GRAIN DRYING MACHINE AND MULTI-STAGE PROCESS FOR DRYING GRAINS
20210302097 · 2021-09-30
Inventors
Cpc classification
Y02B40/18
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F26B3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23F5/02
HUMAN NECESSITIES
F26B3/347
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23N12/00
HUMAN NECESSITIES
F26B11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B3/286
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F26B3/347
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23N12/00
HUMAN NECESSITIES
F26B11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention discloses drying systems and drying processes, particularly designed to efficiently dry grains. The grain drying system of the invention comprises a machine consisting of a drying rotor characterized by containing thermal panels and having an efficient design that allows air circulation. Alternatively, the grain drying system is consisting of a drying rotor comprising thermal panels and an efficient air circulation system, together with a vacuum rest rotor for the grains. The invention also relates to a grain drying process comprising a stage in a drying rotor consisting of thermal panels and an efficient air circulation system, and optionally a second vacuum rest stage in a vacuum rest rotor, where the first and second stages alternate one, two, three or more times as required. In general, the systems and processes disclosed in the invention involve elements and stages that allow the grain to be dried by controlled heating of the grain by exposure to electromagnetic radiation and efficient air flow, or through multiple stages that comprise controlled heating of the grain by exposure to electromagnetic radiation and efficient air flow, the rest of the grains under vacuum, and a new stage of controlled heating of the grain by exposure to electromagnetic radiation and efficient air flow thus achieving high efficiency in drying times without altering the structure of the grains and without generating polluting emissions, since the system does not require fossil fuels for its operation.
Claims
1. A rotor for drying wet beans, comprising inside a source of electromagnetic radiation, which is emitted in such a way that it is able to heat in a controlled and efficient way the wet beans inside the rotor, and an efficient ventilation system that allows air to enter, hot and dry, that passes through the beans and carries moisture away from them when it is extracted from the rotor.
2. The rotor for drying wet beans of claim 1, characterized by comprising at its end two plates (5) and (6), joined by at least seven, six, five or four fixed covers (8), at least one, two or three fixed vent caps (9), at least one, two or three loading window frames (11) and at least one, two or three air collector deflector (12), and where the interior the drying rotor (1) comprises internally at least one, two or three cavities, thermal panels type 1 (13) and 2 (14), and where the rotor is connected to an air extractor (78).
3. A wet bean drying process, comprising entry of the wet beans to a drying rotor, heating the wet beans through exposure to electromagnetic radiation emitted by the thermal panels that are located inside the drying rotor and emit electromagnetic radiation, and simultaneously carry moisture out of the beans by an efficient ventilation system, that allows, through the baffles attached to cargo and fixed vent caps, the entry of dry and hot air by solar radiation, where said air, once it has captured the surrounding moisture in the cavities of the drying rotor, is removed by the action of an extractor.
4. Wet bean drying system, comprising a drying rotor according to claim 1; a vacuum rest rotor comprising a system for generating vacuum and a controlled source of heat; and a bean feeding system that allows transport between the drying and vacuum rest rotors.
5. A wet bean drying process, comprising entry of the wet beans to a drying rotor, where the wet beans are heated by exposure to electromagnetic radiation emitted by the thermal panels that are located inside the drying rotor and that emit electromagnetic radiation, and simultaneously drag the moisture out of the beans by an efficient ventilation system, that allows, through the baffles attached to cargo and fixed vent caps, the entry of dry and hot air by solar radiation, where said air, once it has captured the surrounding moisture in the cavities of the drying rotor, is removed by the action of an extractor; one stage transporting the pre-dried beans from the drying rotor to the vacuum rest rotor; a stage of rest in vacuum, which is produced by the vacuum pump at a controlled temperature emitted by a controlled heat source, which accelerates the migration of moisture to the surface, becoming a key factor for drying efficiency; and entry of the wet beans to a drying rotor, where the wet beans are heated by exposure to electromagnetic radiation emitted by the thermal panels that are located inside the drying rotor and emit electromagnetic radiation, and simultaneously drag the moisture from the beans by an efficient ventilation system, that allows, through the baffles attached to cargo and fixed vent caps, the entry of dry and hot air by solar radiation, where said air, once it has captured the surrounding moisture in the cavities of the drying rotor, is removed by the action of an extractor
6. The wet bean drying process according to claim 4, where the drying and vacuum rest stages are repeated at least twice, at least three times, at least four times, at least five times or until the humidity of the beans reaches the required level.
