The number of grams of oxygen required is 94.9 g, under the condition that it is used to burn 28. 8 g of ammonia (NH₃)
NH₃ + 7O₂ → 4NO₂ + 6H₂O,
then the correct answer for the required question is Option B.
Now, the balanced chemical equation for the reaction of ammonia (NH₃) and oxygen (O₂) to create nitrogen dioxide (NO₂) and water (H₂O) is
4NH₃ + 7O₂ → 4NO₂ + 6H₂O
The given molar mass of NH₃ is 17.0305 g/mol and that of O₂ is 31.998 g/mol.
In order to find out how many grams of O₂ are required to burn 28.8 g of NH₃, we have to first balance the equation:
4 NH₃+ 7O₂ → 4NO₂ + 6H₂O
Then there are 4 moles of NH₃, we need 7 moles of O₂.
Hence, molar mass of NH₃ is 17.0305 g/mol, so we can change 28.8 g of NH₃ to moles
28.8 g NH₃ × (1 mol NH₃/17.0305 g NH₃)
= 1.69 mol NH₃
Now we have to apply stoichiometry to evaluate how many moles of O₂ are required
1.69 mol NH₃ × (7 mol O₂/4 mol NH₃)
= 2.95 mol O₂
Therefore, we can convert moles of O₂ to grams:
2.95 mol O₂ × (31.998 g O₂/1 mol O₂)
= 94.9 g
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The complete question is
How many grams of oxygen (O2) is required to burn 28. 8 g of ammonia (NH3)?4NH3 + 7O2 → 4NO2 + 6H2O
Molar Mass
NH3=17. 0305 g/mol
O2=31. 998 g/mol
NO2=46. 0055 g/mol
H2O=18. 0153 g/mol
a)15. 3 g
b)94. 9 g
c)54. 1 g
d)108 g
832 J of energy is used to raise the temperature of an unknown metal from 65oC to 71oC. If the specific heat of the metal is 0. 466 J/g*C, what is the mass of the metal sample? g (five sig figs)
The formula for calculating the amount of energy required to raise the temperature of a substance is:
q = m * c * ΔT
where q is the amount of energy, m is the mass of the substance, c is the specific heat, and ΔT is the change in temperature.
We can rearrange this formula to solve for the mass of the metal:
m = q / (c * ΔT)
Substituting the given values, we get:
m = 832 J / (0.466 J/g*C * (71oC - 65oC))
m = 832 J / (0.466 J/g*C * 6oC)
m = 832 J / 2.796 J/g
m = 297.1387678 g
Rounding to five significant figures, the mass of the metal sample is 297.14 g.
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Perform the following
mathematical operation, and
report the answer to the
correct number of significant
figures.
3. 96 x 0. 1159 = [?]
11.1384 with 4 significant figures. The answer is rounded to the fourth significant figure because the number given in the equation, 0.1159, contains 4 significant figures.
What is figures?Figures are visual images or representations used to convey information. They are often used in the sciences, mathematics, engineering, and other technical fields to convey complex data or ideas. Figures can also be used in literature, art, and other creative forms to illustrate stories or themes. Figures can be drawn, photographed, or computer-generated. They are often used to represent statistical information, such as graphs and charts, as well as to illustrate mathematical equations. In the arts, figures can be used to convey a narrative or express an emotion. For example, an artist may use a figure to express the beauty of a landscape or the sorrow of a particular situation. Figures are an effective way to communicate complex concepts and ideas in a concise and visually appealing way.
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How much heat is evolved when 27.5 g of ammonia gas condenses to a liquid at its boiling point?
ahcond = -23.3 kj/mol
The heat evolved when 27.5 g of ammonia gas condenses to a liquid at its boiling point is -37.8 kJ.
First, we need to calculate the amount of heat required for the ammonia gas to condense. The heat of vaporization of ammonia is 23.4 kJ/mol. The molar mass of ammonia is 17.03 g/mol, so we have:
23.4 kJ/mol x (27.5 g / 17.03 g/mol) = 37.8 kJ
This means that 37.8 kJ of heat is required for 27.5 g of ammonia gas to condense. However, since the question asks for the heat evolved, we need to reverse the sign of the answer.
