Christina has three substances. Each substance is a cube with a volume of 6 milliliters. She is going to place all three substances in a tub of water and wants to know which will float. Substance A has a mass of 4 grams, substance B has a mass of 8 grams, and substance C has a mass of 10 grams. Part A Which substance will float? Part B Explain how you know which substance will float. ​

Answer:

7.250 x 1094 atoms of Magnesium, Mg is equal to 0.008038 grams.

I hope this helps you

a. The empirical formula of the compound is [tex]CH_2O.[/tex] b. Moles of oxygen is 3.344 mol and c. The molecular formula of the compound is [tex]C_6H_12O_6[/tex].

To determine the empirical formula of the compound:

Convert the mass of each element to moles using its molar mass:

Moles of carbon = 48.38 g / 12.011 g/mol = 4.030 mol

Moles of hydrogen = 6.74 g / 1.008 g/mol = 6.690 mol

Moles of oxygen = 53.5 g / 15.999 g/mol = 3.344 mol

Divide each number of moles by the smallest number of moles to get the simplest whole-number ratio of atoms:

Carbon: 4.030 mol / 3.344 mol = 1.205 ≈ 1

Hydrogen: 6.690 mol / 3.344 mol = 1.999 ≈ 2

Oxygen: 3.344 mol / 3.344 mol = 1

Therefore, the empirical formula of the compound is [tex]CH_2O.[/tex]

To determine the molecular formula of the compound:

Calculate the empirical formula mass:

Mass of  [tex]CH_2O.[/tex] = 12.011 g/mol + 2(1.008 g/mol) + 15.999 g/mol = 30.026 g/mol

Empirical formula mass x n = Molar mass

n = Molar mass / Empirical formula mass = 180.15 g/mol / 30.026 g/mol = 6.000

Multiply each subscript in the empirical formula by n to get the molecular formula:

Molecular formula = [tex](CH_2O)_6[/tex] =  [tex]C_6H_12O_6[/tex]

Therefore, the molecular formula of the compound is  [tex]C_6H_12O_6[/tex]

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In the discussion section of a recrystallization of organic compounds lab report, it is important to address the key aspects of the experiment, including the choice of solvent, the process of recrystallization, and the purity of the final product.

The choice of solvent plays a crucial role in the success of the recrystallization process. An ideal solvent should dissolve the organic compound when heated but allow the compound to recrystallize upon cooling. Additionally, impurities should either remain soluble in the cooled solvent or be insoluble in the hot solvent to ensure effective separation.

During the recrystallization process, the organic compound is dissolved in a hot solvent and allowed to cool slowly. As the solution cools, the solubility of the compound decreases, leading to the formation of crystals. The crystals are then collected by filtration, leaving the impurities behind in the solvent.

To assess the purity of the recrystallized product, techniques such as melting point determination or spectroscopic methods (e.g., infrared spectroscopy, NMR) can be employed. A narrow melting point range or consistent spectroscopic data with the reference compound indicate a high degree of purity.

In summary, recrystallization is a critical technique for purifying organic compounds, and the choice of solvent, proper execution of the recrystallization process, and purity analysis are all essential components of a successful lab report discussion.

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The method used to find the volume of acid that reacts with a known volume of alkali is called acid-base titration.

In this method, a solution of known concentration (the titrant) is slowly added to a solution of unknown concentration (the analyte) until the reaction between the two is complete.

The point at which the reaction is complete is determined using an indicator or by measuring the pH of the solution. The volume of titrant required to reach this point is used to calculate the concentration of the analyte solution.

The method is widely used in analytical chemistry to determine the concentration of acids, bases, and other reactive substances in solution.

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The concentration of [OH⁻] in the solution is 5.0×10⁻⁹ M.

To find the [OH⁻] of the solution with [H3O⁺] = 2.0×10⁻⁶ M, you can use the ion product constant of water, Kw = [H₃O⁺][OH⁻].

Step 1: Write down the known values and the ion product constant of water (Kw = 1.0×10⁻¹⁴ at 25°C).
[H₃O⁺] = 2.0×10⁻⁶ M
Kw = 1.0×10⁻¹⁴

Step 2: Use the formula Kw = [H₃O⁺][OH⁻] to solve for [OH⁻].
1.0×10⁻¹⁴ = (2.0×10⁻⁶ M) × [OH⁻]

Step 3: Divide both sides by [H₃O⁺] to isolate [OH⁻].
[OH⁻] = (1.0×10⁻¹⁴) / (2.0×10⁻⁶ M)

Step 4: Calculate the concentration of [OH⁻].
[OH⁻] = 5.0×10⁻⁹ M
So, the concentration of [OH⁻] in the solution is 5.0×10⁻⁹ M.

