Treatment Technologies

    Water Filtration Systems

    Industrial water filtration system suppliers, sand and multimedia, cartridge, bag, and self-cleaning units, plus pressure and gravity vessel skids for pre-treatment, side-stream, and process water duty.

    428 providers

    This page is a good fit if you need:

    • Filtration or Reverse Osmosis (RO) capabilities
    • Suppliers with utilities sector experience
    • Providers operating in China or Netherlands
    Providers
    428
    Verified
    5
    Countries
    38

    Can't find the right fit? Post a brief and let qualified suppliers come to you.

    Post a project

    Find a Water Filtration Provider

    Showing 401-420 of 428

    428 results from 428 matched providers

    Hangzhou Realize Technology Co., LTD. logo

    Hangzhou Realize Technology Co., LTD.

    Verified
    China1-50 employees
    Ultrasonic Cavitation Systems · Conventional Activated Sludge · SBR, MBR, IFAS +3 more
    china

    HANGZHOU REALIZE TECHNOLOGY CO., LTD. is a technology enterprise. The company collaborates with domestic and international universities such as Beijing University of Technology, Tsinghua University, and Berlin University of Technology to address the challenges of enhancing anaerobic efficiency and nitrogen removal in high-ammonia nitrogen wastewater. The core technologies foucs on energy-saving denitrification and enhanced green methane production. These two technologies can increase production efficiency of green methane by 20% and reduce costs of wastewater denitrification by 60%.

    Process Water Treatment
    Wastewater Treatment
    Advanced Treatment Technologies
    +8 more
    manufacturing
    energy-production
    Evergreen Water Solutions logo

    Evergreen Water Solutions

    United Kingdom

    A leading supplier of progressive wastewater treatment systems Evergreen Water Solutions works closely with a number of international engineering companies whose expertise are in scalable wastewater treatment systems and containerised wastewater treatment systems for municipal and industrial application. Evergreen Water Solutions offers a comprehensive engineering service. Our company incorporates initial design and planning, to implementation of projects that are delivered on time and on budget. Our expertise in wastewater treatment covers infrastructure development, package sewage treatment systems and advanced treatment technology for wastewater recycling with the strictest treatment requirements. The goal of Evergreen Water Solutions is to exceed the expectations of our clients, foster long-term relationships, and make a positive impact on the environment and industry standards. Evergreen Water Solutions use innovative products and suppliers to source, design and implement leading environmental water and wastewater treatment products and solutions. All new equipment and suppliers are required to undergo pre-qualification program and a series of acceptances and trials are applied prior to the approval of the vendor. Evergreen Water Solutions’ pre-qualification program guarantees you our clients that the products we source are of the highest standard within the industry, these products along with the expertise within Evergreen Water Solutions ensures that the solution we provide will meet and exceed any expectation you might have.

    Treatment Works Products/Services
    Contractors
    Sewaco Ltd logo

    Sewaco Ltd

    United Kingdom

    Sewaco Ltd specializes in design, manufacture, supply and construction of purpose built plant and equipment for use in water supply systems and treatment of municipal sewage and industrial waste water. Our range of products includes: HYCOVER Static & Rotary distributor systems (from 5 l/s up to 980 l/s flow range) with optional auto cleanse and electro pneumatic belt drive mechanism, respectively. HYRATE Polytower biofilter systems using modular plastic media for: High Rate (BOD/COD reduction), upstream of existing treatment plant. Secondary ( BOD removal only or combined BOD removal/Nitrification). Tertiary Nitrification applications, downstream of existing secondary treatment processes. HYRATE Polytowers can easily incorporate natural ventilation or air extraction systems for odour control purposes, as required. Factory built timber support matrix for secondary modular plastic media support. Modular media installation and re-packing undertaken by our experienced site team.