Thus, the amount of heat released as 27.5 grams of gaseous ammonia undergoes condensation at its boiling point is equal to -37.8 kJ.
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<
Based on the texts, both authors would most likely agree with which
statement?
Choose 1 answer:
A
B
Sculpting representations of historical figures was a short-lived
trend.
Lewis's works are varied in the subjects they depict.
The Death of Cleopatra is Lewis's most famous piece.
Lewis's portrait busts have overshadowed her other work.
Based on the texts, both authors would most likely agree that Lewis's works are varied in the subjects they depict.
Option B is correct.
What are Lewis's works?C. S. Lewis FBA has some notable works such as The Chronicles of Narnia, Mere Christianity The Allegory of Love, The Screwtape Letters, The Abolition of Man, The Space Trilogy Till We Have Faces Surprised by Joy: The Shape of My Early Life.
This statement indicates that Edmonia Lewis created works in a range of subjects, which is supported by her sculpting of both historical and contemporary figures, as well as mythological and biblical scenes.
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how can you determine the number of valence electrons in a atom of a representative element?
Answer:To determine the number of valence electrons in an atom of a representative element, you can look at its position on the periodic table. Representative elements are also known as the main group elements and are located in groups 1-2 and 13-18 of the periodic table.
The number of valence electrons in an atom of a representative element is equal to the group number. For example, the elements in group 1 (also known as the alkali metals) have 1 valence electron, while the elements in group 2 (the alkaline earth metals) have 2 valence electrons. The elements in group 13 (the boron group) have 3 valence electrons, and so on, up to group 18 (the noble gases), which have a full set of 8 valence electrons (except for helium, which has only 2).
For example, let's consider the element sodium (Na), which is in group 1. Sodium has 1 valence electron because it is in group 1. Similarly, the element carbon (C), which is in group 14, has 4 valence electrons because it is in group 14.
Knowing the number of valence electrons in an atom is important because it helps to determine the chemical properties and reactivity of the element. Atoms with the same number of valence electrons tend to have similar chemical properties and can form similar types of chemical bonds.
Explanation:
A balloon with 0. 50 L of nitrogen is placed in a freezer at 273 K. What will the new
volume be if the temperature of the balloon is raised to 325 K when removed from the
freezer?
The new volume of the balloon at a temperature of 325 K is approximately 0.59 L.
We use the combined gas law to solve this problem, which relates the pressure, volume, and temperature of the gas;
P₁V₁/T₁ = P₂V₂/T₂
where P is pressure, V is volume, and T temperature.
We know the initial volume (V₁) is 0.50 L and the initial temperature (T₁) is 273 K. We also know that the pressure remains constant, so we can set P₁ = P₂. Finally, we need to find V₂, the new volume at a temperature of T₂ = 325 K.
Substituting these values into the equation, we get;
P₁V₁/T₁ = P₂V₂/T₂
P₁ (0.50 L)/(273 K) = P₂ V₂/(325 K)
Simplifying, we get;
V₂ = (P₁/P₂) × (T₂/T₁) × V₁
We don't know the pressure of the gas, but we know it remains constant, so we can cancel it out;
V₂ = (T₂/T₁) × V₁
Plugging in the numbers, we get:
V₂ = (325 K/273 K) × 0.50 L
V₂ = 0.59 L
Therefore, the new volume of the balloon is 0.59 L.
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The secondary structure of a protein molecule is the_____of the amino acid chains
When your food gets colder while eating, what type of reaction is it?
radioactive
chemical
mechanical
physical
Explanation:
it will be physical feeling cold after eating maybe related to the type of food you're eating even your diet that said extreme body chills your body is directing its energy and relativism and digesting the food you just saying bottom line feeling cold after eating is normal once in a while in some cases it might be a system of medical condition like diabetes or kidney disease
You are given the reaction Cu + HNO3 Right arrow. Cu(NO3)2 + NO + H2O.
