is: Butanone < Propanone < Propanal < Ethanal
The reactivity of a carbonyl compound in nucleophilic addition reactions depends on the electron density at the carbonyl carbon. The more electron density at the carbonyl carbon, the less reactive it is towards nucleophilic attack.
In the given compounds, the electron density at the carbonyl carbon decreases with increasing number of alkyl groups. This is because alkyl groups are electron-releasing groups and they donate electrons to the carbonyl carbon.
The more alkyl groups there are, the more electrons are donated to the carbonyl carbon, and the less reactive it is towards nucleophilic attack.
Therefore, butanone, which has the fewest alkyl groups, is the most reactive towards nucleophilic attack. Propanone, which has one alkyl group, is less reactive than butanone.
Propanal, which has two alkyl groups, is less reactive than propanone. And ethanal, which has three alkyl groups, is the least reactive towards nucleophilic attack.
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A sample of helium gas with a volume of 27.0 mL at 759 mm Hg is compressed at a constant temperature until its volume is 11.4 mL. What will be the new pressure in the sample?
Answer:
1797.6 mmHgExplanation:
The new pressure can be found by using the formula for Boyle's law which is
[tex]P_1V_1 = P_2V_2[/tex]
where
P1 is the initial pressure
P2 is the final pressure
V1 is the initial volume
V2 is the final volume
Since we're finding the new pressure
[tex]P_2 = \frac{P_1V_1}{V_2} \\[/tex]
We have
[tex]P_2 = \frac{27 \times 759}{11.4} = \frac{20493}{11.4} \\ = 1797.631....[/tex]
We have the final answer as
1797.6 mmHgHope this helps you
In the quantum mechanical description of a hydrogen atom, the electron is in a state that has orbital angular momentum squareroot 2h. What is the maximum possible ionization energy of this state of the atom? (a) 0.378 eV (b) 0.544 eV (c) 0.850 eV (d) 1.51 eV (e) 3.40 eV (f) none of the above answers
The ionization energy of an atom is the amount of energy required to completely remove an electron from its ground state. In the case of a hydrogen atom in a state with quantum number n, the ionization energy is given by the following equation: Ionization energy = -13.6 eV / n^2
For a hydrogen atom in a state with quantum number n=3, the ionization energy can be calculated as follows:
Ionization energy = -13.6 eV / 3^2 = -13.6 eV / 9 = -1.51 eV
The negative sign indicates that energy is required to remove the electron. Therefore, the largest possible ionization energy of the atom in this state is 1.51 eV.
In the quantum mechanical description, the ionization energy of a hydrogen atom is given by the formula:
Ionization Energy (IE) = -13.6 eV * (1/n²)
where n is the principal quantum number. In this case, n = 3.
IE = -13.6 eV * (1/3²) = -13.6 eV * (1/9) = -1.51 eV
Since the ionization energy is negative, the largest possible ionization energy is the least negative value. Therefore, the answer is (b) 1.51 eV.
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Describe and explain the possible effect on your results of the following experimental errors or variations. In each case, specify the component(s) whose percentage(s) would be too high or too low. (a) After adding DCM to Panacetin, you didn't stir or shake the mixture long enough. (b) During the NaOH extraction, you failed to mix the aqueous and organic layers thoroughly. (c) You mistakenly extracted the DCM solution with 5% HCL rather than 5% NaOH. (d) Instead of using pH paper, you neutralized the NaHCO3 solution to pH 7 using litmus paper.
Experimental errors or variations can significantly impact the results of the experiment. In this case, inadequate stirring, incomplete mixing of layers, incorrect extraction solution, and improper pH measurement can lead to inaccurate component percentages in the final product.
(a) Inadequate stirring or shaking of the mixture after adding DCM to Pan acetin can result in incomplete dissolution or extraction of certain components. This would lead to lower percentages of the components that require proper mixing for their extraction.
(b) Failure to thoroughly mix the aqueous and organic layers during the NaOH extraction can cause incomplete transfer of target components from one layer to another. As a result, the percentages of the desired components may be lower than expected, indicating incomplete extraction.
(c) Mistakenly using 5% HCL instead of 5% NaOH for the DCM extraction can affect the selectivity of the extraction process. Different solvents have varying affinities for specific components, so using the wrong extraction solution can lead to incorrect percentages of the components in the final product.