Description
DESCRIPTION OF FIGURES
[0026] The
[0027] The
[0028] The
[0029] The
[0030] The
[0031] The
[0032] The
[0033] The
[0034] The
[0035] The
[0036] The
DESCRIPTION OF THE ELEMENTS THAT MAKE UP THE SYSTEM FOR DRYING BEANS OF THE INVENTION
[0037] (1) Drying rotor. [0038] (2) Left metal bracket that corresponds to a metal structure that supports the metal bearing (4). [0039] (3) Right metal bracket that corresponds to a metal structure that supports the self-align bearing (20), the gear motor (24), the electric motor (29) and the protective cover (19). [0040] (4) Metal bearing which corresponds to a casting on which the metallic bushing (10) is fixed with screws to the left metal bracket (2), together they support the left side of the drying rotor (1). [0041] (5) Plate located on the transmission side of the drying rotor (1) which corresponds to a metal disc to which the drive shaft (17) and the rotor center duct (7) are secured by screws. [0042] (6) Plate located on the suction side of the drying rotor (1) that corresponds to a metallic disc to which the metallic bushing (10) and the rotor center duct (7) are secured by means of screws. [0043] (7) Rotor center duct corresponds to a plastic or metal tube which is built with a perforated sheet and two flanges, it is secured with screws on one side to the transmission side dish (5) drying rotor (1) and on the other side to the suction side plate (6) of the drying rotor (1). [0044] (8) Fixed cover of the rotor that corresponds to a metallic or plastic structure which is fixed by screws to the plates (5) and (6).
DETAILED DESCRIPTION OF THE INVENTION
[0138] In addition to what was previously stated, the object of this application may be appreciated in detail through the subsequent description of the structure and operation of the system and process developed.
[0139] According to
[0140] In a preferred embodiment, the drying rotor (1) of the invention internally comprises at least one, two or three cavities, where each cavity is delimited by the rotor center duct (7), two type 2 thermal panels (14), the fixed rotor cover (8), and the fixed vent cap (9) as shown in a non-limiting manner in
[0141] In a particular embodiment, the rotor center duct (7) is a plastic or metallic tube which is built with perforated sheet and two flanges. Where the rotor center duct (7) is secured with screws on one side to the transmission side dish (5) of the drying rotor (1) and on the other side to the suction side plate (6), as shown in
[0142] Preferably, the fixed rotor covers (8), and the fixed ventilation caps (9) are fixed by screws to the plates (5) and (6). On the other hand, each loading window frame (11) and each fixed vent cap (9) has an air collector deflector (12). Where each fixed vent cap (9) comprises a metal or plastic structure that has a perforated metal sheet through which the air enters the drying rotor (1) and where the loading window frame (11) is a metal or plastic structure that carries a perforated metal sheet, and together with a air collector deflector (12) it is secured by hinges to the adjacent fixed rotor cover (8), so that this device when open allows the passage of the coffee beans to the internal part of the drying rotor (1), and being closed, it allows the passage of air into the drying rotor (1) through the perforated sheet attached to the loading window frame (11).
[0143] In another preferred embodiment, each internal cavity of the drying rotor (1) contains one, two or three type 1 panels (13). In accordance with
[0144] Likewise, in accordance with
[0145] Preferably, the type 1 (13) and type 2 (14) panels are connected to the manifold (22) which is an insulating piece that is mounted on the tip of the drive shaft (17) and rotates with it, and that it has two copper bushings that are connected to the thermal panels type 1 (13) and type 2 (14). The bushings of the manifold (22) receive the electrical current from the two brushes of the brush holder (21), which corresponds to an insulating piece installed on the manifold (22).
[0146] In a particular embodiment, the drying rotor (1) has a left metal bracket (2) that supports the metal bearing (4) that is connected to the extractor duct (80), as shown in
[0147] In a particular embodiment, the drying rotor (1) has a right metal bracket (3), which supports the self-align bearing (20), the gear motor (24), the electric motor (29) and the protective cover (19).
[0148] In a particular embodiment of the invention, the drying rotor (1) comprises a mechanical system to ensure its rotation capacity, which is made up of a metallic drive shaft (17), a gear motor (24), and an electric motor (29) connected by a system of pulleys and wedges that ensure the transmission of movement, as shown in
[0149] Preferably, the electric motor (29) houses the wedge (28) that supports the small V-pulley (26). Where the small V-pulley (26) transmits its movement, through the v belt (27), to the large V-pulley (25) that is mounted on the horizontal axis the gear motor (24).
