Abstract

There is an ongoing interest in the development and use of renewable base stocks to formulate quenchants. The most common criterion of vegetable oils as renewable base stocks is their biodegradability and that they be non-toxic. A comprehensive overview of all aspects of vegetable oils that impacts their potential for commercial use is provided. Topics discussed include: vegetable oil structure, processing, physical properties, classification, biodegradation and toxicity; oxidation and inhibition; wetting and wetting kinematics; and applications. As a class, vegetable oil-based quenchant formulations reported in the literature to date exhibit a number of disadvantages, the most notable being their relatively poor thermal-oxidative stability in comparison with petroleum oil-based quenchants in use. Potential pathways to vegetable oil-based fluid compositions that may rival the thermal-oxidative stability of many petroleum oil-based quenchants were introduced.

References

1.
MacKenzie
,
D. S.
, “
History of Quenching
,”
Int. Heat Treat. Surf. Eng.
, Vol.
2
, No.
2
,
2008
, pp.
68
73
https://doi.org/10.1179/174951508X358437
2.
Eamon
,
W.
,
Science and Secrets of Nature - Book of Secrets in Medieval Europe and Early Modern Culture
,
Princeton University Press
,
Princeton, NJ
,
1994
.
3.
MacKenzie
,
D. S.
and
Graham
,
G.
, “
Beer, Blood, and Urine – Mythological Quenchants of Ancient Blacksmiths
,” presented at the
IFHT 2016 – Conference Proceedings of the 23rd IFHTSE Congress
, Savannah, GA, April 18–21,
2016
, ASM International, Materials Park, OH, pp.
101
109
.
4.
French
,
H. J.
, “
Chapter VII – General Comparison of Different Coolants
,”
The Quenching of Steels
,
American Society for Steel Treating
,
Cleveland, OH
,
1930
, pp.
155
173
.
5.
Tagaya
,
M.
and
Tamura
,
I.
, “
Studies on the Quenching Media: 3rd Report. The Cooling Ability of Oils
,” Technical Report No. 123,
Osaka University, Osaka, Japan
,
1954
, pp.
305
319
.
6.
Tagaya
,
M.
and
Tamura
,
I.
, “
On the Deterioration of Quenching Oils
,” Report No. 274,
Osaka University, Osaka, Japan
,
1957
, pp.
403
426
.
7.
Young
,
F. V. K.
, “
The Refining and Hydrogenation of Fish Oil
,”
Fish Oil Bulletin No. 17
,
International Association of Fish Meal Manufacturers
,
Herts, UK
,
1986
.
8.
EPA
, “
Environmentally Acceptable Lubricants
,” Report No. EPA 800-R-11-002,
EPA
, Washington, D.C.,
2011
.
9.
Penn State University
,
Penn State and “Green” Hydraulic Fluids—A Fact Sheet
,
Penn State College of Agricultural Sciences Research Extension, The Pennsylvania State University
,
University Park, PA
,
2006
.
10.
Erhan
,
S. Z.
,
Sharma
,
B. K.
, and
Perez
,
J. M.
, “
Oxidation and Low Temperature Stability of Vegetable Oil-Based Lubricants
,”
Ind. Crops Prod.
, Vol.
24
, No.
3
,
2006
, pp.
292
299
https://doi.org/10.1016/j.indcrop.2006.06.008
11.
Weller
,
D.
and
Perez
,
J. M.
, “
A Study of the Effect of Chemical Structure on Friction and Wear: Part 2—Vegetable Oils and Esters
,”
Lubr. Eng.
, May
2001
, pp.
20
25
.
12.
Basiron
,
Y.
,
2007
, “
Overview of Global Oils & Fats and the Malaysian Palm Oil Industry
,” http://web.archive.org/save/_embed/http://iet.jrc.ec.europa.eu/remea/sites/remea/files/files/documents/events/basiron_global_oils_fats.pdf (Last accessed May 10, 2016)
13.
STATISTA
,
2016
, “
Global Production of Vegetable Oils From 2000/01 to 2015/16 (in Million Metric Tons)
,” https://perma.cc/K697-G8YE (Last accessed May 10, 2016)
14.
Simencio-Otero
,
R. L.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Use of Vegetable Oils and Animal Oils as Steel Quenchants: A Historical Review—1850–2010
,”
J. ASTM Int.
, Vol.
9
, No.
1
,
2012
, pp.
1
38
https://doi.org/10.1520/JAI103534
15.
Bailey
,
A. E.
,
Industrial Oil and Fat Products
, 2nd ed.,
Wiley
,
New York
,
1951
.
16.
Erhan
,
S. Z.
,
Industrial Uses of Vegetable Oils
,
AOCS Press
,
Urbana, IL
,
2005
.
17.
Kodali
,
D.
, “
High Performance Ester Lubricants from Natural Oils
,”
Ind. Lubr. Tribol.
, Vol.
54
, No.
4
,
2002
, pp.
165
170
https://doi.org/10.1108/00368790210431718
18.
Gunstone
,
F. D.
, “
Chapter 6—Vegetable Oils
,”
Bailey's Industrial Oil and Fat Products
, 6th ed.,
Shahidi
F.
, Ed.,
John Wiley & Sons
,
New York
,
2005
, pp.
213
267
.
19.
Knothe
,
G.
, “
Dependence of Biodiesel Fuel Properties on the Structure of Fatty Acid Alkyl Esters
,”
Fuel Process. Technol.
, Vol.
86
, No.
10
,
2005
, pp.
1059
1070
https://doi.org/10.1016/j.fuproc.2004.11.002
20.
Fox
,
N.
and
Stachowiak
,
G.
, “
Vegetable Oil-Based Lubricants—A Review of Oxidation
,”
Tribol. Int.
, Vol.
40
, No.
7
,
2007
, pp.
1035
1046
https://doi.org/10.1016/j.triboint.2006.10.001
21.
Akbar
,
E.
,
Yaakob
,
Z.
,
Kartom Kamarudin
,
S.
,
Ismail
,
M.
, and
Salimon
,
J.
, “
Characteristic and Composition of Jatropha Curcas Oil Seed From Malaysia and Its Potential as Biodiesel Feedstock
,”
Eur. J. Sci. Res.
, Vol.
29
, No.
3
,
2009
, pp.
396
403
.
22.
Nyam
,
K. L.
,
Tan
,
C. P.
,
Yaakob
,
B.
,
Man
,
C.
,
Lai
,
O. M.
, and
Long
,
K.
, “
Physicochemical Properties of Kalahari Melon Seed Oil Following Extractions Using Solvent and Aqueous Enzymatic Methods
,”
Int. J. Food Sci. Technol.
, Vol.
44
, No.
4
,
2009
, pp.
694
701
https://doi.org/10.1111/j.1365-2621.2008.01828.x
23.
Bala
,
M.
,
Nag
,
T. N.
,
Kumar
,
S.
,
Vyas
,
M.
,
Kumar
,
A.
, and
Bhogal
,
N. S.
, “
Proximate Composition and Fatty Acid Profile of Pongamia Pinnata, a Potential Biodiesel Crop
,”
J. Am. Oil Chem. Soc.
, Vol.
88
, No.
4
,
2011
, pp.
559
562
https://doi.org/10.1007/s11746-010-1699-2
24.
Okieimen
,
F. E.
and
Eromosele
,
C. O.
, “
Fatty Acid Composition of the Seed Oil of Khaya Senegalensis
,”
Bioresour. Technol.
, Vol.
69
, No.
3
,
1999
, pp.
279
280
https://doi.org/10.1016/S0960-8524(98)00190-4
25.
Djenontin
,
T. S.
,
Wotto
,
V. D.
,
Avlessi
,
F.
,
Lozano
,
P.
,
Sohounhloué
,
D. K. C.
, and
Pioch
,
D.
, “
Composition of Azadirachta indica and Carapa procera (Meliaceae) Seed Oils and Cakes Obtained After Oil Extraction
,”
Ind. Crops Prod.
, Vol.
38
,
2012
, pp.
39
45
https://doi.org/10.1016/j.indcrop.2012.01.005
26.
Chowdhury
,
K.
,
Banu
,
L. A.
,
Khan
,
S.
, and
Latif
,
A.
, “
Studies on the Fatty Acid Composition of Edible Oil
,”
Bangladesh J. Sci. Ind. Res.
, Vol.
42
, No.
3
,
2007
, pp.
311
316
https://doi.org/10.3329/bjsir.v42i3.669
27.
Zambiazi
,
R. C.
,
Przybylski
,
R.
,
Zambiazi
,
M. W.
, and
Mendonça
,
C. B.
, “
Fatty Acid Composition of Vegetable Oils and Fats
,”
B.CEPPA, Curitiba
, Vol.
25
, No.
1
,
2007
, pp.
111
120
, https://doi.org/10.1016/j.indcrop.2012.01.00
28.
Nzikou
,
J. M.
,
Matos
,
L.
,
Bouanga-Kalou
,
G.
,
Ndangui
,
C. B.
,
Pambou-Tobi
,
N. P. G.
,
Kimbonguila
,
A.
,
Silou
,
T.
,
Linder
,
M.
, and
Desobry
,
S.
, “
Chemical Composition on the Seeds and Oil of Sesame (Sesamum indicum L.) Grown in Congo-Brazzaville
,”
Adv. J. Food Sci. Technol.
, Vol.
1
, No.
1
,
2009
, pp.
6
11
.
29.
Guillén
,
M. D.
and
Cabo
,
N.
, “
Relationships Between the Composition of Edible Oils and Lard and the Ratio of the Absorbance of Specific Bands of Their Fourier Transform Infrared Spectra. Role of Some Bands of the Fingerprint Region
,”
J. Agric. Food Chem.
, Vol.
46
, No.