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For example, the chemical formula for water is H₂O. This tells us that there are two hydrogen atoms (H) and one oxygen atom (O) in each molecule of water. To count the number of atoms in a chemical formula, we can use the subscripts (the numbers that come after each element symbol) to determine how many atoms of each element are present. For example, in the chemical formula NaCl (which represents salt), there is one sodium (Na) atom and one chlorine (Cl) atom in each molecule.

Let us discuss this in detail. To count atoms and elements in a chemical formula, you need to understand the following terms:

- Atoms: The basic unit of a chemical element, consisting of protons, neutrons, and electrons.
- Elements: A substance that cannot be broken down into simpler substances, consisting of only one type of atom.
- Chemical Formula: A representation of a substance using symbols for its constituent elements and numbers to indicate the ratio of atoms in the compound.

Now, let's count the atoms and elements in a given chemical formula, for example, H₂O (water):

1. Identify the elements in the formula: In this case, we have two elements - Hydrogen (H) and Oxygen (O).
2. Count the atoms of each element: The subscript number next to each element symbol indicates the number of atoms of that element in the compound. For Hydrogen (H), the subscript is 2, meaning there are 2 Hydrogen atoms. For Oxygen (O), there is no subscript, which means there is only 1 Oxygen atom (when no subscript is present, it is understood to be 1).

So, in the chemical formula H₂O, there are 2 Hydrogen atoms and 1 Oxygen atom, for a total of 3 atoms.

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A container of helium is at 40°C with a volume of 2. 55 L. The temperature must be 280.81°C raised to for the volume to be 4. 50 L.

Using the combined gas law, we can find the temperature change needed to achieve a volume of 4.50 L:

(P1V1/T1) = (P2V2/T2)

At the start, P1 = P2 since the pressure is constant. So we can simplify the equation:

(V1/T1) = (V2/T2)

Plugging in the given values, we get:

(2.55 L)/(313.15 K) = (4.50 L)/T2

Solving for T2, we get:

T2 = (4.50 L x 313.15 K) / 2.55 L

T2 = 553.81 K

Converting to Celsius, we get:

T2 = 280.81°C

Therefore, the temperature must be raised to 280.81°C for the volume to be 4.50 L.

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1. Positive feedback loops amplify or increase changes, while negative feedback loops counteract or reduce changes.

2. The main difference between endocrine and exocrine glands is that endocrine glands secrete hormones directly into the bloodstream, while exocrine glands secrete substances through ducts.

3. When blood glucose levels decline, the pancreas' alpha cells release glucagon, which signals the liver to break down glycogen into glucose, promotes gluconeogenesis, and releases glucose into the bloodstream.

4. Both type I and type II diabetes can result in impaired vision or blindness due to high blood sugar damaging blood vessels in the retina.

5. To determine if a patient has Cushing's, type I diabetes, or type II diabetes, check for cortisol levels (Cushing's), insulin levels, and blood sugar levels (diabetes).

1. An example of a positive feedback loop is oxytocin release during childbirth from the posterior pituitary gland. An example of a negative feedback loop is the regulation of thyroid hormones by the thyroid gland, where a decrease in hormone levels triggers the release of more hormones.

2. Endocrine glands are part of the endocrine system, while exocrine glands are not, due to their use of ducts for secretion.

3. The ultimate use of this glucose is to provide energy for the body.

4. Type II diabetes doesn't turn into type I diabetes as they are distinct conditions.

5. Additional tests may include glucose tolerance and autoimmune marker tests.

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33,163.52 grams of oxygen were involved in the phase change.

To find the number of grams of oxygen involved in this phase change, we will use the enthalpy of fusion (ΔHfus) since it's a change from solid to liquid. The formula we'll use is:

q = n × ΔHfus

Where q is the heat absorbed (456 kJ), n is the number of moles, and ΔHfus is the enthalpy of fusion (0.44 kJ/mol). First, we'll find the number of moles (n):

456 kJ = n × 0.44 kJ/mol

n = 456 kJ / 0.44 kJ/mol
n ≈ 1036.36 moles

Now that we have the number of moles, we can find the grams of oxygen using the molar mass of oxygen (O2), which is 32 g/mol:

mass = n × molar mass

mass ≈ 1036.36 moles × 32 g/mol
mass ≈ 33163.52 grams

Therefore, approximately 33,163.52 grams of oxygen were involved in the phase change.