(d) Instead of using pH paper, if litmus paper is used to neutralize the [tex]NaHCO_{3}[/tex] solution to pH 7, the accuracy of pH measurement may be compromised. Litmus paper provides a visual color change indication but lacks the precision of pH paper. As a result, the pH adjustment may not be accurate, potentially leading to deviations in the final component percentages.
In summary, these experimental errors or variations can introduce inaccuracies in the component percentages of the final product due to inadequate mixing, incorrect extraction solution, and imprecise pH measurement. It is essential to carefully follow the experimental procedure to minimize such errors and ensure reliable results.
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2. An ideal machine would be a machine that did not have to work against the force of Type your ansiler here
Answer:
100% efficiency, this could only happen if there was not any friction Simple Machines Inclined plane, wedge, screw, lever, pulley and wheel and axel they are the most basic devices for making work easier
Explanation:
the structure for the product from the reaction of 1,3-cyclohexadiene and maleic acid (cis-2-butenedioic acid).
The reaction of 1,3-cyclohexadiene and maleic acid (cis-2-butenedioic acid) leads to the formation of a cycloadduct known as a Diels-Alder adduct. The structure of the product is a cyclohexene ring fused with a carboxylic acid group.
The Diels-Alder reaction is a powerful organic transformation that involves the reaction of a conjugated diene (such as 1,3-cyclohexadiene) with a dienophile (such as maleic acid). In this reaction, the diene acts as a nucleophile and attacks the electron-deficient dienophile, resulting in the formation of a cyclic product.
When 1,3-cyclohexadiene reacts with maleic acid, the diene's double bonds undergo cycloaddition with the double bonds of maleic acid, forming a new six-membered ring. The resulting product is a cyclohexene ring fused with a carboxylic acid group. The stereochemistry of the product depends on the orientation of the dienophile. In the case of cis-2-butenedioic acid (maleic acid), the product would have a cis configuration.
The exact structure of the product would require more specific information about the reaction conditions and any other substituents present. However, based on the reactants provided, the reaction of 1,3-cyclohexadiene and maleic acid would yield a Diels-Alder adduct, consisting of a fused cyclohexene ring and a carboxylic acid group in a cis configuration.
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true/false. the viscosity of a polymer is measured hourly. measurements for the last 20 hours are given in the viscosity data frame.
False. Viscosity of a polymer is not typically measured hourly; measurements depend on specific requirements.
False. The viscosity of a polymer is not typically measured on an hourly basis. Viscosity refers to the resistance of a fluid to flow, and it is generally measured under specific conditions, such as at a particular temperature or shear rate.
The viscosity of a polymer can be influenced by various factors, including molecular weight, temperature, and shear stress.
It is more common to measure the viscosity of a polymer at specific time intervals relevant to the experiment or process being studied. The frequency of measurements depends on the specific objectives and requirements of the study.
These measurements are often recorded at regular intervals, such as daily, weekly, or at specific milestones during a polymerization process.
Therefore, the statement that the viscosity of a polymer is measured hourly is false.
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calculate the molecular mass of N2O3
the answer is 76.01g/mol
and the density:1.4g/cm³
how did the idea of what a cell was develop overtime
Answer:
experiments
Explanation:
I am not sure but heres my take
Answer:
It was only after the invention of electron microscope that the idea developed
A municipality treats 15x10^6 gal/day of groundwater containing the following: CO2=17.6mg/L, Ca^2+ = 80mg/L, Mg^2+ = 48.8mg/L, Na^+ = 23mg/L, Alk(HCO3^-) = 270mg/L as CaCO3, SO4^2- = 125mg/L, and Cl^- = 35mg/L. The water is to be softened by excess lime treatment. Assume that the soda ash is 90% sodium carbonate, and the lime is 85% weight CaO. Detemine the lime and soda ash dosages necessary for precipitation softening (kg/day)
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The lime and soda ash dosages necessary for precipitation softening are 373/1000 kg/m^3 and 374/1000 kg/m^3 respectively.
Given information:
Municipality treats 15 x 10^6 gal/day of groundwater containing the following:
CO2 = 17.6mg/L,
Ca^2+ = 80 mg/L,
Mg^2+ = 48.8 mg/L,
Na^+ = 23 mg/L,
Alk(HCO3^-) = 270 mg/L
as CaCO3,
SO4^2- = 125 mg/L,
and Cl^- = 35 mg/L.
