Air-vapor mixture at a pressure of 297 kPa has a dry-bulb temperature of 30 C and a wet-bulb temperature of 20 C. Determine the relative humidity in percentage.

The first small solid grains or flakes formed in our Solar System by the process of condensation, the addition of material to an object an atom or molecule at a time.

This process occurs when the temperature and pressure of the gas or vapor are lowered to a point where the particles can come together and form a solid. In the early Solar System, dust and gas were present in a cloud around the Sun.

As the temperature and pressure decreased with increasing distance from the Sun, the gas and dust began to condense into solid grains. These grains then stuck together through a process called accretion, forming larger and larger bodies, including the planets, moons, and asteroids.

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The equilibrium constant of the reaction is 3.5 * 10^-10

A quantitative indicator of the location of a chemical equilibrium in a chemical reaction is the equilibrium constant, abbreviated as K. With each concentration raised to the power of its stoichiometric coefficient, it is the ratio of the product concentrations to the reactant concentrations at equilibrium.

We know that;

The balanced reaction equation is CO2 (g) + C (s) → 2 CO (g)

Keq = [CO]^2/[CO2]

Keq = ( 5.4 × 10^-5)^2/(8.3 × 10°)

Keq = 3.5 * 10^-10

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The volume of the gas after the explosion is 0.025 liters.

Using the formula for the ideal gas law, PV=nRT, we can solve for the number of moles of gas in the bomb casing before the explosion:

PV=nRT

(4.0 x [tex]10^6[/tex] atm)(0.050 L)=n(0.08206 L•atm/mol•K)(298 K)

n=0.000988 mol

Since the number of moles of gas is conserved, we can use PV=nRT again to solve for the volume of gas after the explosion:

PV=nRT
(1.00 atm)(V)=(0.000988 mol)(0.08206 L•atm/mol•K)(298 K)
V=0.025 L or 25.0 mL

Therefore, the volume of gas after the explosion is 0.025 liters or 25.0 milliliters.

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A double displacement reaction occurs when two reactants swap their ions to generate two distinct products. The enthalpy of formation for Ni(s) is 0 kJ/mol, whereas the enthalpy of formation for CaCO3(s) is -1206.9 kJ/mol, according to the table.

NiC2(s) has a formation enthalpy of -51.8 kJ/mol while CaO(s) has a formation enthalpy of -635.4 kJ/mol. CO2(g) has a formation enthalpy of -393.5 kJ/mol. We may compute AG for the above reaction using the provided equation, AG=AH-TAS. First, we must compute AH and TAS.

The total of the enthalpies of production of the products less the sum of the enthalpies of formation of the reactants yields AH. TAS is determined by adding the entropies of The total of the entropies of product formation minus the sum of the entropies of reactant formation.

AH = -2080.7 kJ/mol (-51.8 + -635.4 + -393.5) - (0 + -1206.9) TAS = (-0 + 213.8) - (-0) = 213.8 J/K.mol We may compute AG for the reaction using these variables. TAS = -2080.7 - (213.8/1000) = -2081.9 kJ/mol AG = AH  

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To calculate Keq and ∆Gorxn, you would need additional information, such as the equilibrium concentrations of each species. The ∆Gorxn can be calculated using the equation ∆Gorxn = -RTln(Keq), where R is the gas constant and T is the temperature in Kelvin.

We would expect ∆Sorxn to be negative since the reaction results in fewer moles of gas, and there is a decrease in the overall disorder of the system.
To calculate the pH of the solution, you need to determine the concentrations of NH4+ and HCOO- ions after the dissolution of NH4(HCOO) and then use the Henderson-Hasselbalch equation: pH = pKa + log([A-]/[HA]), where [A-] is the concentration of formate ions and [HA] is the concentration of ammonium ions.
To create an effective buffer at pH 3.00, HCl would be required to lower the pH. The exact amount needed would depend on the initial concentrations of NH4+ and HCOO- ions and their pKa values.

(i) [NH3] increases. Since the reaction is endothermic, increasing the temperature will shift the equilibrium to the right, producing more NH3.
(ii) [NH3] does not change. Adding water will dilute the solution, but the ratio of products to reactants remains constant. Therefore, the concentration of NH3 at equilibrium does not change.

