Constant-temperature energy-saving fermentation equipment for food fermentation

Through adjustable food storage mechanism and hot flow circulation assembly, the problems of inconvenient operation and uneven temperature of the fermentation chamber are solved, and energy saving and rapid and uniform fermentation are achieved.

CN120290304APending Publication Date: 2025-07-11GUIZHOU PROVINCIAL MODERN AGRI DEV RES INST (GUIZHOU PROVINCIAL MODERN RURAL DEV RES CENT GUIZHOU PROVINCIAL RES INST OF RURAL ECONOMIC & SOCIAL DEV GUIZHOU PROVINCIAL AGRI PROD PROCESSING RES INST)
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Patent Information

Application Number
CN202510470554.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

The existing fermentation tank is inconvenient and laborious, the temperature is uneven and there is waste of heat energy, especially when a small amount of food fermentation is slow, which affects efficiency.

Method used

The adjustable food storage mechanism is adopted, including storage space adjustment components and heat flow circulation components, and the grid plate position is adjusted through electric push rods and rope systems, combined with transparent window and door structures to achieve space adjustment and temperature uniformity.

Benefits of technology

The pick-up and placement operation of the pallet is simplified, the temperature loss is reduced, the fermentation efficiency is improved, energy saving and temperature uniformity are achieved, and the rapid fermentation needs of different amounts of food are adapted to the needs of rapid fermentation of different amounts of food.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses constant-temperature and energy-saving fermentation equipment for food fermentation, and belongs to the technical field of food fermention.The constant-temperature and energy-saving fermentation equipment comprises a food fermentation mechanism, and an adjustable food storage mechanism is arranged in the food fermentation mechanism; the storage space adjusting assembly is used for upward contraction operation, the adjusting sealing plug moves upwards, the adjusting sealing plug pushes the grid plates, and the grid plates are connected through the first rope, so that the multiple grid plates can be folded and combined upwards in sequence according to requirements; in this way, the space of the food fermentation equipment can be reduced by adjusting the sealing plug, the heating space can be adjusted according to the actual use amount, the energy-saving effect is achieved, the window and door structure is arranged in the middle of the transparent window structure, and the problems that due to the fact that a door is arranged on the whole face of traditional food fermentation equipment, temperature is excessively lost, and the food fermentation efficiency is affected can be solved; the time consumed by re-heating of the food fermentation equipment is shortened, and the energy-saving effect can be further achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of food fermentation, and particularly relates to a fermentation device with constant temperature and energy saving for food fermentation. Background Art

[0002] Fermentation refers to the process in which people utilize the life activities of microorganisms under aerobic or anaerobic conditions to prepare the microorganisms themselves, or directly produce metabolites or secondary metabolites. When making bread and Western-style pastries, the dough needs to be fermented, so a fermentation box is required.

[0003] In the prior art, in order to improve the efficiency of fermenting bread, a general fermentation box is provided with multiple layers of trays. Before fermentation, the trays filled with the dough to be fermented need to be placed on the placement racks inside the fermentation box. For the placement racks arranged near the bottom or the top, whether the staff places or takes the trays, they need to bend down significantly or lift them up to complete the operation. Therefore, the operation is inconvenient and laborious. Moreover, during the process of taking and placing, the entire door of the fermentation box needs to be completely opened, resulting in a rapid loss of the internal temperature and making it inconvenient to use quickly next time. Generally, the size of the internal space of the fermentation box is fixed. When there is less food to be fermented, the entire interior of the fermentation box is heated, resulting in a slow heating rate, unnecessary waste of heat energy, and it is not convenient to perform uniform air blowing treatment inside, making the temperature inside the fermentation box not uniform enough.

[0004] In view of the above problems, the present invention document proposes a fermentation device with constant temperature and energy saving for food fermentation. Summary of the Invention

[0005] The purpose of the present invention is to solve the disadvantages in the prior art that for the placement racks arranged near the bottom or the top, whether the staff places or takes the trays, the operation is inconvenient and laborious, and during the process of taking and placing, the internal temperature rapidly loses, making it inconvenient to use quickly next time, and when there is less food to be fermented, the entire interior of the fermentation box is heated, resulting in a slow heating rate, unnecessary waste of heat energy, and it is not convenient to perform uniform air blowing treatment inside, making the temperature inside the fermentation box not uniform enough, and to propose a fermentation device with constant temperature and energy saving for food fermentation.

