(613e) Advanced Supercritical Water-Based Process Concepts for Treatment and Beneficial Reuse of Brine Generated By Oil/Gas Production
AIChE Annual Meeting
2016
2016 AIChE Annual Meeting
Advances in Fossil Energy R&D
Unconventional Oil and Natural Gas: Science & Technology Advancement
Wednesday, November 16, 2016 - 4:31pm to 4:50pm
However, direct reuse of brines in shale development activities currently is limited due to constituents found in this waste stream. Specifically, the high levels of dissolved solids found in the brine may cause scaling within the shale or within production casings, reducing well productivity. Current brine treatment technologies including membrane- and thermal-based processes are ineffective in treating brinecontaining concentrations of dissolved solids greater than 80,000 ppm due to fouling or cost/sizing, respectively.
To address these limitations, Ohio University (OHIO) with funding from the U.S. Department of Energyâ??s Research Partnership to Secure Energy for America (RPSEA) Project 11122-60 and the National Energy Technology Laboratory (NETL) Crosscutting Research Program Project DE-FE0026315, has been developing an advanced supercritical water (SCW)-based process for treatment and beneficial reuse of brine waste streams. This SCW process offers an advantageous media for brine treatment, as its lower fluid density and decreased hydrogen bond strength provides a means to simultaneously remove dissolved solids and hydrocarbons.
Previous SCW-based brine treatment systems have been plagued by internal scaling, resulting in inefficient heat transfer, plugging, and process downtime. To address this issue OHIO has been developing both externally- and internally-heated SCW reactor design concepts, which utilize advantageous fluid dynamics and electrically driven Joule-heating mechanisms, respectively. OHIOâ??s new SCW reactor designs offer the potential to provide a field deployable brine treatment process and a resultant product which may be reused in shale development or other beneficial reuse applications, thereby supporting goals of NETLâ??s Strategic Center for Oil and Natural Gas.
To evaluate process potential, OHIO has been conducting both experimental investigations using prototype SCW reactors and process simulations/techno-economic assessments using Aspen PlusTM. Removal of dissolved solids has been investigated at temperatures and pressures ranging from 377-520 °C and 23-32 MPa, respectively, demonstrating the ability to recover greater than 99 percent of salts from brines containing dissolved solid concentrations greater than 280,000 ppm. In addition, minimal to no internal reactor scaling has been observed. Techno-economic summaries have identified important brine treatment cost sensitivity parameters and heat recovery schemes to lower brine treatment costs. This presentation will review experimental and techno-economic study results from both U.S. DOE supported projects.