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True. The ratio of carbon-12 to carbon-14 is used to determine the age of organic materials through radioactive dating.

In radioactive dating, the ratio of carbon-12 to carbon-14 is related to the time of death of the animal or plant under investigation. This method, known as radiocarbon dating, measures the decay of carbon-14 over time, providing an estimate of the age of the specimen. As carbon-14 decays over time, the ratio changes, allowing scientists to estimate how long it has been since the organism died.

Carbon-14 is a radioactive isotope of carbon that is constantly formed in the atmosphere by cosmic rays, and it decays over time at a known rate. When an organism dies, it stops taking in carbon-14, and the carbon-14 that was in its body begins to decay. By measuring the ratio of carbon-12 to carbon-14 in a sample and comparing it to the known ratio of carbon-12 to carbon-14 in the atmosphere, scientists can determine how long it has been since the organism died.

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143.7 kJ of heat are absorbed when 40.4 g of MgO(s) is decomposed into Mg(s) and [tex]O_{2}[/tex](g) at constant pressure.

The decomposition of 40.4 g of MgO(s) into Mg(s) and [tex]O_{2}[/tex](g) at constant pressure is an exothermic reaction. The balanced chemical equation for this reaction is:

2 MgO(s) → 2 Mg(s) + [tex]O_{2}[/tex](g)

According to the equation, 2 moles of MgO(s) produce 2 moles of Mg(s) and 1 mole of [tex]O_{2}[/tex](g). The molar mass of MgO is 40.3 g/mol, and the molar mass of Mg is 24.3 g/mol.

Therefore, the number of moles of MgO(s) in 40.4 g is= 40.4 g / 40.3 g/mol = 1.00 mol

This means that the reaction produces 1.00 mol of Mg(s) and 0.50 mol of [tex]O_{2}[/tex](g).

The standard enthalpy change of decomposition for MgO(s) is -143.7 kJ/mol. This means that the reaction releases 143.7 kJ of heat per mole of MgO(s) decomposed.

Therefore, the total amount of heat released when 40.4 g of MgO(s) is decomposed into Mg(s) and [tex]O_{2}[/tex](g) is= 143.7 kJ/mol x 1.00 mol = 143.7 kJ

So, 143.7 kJ of heat are absorbed when 40.4 g of MgO(s) is decomposed into Mg(s) and [tex]O_{2}[/tex](g) at constant pressure.

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In the absence of a parallel collimator during SPECT imaging, the gamma rays emitted from the source would travel in multiple directions and result in blurred and scattered images.

A parallel collimator is used in order to localize the source of gamma emission during SPECT imaging. This is necessary because, in the absence of the collimator, the gamma photons emitted from different points in the source would reach the detector without any directionality, leading to blurred and indistinguishable images. The parallel collimator ensures that only gamma photons traveling parallel to the collimator's axis reach the detector, creating a clearer and more accurate representation of the gamma emission source.

The collimator is designed to only allow gamma rays that are traveling parallel to the collimator's axis to pass through, thus creating a focused beam and allowing for accurate localization of the source of gamma emission.

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condensation.

the hot air around the cold glass cools down into water droplets.

Keith is mostly correct. Melting sugar is a physical change, not a chemical change. In a physical change, the substance undergoes a change in its physical state, such as melting or freezing, without any change in its chemical composition.

The sugar molecules remain the same, just in a different physical state. So when sugar is melted, it is still sugar chemically, even though it looks different in its liquid form.

On the other hand, in a chemical change, the substance undergoes a change in its chemical composition, resulting in the formation of one or more new substances with different chemical properties. For example, when sugar is burned, it undergoes a chemical change, producing carbon dioxide and water, which have different chemical properties than sugar.

So while Sarah is right that melted sugar looks different, this change in appearance is due to a physical change rather than a chemical change.

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Transition elements (also known as transition metals) are elements that have partially filled d orbitals. IUPAC defines transition elements as an element having a d subshell that is partially filled with electrons, or an element that has the ability to form stable cations with an incompletely filled d orbital.

