Surinder Prabhjot Singh
General Electric
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Publication
Featured researches published by Surinder Prabhjot Singh.
Archive | 2013
Ravi-Kumar Vipperla; Michael Yee; Ray Steele; Surinder Prabhjot Singh; Irina Spiry; Benjamin Rue Wood
This report presents system and economic analysis for a carbon capture unit which uses an amino-silicone solvent for CO{sub 2} capture and sequestration (CCS) in a pulverized coal (PC) boiler. The amino-silicone solvent is based on GAP-1 with tri-ethylene glycol (TEG) as a co-solvent. For comparison purposes, the report also shows results for a CCS unit based on a conventional approach using mono-ethanol amine (MEA). At a steam temperature of 395 °C (743 °F), the CCS energy penalty for amino-silicone solvent is only 30.4% which compares to a 35.9% energy penalty for MEA. The increase in COE for the amino-silicone solvent relative to the non-capture case is between 98% and 103% (depending on the solvent cost) which compares to an ~109% COE cost increase for MEA. In summary, the amino-silicone solvent has significant advantages over conventional systems using MEA.
Archive | 2013
John R. Klaehn; Eric S. Peterson; Christopher J. Orme; Dhaval Bhandari; Scott Michael Miller; Anthony Yu-Chung Ku; Kimberly Ann Polishchuk; Kristi Jean Narang; Surinder Prabhjot Singh; Wei Wei; Roger Allen Shisler; Paul Brian Wickersham; Kevin Paul Mcevoy; William Alberts; Paul Edward Howson; Thomas Barton; Vijay Sethi
Idaho National Laboratory (INL), GE Global Research (GEGR), and Western Research Institute (WRI) have successfully produced hydrogen-selective membranes for water-gas-shift (WGS) modules that enable high-pressure hydrogen product streams. Several high performance (HP) polymer membranes were investigated for their gas separation performance under simulated (mixed gas) and actual syngas conditions. To enable optimal module performance, membranes with high hydrogen (H2) selectivity, permeance, and stability under WGS conditions are required. The team determined that the VTEC PI 80-051 and VTEC PI 1388 (polyimide from Richard Blaine International, Inc.) are prime candidates for the H2 gas separations at operating temperatures (~200°C). VTEC PI 80-051 was thoroughly analyzed for its H2 separations under syngas processing conditions using more-complex membrane configurations, such as tube modules and hollow fibers. These membrane formats have demonstrated that the selected VTEC membrane is capable of providing highly selective H2/CO2 separation (α = 7-9) and H2/CO separation (α = 40-80) in humidified syngas streams. In addition, the VTEC polymer membranes are resilient within the syngas environment (WRI coal gasification) at 200°C for over 1000 hours. The information within this report conveys current developments of VTEC PI 80-051 as an effective H2 gas separations membrane for high-temperature syngas streams.
Archive | 2008
Matthew Christian Nielsen; Richard Anthony DePuy; Aditya Kumar; James Patrick Lyons; Vitali Victor Lissianski; Ruijie Shi; Surinder Prabhjot Singh; Kenneth Brakeley Welles; Vladimir Zamansky
Fuel | 2015
Surinder Prabhjot Singh; V.B. Neculaes; Vitali Victor Lissianski; G. Rizeq; S.B. Bulumulla; Raul Subia; J. Manke
Archive | 2010
Vitali Victor Lissianski; R. George Rizeq; Surinder Prabhjot Singh
Archive | 2009
Vitali Victor Lissianski; Anthony Mark Thompson; Daniel Lawrence Derr; Gregg Anthony Deluga; Ramanathan Subramanian; Surinder Prabhjot Singh
Archive | 2010
Vitali Victor Lissianski; R. George Rizeq; Raul Subia; Surinder Prabhjot Singh
Archive | 2012
Surinder Prabhjot Singh; Anthony Yu-Chung Ku; Scott Michael Miller; Roger Allen Shisler; Dhaval Bhandari
Archive | 2013
Surinder Prabhjot Singh; Harish Radhakrishna Acharya; Robert James Perry; John Brian McDermott
Archive | 2014
Surinder Prabhjot Singh; Dhaval Bhandari