What is the mass of one mole of titanium atoms

Answers

Answer 1

Answer:

47.88 g

Explanation:

The atomic mass of titanium is 47.88 amu or 47.88 g/mol

it means,

one mole of titanium =  47.88 g


Related Questions

Write a balanced chemical equation for the reaction of copper(II) sulfate and concentrated ammonia to produce teramine copper(II) sulfate.

Answers

Final answer:

The balanced chemical equation is CuSO4 + 4NH3 -> [Cu(NH3)4]SO4.

Explanation:

The balanced chemical equation for the reaction of copper(II) sulfate and concentrated ammonia to produce teramine copper(II) sulfate is:



CuSO4 + 4NH3 → [Cu(NH3)4]SO4



In this reaction, copper(II) sulfate (CuSO4) reacts with concentrated ammonia (NH3) to produce teramine copper(II) sulfate. The reaction forms a complex compound with the coordination number of copper changed from 2 to 4.

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If an object is than water, it will float. If it is than water, it will sink.

Answers

Answer: you should realize that if an object weighs more than an equal volume of water, it is more dense and will sink, and if it weighs less than an equal volume of water, it is less dense and will float. Remember that the density of water is about 1 g/cm3.

Explanation:

1) less dense

2) more dense

hope this helps bebe :)

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How does good preparation help you stay safe when conducting a science experiment?

Answers

It ensures you get the results you want from your experiment
Hope this helps!

Answer:

The answer is B

Explanation:

The answer B talks about precautions, which you would have to know if you want to be safe during a science experiment, so I believe that is the best option.

Hope this helps brother :-)

if on an average you inhale once every three seconds exactly how many times do you inhale in a 24 hour day

Answers

Answer:

28,800

Explanation:

First convert hours to minutes.

60 minutes in an hour so: 24 x 60 = 1,440 (mins)

Second convert minutes to seconds.

60 seconds in a minute so: 1,440 x 60 = 86,400

Divide 86,400 by three. For every three seconds, you inhale once; 3:1 ratio.

86,400/3 = 28,800

This gives us our final answer. You inhale approximately 28,800 times in a 24 hour day.

what is the density of a 10 kg mass of water when 1 kg mass of water has a density of 1 g/cm3

Answers

Answer:

The same density is an intrinsic property. A property that that does not depend on the amount.

Explanation:

The density of this 10 kg mass of water is [tex]10 \;g/cm^3[/tex]

Let the first water be A.Let the second water be B.

Given the following data:

Mass of A = 10 kgMass of B = 1 kgDensity of B = [tex]1 \;g/cm^3[/tex]

To find the density of A;

First of all, we would find the volume for this density.

[tex]Volume = \frac{Mass}{Density}\\\\Volume = \frac{1}{1}\\\\Volume = 1 \;cm^3[/tex]

Now, we can find the density of A;

[tex]Density = \frac{10}{1}[/tex]

Density of A = [tex]10 \;g/cm^3[/tex]

Therefore, the density of this 10 kg mass of water is [tex]10 \;g/cm^3[/tex]

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Which of the following forces can make a ball move?

A- A balanced force
B- An unbalanced force
C- Equal and opposite forces along a horizontal plane
D- Equal and opposite forces along a vertical plane

Answers

Answer:

The answer for this question would be B- An unbalanced force

Answer:

the answer is b

Explanation: I'm guessing

Describe an experiment that could further explore physical or chemical change.

Answers

The experiment titled "Investigating the Chemical Reaction between Baking Soda and Vinegar" explores the chemical change that occurs when baking soda (sodium bicarbonate) reacts with vinegar (acetic acid).

The experiment with physical or chemical change

The objective is to observe the production of carbon dioxide gas and understand the resulting reaction. A balloon filled with baking soda is placed over a container of vinegar, and the baking soda is allowed to mix with the vinegar.

This causes a chemical reaction to take place, leading to the release of carbon dioxide gas. The balloon inflates due to the gas, and observations are made regarding the appearance, sounds, and size changes of the balloon.

The experiment demonstrates that the reaction between baking soda and vinegar creates new substances, indicating a chemical change. The experiment offers a hands-on way to learn about chemical reactions and their outcomes.

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Define inference and explain how it is used to form conclusions

Answers

Guess on information you already had

Which of the following statements is true?

Sound waves create areas of high and low pressure.
Areas of high pressure are called compressions.
Areas of low pressure are called rarefactions.
All of the above.

