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Dive into the research topics where William N. Olmstead is active.

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Featured researches published by William N. Olmstead.


Analytical Chemistry | 2012

Determination of Structural Building Blocks in Heavy Petroleum Systems by Collision-Induced Dissociation Fourier Transform Ion Cyclotron Resonance Mass Spectrometry

Kuangnan Qian; Kathleen E. Edwards; Anthony S. Mennito; Howard Freund; Roland B. Saeger; Karl J. Hickey; Manny A. Francisco; Cathleen Yung; Birbal Chawla; Chunping Wu; J. Douglas Kushnerick; William N. Olmstead

Collision-induced dissociation Fourier Transform ion cyclotron resonance mass spectrometry (CID-FTICR MS) was developed to determine structural building blocks in heavy petroleum systems. Model compounds with both single core and multicore configurations were synthesized to study the fragmentation pattern and response factors in the CID reactions. Dealkylation is found to be the most prevalent reaction pathway in the CID. Single core molecules exhibit primarily molecular weight reduction with no change in the total unsaturation of the molecule (or Z-number as in chemical formula C(c)H(2c+Z)N(n)S(s)O(o)VNi). On the other hand, molecules containing more than one aromatic core will decompose into the constituting single cores and consequently exhibit both molecular weight reduction and change in Z-numbers. Biaryl linkage, C(1) linkage, and aromatic sulfide linkage cannot be broken down by CID with lab collision energy up to 50 eV while C(2)+ alkyl linkages can be easily broken. Naphthenic ring-openings were observed in CID, leading to formation of olefinic structures. Heavy petroleum systems, such as vacuum resid (VR) fractions, were characterized by the CID technology. Both single-core and multicore structures were found in VR. The latter is more prevalent in higher aromatic ring classes.


Analytical Chemistry | 2008

Measurement of Total Acid Number (TAN) and TAN Boiling Point Distribution in Petroleum Products by Electrospray Ionization Mass Spectrometry

Kuangnan Qian; Kathleen E. Edwards; Gary J. Dechert; Stephen B. Jaffe; Larry A. Green; William N. Olmstead

We report a new method for rapid measurement of total acid number (TAN) and TAN boiling point (BP) distribution for petroleum crude and products. The technology is based on negative ion electrospray ionization mass spectrometry (ESI-MS) for selective ionization of petroleum acid and quantification of acid structures and molecular weight distributions. A chip-based nanoelectrospray system enables microscale (<200 mg) and higher throughput (20 samples/h) measurement. Naphthenic acid structures were assigned based on nominal masses of a set of predefined acid structures. Stearic acid is used as an internal standard to calibrate ESI-MS response factors for quantification purposes. With the use of structure-property correlations, boiling point distributions of TAN values can be calculated from the composition. The rapid measurement of TAN BP distributions by ESI is demonstrated for a series of high-TAN crudes and distillation cuts. TAN values determined by the technique agree well with those by the titration method. The distributed properties compare favorably with those measured by distillation and measurement of TAN of corresponding cuts.


Archive | 2000

Slurry hydroprocessing for heavy oil upgrading using supported slurry catalysts

Zhiguo Hou; Bearden Roby; Kenneth Riley; Craig Sabottke; David T. Ferrughelli; Martin L. Gorbaty; William N. Olmstead


Energy & Fuels | 2007

Desorption and Ionization of Heavy Petroleum Molecules and Measurement of Molecular Weight Distributions

Kuangnan Qian; Kathleen E. Edwards; Mike Siskin; William N. Olmstead; Anthony S. Mennito; and Gary J. Dechert; Norman E. Hoosain


Energy & Fuels | 2011

Quantitative Evidence for Bridged Structures in Asphaltenes by Thin Film Pyrolysis

Arash Karimi; Kuangnan Qian; William N. Olmstead; Howard Freund; Cathleen Yung; Murray R. Gray


Archive | 1997

Thermal decomposition of naphthenic acids

Saul Charles Blum; William N. Olmstead; Roby Bearden


Archive | 1998

Process for reducing total acid number of crude oil

Roby Bearden; Saul Charles Blum; William N. Olmstead


Archive | 1990

Integrated coking-gasification process with mitigation of bogging and slagging

Roby Bearden; Tan-Jen Chen; William N. Olmstead


Archive | 1999

Process for treatment of petroleum acids with ammonia

Guido Sartori; David W. Savage; William N. Olmstead; Winston K. Robbins; David Craig Dalrymple; Bruce Henry Ballinger


Energy & Fuels | 1994

Aqueous High-Temperature Chemistry of Carbo- and Heterocycles. 21. Reactions of Sulfur-Containing Compounds in Supercritical Water at 460 .degree.C

Alan R. Katritzky; Richard A. Barcock; Marudai Balasubramanian; John V. Greenhill; Michael Siskin; William N. Olmstead

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