Low-temperature preservation and rapid recovery device for edible fungus strains

By designing a low-temperature preservation and rapid recovery device for edible fungi strains with condensation, preservation, recovery and limiting mechanisms, the problems of cold air leakage and low recovery efficiency are solved, and the strains can be moved without opening the device, thereby improving the recovery efficiency and uniformity.

CN120391256BActive Publication Date: 2025-10-21ENVIRONMENT & PLANT PROTECTION INST CHINESE ACADEMY OF TROPICAL AGRI SCI
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Patent Information

Application Number
CN202510596860.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-10-21
Estimated Expiration
2045-05-09

AI Technical Summary

Technical Problem

In the existing bacterial strain preservation and resuscitation device, when taking out bacterial strains, cold air leaks and affects the temperature of other bacterial strains, and the resuscitation efficiency is low.

Method used

A low-temperature preservation and rapid recovery device for edible fungi was designed, which included a condensation mechanism, a preservation mechanism, a recovery mechanism and a limiting mechanism. The low-temperature preservation area and the recovery area were isolated by magnetic attraction and the rotation of the insulation baffle. The recovery efficiency was improved by combining a servo motor and a stirring blade.

Benefits of technology

The bacteria strains can be moved from the low-temperature storage area to the recovery area without opening the device, avoiding temperature changes and improving the efficiency and uniformity of bacteria strain recovery.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of strain recovery, and discloses a low-temperature storage and rapid recovery device for edible fungus strains, which comprises a shell, one end of the shell is movably connected with a storage cover plate, one end of the shell is movably connected with a heating cover plate, the outside of the shell is provided with a condensing mechanism, the inside of the shell is provided with a storage mechanism, the top end of the shell is installed with a second magnetic block, the top end of the shell is installed with a recovery mechanism, and the inside of the shell is fixed with a heat insulation plate. Through the cooperation of the first connecting rod, the heat insulation baffle and the torsional spring, when the storage box is moved by pushing the second magnetic block, the storage box extrudes the heat insulation baffle, the heat insulation baffle rotates upward, the storage box enters the recovery area from the low-temperature storage area, the torsional spring resets the heat insulation baffle, and the low-temperature storage area and the recovery area are re-isolated, so as to achieve the purpose of conveniently dividing the device into the low-temperature storage area and the recovery area, rapidly recovering the strains that need to be recovered, and not needing to take out the strains.
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Description

Technical Field

[0001] The invention belongs to the technical field of fungus strain recovery, and in particular is a device for low-temperature preservation and rapid recovery of edible fungus strains. Background Art

[0002] Strain revival is to place the preserved strains into a suitable culture medium for cultivation, and gradually expand the culture to obtain a pure and strong culture, that is, to obtain a vigorous culture with sufficient inoculation quantity. Before activation and resuscitation, the maintained strains need to be restored to room temperature, that is, they need to be thawed. Therefore, a low-temperature preservation and rapid resuscitation device is needed to preserve and resuscitate edible fungi strains.

[0003] Patent No. CN218478735U discloses a strain activation and cultivation device, which belongs to the field of strain activation technology. It includes a strain activation tank and a workbench. The workbench is fixedly installed on one side of the strain activation tank, and a thawing tank is fixedly installed on the side above the workbench. A temperature-controlled electric heating rod is installed inside the thawing tank. A thawing mechanism is provided inside the thawing tank, which can quickly thaw strains preserved by the -80°C refrigerator freezing method. An activation mechanism is provided inside the strain activation tank, which can activate the strain culture in the preserved state. The thawing mechanism includes an electric cylinder and a connecting plate. Through the thawing mechanism, the ampoule of the preserved strain is placed in a water bath of 8°C-40°C for heating and thawing. The electric telescopic rod reciprocates and drives the ampoule fixing frame to swing back and forth in the hot water, causing the strain inside to shake, thereby quickly reviving the strain, making the device more integrated.

[0004] However, when the device takes out the strains, opening the cabinet door will cause cold air to leak, thereby affecting the strains that do not need to be revived in the storage area, causing the temperature of the strains to change. When the strains need to be revived, the user can move the corresponding strains to the resuscitation area without opening the low-temperature storage area, thereby avoiding affecting other strains and improving the efficiency of strain resuscitation through the hot bath. Summary of the Invention

[0005] In order to solve the problems raised in the above background technology, the present invention provides a device for low-temperature storage and rapid recovery of edible fungi.

