Iron and manganese removal, oxidation, greensand, biological filters, and sequestration for well and surface water.

    Find a Iron Removal Water Treatment Provider

    Matched providers: 61

    Top countries: United Kingdom, United States

    Popular technologies: Granular Activated Carbon (GAC) Filters, Ion Exchange

    Iron Removal from Water: Aeration, Oxidation, and Filtration Process Design

    Iron occurs in groundwater as dissolved ferrous iron Fe(II) at concentrations of 0.1 to 20 mg per L under anoxic conditions (no dissolved oxygen). Contact with oxygen in the distribution system or at the tap causes Fe(II) to oxidise to ferric Fe(III) and precipitate as rust, discolouring water brown-red and causing taste complaints. WHO Drinking Water Guideline for iron: 0.3 mg per L (aesthetic); EU DWD 2020 parametric value: 0.2 mg per L; US EPA secondary MCL: 0.3 mg per L. Iron removal target for most utilities is below 0.05 mg per L to allow for some re-dissolution in the distribution system. Manganese (often co-present with iron in groundwater) must also be considered: WHO guideline 0.4 mg per L, EU DWD 2020: 0.05 mg per L.

    Iron removal processes begin with oxidation: aeration (cascade aerator or packed tower, achieves dissolved oxygen above 7 mg per L, oxidising Fe2+ to Fe3+ at pH above 7, reaction complete in 15 to 30 minutes), chlorination (1 to 2 mg per L free chlorine, oxidation complete in 1 to 5 minutes, also disinfects), potassium permanganate (0.5 to 1 mg per L, immediate oxidation, used when aeration is insufficient), or ozonation (0.5 to 1 mg per L O3). Following oxidation, Fe(III) floc is removed by: gravity filtration (sand-anthracite multimedia filter, hydraulic loading 5 to 10 m per hr, run length 24 to 72 hours before backwash), or pressure filtration (higher throughput per unit area). For low-iron groundwater below 1 mg per L, contact filtration with oxidising media (greensand plus KMnO4 regeneration, or manganese dioxide-coated media) may be sufficient.

    Design considerations: pH above 7 is required for efficient Fe(II) oxidation by dissolved oxygen (oxidation rate doubles per pH unit above 7 at constant DO). Organic complexed iron (tannins, humic acids) does not respond to simple aeration and oxidation; coagulation (alum or ferric sulphate, 5 to 20 mg per L) or oxidation with ozone at higher doses (2 to 4 mg per L) is required to break the organic-iron complex. High-iron groundwaters often contain co-contaminants (hydrogen sulphide: rotten egg odour, treated by aeration; arsenic: co-precipitation with Fe(III) at above 0.3 mg per L iron provides some natural removal). Backwash water from iron removal filters is typically 3 to 5 percent of throughput; backwash supernatant can be recycled to the head of the works while filter cake (iron hydroxide sludge) requires dewatering (centrifuge or filter press) and disposal as non-hazardous solid waste.

    Frequently Asked Questions

    What causes high iron in drinking water?

    High iron in drinking water has two main sources: (1) Groundwater - dissolved ferrous iron Fe(II) is naturally present in anoxic (oxygen-depleted) groundwater where reducing conditions have dissolved iron from iron-bearing minerals (siderite, pyrite, iron-bearing silicates). Concentrations of 1 to 20 mg per L are common in many aquifer types globally. (2) Distribution system corrosion - iron pipes (cast iron, ductile iron) corrode in aggressive water (low pH, high chloride, low alkalinity, high dissolved CO2), releasing ferric hydroxide tubercles and corrosion products that discolour water. Source iron is best addressed at the treatment works. Distribution corrosion iron requires water chemistry adjustment (pH buffering to 7.5 to 8.5, orthophosphate dosing to form a protective corrosion barrier on pipe walls) and pipe replacement programme for severely tuberculated mains.

    What is the most effective way to remove iron from borehole water?

    For typical borehole water with iron 1 to 10 mg per L Fe(II) at pH 6.5 to 7.5: the most reliable process is cascade aeration (raising DO to above 7 mg per L) followed by dual-media gravity filtration (sand-anthracite, 0.8 to 1.2 mm effective size, 1.5 m bed depth). This achieves iron below 0.05 mg per L at hydraulic loading 5 to 8 m per hr. For pH below 6.5 where aeration oxidation is slow: add lime or sodium carbonate to raise pH to 7.5 before filtration. For high-iron water above 10 mg per L: consider pre-settling (20 to 30 minute contact time in aeration tank before filtration) to reduce filter loading. For small rural supplies: greensand pressure filters with potassium permanganate (KMnO4) regeneration provide a compact, effective solution requiring less civil engineering than a cascade aerator and gravity filter.

    Does iron removal also remove manganese?

    Iron and manganese co-occur in groundwater but require different conditions for removal. Fe(II) oxidises rapidly at pH above 7 in the presence of dissolved oxygen (half-life minutes at pH 7.5, DO 7 mg per L). Mn(II) oxidises much more slowly: at pH 7.5 and DO 7 mg per L, half-life is hours to days. For manganese removal by aeration alone, pH 9 to 10 is needed, which is impractical for potable water. Effective manganese removal uses: (1) Chlorination to 1 to 2 mg per L free residual, which oxidises Mn(II) to MnO2 within 1 to 5 minutes and allows removal by filtration; (2) Potassium permanganate oxidation (0.5 to 1 mg per L KMnO4 for Mn below 1 mg per L); (3) Biological manganese removal using MnO2-coated filter media where bacteria catalyse the oxidation - effective, chemical-free, and increasingly used in Europe; (4) Ozonation (0.5 to 1 mg per L O3, rapid and effective). Greensand filters (manganese-dioxide-coated) with continuous KMnO4 dosing achieve both iron and manganese removal in a single media.