5
,
1998
, pp.
1788
1793
https://doi.org/10.1021/jf9705274
30.
Vlachos
,
N.
,
Skopelitis
,
Y.
,
Psaroudaki
,
M.
,
Konstantinidou
,
V.
,
Chatzilazarou
,
A.
, and
Tegou
,
E.
, “
Applications of Fourier Transform-Infrared Spectroscopy to Edible Oils
,”
Anal. Chim. Acta
, Vol.
573–574
,
2006
, pp.
459
465
https://doi.org/10.1016/j.aca.2006.05.034
31.
Maggio
,
R. M.
,
Kaufman
,
T. S.
,
Del Carlo
,
M.
,
Cerretani
,
L.
,
Bendini
,
A.
,
Cichelli
,
A.
, and
Compagnone
,
D.
, “
Monitoring of Fatty Acid Composition in Virgin Olive Oil by Fourier Transformed Infrared Spectroscopy Coupled With Partial Least Squares
,”
Food Chem.
, Vol.
114
, No.
4
,
2009
, pp.
1549
1554
https://doi.org/10.1016/j.foodchem.2008.11.029
32.
Hong
,
J.-H.
,
Yamaoka-Koseki
,
S.
, and
Yasumoto
,
K.
, “
Determination of Palmitic Acid, Oleic Acid and Linoleic Acid by Near-Infrared Transflectance Spectroscopy in Edible Oils
,”
Food Sci. Technol. Int.
, Vol.
2
, No.
3
,
1996
, pp.
146
149
https://doi.org/10.3136/fsti9596t9798.2.146
33.
Azizian
,
H.
and
Kramer
,
J. K.
, “
A Rapid Method for the Quantification of Fatty Acids in Fats and Oils With Emphasis on Trans Fatty Acids Using Fourier Transform Near Infrared Spectroscopy (FT-NIR)
,”
Lipids
, Vol.
40
, No.
8
,
2005
, pp.
855
867
https://doi.org/10.1007/s11745-005-1448-3
34.
Christie
,
W. W.
,
High-Performance Liquid Chromatography and Lipids: A Practical Guide
,
Pergamon Press
,
Oxford, UK
,
1987
.
35.
Brondz
,
I.
, “
Development of Fatty Acid Analysis by High-Performance Liquid Chromatography, Gas Chromatography, and Related Techniques
,”
Anal. Chim. Acta
, Vol.
465
, No.
1
,
2002
, pp.
1
37
https://doi.org/10.1016/S0003-2670(01)01467-2
36.
Holčapek
,
M.
,
Jandera
,
P.
,
Zderadička
,
P.
, and
Hrubá
,
L.
, “
Characterization of Triacylglycerol and Diacylglycerol Composition of Plant Oils Using High-Performance Liquid Chromatography–Atmospheric Pressure Chemical Ionization Mass Spectrometry
,”
J. Chromatogr. A
, Vol.
1010
, No.
2
,
2003
, pp.
195
215
https://doi.org/10.1016/S0021-9673(03)01030-6
37.
Craske
,
J. D.
and
Bannon
,
C. D.
, “
Gas Liquid Chromatography Analysis of the Fatty Acid Composition of Fats and Oils: A Total System for High Accuracy
,”
J. Am. Oil Chem. Soc.
, Vol.
64
, No.
10
,
1987
, pp.
1413
1417
https://doi.org/10.1007/BF02636990
38.
Mukherjee
,
K. D.
and
Weber
,
N.
,
CRC Handbook of Chromatography: Analysis of Lipids
,
CRC Press
,
Boca Raton, FL
,
1993
.
39.
AOCS Official Method Ce 1f-96
,
Determination of CIS- and Trans-Fatty Acids in Hydrogenated and Refined Oils and Fats by Capillary GLC
,
American Oil Chemists' Society
,
Urbana, IL
,
2002
.
40.
Delmonte
,
P.
,
Fardin Kia
,
A. R.
,
Kramer
,
J. K.
,
Mossoba
,
M. M.
,
Sidisky
,
L.
, and
Rader
,
J. I.
, “
Separation Characteristics of Fatty Acid Methyl Esters Using SLB-IL111, A New Ionic Liquid Coated Capillary Gas Chromatographic Column
,”
J. Chromatogr. A
, Vol.
1218
, No.
3
,
2011
, pp.
545
554
https://doi.org/10.1016/j.chroma.2010.11.072
41.
Hopkins
,
C.
and
Bernstein
,
H.
, “
Applications of Proton Magnetic Resonance Spectra in Fatty Acid Chemistry
,”
Can. J. Chem.
, Vol.
37
, No.
4
,
1959
, pp.
775
782
https://doi.org/10.1139/v59-104
42.
Miyake
,
Y.
,
Yokomizo
,
K.
, and
Matsuzake
,
N.
, “
Determination of Unsaturated Fatty Acid Composition by High-Resolution Nuclear Magnetic Resonance Spectroscopy
,”
J. Am. Oil Chem. Soc.
, Vol.
75
, No.
9
,
1998
, pp.
1091
1094
https://doi.org/10.1007/s11746-998-0295-1
43.
Guillén
,
M. D.
and
Ruiz
,
A.
, “
Rapid Simultaneous Determination by Proton NMR of Unsaturation and Composition of Acyl Groups in Vegetable Oils
,”
Eur. J. Lipid Sci. Technol.
, Vol.
105
, No.
11
,
2003
, pp.
688
696
https://doi.org/10.1002/ejlt.200300866
44.
Zamora
,
R.
and
Hildago
,
F. J.
, “
Determination of Fatty Acid Composition and Oxidation in Fish Oils by High Resolution Nuclear Magnetic Resonance Spectroscopy
,”
Modern Magnetic Resonance: Part 1: Applications in Chemistry, Biological and Marine Sciences
,
Webb
G. A.
, Ed.,
Springer
,
New York
,
2006
, pp.
925
931
.
45.
Skiera
,
C.
,
Steliopoulos
,
P.
,
Kuballa
,
T.
,
Holzgrabe
,
U.
, and
Diehl
,
B.
, “
Determination of Free Fatty Acids in Edible Oils by 1H NMR Spectroscopy
,”
Lipid Technol.
, Vol.
24
, No.
12
,
2012
, pp.
279
281
https://doi.org/10.1002/lite.201200241
46.
Pei
,
H. J.
,
Shen
,
Y. J.
,
Shen
,
C. G.
, and
Wang
,
G. C.
, “
Application of Castor Oil-based Cutting Fluids in Precision Turning
,”
Appl. Mech. Mater.
, Vols.
130–134
,
2012
, pp.
3830
3834
, https://doi.org/10.4028/www.scientific.net/A
47.
Canale
,
L. C. F.
,
Fernandes
,
M. R.
,
Augustinho
,
S. C. M.
,
Totten
,
G. E.
, and
Farah
,
A. F.
, “
Oxidation of Vegetable Oils and its Impact on Quenching Performance
,”
Int. J. Mater. Product Technol.
, Vol.
24
, Nos.
1–4
,
2005
, pp.
101
125
, https://doi.org/10.1504/IJMPT.2005.007943
48.
de Souza
,
E. C.
,
Belinato
,
G.
,
Simencio-Otero
,
R. L.
,
Simencio
,
E.
,
Augustinho
,
S. C. M.
,
Capelupi
,
W.
,
Conconi
,
C.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Thermal Oxidative Stability of Vegetable Oils as Metal Heat Treatment Quenchants
,”
J. ASTM Int.
, Vol.
9
, No.
1
,
2012
, pp.
1
30
https://doi.org/10.1520/JAI103817
49.
Gilbert
,
E. E.
, “
The Unique Chemistry of Castor Oil
,”
J. Chem. Educ.
, Vol.
18
, No.
7
,
1941
, pp.
338
341
https://doi.org/10.1021/ed018p338
50.
Bhowmick
,
D. N.
and
Sarma
,
S. A. N.
, “
Dehydration of Castor Oil
,”
Ind. Eng. Chem. Prod. Res. Dev.
, Vol.
16
, No.
1
,
1977
, pp.
107
111
https://doi.org/10.1021/i360061a022
51.
Sitorus
,
M.
,
Ibrahim
,
S.
,
Nurdin
,
H.
, and
Darwis
,
D.
, “
Transformation of Ricinoleic of Castor Oil into Linoleic (Omega-6) and Conjugated Linoleic Acid by Dehydration
,”
Indo. J. Chem.
, Vol.
9
, No.
2
,
2009
, pp.
278
284
https://doi.org/10.22146/ijc.21543
52.
Nezihe
,
A.
,
Elif
,
D.
,
Özlem
,
Y.
, and
Tunçer
,
E. A.
, “
Microwave Heating Application To Produce Dehydrated Castor Oil
,”
Ind. Eng. Chem. Res.
, Vol.
50
, No.
1
,
2011
, pp.
398
403
https://doi.org/10.1021/ie1013037
53.
Prabhu
,
K. N.
and
Fernandes
,
P.
, “
Determination of Wetting Behavior, Spread Activation Energy, and Quench Severity of Bioquenchants
,”
Metall. Mater. Trans. B
, Vol.
38
, No.
4
,
2007
, pp.
631
640
https://doi.org/10.1007/s11663-007-9060-3
54.
Tagaya
,
M.
and
Tamura
,
I.
, “
Studies on the Quenching Media—The Cooling Ability of Oils
,” Technology Report No. 123,
Osaka University, Osaka, Japan
,
1957
.
55.
Tagaya
,
M.
and
Tamura
,
I.
, “
Studies on the Quenching Media—On the Deterioration of Quenching Oils
,” Technology Report No. 274,
Osaka University, Osaka, Japan
,
1957
.
56.
