You are investigating how methane (CH4) and ammonia (NH3) combine to generate cyanamide (H2NCN) and hydrogen gas H2) according to the following reaction:
CH4(g) + 2NH3(g) → H2NCN(g) + 4H2(g)
The lab's temperature on the day of the experiment is 24 ºC and the barometer is reading 753 mmHg. If you need to produce 0.455 grams of H2, what is the minimum volume of methane that is required?
The minimum volume of methane needed is [V]
You are investigating how methane (CH4) and ammonia (NH3) combine to generate cyanamide (H2NCN) and hydrogen...
Hydrogen cyanide is used in the manufacture of clear plastics such as Plexiglas. It is prepared from ammonia (NH3) and methane (CH4) according to the following reaction. a. Calculate the value of q if 3.855 grams of ammonia react with excess oxygen and 5. methane b. Calculate the value of q if 4.394 grams of oxygen react with excess ammonia and methane. Calculate the value of q if 2.475 grams of methane reacts with excess oxygen and ammonia Calculate the...
Identify limiting reactants (maximum product method). Consider the reaction of methane with ammonia and oxygen. 2CH4 (g) + 2NH3(g) + 302 (g) —2HCN (g) + 6H20 (1) Determine the limiting reactant in a mixture containing 175 g of CH4, 160 g of NH3, and 607 g of O2. Calculate the maximum mass (in grams) of hydrogen cyanide, HCN, that can be produced in the reaction. The limiting reactant is: CH4 O2 NH3 Amount of HCN formed = g
Please help with these questions 1. Methane (CH4) burns in air to form carbon dioxide and water as shown below. CH4(g) + 2 O2(g) → CO2(g) + 2 H2O(l) If a sample of methane occupies 802. mL at 3.23 atm, what pressure (in atm) of oxygen gas with the same temperature and volume is required to complete the reaction? 2. Consider the reaction between hydrogen gas and nitrogen gas to form ammonia: 3 H2(g) + N2(g) → 2 NH3(g). What...
Question 8 (1 point) If 248.9 g of methane gas (CH4) is reacted with 306.1 g of steam (H20 (g)) to produce hydrogen gas and carbon monoxide gas, then what is the maximum mass in grams of hydrogen gas that can be produced? CH4(8) + H2O(g) + 3H2(g) + CO(g) Report your answer to 2 decimal places. No marks for units. Your Answer: Answer units Question 9 (1 point) Nitrogen gas reacts with hydrogen gas to produce ammonia gas (NH3)....
A. If you have 3.00g of H2, how many grams of NH3 can be produced? B.How many grams of H2 are needed to react with 3.80g of N2? C.How many gramsof NH3 can be produced from 11.6g of H2? Nitrogen gas reacts with hydrogen gas to produce ammonia via the following reaction: N2(g) + 3H2(g)-2NH3(g) Part A If yn
Nitrogen gas (N2) and hydrogen gas (H2) react to make ammonia gas (NH3) N2(g)+3H2(g)-->2NH3(g) you know tat this process gives a 55% yield for ammonia. Your job is to make 610g of ammonia. what mass of nitrogen do you need?
You work in a factory that makes ammonia gas. Nitrogen gas (N2) and hydrogen gas (H2) react to make ammonia gas (NH3). N2(g) + 3H2(g) → 2NH3(g) You know that this process gives a 55% yield for ammonia. Your job is to make 610 g of ammonia. What mass of nitrogen do you need?
Please do the following questions! thank you! Experiment 12: Generating Hydrogen Gas Part B: Molar mass of unknown metal Unknown #: Mass of unknown metal (X): Volume of H2 gas L K Temperature of H2 gas 0.12588 54.4 mL 23.0 C 765.8 mmHg 21.1 mmHg 744.7 mmHg Atmospheric pressure (see barometer) Vapor pressure of water atm Partial pressure of H, gas Using PV=nRT and your data, calculate the moles of hydrogen gas produced in the experiment: PV = 0.97987x54.4xio RT...
10-7A Review Constants Periodic Table Nitrogen and hydrogen gases react to form ammonia gas via the following reaction: Part A N2(g) + 3H2(g) +2NH3(g) At a certain temperature and pressure, 1.8 L of N2 reacts with 5.4 L of H2. If all the N2 and H2 are consumed, what volume of NH3, at the same temperature and pressure, will be produced? Express your answer using two significant figures. You may want to reference (Pages 400 - 403) Section 10.3 while...
3. Please use the rules for manipulating K above to answer the following questions. a) At 303 Kelvin, the equilibrium constant for the gas phase reaction of N, and Hą to form NH, is 2.8 x 10 What is the equilibrium constant for the decomposition of ammonia at the same temperature to produce hydrogen and nitrogen? Kreverse = Kforward 2.8x10-9 = 357142857.1 3.5x10 b) At 1000 Kelvin, the reaction Na(g) + 3H2(g) + 2NH3(g) has a kc value of 2.4...