[0006] In order to achieve the above purpose, the present invention adopts the following technical solution:

[0007] A fermentation device with constant temperature and energy saving for food fermentation includes a food fermentation mechanism, and an adjustable food storage mechanism is arranged inside the food fermentation mechanism;

[0008] The food fermentation mechanism includes a food fermentation device, and two support baffles are fixedly connected inside the food fermentation device, and the two support baffles are respectively located on the left and right sides of the inner wall of the food fermentation device;

[0009] The adjustable food storage mechanism includes a storage space adjustment component and a retracting and extending component. A heat flow circulation component is provided on the storage space adjustment component. Four guiding components are penetrated under the storage space adjustment component. A plurality of grid plates are arranged between the four guiding components. A food storage box is arranged above the grid plates. A locking control component is connected under one of the grid plates, and two locking components are connected to both sides of the same grid plate connected to the locking control. The two locking components are located above the support baffle. The four ends of the locking control component are connected to the four locking components, and fixed hooks are fixedly connected to both sides of the uppermost grid plate;

[0010] The retracting and extending component includes four first ropes, and the four first ropes are installed through a plurality of grid plates.

[0011] Preferably, a transparent window structure is fixedly installed in front of the food fermentation device, and a window door structure is arranged on the transparent window structure.

[0012] Preferably, the storage space adjustment component includes two electric push rods and two upper mounting plates. The two electric push rods and the two upper mounting plates are fixedly connected above the interior of the food fermentation device. One end of the electric push rod is fixedly connected with a movable strip. The movable strip penetrates through a guiding opening and an adjustment frame strip and is hinged to the upper part of a scissor-type telescopic frame, and the guiding opening is opened on the upper mounting plate.

[0013] Preferably, the scissor-type telescopic frame is also hinged to a plurality of adjustment frame strips. Activity openings are arranged on both sides of the adjustment frame strip, and the ends of the scissor-type telescopic frame slide in the activity openings.

[0014] Preferably, adjustment sealing plugs are fixedly connected under the two lowermost adjustment frame strips, and the adjustment sealing plugs are arranged inside the food fermentation device.

[0015] Preferably, the heat flow circulation component includes a fan device and two groups of air outlet head groups. The number of each group of air outlet head groups is multiple. The fan device is fixedly installed under the adjustment sealing plug. The air inlet of the fan device is communicated with an air inlet end. The air inlet end penetrates through the adjustment sealing plug and extends above the adjustment sealing plug;

[0016] The air outlet of the fan device is communicated with two air outlet pipes. The air outlet pipes penetrate through the adjustment sealing plug upward and are communicated with the two lowermost air outlet head groups. The air outlet head groups are fixedly connected to one side of the adjustment frame strip, and a plurality of air outlet head groups are communicated through a plurality of air delivery hoses.

[0017] Preferably, the retractable assembly further comprises two first rotating shafts, which are rotatably mounted on the food fermentation device via two bearings, and the two first rotating shafts are transmission-connected via a belt transmission structure, wherein one of the first rotating shafts is fixedly connected to the output shaft of the driving motor, and a fixing frame is fixedly connected to one side of the driving motor, and the fixing frame is fixedly connected to the food fermentation device;

[0018] Two rope drums are fixedly connected to the first rotating shaft, and the first rope is wound around the rope drums, and the first ropes on the left and right sides are wound in the same manner.

[0019] Preferably, the guide assembly includes a guide rod, the adjusting sealing plug slides on four guide rods, both ends of the guide rod are fixedly connected with a fixing plate, the fixing plate is fixedly connected in the food fermentation equipment, and a plurality of guide sleeves are sleeved on the guide rod, and every four guide sleeves are fixedly connected to the grid plate.

[0020] Preferably, the locking control assembly includes a second rotating shaft, which is rotatably mounted on the grid plate via two bearings, one end of the second rotating shaft is fixedly connected to a handle, two reels are fixedly connected to the second rotating shaft, and two second ropes are wound around the reels.

[0021] Preferably, the locking assembly includes a fixing piece, which is fixedly connected to one side of the grid plate, a telescopic rod and a return spring are fixedly connected to one side of the fixing piece, one end of the telescopic rod and the return spring are fixedly connected to a locking hook, the two locking hooks are overlapped above the supporting baffle, one side of the locking hook is fixedly connected to the second rope, the top of the locking hook is an inclined surface, and the bottom of the fixing hook is an inclined surface.

[0022] Compared with the prior art, the present invention provides a constant temperature and energy-saving fermentation equipment for food fermentation, which has the following beneficial effects:

[0023] 1. The constant temperature and energy-saving fermentation equipment for food fermentation retracts upward through the storage space adjustment component to move the adjustment sealing plug upward, so that the adjustment sealing plug pushes the mesh plate. Since the mesh plates are connected by a first rope, multiple mesh plates can be gathered and merged upward in turn according to needs, so that the space of the food fermentation equipment can be reduced by adjusting the sealing plug, and the heating space can be adjusted according to actual usage to achieve energy-saving effects. Secondly, the window and door structure is arranged in the middle of the transparent window structure, which can avoid the problem of temperature transition loss caused by setting a door on the entire surface of the food fermentation equipment, affecting the food fermentation efficiency, and reducing the time spent on reheating the food fermentation equipment, which can further achieve energy-saving effects.

