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September 17, 2000 The following report gives insight into the Twin Screw Press. A key item not mentioned in the report is that this new press design is basically made from screw press components that we have used for decades. It takes a lot of uncertainty out of the design. September, 2000 Last season a series of citrus feedmill tests were run with the Twin Screw Press prototype. Both limed and unlimed peel were pressed. The report, updated with reference to more recent non-citrus testing, follows: The test goal was to determine the operating characteristics of the Vincent twin screw design. This was needed in order to establish the design specifications and performance capacities of larger machines. The performance of the prototype machine met our designers' highest expectations. The areas studied were: Throughput Capacity Press Cake Moisture The press cake moisture data from four tests follow:
Final press cake moisture is determined by considerations beyond the screw press: the Brix and quantity of molasses added, the amount of waste water present, and the completeness of the lime reaction. The twin screw test machine has five stages of compression, as do our traditional presses. However, based on last year's testing of the special Citrofrut VP-22, it was concluded that it will be best to have seven stages of compression in the Twin Screw Press. This will extend the slightly better 30 Hz performance to a 60 Hz machine. It also will give latitude for achieving maximum moisture removal over a wider range of operating conditions (wet peel, underlimed peel, old peel, a worn press, etc.). It should be noted that the twin screw press is bound by the same laws of chemistry as other presses. A mechanical machine can remove only the free and interstitial water from vegetable material. To remove the hydrogen bound water and the chemically bound water it is necessary to apply heat. This is normally done with combustion energy in a dryer. It also can be done in a screw press by using the drive motor to cause friction heating of material being pressed. The Vincent Twin Screw Press stops short of dewatering by this use of electrical energy. Horsepower Requirement Susceptibility to Damage from Tramp Iron The extent of screw and resistor bar damage that occurred was comparable to what is normally experienced in a single screw press. The damage was very easily repaired in all four cases without disassembling the machine. It is notable that no appreciable damage to the profile bar screen occurred in any of the four cases. However it was apparent that a large piece of tramp material will damage the machine. A wide range of protection devises have been investigated: shear pins, release clutches, torque limiters, etc. It has been concluded that the most appropriate protection will be offered by the use of a variable frequency drive: these can be set to monitor torque characteristics, enabling practical detection of when a press needs to be shut down. Feeding Characteristics A consequently of this is that the press Supercharger, so many years in development, has been obsoleted. During the testing observations were made of a number of other areas. Among these were vibration, rigidity, sufficiency of the screen open area, screen deflection and abrasive wear. The prototype design proved quite adequate in all of these. Overall, Vincent is delighted with the Twin Screw Press. It marks a significant advance in screw press design because the performance is equal or better to anything achieved in the past. In financial terms, it is possible to produce a machine with double the capacity of a single screw press, but at less cost than two single screw presses. |
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