This section describes the calculations for calibrating various flow meters based on mass flow rates. Calibrate your flow meter according to 40 CFR 1065.640 instead if you calculate emissions based on molar flow rates.
Where:
Vref = mean flow rate of the reference flow meter.
Tin = mean temperature at the PDP inlet.
pstd = standard pressure = 101.325 kPa.
fnPDP = mean PDP speed.
Pin = mean static absolute pressure at the PDP inlet.
Tstd = standard temperature = 293.15 K.
Example:
Vref = 0.1651 m3/s
Tin = 299.5 K
pstd = 101.325 kPa
fnPDP = 1205.1 r/min = 20.085 r/s
Pin = 98.290 kPa
Tstd = 293.15 K
Vrev = 0.00866 m3/r
Where:
fmPDP = mean PDP speed.
pout = mean static absolute pressure at the PDP outlet.
pin = mean static absolute pressure at the PDP inlet.
Table 1 of § 1066.625 -Example of PDP Calibration Data
fnPDP (revolution/s) | a1 (m3/s) | a0 (m3/revolution) |
12.6 | 0.841 | 0.056 |
16.5 | 0.831 | -0.013 |
20.9 | 0.809 | 0.028 |
23.4 | 0.788 | -0.061 |
Where:
Cd = discharge coefficient, as determined in paragraph (b)(2)(i) of this section.
Cf = flow coefficient, as determined in paragraph (b)(2)(ii) of this section.
At = cross-sectional area at the venturi throat.
R = molar gas constant.
pin = static absolute pressure at the venturi inlet.
Tstd = standard temperature.
pstd = standard pressure.
Z = compressibility factor.
Mmix = molar mass of gas mixture.
Tin = absolute temperature at the venturi inlet.
Where:
Vref = measured volume flow rate from the reference flow meter.
Where:
[GAMMA] = isentropic exponent. For an ideal gas, this is the ratio of specific heats of the gas mixture, Cp/Cv.
r = pressure ratio, as determined in paragraph (b)(2)(iii) of this section.
[BETA] = ratio of venturi throat diameter to inlet diameter.
Where:
[DELTA]p = differential static pressure, calculated as venturi inlet pressure minus venturi throat pressure.
Where:
Mair = molar mass of dry air.xH2O = amount of H2O in the dilution air or calibration air, determined as described in 40 CFR 1065.645 .
MH2O = molar mass of water.
Example:
Mair = 28.96559 g/mol
xH2O = 0.0169 mol/mol
MH2O = 18.01528 g/mol
Mmix = 28.96559 · (1 - 0.0169) + 18.01528 · 0.0169 Mmix = 28.7805 g/mol
Table 2 of § 1066.625 -Examples of Dilution Air and Calibration Air Dewpoints at Which You May Assume a Constant Mmix
If calibration Tdew ( °C) is . . . | assume the following constant Mmix (g/mol) . . . | for the following ranges of Tdew ( °C) during emission testsa |
[LESS THAN EQUAL TO]0 | 28.96559 | [LESS THAN EQUAL TO]18 |
0 | 28.89263 | [LESS THAN EQUAL TO]21 |
5 | 28.86148 | [LESS THAN EQUAL TO]22 |
10 | 28.81911 | [LESS THAN EQUAL TO]24 |
15 | 28.76224 | [LESS THAN EQUAL TO]26 |
20 | 28.68685 | -8 to 28 |
25 | 28.58806 | 12 to 31 |
30 | 28.46005 | 23 to 34 |
a The specified ranges are valid for all calibration and emission testing over the atmospheric pressure range (80.000 to 103.325) kPa.
Vref = 2.395 m3/s
Z = 1
Mmix = 28.7805 g/mol = 0.0287805 kg/mol
R = 8.314472 J/(mol·K) = 8.314472 (m2·kg)/(s2·mol·K)
Tin = 298.15 K
At = 0.01824 m2
pin = 99.132 kPa = 99132 Pa = 99132 kg/(m·s2)
[GAMMA] = 1.399
[BETA] = 0.8
[DELTA]p = 7.653 kPa
Cf = 0.472
Cd = 0.985
Where, using the Sutherland three-coefficient viscosity model:
Where:
[MICRO]0 = Sutherland reference viscosity.
T0 = Sutherland reference temperature.
S = Sutherland constant.
Table 3 of § 1066.625 -Sutherland Three-Coefficient Viscosity Model Parameters
Gas1 | [MICRO]0 | T0 | S | Temperature range within ±2% error2 | Pressure limit2 |
kg/(m·s) | K | K | K | kPa | |
Air | 1.716·10-5 | 273 | 111 | 170 to 1900 | [LESS THAN EQUAL TO]1800. |
CO2 | 1.370·10-5 | 273 | 222 | 190 to 1700 | [LESS THAN EQUAL TO]3600. |
H2O | 1.12·10-5 | 350 | 1064 | 360 to 1500 | [LESS THAN EQUAL TO]10000. |
O2 | 1.919·10-5 | 273 | 139 | 190 to 2000 | [LESS THAN EQUAL TO]2500. |
N2 | 1.663·10-5 | 273 | 107 | 100 to 1500 | [LESS THAN EQUAL TO]1600. |
1 Use tabulated parameters only for the pure gases, as listed. Do not combine parameters in calculations to calculate viscosities of gas mixtures.
2 The model results are valid only for ambient conditions in the specified ranges.
Example:
[MICRO]0 = 1.716·10-5 kg/(m·s)
T0 = 273 K
S = 111 K
Tin = 298.15 K
dt = 152.4 mm = 0.1524 m
[RHO]std = 1.1509 kg/m3
Re# = 1.3027·106
Example:
[RHO]std = 1.1964 kg/m3
Where:
Vrefstd= mean flow rate from the reference flow meter, corrected to standard reference conditions.
Tin= mean temperature at the venturi inlet.
Pin= mean static absolute pressure at the venturi inlet.
Where:
[DELTA]pCFV = differential static pressure; venturi inlet minus venturi outlet.
pin = mean static absolute pressure at the venturi inlet.
40 C.F.R. §1066.625