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0.783 g of hydrogen gas is placed in an container of volume 657 mL at a temperature of 342 K. What is the pressure in atm?

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14y ago
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1mo ago

Using the Ideal Gas Law (PV = nRT), you can calculate the pressure of the hydrogen gas. First, convert the mass of hydrogen to moles using the molar mass of hydrogen. Once you have moles of hydrogen, you can calculate the pressure given the volume, temperature, and the gas constant (0.0821 Latm/molK).

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Kayla Brandon

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2y ago

What is the pressure if a container with at of 3.25 atm and 298 K is heated to 398 K?

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Q: 0.783 g of hydrogen gas is placed in an container of volume 657 mL at a temperature of 342 K What is the pressure in ATM?
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What is the total pressure in of the mixture after it is placed in a container one half the volume of the original container?

When the mixture is placed in a container half the volume of the original container, the total pressure increases by a factor of two due to Boyle's Law, which states that pressure and volume are inversely proportional as long as temperature is constant. So, the total pressure of the mixture in the smaller container will be double the pressure of the mixture in the original container.


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What can handle more pressure a small closed container or a large closed container if the amount of liquid placed in it is the same?

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What happens when a split that is on fire is placed into a container containing hydrogen gas and oxygen gas?

If a split that is on fire is placed into a container containing hydrogen gas and oxygen gas, the split will react with the hydrogen and oxygen gases causing a combustion reaction. This reaction will produce water vapor and release a large amount of heat and light. It can result in an explosion due to the rapid combustion of hydrogen and oxygen.


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Related questions

What is the total pressure in of the mixture after it is placed in a container one half the volume of the original container?

When the mixture is placed in a container half the volume of the original container, the total pressure increases by a factor of two due to Boyle's Law, which states that pressure and volume are inversely proportional as long as temperature is constant. So, the total pressure of the mixture in the smaller container will be double the pressure of the mixture in the original container.


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The pressure of a sample of helium in a 1.00 L container is 0.988 ATM What is the new pressure if the sample is placed in a 4.40 L container?

The pressure of the helium will decrease when placed in the larger container, following Boyle's Law. Using the formula P1V1 = P2V2, we can calculate the new pressure. So, (0.988 ATM)(1.00 L) = P2(4.40 L), which gives P2 = 0.225 ATM.


What can handle more pressure a small closed container or a large closed container if the amount of liquid placed in it is the same?

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Do gases change shape when placed into another container?

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If a split that is on fire is placed into a container containing hydrogen gas and oxygen gas, the split will react with the hydrogen and oxygen gases causing a combustion reaction. This reaction will produce water vapor and release a large amount of heat and light. It can result in an explosion due to the rapid combustion of hydrogen and oxygen.


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