[0006] To achieve the above objectives, the present invention provides the following technical solutions: a device for low-temperature preservation and rapid recovery of edible fungi, comprising a housing, one end of which is movably connected to a storage cover, one end of which is movably connected to a heating cover, a condensing mechanism being provided on the exterior of the housing, a preservation mechanism being provided on the interior of the housing, a second magnetic block being mounted on the top end of the housing, a recovery mechanism being mounted on the top end of the housing, and a heat insulation board being fixed to the interior of the housing;

[0007] The condensing mechanism includes a heat exchange shell, a refrigerator and a reset groove. The heat exchange shell is fixed to the outside of the shell, the refrigerator is installed inside the heat exchange shell, and the top of the heat exchange shell is provided with a reset groove.

[0008] The storage mechanism includes a storage box and a slot, wherein the storage box is arranged inside the housing, and a slot is provided at the top of the storage box;

[0009] The resuscitation mechanism includes a support frame, a screw barrel and a first servo motor. The support frame is fixed to the top of the shell. The screw barrel is rotatably connected inside the support frame, and the first servo motor is fixed outside the support frame.

[0010] Preferably, a plug hole is provided at the top of the heat exchange shell, an observation window is provided at the top of the heat exchange shell, several groups of refrigerators are provided, and the refrigerators are distributed at equal intervals, and several groups of reset grooves are provided, and the reset grooves are distributed at equal intervals about the central axis of the heat exchange shell.

[0011] Preferably, a box cover is provided at the top of the storage box, a plug plate is fixed at the bottom end of the box cover, a first magnetic block is fixed at the top end of the box cover, the storage box is provided with several groups, the slots and the plug plate are snap-connected, a slider is provided at the bottom end of the storage box, a sliding groove is provided at the bottom end of the inside of the shell, and the storage box and the shell are slidably connected.

[0012] Preferably, a transmission rod is movably connected inside the shell, a transmission bar is fixed to the bottom end of the transmission rod, a connecting plate is fixed to the outside of the transmission rod, a cylinder is fixed to the outside of the connecting plate, and a clamping plate is fixed to the extended end of the cylinder.

[0013] Preferably, a screw barrel is fixed to the rotating end of the first servo motor, the transmission bar is arranged inside the thread on the surface of the screw barrel, the outer wall of the transmission rod fits the inner wall of the shell, the transmission rod and the shell are slidably connected, and the connecting plate, cylinder and clamping plate are provided in two groups, and the connecting plate, cylinder and clamping plate are symmetrically distributed about the central axis of the transmission rod.

[0014] Preferably, a limiting mechanism is provided inside the heat insulation board, a handle is fixed to the outside of the shell, a heat uniforming mechanism is provided at one end of the handle, and a water inlet is installed at the top of the shell.

[0015] Preferably, the limiting mechanism includes a first connecting rod, a heat insulation baffle and a torsion spring. The first connecting rod is rotatably connected to the inside of the heat insulation baffle. The bottom end of the first connecting rod is fixed with the heat insulation baffle. The outside of the first connecting rod is installed with a torsion spring. The torsion spring is provided in two groups. The torsion springs are symmetrically distributed about the central axis of the first connecting rod. The torsion spring is used to squeeze the first connecting rod and the heat insulation baffle and keep them rotating inward.

[0016] Preferably, the heat uniforming mechanism includes a second servo motor, a first gear and a first mixing rod, the second servo motor is fixed inside the handle, the rotating end of the second servo motor is fixed with the first gear, the outside of the first gear is fixed with the first mixing rod, the bottom end of the first gear is meshed and connected with the second gear, the outside of the second gear is fixed with a second connecting rod, the outside of the second connecting rod is fixed with a third gear, the top end of the third gear is meshed and connected with the fourth gear, and the outside of the fourth gear is fixed with the second mixing rod.

[0017] Preferably, the outer wall of the first mixing rod is provided with several groups of stirring blades, and the stirring blades are distributed at equal intervals about the central axis of the first mixing rod. The second connecting rod is rotatably connected to the shell, and the second gear and the third gear are symmetrically distributed about the central axis of the second connecting rod.

[0018] Preferably, the storage cover is rotatably connected to the outside of the shell, the heating cover is rotatably connected to the outside of the shell, several groups of heating tubes are arranged inside the heating cover, a slide groove is opened at the top of the shell, the second magnetic block and the shell are slidably connected, and two groups of water inlets are provided, and the water inlets are symmetrically distributed about the central axis of the shell.