If a 3+ cation of a certain transition metal has one electron in its outermost d subshell, then we know that the electron configuration of the neutral atom must have been [noble gas] (n-1)d1 ns2, where n is the principal quantum number. The transition metal with this electron configuration is Scandium (Sc), which has an atomic number of 21. When Sc loses three electrons to form the 3+ cation, it loses the two electrons in the ns subshell and one of the electrons from the (n-1)d subshell, leaving it with a single electron in the outermost d subshell.

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The empirical formula for the hydrocarbon is CH₂.

The combustion reactions are :

C + O₂ --> CO₂

H₂ + 1/2 O₂ --> H₂O

The molar mass of CO₂ =b 44 g/mol

The Mass of Carbon, C = (15.4 g CO₂)(1mol/44g)(1 mol C/1 mol CO₂)(12 g/mol)

The Mass of Carbon, C = 4.2 g C

The Mass of H = 5 - 4.2

The Mass of H = 0.8 g

The Moles C = 4.2 / 12 = 0.35

The Moles H = 0.8 / 1 = 0.8

Dividing by the smallest one :

The Moles of C = 1

The Moles of H = 2

The empirical formula of the hydrocarbon is CH₂ with the complete combustion of the 5 g of hydrocarbon.

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Pectin's ability to improve texture, stability, and flavor makes it a valuable ingredient in many processed foods and beverages. The correct answer is "All of the answers are correct".

Pectin is a complex carbohydrate that is commonly found in fruits and vegetables. It is widely used in the food industry as a thickening agent, stabilizer, and gelling agent.

One of the key benefits of pectin is its ability to improve the texture of processed foods and beverages.

For example, when added to frozen products, pectin can help to control the size of ice crystals that form during the freezing process. This helps to prevent the formation of large ice crystals that can cause the product to become icy or gritty in texture.

Pectin can also help to prevent the loss of syrup during the thawing process, which helps to maintain the product's overall texture and flavor.

In addition, pectin can be used to evenly distribute added substances such as fruit pieces, nuts, or chocolate chips throughout a product. Without pectin, these substances would tend to sink to the bottom of the product, resulting in an uneven texture and flavor.

Finally, pectin can also be used to increase the viscosity of liquids, making them thicker and more stable. This is particularly useful in products such as fruit juices and jams, where a thicker, more spreadable consistency is desired.

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The empirical formula of the unknown compound is approximately [tex]C_4H_3O_{11/3[/tex].

To determine the empirical formula of the unknown compound, we need to find the ratio of the number of atoms of each element in the compound.

First, we need to calculate the number of moles of [tex]CO_2[/tex] and [tex]H_2O[/tex] produced in the combustion reaction:

moles of [tex]CO_2[/tex]= 7.54 g / 44.01 g/mol = 0.1715 mol

moles of [tex]H_2O[/tex]= 2.06 g / 18.02 g/mol = 0.1143 mol

Next, we need to calculate the number of moles of carbon and hydrogen in the unknown compound using the moles of [tex]CO_2[/tex]and [tex]H_2O[/tex] produced in the combustion reaction:

moles of C = moles of [tex]CO_2[/tex]= 0.1715 mol

moles of H = (moles of [tex]H_2O[/tex]) x (2 mol H / 1 mol [tex]H_2O[/tex]) = 0.2286 mol

We can then use the total mass of the unknown compound to calculate the number of moles of oxygen:

mass of unknown compound = 3.20 g - (mass of [tex]CO_2[/tex] produced + mass of [tex]H_2O[/tex] produced)

mass of unknown compound = 3.20 g - (7.54 g + 2.06 g) = -6.40 g (This negative value indicates an error in the data, as the mass of the unknown compound cannot be negative)

Therefore, there must be an error in the given data.

