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FRANK A. PATTY
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Intermittent Exposure *"""X Constant Exposure
O Intermittent Exposure to Commercial Moterlol
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aoi .02 03 04 06 .1
.2 .3 4 SB
3 4 6 8 10
VAPOR IN AIR, LOGARITHMIC SCALE -------------------------------------------------urer:centlby..volume------------
Figure 3. Relation* ^between concentration of vapors, of purified paraffin ..hydrocarb'offsAand
odor intensity.
B. PORTABLE RAPIDLY INDICATING DEVICES
Nearly all physical sampling methods are open to the same criticism: tHcyqujfiSj not specific, and it is sometimes impossible to tell whether the physical chlfii'' ' measured* especially small ones, are due to the presence of a particular gas or'vftp or to some other cause; and in mixtures it is not always feasible to determine! percentage of each component. Nevertheless, the advantages of portability*^^
SAMPLING ANn ANALYSIS OF CONTAMINANTS
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Availability of results make some physical instruments immensely
if 1. Interferometer
j. w^.-pcriraps the most dependable and most widely applicable physical instrument ^^d'cveloped for field use is the 50-cm. portable gas interferometer. This instru-
measures minute changes in refractivity, so that it may success" iiily^h*t5Vise4lto determine low concentrations of contaminating gases or vapors
aAnaSt^^bere, providing the refractivity of the contaminant is sufficiently
ISflKjmjr^ffiii^that of air, which is 291.7 X 10"*' at 0 C. and 760 mm. Hg
refractivity is a function of density, as well as of molecular strucKroSSil^jig^^toKe8 in pressure and temperature have an important bearing on
w^SI&usli be carefully controlled. The light source must be of constant wave |J|j|ptpRisualIy an incandescent filament. The interferometer is a sensitive
Ip^fetometer which, instead of measuring refraction directly, compares J$||ity of one gas to that of another. In air analysis, the usual standard of
^Ss* dry air, from which all carbon dioxide has been removed. This atmosphere must be at the same temperature and pressure as the atmosi^^Riamined. An interferometer may be calibrated against known mix-
__ _ Wf in air, of the same order of concentration as atmospheric mixtures ^mwliicMt^ito be employed. Also, it many be calibrated for absolute refractivity $$$!!&$tlmt':is, refractivity factor, by increasing the pressure of dry air in one
Ld- tb similar dry air at constant atmospheric pressure in the other.9 Once
calibration has been accomplished, instrument scale readings may iftcdfto vapor percentages by employing any reliable data on the refrac-
and gases. These data are perhaps most readily utilized when ^^'g'c^^Ksiunit refractivity change (U&R), that is, the change in the refractivity
25 C. and 760 mm. Hg pressure due to the admixture of 1 per cent
5 ;V
fefhe data given in Table 3 were obtainedviby vaporizing weighed
vents in a galvanized metal chamber having`;a volume of'604 cu. ft.
jS^glilieJconcIntration of a known vapor may be determined as follows:
'..
FjkV- i,ormair==
' 'Ife-...interferometer reading X refractivity factor (of instrument)
fK '
unit refractivity change (of vapor)
'^^pft;';in measuring benzene vapor, suppose the interferometer scale reading '^SS^divisions or 0.62 revolution of the indicator dial abo'ye its reading in
^^Hfidjeauh-'-revolution-is- equivalent-to a change in--refractmty*of~2-.91 -X
ejner.eentage of benzene would equal:
4*.
""..I-, if.
0.62 X 2.91 X 10-9 = 0.125 (1250 p.p.m.)
14.4 X 10-
.`-Edwards, V. S. Bur. Mines Tech. Paper No. 181, 1919; F. A. Patty, J. Ind. Hyg. (1939).