For ethanol, C2H5OH, which is

  1. 2. Given the following equation, C2H5OH(l) + 3 O2(g)---> 2 CO2(g) + 3 H2O(l)How many liter of CO2 are expected in the combustion
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    2. hannah asked by hannah
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  2. Ethanol, C2H5OH, is mixed with gasoline and sold as gasohol. Use the following to calculate the grams of ethanol needed to
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    2. Samantha asked by Samantha
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  3. Ethanol, C2H5OH, is being promoted as a clean fuel and is used as an additive in many gasolinemixtures. Calculate the ΔH°rxn
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    2. Anonymous asked by Anonymous
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  4. The density of ethanol, C2H5OH, is 0.789 g/mL. How many milliliters of ethanol are needed to produce 30.0 g of CO2 according to
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  5. Ethanol, C2H5OH or C2H6O, is mixed with gasoline and sold as gasohol. Given the following thermo-chemical reaction, calculate
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    2. Robert asked by Robert
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  6. The unbalanced equation for the combustion of ethanol is as follows:C2H5OH(l) + O2(g) �¨ CO2(g) + H2O(g) How much heat, in kJ,
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    2. Jordin asked by Jordin
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  7. What is the enthalpy change when 4.608 g of ethanol, C2H5OH(ℓ), undergoes complete combustion?C2H5OH(ℓ) + 3O2(g) --> 2CO2(g)
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    2. anonymous asked by anonymous
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  8. Ethanol (C2H5OH) is synthesized for industrial use by the following reaction, carried out at very high pressure.C2H4(g) + H2O(g)
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    2. Brittney asked by Brittney
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  9. Ethanol (C2H5OH) is synthesized for industrial use by the following reaction, carried out at very high pressure.C2H4(g) + H2O(g)
    1. answers icon 1 answer
    2. Anonymous asked by Anonymous
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  10. Ethanol (C2H5OH) is synthesized for industrial use by the following reaction, carried out at very high pressure.C2H4(g) + H2O(g)
    1. answers icon 1 answer
    2. Jack asked by Jack
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