Which element is oxidized?
Which element is reduced?
Copper (Cu) is oxidized, and Nitrogen (N) is reduced.
Which element is oxidized and is reduced?The element that is oxidized or reduced is calculated as follows;
Cu + HNO3 → Cu(NO3)2 + NO + H2O
Oxidation is the loss of electrons, whereas reduction is the gain of electrons.
In the given reaction, copper (Cu) is oxidized as it loses two electrons, going from an oxidation state of 0 to +2 in Cu(NO3)2.
On the other hand, nitrogen in HNO3 undergoes a change in oxidation state from +5 to +2, indicating that it has gained three electrons and hence, is reduced to NO.
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During the combustion of propane(C3H8), 197. 4 grams of oxygen gas is consumed. How much water vapor is produced as a result?
197.4 grams of oxygen gas is consumed during the combustion of propane. Using stoichiometry, it is calculated that 88.43 grams of water vapor is produced as a result.
The balanced chemical equation for the combustion of propane is:
C₃H₈ + 5O₂ → 3CO₂ + 4H₂O
From the equation, we can see that for every mole of propane (C₃H₈) consumed, 4 moles of water (H₂O) are produced.
To solve the problem, we need to first find the number of moles of oxygen (O₂) consumed:
Moles of O₂ = Mass of O₂ / Molar mass of O₂
Molar mass of O₂ = 32 g/mol (from the periodic table)
Moles of O₂ = 197.4 g / 32 g/mol
Moles of O₂ = 6.16875 mol
Since the balanced chemical equation shows that 5 moles of O₂ are required for every mole of C₃H₈, we can find the number of moles of C₃H₈ consumed:
Moles of C₃H₈ = Moles of O₂ / 5
Moles of C₃H₈ = 6.16875 mol / 5
Moles of C₃H₈ = 1.23375 mol
Now, we can find the number of moles of H₂O produced:
Moles of H₂O = Moles of C₃H₈ x 4
Moles of H₂O = 1.23375 mol x 4
Moles of H₂O = 4.935 mol
Finally, we can find the mass of H₂O produced:
Mass of H₂O = Moles of H₂O x Molar mass of H₂O
Molar mass of H₂O = 18 g/mol (from the periodic table)
Mass of H₂O = 4.935 mol x 18 g/mol
Mass of H₂O = 88.43 g
Therefore, 88.43 grams of water vapor is produced as a result of the combustion of propane with 197.4 grams of oxygen gas.
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Identify three advantages to using the newer DART system and sensors in Figure
2 compared to the seismometers and coastal tide gauges previously used to
measure tsunami-related events Explain how each of these advantages can
improve predictions in accuracy and timing for future tsunami-related events.
The DART system and sensors have several advantages over seismometers and coastal tide gauges in measuring tsunami-related events. Three advantages are Real-time measurement, Wide coverage and High accuracy.
Real-time measurement: The DART system provides real-time measurements of the height and speed of waves in the open ocean, whereas seismometers and coastal tide gauges only measure the arrival time and amplitude of waves at a specific location. Real-time measurements allow for more accurate and timely predictions of tsunami-related events, enabling earlier warning and faster response times.
Wide coverage: The DART system covers a larger area than seismometers and coastal tide gauges, allowing for more comprehensive monitoring of oceanic waves. The wider coverage allows for more accurate prediction of the direction, speed, and strength of tsunamis, reducing the risk of false alarms and missed warnings.
High accuracy: The DART system is designed to measure the height and speed of waves with high accuracy, providing detailed information on the magnitude and severity of tsunamis. This level of accuracy can improve predictions by providing more precise estimates of the extent of damage and the areas at risk, enabling more effective disaster planning and response.
Overall, the DART system and sensors offer significant advantages over traditional seismometers and coastal tide gauges, providing more accurate and timely predictions of tsunami-related events, enabling faster response times, and reducing the risk of false alarms and missed warnings.