    Treatment Works Products/Services
    Asset Maintenance & Rehabilitation
    PWNT logo

    PWNT

    United Kingdom

    PWNT, part of the Nijhuis Saur Industries (NSI) group, delivers cutting-edge solutions and consultancy services to meet the diverse needs of water utilities worldwide. Building on PWN’s rich legacy, PWNT leverages over 100 years of expertise to drive innovation in water treatment, with a strong focus on drinking water. Our pioneering technologies, including SIX® (Suspended Ion Exchange), ILCA® (Inline Coagulation and Adsorption), and CeraMac® (Ceramic Membrane Microfiltration), offer efficient, sustainable, and cost-effective treatment solutions for various water sources, ensuring the delivery of high-quality drinking water. Beyond technology development, PWNT offers comprehensive consultancy services in the study, design, optimization, and integration of water treatment technologies. PWNT is well-equipped to provide expert guidance on both emerging and traditional processes, such as pellet softening, advanced oxidation, GAC filtration, and coagulation. With a strong global presence, PWNT has successfully implemented large-scale projects and pilot installations across the world. Our innovative technologies are trusted by water utilities for their ability to address complex water quality challenges and adapt to diverse environmental conditions. Headquartered in the Netherlands, PWNT continues to foster strong partnerships with leading universities and global companies, committed to advancing sustainable water treatment technologies and helping utilities achieve their water quality goals.

    Designers
    Te-Tech Process Solutions logo

    Te-Tech Process Solutions

    United Kingdom

    Te-Tech Process Solutions is a provider of traditional products and advanced process technologies for water and wastewater treatment. Our products cater for a range of client needs from standardised products to bespoke applications designed to meet the exacting needs of the client’s process. Our in-house capability includes process, mechanical and electrical design, off-site manufacture and assembly, MCC and Control Panel Manufacture and System Integration. Our extended services include digital engineering, service and maintenance, operational support and real time control. Advanced technology and innovation are at the core of our business enabling us to provide high quality, efficient solutions to our clients. Our business is founded upon 4 key areas of expertise: WATER & WASTEWATER TREATMENT Te-Tech deliver established water and wastewater products and processes, including: te-cyc TM: Cyclic activated sludge ‘Macrofloc’ biological wastewater treatment te-saf TM: Packaged submerged aerated filters te-ion TM: Advanced oxidation technology for water and wastewater treatment te-mem TM: Advanced membrane filtration te-mbr TM: Package advanced membrane filtration te-sewpas TM: Airlift sludge removal plant te-uv TM: UV disinfection AUTOMATION CONTROL & TECHNOLOGY Our MCC and control panels are provided into multiple sectors including process and water, marine, oil & gas, energy, nuclear, defence and building services. Our capabilities include: MCCs LV Switchboards Local Control Panels Software System Integration DIGITAL ENGINEERING Te-Tech utilise cutting edge digital technologies to provide innovative solutions to our client’s problems. Our digital engineering services support the whole life cycle of our clients’ assets from conceptual design, through design for manufacture and assembly (DfMA), installation on site, final commissioning, operation and maintenance and decommissioning at the end of the asset’s life. Our in-house software capability provides clients with the visualisation tools to precisely view and interrogate designs in a virtual world to minimise clashes, delays or abortive activities and to ensure that the delivered assets are acceptable to operators in the real world. Our BIM capability ensures our products and technologies create assets that are fit for the future and our virtual reality technology allows our teams and clients to fully immerse themselves in the design, optimisation and operation of our solution prior to manufacturing. Our asset optimisation capability helps clients get the best performance out of their assets, by integrating real time control and using data driven insight we can ensure the sustainability and efficiency of asset performance across its lifecycle. Our virtual environment shows the equipment in operation, with liquids moving and plant turning on/off according to the actual system control philosophy. This is an invaluable tool for HAZOPS, ALM and remote training of operators before the plant is constructed – reducing risk and time on site OFF-SITE MANUFACTURING & ASSEMBLY Te-Tech’s off-site manufacture and assembly capability provides standard products and engineered solutions to the water and wastewater sector, oil and gas and energy industries. Its primary focus is on solutions which are designed for manufacture and assembly DfMA; reducing on site construction time, reducing carbon footprint and minimising risk. At our Southampton based headquarters we have over 1000 sq. metres of internal manufacturing space as well as external areas for assembly and storage of larger materials and manufactured components. We design, manufacture and assemble to a range of different standards including CE/CA marking, EXC2 Structural Steel, BS and ASME welding procedures. Our strength within Te-Tech culminates in our integrated service, offering the complete process solution package, from digital design, automation and control through to off-site manufacture and on site assembly.