[0150] The gear motor (24) is a speed reduction box that has a horizontal and a transverse shaft mounted on ball bearings. The gear motor (24) comprises on the horizontal axis a helical pinion that transmits the movement to the transverse axis which has a worm screw installed. This device allows reducing the speed of the horizontal axis to the transverse axis and in turn changes the position of the transmission shafts. In turn, the transverse axis the gear motor (24) is attached to a small chain sprocket (30) by means of the wedge (23) and set screw (31).
[0151] On the other hand, the metallic drive shaft (17) has a flange and metallic reinforcements welded at one end, and also houses the wedge (18) that joins the drive shaft (17) to the large chain sprocket (32) that receives the movement of the link chain (33), which in turn comes from the small chain sprocket (30), which in turn is connected to the gear motor (24). The whole assembly rests on the Self align bearing (20) which is secured to the right metal bracket (3) and together they support the right part of the drying rotor (1). This entire system is covered by the protective cover (19) as shown in
[0152] In a further embodiment, the drying rotor of the invention comprises a thermometer (15) which is installed in the plate (6) located on the suction side of the drying rotor (1), and also includes a Lid for sampling (16) that corresponds to a transparent plastic cover which is installed on the plate (6) located on the suction side of the drying rotor (1) and that is easy to remove to allow the Sampling.
[0153] The invention also relates to the wet bean drying process comprising heating the bean in a controlled way and generate an air flow that evacuates the moisture extracted from the beans. In this way, the system of the invention allows each one of the cavities of the extraction rotor (1) to be loaded with wet beans, where wet beans come into contact with the electromagnetic radiation emitted by the thermal panels type 1 (13) and type 2 (14), that heat the bean in a controlled way by the radiation they emit. In turn, to the drying rotor (1) enters air, dry and hot, captured by the deflectors (12), through fixed vent covers (9) and loading window frames (11), which, once it has captured the evaporated water from the beans, is sucked using the extractor (78). In particular, the process of the invention allows the combination of i) the radiation provided to the beans through the thermal panels type 1 (13) and type 2 (14) and ii) the surrounding air, dry and warm, entered through the fixed ventilation caps (9) and the loading window frames (11), ensuring the proper temperature of the bean to remove water from them without affecting its quality.
[0154] The invention also relates to a wet coffee drying system comprising a drying rotor (1), as in
[0155] In a particular embodiment, the vacuum rest rotor (34) comprises a cylinder (42), a rotor plate (40) on the suction side of the pump which is a metallic disk that is attached by screws to the cylinder (42) and an external plate (47) on the transmission side, which corresponds to a metal disc which is attached to the central plate (46) on the transmission side by means of screws. In a preferred mode, the central plate (46) on the transmission side is a metal disc, which in turn is secured to the drive shaft (48) by screws.
[0156] Inside, the vacuum rest rotor (34) comprises 6 to 12 metal reinforcement tubes (43), which are secured to the central plate (46) on the transmission side and to the plate (40) of the rotor on the suction side of the vacuum pump.
[0157] In a particular embodiment, the vacuum rest rotor (34) also comprises an electrical resistance (44), which is mounted on the resistance supports (45) installed inside the duct (66) in the center of the rotor. In a preferred mode, the center rotor duct (66) is a plastic or metal tube which is built with a perforated sheet and two flanges, that is secured with screws on one side to the transmission side center plate (46) and on the other side to the rotor plate on the suction side (40) of the vacuum pump. In a further embodiment, the vacuum rest rotor (34) comprises a vacuum rest rotor loading window cover (41), that corresponds to a metal or plastic sheet that is installed in the cylinder (42) by means of screws.
[0158] In another embodiment of the invention, the vacuum rest rotor (34) also comprises a left metal bracket (35) that supports the Self align bearing (36). Where the Self align bearing (36) supports the drive shaft (38) and is secured by screws to the left metal bracket (35) and together they support the left part the vacuum rest rotor (34). In turn, the drive shaft (38) is a metal part composed of a metal flange to which a steel shaft end and metal reinforcements are welded, and that is fastened on the left side to the rotor plate on the suction side of the pump (40) using screws. The set also comprises a thermometer (39) that is installed in the rotor plate on the suction side of the pump (40) and that is used to measure the temperature of the beans during the vacuum rest process.
