We hear a lot about how the burning of hydrocarbons produces the greenhouse gas CO 2 , but what about the effect of increasing energy consumption on the amount of oxygen in the atmosphere required to sustain life? The figure shows past and projected world energy consumption. (a) How many moles of oxygen would be required to generate the additional energy expenditure for the next decade? (b) What would be the resulting decrease in atmospheric oxygen?
We hear a lot about how the burning of hydrocarbons produces the greenhouse gas CO 2 , but what about the effect of increasing energy consumption on the amount of oxygen in the atmosphere required to sustain life? The figure shows past and projected world energy consumption. (a) How many moles of oxygen would be required to generate the additional energy expenditure for the next decade? (b) What would be the resulting decrease in atmospheric oxygen?
We hear a lot about how the burning of hydrocarbons produces the greenhouse gas CO2, but what about the effect of increasing energy consumption on the amount of oxygen in the atmosphere required to sustain life? The figure shows past and projected world energy consumption. (a) How many moles of oxygen would be required to generate the additional energy expenditure for the next decade? (b) What would be the resulting decrease in atmospheric oxygen?
(a)
Expert Solution
Interpretation Introduction
Interpretation:
The number of moles oxygen that would be required to generate the additional energy expenditure for the next decade has to be calculated.
Explanation of Solution
The raise in energy consumption is roughly 100×1015kJ per decade. Assume the raise in energy comes from the combustion of octane
C8H18(l)+252O2(g)→8CO2(g)+9H2O(l)ΔH°=-5500kJ/mole
The mass of oxygen gas required to support the increase in energy assumption for one decade is calculated below,
The total mass of atmosphere is 5×1015kg. Since the atmosphere is roughly 20%O2 and 80%N2 moles of gas, the average mass percent of oxygen in the atmosphere is calculated as,
The total mass of atmosphere is 5×1015kg. Since, the atmosphere is roughly 20%O2 and 80%N2 moles of gas, the average mass percent of oxygen in the atmosphere is calculated as,
Therefore, the mass of oxygen in the atmosphere is calculated below,
5×1018kg×1000g1kg×0.22=1×1021gO2
Therefore, the percent reduction of oxygen in our atmosphere over one decade is due to the projected increase in the production of energy that would be given as,
7×1015gO21×1021gO2×100%=0.0007%decreaseinO2
Such a small decrease in atmospheric pressure would be insignificant.
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we were assigned to dilute 900ppm
in to 18ppm by using only 250ml vol
flask. firstly we did calc and convert
900ppm to 0.9 ppm to dilute in 1 liter.
to begin the experiment we took
0,225g of kmno4 and dissolved in to
250 vol flask. then further we took 10
ml sample sol and dissolved in to 100
ml vol flask and put it in to a
spectrometer and got value of 0.145A
.
upon further calc we got v2 as 50ml
. need to find DF, % error (expval and
accptVal), molarity, molality. please
write the whole report. thank you
The format, tables, introduction,
procedure and observation, result,
calculations, discussion and
conclusion
Q5. Predict the organic product(s) for the following transformations. If no reaction will take place
(or the reaction is not synthetically useful), write "N.R.". Determine what type of transition state
is present for each reaction (think Hammond Postulate).
I
Br₂
CH3
F2, light
CH3
Heat
CH3
F₂
Heat
Br2, light
12, light
CH3
Cl2, light
No
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