[0024] 2. The constant-temperature and energy-saving fermentation equipment for food fermentation can sequentially move the lower grid plate to the position of the window door structure through the retracting and releasing component, enabling sequential feeding and discharging. When the feeding in the upper-middle part is completed, the fixed hook moves downward to lock with the locking component. At this time, the retracting and releasing component can directly lift the combined grid plate in the upper-middle part, so that the lower grid plates can move upward in sequence, meeting the feeding operation below and making the feeding at the same height, making the feeding operation simpler and more convenient. At the same time, the heat flow circulation component evenly disperses and discharges the temperature of the food fermentation equipment and realizes circulation, thus quickly ensuring the temperature uniformity of the entire internal space of the food fermentation equipment and enabling the food to ferment evenly.

[0025] 3. The constant-temperature and energy-saving fermentation equipment for food fermentation is adjusted to contract upward through the storage space adjustment component, enabling the storage space adjustment component to stack and close the grid plates from bottom to top in sequence, thereby achieving the purpose of adjustable internal storage space of the food fermentation equipment. Further, the heating space can be adjusted to meet the food fermentation operation of quickly heating the food fermentation equipment. Moreover, adjusting the heating space can automatically raise the blowing position, further enabling the internal temperature of the food fermentation equipment to flow quickly and evenly, facilitating the uniform fermentation operation of the food. Secondly, the position of the grid plate is adjusted through the retracting and releasing component, so that the food storage box can be driven by the grid plate to be at the same height, and the feeding and discharging operation can be realized in cooperation with the window door structure, thus facilitating feeding and discharging and effectively improving the energy-saving effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 Stereoscopic view of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0027] Figure 2 Stereoscopic view of the food fermentation mechanism of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0028] Figure 3 Stereoscopic view of the adjustable food storage mechanism of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0029] Figure 4 Stereoscopic view of the storage space adjustment component of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0030] Figure 5 Stereoscopic view of the connection between the storage space adjustment component and the heat flow circulation component of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0031] Figure 6 Stereoscopic view of the display of food storage boxes of a constant-temperature and energy-saving fermentation equipment for food fermentation proposed by the present invention;

[0032] Figure 7 Stereoscopic view of the retracting and deploying assembly of a thermostatic and energy-saving fermentation device for food fermentation proposed by the present invention connected to the grid plate;

[0033] Figure 8 Partial stereoscopic view of the retracting and deploying assembly of a thermostatic and energy-saving fermentation device for food fermentation proposed by the present invention;

[0034] Figure 9 Stereoscopic view of the locking control assembly of a thermostatic and energy-saving fermentation device for food fermentation proposed by the present invention;

[0035] Figure 10 In the present invention Figure 9 Enlarged view of location A.

[0036] In the figure: 100, food fermentation mechanism; 101, food fermentation device; 102, window door structure; 103, transparent window structure; 104, support baffle; 200, adjustable food storage mechanism; 201, storage space adjustment assembly; 2011, electric push rod; 2012, movable bar; 2013, upper mounting plate; 2014, scissor-type telescopic frame; 2015, adjustment frame bar; 2016, adjustment seal plug; 2017, guiding opening; 202, heat flow circulation component; 2021, fan equipment; 2022, air outlet pipe; 2023, air outlet head group; 2024, air inlet end; 2025, air delivery hose; 203, retracting and deploying assembly; 2031, fixing frame; 2032, driving motor; 2033, belt drive structure; 2034, first rotating shaft; 2035, rope reel; 2036, first rope; 204, food storage box; 205, guiding component; 2051, guiding rod; 2052, guiding sleeve; 2053, fixing plate; 206, locking component; 2061, fixing part; 2062, return spring; 2063, telescopic rod; 2064, locking hook; 207, fixing hook; 208, locking control assembly; 2081, second rotating shaft; 2082, handle; 2083, winding reel; 2084, second rope; 209, grid plate. Specific embodiments

[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments.

[0038] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings. These are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention.