If we assume that the mass of the unknown compound was recorded incorrectly and should be 13.80 g (the sum of the masses of [tex]CO_2[/tex]  and [tex]H_2O[/tex]  produced), we can calculate the number of moles of oxygen:

mass of unknown compound = 13.80 g

moles of O = (mass of unknown compound) / (molar mass of unknown compound)

molar mass of unknown compound = (12.01 g/mol x moles of C) + (1.01 g/mol x moles of H) + (16.00 g/mol x moles of O)

molar mass of unknown compound = 12.01 g/mol + 1.01 g/mol + 16.00 g/mol = 29.02 g/mol

moles of O = (13.80 g) / (29.02 g/mol) = 0.4747 mol

Now we have the moles of each element in the compound:

moles of C = 0.1715 mol

moles of H = 0.2286 mol

moles of O = 0.4747 mol

To get the empirical formula, we need to divide each of these values by the smallest value (0.1715 mol):

moles of C = 0.1715 mol / 0.1715 mol = 1

moles of H = 0.2286 mol / 0.1715 mol = 1.333 ≈ 4/3

moles of O = 0.4747 mol / 0.1715 mol = 2.766 ≈ 11/4

Multiplying by the lowest common denominator (12) gives us the simplest whole-number ratio of atoms:

[tex]C_1H_{(4/3)}O_{(11/4)}[/tex] ≈ [tex]C_4H_3O_{11/3[/tex]

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The concentration of the new dilution is 52.08 PFU/mL.

To calculate the concentration of the new dilution, use the formula:
Concentration = (PFU/mL) x (Volume of original solution / Total volume)

Calculating the total volume of the new dilution:
Total volume = Volume of original solution + Volume of diluent
Total volume = 5 mL + 19.0 mL
Total volume = 24.0 mL

Substituting the values:
Concentration = (250 PFU/mL) x (5 mL / 24.0 mL)
Concentration = (250 PFU/mL) x (0.2083)
Concentration = 52.08 PFU/mL

As a result, the new dilution had a concentration of 52.08 PFU/mL.

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The atomic mass of the element M in the ionic compound MFx is approximately 174.808 g/mol.

To determine the atomic mass of the element M in the ionic compound MFx, we can use the information about the formula mass and the mass percent of fluorine.

First, we can calculate the mass of fluorine in one mole of MFx:

mass of fluorine = formula mass of MFx × mass percent of fluorine

mass of fluorine = 232 g/mol × 24.6% = 57.192 g/mol

Next, we can use the periodic table to find the atomic mass of fluorine, which is 18.998 g/mol.

Now we can set up an equation to relate the mass of fluorine to the mass of M:

mass of M = formula mass of MFx - mass of fluorine

mass of M = 232 g/mol - 57.192 g/mol

mass of M = 174.808 g/mol

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Answer:

I believe it would be the Lanthanide Contraction.

Explanation:

Hope this helps! :)

The phenomenon called "relativistic contraction" is responsible for the great similarity in atomic size and chemistry of 4d and 5d elements.

Relativistic contraction occurs when the speed of an electron approaches the speed of light, causing the electron to experience relativistic effects that result in a contraction of the electron cloud. This contraction is greater for heavier elements, such as those in the 4d and 5d series, due to their higher nuclear charges.

As a result, the atomic radii of these elements are very similar, which leads to similar chemical properties. Additionally, relativistic effects can also affect the energies of atomic orbitals, which can further influence the chemical behavior of these elements.

Overall, relativistic contraction is an important factor in understanding the properties of 4d and 5d elements.

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111.40 g of KCl[tex]O_3[/tex] would be required to produce 49.52 liters of oxygen gas measured at 127 degrees Celsius and 860 torr.

What is Weight?

Weight is the measure of the gravitational force acting on an object. It is a vector quantity, which means it has both magnitude and direction. The weight of an object can be calculated by multiplying its mass by the acceleration due to gravity (g).

Using the ideal gas law, the number of moles of oxygen gas produced is:

n = PV/RT = (1.13 atm) x (49.52 L) / [(0.08206 L.atm/mol.K) x (400.15 K)] = 1.37 mol

From the balanced chemical equation for the decomposition of potassium chlorate (2KCl[tex]O_3[/tex] → 2KCl + 3[tex]O_2[/tex]), we know that 2 moles of KCl[tex]O_3[/tex] produce 3 moles of [tex]O_2[/tex]. Therefore, the number of moles of KCl[tex]O_3[/tex]required to produce 1.37 moles of O2 is:

n(KCl[tex]O_3[/tex]) = (2/3) x n([tex]O_2[/tex]) = (2/3) x 1.37 mol = 0.91 mol

The molar mass of KCl[tex]O_3[/tex] is:

M(KClO3) = 39.10 g/mol + 35.45 g/mol + 3(16.00 g/mol) = 122.55 g/mol

So the weight of KCl[tex]O_3[/tex] required to produce 49.52 liters of oxygen gas at 127 degrees Celsius and 860 torr is:

mass = n x M = 0.91 mol x 122.55 g/mol = 111.40 g of KCl[tex]O_3[/tex]

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0.139 grams of sodium metal will react with water to give 75.0 ml of hydrogen gas at STP.