Miwa
,
T. K.
, “
Jojoba Oil Wax Esters and Derived Fatty Acids and Alcohols: Gas Chromatographic Analyses
,”
J. Am. Oil Chem. Soc.
, Vol.
48
, No.
6
,
1971
, pp.
259
264
https://doi.org/10.1007/BF02638458
57.
Allawzi
,
M.
,
Abu-Arabi
,
M. K.
,
Al-Zoubi
,
H. S.
, and
Tamimi
,
A.
, “
Physicochemical Characteristics and Thermal Stability of Jordanian Jojoba Oil
,”
J. Am. Oil Chem. Soc.
, Vol.
75
, No.
1
,
1998
, pp.
57
62
https://doi.org/10.1007/s11746-998-0010-2
58.
El Kinawy
,
O.
,
El-Hamidi
,
M.
, and
Abdallah
,
R.
, “
Utilization of Non Edible Oils in Lubrication as Substitution to Mineral Oils
,”
J. Appl. Sci. Res.
, Vol.
9
, No.
6
,
2013
, pp.
3492
3496
https://doi.org/10.1007/s11746-998-0010-2
59.
Jain
,
A. K.
and
Suhane
,
A.
, “
Research Approach & Prospects of Non Edible Vegetable Oil as a Potential Resource for Biolubricant—A Review
,”
Adv. Eng. Appl. Sci.: Int. J.
, Vol.
1
, No.
1
,
2012
, pp.
23
32
https://doi.org/10.1007/s11746-998-0010-2
60.
Atabani
,
A. E.
,
Silitonga
,
A. S.
,
Ong
,
H. C.
,
Mahlia
,
T. M. I.
,
Masjuki
,
H. H.
,
Badruddin
,
I. A.
, and
Fayaz
,
H.
, “
Non-Edible Vegetable Oils: A Critical Evaluation of Oil Extraction, Fatty Acid Compositions, Biodiesel Production, Characteristics, Engine Performance and Emissions Production
,”
Renew. Sustain. Energy Rev.
, Vol.
18
,
2013
, pp.
211
245
https://doi.org/10.1016/j.rser.2012.10.013
61.
Honary
,
L. A. T.
, “
Vegetable-Based Hydraulic Oils
,”
Handbook of Hydraulic Fluid Technology
, 1st ed.,
Totten
G. E.
, Ed.,
Marcel Dekker, Inc.
,
New York
,
1999
, pp.
1095
1151
.
62.
Cahoon
,
E. B.
, “
Genetic Enhancement of Soybean Oil for Industrial Uses: Prospects and Challenges
,”
AgBioForum
, Vol.
6
, Nos.
1–2
,
2003
, pp.
11
13
.
63.
Chauhan
,
P. S.
and
Chhibber
,
V. K.
, “
Non-Edible Oil as a Source of Bio-Lubricant for Industrial Applications: A Review
,”
Int. J. Eng. Sci. Innov. Technol.
, Vol.
2
, No.
1
,
2013
, pp.
299
305
.
64.
O'Brien
,
R. D.
, “
Chapter 2—Fats and Oil Processing
,”
Fats and Oils: Formulating and Processing for Applications
, 2nd ed.,
CRC Press
,
Boca Raton, FL
,
2004
, pp.
72
188
.
65.
Coenen
,
J. W. E.
, “
Hydrogenation of Edible Oils
,”
J. Am. Oil Chem. Soc.
, Vol.
53
, No.
6
,
1976
, pp.
382
389
https://doi.org/10.1007/BF02605727
66.
Honary
,
L. A. T.
, “
Performance of Vegetable Oils as a Heat Treat Quenchant
,” presented at the
2nd International Conference on Quenching and Control of Distortion
, Cleveland, OH, November 4–7,
1996
, ASM International, Materials OH, pp.
595
603
.
67.
Otero
,
R. L. S.
, “
Calculation of Kobasko's Simplified Heat Transfer Coefficients From Cooling Curve Data Obtained with Small Probes
,”
J. ASTM Int.
, Vol.
9
, No.
4
,
2012
, pp.
1
8
https://doi.org/10.1520/JAI104304
68.
Lainer
,
K.
,
Tensi
,
H. M.
, and
Totten
,
G. E.
, “
Comparative Cooling Curve Performance of Two Vegetable Oils and a Mineral Oil
,” presented at the
18th Heat Treating Society Conference
, Chicago, IL, October 12–15,
1998
, ASM International, Materials Park, OH, pp.
568
574
.
69.
Totten
,
G. E.
,
Tensi
,
H. M.
, and
Lainer
,
K.
, “
Performance of Vegetable Oils as a Cooling Medium in Comparison to a Standard Mineral Oil
,”
J. Mater. Eng. Perform.
, Vol.
8
, No.
4
,
1999
, pp.
409
416
https://doi.org/10.1361/105994999770346693
70.
ISO 9950-1995
,
Industrial Quenching Oils - Determination Of Cooling Characteristics - Nickel-Alloy Probe Test Method
,
International Organization for Standardization
,
Geneva, Switzerland
,
1995
.
71.
ASTM D6200-01(2012),
Standard Test Method for Determination of Cooling Characteristics of Quench Oils by Cooling Curve Analysis
,
ASTM International
,
West Conshohocken, PA
,
2012
, www.astm.org
72.
de Souza
,
E. C.
,
Fernandes
,
M. R.
,
Augustinho
,
S. C. M.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Comparison of Structure and Quenching Performance of Vegetable Oils
,”
J. ASTM Int.
, Vol.
6
, No.
9
,
2009
, pp.
1
25
https://doi.org/10.1520/JAI102188
73.
de Souza
,
E. C.
,
Bronzini
,
C. A.
,
Gaston
,
A.
,
Canale
,
L. C. F.
,
Sanchez Sarmiento
,
G.
, and
Totten
,
G. E.
, “
Temperature Dependence of the Quenching Properties of Vegetable Oils Compared to Petroleum Oil Quenchants
,” presented at the
15th International Metallurgy and Materials Congress (IMMC, 2010)
, Istanbul, Turkey, November 11–13,
2010
, UCTEA Chamber of Metallurgical Engineers, Ankara, Turkey, pp.
1694
1787
.
74.
Komatsu
,
D.
,
de Souza
,
E. C.
,
Canale
,
L. F. C.
, and
Totten
,
G. E.
, “
Effect of Antioxidants and Corrosion Inhibitor Additives on the Quenching Performance of Soybean Oil
,”
J. Mech. Eng. – Slovenia
, Vol.
56
. No.
2
,
2010
, pp.
121
130
.
75.
Shinde
,
R.
and
Rao
,
D.
, “
Influence of Petroleum and Biodegradable Quenchants on Properties of Medium Carbon Steels
,”
Int. J. Sci. Eng. Technol. Res.
, Vol.
2
, No.
11
,
2013
, pp.
2052
2056
.
76.
Agboola
,
J. B.
,
Kamardeen
,
O. A.
,
Mudiare
,
E.
,
Adeyemi
,
M. B.
, and
Afolabi
,
S. A.
, “
Performance Assessment of Selected Nigerian Vegetable Oils as Quenching Media in Hardening Process for Medium Carbon Steel
,”
J. Miner. Mater. Character. Eng.
, Vol.
3
, No.
2
,
2015
, pp.
85
93
https://doi.org/10.4236/jmmce.2015.32011
77.
Agboola
,
J. B.
,
Abubakre
,
O. K.
,
Mudiare
,
E.
, and
Adeyemi
,
M. B.
, “
Effects of Bath Temperature on Cooling Rate, Mechanical Properties and Microstructure of Medium Carbon Steel During Quenching Operations
,”
J. Energy Technol. Policy
, Vol.
5
, No.
3
,
2015
, pp.
18
26
https://doi.org/10.4236/eng.2015.77039
78.
Eyitope
,
A. D.
,
2011
, “
Evaluation of Shea Butter as an Alternative Quench Media for Medium Carbon Steel
,” B.S. thesis,
Federal University of Technology
, Minna, Nigeria.
79.
Abdulmejeed
,
S. O. N.
,
2011
, “
Comparative Analysis of Neem Oil and Groundnut Oil as Quenching Media for Low Carbon Steel
,” B.S. thesis,
Federal University of Technology
, Minna, Nigeria.
80.
Obinna
,
J. V.
,
2011
, “
Comparative Analysis of Red Palm Oil and Palm Kernel Oil as Quenching Media for Low Carbon Steel
,” B.S. thesis,
Federal University of Technology
, Minna, Nigeria.
81.
Joshua
,
T. O.
,
Alao
,
O. A.
, and
Oluyori
,
R. T.
, “
Effects of Various Quenching Media on the Mechanical Properties of Inter-Critically Annealed 0.267 %C–0.83 % Mn Steel
,”
Int. J. Eng. Adv. Technol.
, Vol.
3
, No.
6
,
2014
, pp.
121
127
.
82.
Ramesh
,
G.
and
Prabhu
,
K. N.
, “
Wetting Kinetics, Kinematics and Heat Transfer Characteristics of Pongamia Pinnata Vegetable Oil for Industrial Heat Treatment
,”
Appl. Thermal Eng.
, Vol.
65
, Nos.
1–2
,
2014
, pp.
1
14
https://doi.org/10.1016/j.applthermaleng.2013.12.069
83.
Adekunle
,
A. S.
,
Adebiyi
,
K. A.
, and
Durowoju
,
M. O.
, “
Impact of Quench Severity and Hardness of AISI 4137 Using Eco-friendly Quenchants as Industrial Heat Treatment
,”
J. Mech. Eng. Sci.
, Vol.
4
,
2013
, pp.
409
417
https://doi.org/10.15282/jmes.4.2013.5.0038
84.
