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WHITE BOARD REVIEW HONORS CHEMISTRY
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Question How many formula units are in 4 g AlCl3?
1.81 x 1022 formula units AlCl3
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Question What’s the atomic mass of Fe? 55.85 g
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Question A 45 g metal at 98°C is dropped into 64 g of water at 23°C. The final temperature of the system is 54°C. What’s the specific heat of the metal? 4.19 J/g°C
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Question Determine the ∆H of NO + ½O2 NO2 given:
½N2 + ½O2 NO kJ ½N2 + O2 NO kJ -57.1 kJ
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine how many grams of H2O are formed from 100 grams NH3 and 100 grams of O2? Which reactant is limiting? Which is in excess? 67.58 g H2O Limiting: O2 Excess: NH3
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Question The pressure of a sample of He in a 2.0 L container is 2.50 atm, at constant temp. What’s the new pressure if the sample is placed in a 4.0 L container? 1.25 atm
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Question How many moles were dissolved in 400 g of water to make a 6.4 m solution? 2.56 moles
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Question How many grams of solute are in 4500 g of a 40,000 ppm solution? 180 g
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Question How much energy (in kJ) is released when condensing 62 g of water? kJ
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Question How many grams are in 4 mol AlCl3? g AlCl3
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Question How many kg of NaCl are dissolved in 4.9 kg of water to make a 5.0 m solution? 1.43 kg NaCl
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Question How many formula units are in 4 mol AlCl3?
2.4 x 1024 formula units AlCl3
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Question What’s the percent of Calcium in CaCO3? 40%
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Question What’s the empirical formula of a compound where 36.2% is Al and 63.8% is S? Al2S3
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Question Determine the Keq and favorability of the reaction: H2(g) + I2(g) ↔ 2HI(g) with equilibrium concentrations of: 3.56 M H2, 1.25 M I2 and M HI Keq = 54.62 Products favored
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Question How much energy does 26 g of steam at 112°C release to turn to ice at -5°C? -79, J
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Question A sample contains 66.66% C, 3.74% H and 9.60% O. The formula mass of the sample is 216 g/mol. What’s the molecular formula of the sample? C12H8O4
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Question What is the volume of air in a balloon that occupies 0.62 L at 25°C, at constant pressure, if the temp is lowered to 0°C? 0.57 L
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Question How many grams of an ideal gas sample of Ne are in a 4000 mL sample at 29.4 psi and 25°C? 6.60 g Ne
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Question A g sample of CuSO4•XH2O is heated. After the water is heated off, g of the anhydrate remain. Determine the formula of the hydrate. CuSO4•5H2O
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Question A sample of air at 1 atm, contains CO2, N2 and O2. If the PN2 is torr and PCO2 is torr, what’s PO2 (in torr)? torr
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Question Using: H2 (g) + Cl2 (g) 2HCl (g), at STP, how many liters of Cl2 are needed to make 44.8 g of HCl? 13.76 L Cl2
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Question Using: H2 (g) + Cl2 (g) 2HCl (g), at STP, how many molecules of H2 are needed to make 44.8 L of HCl? 6.022 x 1023 molecules H2
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Question What’s the molarity when 0.96 moles of solute are dissolved to make 4.8 L solution? 0.2 M
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Question How many moles were dissolved to make 4.0 L of a 3.4 M solution? 13.60 moles
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Question What’s the percent of oxygen in CaCO3? 48%
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Question How many grams of NaCl are dissolved to make 0.5 L of a 3.0 M solution? 87.66 grams NaCl
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Question What’s the molality when 0.96 moles of solute are dissolved in 2.5 kg water? 0.384 m
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Question How many kPa are in 782 mmHg? kPa
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Question How many grams of water are boiled when absorbing 46,000 J of energy? 20.35 g
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Question What’s the final temperature of 56 g of water at 21°C that releases 500 J? 18.87°C
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Question What’s the concentration in ppm, when 56 g of KBr dissolve to make a 3500 g solution? 16,000 ppm
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Question At STP a gas occupies 30.0 mL. If the temp is increased to 30°C and the new volume is 20 mL, what’s the new pressure? 1.66 atm
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Question An ideal gas sample occupies 8.77 L at 20°C. What is the pressure, in atm, if there are 1.45 mol in the sample? 3.98 atm
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Question How many grams of water release 400 J of energy when cooling from 45°C to 32°C? 7.35 g
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Question How much energy does 56 g of ice at -15°C absorb to turn to water at 54°C? 33, J
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Question H2 is collected over water at 20°C. The PH2 is mmHg. What’s the atmospheric pressure? 730 mmHg
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Question What’s the concentration in ppm, when 56 g of NaBr are dissolve in 4.5 kg of water? 12, ppm
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Question A 3.0 M of a 320 mL solution is diluted to 500 mL. What’s the new concentration of the solution? 1.92 M
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Question How many mL of water are added to 100 mL of a 3.5 M solution to create a 1.5 M solution? mL
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Question Determine the rate law & orders of the reaction 2A + 4B 3C using the data table: R = k[A][B]2 first order in A second order in B third order overall Trial [A] [B] Rate 1 1.2 1.4 3.3 2 2.4 6.6 3 2.8 13.2
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Question How many mL of a 5.0 M solution are needed to make 40 mL of a 3.5 M solution? 28 mL
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Question How many Calories are in 300 calories? 0.30 Cal
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Question How many Joules are in 400 calories? 1,673.6 J
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Question A gas at 660 torr and 22°C at constant volume is heated to 44.6°C, what’s the new pressure? torr
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Question How many Joules are in 160 Calories? 669,440 J
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Question How many Calories are in 70 kJ? 16.73 Cal
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Question How much energy is released when 40 g of water cools from 87°C to 23°C? -10, J
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Question How much energy is absorbed when 20 g of water heats from 17°C to 53°C? 3, J
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Question What’s the specific heat of an unknown metal with a mass of 4.25 g that absorbs 200 J of energy going from 53°C to 79°C? 1.81 J/g°C
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine how many moles of NO are formed from 15 mole O2? 12 mol NO
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine how many grams of H2O are formed from 10 mole O2? g H2O
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Question How much energy (in kJ) is absorbed when melting 52 g of water? 17.37 kJ
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Question Using: H2 (g) + Cl2 (g) 2HCl (g), at STP, how many liters of Cl2 are needed to make 48 L of HCl? 24 L
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine how many moles of H2O are formed from 100 grams O2? 3.75 mol H2O
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine how many grams of H2O are formed from 200 grams NH3? g H2O
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Question Using: 4NH3 + 5O2 4NO + 6H2O, determine the percent yield when 45 g of NH3 produces 65 g NO in the lab? 82.02%
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Question How many psi are in 1.45 atm? 21.32 psi
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Question How many torr are in 1.45 atm? 1102 torr
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Question How many mmHg are in 15.8 psi? mmHg
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Question What’s the molar mass of (NH4)2SO4? g
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