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The actual yield from the reaction was 92.4 grams. The answer is 2)

To find the actual yield of calcium chloride from the reaction, we can use the percent yield formula:

Percent Yield = (Actual Yield / Theoretical Yield) x 100%

We know that the theoretical yield of calcium chloride is 115 grams, and the percent yield is 80.34%. Rearranging the formula to solve for actual yield, we get:

Actual Yield = (Percent Yield / 100%) x Theoretical Yield

Plugging in the given values, we get:

Actual Yield = (80.34% / 100%) x 115 grams

Simplifying and solving for actual yield, we get:

Actual Yield = 92.4 grams

Therefore, the actual yield from the reaction was 92.4 grams, which is the second option in the given choices, i.e., option 2.

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Galena and Pyrite are mineral ores.

Ore is a deposit of one or more precious minerals in the Earth's crust.

Galena is lead ore with formula PbS while pyrite is iron ore having formula FeS₂. In Other words, Galena is sulfide of lead and pyrite is sulfide of iron.

Both Galena and Pyrite are sulfide ores with different specific gravities.

Pyrite shows magnetic property on heating which galena is nonmagnetic component and doesn’t bear any magnetic properties.

Both are semi conductors but they are used for different purpose.

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To determine the number of moles of chlorine gas required for the formation of 320.5 grams of aluminum chloride, we need to use the balanced chemical equation for the reaction. The equation for the reaction between aluminum and chlorine gas to form aluminum chloride is:

2Al(s) + 3Cl2(g) → 2AlCl3(s)

From the equation, we can see that for every two moles of aluminum, three moles of chlorine gas are required to form two moles of aluminum chloride. Therefore, we can set up a proportion:

2 moles of AlCl3 : 3 moles of Cl2 = 320.5 g of AlCl3 : x

Where x is the number of moles of Cl2 required.

We can use the molar mass of aluminum chloride (133.34 g/mol) to convert the mass of AlCl3 to moles:

320.5 g AlCl3 ÷ 133.34 g/mol = 2.403 moles AlCl3

Substituting the values into the proportion, we get:

2 moles of AlCl3 : 3 moles of Cl2 = 2.403 moles of AlCl3 : x

Solving for x, we get:

x = 3.605 moles of Cl2

Therefore, 3.605 moles of chlorine gas are required to react with 320.5 grams of aluminum to form aluminum chloride.

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if the unknown solution is mixed with potassium carbonate, the reaction will proceed differently depending on whether the unknown solution is strontium nitrate or magnesium nitrate.

Mixing the unknown solution with potassium sulfate will not provide any useful information to identify whether the unknown solution is strontium nitrate or magnesium nitrate. This is because neither strontium nor magnesium sulfate has distinctive properties that allow them to be easily distinguished from one another.

However, When mixed with strontium nitrate, potassium carbonate will form a white precipitate of strontium carbonate, while no reaction will occur when mixed with magnesium nitrate. Therefore, the presence of a white precipitate after mixing with potassium carbonate indicates that the unknown solution is strontium nitrate.

In summary, to identify whether the unknown solution is strontium nitrate or magnesium nitrate, the solution should be mixed with potassium carbonate. If a white precipitate forms, the solution is strontium nitrate. If no reaction occurs, the solution is magnesium nitrate. Mixing the unknown solution with potassium sulfate will not provide any useful information.

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[OH⁻] = 1.1 x 10⁻¹⁰ M, pH = 9.96; No, [HF] is not equal to [NaF] based on stoichiometry as NaF dissociates completely to form Na⁺ and F⁻ ions, whereas HF dissociates partially.

The dissociation of NaF in water can be represented as follows:

Since NaF is a salt of a strong base (NaOH) and a weak acid (HF), the F⁻ ion will hydrolyze in water to produce OH⁻ ions.

The hydrolysis reaction is as follows:

Firstly, we can use the equilibrium expression for the reaction of HF with water to calculate the [H⁺] ion concentration:

Since the initial concentration of HF is negligible, we can assume that the concentration of F- ion at equilibrium is equal to the initial concentration of NaF.

Using Kw = [H⁺][OH⁻], we can calculate the [OH⁻] ion concentration:

Since NaF dissociates completely in water, [F⁻] = 0.105 M. Therefore, [HF] = Ka*[NaF]/[F⁻] = 6.4 x 10⁻⁴ * 0.105/1 = 6.72 x 10⁻⁵ M.