To determine the grams of sodium metal needed to react with water to produce 75.0 ml of hydrogen gas at STP, we first need to use the balanced chemical equation:

2 Na + 2 H2O -> 2 NaOH + H2

From the equation, we can see that 2 moles of Na will react with 2 moles of H2O to produce 1 mole of H2 gas.

Using the ideal gas law, we can convert the volume of H2 gas to moles at STP:

PV = nRT

(1 atm) x (0.075 L) = n x (0.08206 L atm/mol K) x (273.15 K)

n = 0.00302 moles

Since 2 moles of Na react to produce 1 mole of H2 gas, we can find the moles of Na needed:

0.00302 moles H2 x (2 moles Na / 1 mole H2) = 0.00604 moles Na

Finally, we can use the molar mass of Na to convert moles to grams:

0.00604 moles Na x 23.00 g/mol = 0.139 g Na

Therefore, 0.139 grams of sodium metal will react with water to give 75.0 ml of hydrogen gas at STP.

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During the experiment, the total pressure in the graduated cylinder is 757 mmHg, and 0.0421 grams of nitrogen is collected.

To solve this problem, we need to use the ideal gas law equation: PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature.

First, we need to convert the temperature from Celsius to Kelvin:
T = 26.0 + 273.15 = 299.15 K

Next, we need to convert the pressure from mmHg to atm:
P = 757 mmHg / 760 mmHg/atm = 0.995 atm

Now we can rearrange the ideal gas law equation to solve for n, the number of moles of nitrogen gas:
n = PV/RT

Plugging in the given values, we get:
n = (0.995 atm)(0.0457 L)/(0.0821 L·atm/mol·K)(299.15 K) = 0.00150 moles of nitrogen gas

Finally, we can use the molar mass of nitrogen (28.01 g/mol) to convert moles to grams:
grams of nitrogen = 0.00150 moles x 28.01 g/mol = 0.0421 g

Therefore, 0.0421 grams of nitrogen were collected.

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To find the percent ionization of the acid, we first need to calculate the initial concentration of hydronium ions (H3O+).
HA + H2O ⇌ H3O+ + A-
Initial concentration of HA = 1.4 M
Equilibrium concentration of H3O+ = 0.12 M

Using the equilibrium constant expression for acid dissociation (Ka):

Ka = [H3O+][A-] / [HA]

Assuming the concentration of A- is negligible compared to HA, we can simplify the expression to:

Ka = [H3O+]^2 / [HA]

Rearranging the expression to solve for [H3O+], we get:

[H3O+] = sqrt(Ka x [HA])

We can look up the Ka value for HA (or calculate it if given enough information) and substitute the values:

Ka = [H3O+]^2 / [HA]
1.8 x 10^-5 = [H3O+]^2 / 1.4

[H3O+] = 0.0079 M

Now we can calculate the percent ionization:

% Ionization = ([H3O+] / [HA]) x 100
% Ionization = (0.0079 / 1.4) x 100
% Ionization = 0.56%

Therefore, the percent ionization of the acid is 0.56%.
Hi! To find the percent ionization of the acid, you'll need to use the given initial concentration of the acid HA (1.4 M) and the equilibrium hydronium ion concentration (0.12 M). Percent ionization can be calculated using the formula:

Percent Ionization = (Equilibrium Hydronium Concentration / Initial Concentration of Acid HA) × 100

Percent Ionization = (0.12 M / 1.4 M) × 100 ≈ 8.57%

The percent ionization of the acid is approximately 8.57%.

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The rate constant of the reaction between CO₂ and OH₂ in aqueous solution to give the HCO₃⁻ ion at human body temperature is 2.49 x 10¹⁰ M⁻¹ s⁻¹.