    Is high iron water dangerous to health?

    Iron is not considered acutely toxic to humans and has no WHO health-based guideline for drinking water; the WHO 0.3 mg per L value and EU 0.2 mg per L parametric value are aesthetic/operational standards (preventing discolouration, taste, and laundry staining), not health limits. However: (1) High iron promotes biofilm growth in distribution systems by providing an energy source for iron-oxidising bacteria (Gallionella, Leptothrix), which can contribute to discolouration, taste, odour, and nitrification problems; (2) Very high iron concentrations (above 5 mg per L) impart significant metallic taste and astringency making water unpalatable; (3) Iron deposits in distribution systems reduce pipe capacity and provide attachment surfaces for pathogenic organisms; (4) In industrial applications (boiler feedwater, process water), even 0.05 mg per L iron causes equipment fouling, so treatment to below 0.01 mg per L is standard in high-purity water systems.

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    Iron Removal Water Treatment Companies

    Iron and manganese removal, oxidation, greensand, biological filters, and sequestration for well and surface water.

    61 providers

    This page is a good fit if you need:

    • Granular Activated Carbon (GAC) Filters or Ion Exchange capabilities
    • Suppliers with manufacturing sector experience
    • Providers operating in United Kingdom or United States
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    United Kingdom31
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    Netherlands5
    Germany4
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    food-beverage8
    mining-quarrying8
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    Granular Activated Carbon (GAC) Filters5
    Ion Exchange5
    Automated pH Control Systems4
    Flat Sheet UF Membranes4
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    Find a Iron Removal Water Treatment Provider

    Showing 1-20 of 61

    61 results from 61 matched providers

    Devram International logo

    Devram International

    Verified
    India1-50 employees
    Granular Activated Carbon (GAC) Filters · Fixed Bed Activated Carbon Adsorbers · Powdered MOF Adsorbent Systems +19 more
    apac · mea

    DEVRAM INTERNATIONAL, headquartered in Surat, India, is a pioneering enterprise specializing in Snow and Rainwater Management with advanced contamination reduction abilities for storage and artificial groundwater recharge. Established as the commercial wing of Shree Someshwar Education Trust (SSET), DEVRAM INTERNATIONAL is driven by a mission to provide tech-enabled, nature-based solutions that address the world’s most pressing water and climate challenges. The company’s work integrates Integrated Water Resources Management (IWRM) principles and contributes across the source-to-sea water management cycle, ensuring holistic restoration of the global water cycle. Its innovative portfolio includes rainwater harvesting systems, stormwater management, aquifer recharge, artificial glaciers, desert trenches, rooftop water filtration, and green infrastructure models. These interventions directly reduce salinity in soils and aquifers, restore ecological balance, and enhance resilience to droughts, floods, and climate change. As the commercial promoter of the Global Rainwater Management Program (GRMP), DEVRAM INTERNATIONAL advances the vision of GRMP as a Global Common Minimum Program (GCMP) for nations and international bodies. GRMP demonstrates how rainwater and snowwater retention can restore entire natural cycles, while delivering unmatched benefits across the Sustainable Development Goals (SDGs). Alignment with the SDGs • SDG 2 (Zero Hunger): By reducing soil salinity, supporting organic farming, and ensuring water availability for agriculture, GRMP safeguards food security. • SDG 6 (Clean Water & Sanitation): DEVRAM’s recharge structures and contamination reduction technologies guarantee safe, sustainable drinking water for communities. • SDG 7 (Affordable & Clean Energy): By reducing dependency on energy-intensive desalination, GRMP lowers national energy bills and improves hydropower capacity. • SDG 9 (Industry, Innovation & Infrastructure): DEVRAM integrates nature-based water infrastructure with industrial operations, reducing OPEX and water footprints. • SDG 11 (Sustainable Cities & Communities): Through stormwater management and aquifer recharge, GRMP mitigates urban flooding and secures municipal supplies. • SDG 12 (Responsible Consumption & Production): Promotes a circular water economy, reusing wastewater, biogas from organic waste, and aligning with industrial CSR. • SDG 13 (Climate Action): By lowering GHG emissions and cooling local climates through water cycle restoration, GRMP strengthens resilience to global warming. • SDG 14 (Life Below Water): Free-flowing rivers, improved aquaculture, and reduced dam-related aquatic pollution support marine and freshwater ecosystems. • SDG 15 (Life on Land): DEVRAM’s interventions restore wetlands, mangroves, peatlands, and biodiversity-rich ecosystems, addressing land degradation. • SDG 17 (Partnerships for the Goals): The company actively collaborates with UN agencies, governments, World Bank programs, and private investors to scale GRMP globally. Founders and Leadership Dhaval Pandya, Co-Founder of DEVRAM INTERNATIONAL and CEO of SSET, is a globally recognized sustainability leader. He co-developed the Global Rainwater Management Program (GRMP), recognized by the United Nations Global Water Partnership (GWP) and the Government of India. As a Technical Committee Member (WRD03) of the Bureau of Indian Standards (BIS), he contributes to national water policy frameworks. His work is featured in UNCCD IWRM Action Hub and global forums like COP, Stockholm World Water Week, and World Bank SDG reviews. Manalika Pandya, Co-Founder, plays a critical role in embedding social, gender, and educational dimensions into GRMP. Her focus on women empowerment, local capacity building, and community-driven adoption ensures the program’s sustainability at the grassroots. Impact and Recognition DEVRAM INTERNATIONAL has piloted groundbreaking projects such as: Kawas Village (Gujarat, India): A GRMP model village achieving self-reliance in water, organic farming, and biogas, while resolving conflicts with industries. Delhi’s Water Paradox (Figshare Study): Shows how GRMP can solve megacity water crises without costly desalination or dams. GSECL Surat Project: Demonstrates reduced industrial water costs through GRMP recharge planning, aligning profitability with SDG and ESG goals. These projects show GRMP’s potential to reduce industrial and municipal water supply costs by up 60%, avoid massive investments in desalination and dams, and enable nations to achieve water sovereignty. Core Competencies • Rainwater & Snowwater Harvesting • Artificial Groundwater Recharge & Salinity Reduction • Stormwater Management & Urban Flood Control • Transboundary Water Cooperation • IWRM & Source-to-Sea Water Governance • AI-Enabled Hydrological Modelling & Policy Analytics • Environmental Services Restoration (Wetlands, Mangroves, Peatlands) • Circular Economy.

