CHEM 1061 Lecture Notes - Lecture 12: Root Mean Square, Kinetic Energy, Kinetic Theory Of Gases

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Review of empirical gas laws (boyle, charles, avogadro) Seipmann: boyle, volume/pressure relationship, charles, volume/temperature relationship, avogadro, volume/mole relationship. Review of standard temperature and pressure: v=nrt/p= (1 mol)*(. 08206 l g atm/kg mol) (273. 2k) = 22. 42 l. 1. 00 atm: n = g of gas = mass____ = m/molar mass molar mass molar mass, p= nrt = (m/molar mass)rt = . m(rt) . V v(molar mass: d= specific density, p = . drt . Dalton"s law of partial pressures: total pressure exerted equals the sum of the pressures each gas would exert if it was alone, p1= n1rt p2= n2rt. Ptotal = p1 + p2 + p3 . V = rt = vinitial n p vfinal where 30l no reacts with 15l o2, what is the volume of the. Vfinal = vinital * nfinal ninitial (30l + 15l) * (2*3) = 30l. Root mean square velocity: u2 = averages of the squares of particle velocities, urms = sq.

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