Durowoju
,
M. O.
,
Adebiyi
,
K. A.
, and
Adekunle
,
A. S.
, “
Use of Bioquenchants on Medium Carbon Steel for Industrial Heat Treatment
,”
Ann. Faculty Eng. Hunedoara – Int. J. Eng.
, Vol.
12
, No.
1
,
2014
, pp.
99
104
.
85.
Durowoju
,
M. O.
,
Adebiyi
,
K. A.
, and
Adekunle
,
A. S.
, “
Quench Severity of Bioquenchants on Medium Carbon Steel for Industrial Heat Treatment
,”
Ann. Faculty Eng. Hunedoara – Int. J. Eng.
, Vol.
11
, No.
4
,
2014
, pp.
53
58
.
86.
Adeyemi
,
M. B.
and
Adedeyo
,
S. M.
, “
Vegetable Oils for Hardening Medium Carbon Steel
,”
J. Appl. Sci. Technol.
, Vol.
14
, Nos.
1–2
,
2009
, pp.
74
78
.
87.
Hassan
,
S. B.
and
Aigbodion
,
V. S.
, “
Evaluation of Khaya Seed Oil (Mahogany Oil) as Quenchant in the Hardening Process of Plain Carbon Steel
,”
Pac. J. Sci. Technol.
, Vol.
14
, No.
1
,
2013
, pp.
19
30
.
88.
Salihu
,
S. A.
,
Sulaiman
,
Y. I.
, and
Hassan
,
S. B.
, “
Comparative Study of Neem Seed Oil and Watermelon Seed Oil as Quenching Media for Thermal Processing of Steel
,”
IOSR J. Pharm. Biol. Sci.
, Vol.
7
, No.
2
,
2013
, pp.
103
110
.
89.
Lazzeri
,
L.
,
Mattei
,
F.
,
Bucelli
,
F.
, and
Palmiei
,
S.
, “
Crambe Oil—A Potential New Hydraulic Oil and Quenchant
,”
Ind. Lubr. Tribol.
, Vol.
49
, No.
2
,
1997
, pp.
71
77
https://doi.org/10.1108/00368799710163893
90.
Razik
,
N. A.
and
Momen
,
M. A.
, “
Effect of Quenching Media on the Mechanical and Structural Properties of a Saudi Steel
,”
Arab Gulf J. Res. Math. Phys. Sci.
, Vol.
5
, No.
2
,
1987
, pp.
259
269
.
91.
Odusote
,
J. K.
,
Talabi
,
S. I.
, and
Agodinrin
,
G.
, “
Effect of Heat Treatment on Hardness and Wear Resistance of Failed Automobile Brake Disk
,”
Acta Techn. Corv. – Bull. Eng.
, Vol.
7
, No.
2
,
2014
, pp.
129
132
.
92.
Odusote
,
J. K.
,
Ajiboye
,
T. K.
, and
Rabiu
,
A. B.
, “
Evaluation of Mechanical Properties of Medium Carbon Steel Quenched in Water and Oil
,”
AU J.T.
, Vol.
15
, No.
4
,
2012
, pp.
218
224
.
93.
Odusote
,
J. K.
,
Ajiboye
,
T. K.
, and
Rabiu
,
A. B.
, “
Evaluation of Mechanical Properties of Medium Carbon Steel Quenched in Water and Oil
,”
J. Miner. Mater. Character. Eng.
, Vol.
11
,
2012
, pp.
859
862
.
94.
Ndaliman
,
M. B.
, “
An Assessment of Mechanical Properties of Medium Carbon Steel Under Different Quenching Media
,”
AU J.T.
, Vol.
10
, No.
2
,
2006
, pp.
100
104
.
95.
Kodali
,
D.
, “
High Performance Ester Lubricants from Natural Oils
,”
Ind. Lubr. Tribol.
, Vol.
54
, No.
4
,
2002
, pp.
165
170
https://doi.org/10.1108/00368790210431718
96.
Arisoy
,
K.
, “
Oxidative and Thermal Instability of Biodiesel
,”
Energy Sour. Part A: Recovery, Util. Environ. Effects
, Vol.
30
No.
16
,
2008
, pp.
1516
1522
.
97.
Achir
,
N.
,
Kara
,
W.
,
Chipeaux
,
C.
,
Trezzani
,
I.
, and
Cuvelier
,
M. E.
, “
Effect of Energy Transfer Conditions on the Chemical Degradation of Frying Oil
,”
Eur. J. Lipid Sci. Technol.
, Vol.
108
, No.
12
,
2006
, pp.
999
1006
https://doi.org/10.1002/ejlt.200600153
98.
Roman
,
O.
,
Heyd
,
B.
,
Broyart
,
B.
,
Castillo
,
R.
, and
Maillard
,
M. N.
, “
Oxidative Reactivity of Unsaturated Fatty Acids from Sunflower, High Oleic Sunflower and Rapeseed Oils Subjected to Heat Treatment, Under Controlled Conditions
,”
LWT-Food Sci. Technol.
, Vol.
52
, No.
1
,
2013
, pp.
49
59
https://doi.org/10.1016/j.lwt.2012.12.011
99.
Adhvaryu
,
A.
,
Erhan
,
S. Z.
,
Liu
,
Z. S.
, and
Perez
,
J. M.
, “
Oxidation Kinetic Studies of Oils Derived From Unmodified and Genetically Modified Vegetables Using Pressurized Differential Scanning Calorimetry and Nuclear Magnetic Resonance Spectroscopy
,”
Thermochim. Acta
, Vol.
364
, No.
1
,
2000
, pp.
87
97
https://doi.org/10.1016/S0040-6031(00)00626-2
100.
Sherwin
,
E.
, “
Oxidation and Antioxidants in Fat and Oil Processing
,”
J. Am. Oil Chem. Soc.
, Vol.
55
, No.
11
,
1978
, pp.
809
814
https://doi.org/10.1007/BF02682653
101.
Kamal-Eldin
,
A.
,
Lipid Oxidation Pathways
, Vol.
1
,
AOCS Press
,
Urbana, IL
,
2003
.
102.
Frankel
,
E.
, “
Chemistry of Free Radical and Singlet Oxidation of Lipids
,”
Prog. Lipid Res.
, Vol.
23
, No.
4
,
1985
, pp.
197
221
.
103.
Porter
,
N. A.
,
Caldwell
,
S. E.
, and
Mills
,
K. A.
, “
Mechanisms of Free Radical Oxidation of Unsaturated Lipids
,”
Lipids
, Vol.
30
, No.
4
,
1995
, pp.
277
290
https://doi.org/10.1007/BF02536034
104.
Hamilton
,
R. J.
,
Kalu
,
C.
,
Prisk
,
E.
,
Padley
,
B. F.
, and
Pierce
,
H.
, “
Chemistry of Free Radicals in Lipids
,”
Food Chem.
, Vol.
60
, No.
2
,
1997
, pp.
193
199
https://doi.org/10.1016/S0308-8146(96)00351-2
105.
Bockisch
,
M.
,
Fats and Oils Handbook
,
AOCS Press
,
Urbana, IL
,
1998
.
106.
Chen
,
C.
,
Yao
,
J.
, and
Chen
,
S.
, “
Investigation on Oxidation of Quenching Oil
,” presented at the
20th Congress for Heat Treatment and Surface Engineering
, Beijing, China, October 23–25,
2012
, Chinese Heat Treatment Society (CHTS), Beijing, China, pp.
417
422
.
107.
Fernie
,
C. E.
, “
Conjugated Linoleic Acid
,”
Encyclopedia of Food Sciences and Nutrition
, 2nd ed.,
Caballero
B.
,
Trugo
L.
, and
Finglas
P. M.
, Eds.,
Academic Press
,
New York
,
2003
, pp.
1581
1587
.
108.
Mannekote
,
J. K.
and
Kailas
,
S. V.
, “
The Effect of Oxidation on Tribological Performance of a Few Vegetable Oils
,”
J. Mater. Res. Technol.
, Vol.
1
, No.
2
,
2012
, pp.
91
95
https://doi.org/10.1016/S2238-7854(12)70017-0
109.
Newley
,
R.
,
Spikes
,
H.
, and
Macpherson
,
P.
, “
Oxidative Wear in Lubricated Contact
,”
J. Lubr. Technol.
, Vol.
102
, No.
4
,
1980
, pp.
539
544
https://doi.org/10.1115/1.3251592
110.
Honary
,
A. T.
and
Richter
,
E.
,
Biobased Lubricants and Greases: Chemistry, Technology and Products
,
John Wiley & Sons
,
New York
,
2011
.
111.
Ma
,
F.
and
Hanna
,
M. A.
, “
Biodiesel Production: A Review
,”
Bioresour. Technol.
, Vol.
70
, No.
1
,
1999
, pp.
1
15
https://doi.org/10.1016/S0960-8524(99)00025-5
112.
Demirbas
,
A.
and
Kara
,
H.
, “
New Options for Conversion of Vegetable Oils to Alternative Fuels
,”
Energy Sour. Part A
, Vol.
28
, No.
7
,
2006
, pp.
619
626
https://doi.org/10.1080/009083190951357
113.
Madankar
,
C. S.
,
Dalai
,
A. K.
, and
Naik
,
S.
, “
Green Synthesis of Biolubricant Basestock From Canola Oil
,”
Ind. Crops Prod.
, Vol.
44
,
2013
, pp.
139
144
https://doi.org/10.1016/j.indcrop.2012.11.012
114.
Hwang
,
H. S.
and
Erhan
,
S. Z.
, “
Modification of Epoxidized Soybean Oil for Lubricant Formulations With Improved Oxidative Stability and Low Pour Point
,”
J. Am. Oil Chem. Soc.
, Vol.
78
, No.
12
,
2001
, pp.