    Activated Carbon Filtration
    Granular Activated Carbon (GAC) Filters
    Multi-media Filtration (MMF) Systems
    +25 more
    manufacturing
    utilities
    BLUESEN Co., Ltd. logo

    BLUESEN Co., Ltd.

    Verified
    South Korea51-200 employees
    Automated pH Control Systems · Chlorination · Chlorine Dioxide Generators (ClO₂) +2 more
    apac · china · north-america

    Bluesen Co., Ltd. is a leading technology company in the field of environmental measurement. Since 2004, BLUESEN has developed its own technology and production capacity for water management technology. We provide real-time water quality monitoring solutions for water and wastewater systems. Our company specializes in the development and production of sensors designed to ensure stable and accurate real-time water quality data.

    Online Monitoring Systems
    Smart Sensors and Meters
    waste-management
    manufacturing
    GX

    Guangdong Xinjieyuan Environmental Protection Technology Co., Ltd.

    Verified
    China51-200 employees
    reverse osmosis · desalination · ultrafiltration +4 more
    north-america · latam · europe +3 more

    Guangdong Xinjieyuan Environmental Technology Co., Ltd. is a professional manufacturer specializing in industrial water purification equipment. We focus on RO, ultrafiltration, EDI and desalination systems, holding ISO & CE certifications. With over 10 years of technical experience, we supply customized pure water solutions for food, pharmacy, agriculture and aquaculture, supporting OEM & ODM and exporting to global markets. All units adopt top-grade membrane and pump parts, with strict factory testing and one-year full warranty.

    Ultrafiltration (UF) Systems
    Reverse Osmosis (RO) Systems
    Reverse Osmosis (RO) Desalination
    +3 more
    manufacturing
    energy-production
    Ecosystems International logo

    Ecosystems International

    Verified
    Indonesia51-200 employees
    Flat Sheet Microfiltration Units · Hollow Fiber MF Systems · Ceramic Microfiltration Modules +80 more
    apac · china · europe +3 more

    PT Ecosystems International (PT ESI) was established at Jakarta on 21st November 2006. We are an industrial effluent treatment systems integrator specializing in electrocoagulation (EC), a unique waste water treatment profile. PT ESI has capabilities in designing complete waste water treatment solutions by combining various effluent treatment systems such as the electro-coagulation, biological, chemical processes and membrane filtration, offering its customers a wide and comprehensive range of solutions, tailored to suit their various needs – ranging from basic effluent treatment for discharge to effluent recycling for water reuse. The Company is experienced in handling the design, engineering, procurement, construction and operation of new Effluent Treatment Plants (“ETP”) and possesses expertise in retrofitting existing ETP to increase the flow rate and treatment capability without any major infrastructure increase PT ESI is also a premier waste water treatment service company specializing in handling waste water generated from Exploration (Drilling) and Produced Water. Customers in Indonesia include major Oil & Gas companies such as Pertamina, Exxon, Chevron, Petro-China and Medco. Operations in Indonesia are provided by both mobile and fixed units. At drill sites where waste-water recycling is required, PT ESI supplement these treatment units with skid mounted mobile Reverse Osmosis systems. The technologies and solutions employed by PT ESI are developed in-house and examples of these are its proprietary Trident™ Electro Contaminant Removal (“ECR”) system, the Stage Contaminant Removal (“SCR”) process and Mobile On-Site Waste-Water Treatment (“OWT”) units

    Reverse Osmosis (RO) Systems
    Ultrafiltration (UF) Systems
    Multi-media Filtration (MMF) Systems
    +63 more
    agriculture
    manufacturing
    Brine Consulting logo

    Brine Consulting

    Verified
    Netherlands1-50 employees
    Mechanical Vapor Recompression (MVR) · Atmospheric Evaporator · Spray Evaporator +130 more
    apac · china · europe +3 more

    BRINE CONSULTING delivers senior-level strategy, technical design, and actionable insight across the full lifecycle of water-related challenges. We support clients with advisory and due diligence, advanced brine management and resource recovery, industrial and municipal water reuse, and MLD/ZLD systems. Our team also leads ESG and climate-resilience strategy, innovation scouting, and international development and PPP advisory. With deep specialization in desalination, brine valorization, circular economy models, and high-impact infrastructure, we help organizations turn water and waste streams into opportunities, providing clear thinking, rapid delivery, and solutions built for real-world results.

    Activated Carbon Filtration
    Reverse Osmosis (RO) Systems
    Ultrafiltration (UF) Systems
    +85 more
    manufacturing
    energy-production
    Hainan Litree Water Purification Technology Industry Co., Ltd. logo

    Hainan Litree Water Purification Technology Industry Co., Ltd.

