95.30*103 kilogram NH3 are needed to produce 3.70*105 kilograms of (NH4)2SO4 .
The detail calculation is shown below.


Be sure to answer all parts. The fertilizer ammonium sulfate, (NH4)2SO4, is prepared by the reaction...
When ammonium sulfate dissolves, both the anion and cation have acid-base reactions: (NH4)2SO4(s) ⇄ 2NH4+ + SO42- Ksp = 276 NH4+ ⇄ NH3(aq) + H+ Ka = 5.7x10-10 SO42- + H2O ⇄ HSO4- + OH- Kb = 9.8x10-13 a. Write charge balance and mass balances b. Compute the concentration of NH3(aq) if pH is 9.25
What volume of ammonia gas, measured at 547.9 mmHg and 27.6 degrees
* C , is required to produce 8.98 g of ammonium sulfate according
to the following balanced chemical equation? 2NH 3 (g)+H 2 SO 4
(aq) (NH 4 ) 2 SO 4 (s)
What volume of ammonia gas, measured at 547.9 mmHg and 27.6°C, is required to produce 8.98 g of ammonium sulfate according to the following balanced chemical equation? 2NH3(g) + H2SO4(aq) - (NH4)2SO4(s) Select one: a....
Be sure to answer all parts. Liquid ammonia autoionizes like water: 2NH3() - NH,*(am) + NH, (am) where (am) represents solvation by ammonia. At the boiling point (-33°C), Kam = 5.1 x 10-27. Calculate [NH,+ ) at this temperature. [nu,"]=1 x 10 M (Enter your answer in scientific notation.) k Prey 3 of 3
J.J. FALE LAWS drid.. Saved 3 attempts left Check my work Be sure to answer all parts. The rate law for the reaction NH4+ (aq) + NO2 (aq) → N2(g) + 2H20(1) is given by rate = k[NH4+][NO2-). At a certain temperature, the rate constant is 3.70 * 10 *IM's. Calculate the rate of the reaction at that temperature if [NH*] -0.261 M and [NO,-) = 0.190 M. *10 Mis Enter your answer in scientific notation.
Be sure to answer all parts. Ammonium nitrate (NH4NO3) is one of the most important nitrogen-containing fertilizers. Its purity can be analyzed by titrating a solution of NH4NO3 with a standard NaOH solution. In one experiment a 0.2101-g sample of industrially prepared NH4NO3 required 20.87 mL of 0.1073 M NaOH for neutralization. (a) Enter a net ionic equation for the reaction (include states of matter). NH, (aq) + OH (aq) --NH3(aq) +H,00) (b) What is the percent purity of the...
Ammonium phosphate [(NH4)3PO4) is an important ingredient in many solid fertilizers. It can be made by reacting aqueous phosphoric acid H3PO4 with liquid ammonia. Calculate the moles of phosphoric acid needed to produce 1.30 mol of ammonium phosphate. Be sure your answer has a unit symbol, if necessary, and round it to the correct number of significant digits.
Ammonium phosphate (NH4), PO4) is an important ingredient in many solid fertilizers. It can be made by reacting aqueous phosphoric acid (H2PO4) with liquid ammonia. Calculate the moles of ammonia needed to produce 1.50 mol of ammonium phosphate. Be sure your answer has a unit symbol, if necessary, and round it to 3 significant digits. D x10 0.0 olo I ol. Ar
Be sure to answer all parts. Calculate the number of lithium ions, sulfate ions, S atoms, and O atoms in 10.2 g of lithium sulfate. Enter your answers in scientific notation.
Be sure to answer all parts. Determine the amount of heat (in kJ) associated with the production of 1.51 x 104 g of ammonia according to the following equation. N2(g) + 3H2(g) —>2NH3 AH9rxn=-92.6 kJ Assume that the reaction takes place under standard-state conditions at 25°C. Enter your answer in scientific notation. *10 kJ
3 attempts left Check my work Be sure to answer all parts. Repor points Ammonium nitrate (NH NO) is one of the most important nitrogen-containing fertilizers. Its purity can be analyzed by titrating a solution of NH NO, with a standard NaOH solution. In one experiment a 0.2031-g sample of industrially prepared NH NO, required 24.14 ml of 0.1003 M NaOH for neutralization. sc eBook Print (a) Enter a net ionic equation for the reaction (include states of matter Guide...