Hence, [HF] is not equal to [NaF] based on stoichiometry.

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It would take 0.0252 moles of HCl to neutralize the sodium hydroxide produced.

The balanced equation for the reaction of sodium with water is:

[tex]2Na(s) + 2H2O(l) → 2NaOH(aq) + H2(g)[/tex]

From this equation, we can see that 2 moles of NaOH are produced for every mole of Na that reacts.

The molar mass of Na is 22.99 g/mol. Therefore, 0.29 g of Na represents:

0.29 g / 22.99 g/mol = 0.0126 mol Na

So, this amount of sodium will produce:

2 x 0.0126 mol NaOH = 0.0252 mol NaOH

Since NaOH is a strong base, it will completely react with HCl in a 1:1 ratio according to the equation:

[tex]NaOH(aq) + HCl(aq) → NaCl(aq) + H2O(l)[/tex]

So, 0.0252 mol of NaOH will react with 0.0252 mol of HCl.

Therefore, it would take 0.0252 moles of HCl to neutralize the sodium hydroxide produced.

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If your end product is 200.0 g KMnO₄, you started with 142.1 g of KOH.

To determine how much KOH you started with if your end product is 200.0 g KMnO₄, you need to perform stoichiometric calculations using the balanced chemical equation. However, you didn't provide the reaction equation. Assuming you're referring to the reaction between MnO₂, KOH, and O₂ to form KMnO₄, the balanced equation is:

2 MnO₂ + 4 KOH + O2 → 2 KMnO₄ + 2 H2O

Here's the step-by-step explanation to find the amount of KOH you started with:
1. Find the molar mass of KMnO₄ and KOH.
KMnO₄: K (39.1 g/mol) + Mn (54.9 g/mol) + 4O (4 x 16.0 g/mol) = 158.0 g/mol
KOH: K (39.1 g/mol) + O (16.0 g/mol) + H (1.0 g/mol) = 56.1 g/mol

2. Calculate the moles of KMnO₄ produced.
moles of KMnO₄ = mass of KMnO₄ / molar mass of KMnO₄
moles of KMnO₄ = 200.0 g / 158.0 g/mol = 1.266 moles

3. Use stoichiometry to find the moles of KOH used.
From the balanced equation, 4 moles of KOH react to form 2 moles of KMnO₄. Therefore:
moles of KOH = (moles of KMnO4 x 4) / 2
moles of KOH = (1.266 moles x 4) / 2 = 2.532 moles

4. Calculate the mass of KOH used.
mass of KOH = moles of KOH x molar mass of KOH
mass of KOH = 2.532 moles x 56.1 g/mol = 142.1 g

So, if your end product is 200.0 g KMnO₄, you started with 142.1 g of KOH.

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The wave speed is 6 m/s.

The frequency of the wave is given as 2 Hz, which means that two wavelengths pass a given point each second. The distance between wave crests (wavelength) is given as 3 m.

The distance between wave crests is the wavelength (λ), which is 3 m in this case. The frequency (f) is given as two wavelengths passing a given point each second, so f = 2 Hz.

Using the formula:

We can plug in the values to get:

Therefore, the wave speed is 6 m/s.

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A potted plant is placed under a grow lamp, which provides 6,200. J of energy to the plant and the soil over the course of an hour. The specific heat capacity of the soil is about 0. 840 J/g°C and the temperature goes up by 8. 75°C of soil.  800 grams of soil are there

We can use the formula:

Q = m * c * ΔT

where Q is the amount of energy transferred, m is the mass of the material, c is the specific heat capacity of the material, and ΔT is the change in temperature.

We know that Q = 6,200 J, c = 0.840 J/g°C, and ΔT = 8.75°C. We can rearrange the formula to solve for m:

m = Q / (c * ΔT)

Plugging in the values, we get:

m = 6,200 J / (0.840 J/g°C * 8.75°C)

m = 800 grams

Therefore, there are 800 grams of soil.

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Fragments of weathered rocks can be moved by wind, air, or water.

Weathering is a natural process that breaks down rocks and minerals into smaller pieces. When a rock is weathered, it may physically or chemically change due to exposure to elements such as water, wind, ice, and temperature changes.

Physical weathering refers to the breakdown of rock through mechanical processes, such as abrasion, pressure changes, and freeze-thaw cycles.

Chemical weathering involves the breakdown of rock through chemical reactions, such as oxidation, hydrolysis, and dissolution.