[0019] Compared with the prior art, the present invention has the following beneficial effects:

[0020] The present invention cooperates with structures such as a first connecting rod, a heat-insulating baffle, and a torsion spring so that when the device pushes the second magnetic block to move the storage box, the storage box squeezes the heat-insulating baffle, causing the heat-insulating baffle to rotate upward. After the storage box passes from the low-temperature storage area into the resuscitation area, the torsion spring resets the heat-insulating baffle, thereby re-isolating the low-temperature storage area and the resuscitation area, thereby facilitating the division of the device into the low-temperature storage area and the resuscitation area, and thus quickly resuscitating the strains that need to be revived without having to take out the strains.

[0021] The present invention cooperates with structures such as a heat exchange shell, a refrigerator, and a reset groove, so that the device can be equipped with heat-conducting materials at the connection between the heat exchange shell and the shell, and other positions of the shell are set with heat-insulating materials. At this time, when the refrigerator starts condensing and keeping warm, the storage box between the heat exchange shells and the bacteria inside it are at a low temperature and are then preserved, thereby achieving the purpose of facilitating the device to preserve the bacteria at a low temperature.

[0022] The present invention cooperates with structures such as a storage box, a slot, and a second magnetic block, so that the device can prevent the leakage of the bacteria by placing the bacteria in the storage box and aligning the box lid and the storage box. The first magnetic block and the second magnetic block attract each other, so that when the second magnetic block moves, it can drive the first magnetic block to move, and then drive the entire storage box to move, thereby achieving the purpose of facilitating the user to move the bacteria from the low-temperature storage area to the recovery area without opening the device.

[0023] The present invention cooperates with structures such as a second servo motor, a first gear, and a first mixing rod, so that the device can start the second servo motor to drive the first gear to rotate, thereby driving the first mixing rod to rotate, and driving the second gear, the second connecting rod and the third gear to rotate, so that the third gear drives the fourth gear and the second mixing rod to rotate. When the first mixing rod and the second mixing rod rotate in the resuscitation area, they can stir the hot water, thereby achieving the purpose of facilitating the device to improve the efficiency of bacterial resuscitation. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 2 It is a schematic diagram of the overall rear view structure of the present invention;

[0026] Figure 3 It is a schematic diagram of the overall top view of the structure of the present invention;

[0027] Figure 4 It is a schematic diagram of the overall internal structure of the present invention;

[0028] Figure 5 It is a schematic diagram of the storage mechanism structure of the present invention;

[0029] Figure 6 This is a schematic structural diagram of the condensation mechanism of the present invention;

[0030] Figure 7 It is a structural schematic diagram of the resuscitation mechanism of the present invention;

[0031] Figure 8 Schematic diagram of the limiting mechanism structure of the present invention;

[0032] Figure 9 It is a schematic structural diagram of the heat uniformity mechanism of the present invention.

[0033] In the figure: 1. Shell; 2. Storage cover; 3. Heating cover; 4. Condensing mechanism; 401. Heat exchange shell; 402. Refrigerator; 403. Reset slot; 404. Insertion hole; 405. Observation window; 5. Storage mechanism; 501. Storage box; 502. Slot; 503. Box cover; 504. Insertion plate; 505. First magnetic block; 6. Second magnetic block; 7. Recovery mechanism; 701. Support frame; 702. Screw barrel; 703. First servo motor; 704. Transmission rod; 705. Transmission 706, connecting plate; 707, cylinder; 708, clamping plate; 8, heat insulation plate; 9, limiting mechanism; 901, first connecting rod; 902, heat insulation baffle; 903, torsion spring; 10, uniform heating mechanism; 1001, second servo motor; 1002, first gear; 1003, first mixing rod; 1004, second gear; 1005, second connecting rod; 1006, third gear; 1007, fourth gear; 1008, second mixing rod; 11, handle; 12, water inlet. DETAILED DESCRIPTION