    Verified
    China200+ employees
    Tubular Ultrafiltration Units · Hollow Fiber UF Modules · Flat Sheet UF Membranes +17 more
    apac · china · europe +3 more

    Litree: Pioneering Ultrafiltration for a Water-Secure World Founded in 1992, Litree has dedicated 30+ years to redefining water purification through ultrafiltration (UF) membrane technology—our core expertise and passion立升(Litree). As a global high-tech enterprise rooted in independent innovation, we’ve evolved from a membrane R&D startup to one of the world’s leading water problem solvers, with over 146 core patents and state-of-the-art manufacturing hubs in Haikou and Suzhou, China立升(Litree). Our signature hollow fiber UF membranes are engineered to deliver unmatched performance: 0.01μm precision removes 99.99% of bacteria, viruses, and contaminants while preserving essential minerals—striking the perfect balance between purity and health立升(Litree). This technology powers our diverse solutions, from residential whole-house systems to large-scale municipal projects and industrial wastewater treatment, all designed for sustainability and cost-efficiency. What truly sets us apart is our commitment to making safe water accessible. We’ve completed projects serving 50,000+ residents with centralized purification systems that cut construction costs and footprint by 50% compared to traditional setups—proof that advanced technology can also be affordable. Today, our solutions reach 60+ countries, supporting 3,000+ industrial clients and millions of households worldwide. At Litree, water isn’t just our business—it’s our mission. We believe every drop matters, and we’ll keep pushing boundaries to create a future where clean, safe water is a universal right, not a privilege

    Ultrafiltration (UF) Systems
    Membrane Filtration Technologies
    pH Adjustment and Neutralization
    +64 more
    agriculture
    manufacturing
    S

    Shunyu

    Verified
    China1-50 employees
    Granular Ferric Hydroxide Adsorption · Arsenic Adsorption Media · Phosphate Adsorption Media +5 more
    latam · europe · china +3 more

    ShunyuH2O is a professional manufacturer of SY02-P granular ferric hydroxide filter media, specialized in simultaneous arsenic and phosphate removal from groundwater, municipal drinking water and industrial wastewater. Our GFH adsorbent media effectively reduces arsenic concentration below EPA standard 10μg/L, featuring high contaminant capacity, long service life and stable performance under fluctuating pH. We supply bulk filter media to global water treatment system manufacturers, environmental engineering contractors and groundwater remediation projects, covering North America, Latin America, Europe, MEA and APAC regions. With stable factory supply, complete technical data support and customized packing service, we provide cost-effective heavy metal removal solutions for arsenic-polluted water projects worldwide.

    utilities
    waste-management
    Gi Aqua , Water as a Service logo

    Gi Aqua , Water as a Service

    Verified
    Saudi Arabia51-200 employees
    Advanced Oxidation Processes (AOPs) · Chemical Precipitation · Membrane Bioreactors (MBR) +3 more
    apac · europe · mea

    GI WAAS delivers cutting-edge water and wastewater solutions using advanced nanotechnology and zero total discharge solution sets industry standards. Our mission is to provide smart, sustainable, and decentralized treatment systems. We are committed to circular economy principles and reducing environmental impact. Our holistic approach provides comprehensive, tailor-made solutions that are designed to meet the specific needs of each client

    Water-as-a-Service (WaaS) Contracts
    Public-Private Partnerships (PPPs)
    Technology Leasing and Rental Solutions
    +13 more
    agriculture
    manufacturing
    RCI Aquatech logo

    RCI Aquatech

    Verified
    India1-50 employees
    Mechanical Vapor Recompression (MVR) · Multiple Effect Evaporator (MEE) · Atmospheric Evaporator +76 more
    apac · europe · latam +1 more
    1 case studies

    Founded in 2009, formerly known as Red Circle Industries (RCI), RCI Aquatech creates custom wastewater solutions based on end users’ requirements, which allow for optimally chosen components resulting in a solution that meets or exceeds customer needs. RCI Aquatech’s wastewater treatment systems combine necessary process technologies to reach required state and federal discharge limits and comply with local regulations. Our systems focus on removal of pollutants such as heavy metals, greases, suspended solids, oils, high salt content, toxic compounds, phosphates and more. Using chemical-physical treatment (coagulation, flocculation, and sedimentation), biological treatment (aerobic and anaerobic) and wet chemical oxidation (persistent or toxic organics). Our expertise comprises the following technologies:  Filtration & softening systems  Physicochemical treatment (coagulation-flocculation)  Membrane filtration (UF & RO)  Ion exchange  Chemical oxidation  Biological treatment  Zero liquid discharge (ZLD) system

    Activated Carbon Filtration
    Microfiltration (MF) Systems
    Reverse Osmosis (RO) Systems
    +52 more
    manufacturing
    chemicals-pharmaceuticals
    AOS Treatment Solutions logo

    AOS Treatment Solutions

    United States
    Chemical precipitation with iron and aluminum coagulants · Lime and calcium hydroxide treatment · Biological phosphorus removal using PAO bacteria +2 more
    North America

    AOS Treatment Solutions is a United States water testing and treatment company based in Cypress, Texas, operating since 1999. The company specializes in phosphorus removal from municipal and industrial wastewater, offering a complete line of products that reduce phosphorus in the final effluent before discharge. AOS supports treatment plants in meeting regulatory discharge limits through chemical, biological, and physical removal approaches.

    Phosphorus removal from wastewater
    Wastewater clarification and separation
    Sludge dewatering
    +1 more
    instrAction GmbH logo

    instrAction GmbH

    Germany1-50 employees
    Activated Carbon · Ion Exchange · Chemical Precipitation
    europe

    instrAction GmbH specializes in advanced absorber technology for the removal of PFAS and heavy metals, offering innovative solutions for water treatment challenges. Based in Germany, the company serves industries such as utilities, manufacturing, and waste management with a focus on environmental remediation.

