Welcome to the Industrial Automation website!

NameDescriptionContent
HONG  KANG
E-mail  
Password  
  
Forgot password?
  Register
当前位置:

By combining desalination with wastewater recycling, energy consumption can be reduced by 67 percent

来源: | 作者:佚名 | 发布时间 :2024-01-08 | 576 次浏览: | Share:

"While drinking water reuse and desalination have traditionally been considered separate parts of the water supply mix, it makes sense to consider how we can mix wastewater treatment and desalination to meet water and energy goals while ensuring environmental standards are met," said Childress, a professor in the Department of Civil and Environmental Engineering at Sunne-Astani.

To understand this opportunity, one must consider the current context. First, the salinity of wastewater is increasing, in part due to water conservation. This higher salinity water is more expensive to treat and may require desalination. Advances in wastewater treatment facilities mean that desalination processes, such as reverse osmosis, which filters contaminated water through semi-permeable materials to make it clean, can help treat high-salinity streams relatively efficiently.

Use existing water pressure

Salinity in wastewater is increasing due to water conservation and other reasons. For example, in coastal areas, seawater can invade the infrastructure of wastewater recycling facilities and also increase salinity. The immediate effect of increased salinity is that you may need to run existing desalination processes at higher pressures, or you may need to introduce new desalination processes to treat water.

Traditionally, higher salinity streams have been a lower priority water resource because of how energy-intensive it is to desalinate such streams and purify the water to meet environmental and regulatory standards. However, if existing desalination processes can be modified or new ones added, high-salinity streams utilizing desalination capacity become more viable streams to meet water supply needs.

There are technologies that can be added to the facility. These technologies include: energy recovery devices (ERDs), which harness the energy from the brine output during desalination and apply it to the newly treated water flow, and closed-circuit reverse osmosis (CCRO), which maintains pressure in the system rather than releasing it into the resulting brine. This helps to reduce the additional salt burden without adding an additional energy burden.

Energy management strategies for water recovery

The discharge of saltwater is regulated by certain standards, which means that the salinity of the discharge stream must be below certain levels, most likely similar to the salinity of sea water, i.e. 35 grams per litre. Initially, Wei, a doctoral student, focused on the mixing of streams from different water sources from the perspective of meeting regulatory standards for salinity concentrations in streams. Recently, however, she has recalibrated her research to consider different angles.

"Think about it the other way around, if we can meet the requirements by using wastewater in a potable water reuse way, rather than just mixing wastewater streams and discharging it into the ocean, can we reuse it and take water resources so that we have this additional water supply?" Childress said.

In advanced water purification facilities, the use of reverse osmosis membranes - which apply pressure to move water through a semi-permeable material while filtering out contaminants - to purify water has become the industry standard, providing an opportunity to treat high-salinity wastewater streams.

High energy costs in the water sector have led many water and wastewater treatment facilities to include energy management strategies. For example, energy recovery units are often used in conjunction with high-salinity reverse osmosis processes to reduce the energy consumption of the desalination process, the researchers said.

Energy recovery devices reduce energy consumption by transferring the remaining pressure from the (already treated) concentrated brine stream to the intake stream. The researchers say the energy recovery device can reduce the energy consumption of seawater reverse osmosis desalination facilities by up to 67 percent, depending on operating conditions.

Advanced water purification facilities are considering high-recovery reverse osmosis processes, such as closed-circuit reverse osmosis, to improve water recovery while maintaining low energy consumption. Membrane processes with saltier influents require higher pressure (or energy). In a conventional reverse osmosis process, the pressure is fixed at a high level that can overcome the final pressure of the concentrate. In closed-circuit reverse osmosis, the pressure is gradually increased so that it is just above the required pressure. Using time-varying feed pressures, closed-circuit reverse osmosis may provide greater energy savings than energy recovery devices. Another benefit of closed-circuit reverse osmosis is that it can discharge less water.