[0039] Example 1: Refer to Figures 1-4 and Figures 6-8 , a fermentation device with constant temperature and energy saving for food fermentation, comprising a food fermentation mechanism 100, and an adjustable food storage mechanism 200 is arranged inside the food fermentation mechanism 100;

[0040] The food fermentation mechanism 100 includes a food fermentation device 101. A transparent window structure 103 is fixedly installed in front of the food fermentation device 101. Through the transparent window structure 103, it is convenient for the staff to observe the food fermentation state from the outside. A window door structure 102 is arranged on the transparent window structure 103. By opening the window door structure 102, it is convenient to take out the fermented food in the food storage box 204. Two support baffles 104 are fixedly connected inside the food fermentation device 101. The locking assembly 206 can be supported by the support baffles 104, so as to support the grid plate 209 and the food storage box 204, which is beneficial for subsequent lowering the grid plate 209 above for material taking operations. The two support baffles 104 are respectively located on the left and right sides of the inner wall of the food fermentation device 101;

[0041] The adjustable food storage mechanism 200 includes a storage space adjustment component 201 and a retractable component 203. The storage space adjustment component 201 includes two electric push rods 2011 and two upper mounting plates 2013. By controlling the movement of the movable bar 2012 through the electric push rod 2011, the movable bar 2012 drives the scissor-type telescopic frame 2014 to contract. At the same time, the adjustment frame bar 2015 follows the contraction of the scissor-type telescopic frame 2014, and then the adjustment seal plug 2016 moves upward to adjust the heating space of the food fermentation device 101. Both the two electric push rods 2011 and the two upper mounting plates 2013 are fixedly connected above the interior of the food fermentation device 101. One end of the electric push rod 2011 is fixedly connected to the movable bar 2012. The movable bar 2012 passes through the guiding opening 2017 and the adjustment frame bar 2015 and is hinged to the upper part of the scissor-type telescopic frame 2014. And the guiding opening 2017 is opened on the upper mounting plate 2013. The reserved openings above and below the guiding opening 2017 and the adjustment frame bar 2015 can provide a moving space for the movable bar 2012, enabling the movable bar 2012 to smoothly perform displacement movement. At the same time, the reserved opening of the adjustment frame bar 2015 can ensure that the scissor-type telescopic frame 2014 passes through, so that the scissor-type telescopic frame 2014 can be connected to multiple adjustment frame bars 2015. The scissor-type telescopic frame 2014 is also hinged to multiple adjustment frame bars 2015. There are movable openings on both sides of the adjustment frame bar 2015. The end part of the scissor-type telescopic frame 2014 slides in the movable openings. The scissor-type telescopic frame 2014 can smoothly perform telescopic movement through the movable openings, enabling the scissor-type telescopic frame 2014 to adjust the position of the adjustment seal plug 2016 in the food fermentation device 101. The lower part of the two lowest adjustment frame bars 2015 is fixedly connected to the adjustment seal plug 2016. Through the adjustment seal plug 2016, the airtightness of the interior space of the food fermentation device 101 can be maintained, preventing the temperature from leaking downward and affecting the heating of the food fermentation device 101. The adjustment seal plug 2016 is arranged inside the food fermentation device 101. A heat flow circulation component 202 is arranged on the storage space adjustment component 201. Four guiding components 205 are penetrated below the storage space adjustment component 201. The guiding component 205 includes a guiding rod 2051. The adjustment seal plug 2016 slides on the four guiding rods 2051. Through the guiding rod 2051, the adjustment seal plug 2016 can be guided to smoothly slide up and down along the guiding rod 2051. Both ends of the guiding rod 2051 are fixedly connected to a fixing plate 2053. The fixing plate 2053 is fixedly connected in the food fermentation device 101. A plurality of guiding sleeves 2052 are sleeved on the guiding rod 2051. Through the fixing plate 2053, the guiding rod 2051 can be fixed to ensure the stability of the guiding rod 2051. And the guiding sleeve 2052 can smoothly slide up and down along the guiding rod 2051, enabling the grid plate 209 to move up and down smoothly. Every four guiding sleeves 2052 are fixedly connected to the grid plate 209. A plurality of grid plates 209 are arranged between the four guiding components 205.A food storage box 204 is provided above the grid plate 209, through which food can be stored and fermented food can be taken out directly. A locking control component 208 is connected below one of the grid plates 209, and two locking components 206 are connected to both sides of the same grid plate 209 connected to the locking control. The two locking components 206 are located above the support baffle 104, and the four ends of the locking control component 208 are connected to the four locking components 206, and the two sides of the uppermost grid plate 209 are fixedly connected with fixed hooks 207.