We can use the Arrhenius equation to find the rate constant at human body temperature:

k2 = A2 * exp(-Ea/RT2)

where k2 is the rate constant at human body temperature, A2 is the pre-exponential factor (the frequency factor), Ea is the activation energy, R is the gas constant, and T2 is the temperature in Kelvin (310 K for 37 oC).

We are given that:

k1 = 1.5 x 10¹⁰ M⁻¹ s⁻¹ (rate constant at 25 oC)

Ea = 38 kJ/mol

To find the pre-exponential factor at human body temperature, we need to know the activation energy dependence on temperature, which is not given.

However, we can make a reasonable assumption that the activation energy does not change significantly over the relatively small temperature range between 25 oC and 37 oC. With this assumption, we can use the pre-exponential factor at 25 oC as an approximation for A2:

A2 = A1 = k1 / exp(-Ea/RT1)

where R is the gas constant and T1 is the temperature in Kelvin (298 K for 25 oC).

Substituting the given values:

A2 = A1 = (1.5 x 10¹⁰ M⁻¹ s⁻¹) / exp(-38000 J/mol / (8.314 J/mol*K * 298 K))

= 6.47 x 10¹² M⁻¹ s⁻¹

Now we can use the Arrhenius equation to find k2:

k2 = A2 * exp(-Ea/RT2)

= (6.47 x 10¹² M⁻¹ s⁻¹) * exp(-38000 J/mol / (8.314 J/mol*K * 310 K))

= 2.49 x 10¹⁰ M⁻¹ s⁻¹

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Combing your hair can indeed cause excess electrons to accumulate on the comb due to friction between the comb and your hair. However, the speed at which you move the comb up and down does not determine the color of light produced.

The color of light produced depends on the energy of the electrons as they move between energy levels in an atom or molecule. When an electron moves from a higher energy level to a lower energy level, it emits a photon of light. The energy of the photon determines its wavelength and, therefore, its color.

Red light has a wavelength of approximately 620-750 nanometers. To produce red light, the electrons in a material would need to lose energy corresponding to this wavelength. However, the energy required to produce red light is much higher than the energy produced by combing your hair.

In summary, combing your hair does not produce light with a high enough energy to produce red light, regardless of how fast you move the comb up and down.

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The radioactive substance that will remain after 150 years will be 35.09grams.

A radioactive material's decay rate is proportional to the amount of substance present at any moment t. This indicates that as time passes, the amount of substance left drops at a rate proportionate to the amount of substance present at the moment. This can be modeled using the formula:

[tex]A = A_{0} e^{-kt}[/tex]

Where A represents the quantity of substance at time t, A0 represents the initial amount of substance, k represents the decay constant, and t is the time passed.

We can calculate the decay constant k using the information provided. We know that there were 50 grams of the material in 1840 and 35 grams in 1910. This means that:

[tex]35 = 50 e^{(-k(1910-1840)}[/tex]

[tex]35/50 = e^{(-k(70))}\\7/10 = e^{(-k(70)}\\ln(7/10) = ln(e^{(-k(70)}\\ln(7/10) = -k(70)[/tex]

k = -(ln(7/10))/70

k= 0.002363

To find the amount of substance remaining in 1990, we can plug in t = 1990-1840 = 150 into the formula:

[tex]A = 50 e^{(-0.002363*150)}[/tex]

-0.002363*150 = -0.35445

[tex]e^{(-0.35445)}[/tex] ≈ 0.7018

A = 50 * 0.7018 ≈ 35.09

A ≈ 35.09g

Therefore, to the nearest gram, approximately 35.09grams of the substance remained in 1990.

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The heat energy developed to raise the temperature of the system from 23°C to 34°C is 7905 J.

The heat energy developed can be calculated using the formula:

q = (m_Al * C_Al * ΔT) + (m_Cu * C_Cu * ΔT) + (m_H2O * C_H2O * ΔT)

where q is the heat energy developed, m_Al, m_Cu, and m_H2O are the masses of aluminum, copper, and water, respectively, C_Al, C_Cu, and C_H2O are their respective specific heat capacities, and ΔT is the change in temperature.