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Which solubility curve on the right best represents the data table on the left?
A solubility curve is a graphical representation of the solubility of a substance in a specific solvent as a function of temperature.
The solubility is typically expressed in grams of solute per 100 grams of solvent. In order to answer the question of which solubility curve on the right best represents the data table on the left, we need to compare the solubility values in the data table with the solubility values on each of the curves.
We can see from the data table that the solubility of the substance increases with temperature, which is a common trend for most substances. As the temperature increases, the solvent molecules move faster, which allows more solute molecules to dissolve.
To compare the data table with the solubility curves, we need to look for the curve that shows an increase in solubility with increasing temperature. We can see that Curve A fits this description. The solubility values on Curve A increase as the temperature increases, just like the data table.
Therefore, we can conclude that Curve A best represents the data table on the left.
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For a 80- g sample of fused copper catalyst, a volume of 7.6×103 mm3 of nitrogen (measured at standard temperature and pressure, 0 ∘c and 1 atm ) is required to form a monolayer upon condensation. calculate the surface area of the catalyst. (take the area covered by a nitrogen molecule as 0.162 nm2 and recall that, for an ideal gas, pv=nrt , where n is the number of moles of the gas.)
Answer:
First, we need to calculate the number of moles of nitrogen gas required to form a monolayer:
n = (pv) / (rt)
where p is the pressure, v is the volume, r is the ideal gas constant, and t is the temperature in Kelvin.
At standard temperature and pressure, we have:
p = 1 atm
v = 7.6×10^3 mm^3 = 7.6×10^-6 m^3
t = 273 K
r = 8.31 J/(mol K)
So, n = (1 atm x 7.6×10^-6 m^3) / (8.31 J/(mol K) x 273 K) = 3.13×10^-7 mol
Next, we can calculate the number of nitrogen molecules in this amount of gas:
N = n x Na
where Na is Avogadro's number (6.02×10^23 molecules/mol).
N = 3.13×10^-7 mol x 6.02×10^23 molecules/mol = 1.88×10^17 molecules
Finally, we can calculate the surface area of the catalyst covered by these molecules:
A = N x a
where a is the area covered by a nitrogen molecule (0.162 nm^2), converted to m^2.
a = 0.162 nm^2 x (10^-18 m^2/nm^2) = 1.62×10^-20 m^2
A = 1.88×10^17 molecules x 1.62×10^-20 m^2/molecule = 3.05×10^-3 m^2
Therefore, the surface area of the catalyst covered by the nitrogen molecules is approximately 3.05×10^-3 m^2.
Assume that a 0.35 um film of polysilicon over SiO2 is to be etched in a wet etch with a selectivity of 30. No more than 50 ? of SiO2 is to be removed. The etch uniformity is 10%. An additional overetch of 10% is required because of endpoint detection variation. (a) Can this be done? If so, what will be the required polysilicon uniformity in %? (Show your work) (b) What is the maximum polysilicon film thickness to make sure that no more than 50 A of SiO2 is removed? (Hint: assume perfectly uniform poly)
(a) To determine if this can be done, we need to calculate the maximum amount of polysilicon that can be etched while keeping the SiO2 removal below 50 Å.
Let's assume the initial thickness of SiO2 is 1000 Å. Since the selectivity is 30, the maximum amount of polysilicon that can be etched is:
50 Å * (1/30) = 1.67 Å
Now, taking into account the overetch of 10%, the total amount of polysilicon that can be etched is:
1.67 Å / (1-0.1) = 1.85 Å
So, we need to etch a maximum of 1.85 Å of polysilicon.
The total thickness of the polysilicon and SiO2 layers is:
0.35 um + 1000 Å = 1350 Å
To find the required polysilicon uniformity, we can use the following equation:
(1 - uniformity) * 0.35 um = 1.85 Å
Solving for uniformity, we get:
uniformity = 1 - (1.85 Å / 0.35 um) = 0.9947 or 99.47%
So, the required polysilicon uniformity is 99.47%.
