Exemplo n.º 1
0
#
# This object will be used to evaluate all thermodynamic, kinetic,
# and transport properties
#
gas = IdealGasMix(rxnmech, mix)

# set its state to that of the unburned gas at the burner
gas.set(T=tburner, P=p, X=comp)

f = BurnerFlame(gas=gas, grid=initial_grid)

# set the properties at the burner
f.burner.set(massflux=mdot, mole_fractions=comp, temperature=tburner)

f.set(tol=tol_ss, tol_time=tol_ts)
f.setMaxJacAge(5, 10)
f.set(energy='off')
f.init()
f.showSolution()

f.solve(loglevel, refine_grid)

f.setRefineCriteria(ratio=200.0, slope=0.0502, curve=0.1)
f.set(energy='on')
f.solve(loglevel, refine_grid)

f.save('flame1.xml')
f.showSolution()

# write the velocity, temperature, and mole fractions to a CSV file
z = f.flame.grid()
Exemplo n.º 2
0
#
# This object will be used to evaluate all thermodynamic, kinetic,
# and transport properties
#
gas = IdealGasMix(rxnmech, mix)

# set its state to that of the unburned gas at the burner
gas.set(T = tburner, P = p, X = comp)

f = BurnerFlame(gas = gas, grid = initial_grid)

# set the properties at the burner
f.burner.set(massflux = mdot, mole_fractions = comp, temperature = tburner)

f.set(tol = tol_ss, tol_time = tol_ts)
f.setMaxJacAge(5, 10)
f.set(energy = 'off')
f.init()
f.showSolution()

f.solve(loglevel, refine_grid)

f.setRefineCriteria(ratio = 200.0, slope = 0.0502, curve = 0.1)
f.set(energy = 'on')
f.solve(loglevel,refine_grid)

f.save('flame1.xml')
f.showSolution()


# write the velocity, temperature, and mole fractions to a CSV file
Exemplo n.º 3
0
[zloc, tvalues] = getTempData('tdata.dat')

# set the temperature profile to the values read in
f.flame.setFixedTempProfile(zloc, tvalues)

f.set(tol=tol_ss, tol_time=tol_ts)

# show the initial estimate for the solution
f.showSolution()

# don't solve the energy equation
f.set(energy='off')

# first solve the flame with mixture-averaged transport properties
f.setRefineCriteria(ratio=3.0, slope=0.3, curve=1)
f.setMaxJacAge(50, 50)
f.setTimeStep(1.0e-5, [1, 2, 5, 10, 20])

f.solve(loglevel, refine_grid)
f.save('ch4_flame_fixed_T.xml', 'mixav',
       'solution with mixture-averaged transport')

print '\n\n switching to multicomponent transport...\n\n'
gas.switchTransportModel('Multi')
f.flame.setTransportModel(gas)

f.setRefineCriteria(ratio=3.0, slope=0.1, curve=0.2)
f.solve(loglevel, refine_grid)
f.save('ch4_flame_fixed_T.xml', 'multi',
       'solution with  multicomponent transport')
Exemplo n.º 4
0
[zloc, tvalues] = getTempData('tdata.dat')

# set the temperature profile to the values read in
f.flame.setFixedTempProfile(zloc, tvalues)

f.set(tol = tol_ss, tol_time = tol_ts)

# show the initial estimate for the solution
f.showSolution()

# don't solve the energy equation
f.set(energy = 'off')

# first solve the flame with mixture-averaged transport properties
f.setRefineCriteria(ratio = 3.0, slope = 0.3, curve = 1)
f.setMaxJacAge(50, 50)
f.setTimeStep(1.0e-5, [1, 2, 5, 10, 20])

f.solve(loglevel, refine_grid)
f.save('ch4_flame_fixed_T.xml','mixav',
       'solution with mixture-averaged transport')

print '\n\n switching to multicomponent transport...\n\n'
gas.switchTransportModel('Multi')
f.flame.setTransportModel(gas)

f.setRefineCriteria(ratio = 3.0, slope = 0.1, curve = 0.2)
f.solve(loglevel, refine_grid)
f.save('ch4_flame_fixed_T.xml','multi',
       'solution with  multicomponent transport')