Answers

Answer:

c

Explanation:

Answer:

A

Explanation:

The term "precision" BEST refers to which of the following?


A) whether or not a measurement is correct

B) how “close together” a seat of measurements is

C) whether or not a tool for making measurements is useful

D) how close a measurement is to an accepted value for measurement

Answers

Answer:

A.

Explanation:

the term precision refers to something that is has the most quality or good condition, being precise and exact.

Answer: The answer is B

Explanation:

This is because precision refers to how close two or more measurements are to each other.

How do you write the compound Mg3N2? Are Roman numerals included as well? ​

Answers

Answer:

It is written exactly like that; Mg3N2

Explanation:

Roman numerals are used sometimes to show the charge of an ion that can be multiple charges.

Final answer:

The compound Mg3N2 is magnesium nitride, a binary ionic compound without Roman numerals in its formula; Roman numerals are used for metals with variable charges, not for those like magnesium with a fixed charge.

Explanation:

The compound Mg3N2 is known as magnesium nitride, which is a binary ionic compound. When writing chemical formulas for such compounds, you write the metal ion with its charge, followed by the nonmetal ion with its charge. Magnesium has a charge of +2 and nitrogen has a charge of -3. However, no Roman numerals are included in the formula Mg3N2 because magnesium has a fixed oxidation state of +2 and does not require indicating its charge through Roman numerals, unlike transition metals with variable charges. Roman numerals are used when naming ionic compounds of cations with variable charges such as iron in iron(II) chloride or iron(III) oxide.

If you added 15,000 calories to 2.0 L of water that was at 25.0 degrees C, what temperature would it be at when you finished?

Answers

Answer:

When we finish, the temperature would be 32.5℃

Explanation:

Density of water = mass/volume

So,

Mass of water = Density × Volume

[tex]\\\\$=1.0   \times  2.0 L$\\\\$=1.0 \frac{g}{m L} \times 2000 m L$\\\\$\quad=2000 g$[/tex]

[tex]$Q=m \times c \times \Delta T$[/tex]

where

[tex]\Delta T[/tex] = Final T - Initial T

Q is the heat energy in calories

c is the specific heat capacity (for water 1.0  cal/(g℃))  

m is the mass of water

plugging in the values  

[tex]$15000 \mathrm{Cal}=2000 \mathrm{g} \times 1.0 \frac{\mathrm{cal}}{\mathrm{g}^{\circ} \mathrm{C}} \times \Delta T$[/tex]

[tex]\\$\Delta T=\frac{15000 \mathrm{cal}}{2000 \mathrm{g} \times \frac{1.0 \mathrm{cal}}{g^{\circ} \mathrm{C}}}$\\\\$\Delta T=7.5^{\circ} \mathrm{C}$[/tex]

Final T = ∆T + Initial T

= 7.5℃ + 25℃ = 32.5℃ (Answer).

What is the chemical equation for photosynthesis

Answers

Answer:

The Photosynthesis Equation. The photosynthesis equation is as follows: 6CO2 + 6H20 + (energy) → C6H12O6 + 6O2 . Hope this helps you! :)

Which of the following is an example of a Chemical reaction that you've seen in your everyday life?

Salt dissolving

Ice melting

Water freezing

Fire burning

Answers

Answer:

The answer Is fire burning, because the wood being burned is changing to carbon

Answer:

fire burning

After recording the data for five repeated trials you should calculate the average of five values and report that average in your lab report

Answers

Answer:

The statement given is true.

Explanation:

When we conduct an experiment we have to record the outcomes and maintain a log so that we can know number for later purposes, where the experiment is going and what conclusions we can expect.

To get the final answer or number the five outcomes that have been recorded here have to be averaged to get one value, this value would show  where the outcome’s value will lie.