(b) To find the maximum polysilicon film thickness, we can use the same approach as above.
Let's assume the initial thickness of SiO2 is 1000 Å. The maximum amount of polysilicon that can be etched is:
50 Å * (1/30) = 1.67 Å
The total thickness of the polysilicon and SiO2 layers cannot be less than:
1000 Å + 50 Å + 1.67 Å = 1051.67 Å
So, the maximum polysilicon film thickness is:
1051.67 Å - 1000 Å = 51.67 Å
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It’s due tomorrow and I don’t know how to do it.
What is the molality of 653. grams of ethylene glycol C₂H6O2 in 500. mL of water?
Complete the word equation for making a salt. Metal oxide + → salt + water
Answer:
An acid
Explanation:
a metal oxide e.g NaOH +an acid e.g HCl=>salt e.g NaCl+water
4. if 10.0 moles of naoh are dissolved in water to make 250.0 l of solution, what is the molarity of the
solution?
5. if 80.0 moles of naoh are dissolved in water to make 1.00 liter of solution, what is the molarity of the
solution?
6. if you have 1.00 liter of a 1.0 m solution of nacl, how many moles of nacl were dissolved in the water to
make that solution?
7. if you have 1.0 liter of a 1.00 m solution of nacl, how many moles of nacl were dissolved in the water to
make that solution?
write complete sentences.
8. how would you make 100.0 l of 1.0 m naoh?
If 10.0 moles of NaOH are dissolved in water to make 250.0 l of solution, the molarity of the solution is 0.04 moles
Molarity is defined as the number of moles of solute present in 1 litre of a solution. It is denoted by M and the formula is represented as
Molarity = number of moles of solute/ volume of the solution in L
According to given data
Number of moles of solute = 10 moles
volume of the solution = 250 L
Therefore, molarity = 10 moles/250 L
molarity = 0.04 moles.
Thus, molarity of the solution is 0.04 moles.
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How is the (Delta)Hfusion used to calculate volume of liquid frozen that produces 1 kJ of energy?
Delta Hfusion is a term used in thermodynamics to refer to the amount of energy that is required to convert a substance from its solid state to its liquid state, or vice versa, at a constant pressure. This energy is typically expressed in terms of Joules per unit mass, such as J/g or kJ/kg.
To calculate the volume of liquid that is frozen, we first need to determine the amount of mass that is required to produce 1 kJ of energy. This can be calculated using the equation:
q = m * Delta Hfusion
where q is the amount of energy produced (in J), m is the mass of the substance being frozen (in kg), and Delta Hfusion is the amount of energy required to freeze the substance (in J/kg). Rearranging this equation to solve for m, we get:
m = q / Delta Hfusion
Substituting the values of q = 1 kJ and Delta Hfusion (which is a known value for the substance being frozen), we can calculate the mass of the substance required to produce 1 kJ of energy. Once we know the mass, we can use the density of the substance to calculate the volume of liquid that is frozen.
For example, let's say we are trying to freeze water to produce 1 kJ of energy. The Delta Hfusion of water is 333.6 kJ/kg. Using the equation above, we can calculate the mass of water required to produce 1 kJ of energy:
m = (1 kJ) / (333.6 kJ/kg) = 0.003 kg
Next, we can use the density of water (which is approximately 1000 kg/m^3) to calculate the volume of water that is frozen:
Volume = mass / density = 0.003 kg / 1000 kg/m^3 = 0.000003 m^3
So, the volume of water that is frozen to produce 1 kJ of energy is approximately 0.000003 cubic meters, or 3 milliliters.In summary, we can use the Delta Hfusion of a substance, along with its density, to calculate the volume of liquid that is frozen to produce a certain amount of energy.
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What is the molarity of the solution made by dissolving 15.1 g of solid naf in water and diluting it to a final
volume of 550.0 ml?
The molarity of the solution is 0.5 M.
To calculate the molarity of the solution, we need to first calculate the number of moles of NaF present in the solution. The molar mass of NaF is 41.99 g/mol (22.99 g/mol for Na and 19.00 g/mol for F).