    Treatment Process Technologies
    Contractors
    Anua Clean Air UK logo

    Anua Clean Air UK

    United Kingdom

    Anua Clean Air UK offers proven, patented clean air bio-technologies, which provide best-in-class process performance with the lowest utility and life cycle costs. Anua Clean Air manufactures and installs Mónafil™, Mónashell™ and Mónasorb™ systems. These are patented proven systems for the treatment of municipal and industrial odour and VOC air emissions. We have tested and proven installations right across the globe with proven capabilities in air purification and odour abatement in a wide variety of sectors including: Wastewater Treatment Industry | Food/Agri Industry | Municipal Solid Waste | Pharmaceutical/Petro Chemical/Printing‭ & ‬Coating/Other Industries.‬‬‬‬ Mónafil™ Control of hydrogen sulfide and VOCs is a concern in many wastewater treatment, composting and industrial plants. Hydrogen sulfide, and many VOC’s, create odours, are corrosive, cause air pollution and are detrimental to health. Mónafil™ is a patented biofiltration system that uses special media as a capture and support medium offering excellent removal efficiencies for odours, VOC’s, sulfur and nitrogen-based compounds. The properties of the manufactured granular high-density peat media have proven to be a key factor in achieving high performance removal and media life up to 10 years. Mónafil™ has been successfully used in odour control applications for more than 20 years. Mónashell™ The Mónashell™ biofiltration system is a proven and cost-effective alternative to chemical scrubbing or carbon adsorption, designed like a biotrickling system yet incorporating many benefits of traditional biofilters. The shell-based media is sustainable and renewable with the ability to maintain a neutral pH within the biofilter. This ensures optimal odour performance across a broad range of odour producing compounds, while simplifying operation and enhancing system reliability. Control of odour-causing compounds emitted from wastewater and industrial treatment processes has become a growing area of concern. As populations grow and housing encroaches on once-remote treatment facilities, the importance of effective, yet simple odour control technology will continue to increase. In addition, odourous compounds can be corrosive to equipment requiring ventilation to extend equipment life and reduce capital replacement expenditure. Mónasorb™ Control of hydrogen sulfide and VOCs is a concern in many wastewater treatment, composting and industrial plants. Hydrogen sulfide, and many VOC’s, create odours, are corrosive, cause air pollution and are detrimental to health. Mónasorb™ is a range of Carbon Filter systems that uses activated carbon, impregnated carbon as a capture and support medium, offering excellent removal efficiencies for odours, VOC’s, sulfur and nitrogen-based compounds. Our carbon units may be used as a standalone filter or as a polishing filter for a Mónashell™ OCU’s for even greater levels of treatment.

    Amazon Filters Ltd logo

    Amazon Filters Ltd

    United Kingdom

    Founded in 1985, UK-based Amazon Filters Ltd is one of Europe’s leading manufacturers and suppliers of bespoke filtration technology such as filter cartridges and housings. Our comprehensive range of products support critical liquid and gas applications in many industries. With over 40 years of continuous support to municipal water companies, we are ideally placed to solve water quality problems with our bespoke cartridge filtration technology. From small boundary boxes installations to large volume fully containerised system and rentable mobile skids, we can manufacture and supply it all. We offer solutions for: Turbidity Control Metals Removal (iron / manganese) Cryptosporidium removal Chlorine reduction Let us support your AMP 8 commitments: Securing Long Term Resilience Securing Cost Efficiency Securing Confidence and Assurance We operate a range of ISO-accredited Quality Management Systems to ensure excellence in customer service. We provide high quality, reliable products and services that exceed client expectations. We help you worry less about the filtration process so you can focus on what you do best.

