The atmosphere contained approximately 115 ppmv of anthropogenic co2(g) in 2010. if 1 ppmv- co2(g) is equivalent to 2184.82 tg-c (teragrams, or 1012 g, of atomic carbon), calculate how many metric tonnes of quicklime [cao(s)] were needed to fix

Answer is: 3,2 · 10¹¹ t of quicklime.
Chemical reaction: CO₂ + CaO → CaCO₃.
m(CO₂) = 2184,82·10¹² · 115 = 2,51 · 10¹⁷ g.
n(CO₂) = m(CO₂) ÷ M(CO₂)
n(CO₂) = 2,51 · 10¹⁷ g ÷ 44 g/mol = 5,7 · 10¹⁵ mol.
from reaction n(CO₂) : n(CaO) = 1 : 1.
n(CaO) = 5,7· 10¹⁵ mol.
m(CaO) = 5,7· 10¹⁵ mol · 56 g/mol = 3,2 · 10¹⁷ g = 3,2 · 10¹¹ t.
n - amount of substance.

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W0lf93 W0lf93 · Answer 2 · 2018-01-19T02:46:49+01:00

Answer is: 3,2Â Â· 10ÂąÂą tÂ of quicklime.Â
Chemical reaction: COâ‚‚ + CaOÂ â†’ CaCOâ‚.
m(COâ‚‚) = 2184,82Â·10ÂąÂ˛Â Â· 115 =Â 2,51Â Â· 10Âąâ· g.
n(COâ‚‚) = m(COâ‚‚)Â Ă· M(COâ‚‚)
n(COâ‚‚) = 2,51Â Â· 10Âąâ· g Ă· 44 g/mol = 5,7Â Â· 10Âąâµ mol.
from reaction n(COâ‚‚) : n(CaO) = 1 : 1.
n(CaO) = 5,7Â· 10Âąâµ mol.
m(CaO) = 5,7Â· 10Âąâµ molÂ Â· 56 g/mol = 3,2 Â· 10Âąâ· g = 3,2Â Â·
10ÂąÂą t.
n - amount of substance