    Utilities
    Manufacturing
    AG

    Antea Group

    United States
    Water risk assessment frameworks · Water footprinting methodologies · CDP disclosure and reporting tools +2 more
    North America

    Antea Group is an international environment, health, safety, and sustainability consulting firm. Its US operation, Antea Group USA, is headquartered in St. Paul, Minnesota, United States, and works with many of the world's most sustainable companies to address ESG and business challenges. The firm's services span environmental remediation, regulatory compliance, worker safety, merger and acquisition support, and sustainability strategy. Its dedicated water stewardship team specializes in water strategy and program advisory, water risk assessments, water efficiency and innovation, and water footprinting. As a CDP accredited consultancy provider, Antea Group also delivers CDP disclosure and corporate reporting services covering the Climate Change, Water Security, and Forests questionnaires. Through sister companies in Belgium, Brazil, France, India, the Netherlands, Poland, Spain, and the United Kingdom, the group draws on more than 3,200 employees across over 75 offices worldwide.

    Water stewardship strategy and program advisory
    Water risk assessments and feasibility studies
    ESG and corporate sustainability reporting (CDP disclosure)
    +2 more
    Watch Water logo

    Watch Water

    Germany
    Catalytic filtration media · Nucleation assisted crystallization scale prevention · Adsorption with activated carbon and metal organic frameworks +2 more
    Europe

    Watch Water is a Mannheim, Germany based manufacturer of water and wastewater treatment media with more than 45 years of experience and over 45 branches worldwide. The company produces scale prevention media, adsorbents, filter media, and instant dosing chemicals for drinking water, food and beverage, boilers, cooling towers, wastewater, and reuse. Its products remove iron, manganese, hydrogen sulfide, heavy metals, and turbidity.

    Manufacture of filter and scale prevention media
    Adsorbent and activated carbon supply
    Instant dosing chemical solutions
    +1 more
    GW

    GEH Wasserchemie

    Germany
    Granular ferric hydroxide · GEH adsorbent media · GEH 102 +2 more
    Europe

    GEH Wasserchemie, founded in 1997 near Osnabrueck, Germany, manufactures patented granular ferric hydroxide adsorption media (GEH and GEH 102) for removing arsenic, lead, chromium, copper, manganese, nickel, zinc and phosphate from drinking water and process water. The media complies with EN DIN 15029, products treat roughly 180 million cubic meters of water per year, and the company operates in 61 countries with ISO 9001, 14001 and 50001 certification.

    Adsorption media supply
    GEH system consultation
    Performance-check audits
    +2 more
    FI

    Freytech Inc.

    Verified
    United States51-200 employees
    Environmental Balance Device technology · Methan removal · Offensive Odor Control +4 more
    north-america · latam · europe +2 more
    1 case studies

    Freytech Inc., headquartered in Miami, Florida (USA), is an environmental technology company specializing in innovative, science-based solutions for the remediation and optimization of air, water, soil, and industrial fluid systems. Since 1996, the company has developed sustainable technologies that improve operational efficiency while supporting decarbonization and environmental stewardship. Its flagship innovation, the Environmental Balance Device (EBD) Technology, is a patented and scientifically validated platform designed to enhance natural bioremediation and biotransformation processes in real time, without the use of electricity, chemicals, filters, membranes, or other consumables. EBD systems operate continuously for more than 15 years with minimal maintenance requirements. Scientific validation includes certification by the Ministry of Science and Innovation of Spain and confirmation as “Safe to Use” by Florida International University (USA). Freytech's technologies are deployed across municipal, industrial, agricultural, and energy sectors throughout Europe, North America, and the Middle East, supporting applications such as: Water and wastewater treatment optimization; Reduction of scaling, corrosion, biofouling, and sludge in pipelines and process equipment; Hard water conditioning and extension of reverse osmosis (RO) membrane life; Greenhouse gas, ammonia, and odor reduction; Soil, groundwater, river, and lake remediation; Agricultural irrigation improvement and soil restoration; Oil and gas infrastructure optimization, including paraffin, asphaltene, and fouling control. Freytech's solutions are designed to help organizations achieve operational excellence and sustainability goals simultaneously by reducing energy consumption, lowering maintenance costs, extending asset life, improving resource efficiency, and supporting ESG and net-zero strategies. EBD installations are highly scalable, can be completed in hours rather than months, and provide an affordable pathway for greenhouse gas mitigation at costs below USD 40 per tCO₂e. Mission: To deliver practical, sustainable, and economically viable technologies that restore environmental balance while enhancing industrial performance, resilience, and long-term competitiveness.

    agriculture
    energy-production
    CE

    Carollo Engineers

    United States
    Conventional treatment process design · Membrane treatment systems · UV and ozone disinfection +3 more
    North America

    Carollo Engineers is a US environmental engineering firm specializing exclusively in water and wastewater services. Founded in 1933, the company provides planning, design, construction management, and operations support for municipal water utilities and industrial clients across North America.

    Water and wastewater facility planning
    Design and construction management
    Operations and asset management consulting
    +3 more
    Inversand Company logo

    Inversand Company

    United States51-200 employees
    Filtration
    north-america

    Inversand Company specializes in advanced water treatment solutions, offering GreensandPlus™ filtration systems for effective removal of contaminants such as iron, manganese, radium, and arsenic. Their expertise ensures high-efficiency, low-maintenance, and cost-effective water filtration solutions tailored to complex water quality challenges.