In both cases, the resulting smaller pieces of rock or mineral fragments may be moved by wind, air, or water, and may be transported to new locations.

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Answer:

only student B

Explanation:

five electrons int eh valence shell of nitrogen atoms

The change in temperature of the copper is 42.8°C.

The change in temperature of the copper can be calculated using the formula:

q = m * c * ΔT

where q is the amount of heat transferred, m is the mass of the copper, c is the specific heat capacity of copper, and ΔT is the change in temperature.

Rearranging the formula to solve for ΔT, we get:

ΔT = q / (m * c)

Substituting the given values, we have:

ΔT = 66,300 J / (0.3 g * 390 J/g°C)

ΔT = 42.8°C

Therefore, the change in temperature of the copper is 42.8°C.

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--The complete Question is, What is the change in temperature of a 0.3-gram piece of copper that is fashioned into a bracelet if 66,300 Joules of heat energy is transferred to it? Given that the specific heat of copper is 390 J/gxC. --

The number of moles in 1.16 × 10³g of Fe₂O₃ is 7.26 moles.

The number of moles in a substance can be calculated by dividing the mass of the substance by its molar mass as follows:

no of moles = mass ÷ molar mass

According to this question, 1.16 × 10³ grams of iron (II) oxide is given. The molar mass of this compound is 159.69 g/mol.

no of moles in Fe₂O₃ = 1160g ÷ 159.69g/mol = 7.26 moles.

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The pH of a 6.3 x [tex]10^{-8[/tex]M solution of H₃O+ is approximately 7.20.

A 0.25 M solution of H₃O+ is not a strong acid, since it is not a single acid that completely dissociates in water.

A 6.3 x [tex]10^{-8[/tex] M solution of H₃O+  is not a strong acid, since it is a very weak acid with a very low concentration of H₃O+ ions.

The pH of a 0.25 M solution of H₃O+ can be calculated using the formula:

pH = -log[H₃O+]

where [H₃O+] is the concentration of H₃O+ ions in moles per liter (M).

In this case, [H3O+] = 0.25 M,

pH = -log(0.25) = 0.602

Therefore, the pH of a 0.25 M solution of H₃O+ is approximately 0.602.

The pH of a 6.3 x [tex]10^{-8[/tex] M solution of H₃O+ can be calculated using the same formula:

pH = -log[H₃O+]

In this case, [H₃O+] = 6.3 x [tex]10^{-8[/tex]M, so we have:

pH = -log(6.3 x [tex]10^{-8[/tex]) = 7.20

Therefore, the pH of a 6.3 x [tex]10^{-8[/tex] M solution of H₃O+ is approximately 7.20.

There is no information given for question 3.

A strong acid is an acid that completely dissociates in water to produce H₃O+  ions. The most common example of a strong acid is hydrochloric acid (HCl).

Looking at the given solutions:

A 0.25 M solution of H₃O+  is not a strong acid, since it is not a single acid that completely dissociates in water.

A 6.3 x [tex]10^{-8[/tex] M solution of H₃O+  is not a strong acid, since it is a very weak acid with a very low concentration of H₃O+  ions.

Therefore, neither of the given solutions is a strong acid.

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The weight/volume percent concentration of the diluted solution is 15%.

The initial solution is a 30.0% (w/v) solution, which means that 30.0 grams of vitamin C is dissolved in 100 mL of the solution. Therefore, the amount of vitamin C in the initial solution is:

30.0% (w/v) = 30.0 g / 100 mL = 0.3 g/mL

The initial solution is then diluted to a final volume of 200 mL. Since the amount of vitamin C in the solution remains constant, we can use the following equation to calculate the final concentration:

CiVi = CfVf

where Ci and Vi are the initial concentration and volume, and Cf and Vf are the final concentration and volume.

We can rearrange the equation to solve for the final concentration:

Cf = (CiVi) / Vf

Substituting the values, we get:

Cf = (0.3 g/mL x 100 mL) / 200 mL

Cf = 0.15 g/mL

Finally, we can convert the concentration to weight/volume percent by multiplying by 100:

weight/volume percent = Cf x 100%

weight/volume percent = 0.15 g/mL x 100%

weight/volume percent = 15%

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The increase in temperature of the steam if it absorbs 800 kJ of heat energy is 653.6°C

The specific heat capacity is the amount of thermal energy required to raise the temperature of a system by one temperature unit. The increase in temperature of a metal can be calculated using the following expression;