Childress says we're trying to achieve flexibility in water treatment - assessing differences in water quality and using different approaches to treat that particular stream for maximum efficiency and minimum waste.

The future of water

As drought caused by climate change continues to threaten traditional water sources, considerations of how to deal with water resources flexibly and sustainably are becoming increasingly important.

  • FOXBORO L0130AD L0130AE-0H Digital Input Module
  • FOXBORO 0399085B 0303440C+0303458A combination control module
  • FOXBORO SY-0399095E SY-0303451D+SY-0303460E DC power module
  • FOXBORO 0399071D 0303440C+0303443B Combination Control Board
  • FOXBORO RH924UQ controller module
  • FOXBORO E69F-TI2-S dual line temperature transmitter
  • FOXBORO 0399144 SY-0301059F SY-1025115C/SY-1025120E Combination Control Board
  • FOXBORO SY-60399001R SY-60301001RB SY-60702001RA/SY-61025006RA/SY-61025004RA/SY-61025001RA High performance industrial control module
  • FOXBORO 0399143 SY-0301060R SY-1025115C/SY-1025120E Sensor
  • FOXBORO 873EC-JIPFGZ Industrial Control Module
  • FOXBORO FBM230 P0926GU Communication Module
  • FOXBORO P0916PH P0916JS Input/Output Module
  • FOXBORO P0916PH P0916AL I/O module
  • FOXBORO 870ITEC-AYFNZ-7 Intelligent Electrochemical Transmitter
  • FOXBORO FBM207 P0914TD Voltage Monitor
  • FOXBORO FBM201D Discrete Input Module
  • FOXBORO P0923ZJ switch I/O interface module
  • FOXBORO P0923NG Intelligent Differential Pressure Transmitter
  • FOXBORO P0916KN power module
  • FOXBORO P0916KM I/A series module
  • FOXBORO P0916WE Terminal Cable
  • FOXBORO P0916VB power supply module
  • GE Hydran M2-X Transformer Condition Monitoring Device
  • FOXBORO P0916VL control module
  • FOXBORO P0916VC High Performance Terminal Cable
  • FOXBORO P0916WG system module
  • FOXBORO P0972ZQ interface channel isolation 8-input module
  • FOXBORO P0973BU high-frequency fiber optic jumper
  • FOXBORO P0926MX Splasher Confluencer
  • FOXBORO P0961S connector module
  • FOXBORO P0903NU system module
  • FOXBORO CM902WM control module
  • FOXBORO P0972VA ATS Processor Module
  • FOXBORO P0916Js digital input terminal module
  • FOXBORO PO961BC/CP40B control module
  • FOXBORO PO916JS Input/Output Module
  • FOXBORO PO911SM Compact Monitoring Module
  • FOXBORO P0972PP-NCNI Network Interface Module
  • FOXBORO P0971XU Control System Module
  • FOXBORO P0971DP Controller
  • FOXBORO P0970VB control module
  • FOXBORO P0970BP (internal) cable assembly
  • FOXBORO P0961EF-CP30B High Performance Digital Output Module
  • FOXBORO P0961CA fiber optic LAN module
  • FOXBORO P0926TM Modular I/O PLC Module
  • FOXBORO P0916BX series control system input/output module
  • FOXBORO P0916AG Compression Period Component
  • FOXBORO P0916AC I/A series module
  • FOXBORO P0912CB I/O Terminal Module
  • FOXBORO P0911VJ high-precision control module
  • FOXBORO P0911QC-C 8-channel isolated output module
  • FOXBORO P0911QB-C High Performance Industrial Module
  • FOXBORO P0903ZP Embedded System Debugging Module
  • FOXBORO P0903ZN control module
  • FOXBORO P0903ZL High Frequency Industrial Module