1179
1184
https://doi.org/10.1007/s11745-001-0410-0
115.
Lathi
,
P.
and
Mattiasson
,
B.
, “
Green Approach for the Preparation of Biodegradable Lubricant Basestock from Epoxidized Vegetable Oil
,”
Appl. Cat. B–Environ.
, Vol.
69
, Nos.
3–4
,
2007
, pp.
207
212
https://doi.org/10.1016/j.apcatb.2006.06.016
116.
Asadaukas
,
S.
,
Perez
,
J. M.
, and
Duda
,
J. L.
, “
Oxidative Stability and Antiwear Properties of High Oleic Vegetable Oils
,”
Lubr. Eng.
, Vol.
52
, No.
12
,
1996
, pp.
877
882
.
117.
Debruyne
,
I.
, “
Soybean Oil Processing: Quality Criteria and Flavor Reversion
,”
Oil Mill Gazetteer
, Vol.
110
,
2004
, pp.
10
11
.
118.
Bowman
,
W. F.
and
Stochowiak
,
G. W.
, “
Application of Sealed Capsule Differential Scanning Calorimetry – Part II: Assessing the Performance of Antioxidants in Base Oils
,”
Lubr. Eng.
, Vol.
55
, No.
5
,
1999
, pp.
22
29
.
119.
Paz
,
I.
and
Molero
,
M.
, “
Catalytic Effect of Solid Metals on Thermal Stability of Olive Oils
,”
J. Am. Oil. Chem. Soc.
, Vol.
77
, No.
2
,
2000
, pp.
127
130
https://doi.org/10.1007/s11746-000-0021-9
120.
Bianchi
,
S.
,
Parodi
,
A.
, and
Baglietto
,
L.
, “
Un Nuovo Mezzo Temprante di Origine Vegetale [A New Quenching Vegetable Oil]
,”
La Metall. Ital.
, Vol.
2013
, No.
9
,
2013
, pp.
15
22
.
121.
Parodi
,
A.
,
Marini
,
L.
,
Matta
,
F.
, and
Bianchi
,
S.
, Synthetic Quenching Fluid Composition, U.S. Patent 20,140,261,926, filed December 9, 2013, and issued September 18, 2014.
122.
Marini
,
L.
,
Matta
,
F.
, and
Bianchi
,
S.
, Synthetic Quenching Fluid Composition, European Patent EP 2,740,807, A1, filed December 10, 2012, and issued June 11, 2014.
123.
Parodi
,
A.
,
Marini
,
L.
, and
Matta
,
F.
,
Quenching Fluid Composition
,
World Intellectual Property Organization
,
Geneva, Switzerland
,
2004
.
124.
Canale
,
L. C. F.
,
Albano
,
L.
,
Totten
,
G. E.
, and
Meekisho
,
L.
, “
Hardenability of Steel
,”
Comprehensive Materials Processing
,
Hashmi
S.
, Ed.,
Elsevier Ltd
,
Kidlington, UK
,
2014
, pp.
39
97
.
125.
Prabhu
,
K. N.
and
Fernandes
,
P.
, “
Heat Transfer During Quenching and Assessment of Quench Severity—A Review
,”
J. ASTM Int.
, Vol.
6
, No.
1
,
2009
, 101784 https://doi.org/10.1520/STP49142S
126.
Miller
,
M.
, “
Chapter 18 – Additives for Bio-derived and Biodegradable Lubricants
,”
Lubricant Additives: Chemistry and Applications
, 2nd ed.,
Rudnick
L.R.
, Ed.,
CRC Press
,
Boca Raton, FL
, pp.
445
454
.
127.
ASTM D5864-11,
Standard Test Method for Determining Aerobic Aquatic Biodegradation of Lubricants or Their Components
,
ASTM International
,
West Conshohocken, PA
,
2011
, www.astm.org
128.
Aluyor
,
E. O.
,
Obahiagbon
,
K. O.
, and
Ori-Jesu
,
M.
, “
Biodegradation of Vegetable Oils: A Review
,”
Sci. Res. Essay
, Vol.
4
, No.
6
,
2009
, pp.
543
548
.
129.
Totten
,
G. E.
,
Webster
,
G. M.
,
Bishop
,
R. J.
, Jr.
, and
Sloan
,
W. E.
, “
Anhydrous Polyalkylene Glycol Hydraulic Fluids
,” presented at the
International Off-Highway & Powerplant Congress & Exposition
, Milwaukee, WI, September 11–13,
2000
, SAE, Warrendale, PA, Paper No. 2000–01-2557.
130.
Totten
,
G. E.
,
Cerf
,
J.
,
Bishop
,
R. J.
, Jr.
, and
Webster
,
G. M.
, “
Recent Results of Biodegradability and Toxicology Studies of Water-Glycol Hydraulic Fluids
,” presented at the
International Off-Highway & Powerplant Congress & Exposition
, Milwaukee, WI, September 8–10,
1997
, SAE, Warrendale, PA, Paper No. 972744.
131.
Völtz
,
M.
, “
New Test Method for Lubricant Biodegradability
,”
Machinery Lubrication
, March–April,
2014
, pp.
22
26
.
132.
ASTM D6731-01(2011),
Standard Test Method for Determining the Aerobic, Aquatic Biodegradability of Lubricants or Lubricant Components in a Closed Respirometer
,
ASTM International
,
West Conshohocken, PA
,
2011
, www.astm.org
133.
Rhee
,
I.-S.
, “
Chapter 8 – Biodegradable Hydraulic Fluids
,”
Handbook of Hydraulic Fluid Technology
, 2nd ed.,
Totten
G. E.
and
De Negri
V.
, Eds.,
CRC Press
,
Boca Raton, FL
,
2011
, pp.
319
362
.
134.
EPA-560/6-82-003, PB82-233008
,
Test Guidelines: Chemical Fate Aerobic Aquatic Biodegradation. Chicago, IL. Office of Toxic Substances, Office of Pesticides and Toxic Substances
,
U.S. Environmental Protection Agency
,
Washington, D.C.
,
1982
.
135.
OECD
,
1992
, “
OECD Guideline for Testing of Chemicals – No. 301 – Ready Biodegradability
,” https://perma.cc/B9RZ-7T2J (Last accessed March 1, 2016).
136.
Joseph
,
P. V.
,
Bhatnagar
,
P.
,
Saxena
,
D.
,
Basu
,
B.
, and
Malhotra
,
R. K.
, “
Designing Green Lubricants for Manufacturing Industry Using Renewable Base Materials
,” presented at the
Society of Tribologists & Lubrication Engineers Annual Meeting & Exhibition
, Detroit, MI, May 5–9,
2013
, STLE, Park Ridge, IL, pp.
50
53
.
137.
Wu
,
X.
,
Zhang
,
X.
,
Yang
,
S.
,
Chen
,
H.
, and
Wang
,
D.
, “
The Study of Epoxidized Rapeseed Oil Used as a Potential Biodegradable Lubricant
,”
J. Am. Oil Chem. Soc.
, Vol.
77
, No.
5
,
2000
, pp.
561
563
https://doi.org/10.1007/s11746-000-0089-2
138.
Vauhkonen
,
V.
,
Lauhanen
,
R.
,
Ventelä
,
S.
,
Suojaranta
,
J.
,
Pasila
,
A.
,
Kuokkanen
,
T.
,
Prokkola
,
H.
, and
Syväjärvi
,
S.
, “
The Phytotoxic Effects and Biodegradability of Stored Rapeseed Oil and Rapeseed Oil Methyl Ester
,”
Agric. Food Sci.
, Vol.
20
, No.
2
,
2011
, pp.
131
142
https://doi.org/10.2137/145960611797215673
139.
Demirbaş
,
A.
, “
Biodegradability of Biodiesel and Petrodiesel Fuels
,”
Energy Sour. Part A
, Vol.
31
, No.
2
,
2008
, pp.
169
174
https://doi.org/10.1080/15567030701521809
140.
Zhang
,
X.
,
Peterson
,
C. L.
,
Reece
,
D.
,
Möller
,
G.
, and
Haws
,
R.
, Year, “
Biodegradability of Biodiesel in the Aquatic Environment
,” https://perma.cc/BC6T-9LSF (Last accessed March 1, 2016).
141.
Sharma
,
B. K.
,
Adhvaryu
,
A.
,
Perez
,
J. M.
, and
Erhan
,
S. Z.
, “
Biobased Grease With Improved Oxidation Performance for Industrial Application
,”
J. Agric. Food Chem.
, Vol.
54
, No.
20
,
2006
, pp.
7594
7599
https://doi.org/10.1021/jf061584c
142.
John Deere
,
2011
, “
Bio HyGard II – Good for the Earth
,”
John Deere Brochure No. DK8536
, https://perma.cc/VEU5-YZKW (Last accessed March 4 2016), https://perma.cc/VEU5-YZKW
143.
Battersby
,
N. S.
, “
The Biodegradability and Microbial Toxicity Testing of Lubricants – Some Recommendations
,”
Chemosphere
, Vol.
41
, No.
7
,
2000
, pp.
1011
1027
https://doi.org/10.1016/S0045-6535(99)00517-2
144.
Rhee
,
I.-S.
, “
Assessing the Biodegradability of Hydraulic Fluids Using a Bio-Kinetic Model
,”
Tribol. Lubr. Technol.
, Vol.
66
, No.
12
,
2010
, pp.
60
65
.
145.
Salam
,
D. A.
,
Naik
,
N.
,
Suidan
,
M. T.
, and
Venosa
,
A. D.
, “
Assessment of Aquatic Toxicity and Oxygen Depletion During Aerobic Biodegradation of Vegetable Oil: Effect of Oil Loading and Mixing Regime
,”
Environ. Sci. Technol.
, Vol.
46
, No.
