Pune
08048128705
+917558636100
Zero Liquid Discharge Plants

Zero Liquid Discharge Plants

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Phone Number

08048128705

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Email Address sales@shachiengg.com

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Address Plot No. 271, Survey. No.38, Mauje Bhare, Mulshi, Pirangut, Pune

Pune, India, 412115

Description

ZLD Plant Manufacturer | Zero Liquid Discharge Systems for Compliance & Water Reuse Turn wastewater from a disposal challenge into a valuable resource for your industrial operation. As a trusted Zero Liquid Discharge (ZLD) technology provider and manufacturer, Shachi designs and delivers integrated ZLD systems that are engineered to recover water, reduce freshwater consumption, and minimize liquid waste generation. Shachi’s ZLD solutions combine proven pretreatment, membrane-based separation, evaporation, and crystallization technologies into a carefully integrated treatment process. The objective is to maximize water recovery while concentrating the remaining dissolved salts and contaminants into a manageable solid form, helping industries move toward minimal liquid discharge and improved water sustainability. Integrated Treatment from Wastewater to Water Recovery A successful ZLD system requires more than individual treatment technologies. Each stage must work together based on the characteristics of the wastewater, the required recovery, and the final salt-management objective. Shachi designs the complete treatment train around your specific wastewater profile: Pretreatment – Removes suspended solids, hardness, organics, and other constituents that can affect downstream membrane and evaporation performance. Membrane Treatment – RO and other membrane processes recover a significant portion of the wastewater as reusable-quality water while concentrating dissolved contaminants. Evaporation – MVR or other suitable evaporator technologies further concentrate the high-TDS reject stream while recovering additional water in the form of condensate. Crystallization – Converts the remaining concentrated salts into a solid form, minimizing or eliminating the need for liquid discharge. Water Recovery & Reuse – Treated water and condensate can be routed back for suitable industrial applications, helping reduce dependence on freshwater sources. Designed Around Your Wastewater Every industrial wastewater stream behaves differently. ZLD systems therefore need to be designed according to the actual process conditions rather than using a standard configuration. Shachi engineers ZLD plants based on parameters such as flow rate, TDS, COD, hardness, silica, chloride, sulphate, feed variability, scaling potential, fouling behaviour, salt composition, required water recovery, available utilities, and plant footprint. This application-specific approach helps improve system reliability and allows the ZLD plant to perform consistently under real industrial operating conditions. Reduce Freshwater Consumption One of the most important benefits of ZLD is the opportunity to recover and reuse water that would otherwise leave the facility as wastewater. By integrating membrane treatment, evaporation, and condensate recovery, industries can recycle a substantial portion of their wastewater back into appropriate process or utility applications. This can reduce freshwater intake, improve overall water-use efficiency, and support long-term water-security goals. Minimize Liquid Discharge Traditional wastewater treatment may still leave behind concentrated reject streams that require further treatment or disposal. ZLD takes the treatment process further by concentrating these residual streams until the remaining dissolved solids can be recovered as solid salts or crystallized material. This significantly reduces the dependence on liquid discharge routes and can support industries operating in locations where wastewater discharge is restricted or where water reuse is a strategic priority. Key Benefits of Shachi ZLD Systems 1.High water recovery and reduced freshwater consumption 2.Significant reduction or elimination of liquid wastewater discharge 3.Integrated combination of pretreatment, membranes, evaporation, and crystallization 4.Effective handling of high-TDS and difficult industrial effluents 5.Recovery of water for suitable process and utility reuse 6.Conversion of concentrated wastewater into solid salt/crystallized residue 7.Designed for integration with MVR evaporators and other energy-efficient technologies 8.Application-specific design based on feed chemistry and operating conditions 9.Improved control over wastewater management and disposal 10.Potential reduction in long-term freshwater and wastewater-management costs 11.Scalable solutions for different industrial capacities and process requirements 12.Built for Industries with Challenging Effluent Shachi ZLD solutions are suitable for industries where water recovery and effluent management are critical, including chemical, pharmaceutical, textile, dye and pigment, specialty chemical, food processing, and other water-intensive manufacturing industries. The system can be designed as a complete end-to-end ZLD plant or integrated with existing ETP, RO, evaporator, and wastewater-treatment infrastructure.

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Spray Dryer Plant

Spray Dryer Manufacturer | Industrial Spray Drying Plants The spray drying process begins with the preparation and controlled feeding of the liquid product into the drying chamber. Depending on the feed characteristics, the liquid is atomized using a suitable nozzle or rotary atomizer, breaking it into a fine spray of droplets. These droplets come into contact with a carefully controlled stream of hot drying air. Because each droplet has a very large surface area relative to its volume, moisture evaporates rapidly. The liquid droplets progressively transform into solid or semi-solid particles, which are then separated from the drying air and collected as powder. The basic process can be summarized as: Liquid feed → Atomization → Hot-air contact → Rapid moisture evaporation → Particle formation → Powder separation → Finished product Designed around the product—not just the equipment A major advantage of Shachi’s approach is that the Spray Dryer is designed according to the specific behaviour of the feed material and the required properties of the final powder. Different liquids can behave very differently during drying. Some may be heat-sensitive, sticky, viscous, highly concentrated, or prone to forming deposits on the drying chamber walls. Others may require specific particle morphology, high solubility, or a narrow particle-size distribution. Shachi considers factors such as: 1.Feed viscosity and solids concentration 2.Thermal sensitivity of the product 3.Inlet and outlet temperatures 4.Required final moisture content 5.Desired particle size 6.Bulk density and powder morphology 7.Flowability and dispersibility 8.Solubility or reconstitution requirements 9.Product recovery requirements 10.Production capacity This product-focused design philosophy helps ensure that the dryer is optimized not only for moisture removal, but also for the quality and functionality of the final powder. Precise atomization for controlled particle size Atomization is one of the most important stages of spray drying because the size of the droplets largely influences the characteristics of the finished powder. Shachi systems can be configured with appropriate atomization technology according to the application. By controlling droplet formation and drying conditions, manufacturers can achieve the desired particle-size distribution, particle morphology, density, and flow characteristics. This is especially important when the powder must meet strict specifications for downstream processes such as blending, filling, tableting, encapsulation, dissolution, or further formulation. Gentle drying for heat-sensitive materials Although spray drying uses hot air, the actual product temperature can be significantly lower than the incoming air temperature because evaporation consumes heat. This makes spray drying suitable for many products where rapid moisture removal with controlled thermal exposure is important. Shachi's systems can be engineered around the thermal sensitivity of the product, with appropriate control of air temperatures, residence time, feed conditions, and powder discharge. The objective is to achieve efficient drying while minimizing undesirable effects such as thermal degradation, discoloration, loss of functionality, or changes in product characteristics. Better powder recovery and process efficiency Efficient powder collection is another important consideration in spray dryer design. The drying system can incorporate suitable cyclones, bag filters, scrubbers, or other powder-recovery arrangements, depending on the product and process requirements. Effective separation helps maximize product recovery while maintaining a clean and controlled exhaust system. Proper airflow management and process control also help reduce powder losses and improve overall plant efficiency.