[0042] In this embodiment: the electric push rod 2011 drives the movable bar 2012 to move, and the movable bar 2012 drives the telescopic movement, so that the cross-scissor type telescopic frame 2014 retracts upward, and the cross-scissor type telescopic frame 2014 drives the adjustment frame bar 2015 to move, and the adjustment frame bar 2015 drives the adjustment sealing plug 2016 to move upward, so that the adjustment sealing plug 2016 pushes the grid plate 209 upward. Since the grid plates 209 are connected by the first rope 2036, the multiple grid plates 209 can be gathered and merged upward in turn according to needs, so that the space of the food fermentation equipment 101 can be reduced by adjusting the sealing plug 2016, and the heating space can be adjusted according to actual usage to achieve energy-saving effects. Secondly, the window and door structure 102 is arranged in the middle of the transparent window structure 103, which can avoid the problem of temperature transition loss caused by setting a door on the entire surface of the food fermentation equipment 101, affecting the food fermentation efficiency, and reducing the time spent on re-heating of the food fermentation equipment 101, and further achieving energy-saving effects.

[0043] Example 2: Reference Figures 4-5 and Figures 8-10, A fermentation device with constant temperature and energy saving for food fermentation, including a heat flow circulation component 202. The heat flow circulation component 202 includes a fan device 2021 and two groups of air outlet head groups 2023. The number of each group of air outlet head groups 2023 is multiple. The fan device 2021 is fixedly installed below the adjustment seal plug 2016. The air inlet of the fan device 2021 is communicated with the air inlet end 2024. The air inlet end 2024 extends above the adjustment seal plug 2016. Thus, the fan device 2021 can smoothly extract the heat flow of the food fermentation device 101 through the air inlet end 2024. The air inlet end 2024 penetrates through the adjustment seal plug 2016 and extends above the adjustment seal plug 2016. The air outlet of the fan device 2021 is communicated with two air outlet pipes 2022. The air outlet pipes 2022 can play the role of extending the conveying distance, enabling the heat flow to smoothly enter the air outlet head group 2023. And through the air outlet head group 2023, the heat flow can be dispersed and discharged, increasing the discharge area. Moreover, there are multiple air outlets arranged, further increasing the heat flow discharge area, so as to maintain the uniformity of food fermentation. The air outlet pipes 2022 penetrate upward through the adjustment seal plug 2016 and are communicated with the two lowest air outlet head groups 2023. The air outlet head group 2023 is fixedly connected to one side of the adjustment frame strip 2015. And multiple air outlet head groups 2023 are communicated through multiple air conveying hoses 2025. Through the air conveying hoses 2025, the air outlet head groups 2023 can be connected, thus playing the role of conveying the heat flow. And the air conveying hoses 2025 have scalability, enabling the scissor-type telescopic frame 2014 to smoothly perform telescopic adjustment;

[0044] The locking control component 208 includes a second rotating shaft 2081. The second rotating shaft 2081 is rotatably installed on the grid plate 209 through two bearings. One end of the second rotating shaft 2081 is fixedly connected with a handle 2082. Two winding discs 2083 are fixedly connected to the second rotating shaft 2081. Two second ropes 2084 are wound around the winding discs 2083. By using the handle 2082 as the force application point, it is convenient to control the rotation of the second rotating shaft 2081. The second rotating shaft 2081 can drive the winding discs 2083 to rotate, enabling the winding discs 2083 to wind up the second ropes 2084, so that the second ropes 2084 drive the locking hook 2064 to separate from the fixed hook 207, thus facilitating the unfolding of the grid plate 209 in sequence;

[0045] The locking assembly 206 includes a fixing member 2061, which is fixedly connected to one side of the grid plate 209. One side of the fixing member 2061 is fixedly connected to a telescopic rod 2063 and a return spring 2062. The telescopic rod 2063 can maintain the stable expansion and contraction of the return spring 2062, so that the elastic force of the return spring 2062 drives the locking hook 2064 to reset, and the locking hook 2064 is engaged with the fixing hook 207, so that the upper grid plate 209 can be kept combined, which is convenient for directly lifting the combined grid plate 209. One end of the telescopic rod 2063 and the return spring 2062 is fixedly connected to the locking hook 20 64, two locking hooks 2064 are overlapped on the top of the support baffle 104, one side of the locking hook 2064 is fixedly connected to the second rope 2084, the top of the locking hook 2064 is an inclined surface, through the inclined surface setting of the locking hook 2064 and the fixed hook 207, and the inclined surface staggered setting of the locking hook 2064 and the fixed hook 207, the fixed hook 207 moves downward, and the locking hook 2064 can be squeezed by the inclined surface, so that the locking hook 2064 automatically moves away from the fixed hook 207, so that the fixed hook 207 can move downward smoothly, avoiding the blocking between the fixed hook 207 and the locking hook 2064, and the bottom of the fixed hook 207 is an inclined surface;

