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Thermochemistry

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Introduction to thermochemistry

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Pre Lecture
Calorimetery ConstantV
Ex 2C0t0z 2C0z 298K
Under constant V Underconstant P
U
qtw q Psv w Pav snRT
DU _qu w
Cnf ni RT
DU 563.5kJ mo1 2.5 KJlmol

Uv Up b

iqu qpt
563 SK mol qpt2.5kJ
mo qp
S66KJ mol


Enthalpy
AH is the change in heat for a system constant pressure
sH qp sUtPsV
Exothermic heat is given out Creleased Constantvolomeq

Endothermic heat is taken in absorbed
q nqsT

Constant Vvs Constant P
Const P nocg ConstP dn 0 ConstP Brito Const V
dU sH sU DH BUSH AU
w
qv

, Thermochemical Equations
A balanced equation that includes is Hr

the enthalpychangeColt of a reaction is written to the right of the equation
Ek HzOleg It 2cg t 4202cg sHr 1286kglmol



Types of reaction
combustion fuel
General equation i CxHy ta Oz bCO2 to H2O heat

always exothermic
If fuel has other elements presentCN s P
they will have additional

products but will always have CO2 2 Azo if combustion is complete
If S is present soo will be produced

N N02 or Nog will be produced
Solution
Ex NHyN03 csg NHyt aq t
Nos cap
12h22011 s GzH22011 Caq
the process of dissolving a puresolute in solvent often water

typically will be represented in the state labels

Can't predict if endothermic or exothermic

Neutralization
Ex NaOHcaq HCl caq NaCl caq t Hzoce
base acid salt water

Ran btwn a strong acids base
weak acidlbases result in buffered soI

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Uploaded on
August 3, 2021
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Written in
2020/2021
Type
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Brandi west
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