    Accreditations
    Air Technology Systems logo

    Air Technology Systems

    United Kingdom

    Air Technology Systems (ATS) have been designing and supplying ventilation and odour control solutions to the water industry for over 20 years. Working closely with the main contractors/M&E Contractors in the industry, we have installed our systems into all major water companies. Our Range of services include: Surveys of existing ventilation and odour control systems. Upgrades, maintenance and modification of existing systems. The design, supply, installation and commissioning of new ventilation and odour control systems. We have our own experienced installation teams. We have our own NIC EIC registered electrical engineers. We work collaboratively with the client to ensure that the system design is optimised and meets the primary objectives e.g TOTEX, Level of performance etc. VENTILATION Our ventilation solutions are a combination of traditional and propriety techniques, including our innovative JETFLO system which maximises the ventilation efficiency and can reduce the overall extract volume, excellent for reducing condensation and ensuring fresh air is delivered where needed, this not only reduces energy consumption, but can reduce the size and cost of odour control units. ODOUR CONTROL Our unique alliance with Europe’s largest manufacturers of specialist odour control products, CMI Europe Environment, is a major strength. We can offer all proven odour control technologies, from carbon filtration and catalytic dry scrubbers, through to bio filtration and chemical scrubbing. Solutions often require a combination of these techniques. All equipment on the odour control plinth is sourced from CMI EE’s state of the art facility and is pre-assembled for inspection prior to dispatch. This provides us with a unique level of quality control. Our specialist rope access division allows us to gain access to places where mechanical scaffold/access is going to be either very difficult or cost prohibitive. Our wide range of expertise design and project management experience, combined with close collaboration with the client is the reason we have an excellent reputation in the industry.

    Accreditations
    Odour Control

    Water Filtration Systems: Rapid Gravity, Pressure, Slow Sand, and Membrane Filter Selection

    Water filtration systems remove particulate matter, microorganisms, and dissolved contaminants from water through physical, biological, and chemical mechanisms. Primary filtration types for drinking water: (1) Rapid gravity filters (RGF): open-top concrete or steel filter beds with dual media (anthracite 1.0 to 1.4 mm / silica sand 0.5 to 0.85 mm) or multimedia (anthracite / sand / garnet); filtration rate 5 to 15 m/h; operated at constant head, declining rate, or declining rate with declining head; backwash cycle every 24 to 72 hours (air scour 15 to 30 m3/m2/h for 3 to 10 minutes, followed by upflow water backwash 30 to 45 m3/m2/h for 5 to 15 minutes); backwash water volume typically 2 to 4 percent of throughput; settled effluent turbidity less than 2 NTU in; filter effluent target less than 0.2 NTU. (2) Pressure filters: enclosed pressure vessels with granular media; same media and backwash as RGF; operating pressure 1 to 7 bar; used where head is available (downstream of elevated source) or where enclosed system is required (chemically dosed filter aid); common for industrial and package water treatment plants. (3) Cartridge and bag filters: polymer fibre or membrane cartridges (5 to 50 micron); point-of-use or pre-treatment for membrane systems; disposable or cleanable; typical 2 to 10 bar differential across life.

    Slow sand filtration (SSF): the original drinking water treatment process (Altona, Germany 1892; London filters from 1829). SSF design per BS EN 1988-1:2019: loading rate 0.1 to 0.3 m/h; sand size 0.15 to 0.30 mm; bed depth 0.8 to 1.2 m; underdrain and supernatant water. The Schmutzdecke biological layer (5 to 30 mm at sand surface) is the key treatment mechanism: composed of algae, bacteria, protozoa, nematodes, and organic detritus; removes turbidity to less than 1 NTU from feeds less than 10 NTU; 3 to 4 log bacteria reduction; 2 to 4 log Cryptosporidium; some NOM removal. Maintenance: when head loss increases to maximum (typically 0.5 to 1.5 m) and flow can no longer be maintained, the Schmutzdecke is scraped off (5 to 20 mm) and the filter restarted; Schmutzdecke re-establishes in 2 to 4 weeks (ripening period of reduced performance); frequency: every 1 to 5 years depending on source water quality. Advantages: no chemical addition; low energy; long service life (sand lasts 10 to 20+ years before replacement); biologically removes NOM. Disadvantages: large land requirement (10 to 30 times footprint of RGF for equivalent flow); poor performance at turbidity greater than 10 NTU (requires pre-sedimentation); slow response to source water quality changes.

