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China Suppliers Factory for Stone Cutting and Polishing Processing Wastewater Treatment Solutions

Ceramic processing wastewater is generated during the production of ceramics, involving raw materials such as clay, feldspar, and limestone mixed with appropriate dispersants and moisture. This wastewater primarily arises from the molding process, containing a solid waste concentration of 0.1-0.2% by weight and a pH level of 7.5-8.To ensure environmental safety, it is typically treated through natural sedimentation ponds before discharge. As a leading China factory and suppliers of ceramic processing materials, we prioritize effective wastewater management to prevent clogging of drainage pipes and silt accumulation in rivers after discharge. Our commitment to sustainable practices positions us as a trusted partner in the ceramic industry

    Process flow diagram

    Process flow diagram

    Equipment list

    Capacity 5-75m³/h
    Name Basic system Quantity Senior system Quantity Full system Quantity System description
    Reaction system Feeding pump 1 unit Feeding pump 1 unit Feeding pump 2 units The reaction system mainly doses right chemicals such as coagulants and coagulants to the sludge to induce flocculation of the sludge particles and improve their dewatering properties.
    Pipeline mixers 2 pieces MR reaction cell 1 set MR reaction cell 1 set
    PAM dosing drum 1 piece PAM dosing drum 2 pieces PAM integrated dosing device 1 set
    PAM dosing pump 1 unit PAM dosing pump 1 unit PAM dosing pump 2 units
    PAC dosing drum 1 piece PAC dosing drum 2 pieces PAC dosing drum 2 pieces
    PAC dosing pump 1 unit PAC dosing pump 1 unit PAC dosing pump 2 units
    Flowmeter / Flowmeter / Flowmeter 1 piece
    Sedimentation system VMC 1 unit VMC 1 unit VMC 1 unit The sedimentation system is mainly for thickening the effluent and facilitating filter presses.
    Pneumatic Drainage Valve 1 piece Pneumatic Drainage Valve 1 piece Pneumatic Drainage Valve 1 piece
    Mud pump 1 unit Mud pump 1 unit Mud pump 2 units
    Water reuse systems Water collection tanks 1 piece Water collection tanks 1 piece Water collection tanks 1 piece The water collection system is mainly to reuse the supernatant after concentration to reduce cost and save money.
    Drainage pump 1 unit Drainage pump 1 unit Drainage pump 2 units
    Filtration system Mixing tanks 1 piece Mixing tanks 1 piece Mixing tanks 1 piece The main function of the filter press system is solid-liquid separation
    Feeding pump 1 unit Feeding pump 1 unit Feeding pump 2 units
    KMP 1 set KMP 1 set KMP 1 set
    Control system PLC control cabinet 1 set PLC control cabinet 1 set PLC control cabinet 1 set The automation of all our equipment will be integrated into this system and will be fully automated.
    Accessaries Pipes, valves, cables, etc. 1 batch Pipes, valves, cables, etc. 1 batch Pipes, valves, cables, etc. 1 batch Cables and pipe and valve fittings required within the system, depending on the customer's site.

    Please request a detailed list of system from our sales consultant.

    Function comparison

    Function Basic system Senior system Full system
    Fully automated control
    Faulty alarm
    Automatic reaction vessels -
    Automatic standby switchover - -
    Automatic dosage adjustment - -
    Inverter control or not - -
    Time between infusions 4 hours 8 hours Fully automatic

    Optional features

    Serial number Name Specifications Function
    1 Special anti-corrosion FRP Coating for the liquid connection parts Prevents corrosion from high acids, salts, fluorine, etc.
    2 Special materials 304/316L etc. According to the user's material characteristics
    3 Skid mounted Patterned steel platform + fixed bracket + wire channel, piping, cables, etc. Easy to install, transport and flexible to move
    4 PH automatic adjustment PH online monitoring + integrated control + acid and alkali dosing system Enables the effluent water to reach the standard PH value.
    5 Precision filters Containing multi-stage centrifugal pumps Reducing the suspended solids content of filtrate and regulating water quality
    6 Flameproof DIIBT4/CT4 etc. Electrical components, motors, etc. placed in explosion-proof areas are classified according to different levels.
    7 Conveyor systems/staging systems Conveyor / Hopper Mud cake can be collected by conveying equipment or staging systems, reducing labour.

    Product Introduction

    Stone processing wastewater is characterized by a complex and multifaceted composition that presents significant environmental and operational challenges. At the forefront of its defining traits is the remarkably high concentration of suspended solids (SS), predominantly consisting of fine stone powder and dust particles. Generated during various stages of stone processing, including quarrying, cutting, shaping, and polishing, these minute particles can reach levels several times higher than those permitted in typical industrial effluents. In large - scale stone processing facilities, the SS concentration can surge to thousands of milligrams per liter, turning the wastewater into a turbid, muddy - looking liquid. The presence of such a high SS load not only impairs the aesthetic quality of the discharged water but also clogs drainage systems, sedimentation tanks, and filtration equipment, leading to increased maintenance costs and reduced operational efficiency.