4
,
2012
, pp.
2352
2359
https://doi.org/10.1021/es2037993
146.
Gong
,
Z.
,
Li
,
P.
,
Wilke
,
B. M.
, and
Kassem
,
A.
, “
Effects of Vegetable Oil Residue After Soil Extraction on Physical-Chemical Properties of Sandy Soil and Plant Growth
,”
J. Environ. Sci.
, Vol.
20
, No.
12
,
2008
, pp.
1458
1462
https://doi.org/10.1016/S1001-0742(08)62549-8
147.
Andriollo
,
J. P.
,
Parodi
,
A.
,
Baglietto
,
L.
, and
Bianchi
,
S.
, “
Vegetable Oil vs Mineral Oil in Quenching Applications
,” presented at the
6th International Conference on Quenching and Control of Distortion
, Chicago, IL, September 9–13,
2012
, ASM International, Materials, OH, 2012, pp.
6-6
-
620
.
148.
Akor
,
T.
and
Ashwe
,
A.
, “
Investigation of the Potential of Jatropha Seed Oil as Austempering Quenchant for Medium Carbon Steel
,”
Am. J. Eng. Res.
, Vol.
3
, No.
8
,
2014
, pp.
209
211
.
149.
Chennakesava Reddy
,
A.
, “
Effects of Holding Temperature and Time for Austempering on Impact Toughness of Medium Carbon and High Alloy Steel
,”
Int. J. Comput. Network Security
, Vol.
3
, No.
1
,
2011
, pp.
8
11
.
150.
Putatunda
,
S. K.
, “
Influence of Austempering Temperature on Microstructure and Fracture Toughness of a High-Carbon, High-Silicon and High-Manganese Cast Steel
,”
Mater. Des.
, Vol.
24
, No.
6
,
2003
, pp.
435
443
https://doi.org/10.1016/S0261-3069(03)00090-6
151.
Ademoh
,
N. A.
, “
Effect of Nigerian Neem Seed Oil as Austempering Quenchant for Locally Recycled Mild Steel
,”
Middle-East J. Sci. Res.
, Vol.
23
, No.
1
,
2015
, pp.
110
118
.
152.
Ramesh
,
G.
and
Prabhu
,
N. K.
, “
Review of Thermo-Physical Properties, Wetting and Heat Transfer Characteristics of Nanofluids and their Applicability in Industrial Quench Heat Treatment
,”
Nanoscale Res. Lett.
, Vol.
6
, No.
1
,
2011
, pp.
334
349
. https://doi.org/10.1186/1556-276X-6-334
153.
Ramesh
,
G.
and
Prabhu
,
K. N.
, “
Wetting Kinematics and Spreading Behavior of Water Based Aluminium Nanofluids During Immersion Quenching
,”
Int. Heat Treatment Surf. Eng.
, Vol.
7
, No.
2
,
2013
, pp.
74
78
https://doi.org/10.1179/1749514813Z.00000000054
154.
Jagannath
,
V.
and
Narayan
,
K. N.
, “
Severity of Quenching and Kinetics of Wetting of Nanofluids and Vegetable Oils
,”
J. ASTM Int.
, Vol.
6
, No.
3
,
2009
, pp.
1
9
https://doi.org/10.1520/JAI101800
155.
Kim
,
H.
,
Buongiorno
,
J.
,
Hu
,
L. W.
, and
McKrell
,
T.
, “
Effect of Nanoparticle Deposition on Rewetting Temperature and Quench Velocity in Experiments with Stainless Steel Rodlets and Nanofluids
,” presented at the
Seventh International ASME Conference on Nanochannels, Microchannels and Minichannels, ICNMM2009
, Pohang, South Korea, June 22–24,
2009
, ASME International, New York, Paper No. ICNMM2009-82082.
156.
Župan
,
J.
,
Filetin
,
T.
, and
Landek
,
D.
, “
The Effect of TiO2 Nanoparticles on Fluid Quenching Characteristics
,”
Int. Heat Treatment Surf. Eng.
, Vol.
6
, No.
2
,
2012
, pp.
56
60
https://doi.org/10.1179/1749514812Z.00000000014
157.
Gestwa
,
W.
and
Przylecka
,
M.
, “
The Modification of Sodium Polyacrylate Water Solution Cooling Properties by Al2O3
,”
Adv. Mater. Sci. Eng.
, Vol.
2010
,
2010
, 949853 https://doi.org/10.1155/2010/949853
158.
Ho
,
G.
,
Lin
,
L.-K.
, and
Kuo
,
W.-F.
, Method for Quenching Steel, U.S. Patent 7,985,305 B2, filed August 4, 2009, and issued July 26, 2011.
159.
Li
,
J.
,
Zhang
,
Z.
,
Zou
,
P.
,
Grzybowski
,
S.
, and
Zahn
,
M.
, “
Preparation of a Vegetable Oil-Based Nanofluid and Investigation of Its Breakdown and Dielectric Properties
,”
IEEE Electr. Insulation Mag.
, Vol.
28
, No.
5
2012
, pp.
43
50
.
160.
Kumar
,
M. S.
,
Vasu
,
V.
, and
Gopal
,
A. V.
, “
Thermal Conductivity and Viscosity of Vegetable Oil–Based Cu, Zn, and Cu–Zn Hybrid Nanofluids
,”
J. Test. Eval.
, Vol.
44
, No.
3
,
2016
, pp.
1
7
https://doi.org/10.1520/JTE20140286
161.
Dolinsky
,
A. A.
,
Grabov
,
L. N.
,
Moskalenko
,
A. A.
,
Grabova
,
T. L.
, and
Logvinenko
,
P. N.
, “
Cooling Characteristics of Meso- and Nanofluids Prepared by the DPIE Method
,”
Mater. Perform. Character.
, Vol.
3
, No.
4
,
2014
, pp.
337
351
.
162.
Dolinsky
,
A. A.
,
Moskalrnko
,
A. A.
,
Grabova
,
T. L.
,
Kobasko
,
N. I.
, and
Logvinenko
,
P. N.
, “
Cooling Intensity of Micro and Nanofluids to Be Used as a Quenchant for Hardening of Steel Parts and Tools
,” presented at the
4th International Conference on Fluid Mechanics, and Heat & Mass Transfer (FLUIDSHEAT’13)
, Dubrovnik, Croatia, June 25–27,
2013
, WSEAS Press, pp.
88
93
.
163.
Grabov
,
L. N.
,
Moskalenko
,
A. A.
,
Logvinenko
,
P. N.
, and
Kobasko
,
N. I.
, “
DPIE System to Improve Cooling Capacity of a Canola Oil to be Used as a Quenchant
,” presented at the
Recent Researches in Communications and Computers Conference
, Kos Island, Greece, July 14–17,
2012
, WSEAS Press, pp.
490
494
.
164.
Lukoil
,
2017
, “
I-20
,” https://perma.cc/ZF5C-JSDE (Last accessed March 20, 2016).
165.
Madtha
,
L. S.
and
Babu
,
B. R. N.
, “
Experimental Behavioural Study Of Ductile Cast Iron Microstructure And Its Mechanical Properties
,”
Int. J. Eng. Res. Appl.
, Vol.
3
, No.
3
,
2013
, pp.
1470
1475
.
166.
Hassan
,
S. B.
,
Agboola
,
J. B.
,
Aigbodion
,
V. S.
, and
Williams
,
E. J.
, “
Hardening Characteristics of Plain Carbon Steel and Ductile Cast Iron Using Neem Oil as Quenchant
,”
J. Miner. Mater. Character. Eng.
, Vol.
10
, No.
2
,
2011
, pp.
161
172
.
167.
Author,
Metallic Materials and Elements for Aerospace Vehicle Structures, Military Standardization Handbook 5D
, U.S. Department of Defense,
Washington, D.C.
,
1983
.
168.
SAE AMS 2770L
,
Heat Treatment of Wrought Aluminum Alloy Parts
,
SAE International
,
Warrendale, PA
,
2014
.
169.
SAE 2771E
,
Heat Treatment of Aluminum Alloy Castings
,
SAE International
,
Warrendale, PA
,
2013
.
170.
SAE AMS 3025C
,
Polyalkylene Glycol Heat Treat Quenchant
,
SAE International
,
Warrendale, PA
,
2009
.
171.
Totten
,
G. E.
,
Bates
,
C. E.
, and
Jarvis
,
L. M.
, “
Type I Quenchants for Aluminum Heat Treating
,”
Heat Treatment
,
1991
(December), pp.
16
19
.
172.
Totten
,
G. E.
,
Bates
,
C. E.
, and
Webster
,
G. M.
, “
Chapter 20—Quenching
,”
Handbook of Aluminum: Vol. 1—Physical Metallurgy and Processes
,
Totten
G. E.
and
MacKenzie
D. S.
, Eds.,
Marcel Dekker
,
New York
,
2003
, pp.
971
1062
.
173.
Prabhu
,
K. N.
and
Hemanna
,
P.
, “
Heat Transfer During Quenching of Modified and Unmodified Gravity Die-Cast A357 Cylindrical Bars
,”
J. Mater. Eng. Perform.
, Vol.
15
, No.
3
,
2006
, pp.
311
315
https://doi.org/10.1361/105994906X108729
174.
Abubakre
,
O. K.
,
Mamaki
,
U. P.
, and
Muriana
,
R. A.
, “
Investigation of the Quenching Properties of Selected Media on 6061 Aluminum Alloy
,”
J. Miner. Mater. Character. Eng.
, Vol.
8
, No.
4
,
2009
, pp.
303
315
.
175.
Kovalco
,
P. M.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Quenching Fundamentals—Quenching of Aluminum Alloys: Cooling Rate, Strength and Intergranular Corrosion
,”
Heat Treating Prog.