The sink-float method is often used to identify the type of glass material found at crime scenes by determining its density.
Several different types of glass of known density are placed into solutions of varying densities. Determine whether each glass
piece will sink, float, or do neither when immersed in the given solution.
Glass that will sink
Glass that will float
Glass that will not sink or float
alkali zinc borosilicate with a density of
2.57 g/mL in a solution with a density
of 2.46 g/mL
soda borosilicate with a density of 2.27 g/mL
in a solution with a density of 2.62 g/mL
alkali strontium with a density of 2.26 g/mL in
a solution with a density of 2.34 g/mL
potash borosilicate with a density of
2.16 g/mL in a solution with a density
of 2.16 g/mL
potash soda lead with a density of 3.05 g/mL
in a solution with a density of 1.65 g/mL
Answer Bank
terms of use
contac

Answers

Answer:

Glass that will sink

alkali zinc borosilicate with a density of 2.57 g/mL in a solution with a density of 2.46 g/mL

potash soda lead with a density of 3.05 g/mL in a solution with a density of 1.65 g/mL

Glass that will float

soda borosilicate with a density of 2.27 g/mL in a solution with a density of 2.62 g/mL

alkali strontium with a density of 2.26 g/mL in a solution with a density of 2.34 g/mL

Glass that will not sink or float

potash borosilicate with a density of 2.16 g/mL in a solution with a density of 2.16 g/mL

Explanation:

Density is the property of matter that states the ratio of the amount of matter, its mass, to the space occupied by it, its volume.

So, the mathematical expression for the density is:

density = mass / volume

By comparing the density of a material with the density of a liquid, you will be able to determine whether object will float, sink, or do neither when immersed in the liquid.

The greater the density of an object the more it will try to sink in the liquid.

As you must have experienced many times an inflatable ball (whose density is very low) will float in water, but a stone (whose denisty is greater) will sink in water.

The flotation condition may be summarized by:

When the density of the object < density of the liquid, the object will floatWhen the density of the object = density of the liquid: the object will neither float nor sinkWhen the density of the object > density of the liquid: the object will sink.

Glass that will sink

alkali zinc borosilicate with a density of 2.57 g/mL in a solution with a density of 2.46 g/mL, because 2.57 > 2.46.

potash soda lead with a density of 3.05 g/mL in a solution with a density of 1.65 g/mL, because 3.05 > 1.65.

Glass that will float

soda borosilicate with a density of 2.27 g/mL in a solution with a density of 2.62 g/mL, because 2.27 < 2.62.

alkali strontium with a density of 2.26 g/mL in a solution with a density of 2.34 g/mL, because 2.26 < 2.34.

Glass that will not sink or float

potash borosilicate with a density of 2.16 g/mL in a solution with a density of 2.16 g/mL, because 2.16 = 2.16
Final answer:

The sink-float method is used to identify the type of glass by determining its density. Glass with higher density sinks, glass with lower density floats, and glass with equal density neither sinks nor floats. The given examples demonstrate different outcomes based on the densities of the glass and the solutions.

Explanation:

The sink-float method is commonly used to identify the type of glass by determining its density. If the density of the glass is higher than the density of the solution it is immersed in, it will sink. If the density of the glass is lower than the density of the solution, it will float. If the density of the glass is equal to the density of the solution, it will neither sink nor float but stay suspended in the solution.

In the given examples:

The alkali zinc borosilicate with a density of 2.57 g/mL will sink in a solution with a density of 2.46 g/mL.The soda borosilicate with a density of 2.27 g/mL will float in a solution with a density of 2.62 g/mL.The alkali strontium with a density of 2.26 g/mL will neither sink nor float in a solution with a density of 2.34 g/mL.The potash borosilicate with a density of 2.16 g/mL will neither sink nor float in a solution with a density of 2.16 g/mL.The potash soda lead with a density of 3.05 g/mL will sink in a solution with a density of 1.65 g/mL.

All gases listed are at the same pressure. Which gas will most closely approach ideal behaviour?

A ammonia at 100K
B ammonia at 500K
C neon at 100K
D neon at 500K
tell me the answer and explain well

Answers

Final answer:

Neon at 500K (Option D) will most closely approach ideal behavior because at this high temperature, its weak dispersion forces are easily overcome, allowing it to behave more like an ideal gas.

Explanation:

The key to determining which gas most closely approaches ideal behavior is to consider both the intermolecular forces and the conditions of temperature and pressure. Real gases deviate from ideal behavior under conditions of high pressure and low temperature because these conditions allow the volume and intermolecular forces of the gas particles to no longer be negligible. Therefore, a gas will behave more ideally at higher temperatures and lower pressures, where the kinetic energy of the gas particles is high enough to overcome intermolecular attractions.