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Beading Plant/ Spray Cooler

Many oleochemical products—including fatty acids, castor-oil derivatives, waxy materials, and other molten formulations—are difficult to handle, store, transport, and dose in their liquid or solidified bulk form. Shachi’s beading technology addresses this challenge by converting the molten material directly into individual particles. The molten product is first maintained at a carefully controlled temperature to ensure consistent flow and atomization. It is then dispersed through a specially designed spraying system, which breaks the molten material into fine droplets of controlled size. These droplets come into contact with a controlled cooling medium, allowing them to rapidly lose heat and solidify into individual beads. Because the droplet size and cooling conditions can be precisely controlled, the resulting product can achieve a narrow and consistent particle-size distribution. Controlled particle size and shape One of the major advantages of Shachi’s beading systems is the ability to produce particles tailored to the customer's requirements. Parameters such as: 1.Feed temperature 2.Melt viscosity 3.Atomization conditions 4.Spray rate 5.Cooling-air temperature 6.Cooling-air flow 7.Nozzle configuration 8.Residence time can be optimized to control the final bead size, shape, hardness, and bulk characteristics. The result is a product that is easier to handle, convey, weigh, blend, package, store, and dose compared with bulk molten material or irregular solidified lumps. Ideal for oleochemicals and fatty-acid products Shachi’s Spray Cooling and Beading technology is particularly suited to products that are processed in molten form and need to be converted into solid particulate form. Typical applications include fatty acids, castor-oil derivatives, oleochemical intermediates, waxes, and other molten organic materials. The process can help eliminate the need for large-scale solidification followed by crushing, milling, or flaking. Instead, the material can be transformed into a particulate product in a single, continuous solidification operation. Improved product handling Free-flowing beads offer several practical advantages over flakes, blocks, or irregular solidified masses. Their uniform shape and size can improve: Flowability: Individual particles are less prone to forming large lumps and can be handled more easily through hoppers, conveyors, and packaging systems. Dosing accuracy: Controlled particle size makes it easier to feed and meter the product consistently. Storage and transportation: Beaded products are generally easier to package and transport than molten or irregular bulk solids. Downstream processing: Uniform particles can improve blending, dissolution, melting, and formulation operations. ontinuous and efficient production Shachi’s systems are engineered for continuous production, enabling molten feed to be introduced, atomized, cooled, and collected as solid beads in a controlled process. The spray-cooling approach also provides a high surface area for heat transfer. This enables rapid removal of heat from the droplets and efficient solidification, while process parameters can be adjusted according to the thermal and physical properties of the product.

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Spin Flash Dryer

Spin Flash Dryer Manufacturer | High-Speed Drying of Powders, Crystals & Granules he wet feed material is introduced into the drying chamber, where a specially designed high-speed spin agitator rotor rapidly breaks up and disperses the feed. This is particularly important for materials that enter the dryer as lumps, cakes, pastes, or highly cohesive masses. At the same time, a controlled stream of hot drying air enters the chamber and forms a turbulent vortex. The rotor throws the wet material into this hot-air stream, creating intimate contact between the individual particles and the heated air. The intense mixing and dispersion produce a very large effective surface area for moisture evaporation. As a result, moisture is removed extremely rapidly—often within seconds, depending on the material, moisture content, particle characteristics, and operating conditions. From wet cake to free-flowing powder The key advantage of the Spin Flash Drying process is that it does not simply heat and dry a large wet mass. Instead, the rotor continuously breaks down the feed into smaller particles or fragments while drying takes place. This prevents the formation of large, persistent wet lumps and promotes uniform drying throughout the material. As the particles dry, they become lighter and are carried upward by the drying air. Properly dried particles leave the drying chamber with the air stream, while heavier or insufficiently dried material remains in the lower section of the chamber, where the rotor provides additional dispersion and drying. This creates a self-regulating drying environment in which residence time is closely related to particle moisture and size. Tight control over the final product Shachi’s Spin Flash Dryer provides significant control over important product characteristics, including: 1.Final moisture content 2.Particle size and distribution 3.Bulk density 4.Product temperature 5.Residence time 6.Drying-air temperature 7.Feed rate 8.Rotor speed 9.Airflow By adjusting these parameters, the dryer can be configured to produce a consistent powder suited to downstream handling, packaging, blending, granulation, or further processing.