    The alkaline pH of stone processing wastewater, typically ranging from 8 to 12, is another critical characteristic deeply rooted in its sources. Chemical additives play a substantial role in elevating the alkalinity. For instance, in the stone cutting process, water - based cutting fluids containing alkaline substances are often used to cool the cutting tools and lubricate the contact surfaces, preventing overheating and excessive wear. These additives dissolve in the water, increasing its hydroxide ion concentration and raising the pH. Additionally, the natural composition of many stones contributes to the alkalinity. Limestone, marble, and dolomite, for example, contain carbonate minerals that react with water and atmospheric carbon dioxide, producing bicarbonate and carbonate ions, which further contribute to the alkaline environment. An alkaline pH can cause corrosion of metal pipes and equipment if not properly managed and can disrupt the natural pH balance of receiving water bodies, harming aquatic organisms sensitive to pH fluctuations.

    The potential presence of heavy metals such as lead (Pb), chromium (Cr), and nickel (Ni) in stone processing wastewater adds another layer of complexity and concern. These heavy metals can be inherent in the stone itself, leaching out during processing as the stone is fragmented and exposed to water. Some stones, especially those sourced from geological formations with elevated metal concentrations, may contain trace amounts of heavy metals within their mineral structures. Moreover, heavy metals can also enter the wastewater from the processing equipment and machinery. For example, certain types of cutting tools and abrasives may contain metal components that gradually wear off and dissolve in the process water over time. Even at low concentrations, heavy metals are highly toxic and persistent in the environment. They can accumulate in soil, plants, and aquatic life, entering the food chain and posing severe health risks to humans and wildlife, including neurological disorders, organ damage, and cancer.

    Organic pollutants from processing agents are yet another significant component of stone processing wastewater. Oils and coolants used in the machining of stones, such as mineral - based cutting oils and synthetic lubricants, contribute to the elevated chemical oxygen demand (COD) and biological oxygen demand (BOD) levels. These organic substances require oxygen for decomposition in water bodies. When large amounts of stone processing wastewater with high COD/BOD are discharged into rivers, lakes, or streams, the oxygen - consuming decomposition processes can deplete the dissolved oxygen in the water, creating hypoxic or anoxic conditions. Such oxygen - starved environments are lethal to fish and other aerobic aquatic organisms, leading to mass die - offs and disrupting the entire aquatic ecosystem.

    The high hardness of stone processing wastewater, caused by the dissolution of calcium and magnesium ions, is a result of the interaction between water and stone minerals. As water comes into contact with calcium - and magnesium - rich stones during the processing operations, these ions are released into the water, forming calcium and magnesium salts. High - hardness water can cause scale formation on the inner surfaces of pipes, heat exchangers, and other equipment. Over time, these scale deposits reduce the flow capacity of pipes, decrease the efficiency of heat transfer in equipment, and may even lead to equipment failure. In water treatment processes, high hardness also complicates the purification procedures, as additional steps are often required to remove or reduce the calcium and magnesium ions to prevent scale - related issues.

    The presence of oil and grease residues in stone processing wastewater further exacerbates its negative impacts. These residues, which can come from lubricating oils used in machinery, release agents applied during stone shaping, and protective coatings, form a persistent layer on the water surface. This oily film not only obstructs the exchange of gases between the water and the atmosphere but also adheres to the surfaces of soil particles when the wastewater infiltrates the ground. The oil - contaminated soil can lose its porosity and permeability, impeding water infiltration and root growth of plants. In aquatic environments, the oil and grease residues can coat the feathers of waterfowl and the gills of fish, causing physical harm and interfering with their natural functions. If left untreated, stone processing wastewater with its complex mixture of pollutants can trigger a cascade of environmental problems, from water turbidity and soil contamination to long - term ecosystem toxicity, making proper treatment and management essential to mitigate its detrimental effects.

    Frequently Asked Questions

    Why is stone processing wastewater highly alkaline?
    The alkaline pH (typically 8 to 12) is caused by the dissolution of carbonate minerals from stones like limestone, marble, and dolomite, combined with alkaline chemical additives used in water-based cutting fluids to cool tools and lubricate surfaces.
    What causes the high concentration of suspended solids (SS) in this wastewater?
    The high SS concentration is generated during stages like quarrying, cutting, shaping, and polishing, which release massive quantities of fine stone powder and dust particles into the process water.
    How do heavy metals enter stone processing wastewater?
    Heavy metals such as lead (Pb), chromium (Cr), and nickel (Ni) leach naturally from geological stone structures during fragmentation, or enter via wear and tear of metal cutting tools and abrasives.
    What are the operational impacts of high water hardness in the system?
    High hardness leads to scale deposits on the inner surfaces of pipes and heat exchangers. This reduces flow capacity, lowers heat transfer efficiency, and can ultimately cause equipment failure.
    How do organic pollutants in the wastewater affect the environment?
    Oils, coolants, and synthetic lubricants increase COD and BOD levels. When discharged untreated, their decomposition depletes dissolved oxygen in water bodies, creating hypoxic conditions that harm aquatic life.