    Multi-Media Filtration (MMF)
    Utilities
    Manufacturing
    Cornelsen Group logo

    Cornelsen Group

    Germany51-200 employees
    Activated Carbon · Granular Activated Carbon (GAC) Filters · Chemical Precipitation +1 more
    europe · north-america

    Cornelsen Group specializes in advanced water treatment solutions, offering technologies like PerfluorAd® and SAFF® for contaminant removal. With operations across Europe and North America, they provide consulting and engineering services for industrial and environmental applications.

    Activated Carbon Filtration
    Industrial Water Reuse
    Construction and Installation
    Waste Management and Remediation
    Utilities
    US Water Systems logo

    US Water Systems

    United States
    Reverse osmosis membranes · Ion exchange resin systems · Ultraviolet disinfection +3 more
    North America

    US Water Systems is a direct manufacturer and retailer specializing in residential and commercial water treatment solutions. The company emphasizes American-made products, certified expert support, and factory-direct pricing, serving diverse markets including homes, businesses, and industrial applications with comprehensive water quality solutions.

    Water filtration system design and installation
    Water softening solutions
    Reverse osmosis systems
    +3 more
    Medio Industries Private Limited logo

    Medio Industries Private Limited

    Verified
    India1-50 employees
    Granular Activated Carbon (GAC) Filters · Ion Exchange · Multimedia Filters +1 more
    mea · apac

    MEDIO is committed to the installation and servicing of water filtration systems and purifiers. Our initial venture into the water filtration industry began with Kent Water Purifiers and later expanded to encompass whole-house filtration systems and, subsequently, commercial ranges. As a company, MEDIO consistently stays abreast of the latest technologies, filtration methodologies, and advanced filtration mediums. This proactive approach has enabled us to build a robust network with multiple sales and service points. We uphold the principle of providing "Value for Money," prioritizing customer requirements. This customer-centric policy has cultivated significant trust, resulting in repeat orders and referral sales. Our continuous investment in training our staff in sales and operations reflects our commitment to achieving the desired work quality. We view quality as a habit and dedicate our utmost efforts to manifest it in both our products and services. Mission: Our goal is to achieve industry leadership in water filtration products by capturing the majority of the Iron removal medium market in India. Additionally, we aim to pioneer the introduction of energy efficient and water-saving filtration products that enhance water quality and minimize wastage.

    energy-production
    manufacturing
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    Iron Removal from Water: Aeration, Oxidation, and Filtration Process Design

    Iron occurs in groundwater as dissolved ferrous iron Fe(II) at concentrations of 0.1 to 20 mg per L under anoxic conditions (no dissolved oxygen). Contact with oxygen in the distribution system or at the tap causes Fe(II) to oxidise to ferric Fe(III) and precipitate as rust, discolouring water brown-red and causing taste complaints. WHO Drinking Water Guideline for iron: 0.3 mg per L (aesthetic); EU DWD 2020 parametric value: 0.2 mg per L; US EPA secondary MCL: 0.3 mg per L. Iron removal target for most utilities is below 0.05 mg per L to allow for some re-dissolution in the distribution system. Manganese (often co-present with iron in groundwater) must also be considered: WHO guideline 0.4 mg per L, EU DWD 2020: 0.05 mg per L.

    Iron removal processes begin with oxidation: aeration (cascade aerator or packed tower, achieves dissolved oxygen above 7 mg per L, oxidising Fe2+ to Fe3+ at pH above 7, reaction complete in 15 to 30 minutes), chlorination (1 to 2 mg per L free chlorine, oxidation complete in 1 to 5 minutes, also disinfects), potassium permanganate (0.5 to 1 mg per L, immediate oxidation, used when aeration is insufficient), or ozonation (0.5 to 1 mg per L O3). Following oxidation, Fe(III) floc is removed by: gravity filtration (sand-anthracite multimedia filter, hydraulic loading 5 to 10 m per hr, run length 24 to 72 hours before backwash), or pressure filtration (higher throughput per unit area). For low-iron groundwater below 1 mg per L, contact filtration with oxidising media (greensand plus KMnO4 regeneration, or manganese dioxide-coated media) may be sufficient.

    Design considerations: pH above 7 is required for efficient Fe(II) oxidation by dissolved oxygen (oxidation rate doubles per pH unit above 7 at constant DO). Organic complexed iron (tannins, humic acids) does not respond to simple aeration and oxidation; coagulation (alum or ferric sulphate, 5 to 20 mg per L) or oxidation with ozone at higher doses (2 to 4 mg per L) is required to break the organic-iron complex. High-iron groundwaters often contain co-contaminants (hydrogen sulphide: rotten egg odour, treated by aeration; arsenic: co-precipitation with Fe(III) at above 0.3 mg per L iron provides some natural removal). Backwash water from iron removal filters is typically 3 to 5 percent of throughput; backwash supernatant can be recycled to the head of the works while filter cake (iron hydroxide sludge) requires dewatering (centrifuge or filter press) and disposal as non-hazardous solid waste.

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    Frequently Asked Questions

    What causes high iron in drinking water?

    High iron in drinking water has two main sources: (1) Groundwater - dissolved ferrous iron Fe(II) is naturally present in anoxic (oxygen-depleted) groundwater where reducing conditions have dissolved iron from iron-bearing minerals (siderite, pyrite, iron-bearing silicates). Concentrations of 1 to 20 mg per L are common in many aquifer types globally. (2) Distribution system corrosion - iron pipes (cast iron, ductile iron) corrode in aggressive water (low pH, high chloride, low alkalinity, high dissolved CO2), releasing ferric hydroxide tubercles and corrosion products that discolour water. Source iron is best addressed at the treatment works. Distribution corrosion iron requires water chemistry adjustment (pH buffering to 7.5 to 8.5, orthophosphate dosing to form a protective corrosion barrier on pipe walls) and pipe replacement programme for severely tuberculated mains.