In this case, even though all gases are at the same pressure, the temperature is different. Ammonia is a polar molecule with stronger intermolecular forces, specifically hydrogen bonding. In contrast, neon is a noble gas with very weak dispersion forces due to its non-polarity and small atomic size. Given the choices, neon at 500K (Option D) will most closely exhibit ideal behavior because the high temperature would provide sufficient kinetic energy to overcome the already weak dispersion forces between its atoms.

Which property could be used to identify an unknown substance?

Answers

By using Physical properties unknown substance can be identified as it involves determination of a substance with out changing their composition or property include color, odor, taste, density, melting point etc.

What are the difference between physical and chemical property ?

Chemical properties can be observed or measured when a substance undergoes any type of changes chemically while Physical properties can be observed without changing anything.

In chemical property, chemical reaction is conducted to show the property of the substance while in physical property No chemical reaction occur.

Chemical properties related to chemical bonds while Physical properties do not have such a relationship.

Chemical properties include radioactivity, toxicity, flammability, heat of combustion,  etc. while physical properties include Molecular weight, boiling point, melting point, freezing point, volume, mass, length, density shape, solubility, etc.

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Final answer:

Chemists identify unknown substances by observing and measuring their physical and chemical properties, such as color, mass, and melting point, and comparing them to known values or by noting the chemical changes that they undergo.

Explanation:

To identify an unknown substance, chemists use various properties that can be observed or measured. Among these properties are physical properties like color, state (solid, liquid, or gas), mass (which is related to weight), and texture. Then there are chemical properties which can be discerned through chemical changes that the substance undergoes to produce new matter, as in the case of rust formation from iron, oxygen, and water. To determine if the substance is organic or inorganic, scientists may look for the presence or absence of carbon-based compounds.

Specific laboratory techniques like measuring the melting point can also be used to identify substances. By comparing the melting point of an unknown to literature values, and perhaps mixing a sample with a known substance and retesting, accurate identification can be achieved. If the melting point remains sharp and similar to the literature values, the unknown is likely correctly identified.

In a practical scenario using available lab equipment, such as a laser or ray box and a reference guide of optical properties, a substance's refractive index or how it bends light, might be used for identification. Therefore, physical and chemical properties serve as the basis for identifying unknown substances in chemistry.

One of the compounds used to increase the octane rating of gasoline is toluene (pictured). Suppose 43.3 mL of toluene (d = 0.867 g/mL) is consumed when a sample of gasoline burns in air. How many grams of oxygen are needed for complete combustion of the toluene? (a) How many grams of oxygen are needed for complete combustion of the toluene? g (b) How many total moles of gaseous products form? mol (c) How many molecules of water vapor form?

Answers

Answer:

(A)

Density = Mass / Volume

So  

Mass = Density × Volume

[tex]= 0.867 g/mL \times 43.3mL = 37.5411 g Toluene[/tex]

[tex]1C_6 H_5 CH_3  + 9 O_2  > 7 CO_2  + 4 H_2 O[/tex]

Mole ratio of toluene : Oxygen is 1 : 9

[tex]$37.5411 g \text { Toluene } \times \frac{1 \text {mol} \text {toluene}}{92 g \text { toluene}} \times \frac{9 {mol} O_{2}}{1 \text {mol} \text { toluene }} \times \frac{32 g O_{2}}{1 {mol} O_{2}}=117 g O_{2}(\text {Answer})$[/tex]

(B)

1 mole of Toluene produces 7 moles of [tex]CO_2[/tex] gas and 4 moles of [tex]H_2 O[/tex] Vapour

So the mole ratio is 1 : 11

[tex]37.5411 g Toluene $\times \frac{1 \text { mol toluene }}{92 g \text { toluene }} \times \frac{11 \mathrm{mol} \text { gas }}{1 \text { mol toluene }} $$\\\\=4.49 \text { mol gaseous products (Answer) } $[/tex]

(C)

1mole contains [tex]6.022\times10^{23}[/tex] molecules

[tex]37.5411 g Toluene $\times \frac{1 \text { mol toluene }}{92 g \text { toluene}} \times \frac{4 \mathrm{mol} \mathrm{H}_{2} \mathrm{O}}{1 \mathrm{mol} \text { toluene }} \times \frac{6.022 \times 10^{23} \text { molecules } \mathrm{H}_{2} \mathrm{O}}{1 \mathrm{mol} \mathrm{H}_{2} \mathrm{O}} $\\\\$=9.82 \times 10^{23} \text { molecules } \mathrm{H}_{2} \mathrm{O} \text { (Answer) } $[/tex]

A. The mass of oxygen needed for complete combustion of the toluene is 117.52 g.

B. The total mole of gaseous products formed is 4.488 moles

C. The number of molecules of water vapor formed is 9.82×10²³ molecules

We'll begin by calculating the mass of toluene. This can be obtained as follow:

Volume = 43.3 mL

Density = 0.867 g/mL

Mass of toluene =?