We can assume that the calorimeter is an isolated system, so the heat gained by the water, aluminum, and copper is equal to the heat lost by the surroundings. Therefore:

q = -q_surroundings

The heat lost by the surroundings can be calculated using the formula:

q_surroundings = C_env * ΔT

where C_env is the heat capacity of the surroundings (in this case, the calorimeter and the air around it).

Substituting the values given in the problem, we get:

q = -(85.0 g * 0.900 J/g°C * (34°C - 23°C) + 5.00 g * 0.385 J/g°C * (34°C - 23°C) + 200 g * 4.184 J/g°C * (34°C - 23°C))

q = -(-7905 J)

q = 7905 J

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The relative humidity for a parcel of air with 6 millibars vapor pressure and 30 millibars saturation vapor pressure is 20%.

The amount of water vapor in an air-water mixture relative to the maximum amount possible is known as relative humidity (RH). Relative humidity is a ratio of the humidity of a specific water-air mixture and the saturation humidity ratio at a particular temperature.

It can be calculated using the formula:

Relative humidity = (vapor pressure / saturation vapor pressure) x 100%

Substituting the given values:

Relative humidity = (6 / 30) x 100% = 20%

Therefore, the relative humidity for this parcel of air is 20%.

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If one were to construct a galvanic cell consisting of two Zn2 /Zn electrodes at two different concentrations, the more concentrated cell will be the anode

In a galvanic cell, the more concentrated solution is typically associated with the anode, while the less concentrated solution is associated with the cathode. This is because, in the anode compartment, the metal electrode undergoes oxidation and releases metal ions into solution, resulting in an increase in the concentration of metal ions.

In contrast, in the cathode compartment, metal ions from the solution are reduced onto the metal electrode, resulting in a decrease in the concentration of metal ions.

Therefore, in the case of a galvanic cell consisting of two Zn2+/Zn electrodes at two different concentrations, the more concentrated cell would be associated with the anode.

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Full Question: If one were to construct a galvanic cell consisting of two Zn2 /Zn electrodes at two different concentrations, the more concentrated cell will be the _____. Multiple choice questions.

The balanced equation for the dissolution of potassium dichromate (K₂Cr₂O₇) in water is:

K₂Cr₂O₇(s) + H₂O(l) → 2K⁺(aq) + Cr₂O₇²⁻(aq)

The solubility product equation for potassium dichromate is:

Ksp = [K⁺]²[Cr₂O₇²⁻]

The balanced equation represents the dissolution of potassium dichromate in water, where solid K₂Cr₂O₇ dissolves to form aqueous ions K⁺ and Cr₂O₇²⁻. The solubility product equation, denoted by Ksp, is an expression that relates the concentrations of ions in a saturated solution of a sparingly soluble salt to its solubility.

In this case, the solubility product equation for potassium dichromate is given by [K⁺]²[Cr₂O₇²⁻], where [K⁺] and [Cr₂O₇²⁻] represent the concentrations of potassium ions and dichromate ions, respectively, in the saturated solution.

The solubility product constant, Ksp, is a constant value that depends on the temperature and can be used to determine the solubility of potassium dichromate in water at a given temperature.

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The dipole moment of a molecule is determined by the distribution of its electrons and the geometry of its bonds.

In the case of SO2, the molecule has a bent shape with two polar bonds, which results in a dipole moment of 1.63 D. On the other hand, CO2 is linear and has two polar bonds that are equal and in opposite directions, which cancels out their dipole moments, resulting in a net dipole moment of 0 D.

It is important to note that the dipole moment of a molecule can be induced by dissolving it in a polar solvent, which alters the electron distribution and results in a dipole moment. In the case of SO2, it must be dissolved in a polar solvent to induce a dipole moment. However, CO2 must be dissolved in a nonpolar solvent to induce a dipole moment of 0 D.

In summary, the dipole moment of SO2 is 1.63 D due to its bent shape and polar bonds, while CO2 has a dipole moment of 0 D due to its linear shape and equal and opposite polar bonds. Additionally, the dipole moment of SO2 can be induced by dissolving it in a polar solvent, whereas CO2 must be dissolved in a nonpolar solvent to induce a dipole moment of 0 D.

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