[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0035] like Figures 1 to 9 As shown, the present invention provides a low-temperature preservation and rapid recovery device for edible fungi, comprising a shell 1, one end of the shell 1 being movably connected to a storage cover 2, one end of the shell 1 being movably connected to a heating cover 3, a condensing mechanism 4 being sleeved on the outside of the shell 1, a preservation mechanism 5 being provided inside the shell 1, a second magnetic block 6 being installed at the top of the shell 1, a recovery mechanism 7 being installed at the top of the shell 1, a heat insulation plate 8 being fixed inside the shell 1, a limiting mechanism 9 being provided inside the heat insulation plate 8, a handle 11 being fixed on the outside of the shell 1, a heat uniforming mechanism 10 being provided at one end of the handle 11, a water injection port 12 being installed at the top of the shell 1, the storage cover 2 being rotatably connected to the outside of the shell 1, the heating cover 3 being rotatably connected to the outside of the shell 1, a plurality of heating pipes being provided inside the heating cover 3, a slide groove being provided at the top of the shell 1, the second magnetic block 6 and the shell 1 being slidably connected, two groups of water injection ports 12 being provided, and the water injection ports 12 being symmetrically distributed about the central axis of the shell 1.

[0036] By adopting the above solution, by closing the heating cover 3 and then starting the heating pipe, the hot water inside the resuscitation area can be kept warm, thereby preventing the resuscitation efficiency from being affected due to a decrease in the hot water temperature.

[0037] like Figures 1 to 6As shown, the condensing mechanism 4 includes a heat exchange shell 401, a refrigerator 402 and a reset groove 403. The heat exchange shell 401 is fixed to the outside of the shell 1, and the refrigerator 402 is installed inside the heat exchange shell 401. The top of the heat exchange shell 401 is provided with a reset groove 403, the top of the heat exchange shell 401 is provided with a socket 404, and the top of the heat exchange shell 401 is provided with an observation window 405. The refrigerator 402 is provided in several groups, and the refrigerators 402 are distributed at equal intervals. The reset grooves 403 are provided in several groups, and the reset grooves 403 are distributed at equal intervals about the central axis of the heat exchange shell 401.

[0038] The above scheme is adopted: a heat-conducting material is provided at the connection between the heat exchange shell 401 and the shell 1, and other positions of the shell 1 are provided with heat-insulating materials. At this time, when the refrigerator 402 starts condensing and keeping warm, the storage box 501 located between the heat exchange shell 401 and the bacteria strains therein are at a low temperature and thus preserved. After the storage box 501 is set inside the shell 1, each group of storage boxes 501 is set at the bottom of the reset groove 403 through the slide groove, and the second magnetic block 6 is placed in the reset groove 403, and the position of each group of storage boxes 501 is sucked and positioned. After each group of storage boxes 501 is placed inside the device for storage, the mark card is inserted into the observation window 405 through the jack 404. The user can observe the mark card through the observation window 405 and then record the type of bacteria strains stored in each group of storage boxes 501.

[0039] like Figures 1 to 5 As shown, the storage mechanism 5 includes a storage box 501 and a slot 502. The storage box 501 is arranged inside the shell 1. The top of the storage box 501 is provided with a slot 502. The top of the storage box 501 is provided with a box cover 503. The bottom end of the box cover 503 is fixed with an insert plate 504. The top of the box cover 503 is fixed with a first magnetic block 505. The storage box 501 is provided with several groups. The slot 502 and the insert plate 504 are snap-connected. The bottom end of the storage box 501 is provided with a slider. The bottom end of the inside of the shell 1 is provided with a slide groove. The storage box 501 and the shell 1 are slidably connected.

[0040] The above solution is adopted: by placing the bacterial strain into the storage box 501, aligning the box cover 503 and the storage box 501 and buckling them together, thereby preventing the bacterial strain from leaking, and the first magnetic block 505 and the second magnetic block 6 attract each other, so that when the second magnetic block 6 moves, it can drive the first magnetic block 505 to move, and then drive the storage box 501 to move as a whole, and because the bottom of the storage box 501 is slidably connected to the shell 1, the storage box 501 can only move to a limited position, thereby ensuring that the bacterial strains that need to be revived enter the resuscitation area.

[0041] like Figures 1 to 7As shown, the resuscitation mechanism 7 includes a support frame 701, a screw barrel 702 and a first servo motor 703. The support frame 701 is fixed to the top of the housing 1. The screw barrel 702 is rotatably connected to the interior of the support frame 701. The first servo motor 703 is fixed to the outside of the support frame 701. The interior of the housing 1 is movably connected to a transmission rod 704. The bottom end of the transmission rod 704 is fixed to a transmission bar 705. The outside of the transmission rod 704 is fixed to a connecting plate 706. The outside of the connecting plate 706 is fixed to a cylinder. 707, a clamping plate 708 is fixed to the extending end of the cylinder 707, a screw barrel 702 is fixed to the rotating end of the first servo motor 703, a transmission bar 705 is arranged inside the thread on the surface of the screw barrel 702, the outer wall of the transmission rod 704 fits the inner wall of the shell 1, the transmission rod 704 and the shell 1 are slidably connected, and two groups of connecting plates 706, cylinders 707 and clamping plates 708 are provided, and the connecting plates 706, cylinders 707 and clamping plates 708 are symmetrically distributed about the central axis of the transmission rod 704.