    Biological activated carbon (BAC) filtration combines granular activated carbon (GAC) with biological activity for simultaneous adsorption and biodegradation of organic compounds. BAC is used as a tertiary polishing step after ozonation in advanced drinking water treatment: ozone oxidises NOM into smaller biodegradable molecules (biodegradable dissolved organic carbon, BDOC); biological community on GAC surface mineralises BDOC. GAC specification: iodine number 800 to 1,200 mg/g (indicator of micropore volume); BET surface area 800 to 1,200 m2/g; particle size 0.8 to 1.6 mm; hardness greater than 75 percent (CTC - Carbon Tetrachloride Activity). Empty bed contact time (EBCT): 10 to 20 minutes for GAC; after 18 to 36 months, GAC capacity exhausted (breakthrough of adsorbable micropollutants); regeneration at 800 to 900 degrees C or replacement. European drinking water BAC examples: Amsterdam Water Supply, Veolia Paris-area plants, German Waterworks (DVGW W 217 standard for BAC). Membrane filtration (MF, UF, NF, RO) provides absolute barrier filtration without backwash-to-drain requirements for MF/UF (backwash water recovered to head of works); NF and RO remove dissolved solids and organic molecules.

    Frequently Asked Questions

    What is the best water filtration system for drinking water?

    Best filtration system selection depends on source water type, treatment objectives, scale, and budget: Surface water (rivers, reservoirs): coagulation + sedimentation/DAF + rapid gravity filtration (RGF) + disinfection - the standard UK water treatment process; achieves WHO/DWI compliance for all conventional parameters. For Cryptosporidium control: UF membrane or RGF following coagulation/DAF provides greater than 4 log removal credit. High-colour/NOM source: ozone + biological activated carbon (BAC) added after RGF for micropollutant and colour control; increases CAPEX and OPEX but achieves very low DOC effluent (less than 2 mg/L). Groundwater (low turbidity, potential for nitrate/arsenic/iron): typically less treatment required; iron and manganese removal by aeration + pressure filter; nitrate removal by ion exchange or biological denitrification if above 50 mg/L NO3-. Brackish or seawater: NF (nanofiltration, 200 to 2,000 mg/L TDS removal) or BWRO/SWRO for desalination. Small-scale (point of entry, 10 to 100 m3/day): package plant (Xylem, Grundfos, Nijhuis, Smith and Loveless) combining coagulation, DAF/clarification, pressure filtration, UV, and chlorination in a pre-engineered containerised unit - reduces design, installation, and commissioning time vs bespoke design.

    How often do water filters need to be replaced or backwashed?

    Filter maintenance frequencies depend on type: Rapid gravity filters (RGF): backwash every 24 to 72 hours (triggered by head loss, turbidity breakthrough, or time - typically 48-hour cycle in UK surface water works); backwash duration 20 to 45 minutes total; no media replacement until deterioration evident (typically 15 to 25 years for anthracite; 25+ years for silica sand). Pressure filters (industrial): backwash every 24 to 48 hours; 1 to 3 percent of product water used for backwash; media replacement at loss of 30 percent original bed depth due to attrition (typically 5 to 15 years). Slow sand filters: rescraping (Schmutzdecke removal) every 1 to 5 years; full sand replacement every 20 to 30 years. GAC/BAC filters: no backwash required (unlike sand/anthracite); media replacement when breakthrough of target compound (NOM, micropollutants) is detected by monitoring - typically every 18 to 36 months at 15 to 20 minutes EBCT. Cartridge filters (point-of-use, pre-RO): replace every 3 to 12 months depending on turbidity loading and cartridge type; differential pressure greater than 1.5 to 2 bar indicates replacement needed. Membrane UF/MF: no media replacement; CEB every 1 to 24 hours; CIP every 1 to 12 months; membrane replacement at 5 to 10 years.