[0159] The vacuum rest rotor (34) of the invention also comprises a vacuum generation system made up of a vacuum pump (67) that corresponds to an electric pump that extracts the air to the vacuum rest rotor (34). The vacuum pump (67) is connected to an interconnection hose (68), which corresponds to a plastic duct with fittings that is used to interconnect the vacuum pump (67) with the vacuum rest rotor (34). In a particular aditional embodiment, the suction system the vacuum rest rotor (34) also comprises a vacuum switch (70) to measure the vacuum with its fittings and bypass valve, a solenoid valve (69) which is a solenoid valve that allows air to pass into the vacuum pump only when the vacuum pump (67) is on, and a rotating air connector (37) that corresponds to a mechanical device that allows air to pass between the vacuum rest rotor (34) and the vacuum pump (67) when the vacuum rest rotor (34) is in motion and the vacuum pump (67) is permanently installed.
[0160] The vacuum rest rotor (34) of the invention also comprises a transmission system made up of a drive shaft (48) that is a metallic piece composed of a metallic flange to which a steel shaft end and metallic reinforcements are welded tied on the right side to the central plate (46) on the transmission side by means of screws. In a particular embodiment the drive shaft (48) It also houses the wedge (49) which carries the large chain sprocket (64) that is mounted on the shaft. The whole assembly rests on the Self align bearing (51) which is secured to the right metal bracket (61) and together they support the right part the vacuum rest rotor (34). In a preferred mode, the transmission system the vacuum rest rotor (34) also comprises a manifold (53) an insulating piece that is mounted on the tip of the drive shaft (48) and rotates with it, and that has two copper bushings that are connected to the electrical resistance (44). The two copper bushings of the manifold (53) are fed by the brush holder (52).
[0161] The transmission system of the vacuum rest rotor (34) also comprises an electric motor (60) that has its axis attached to a metal wedge (59), which drives the small V-pulley (57). Where the small V-pulley (57) is in turn attached to the v belt (58) and transmits the movement to the large V-pulley (56). Additionally, the large V-pulley (56) is mounted on the horizontal axis of the gear motor (55), so that movement of the v belt (58) is transmitted from the gear motor (55) to the small chain sprocket (62).
[0162] The gear motor (55), which is secured with screws to the right metal bracket (61), is a speed reduction box that has a horizontal and a transverse axis mounted on ball bearings. A helical pinion is installed on the horizontal axis that transmits the movement to the transverse axis which has a worm screw installed. This device allows reducing the speed from the horizontal axis to the transverse axis and in turn changes the position of the transmission shafts. Additionally, the small chain sprocket (62) that is installed on the cross shaft the gear motor (55) is attached to it by means of the wedge (54) and the set screw (63), so that the small chain sprocket (62) transmits the movement to the link chain (65), which in turn transmits the movement to the large chain sprocket (64) and this in turn transmits the movement to the vacuum rest rotor (34). Finally, the system is protected by a protective cover (50) that is fixed with screws to the right metal bracket (61).
[0163] In a particular embodiment, the wet bean drying system of the invention comprises a feeding system for the entry of the wet coffee to the drying rotor (1) and/or the vacuum rest rotor (34), comprising a hopper (82) a on the drying rotor side (1), a hopper (85) from the vacuum rest rotor (34) side, a hopper of the elevator load (84) that stores the beans that go to the elevator (77). Preferably, the elevator (77) transports the beans from a low level to a higher one towards the two-way valve (76) that allows unloading the beans in the drying rotor (1) and/or in the vacuum rest rotor (34) through Retractable Duct (75).
[0164] In a particular way, the system of the invention is characterized in that the hoppers (82) and (85) are used to deposit the beans from the drying (1) or vacuum (34) rotors to the hopper (84), process that is controlled by the action of the blade valve (83).
[0165] In a preferred mode, the wet coffee drying system comprising a drying rotor (1) and a vacuum rest rotor (34) is located in an area delimited by the support structure and access to rotors (74), and which is surrounded by the walls (86), (88), (89), (90), (91), (92), (93), (94), the roof (95) and the access doors (73). Where the walls (89), (92), (94) and the roof (95) can have solar panels on their surface in order to capture and store solar energy that is used to heat the surrounding air when drying rotor (1). Said structure also comprises a dehumidifier (72) comprising a compressor, condensers, radiator, electrical connections and pipes through which Freon gas is circulated through the copper cooling coil (71) to lower the temperature of the surrounding air entering the structure (74), thus controlling the relative humidity in the vicinity of the drying system of the invention. In a particular embodiment, the system of the invention also comprises an electrical panel (79) that corresponds to a metal box that contains all the controls, starters, electrical and electronic protective covers to control the system of the invention.