Mass = Density × Volume

Mass of toluene = 0.867 × 43.3

Mass of toluene = 37.5411 g

Next, we shall write the balanced equation for the reaction.

C₆H₅CH₃ + 9O₂ —> 7CO₂ + 4H₂O

Next, we shall determine the masses of C₆H₅CH₃ and O₂ that reacted from the balanced equation

C₆H₅CH₃ + 9O₂ —> 7CO₂ + 4H₂O

Molar mass of C₆H₅CH₃ = (6×12) + (1×5) + 12 + (3×1) = 92 g/mol

Mass of C₆H₅CH₃ from the balanced equation = 1 × 92 = 92 g

Molar mass of O₂ = 2 × 16 = 32 g/mol

Mass of O₂ from the balanced equation = 9 × 32 = 288 g

SUMMARY:

From the balanced equation above,

92 g of C₆H₅CH₃ reacted with 288 g of O₂

A. Determination of the mass of O₂ needed for the complete combustion of the toluene

From the balanced equation above,

92 g of C₆H₅CH₃ reacted with 288 g of O₂.

Therefore,

37.5411 g of C₆H₅CH₃ will react with = (37.5411 × 288)/92 = 117.52 g of O₂

Thus, 117.52 g of O₂ is needed for the reaction.

B. Determination of the total number of mole of the gaseous products formed

We'll begin by calculating the number of mole of in 37.5411 g of C₆H₅CH₃

Molar mass of C₆H₅CH₃ = 92 g/mol

Mass of C₆H₅CH₃ = 37.5411 g

Mole of C₆H₅CH₃ =?

Mole = mass / molar mass

Mole of C₆H₅CH₃ = 37.5411 / 92

Mole of C₆H₅CH₃ = 0.408 mole

Next, we shall determine the mole of CO₂ produced.

C₆H₅CH₃ + 9O₂ —> 7CO₂ + 4H₂O

From the balanced equation above,

1 mole of C₆H₅CH₃ produced 7 moles of CO₂

Therefore,

0.408 mole of C₆H₅CH₃ will produce = 0.408 × 7 = 2.856 moles of CO₂

Next, we shall determine the mole of H₂O produced.

C₆H₅CH₃ + 9O₂ —> 7CO₂ + 4H₂O

From the balanced equation above,

1 mole of C₆H₅CH₃ produced 4 moles of H₂O

Therefore,

0.408 mole of C₆H₅CH₃ will produce = 0.408 × 4 = 1.632 moles of H₂O

Finally, we shall determine the total moles of the gaseous products

Mole of CO₂ produced = 2.856 moles

Mole of H₂O produced = 1.632 moles

Total mole = 2.856 + 1.632

Total mole = 4.488 moles

Therefore, the total number of mole of the gaseous products formed is 4.488 moles

C. Determination of the number of molecules of water vapor formed.

From Avogadro's hypothesis,

1 mole of water = 6.02×10²³ molecules

Therefore,

1.632 moles of water = 1.632 × 6.02×10²³

1.632 moles of water = 9.82×10²³ molecules

Thus, the number of molecules of water vapor formed is 9.82×10²³ molecules

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Jim, Jane, Ann, and Bill measure an object's length, density, mass, and volume, respectively.
Which student's measurement might be in kilograms?

Answers

Final answer:

Jim, who measures mass, may use kilograms, an appropriate unit for objects with considerable mass like textbooks. Smaller items, like bananas, would be measured in grams, while milligrams are used for very tiny masses in scientific settings.

Explanation:

The student whose measurement might be in kilograms is Jim, who measures mass. Kilograms are the appropriate unit for measuring objects with considerable mass, such as textbooks or humans. For example, a textbook has a mass of about a kilogram. In contrast, grams would be more suitable for measuring smaller objects like a banana, since a banana's mass is typically around 120 grams - far less than a kilogram. Milligrams are even smaller units, which would not be practical for everyday objects as they are usually used to measure tiny quantities, as might be done by scientists in a lab. In learning environments, balances or scales are used to measure mass, which can range from small milligrams up to a few kilograms.