Number of moles of NaF = mass of NaF / molar mass of NaF
= 15.1 g / 41.99 g/mol
= 0.359 mol
The volume of the solution is given as 550.0 mL, which needs to be converted to liters (L) as the unit of molarity is moles/L.
Volume of the solution = 550.0 mL = 0.5500 L
Molarity of the solution = number of moles of solute / volume of solution
= 0.359 mol / 0.5500 L
= 0.653 M
However, we need to consider that the NaF was diluted to a final volume of 550.0 mL, which means that the concentration of the solution has been decreased. Therefore, we need to divide the calculated molarity by 2.
Molarity of the solution after dilution = 0.653 M / 2
= 0.5 M
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Heterocyclic aromatic compounds undergo electrophilic aromatic substitution in a similar fashion to that undergone by benzene with the formation of a resonance-stabilized intermediate.
That statement "Heterocyclic aromatic compounds undergo electrophilic aromatic substitution in a similar fashion to that undergone by benzene with the formation of a resonance-stabilized intermediate." is generally true.
Heterocyclic aromatic compounds, like benzene, contain a ring of atoms with alternating double bonds (pi bonds) and exhibit delocalized pi electrons that are responsible for their aromaticity.
Electrophilic aromatic substitution is a common reaction for these types of compounds, where an electrophile is attracted to the electron-rich ring and substitutes for one of the hydrogen atoms.
The resulting intermediate is a resonance-stabilized carbocation, just like in the case of benzene.
However, the reactivity and selectivity of heterocyclic aromatic compounds may differ from that of benzene due to differences in the electronic properties of the heteroatom(s) in the ring and their effect on the ring's electron density.
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A solution is 5 mM in each of the following ions:
number ion Ksp of M(OH)2
1 Mg2+ 1. 8e-11
2 Cd2+ 2. 5e-14
3 Co2+ 1. 6e-15
4 Zn2+ 4. 4e-17
5 Cu2+ 2. 2e-20
Indicate which of the metal ions would precipitate (or start to precipitate) at each of the following pH values. Indicate your answer with the number of the ion. Use 0 to indicate no precipitate. If more than one precipitate is expected, list the numbers in increasing order and separate them with commas. For example, 3,4,5 is ok but 5,4,3 is not.
pH = 6. 00: _______________? (1,2,3,4,5 list all that apply?)
pH = 8. 00: __________? (1,2,3,4,5 list all that apply?)
What is the pH to the nearest 0. 1 pH unit at which Cu(OH)2 begins to precipitate? pH = ______?
pH = 6.00: 0, 1, 2, 3, 4, 5 will not precipitate.
pH = 8.00: 0, 1, 2, 3, 4, 5 will not precipitate.
To determine the pH at which Cu(OH)₂ begins to precipitate, we need to calculate the hydroxide ion concentration at which the product of [Cu²⁺] and [OH⁻]² reaches the Ksp value of Cu(OH)₂ (2.2e⁻²⁰). At this point, Cu(OH)₂ will begin to precipitate. Thus, we have:
Ksp = [Cu²⁺][OH⁻]²2.2e⁻²⁰ = (5e⁻³ M)[OH⁻]²[OH⁻]² = 4.4e⁻¹⁷[OH⁻] = 2.1e⁻⁸ MpOH = -log[OH⁻] = -log(2.1e⁻⁸) = 7.68pH = 14 - pOH = 6.32 (rounded to the nearest 0.1 pH unit)Therefore, Cu(OH)₂ begins to precipitate at a pH of 6.3.
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Dugongs are animals that live in the ocean and eat underwater grasses. The sun is shining on the shallow ocean water where the grasses and dugongs live. What is happening to the carbon in the water around the grasses and the dugongs? Is carbon moving into the water, moving out of the water, or both? Carbon is not moving into the water; it is only moving out of the water. With this information, there is no way to know for sure. Carbon is moving into the water and out of the water, at the same time. Carbon is only moving into the water; it is not moving out of the water
Both processes (photosynthesis and respiration) occur simultaneously, resulting in carbon moving into and out of the water around the grasses and dugongs.