  • FOXBORO P0903ZE I/A series fieldbus isolation module
  • FOXBORO P0903NW Industrial Control Module
  • FOXBORO P0903NQ control module
  • FOXBORO P0903AA Industrial Control Module
  • FOXBORO FBM205 cable
  • FOXOBORO P0960HA I/A series gateway processor
  • FOXBORO P0926TP high-performance control module
  • FOXBORO P0926KL control module
  • FOXBORO P0926KK PLC system functional module
  • FOXBORO P0924AW wireless pressure transmitter
  • FOXBORO P0916NK differential pressure transmission cable
  • FOXBORO P0916JQ PLC module
  • FOXBORO P0916JP I/A series control module
  • FOXBORO P0916GG Digital Input Module
  • FOXBORO P0916DV I/A series digital input module
  • FOXBORO P0916DC Terminal Cable
  • FOXBORO P0916DB I/A series PLC module
  • FOXBORO P0914ZM recognition module
  • FOXBORO P0902YU control module
  • FOXBORO P0901XT Process Control Unit
  • FOXBORO P0800DV fieldbus extension cable
  • FOXBORO P0800DG Standard Communication Protocol Module
  • FOXBORO P0800DB Universal I/O Module
  • FOXBORO P0800DA Industrial Control Module
  • FOXBORO P0800CE control module
  • FOXBORO P0700TT Embedded System
  • FOXBORO P0500WX Control System Module
  • FOXBORO P0500RY Terminal Cable Assembly
  • FOXBORO P0500RU control module
  • FOXBORO P0500RG Terminal Cable
  • FOXBORO P0400ZG Node Bus NBI Interface Module
  • FOXBORO P0400GH fieldbus power module
  • FOXBORO FBM207B Voltage Monitoring/Contact Induction Input Module
  • FOXBORO FBM205 Input/Output Interface Module
  • FOXBORO FBM18 Industrial Controller Module
  • FOXBORO FBM12 Input/Output Module
  • FOXBORO FBM10 Modular Control System
  • FOXBORO FBM07 Analog/Digital Interface Module
  • FOXBORO FBM05 redundant analog input module
  • FOXBORO FBM02 thermocouple/MV input module
  • FOXBORO FBI10E fieldbus isolator
  • FOXBORO DNBT P0971WV Dual Node Bus Module
  • FOXBORO CP30 Control Processor
  • FOXBORO CM902WX Communication Processor
  • FOXBORO AD202MW Analog Output Module
  • FOXBORO 14A-FR Configuration and Process Integration Module
  • FOXOBORO 130K-N4-LLPF Controller
  • FUJI FVR004G5B-2 Variable Frequency Drive
  • FUJI FVR008E7S-2 High Efficiency Industrial Inverter
  • FUJI FVR008E7S-2UX AC driver module
  • FUJI RPXD2150-1T Voltage Regulator
  • FUJI NP1PU-048E Programmable Logic Control Module
  • FUJI NP1S-22 power module
  • FUJI NP1AYH4I-MR PLC module/rack
  • FUJI NP1BS-06/08 Programmable Controller
  • FUJI NP1X3206-A Digital Input Module
  • FUJI NP1Y16R-08 Digital Output Module
  • FUJI NP1Y32T09P1 high-speed output module
  • FUJI NP1BS-08 Base Plate​
  • FUJI A50L-2001-0232 power module
  • FUJI A50L-001-0266 # N Programmable Logic Control Module
  • GE GALIL DMC9940 Advanced Motion Controller
  • GE DMC-9940 Industrial Motion Control Card
  • GE IS200AEADH4A 109W3660P001 Input Terminal Board
  • GE IC660HHM501 Portable Genius I/O Diagnostic Display
  • GE VMIVME 4140-000 Analog Output Board
  • GE VMIVME 2540-300 Intelligent Counter
  • GE F650NFLF2G5HIP6E repeater
  • GE QPJ-SBR-201 Circuit Breaker Module
  • GE IC200CHS022E Compact I/O Carrier Module
  • GE IC695PSD140A Input Power Module
  • GE IC695CHS016-CA Backboard
  • GE IC800SS1228R02-CE Motor Controller