To choose the appropriate tool for following measurements: 1. The volume of a water balloon would be measured using a measuring cup or another volumetric tool. 2. The length of a basketball court would be measured using a measuring tape or a laser distance meter. 3. The weight of an apple is most conveniently measured using a kitchen scale, which would likely display in grams. 4. The volume of a milk carton could be indicated on the carton but could also be measured using a graduated cylinder or measuring jug.

Macy always thought there were only a few hair colors:blond,brown,and black. However,when she actually began looking around, she saw varying shades of these hair colors. What is a possible reason for so many different hair colors

Answers

Final answer:

There is a multitude of hair colors due to variations in melanin (eumelanin and pheomelanin) which are produced by melanocytes. These variations are genetically determined and influenced by multiple genes, resulting in a broad spectrum of hair shades.

Explanation:

The reason for the many different hair colors we see is primarily due to the pigmentation of hair follicles caused by two types of melanin: eumelanin and pheomelanin. The presence of more eumelanin leads to darker hair, while less eumelanin results in lighter hair. The levels and ratios of these pigments can change over time, which can cause a person's hair color to change. Furthermore, hair color can also vary between individuals due to the diverse genetic factors that determine the type and quantity of melanin produced by melanocytes. Hair color is an example of a polygenic trait, meaning it's controlled by multiple genes, such as MC1R, TYR, TYRP1, SLC24A5, and KITLG. Instead of being a simple black, brown, or blond, hair color encompasses a wide spectrum that can include various shades and hues, influenced by genetic variability and genetic penetration.

how many significant figures are in the measurement 40,500 mg?

a) two
b) three
c) four
d) five​

Answers

b) three

this is because all integers are sig figs, and all numbers between integers are sig figs. This makes the 40,5 part of 40,500 significant. Place holder zeroes that are not after a decimal are not significant, so the last two zeroes of the number are not significant.

The correct option to the question is option (b).

To find:

Number of significant figures = ?

Significant figures are defined as the figures that are present in a number. It expresses the magnitude of a quantity to a specific degree of accuracy.

Some rules to detect the significant figures in a number are as follows:

All digits ranging from 1 to 9 are always considered significant.Every non-zero number is always considered significant.All zero’s that are present between the integers is always considered significant.All zero’s preceding the first integer is never considered significant.All zeros that are present after the decimal point are always significant.

It is evident from the given measurement that the digits '4', '0', and '5' are only significant and the last two zeroes do not have any significance.

Thus, the correct option is option (b).

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Which event is most likely occurring?

Answers

Answer: effusion of gas particles

Answer:

The correct answer is "effusion".

Explanation:

In chemistry, effusion is defined as the movement of gas particles trough a small hole from an area to another. This event is what most likely is occurring in the figure, where the red dots inside the container represent gas particles, the green circle is a barrier and the white dot at the middle represent the small hole that the gas particles go trough during the effusion process.

Pretend you are an uncooked egg; now describe what happened to you when you were placed in a pot of boiling water. Be sure to include the following in your response: energy, molecules, and chemical change.

Answers

Answer:The molecules in a raw egg absorb the heat energy, they use this energy to change shape

Such a chemical reaction is said to be endergonic, which means 'energy in'.

Egg molecules will never undergo these reactions without the input of energy (usually in the form of heat)

I hope this helps, if not, let me know :)

Convert 135 Meters to kilometers

Answers

Answer:

0.135 km

Explanation:

1 km = 1000 meters

The mountain peaks shown below were initially formed millions of years ago through the processes of folding, faulting, and overthrusting. Image courtesy of the U.S. NPS Over the past several million years, these peaks have been gradually worn down. If not for the process of _______ carrying small bits of sediment away, the peaks above might be 1,000 meters taller. A. erosion B. chemical weathering C. deposition D. physical weathering

Answers

Answer:

A. Erosion  

Explanation:

Erosion is the process in which soil and rock are worn away and transported by wind or water and transported to another location.

The image below shows how water has eroded a coastline.

B is wrong. Chemical weathering is the disintegration of rocks by reactions with water and the acids dissolved in it

C is wrong. Deposition is the process in which sediments carried by wind, water or ice are deposited at another location.