[0042] The above scheme is adopted: after the storage box 501 that needs to be revived is moved between the two sets of clamping plates 708, the storage box 501 is clamped by starting the connecting plates 706 on both sides. At this time, the first servo motor 703 is started to drive the screw barrel 702 to rotate, so that the transmission rod 704 contacts the screw barrel 702 thread through the transmission bar 705, and moves following the movement of the screw barrel 702 thread, thereby driving the transmission rod 704 to reciprocate, so that the storage box 501 can be more evenly contacted with the hot water in the resuscitation area during the reciprocating motion, and can shake the bacteria inside the storage box 501 to stimulate the activity of the bacteria, thereby improving the efficiency of resuscitation.

[0043] like Figures 1 to 8 As shown, the limiting mechanism 9 includes a first connecting rod 901, a heat insulation baffle 902 and a torsion spring 903. The first connecting rod 901 is rotatably connected to the inside of the heat insulation plate 8. The bottom end of the first connecting rod 901 is fixed with the heat insulation baffle 902. The outside of the first connecting rod 901 is installed with a torsion spring 903. There are two groups of torsion springs 903. The torsion springs 903 are symmetrically distributed about the central axis of the first connecting rod 901. The torsion springs 903 are used to squeeze the first connecting rod 901 and the heat insulation baffle 902 and keep them rotating inward.

[0044] The above solution is adopted: insulation materials are provided on the outer wall of the insulation plate 8 and the outer wall of the insulation baffle 902, which can isolate the temperature of the low-temperature storage area and the recovery area so that they will not be affected. When the storage box 501 is moved by pushing the second magnetic block 6, the storage box 501 squeezes the insulation baffle 902, causing the insulation baffle 902 to rotate upward, so that after the storage box 501 passes from the low-temperature storage area into the recovery area, the torsion spring 903 resets the insulation baffle 902, thereby re-isolating the low-temperature storage area and the recovery area.

[0045] like Figures 1 to 9 As shown, the heat uniforming mechanism 10 includes a second servo motor 1001, a first gear 1002 and a first mixing rod 1003. The second servo motor 1001 is fixed inside the handle 11. The rotating end of the second servo motor 1001 is fixed with the first gear 1002. The first mixing rod 1003 is fixed to the outside of the first gear 1002. The bottom end of the first gear 1002 is meshed with the second gear 1004. The outside of the second gear 1004 is fixed with a second connecting rod 1005. The second connecting rod 1005 is fixed to the outside of the second gear 1004. 05 is fixed to the outside of the third gear 1006, the top of the third gear 1006 is meshed with the fourth gear 1007, the outside of the fourth gear 1007 is fixed to the second mixing rod 1008, the outer wall of the first mixing rod 1003 is provided with several groups of stirring blades, and the stirring blades are evenly spaced about the central axis of the first mixing rod 1003, the second connecting rod 1005 is rotatably connected to the shell 1, and the second gear 1004 and the third gear 1006 are symmetrically distributed about the central axis of the second connecting rod 1005.

[0046] The above solution is adopted: hot water is added to the resuscitation area through the water inlet 12, so that the hot water contacts the storage box 501, thereby improving the resuscitation efficiency, and the second servo motor 1001 is started to drive the first gear 1002 to rotate, thereby driving the first mixing rod 1003 to rotate, and driving the second gear 1004, the second connecting rod 1005 and the third gear 1006 to rotate, so that the third gear 1006 drives the fourth gear 1007 and the second mixing rod 1008 to rotate. The first mixing rod 1003 and the second mixing rod 1008 can stir the hot water when rotating in the resuscitation area, thereby increasing the contact area between the storage box 501 and the hot water, thereby improving the resuscitation efficiency.