    What is the most effective way to remove iron from borehole water?

    For typical borehole water with iron 1 to 10 mg per L Fe(II) at pH 6.5 to 7.5: the most reliable process is cascade aeration (raising DO to above 7 mg per L) followed by dual-media gravity filtration (sand-anthracite, 0.8 to 1.2 mm effective size, 1.5 m bed depth). This achieves iron below 0.05 mg per L at hydraulic loading 5 to 8 m per hr. For pH below 6.5 where aeration oxidation is slow: add lime or sodium carbonate to raise pH to 7.5 before filtration. For high-iron water above 10 mg per L: consider pre-settling (20 to 30 minute contact time in aeration tank before filtration) to reduce filter loading. For small rural supplies: greensand pressure filters with potassium permanganate (KMnO4) regeneration provide a compact, effective solution requiring less civil engineering than a cascade aerator and gravity filter.

    Does iron removal also remove manganese?

    Iron and manganese co-occur in groundwater but require different conditions for removal. Fe(II) oxidises rapidly at pH above 7 in the presence of dissolved oxygen (half-life minutes at pH 7.5, DO 7 mg per L). Mn(II) oxidises much more slowly: at pH 7.5 and DO 7 mg per L, half-life is hours to days. For manganese removal by aeration alone, pH 9 to 10 is needed, which is impractical for potable water. Effective manganese removal uses: (1) Chlorination to 1 to 2 mg per L free residual, which oxidises Mn(II) to MnO2 within 1 to 5 minutes and allows removal by filtration; (2) Potassium permanganate oxidation (0.5 to 1 mg per L KMnO4 for Mn below 1 mg per L); (3) Biological manganese removal using MnO2-coated filter media where bacteria catalyse the oxidation - effective, chemical-free, and increasingly used in Europe; (4) Ozonation (0.5 to 1 mg per L O3, rapid and effective). Greensand filters (manganese-dioxide-coated) with continuous KMnO4 dosing achieve both iron and manganese removal in a single media.

    Is high iron water dangerous to health?

    Iron is not considered acutely toxic to humans and has no WHO health-based guideline for drinking water; the WHO 0.3 mg per L value and EU 0.2 mg per L parametric value are aesthetic/operational standards (preventing discolouration, taste, and laundry staining), not health limits. However: (1) High iron promotes biofilm growth in distribution systems by providing an energy source for iron-oxidising bacteria (Gallionella, Leptothrix), which can contribute to discolouration, taste, odour, and nitrification problems; (2) Very high iron concentrations (above 5 mg per L) impart significant metallic taste and astringency making water unpalatable; (3) Iron deposits in distribution systems reduce pipe capacity and provide attachment surfaces for pathogenic organisms; (4) In industrial applications (boiler feedwater, process water), even 0.05 mg per L iron causes equipment fouling, so treatment to below 0.01 mg per L is standard in high-purity water systems.

    Case Study·Rural drinking water supply
    Challenge

    A small rural water supply in Lincolnshire serving 3,200 properties from a Triassic sandstone borehole experienced persistent iron discolouration complaints: 120 to 140 complaints per month, iron levels at the tap measuring 0.4 to 1.2 mg per L against a regulatory limit of 0.2 mg per L. The existing pressure filtration plant had inadequate aeration and undersized filter beds.

    Approach

    Installed a cascade aerator (6-tray stepped cascade, residence time 4 minutes, achieving DO above 8 mg per L) followed by two dual-media gravity filters (sand-anthracite, 1.5 m bed depth, 5 m per hr hydraulic loading) with automated backwash on differential pressure trigger. Lime dosing (20 mg per L as Ca(OH)2) raised pH from 6.8 to 7.6, improving oxidation kinetics. Added potassium permanganate dosing (0.2 mg per L) as a supplementary oxidant for peak iron periods.

    Outcome

    Iron at the treatment works output fell consistently below 0.05 mg per L within 6 weeks of commissioning. Customer discolouration complaints reduced from 130 per month to fewer than 5 per month. DWI regulatory sampling confirmed compliance with the 0.2 mg per L parametric value at all 12 regulatory compliance points across the supply zone. The asset has operated without unplanned shutdowns for 36 months.

    Questions to Ask Shortlisted Providers

    1. 1

      Is the iron in our water present as dissolved ferrous Fe(II) only, or as organically complexed iron, and has treatability testing confirmed which process is required?

      Simple aerated gravity filtration achieves below 0.05 mg per L for dissolved Fe(II) at pH above 7. Organically complexed iron (indicated by coloured, turbid raw water with high TOC) does not respond to aeration and filtration alone. Coagulation, ozonation, or catalytic media may be required. Specifying the wrong process based on assumed iron form will result in a plant that fails to meet the DWI standard. A jar test or pilot plant run is the minimum required before design finalisation.

    2. 2

      What is the design hydraulic loading rate for the filters, and is it consistent with achieving below 0.05 mg per L iron in the product water at peak flow?

      Iron removal filter performance degrades at high hydraulic loading (above 8 to 10 m per hr), and short-circuit flow through cracked or channelled media prevents adequate contact time. A filter designed at 12 m per hr to minimise capital cost will fail to meet the iron standard at peak flow, resulting in DWI-reportable exceedances. Confirm the design loading rate and ask for evidence of performance at that rate from similar installations.

    3. 3

      What is the backwash design, and how are backwash water volumes and filter cake solids managed?