D is wrong. Physical weathering is the breakdown of rocks and soil by physical processes like the freezing of ice in the cracks of rocks.

erosion is the answer

How does a sample of water at 38 °C compare to a sample of water at 295 K? The water at 38 °C has a lower average kinetic energy than the sample at 295 K. The water at 38 °C has faster-moving molecules than the sample at 295 K. The water at 38 °C has greater nuclear energy than the sample at 295 K. The water at 38 °C has larger molecules than the sample at 295 K.

Answers

The correct statement is: "The water at 38 °C has faster-moving molecules than the sample at 295 K."

Temperature is a measure of the average kinetic energy of molecules in a substance. The Kelvin scale directly measures this kinetic energy, so 295 K represents a certain average kinetic energy.

However, 38 °C is equivalent to 311 K, which means the water molecules at this temperature have higher average kinetic energy. Since kinetic energy is directly related to the speed of molecules, water at 38 °C has faster-moving molecules compared to water at 295 K.

This is because at higher temperatures, molecules possess greater kinetic energy, resulting in faster movement.

Therefore, the statement accurately describes the comparison between the two samples of water.

12. Why do scientists believe there could be life on Titan?

Answers

Answer:

Whether there is life on Titan, the largest moon of Saturn, is at present an open question and a topic of scientific assessment and research. Titan is far colder than Earth, and its surface lacks stable liquid water, factors which have led some scientists to consider life there unlikely.

Explanation:

what does the word atomos mean and why is it not an accurate name

Answers

He named the atom after the Greek word atomos, which means 'that which can't be split.'

The word 'atomos' means 'indivisible' in Ancient Greek, but modern science has shown that atoms can be divided into smaller subatomic particles. Despite this, the term 'atom' is still used today.

The word atomos originates from Ancient Greek, where it was used by philosophers such as Democritus and Leucippus to describe the smallest, indivisible pieces of matter. The term atom means 'indivisible,' implying that these particles could not be split into smaller pieces.However, modern scientific discoveries have shown that atoms are, in fact, divisible into subatomic particles such as protons, neutrons, and electrons. Despite this, the name atom has remained in use, even though its original meaning no longer aligns with current scientific understanding.For example, physicist J.J. Thomson's experiments in 1897 revealed the existence of electrons, proving that atoms contained even smaller components. Thus, while atomos was an appropriate term based on knowledge at the time, it is not considered accurate based on contemporary science.

Which answer choices are true statements about the properties of an enclosed gas?


Select all that apply.


If the temperature of a gas remains constant, then increasing its volume will decrease its pressure.

If the volume of a gas remains constant, then increasing its temperature will increase its pressure.

If the pressure of a gas remains constant, then increasing its temperature will increase its volume.

If the temperature of a gas remains constant, then increasing its volume will increase its pressure

Answers

Answer:

option 1:

True

option 2:

True

option 3:

True

option 4:

False

Explanation:

we know from ideal gas equation that

[tex]PV=nRT[/tex]

or

[tex]\frac{PV}{T}=Constant[/tex]..............(1)

option 1:

True

Explanation

From equation 1 it is clear that if temperature remains constant than on increasing the volume of gas, pressure of gas will get decreases.

Option-2

True:

Explanation

From equation 1 it is clear that if volume of gas remains constant then on increasing the temperature, pressure of gas will increases.

Option-3

True

Explanation:

From equation 1 it is clear that if pressure of gas remains constant then on increasing the temperature volume of gas will increases.

Option-4

False

Explanation:

From equation 1 it is clear that if temperature of gas remains constant then on increasing the volume of gas, pressure of gas will decreases.

Final answer:

Three out of the four statements given align with the Gas Laws: Boyle's Law, Charles's Law, and Gay-Lussac's Law, respectively. The incorrect statement contradicts Boyle's Law.

Explanation:

Your question relates to the behavior of an enclosed gas under various conditions. This is governed by the Gas Laws, which state:

If the temperature of a gas remains constant (an isothermal process), then increasing its volume will decrease its pressure. This is known as Boyle's Law. If the volume of a gas remains constant, then increasing its temperature will increase its pressure. This is described by Charles's Law. If the pressure of a gas remains constant, then increasing its temperature will increase its volume. This is the essence of Gay-Lussac's Law.

Therefore, the last statement is incorrect: If the temperature of a gas remains constant, increasing its volume will not increase its pressure - it will decrease it, according to Boyle's Law.

Learn more about Gas Laws here:

https://brainly.com/question/12669509

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