The soda ash is 90% sodium carbonate, and the lime is 85% weight CaO.
Softening by excess lime treatment needs to be determined.
Concept used:
Soda ash dosage = 1.4 (Alkalinity as CaCO3 mg/L) - 1.2 (CO2 as CaCO3 mg/L)
Lime dosage = 2.2 (Alkalinity as CaCO3 mg/L) - 1.2 (Calcium hardness as CaCO3 mg/L) - 1.7 (Magnesium hardness as CaCO3 mg/L) + 0.7 (Iron and manganese hardness as CaCO3 mg/L)
Soda ash dosage = 1.4 (Alkalinity as CaCO3 mg/L) - 1.2 (CO2 as CaCO3 mg/L)CO2 as CaCO3 mg/L
= 17.6 × (50/44) = 20 mg/L
Alkalinity as CaCO3 mg/L = 270 mg/L
Soda ash dosage
= 1.4 × 270 - 1.2 × 20
= 374 mg/L (or) 374/1000 kg/m^3
Lime dosage = 2.2 (Alkalinity as CaCO3 mg/L) - 1.2 (Calcium hardness as CaCO3 mg/L) - 1.7 (Magnesium hardness as CaCO3 mg/L) + 0.7 (Iron and manganese hardness as CaCO3 mg/L)
Calcium hardness as CaCO3 mg/L = 80 mg/L
Magnesium hardness as CaCO3 mg/L
= 48.8 × 2.5
= 122 mg/L (or) 0.122 kg/m^3
Iron and manganese hardness as CaCO3 mg/L = 0 mg/L
Lime dosage
= 2.2 × 270 - 1.2 × 80 - 1.7 × 0.122 + 0.7 × 0
= 373 mg/L (or) 373/1000 kg/m^3
Soda ash dosage required for precipitation softening = 374/1000 kg/m^3
Lime dosage required for precipitation softening = 373/1000 kg/m^3
Therefore, the lime and soda ash dosages necessary for precipitation softening are 373/1000 kg/m^3 and 374/1000 kg/m^3 respectively.
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this ka value is listed as 6.6 x 10−4. is hf classified as a strong or weak acid? briefly justify your answer.
HF is classified as a weak acid because it only partially dissociates into ions when dissolved in water, and its relatively low Ka value confirms its limited ionization and weaker acid properties.
Hydrofluoric acid (HF) is classified as a weak acid. The classification of acids as strong or weak depends on their ability to dissociate into ions when dissolved in water. Strong acids readily dissociate completely into ions, while weak acids only partially dissociate.
HF is a weak acid because it does not fully dissociate into H+ ions and F- ions when dissolved in water. Instead, only a fraction of HF molecules dissociate, resulting in a small concentration of H+ ions in solution.
This limited dissociation is due to the strength of the bond between hydrogen and fluorine in HF. The bond is relatively strong, requiring a significant amount of energy to break, and as a result, the dissociation of HF is incomplete.
The Ka value of HF, listed as 6.6 x 10^−4, further supports its classification as a weak acid. Ka is the acid dissociation constant and provides a measure of the extent of dissociation of an acid in solution. A lower Ka value indicates weaker acid strength and a smaller degree of dissociation.
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Write and balance the half-reaction for the reduction of nitrate, NO, (aq), to nitrogen gas, N.(g), in a basic solution,
• Use e^- to represent the formula of an electron. • Do NOT include the state (phase) information.
• Do NOT write out coefficients that are equal to 1. • Be sure to denote any charges as needed.
Explanation:
The balanced half-reaction for the reduction of nitrate, NO, (aq), to nitrogen gas, N.(g), in a basic solution is given below:Balanced half-reaction equationNO₃¯ → N2(g)
Step 1: Write the half-reaction equation and balance it without adding water or H⁺ or OH⁻.NO₃¯ → N2(g)
Step 2: Add water to the right-hand side of the equation to balance the oxygen.NO₃¯ → N2(g) + H2O
Step 3: Add sufficient H⁺ ions to balance the hydrogen.NO₃¯ + 10H⁺ → N2(g) + 5H2O
Step 4: Add electrons (e⁻) to balance the charges.NO₃¯ + 10H⁺ + 8e⁻ → N2(g) + 5H2OThe half-reaction for the reduction of nitrate, NO, (aq), to nitrogen gas, N.(g), in a basic solution is given by NO₃¯ + 10H⁺ + 8e⁻ → N2(g) + 5H2O.
