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Food Processing Evaporating System MVR Evaporator from China

    Buy cheap Food Processing Evaporating System MVR Evaporator from China from wholesalers
     
    Buy cheap Food Processing Evaporating System MVR Evaporator from China from wholesalers
    • Buy cheap Food Processing Evaporating System MVR Evaporator from China from wholesalers
    • Buy cheap Food Processing Evaporating System MVR Evaporator from China from wholesalers

    Food Processing Evaporating System MVR Evaporator from China

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    Brand Name : TY
    Model Number : plate
    Price : USD10000
    Payment Terms : D/P, T/T, Western Union
    Supply Ability : 100
    Delivery Time : 1-2months
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    Food Processing Evaporating System MVR Evaporator from China

    Food Processing Evaporating System MVR Evaporator

    By analyzing material properties and process parameters, the system uses: four-effect plate-type downstream design, the process flow is as follows:
    The material conveyed from the preceding stage is preheated by the feed preheating system to the boiling point temperature of the first effect evaporator ZF01, and enters the first effect evaporator ZF01, which is heated and vaporized by the heating steam on both sides in the evaporator, and then The mixture outlet of the evaporator is sprayed at a high speed in the form of a vapor-liquid mixture, and the tangential line enters the material inlet of the primary cyclone separator XFQ1. In the cyclone separator, due to the centrifugal force, the droplets are sucked to the wall of the cylinder and are collected by gravity. The bottom of the separator is then pumped out by the first material pump CB01 to the next stage evaporator ZF02, and the vapor phase is spirally raised. The small amount of droplets trapped by the top is captured by the top set of the juice trapping device and returned to the bottom of the tank. The heating chamber which is discharged into the lower stage evaporator ZF02 from the air outlet at the top of the separator serves as a heating heat source.
    Similarly, the primary concentrated material sent from CB01 to the second-effect evaporator ZF02, the secondary steam generated by the first-effect evaporator ZF01 continues to be heated and vaporized and boiled, and enters the two-effect cyclone XFQ2 for centrifugal separation, and the liquid phase is pumped by the product. The CB02 is taken out to the next stage evaporator ZF03, and the vapor phase is passed to the heating chamber of the next stage evaporator ZF03 as a heating source.
    Similarly, the secondary concentrated material sent from CB02 to the second-effect evaporator ZF03 is heated by the secondary steam generated by the two-effect evaporator ZF02 to vaporize and boil, and enters the three-effect cyclone XFQ3 for centrifugal separation. The pump CB03 is pumped out to the next stage evaporator ZF04, and the vapor phase is passed to the heating chamber of the next stage evaporator ZF04 as a heating source.
    Similarly, the three concentrated materials sent from CB03 to the second-effect evaporator ZF04, the secondary steam generated by the three-effect evaporator ZF03 continues to be heated and vaporized and boiled, and enters the four-effect cyclone XFQ4 for centrifugal separation, and the liquid phase is pumped by the product. The CB04 is taken out, and the qualified material is sent to the product storage tank through the concentration or density detection, and the unqualified product is returned to the incoming material tank; the vapor phase enters the steam inlet of the condenser LNQ.
    The secondary steam and non-condensable gas entering the condenser LNQ are cooled by the circulating cooling water of the process to be condensed and cooled, and then enter the condenser steam-water separation tank FLGL. The liquid phase is extracted by the condenser condensate pump NBL at the bottom of the separation tank, The condensate is withdrawn from the top of the separation tank by a vacuum system. The process circulating cooling water is provided by the user, and the user ensures that the water temperature and flow rate meet the requirements of use.
    The establishment and maintenance of the system vacuum is completed by a set of water ring vacuum pumps. The working fluid of the vacuum pump is provided by the user, generally clean and non-corrosive 25 ° C normal temperature cold water.
    In order to save energy and increase operating costs, the system is optimized as follows:
    1. The feed preheating system adopts three-stage design: preheater A (end-effect waste steam preheating) → preheater B (mixed condensate preheating) → preheater C (fresh steam preheating)

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