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ASTM Selected Technical Papers
Water for Subsurface Injection
By
JL Johnson
JL Johnson
1
Aramco Services Company
,
Houston, Tex. 77002
;
symposium cochairman and coeditor
.
Search for other works by this author on:
JR Stanford
JR Stanford
2
Nalco Chemical Company
,
editor
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CC Wright
CC Wright
3
Arabian American Oil Company
,
editor
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AG Ostroff
AG Ostroff
4
Mobil Research and Development Corporation
,
editor
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ISBN-10:
0-8031-0800-1
ISBN:
978-0-8031-0800-4
No. of Pages:
157
Publisher:
ASTM International
Publication date:
1981

Acrolein is an important biocide and sulfide scavenger for oil-field systems. Acrolein monitoring procedures usually involve both concentration and performance determinations. These procedures can provide useful information only when meaningful methods are employed.

Acrolein concentrations may be determined analytically by derivatization methods such as m-aminophenol fluorescence and dinitrophenylhydrazine colorimetry. Derivatization methods can be used only in special situations because numerous interferences are usually present. Direct analytical methods such as ultraviolet spectroscopy and differential pulse polarography are generally more useful. An analytical method should be used only after careful studies have shown it to be reliable, suitable, and parallel to the desired performance in the given application.

In most cases, monitoring acrolein is best done by determining its performance in each specific application. When used as a biocide, acrolein is more accurately evaluated by standard American Petroleum Institute (API) procedures than by present adenosinetriphosphate (ATP) methods. Growth in aerobic plates and anaerobic culture tubes is normally absent at typical use concentrations even though ATP readings generally register low kills. Acrolein appears to alter the mechanism of light emission by ATP.

When used to scavenge sulfides, acrolein performance is best evaluated by a sulfide specific ion electrode, because results can be misleading when determined by lead or methylene blue colorimetry. This conclusion was obtained when colorimetric methods were compared with the data from sulfide specific ion electrode determinations calibrated against lead perchlorate titrations.

1.
Brady
,
J. L.
,
Erben
,
A. R.
,
Kissel
,
C. L.
,
Pau
,
J. K.
, and
Caserio
,
F. F.
, Jr.
in
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. ASTM STP 641,
Wright
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,
Cross
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,
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, and
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,” EPA-600/3-77-002,
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,
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, p. 181;
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,”
American Petroleum Institute
, API RP 38, 2nd ed.,
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Littman
,
E. S.
, “
Oilfield Bactericide Parameters as Measured by ATP Analysis
,”
Society of Petroleum Engineers of AIME
, Preprint No. SPD 5312,
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.
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Dissolved Oxygen Test Kit (Model D-1)
,”
Chemetrics Inc.
,
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,”
Hach Chemical Company
,
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.
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,”
Chemetrics, Inc.
,
Warrenton, Va.
13.
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,”
LaMotte Chemical Products Company
,
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Vinson
,
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in
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, ASTM STP 641,
Wright
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,
Cross
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,
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, and
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, Eds.,
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,
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, pp. 24-40.
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,” Orion Research Incorporated, Form 94-161 M/778,
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.
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,”
HNU Systems Inc.
, ISE-30-47-00,
1979
.
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DeWitt
,
J. W.
, “
Field and Laboratory Investigations on Acrolein as a Fish Poison
,”
Arcata
,
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.
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,
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and
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,
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,
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, Vol.
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,
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, pp. 3-13.
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,
R. S.
,
Ryan
,
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, and
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,
Water Research
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,
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, pp. 783-792.
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,
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,
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,
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, and
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,
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,
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,
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, Vol.
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, No.
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, Part 1,
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, pp. 3468-3472.
21.
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,
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and
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,
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,
Photochemistry and Photobiology
 0031-8655, Vol.
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, Part 1,
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, pp. 171-174;
Chemical Abstracts
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,
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,
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and
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,
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,
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,
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, Vol.
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, No.
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,
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, pp. 995-999.
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