[0166] The invention also refers to a wet bean drying process comprising two stages: a drying stage, a vacuum rest stage and a subsequent drying stage, which are successively repeated in an interleaved manner the number of times necessary to ensure minimal and/or optimal bean moisture.
[0167] The drying process of the invention, in its first drying stage, it is characterized by heating the bean in a controlled way and generating an air flow that evacuates the moisture extracted from the beans. In this way, the system of the invention makes it possible to load each of the drying rotor cavities (1) with wet beans, where the wet beans come into contact with the thermal radiation emitted by the thermal panels type 1 (13) and type 2 (14), which heat the bean in a controlled way through the radiation they emit. In turn, when drying rotor (1) captures by means of the collectors (12) the surrounding air that has been dried by the dehumidifier (72) and that has been heated by the solar panels of the walls (89), (92), (94) and ceiling (95), and enters it into the drying rotor 1 through the fixed ventilation caps (9) and the loading window frames (11). Said air, once it has captured the evaporated water from the beans, is sucked using the extractor (78). In particular, the system of the invention allows the combination of the radiation provided to the beans through the thermal panels type 1 (13) and type 2 (14) and the surrounding hot and dry air entered through the fixed vent caps (9) and the loading window frames (11) ensure the proper temperature of the bean to remove water from the bean without affecting its quality.
[0168] The drying process of the invention, in its second vacuum resting stage, involves transporting the coffee that has been dried in the first stage in a drying rotor (1) to the vacuum resting rotor (34), using the elevator (77). The bean is then subjected to a vacuum produced by the vacuum pump (67) and to a controlled temperature emitted by the resistance (44), which accelerates the migration of moisture to the surface, becoming a key factor for drying efficiency.
[0169] The drying process of the invention comprises a subsequent drying stage to the stage of rest in vacuum characterized by heating the bean in a controlled way and generate an air flow that evacuates the moisture extracted from the beans. In this way, the system of the invention makes it possible to load each of the drying rotor cavities (1) with wet beans. In this way, the system of the invention makes it possible to load each of the drying rotor cavities (1) with wet beans, that heat the bean in a controlled way by the radiation they emit. In turn, the drying rotor (1) captures through the collectors (12) the surrounding air that has been dried by the dehumidifier (72) and that has been heated by the solar panels of the walls (89), (92), (94) and the ceiling (95), and enters it into the drying rotor 1 through the fixed ventilation caps (9) and the loading window frames (11). Said air, once it has captured the evaporated water from the beans, is sucked using the extractor (78). In particular, the system of the invention allows the combination of the radiation provided to the beans through the thermal panels type 1 (13) and type 2 (14) and the surrounding hot and dry air entered through the fixed vent caps (9) and the loading window frames (11) ensure the proper temperature of the bean to remove water from the bean without affecting its quality.
[0170] In a preferred mode of the invention, the drying and vacuum rest stages are repeated at least once, at least twice, at least three times, at least four times, at least five times, or until the moisture of the beans reaches the required level.
Example
[0171] In order to highlight the operation and advantages of the system and process disclosed, below is a comparison of average times used during a bean drying process using an traditional sun drying machine, a static drying machine, a rotary drying machine and the multi-stage system for drying beans disclosed in the present invention:
TABLE-US-00001 Total Natural Vacuum time rest time rest time Process (hours) (hours) (hours) Traditional sun dryer 150-200 75-100 No Static drying 40-48 6-12 No machine Rotary drying 40-48 4-6 No machine Multi-stage system 12-18 No 6-9
[0172] From the above it is possible to affirm that the multistage system for drying beans disclosed in the present invention allows to radically reduce drying times, since compared to a static or rotary drying machine a 50% reduction in drying times is achieved, while compared to a traditional drying process in the sun, a reduction of about 90% in drying times is achieved.
[0173] The efficiency achieved through the system and process disclosed in the present invention corresponds in fact to a considerable advance compared to what is known in the prior art, since the drying stage has historically been the one that requires the greatest amount of time during the overall bean treatment process (for example, during the processing of coffee), thus becoming a practical and efficient alternative to reduce processing times (and therefore costs). Additionally, the drying process of the invention is 100% ecological, since it does not require the use of fossil fuels, and therefore there is no generation of polluting emissions.