    What is the difference between sand filtration and membrane filtration?

    Sand filtration and membrane filtration both remove suspended solids but differ fundamentally in mechanism and performance: Sand filtration (conventional granular media): physical-mechanical process (straining, sedimentation in pores, adsorption on grain surfaces); pore size variable (100 to 1,000 micron, depending on media size); turbidity removal: 90 to 99 percent (from less than 10 NTU to less than 0.1 to 0.5 NTU); Cryptosporidium removal: 1 to 2 log (not an absolute barrier - oocysts can pass through filter during breakthrough or if flow too high); requires coagulation for effective NOM and colloidal removal; backwash needed every 24 to 72 hours; long established technology. Membrane filtration (MF, UF): size exclusion barrier; pore size fixed (MF 0.1 to 1 micron; UF 0.01 to 0.1 micron); turbidity removal: greater than 99.9 percent (effluent consistently less than 0.1 NTU regardless of feed); Cryptosporidium removal: greater than 4 log absolute barrier (when integrity is maintained and verified by pressure decay testing); no coagulation required for turbidity removal (coagulation still beneficial for NOM removal); chemical cleaning needed, no media replacement; higher CAPEX (approximately 20 to 50 percent more than equivalent RGF) but lower land area (5 to 10 times smaller footprint). US EPA LT2ESWTR awards Cryptosporidium log removal credit only to membranes with demonstrated integrity, not to conventional sand filtration.

    Can water filtration remove nitrates?

    Conventional granular media filtration (sand, anthracite) does NOT remove nitrates - nitrate is a dissolved anion that passes freely through physical filtration media. Nitrate removal requires one of the following specialised processes: (1) Ion exchange (nitrate-selective resin): strong base anion resin (e.g. Purolite A520E, Lanxess Lewatit MonoPlus M 500, nitrate-selective resins prefer NO3- over SO4-2); regeneration with NaCl brine produces nitrate-concentrated reject requiring disposal; achieves less than 50 mg/L NO3- (UK/EU DWD standard) from feeds of 50 to 200 mg/L; (2) Biological denitrification (BAC or fluidised bed): heterotrophic bacteria (Paracoccus denitrificans, Pseudomonas) reduce NO3- to N2 gas using organic carbon (methanol, ethanol, acetic acid) as electron donor at 0.5 to 2.5 mg CH3OH per mg NO3--N; achieves less than 10 mg/L NO3--N; followed by post-biological filtration and disinfection to remove bacteria; (3) Membrane processes (NF, RO): NF reject nitrate along with divalent ions (partial removal 50 to 85 percent); RO greater than 95 percent nitrate rejection; brine disposal required; (4) Blending: high-nitrate groundwater blended with low-nitrate source to achieve compliance below 50 mg/L NO3- - not a treatment process but a common management strategy. UK: DWI standard 50 mg/L NO3- (11.3 mg/L as N) aligns with EU DWD.

    Case Study·Drinking water supply, South East England
    Challenge

    A chalk groundwater source serving 62,000 people in a commuter town had persistent turbidity exceedances (greater than 4 NTU at consumer tap) after periods of heavy rainfall, caused by turbidity pulses entering the borehole field from an unlined chalk surface pathway. The existing pressure filtration plant (dual media, 1980s) had a design loading of 10 m/h and showed turbidity breakthrough of 0.4 to 0.8 NTU in filtered water during events, with no Cryptosporidium barrier in place.

    Approach

    A 24 MLD upgrade replaced the existing pressure filters with a Veolia Actiflo ballasted flocculation unit followed by four PVDF ultrafiltration membrane trains (Toray HFU-2020, 0.01 micron nominal pore size). UF provided a DWI-credited 4-log Cryptosporidium barrier, validated to DVGW W 294. Pressure decay testing every six hours verified membrane integrity. Post-UF sodium hypochlorite dosing (0.6 mg/L free chlorine at works outlet) and UV disinfection (Trojan UV Swift, 40 mJ/cm2) completed the treatment train.