, Vol.
9
, No.
6
,
2009
, pp.
25
30
.
176.
Kovalco
,
P. M.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Quenching Fundamentals—Quenching of Aluminum Alloys: Property Prediction by Quench Factor Analysis
,”
Heat Treating Prog.
, Vol.
9
, No.
3
,
2009
, pp.
23
28
.
177.
Kavalco
,
P. M.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Distortion Reduction by Aqueous Polymer Quenching of Aluminum Alloys
,”
Industrial Heating
, Vol.
79
, No.
2
,
2011
, pp.
39
42
.
178.
Adekunle
,
A. S.
,
Odusote
,
J. K.
, and
Rabiu
,
A. B.
, “
Effect of Using Vegetable Oils as Quenching Media for Pure Commercial Aluminium
.” In: 2012
International Conference on Clean Technology & Engineering Management (ICCEM 2012)
, Covenant University, Ota, Nigeria, November 12–15,
2012
, pp.
321
325
.
179.
Tagaya
,
M.
and
Tamura
,
I.
, “
Studies on the Quenching Media (1st Report): An Analysis of Cooling Process During Quenching
,”
Mem. Inst. Sci. Ind. Res. Osaka University
, Vol.
9
,
1952
, pp.
85
102
.
180.
Narayan
,
P. K.
,
Krishna
,
S.
, and
Fernandes
,
P.
, “
Assessment of Quench Severity of Vegetable Oil Blends for Heat Treatment of Steel
,”
Curie
, Vol.
2
, No.
2
,
2009
, pp.
28
37
.
181.
Jagannath
,
V.
and
Prabhu
,
K. N.
, “
Quench Severity and Kinetics of Wetting of Vegetable Oil Blends and Nanofluid for Heat Treatment
,”
Strojarstvo
, Vol.
53
, No.
1
,
2011
, pp.
19
22
.
182.
Fernandes
,
P.
and
Prabhu
,
K. N.
, “
Experimental Investigation of Contact Angle and Quench Severity of Mineral Oil and Palm Oil Blends
,”
J. Mater. Sci. Eng. B
, Vol.
3
,
2013
, No. 2, pp.
90
96
.
183.
Agboola
,
J. B.
,
Abubakre
,
O. K.
,
Mudiare
,
E.
, and
Adeyemi
,
M. B.
, “
Performance Assessment of Vegetable Oil and Mineral Oil Blends During Heat Treatment of Medium Carbon Steel
,”
Int. J. Microstruct. Mater. Prop.
, Vol.
11
, No.
3–4
,
2015
. https://doi.org/10.1504/IJMMP.2016.079141
184.
Julian
,
P. L.
,
Iveson
,
H. T.
, and
Radlove
,
S. B.
, Hydroxylation of Vegetable Oils and Products Thereof, U.S. Patent 2,752,376, filed April 19, 1952, and issued June 26, 1956.
185.
Findley
,
T. W.
,
Ohlson
,
J. L.
, and
Kuester
,
F. E.
, Treatment of Epoxy Fatty Compositions, U.S. Patent 3,035,069, filed April 10, 1957, and issued May 05, 1962.
186.
Adhvaryu
,
A.
and
Erhan
,
S.
, “
Epoxidized Soybean Oil as a Potential Source of High-Temperature Lubricants
,”
Ind. Crops Prod.
, Vol.
15
, No.
3
,
2002
, pp.
247
254
. https://doi.org/10.1016/S0926-6690(01)00120-0
187.
Erhan
,
S. Z.
,
Adhvaryu
,
A.
, and
Liu
,
Z.
, Chemically Modified Vegetable Oil-Based Industrial Fluid, U.S. Patent 6,583,302 B1, filed January 25, 2002, and issued June 24, 2003.
188.
Simencio-Otero
,
R. L.
,
Canale
,
L. C. F.
,
Schicchi
,
D. S.
,
Agaliotis
,
E.
,
Totten
,
G. E.
, and
Sarmiento
,
G. S.
, “
Epoxidized Soybean Oil: Evaluation of Oxidative Stabilization and Metal Quenching/Heat Transfer Performance
,”
J. Mater. Eng. Perform.
, Vol.
22
, No.
7
,
2013
, pp.
1937
1944
https://doi.org/10.1007/s11665-013-0546-7
189.
CAS No.: 8013–0708
,
2006
, “
OECD SIDS - Epoxidized Oils and Derivatives
,” https://perma.cc/BZU8-ZBAB (Last accessed May 13, 2016), https://perma.cc/BZU8-ZBAB
190.
Simencio-Otero
,
R. L.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Bioquenchants Formulated From Epoxidized Soybean Oil: Evaluation of Metal Quenching and Heat Transfer Performance
,”
Int. J. Mech. Eng. Autom.
, Vol.
1
, No.
2
,
2014
, pp.
101
110
https://doi.org/10.2495/AMEE140121
191.
Doll
,
K.
,
Sharma
,
B. K.
, and
Erhan
,
S. Z.
, “
Friction Reducing Properties and Stability of Epoxidized Oleochemicals
,”
Clean-Soil Air Water
, Vol.
36
, No.
8
,
2008
, pp.
700
705
https://doi.org/10.1002/clen.200800063
192.
Satyanarayana
,
M.
, “
A Comparative Study of Vegetable Oil Methyl Esters (Biodiesels)
,”
Energy
, Vol.
36
, No.
4
,
2011
, pp.
2129
2137
https://doi.org/10.1016/j.energy.2010.09.050
193.
Lathi
,
P.
and
Mattiasson
,
B.
, “
Green Approach for the Preparation of Biodegradable Lubricant Base Stock From Epoxidized Vegetable Oil
,”
Appl. Catal. B-Environ.
, Vol.
69
, Nos.
3–4
,
2007
, pp.
207
212
https://doi.org/10.1016/j.apcatb.2006.06.016
194.
Quinchia
,
L. A.
,
Delgado
,
M. A.
,
Reddyhoff
,
T.
, and
Spikes
,
H. A.
, “
Tribological Studies of Potential Vegetable Oil-Based Lubricants Containing Environmentally Friendly Viscosity Modifiers
,”
Tribol. Int.
, Vol.
69
,
2014
, pp.
110
117
https://doi.org/10.1016/j.triboint.2013.08.016
195.
Simencio-Otero
,
R. L.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Metallurgical Behavior of AISI 1045 Steel Quenched into Chemically Modified Bioquenchants
,” presented at the
Heat Treat 2015 Conference & Exposition Conference Proceedings
, Detroit, MI, October 20–22,
2015
, Cobo Convention Center, ASM International, Materials Park, OH, pp.
510
517
.
196.
Simencio Otero
,
R. L.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Bioquenchants Based on Chemically Modified Vegetable Oil: Physical Properties and Metallurgical Behavior
,” presented at the
European Conference on Heat Treatment 2015 & 22nd IFHTSE Congress
, Venice, Italy, May 20–22,
2015
, Associazione Italiana Metallurgia, I-20121 Milan, Italy, Paper No. 139.
197.
Civera
,
C.
,
Rivolta
,
B.
,
Simencio-Otero
,
R. L.
,
Lucio
,
J. G.
,
Totten
,
G. E.
, and
Canale
,
L. C. F.
, “
Vegetable Oils as Quenchants for Steels: Residual Stresses and Dimensional Changes
,”
Mater. Perform. Character.
, Vol.
3
, No.
4
,
2014
, pp.
306
325
https://doi.org/10.1520/MPC20140039
198.
Civera
,
C.
,
Rivolta
,
B.
,
Simencio-Otero
,
R. L.
,
Lucio
,
J. G.
,
Totten
,
G. E.
, and
Canale
,
L. C. F.
, “
Study of Residual Stresses and Distortions after Steel Quenching with Vegetable Oils
,” presented at the
IFHT 2016 – Conference Proceedings of the 23rd IFHTSE Congress
, Savannah, GA, April 18–21,
2016
, ASM International, Materials Park, OH, pp.
361
367
.
199.
Baião
,
N. C.
and
Lara
,
L. J. C.
, “
Oil and Fat in Brioler Nutrition
,”
Br. J. Poultry Sci.
, Vol.
7
, No.
3
,
2005
, pp.
129
141
.
200.
Szterk
,
A.
,
Roszko
,
M.
,
Sosinska
,
E.
,
Derewiaka
,
D.
, and
Lewicki
,
P. P.
, “
Chemical Composition and Oxidative Stability of Selected Plant Oils
,”
J. Am. Oil Chem. Soc.
, Vol.
87
, No.
6
,
2010
, pp.
637
645
https://doi.org/10.1007/s11746-009-1539-4
201.
Kolb
,
T.
,
Loyall
,
U.
, and
Schafer
,
J.
, “
Antioxidants—Determination and Interpretation of the Temperature Correlation of Oxidative Stabilities
,”
Food Marketing and Technology
, August
2002
, pp.
1
5
.
202.
Evans
,
J. C.
,
Kodali
,
D. R.
, and
Addis
,
P. B.
, “
Optimal Tocopherol Concentrations to Inhibit Soybean Oil Oxidation
,”
J. Am. Oil Chem. Soc.
, Vol.
79
, No.
1
,
2002
, pp.
747
751
.
203.
Choe
,
E.
and
Min
,
D. B.
, “
Mechanisms and Factors for Edible Oil Oxidation
,”
Comprehen. Rev. Food Sci. Food Safety
, Vol.
5
, No.
4
,
2006
, pp.
169
186
https://doi.org/10.1111/j.1541-4337.2006.00009.x
204.
Valenzuela
,
A.
,
Sanhuezza
,
J.
, and
Nieto
,
S.