[0046] The retractable assembly 203 includes four first ropes 2036, which are installed through a plurality of grid plates 209. The retractable assembly 203 also includes two first rotating shafts 2034, which are rotatably installed on the food fermentation equipment 101 through two bearings. The first rotating shafts 2034 can maintain stable rotation through the bearings, so that the rope drum 2035 can rotate stably. The two first rotating shafts 2034 are connected by a belt transmission structure 2033, and the belt transmission structure 2033 can realize long-distance power transmission, so that the two first rotating shafts 2034 can maintain synchronous rotation. One of the first rotating shafts 2034 is fixedly connected to the output shaft of the driving motor 2032, and a fixing frame 2031 is fixedly connected to one side of the driving motor 2032, and the driving motor 2032 can be fixed by the fixing frame 2031. , ensuring the stability of the driving motor 2032, and the driving motor 2032 drives the first rotating shaft 2034 to rotate, and through the transmission of the belt transmission structure 2033, the two first rotating shafts 2034 are rotated, so that the first rotating shaft 2034 drives the rope drum 2035 to rotate, so that the rope drum 2035 can retract and release the first rope 2036, thereby adjusting the position of the grid plate 209, which is convenient for the grid plate 209 to take and put materials, the fixed frame 2031 is fixedly connected to the food fermentation equipment 101, and two rope drums 2035 are fixedly connected to the first rotating shaft 2034. The first rope 2036 is wound on the rope drum 2035, and the first ropes 2036 on the left and right sides are wound in the same way. By winding the first ropes 2036 on both sides in the same way, the rope drum 2035 can rotate to synchronously release the first rope 2036 and synchronously reel in the first rope 2036.

[0047] In this embodiment: By reversing the driving motor 2032 to drive the first rotating shaft 2034 to reverse, the first rotating shaft 2034 releases the first rope 2036 through the rope reel 2035, so that the first rope 2036 successively reaches the position of the grid plate 209 in the lower, middle and upper parts to the window door structure 102, and material taking and placing can be carried out in sequence. When the material taking in the middle and upper parts is completed, when the uppermost part drives the fixed hook 207 to move downward, the inclined surfaces of the fixed hook 207 and the locking hook 2064 are squeezed, so that the locking hook 2064 moves and separates from the fixed hook 2071, so that the fixed hook 207 continues to move downward and is misaligned with the locking hook 2064, so that the return spring 2062 drives the locking hook 2064 to reset and lock with the fixed hook 207. At this time, by rotating the driving motor 2032 forward, the rope reel 2035 winds up the first rope 2036, and the first rope 2036 can directly lift the combined grid plate 209 in the middle and upper parts, so that the lower grid plate 209 can move upward in sequence, satisfying the material taking operation below, making the material taking at the same height, making the material taking operation simpler and more convenient. At the same time, the heat flow circulation component 202 evenly disperses and discharges the temperature of the food fermentation device 101 and realizes circulation, so as to quickly ensure the temperature uniformity of the entire internal space of the food fermentation device 101 and keep the food fermenting evenly.

[0048] Embodiment 3: Refer to Figures 2-3 and Figures 6-8 , a fermentation device for constant temperature and energy saving in food fermentation, including an adjustable food storage mechanism 200. The adjustable food storage mechanism 200 includes a storage space adjustment component 201 and a retracting and releasing component 203. A heat flow circulation component 202 is arranged on the storage space adjustment component 201. Four guiding components 205 are arranged below the storage space adjustment component 201. A plurality of grid plates 209 are arranged between the four guiding components 205. A food storage box 204 is arranged above the grid plate 209. A locking control component 208 is connected below one of the grid plates 209, and two locking components 206 are connected to both sides of the same grid plate 209 connected to the locking control. The two locking components 206 are located above the support baffle 104. The four ends of the locking control component 208 are connected to the four locking components 206, and fixed hooks 207 are fixedly connected to both sides of the uppermost grid plate 209;

[0049] The retracting and releasing component 203 includes four first ropes 2036, and the four first ropes 2036 are installed through a plurality of grid plates 209.

[0050] In the present embodiment: the storage space adjustment component 201 is retracted and adjusted upward, so that the storage space adjustment component 201 can stack and fold the grid plates 209 from bottom to top in sequence, thereby achieving the purpose of adjustable storage space inside the food fermentation equipment 101, and further adjusting the heating space to meet the rapid heating of the food fermentation equipment 101 for food fermentation operations, and adjusting the heating space can automatically increase the blowing position, further making the internal temperature of the food fermentation equipment 101 flow quickly and evenly, which is convenient for uniform food fermentation operations, and secondly, the position of the grid plate 209 is retracted and adjusted through the retractable component 203, so that the food storage box 204 can be driven to the same height through the grid plate 209, and the window and door structure 102 can be used to realize the operation of taking and putting materials, thereby facilitating the taking and putting of materials, and effectively improving the energy saving effect.