Regarding the carbon in the water around the grasses and the dugongs, carbon is moving into the water and out of the water, at the same time. Here's a step-by-step explanation:
1. Photosynthesis: The underwater grasses, being plants, utilize sunlight for photosynthesis. During this process, they absorb carbon dioxide (CO₂) from the water and convert it into carbohydrates, thereby taking in carbon.
2. Respiration: Both the underwater grasses and the dugongs perform cellular respiration. In this process, they consume carbohydrates and release carbon dioxide back into the water, contributing to the movement of carbon out of the water.
So, both processes (photosynthesis and respiration) occur simultaneously, resulting in carbon moving into and out of the water around the grasses and dugongs.
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Determine the pressure change when a constant volume of gas at 2.50
atm is heated from 30.0 °C to 40.0 °C.
Answer:
0.08 atm
Explanation:
The pressure change of a gas at constant volume can be determined using the ideal gas law:
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 in Kelvin.
Since the volume is constant, we can simplify the ideal gas law to:
P = (nRT) / V
The number of moles and the gas constant are constant for a given sample of gas, so we can further simplify to:
P1 / T1 = P2 / T2
Where P1 and T1 are the initial pressure and temperature, and P2 and T2 are the final pressure and temperature.
Plugging in the given values:
P1 = 2.50 atm
T1 = 30.0 + 273.15 = 303.15 K
T2 = 40.0 + 273.15 = 313.15 K
P2 = (P1 * T2) / T1
P2 = (2.50 atm * 313.15 K) / 303.15 K
P2 = 2.58 atm
Therefore, the pressure change when a constant volume of gas at 2.50 atm is heated from 30.0 °C to 40.0 °C is 0.08 atm (2.58 atm - 2.50 atm).
Answer:
Explanation: 0.08
Which substance is always produced in the reaction between hydrochloric acid and sodium hydroxide.
The reaction between hydrochloric acid ([tex]HCl[/tex]) and sodium hydroxide ([tex]NaOH[/tex]) is a classic example of an acid-base neutralization reaction. In this reaction, the hydrogen ions ([tex]H+[/tex]) in the acid react with the hydroxide ions ([tex]OH-[/tex]) in the base to form water ([tex]H2O[/tex]) and a salt, which in this case is sodium chloride ([tex]NaCl[/tex]).
The balanced chemical equation for the reaction is:
[tex]HCl(aq) + NaOH(aq) → NaCl(aq) + H2O(l)[/tex]
So, the substance that is always produced in the reaction between hydrochloric acid and sodium hydroxide is water and a salt, which is sodium chloride. This reaction is exothermic and the heat released during the reaction can be used to increase the temperature of the solution.
This reaction is widely used in the chemical industry for various applications such as neutralizing acidic waste, producing table salt, and in the production of soap and detergents.
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If an alveolus with an initial volume of 3 ml of air with a total pressure of 760 mmhg decreases in volume to 2 ml, what would the new pressure be and in which direction would air flow? assume you are at sea level.
The new pressure be and in which direction would air flow is 1140 mmHg.
Using Boyle's law, we know that the pressure and volume of a gas are inversely proportional. Therefore, if the volume of the alveolus decreases from 3 ml to 2 ml, the pressure inside the alveolus will increase by a factor of 3/2 or 1.5 times. The new pressure inside the alveolus will be 760 mmHg x 1.5 = 1140 mmHg.
According to the principles of gas flow, air moves from an area of higher pressure to an area of lower pressure. Therefore, in this scenario, air would flow out of the alveolus since the pressure inside the alveolus (1140 mmHg) is now higher than the atmospheric pressure outside the body (760 mmHg).
It's important to note that this scenario assumes that all other factors affecting the pressure inside the alveolus, such as temperature and the number of gas molecules, remain constant.