      Iron removal filters produce iron hydroxide sludge in the backwash water (typically 3 to 5 percent of throughput). If backwash supernatant is recycled to the head of the works without a settled sludge removal system, accumulated iron hydroxide floc increases the iron loading on the filters beyond design capacity. A lamella settler or thickener for backwash solids separation, and a sludge dewatering and disposal route for iron hydroxide cake, must be included in the design.

    4. 4

      Does the raw water contain manganese as well as iron, and if so, what additional oxidation step is proposed for manganese removal?

      Manganese co-occurs with iron in many UK groundwaters. The EU DWD 2020 parametric value for manganese is 0.05 mg per L (stricter than the previous 0.05 mg per L limit from 2004). Manganese does not oxidise at the pH and DO conditions that suffice for iron removal. Additional oxidation (permanganate, chlorination, ozonation, or biological manganese) must be specifically designed for manganese removal. A proposal that addresses iron but not manganese will fail to achieve DWI compliance if both are present.

    5. 5

      What monitoring is included for process control and DWI compliance, and how will the plant respond automatically to an iron breakthrough event before water leaves the treatment works?

      DWI requires reporting of individual sample exceedances of the 0.2 mg per L parametric value. A plant without online iron monitoring (photometric or turbidity-based proxy) on the filtered water outlet relies on laboratory samples (24 to 48 hour turnaround) to detect breakthrough. By the time a sample failure is identified, non-compliant water has already been supplied. Online iron monitoring with automated diversion to waste or return to head of works is the standard for iron removal plants serving above 1,000 properties.

    What Drives Cost in This Category

    Iron concentration and organic complexation

    A simple aeration plus gravity filtration plant for dissolved iron below 5 mg per L at 500 m3 per day costs 100,000 to 300,000 GBP in equipment and installation. Organically complexed iron requiring coagulation or ozonation at the same flow costs 300,000 to 700,000 GBP. Very high iron concentrations (above 10 mg per L) require pre-settling tanks before filtration, adding 50,000 to 150,000 GBP to capital cost.

    pH correction requirement

    Groundwater with pH below 6.5 requires lime or soda ash addition to raise pH to 7.5 to 8.0 before filtration. Lime dosing equipment (saturator, metering pump, lime storage silo for 25 tonnes) costs 20,000 to 60,000 GBP in capital. Annual lime consumption for a 500 m3 per day plant at pH 6.8 inlet: approximately 3 to 5 tonnes of lime at 100 to 150 GBP per tonne. Carbon dioxide stripping (packed tower) avoids chemical dosing at sites where high dissolved CO2 is the cause of low pH.

    Sludge handling and disposal

    Iron removal filters produce 0.5 to 3 m3 of iron hydroxide sludge per day (at 2 to 5 percent dry solids) from backwash settled solids. Disposal as non-hazardous solid waste to licensed landfill or land application: 50 to 120 GBP per tonne wet weight. A filter press or centrifuge for sludge dewatering (capital 30,000 to 100,000 GBP) reduces disposal volume 3 to 5 times and is economically justified for plants above 2,000 m3 per day.

    DWI regulatory compliance monitoring

    DWI water quality sampling requirements for an iron problem supply zone include more frequent compliance monitoring (weekly rather than monthly) until compliance is restored. Laboratory analysis of weekly iron samples: 20 to 50 GBP per sample, 1,000 to 2,500 GBP per year per zone. Online photometric iron monitors (5,000 to 25,000 GBP per instrument, 2,000 to 5,000 GBP per year maintenance) provide continuous data and enable immediate response to exceedances, more than paying for themselves in avoided DWI enforcement costs and consumer complaint handling.

    Key Regulations & Standards

    Water Supply (Water Quality) Regulations 2016 -- Iron Parametric Value

    WS(WQ)R 2016 (as amended 2018 and 2021 to implement EU DWD revisions) sets the parametric value for iron in drinking water at 200 micrograms per L (0.2 mg per L) in England. Water undertakers must ensure water at the point of supply (customer tap) complies with this value. DWI audit sampling at consumer taps provides regulatory evidence; exceedances trigger DWI investigation and may require a Regulation 28 undertaking from the water company to investigate and remedy the cause.

    DWI Regulatory Compliance -- Reporting and Undertakings

    Under WS(WQ)R 2016 Regulation 28, DWI can serve an undertaking requiring a water company to take specific remedial action following repeated non-compliance with iron or other parametric values. Undertakings specify the works required (e.g. install iron removal plant), the timescale for completion, and interim measures (flushing, temporary treatment). Failure to comply with an undertaking is an offence under the Regulations and can lead to prosecution with unlimited fines.

    BS EN 15975-2:2013 -- Security of Drinking Water Supply

    BS EN 15975-2 provides guidance on risk assessment for drinking water supply systems. Iron removal plant failures (aeration system breakdown, filter media breakthrough, sludge carryover) represent a quality risk to the supply. Risk assessments under BS EN 15975-2 are required for significant treatment processes including iron removal, identifying the hazardous events, their likelihood, and the control measures required. This standard supports the Water Safety Plan approach recommended by WHO and DWI.

    WRAS Approval -- Treatment Equipment for Drinking Water

    Chemicals and materials used in drinking water iron removal treatment must be approved for use in contact with drinking water. WRAS (Water Regulations Advisory Scheme) approval, or DWI List of Approved Products (Regulation 31 approval) is required for: coagulants (aluminium sulphate, ferric sulphate), filter media (sand, anthracite, greensand, manganese dioxide coated media), pH correction chemicals (lime, sodium carbonate), and oxidants (potassium permanganate, chlorine). Use of non-approved products risks DWI enforcement action.

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