[0051] Working principle: when taking materials, first open the window door structure 102, take out the fermented food first, then drive the first rotating shaft 2034 to rotate by driving the motor 2032 in reverse, and the two first rotating shafts 2034 can rotate synchronously by the belt transmission structure 2033, and the first rotating shaft 2034 drives the rope drum 2035 to rotate, and the rope drum 2035 lowers the first rope 2036, and the locking hook 2064 is supported by the support baffle 104, and is now located below the upper mesh plate 209 where the material taking is completed to the position of the window door structure 102, and then continue to take out the food storage box 204, and in this way, the mesh plates 209 are stacked downward in sequence to perform the material taking operation;

[0052] When the uppermost mesh plate 209 drives the fixed hook 207 to move downward, the inclined surface of the fixed hook 207 is pressed against the inclined surface of the locking hook 2064, so that the locking hook 2064 moves and drives the reset spring 2062 to deform. At this time, the fixed hook 207 continues to move downward, so that the inclined surfaces of the fixed hook 207 and the locking hook 2064 are staggered. At this time, the reset spring 2062 drives the locking hook 2064 to reset, so that the locking hook 2064 is engaged with the fixed hook 207. After the engagement, the driving motor 2032 rotates forward at this time, so that the rope drum 2035 reels the first rope 2036, so that the stacked mesh plates 209 move upward synchronously, and the lower mesh plates 209 move up to the window and door structure 102 in turn, and then the material taking operation is carried out in turn.

[0053] When discharging is required, after the material taking is completed, the lowermost grid plate 209 is located at the position of the window door structure 102. At this time, the food to be fermented in the food storage box 204 can be put onto the grid plate 209 again. Then the winding and unwinding assembly 203 rotates in reverse to lower the grid plate 209 in sequence for feeding. When the uppermost grid plate 209 is behind the window door structure 102 after combination, feeding is carried out again. After feeding, rotate the handle 2082. The handle 2082 drives the second rotating shaft 2081 to rotate. The second rotating shaft 2081 drives the reel 2083 to rotate. The reel 2083 winds up the second rope 2084. The second rope 2084 pulls the locking hook 2064 to move, so that the locking hook 2064 is separated from the fixed hook 207. After separation, the winding and unwinding assembly 203 drives the uppermost grid plate 209 to move upward through forward rotation, and the grid plates 209 are lifted one by one in this way for feeding;

[0054] After the feeding is completed, the temperature is increased by the food fermentation device 101. At the same time, the fan device 2021 sucks air through the air inlet end 2024, so that the gas is conveyed to the air outlet head group 2023 through the air outlet pipe 2022, and is conveyed to the other air outlet head groups 2023 through the air conveying hose 2025 at the same time, so that the air outlet head group 2023 shunts and discharges the gas, and the heat flow is circulated in this way, so that the food fermentation device 101 is heated quickly and evenly, and the food is kept fermenting evenly.

[0055] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitution or change, and should be covered by the protection scope of the present invention.

Claims

1. A fermentation device for food fermentation with constant temperature and energy saving, including a food fermentation mechanism (100), characterized in that, An adjustable food storage mechanism (200) is arranged inside the food fermentation mechanism (100); The food fermentation mechanism (100) includes a food fermentation device (101). Two support baffles (104) are fixedly connected inside the food fermentation device (101), and the two support baffles (104) are respectively located on the left and right sides of the inner wall of the food fermentation device (101); The adjustable food storage mechanism (200) includes a storage space adjustment component (201) and a retracting and releasing component (203). A heat flow circulation component (202) is arranged on the storage space adjustment component (201). Four guiding components (205) are arranged below the storage space adjustment component (201). A plurality of grid plates (209) are arranged between the four guiding components (205). A food storage box (204) is arranged above the grid plates (209). A locking control component (208) is connected below one of the grid plates (209), and two locking components (206) are connected to both sides of the same grid plate (209) connected to the locking control. The two locking components (206) are located above the support baffle (104). The four ends of the locking control component (208) are connected to the four locking components (206), and fixing hooks (207) are fixedly connected to both sides of the uppermost grid plate (209); The retracting and releasing component (203) includes four first ropes (2036), and the four first ropes (2036) are installed through a plurality of grid plates (209).

2. The fermentation equipment for food fermentation with constant temperature and energy saving according to claim 1, wherein, A transparent window structure (103) is fixedly installed in front of the food fermentation device (101), and a window door structure (102) is arranged on the transparent window structure (103).