Q = mc∆T

Where;

800,000 = 720 × 1.7 × ∆T

800000 = 1,224∆T

∆T = 653.6°C

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The mass (in grams) of oxygen are needed to produce 16.7 g of sulfur trioxide, SO₃ is 3.34 grams

First, we shall determine the mole of sulfur trioxide, SO₃ produced. Details below:

Mole = mass / molar mass

Mole of sulfur trioxide, SO₃ = 16.7 / 80

Mole of sulfur trioxide, SO₃ = 0.209 mole

Next, we shall determine the mole of oxygen needed. Details below:

2SO₂ + O₂ -> 2SO₃

From the balanced equation above,

2 mole of SO₃ was produced from 1 moles of O₂

Therefore,

0.209 mole of SO₃ will be produce from = 0.209 / 2 = 0.1045 mole of O₂

Finally, we shall detemine the mass of oxygen, O₂ needed. Details below:

Mole = mass / molar mass

0.1045 = Mass of O₂ / 32

Cross multiply

Mass of O₂ = 0.0888 × 32

Mass of O₂ = 0.178 grams

Thus, that the mass of oxygen, O₂ needed is 3.34 grams

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We can use the equation:

q(zinc) = -q(water)

where q(zinc) is the heat lost by the zinc and q(water) is the heat gained by the water.

q(zinc) = m(zinc) × C(zinc) × ΔT

where m(zinc) is the mass of zinc, C(zinc) is the specific heat of zinc, and ΔT is the temperature change of the zinc.

The heat gained by the water :

q(water) = m(water) × C(water) × ΔT

where m(water) is the mass of water, C(water) is the specific heat of water, and ΔT is the temperature change of the water.

Since the calorimeter is assumed to be perfectly insulated, we can assume that the heat lost by the zinc is equal to the heat gained by the water:

m(zinc) × C(zinc) × ΔT = m(water) × C(water) × ΔT

m(zinc) × C(zinc) = m(water) × C(water)

2.50 g × 0.390 J/g°C = 60.0 g × 4.184 J/g°C

ΔT = q(water) / (m(water) × C(water))

= (2.50 g × 0.390 J/g°C) / (60.0 g × 4.184 J/g°C)

= 0.00916°C

Since we know the initial temperature of the water is 20.00°C, we can use the formula for temperature change:

ΔT = final temperature - initial temperature

Rearranging this formula, we get:

initial temperature = final temperature - ΔT

Substituting the given values, we get:

initial temperature = 20.00°C - 0.00916°C

= 19.99084°C

Therefore, the initial temperature of the zinc metal sample was approximately 19.99°C.

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The letter in response to david li's letter is-

Dear David Li,

Thank you for your letter regarding the groundwater system at Riverdale School. I am glad to hear that you are interested in this innovative system.

To answer your question, the groundwater system at Riverdale School could heat the air by utilizing the stable temperature of the groundwater. Groundwater has a relatively constant temperature throughout the year, which can be warmer than the outside air temperature during the winter. The system could pump the groundwater through a heat exchanger, which transfers the heat to the air and distributes it throughout the school.

If the groundwater system were used, the air temperature at Riverdale School would become more stable because the system would provide a constant source of heat.

This stability in temperature would be beneficial for the comfort and well-being of the students and staff. The air temperature would also change compared to the current heating system, as the groundwater system would provide a more consistent and efficient source of heat.

I hope this answers your questions about the groundwater system at Riverdale School. Please let me know if you have any further inquiries.

Sincerely,

[Your Name]

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If 33. 55 ml of 0. 150M NaOH neutralizes 0. 579g of HPro then the molar mass of proline is 115.08 g/mol.

To find the molar mass of proline, we need to first calculate the number of moles of HPro that reacted with the NaOH.

We can use the equation:

HPro + NaOH → NaPro + H2O

From the balanced equation, we can see that 1 mole of HPro reacts with 1 mole of NaOH.

Using the concentration and volume of NaOH, we can calculate the number of moles of NaOH used:

moles of NaOH = concentration x volume
moles of NaOH = 0.150 mol/L x 0.03355 L
moles of NaOH = 0.005033 mol

Since 1 mole of HPro reacts with 1 mole of NaOH, the number of moles of HPro used is also 0.005033 mol.

Now we can calculate the molar mass of HPro:

molar mass = mass / moles
molar mass = 0.579 g / 0.005033 mol
molar mass = 115.08 g/mol

Therefore, the molar mass of proline is 115.08 g/mol.

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