To find the density of N2O at STP, you need to use the formula that density is equal to mass divided by the volume. At STP, one mole of N2O has a mass of 44 grams, and the volume is 22.4 liters. Dividing these two quantities, one find the answer as 1.96 g/l.
At 300 degrees Fahrenheit and atmospheric pressure the air:
Dynamic Viscocity (μ) : 4.97 x 10-7 (lbf s/ft2)
Kinematic Viscocity (v) : 3.06 x 10-4(ft2/s)
Some conversion factors for viscocity:
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The density of H2S gas at standard temperature and pressure (STP) is approximately 1.539 g/L.
At STP (standard temperature and pressure), 32 grams of O2 would occupy the same volume as 22.4 liters, which is the molar volume of any ideal gas at STP.
At STP (Standard Temperature and Pressure), 1 mole of any gas occupies 22.4 liters. Therefore, in 50 dm^3 of O2 gas, there would be 50/22.4 = 2.23 moles of O2 molecules.
1 mole of any gas occupies 22.4 L at standard temperature and pressure (STP). Therefore, 8.08 L of O2 at STP would contain 8.08/22.4 = 0.36 moles of O2.
1.43 g/cm3
The density of Cl2 gas at standard temperature and pressure (STP) is approximately 3.214 g/L.
Neon's density at standard temperature and pressure (STP) is approximately 0.9 grams per liter.
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The density of barium at standard temperature and pressure (STP) is approximately 3.51 grams per cubic centimeter.
The density of H2S gas at standard temperature and pressure (STP) is approximately 1.539 g/L.
The density of neon gas at standard temperature and pressure (STP) is about 0.9 grams per liter.
At STP (standard temperature and pressure), 32 grams of O2 would occupy the same volume as 22.4 liters, which is the molar volume of any ideal gas at STP.
The predicted density of rutherfordium is 23,2 g/cm3.
At STP (Standard Temperature and Pressure), 1 mole of any gas occupies 22.4 liters. Therefore, in 50 dm^3 of O2 gas, there would be 50/22.4 = 2.23 moles of O2 molecules.
1 mole of any gas occupies 22.4 L at standard temperature and pressure (STP). Therefore, 8.08 L of O2 at STP would contain 8.08/22.4 = 0.36 moles of O2.
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