    Outcome

    Filtered water turbidity fell to consistently below 0.05 NTU (previously 0.1 to 0.8 NTU). DWI issued a formal 4-log Cryptosporidium credit for the site. No turbidity exceedances have been recorded at consumer tap in the two years post-commissioning. The site achieved DWI Undertaking closure 14 months ahead of schedule.

    Questions to Ask Shortlisted Providers

    1. 1

      What is the validated log removal credit for Cryptosporidium for this filtration system, and to which standard was it validated?

      DWI requires validated log removal evidence (DVGW W 294 or USEPA UVDGM); unvalidated systems may not be accepted as a Cryptosporidium barrier by DWI even if turbidity performance is good.

    2. 2

      What is the backwash water volume as a percentage of throughput, and where does the wash water go?

      Backwash water is typically 2 to 5 percent of product; sites without a wash water recovery system must either return it to the works (head loadings implications) or dispose to sewer (EA permit and cost implications).

    3. 3

      What membrane integrity testing method is used, and what is the minimum detectable breach size?

      Pressure decay testing (PDT) detects breaches of approximately 3 micron and above; smaller breach detection requires diffusive airflow (DAF) testing; without integrity testing, membrane log-removal claims cannot be validated.

    4. 4

      How does filter performance degrade with media ageing, and what is the recommended media replacement interval?

      Anthracite loses 5 to 15 percent of bed depth over 15 to 20 years through attrition; understanding degradation rates allows proactive maintenance budgeting and avoids compliance failures.

    5. 5

      Can you provide site references for this exact equipment at comparable source water UVT and turbidity conditions?

      Filter performance is highly site-specific; references at similar UVT (a key membrane and UV system design parameter) prove the vendor's claims under comparable operating conditions.

    What Drives Cost in This Category

    Filtration technology type (sand vs membrane)

    Rapid gravity sand filtration costs GBP 300 to 600 per m3/day capacity; UF membranes cost GBP 500 to 900 per m3/day; membranes add Cryptosporidium credit that sand cannot provide, potentially avoiding a separate barrier.

    Media type and volume

    Anthracite costs GBP 600 to 900 per tonne; garnet (for multi-media) GBP 400 to 700 per tonne; GAC for biological filtration GBP 1,000 to 2,500 per tonne; initial media fill for a 10 m2 RGF at 1.0 m depth: approximately 15 to 20 tonnes.

    Backwash system design and water cost

    Air-scour backwash uses 15 to 30 m3/m2/h compressed air; water backwash at 30 to 45 m3/m2/h; for a 100 m3/day works, backwash water can represent 2 to 5 percent of total throughput, adding to operating cost.

    Regulatory validation and DWI approval

    Obtaining DWI validation for a new process (pilot study, biodosimetry testing, regulatory submission) costs GBP 80,000 to 300,000; established validated systems from approved suppliers avoid most of this cost.

    Key Regulations & Standards

    Cryptosporidium in Water Supplies Regs 1999

    The Water Supply (Water Quality) (Amendment) Regulations 1999 (SI 1999/1524): water companies must continuously monitor water leaving surface water treatment works for Cryptosporidium; works must use a DWI-approved barrier achieving at least 3-log oocyst reduction.

    WS(WQ)R 2016 Turbidity Standard

    Water Supply (Water Quality) Regulations 2016 (England), Schedule 1: turbidity at the consumer tap must not exceed 4 NTU; the DWI's operational guideline for filtered water at the works is less than 0.5 NTU, with a target of less than 0.1 NTU for membrane filtration.

    DVGW W 294 Membrane Validation

    German technical standard for UV disinfection (Parts 1 to 3) and membrane filtration validation; adopted as the primary European standard for DWI-accepted validation of membrane and UV systems providing Cryptosporidium log-removal credit in UK drinking water.

    DWI Regulation 31 Approval

    All materials, chemicals, and processes used in drinking water treatment require DWI Regulation 31 approval; this includes membrane modules (confirmed using BS 6920 extraction test), coagulant chemicals, and filter media in contact with potable water.