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Your friend Niko predicts that iron and silver nitrate will form when silver is placed into an iron (III) nitrate solution. Is this correct? Why or why not?
A
It is correct because the products are an element and a compound.
B
It is correct because iron is more reactive than silver.
C
It is incorrect because this reaction should form a single product.
D
It is incorrect because silver is less reactive than iron.
Answer: B
Explanation:
B. It is correct because iron is more reactive than silver [1]. When iron (III) nitrate solution comes in contact with silver, the iron ions and silver ions will exchange. The more reactive metal will displace the less reactive metal from its compound. In this case, iron is more reactive than silver, so iron ions will displace silver ions from silver nitrate to form iron nitrate and silver. This reaction will produce iron nitrate and silver as products [2][3].
The prediction made by Niko, stating that iron and silver nitrate will form when silver is placed into an iron (III) nitrate solution, is incorrect. This is because silver is less reactive than iron, and the reaction should not produce iron and silver nitrate as products.
The prediction made by Niko is incorrect. When evaluating the reactivity of metals, it is important to consider the reactivity series. The reactivity series ranks metals based on their tendency to undergo redox reactions. In the reactivity series, iron is typically more reactive than silver.
Iron (III) nitrate is a compound consisting of iron ions and nitrate ions . Silver nitrate, on the other hand, consists of silver ions and nitrate ions . When silver is placed into an iron (III) nitrate solution, a single replacement reaction can occur. However, since silver is less reactive than iron according to the reactivity series, it cannot displace iron from its compound.
Instead, if a reaction occurs, it would involve the displacement of silver by iron, resulting in the formation of iron nitrate and the deposition of silver metal. The correct prediction would be that iron displaces silver, not the formation of iron and silver nitrate as suggested by Niko.
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For the reaction between nitrogen monoxide and chlorine to produce nitrosyl chloride, 2NO(g) + Cl2(g) à 2NOCl(g), it is found that tripling the initial concentration of both reactants increases the initial rate by a factor of 27. If only the initial concentration of chlorine is tripled, the initial rate increases by a factor of 3. What is the order of the reaction with respect to Cl2?
A) ½
B) 0
C) 3
D) 1
E) 2
Comparing these two scenarios, we can conclude that the order of the reaction with respect to Cl₂ is 1. Therefore, the correct answer is (D) 1.
To determine the order of the reaction with respect to Cl₂, we can use the information provided about the effect of concentration changes on the initial rate.
Let's analyze the given data:
When the initial concentrations of both reactants, NO and Cl₂, are tripled, the initial rate increases by a factor of 27. This indicates that the rate is proportional to the cube of the initial concentration of both reactants.
When only the initial concentration of Cl₂ is tripled, the initial rate increases by a factor of 3. This indicates that the rate is directly proportional to the initial concentration of Cl₂.
Comparing these two scenarios, we can conclude that the order of the reaction with respect to Cl₂ is 1.
Therefore, the correct answer is (D) 1.
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Given the diagram to the right what is true about the missing volume?
Answer:
C
Explanation:
Boyle's law states that "the volume of a given mass of gas is inversely proportional to its pressure at constant temperature."
Inverse proportionality means that as one quantity is increasing, the other quantity is decreasing and vice versa.
Hence, as the pressure was increased, the volume decreases accordingly in obedience to Boyle's law.
Answer:
What is TRUE about the missing volume is option C.
C. The volume will decrease due to inverse relationship of V & P
Explanation:
The given parameters of the gas are;
The initial pressure of the gas, P₁ = 2 atm
The initial volume of the gas, V₁ = 1.5 L
The final pressure of the gas, P₂ = 2 atm
Boyle's law states that, at constant temperature, the volume, 'V', of a given mass is inversely proportional to its pressure, 'P';
Mathematically, Boyle's law can be expressed as follows;
P ∝ 1/V
From which we have;
P·V = Constant
∴ P₁·V₁ = P₂·V₂
For the given gas, we get;
2 atm × 1.5 L = 6 atm × V₂
∴ V₂ = 2 atm × 1.5 L/(6 atm) = 0.5 L
Therefore, the volume decreases from 1.5 L to 0.5 L.