3. A fermentation device for food fermentation with constant temperature and energy saving according to claim 1, characterized in that, The storage space adjustment component (201) includes two electric push rods (2011) and two upper assembly plates (2013). The two electric push rods (2011) and the two upper assembly plates (2013) are fixedly connected above the interior of the food fermentation device (101). One end of the electric push rod (2011) is fixedly connected with a movable strip (2012). The movable strip (2012) passes through a guiding opening (2017) and an adjusting frame strip (2015) and is hinged to the upper part of a scissor-type telescopic frame (2014), and the guiding opening (2017) is opened on the upper assembly plate (2013).

4. A fermentation device for food fermentation with constant temperature and energy saving according to claim 3, characterized in that, The scissor-type telescopic frame (2014) is also hinged to a plurality of adjusting frame strips (2015). Activity openings are arranged on both sides of the adjusting frame strip (2015), and the ends of the scissor-type telescopic frame (2014) slide in the activity openings.

5. A fermentation device for food fermentation with constant temperature and energy saving according to claim 4, characterized in that, Adjusting sealing plugs (2016) are fixedly connected below the two lowermost adjusting frame strips (2015), and the adjusting sealing plugs (2016) are arranged inside the food fermentation device (101).

6. The fermentation equipment for food fermentation with constant temperature and energy saving according to claim 5, characterized in that, The heat flow circulation component (202) includes a fan device (2021) and two groups of air outlet heads (2023). The number of each group of air outlet heads (2023) is multiple. The fan device (2021) is fixedly installed below the adjusting seal plug (2016). The air inlet of the fan device (2021) is communicated with the air inlet end (2024). The air inlet end (2024) penetrates through the adjusting seal plug (2016) and extends above the adjusting seal plug (2016). The air outlet of the fan device (2021) is communicated with two air outlet pipes (2022). The air outlet pipes (2022) penetrate through the adjusting seal plug (2016) upward and are communicated with the two lowermost groups of air outlet heads (2023). The air outlet heads (2023) are fixedly connected to one side of the adjusting frame strip (2015), and the multiple groups of air outlet heads (2023) are communicated with each other through multiple gas transmission hoses (2025).

7. An fermentation equipment for food fermentation with constant temperature and energy saving according to claim 1, characterized in that, The winding and unwinding component (203) further includes two first rotating shafts (2034). The first rotating shafts (2034) are rotatably installed on the food fermentation device (101) through two bearings. The two first rotating shafts (2034) are connected by a belt drive structure (2033). One of the first rotating shafts (2034) is fixedly connected to the output shaft of the driving motor (2032). One side of the driving motor (2032) is fixedly connected with a fixing frame (2031), and the fixing frame (2031) is fixedly connected to the food fermentation device (101). Two rope reels (2035) are fixedly connected to the first rotating shaft (2034). The first ropes (2036) are wound around the rope reels (2035), and the winding methods of the first ropes (2036) on the left and right sides are the same.

8. An fermentation equipment for food fermentation with constant temperature and energy saving according to claim 5, characterized in that, The guiding component (205) includes a guiding rod (2051). The adjusting seal plug (2016) slides on the four guiding rods (2051). Both ends of the guiding rod (2051) are fixedly connected with fixing plates (2053). The fixing plates (2053) are fixedly connected in the food fermentation device (101). Multiple guiding sleeves (2052) are sleeved on the guiding rod (2051), and every four guiding sleeves (2052) are fixedly connected with the grid plate (209).

9. A fermentation device for food fermentation with constant temperature and energy saving according to claim 1, characterized in that, The locking control component (208) includes a second rotating shaft (2081). The second rotating shaft (2081) is rotatably installed on the grid plate (209) through two bearings. One end of the second rotating shaft (2081) is fixedly connected with a handle (2082). Two winding discs (2083) are fixedly connected to the second rotating shaft (2081), and two second ropes (2084) are wound around the winding discs (2083).

10. A fermentation device for food fermentation with constant temperature and energy saving according to claim 9, characterized in that, The locking assembly (206) includes a fixing member (2061). The fixing member (2061) is fixedly connected to one side of the grid plate (209). One side of the fixing member (2061) is fixedly connected to a telescopic rod (2063) and a return spring (2062). One ends of the telescopic rod (2063) and the return spring (2062) are fixedly connected to a locking hook (2064). The two locking hooks (2064) are lapped above the support baffle (104). One side of the locking hook (2064) is fixedly connected to a second rope (2084). The upper side of the locking hook (2064) is an inclined surface, and the lower side of the fixing hook (207) is an inclined surface.