, “
Effect of Synthetic Antioxidants on Cholesterol Stability During Thermal-Induced Oxidation of a Polyunsaturated Vegetable Oil
,”
J. Am. Oil Chem. Soc.
, Vol.
79
, No.
4
,
2002
, pp.
325
328
https://doi.org/10.1007/s11746-002-0482-x
205.
Zurita
,
J. L.
,
Jos
,
A.
,
del Peso
,
A.
,
Salguero
,
M.
,
Lopez-Artġuez
,
M.
, and
Repetto
,
G.
, “
Ecotoxicological Effects of the Antioxidant Additive Propyl Gallate in Five Aquatic Systems
,”
Water Res.
, Vol.
41
, No.
12
,
2007
, pp.
2599
2611
https://doi.org/10.1016/j.watres.2007.02.003
206.
Kauffman
,
R. E.
and
Rhine
,
W. E.
, “
Development of a Remaining Useful Life of a Lubricant Evaluation Technique. Part I: Differential Scanning Calorimetric Techniques
,”
Lubr. Eng.
, Vol.
42
, No.
2
,
1988
, pp.
154
161
.
207.
Becker
,
R.
and
Knorr
,
A.
, “
An Evaluation of Antioxidants for Vegetable Oils at Elevated Temperatures
,”
Lubr. Sci.
, Vol.
8
, No.
2
,
1996
, pp.
95
117
https://doi.org/10.1002/ls.3010080202
208.
Eklund
,
M.
, “
Response to Different Oxidation Inhibitors for Industrial Lube Base Stocks
,”
Ind. Lubr. Technol.
, Vol.
54
, No.
5
,
2002
, pp.
202
208
.
209.
Zhu
,
Q.
,
Zhang
,
X. M.
, and
Fry
,
A. J.
, “
Bond Dissociation Energies of Antioxidants
,”
Polym. Degrad. Stability
, Vol.
57
, No.
1
,
1997
, pp.
43
50
https://doi.org/10.1016/S0141-3910(96)00224-8
210.
Chao
,
T. S.
,
Hutchison
,
D. A.
, and
Kjonaas
,
M.
, “
Some Synergistic Antioxidants for Synthetic Lubricants
,”
Ind. Eng. Chem. Product Res. Dev.
, Vol.
23
, No.
1
,
1984
, pp.
21
27
https://doi.org/10.1021/i300013a005
211.
de Souza
,
E. C.
,
Friedel
,
L. F. O.
,
Totten
,
G. E.
, and
Canale
,
L. C. F.
, “
Quenching and Heat Transfer Properties of Aged and Unaged Vegetable Oils
,”
J. Petrol. Sci. Res.
, Vol.
2
, No.
1
,
2013
, pp.
41
47
.
212.
de Souza
,
E. C.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Vegetable Oil Structure and Antioxidants
,” presented at
New Challenges in Heat Treatment and Surface Engineering – Conference in Honour of Prof. Božidar Liščić
, Dubrovnik-Cavtat, Croatia, June 9–12,
2009
, Croatian Society for Heat Treatment and Surface Engineering, Zagreb, Croatia, pp.
125
134
.
213.
de Souza
,
E. C.
,
Canale
,
L. C. F.
,
Sarmiento
,
G. S.
,
Agaliotis
,
E.
,
Carrara
,
J. C.
,
Schicchi
,
D. S.
, and
Totten
,
G. E.
, “
Heat Transfer Properties of a Series of Oxidized and Unoxidized Vegetable Oils in Comparison With Petroleum Oil-Based Quenchants
,”
J. Mater. Eng. Perform.
, Vol.
22
, No.
7
,
2013
, pp.
1871
1878
https://doi.org/10.1007/s11665-013-0514-2
214.
Felde
,
I.
, “
Report on the IFHTSE Liquid Quenchants Database Project
,”
Int. Heat Treatment Surf. Eng.
, Vol.
8
, No. 1,
2014
, pp.
2
7
https://doi.org/10.1179/1749514813Z.000000000103
215.
Belinato
,
G.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Effect of Antioxidants on Oxidative Stability and Quenching Performance of Soybean Oil and Palm Oil Quenchants
,”
J. ASTM Int.
, Vol.
8
, No.
9
,
2011
, pp.
1
14
https://doi.org/10.1520/JAI103376
216.
Belinato
,
G.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Vegetable Oil Based Quenchants: Effect of Antioxidants on Oxidative Stability and Initial Quenching Performance of Soybean Oil and Palm Oil
,” presented at the
15th International Metallurgy and Materials Congress (IMMC, 2010)
, Istanbul, Turkey, November 11–13,
2010
, UCTEA Chamber of Metallurgical Engineers, Ankara, Turkey, pp.
1708
1715
.
217.
Said
,
D.
,
Belinato
,
G.
,
Sarmiento
,
G. S.
,
Simencio-Otero
,
R. L.
,
Totten
,
G. E.
,
Gaston
,
A.
, and
Canale
,
L. C. F.
, “
Comparison of Oxidation Stability and Quenchant Cooling Curve Performance of Soybean Oil and Palm Oil
,”
J. Mater. Eng. Perform.
, Vol.
22
, No. 7,
2013
, pp.
1929
1936
https://doi.org/10.1007/s11665-013-0560-9
218.
Wilson
,
R. F.
, “
The Role of Genomics and Biotechnology in Achieving Global Food Security for High-Oleic Vegetable Oil
,”
J. Oleo Sci.
, Vol.
61
, No.
7
,
2012
, pp.
357
367
https://doi.org/10.5650/jos.61.357
219.
Cahoon
,
E. B.
, “
Genetic Enhancement of Soybean Oil for Industrial Uses: Prospects and Challenges
,”
J. Agrobiotechnol. Manage. Econ.
, Vol.
6
, Nos.
1–2
,
2003
, pp.
11
13
.
220.
Dunford
,
N.
, “
Deep Fat Frying Basics for Food Services: Fryer, Oil and Frying Temperature Selection
,”
Brochure FAPC-126
,
Oklahoma State University
,
Stillwater, OK
, 2003.
221.
Matthäus
,
B.
, “
Utilization of High-Oleic Rapeseed Oil for Deep-Fat Frying of French Fries Compared to Other Commonly Used Edible Oils
,”
Eur. J. Lipid Sci. Technol.
, Vol.
108
, No.
3
,
2006
, pp.
200
211
https://doi.org/10.1002/ejlt.200500249
222.
Knowlton
,
S.
, Soybean Oil Having High Oxidative Stability, U.S. Patent 5,981,781, filed June 30, 1998, and issued November 9, 1999.
223.
Fick
,
G. N.
, Novel Sunflower Products and Methods for Their Production, USP 4,743,402, May 10,
1988
.
224.
Fick
,
G. N.
, Sunflower Products and Methods for Their Production, USP 4,627,192, Dec 9,
1986
.
225.
Merrill
,
L. I.
,
Pike
,
O. A.
,
Ogden
,
L. V.
, and
Dunn
,
M. L.
, “
Oxidative Stability of Conventional and High-Oleic Vegetable Oils With Added Antioxidants
,”
J. Am. Oil Chem. Soc.
, Vol.
85
, No.
8
,
2008
, pp.
771
776
https://doi.org/10.1007/s11746-008-1256-4
226.
Normand
,
L.
,
Eskina
,
N. A. M.
, and
Przybylski
,
R.
, “
Comparison of the Frying Stability of Regular and High-Oleic Acid Sunflower Oils
,”
J. Am. Oil Chem. Soc.
, Vol.
83
, No.
4
,
2006
, pp.
331
334
https://doi.org/10.1007/s11746-006-1208-9
227.
Carrick
,
V. A.
and
Yodice
,
R.
, Vegetable Oil Compositions, U.S. Patent No. 5,260,077, Nov 9,
1993
.
228.
Chasan
,
D. E.
and
Wilson
,
P. R.
, Stabilized Lubricant Compositions, U.S. Patent No. 5,580,482, Dec 3,
1996
.
229.
Sharma
,
B. K.
and
Stipanovic
,
A. J.
, “
Development of a New Oxidation Stability Test Method Using High-Pressure Differential Scanning Calorimetry
,”
Thermochimica Acta
, Vol.
402
, Nos.
1–2
,
2003
, pp.
1
18
.
230.
Simencio
,
E. C. A.
,
Otero
,
R. L. S.
,
Canale
,
L. C. F.
, and
Totten
,
G. E.
, “
Stabilization of Vegetable Oil-Based Quenchants to Thermal-Oxidative Degradation: Experimental Strategy and Effect of Oxidation on Quenching Performance
,”
La Metall. Ital.
, Vol.
2016
, No.
3
,
2016
, pp.
5
10
.
231.
de Souza
,
E. C.
,
Komatsu
,
D.
,
Belinato
,
G.
,
Totten
,
G. E.
, and
Canale
,
L. C. F.
, “
Vegetable Oil Structure and Antioxidants
,”
Trans. FAMENA
, Vol.
34
, No.
3
,
2010
, pp.
71
82
.
232.
Gaster
,
R. J.
,
ASM Heat Treating Society's 1999 Research & Development Plan
,
ASM International
,
Materials Park, OH
.
233.
Moore
,
D.
, “
Safer Liquid Quenchants
,”
Heat Treating Progress
, July/August,
2001
, pp.
29
33
.
234.
Przyłęcka
,
M.
and
Gęstwa
,
W.
, “
The Influence of Bio-Quench 700EU Conditions on the Hardness of Carburized Components
,”
Inźynieria Mater.
, Vol.
28
, Nos.
3–4
,
2007
, pp.
715
719
.
235.
Parodi
,
A.
,
Marini
,
L.
, and
Matta
,
F.
, “
Quenching Fluid Composition
,”
World Intellectual Property Organization
Report No. 099450, WIPO, Geneva, Switzerland,
2004
.
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