[0047] The working principle and use process of the present invention are as follows: by placing the bacterial strains into the storage box 501, aligning the box cover 503 and the storage box 501 and buckling them, the bacterial strains can be prevented from leaking, and the first magnetic block 505 and the second magnetic block 6 attract each other, so that when the second magnetic block 6 moves, it can drive the first magnetic block 505 to move, thereby driving the storage box 501 to move as a whole, and because the bottom of the storage box 501 is slidably connected to the shell 1, the storage box 501 can only move to a limited position, thereby ensuring that the bacterial strains that need to be revived enter the revivification area, and a heat-conducting material is provided at the connection between the heat exchange shell 401 and the shell 1, and the other positions of the shell 1 are provided with a heat-insulating material. At this time, when the refrigerator 402 starts condensing and keeping warm, the storage box 501 located between the heat exchange shell 401 403 , and the second magnetic block 6 is placed in the reset groove 403 to absorb and locate the position of each group of storage boxes 501. After each group of storage boxes 501 is placed inside the device for storage, the mark card is inserted into the observation window 405 through the jack 404. The user can observe the mark card through the observation window 405 and then record the type of bacteria stored in each group of storage boxes 501. The outer wall of the insulation board 8 and the outer wall of the insulation baffle 902 are provided with insulation materials, which can isolate the temperature of the low-temperature storage area and the recovery area so that they will not be affected. When the second magnetic block 6 is moved to move the storage box 501, the storage box 501 squeezes the heat insulation baffle 902, causing the heat insulation baffle 902 to rotate upward, so that after the storage box 501 passes from the low-temperature storage area into the resuscitation area, the torsion spring 903 resets the heat insulation baffle 902, thereby isolating the low-temperature storage area and the resuscitation area again, and adding hot water to the resuscitation area through the water inlet 12 makes the hot water contact with the storage box 501, thereby improving the resuscitation efficiency, and starting the second servo motor 1001 to drive the first gear 1002 to rotate, thereby driving the first mixing rod 1003 to rotate, and driving the second gear 1004, the second connecting rod 1005 and the third gear 1006 to rotate, so that the third gear 1006 drives the fourth gear 1007 and the second mixing rod 1008 to rotate, and the first mixing rod 1008 is rotated. When the combining rod 1003 and the second mixing rod 1008 rotate in the resuscitation zone, they can stir the hot water, thereby increasing the contact area between the storage box 501 and the hot water, thereby improving the resuscitation efficiency. After the storage box 501 that needs to be resuscitated is moved between the two sets of clamping plates 708, the storage box 501 is clamped by starting the connecting plates 706 on both sides. At this time, the first servo motor 703 is started to drive the screw barrel 702 to rotate, so that the transmission rod 704 contacts the screw barrel 702 thread through the transmission bar 705, and then moves along with the movement of the screw barrel 702 thread, thereby driving the transmission rod 704 to reciprocate, so that the storage box 501 can be more evenly in contact with the hot water in the resuscitation zone during the reciprocating motion, and the bacteria inside the storage box 501 can be shaken.Stimulate the activity of the bacteria, thereby improving the efficiency of recovery. By closing the heating cover 3 and starting the heating pipe, the hot water inside the recovery area can be kept warm, thereby preventing the hot water temperature from decreasing and affecting the recovery efficiency.