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In a boiling pot of water are a metal spoon and a wooden spoon of equal masses/size. Which spoon would likely be more painful (higher in temperature) to grab? Assume that both spoons have been in the same pot of boiling water for the same amount of time. Explain this phenomena using the following terms: Heat, Mass, Temperature, Specific Heat Capacity, Heat Flow. Consider all possible factors in your explanation
When we place a metal spoon and a wooden spoon of equal masses/size in a boiling pot of water for the same amount of time, the metal spoon would likely be more painful to grab than the wooden spoon. This is because of the differences in their specific heat capacities.
Specific heat capacity is the amount of heat required to raise the temperature of a substance by 1 degree Celsius per unit mass. Metals have a lower specific heat capacity than wood, which means that they require less heat to increase their temperature than wood does.
As a result, the metal spoon would heat up more quickly than the wooden spoon in the boiling water.
Heat flow is the transfer of thermal energy from one object to another due to a temperature difference between them. In this case, heat flows from the boiling water to the spoons. The metal spoon would conduct heat better than the wooden spoon due to its higher thermal conductivity.
This means that the metal spoon would transfer heat more quickly from the boiling water to your hand, making it more painful to grab.
Mass is also a factor to consider as it affects the amount of heat absorbed by the spoons. However, since the spoons have equal masses, mass does not play a significant role in this scenario.
In summary, the metal spoon would likely be more painful to grab because it has a lower specific heat capacity and higher thermal conductivity than the wooden spoon, which causes it to heat up more quickly and transfer heat more efficiently from the boiling water to your hand.
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Suppose digital technology, gold jewelry, and paper money caused the need for silver to no longer exist. would silver still be considered an ore? discuss
Yes, silver would still be considered an ore even if its demand and usage in digital technology, gold jewelry, and paper money decreased to the point of non-existence. Silver is a naturally occurring metallic element that is found in various ores, and its classification as an ore is based on its physical and chemical properties, regardless of its market demand. Therefore, even if the uses of silver in various industries decline, it would still be classified as an ore.
An ore is a naturally occurring mineral or rock containing valuable substances, typically metals, that can be extracted through mining and processed for various purposes. Even if the demand for silver decreases due to digital technology, gold jewelry, and paper money, it would not change the fact that silver is a naturally occurring material containing a valuable metal. The classification of silver as an ore is independent of its current or potential use in human activities.
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Many smoke detectors use americium-241 to detect very small particulates in the air. This is done by using a stream of radioactive
particles that can be stopped by the small smoke particulate. Which type of radiation is MOST LIKELY used in a smoke detector, as
it can be stopped by something this small?
The type of radiation most likely used in a smoke detector is alpha radiation.
Alpha radiation is used in smoke detectors because it can be easily stopped by small smoke particles. Americium-241, a radioactive element, emits alpha particles which ionize the air, creating a small electric current. When smoke enters the detector, it absorbs the alpha particles, disrupting the current and triggering the alarm.
Alpha radiation is ideal for this application as it has a low penetration power, meaning even small particulates like smoke can stop its travel, ensuring the detector's sensitivity to smoke. Additionally, alpha radiation poses a minimal risk to human health when contained properly within the device.
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What set of coefficients will balance the chemical equation below:
___C3H8 (g) + ___O2 (g) ___CO2 (g) + ___H2O (l)
A. 1,5,3,4
B. 3,2,2,2
C. 1,3,3,1
D. 2,10,6,8
Set of coefficients that will balance the chemical equation is: A. 1,5,3,4
What is combustion?Combustion is a chemical reaction that occurs when fuel combines with oxidant to produce heat and light. The fuel is a hydrocarbon, such as methane or propane, while oxidant is oxygen from the air. During combustion, hydrocarbon is oxidized to produce carbon dioxide and water vapor, releasing energy in form of heat and light.
The balanced chemical equation for the combustion of propane is: C₃H₈ (g) + 5O₂ (g) → 3CO₂ (g) + 4H₂O (l)
So the correct set of coefficients to balance equation is option A: 1, 5, 3, 4.
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