[0048] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0049] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A device for low-temperature preservation and rapid recovery of edible fungi, comprising a housing (1), characterized in that: One end of the shell (1) is movably connected to a storage cover (2), and the other end of the shell (1) is movably connected to a heating cover (3). The outer shell (1) is provided with a condensing mechanism (4), and the interior of the shell (1) is provided with a preservation mechanism (5). The top end of the shell (1) is provided with a second magnetic block (6), and the top end of the shell (1) is provided with a recovery mechanism (7). The interior of the shell (1) is fixed with a heat insulation board (8) to isolate the temperature of the low-temperature preservation area and the recovery area. The condensing mechanism (4) comprises a heat exchange shell (401), a refrigerator (402) and a reset groove (403); the heat exchange shell (401) is fixed to the outside of the housing (1); the refrigerator (402) is installed inside the heat exchange shell (401); and the reset groove (403) is provided at the top end of the heat exchange shell (401); The storage mechanism (5) includes a storage box (501) and a slot (502), the storage box (501) is arranged inside the shell (1), the top of the storage box (501) is provided with a slot (502), the top of the storage box (501) is provided with a box cover (503), the bottom of the box cover (503) is fixed with a plug board (504), the top of the box cover (503) is fixed with a first magnetic block (505), the storage box (501) is provided with a plurality of groups, the slot (502) and the plug board (504) are snap-connected, the bottom of the storage box (501) is provided with a slider, the bottom of the shell (1) is provided with a slide groove, and the storage box (501) and the shell (1) are slidably connected; The resuscitation mechanism (7) includes a support frame (701), a screw barrel (702) and a first servo motor (703), wherein the support frame (701) is fixed to the top of the housing (1), the interior of the support frame (701) is rotatably connected to the screw barrel (702), the exterior of the support frame (701) is fixed to the first servo motor (703), the interior of the housing (1) is movably connected to a transmission rod (704), the bottom end of the transmission rod (704) is fixed to a transmission bar (705), the exterior of the transmission rod (704) is fixed to a connecting plate (706), the exterior of the connecting plate (706) is fixed to a cylinder (703), and the interior of the housing (1) is movably connected to a transmission rod (704), the bottom end of the transmission rod (704) is fixed to a transmission bar (705), the exterior of the transmission rod (704) is fixed to a connecting plate (706), and the exterior of the connecting plate (706) is fixed to a cylinder (703). 07), a clamping plate (708) is fixed to the extended end of the cylinder (707), a screw barrel (702) is fixed to the rotating end of the first servo motor (703), the transmission bar (705) is arranged inside the thread on the surface of the screw barrel (702), the outer wall of the transmission rod (704) is in contact with the inner wall of the shell (1), the transmission rod (704) and the shell (1) are slidably connected, and two groups of the connecting plates (706), the cylinder (707) and the clamping plates (708) are provided, and the connecting plates (706), the cylinder (707) and the clamping plates (708) are symmetrically distributed about the central axis of the transmission rod (704); A limiting mechanism (9) is provided inside the heat insulation board (8), and the limiting mechanism (9) comprises a first connecting rod (901), a heat insulation baffle (902) and a torsion spring (903). The first connecting rod (901) is rotatably connected to the inside of the heat insulation board (8), the heat insulation baffle (902) is fixed to the bottom end of the first connecting rod (901), and a torsion spring (903) is installed outside the first connecting rod (901). Two groups of torsion springs (903) are provided, and the torsion springs (903) are symmetrically distributed about the central axis of the first connecting rod (901). The torsion springs (903) are used to squeeze the first connecting rod (901) and the heat insulation baffle (902) and keep them rotating inward.

2. The edible fungus strain low temperature storage and rapid recovery device according to claim 1, characterized in that: The top of the heat exchange shell (401) is provided with a socket (404), the top of the heat exchange shell (401) is provided with an observation window (405), the refrigerator (402) is provided in a plurality of groups, the refrigerators (402) are distributed at equal intervals, and the reset grooves (403) are provided in a plurality of groups, the reset grooves (403) are distributed at equal intervals about the central axis of the heat exchange shell (401).

3. The edible fungus low-temperature storage and rapid recovery device according to claim 1, characterized in that: A handle (11) is fixed to the outside of the shell (1), a heat-uniform mechanism (10) is provided at one end of the handle (11), and a water inlet (12) is installed at the top end of the shell (1).

4. The device for low-temperature storage and rapid recovery of edible fungi according to claim 3, characterized in that: The heat uniforming mechanism (10) comprises a second servo motor (1001), a first gear (1002) and a first mixing rod (1003); the second servo motor (1001) is fixed inside the handle (11); the first gear (1002) is fixed to the rotating end of the second servo motor (1001); the first mixing rod (1003) is fixed to the outside of the first gear (1002); the bottom end of the first gear (1002) is meshedly connected to the second gear (1004); the second connecting rod (1005) is fixed to the outside of the second gear (1004); the third gear (1006) is fixed to the outside of the second connecting rod (1005); the top end of the third gear (1006) is meshedly connected to the fourth gear (1007); and the second mixing rod (1008) is fixed to the outside of the fourth gear (1007).

5. The device for low-temperature storage and rapid recovery of edible fungi according to claim 4, characterized in that: The outer wall of the first mixing rod (1003) is provided with a plurality of groups of stirring blades, and the stirring blades are distributed at equal intervals about the central axis of the first mixing rod (1003); the second connecting rod (1005) is rotatably connected to the housing (1); and the second gear (1004) and the third gear (1006) are symmetrically distributed about the central axis of the second connecting rod (1005).

6. The edible fungus strain low temperature storage and rapid recovery device according to claim 3, characterized in that: The storage cover (2) is rotatably connected to the outside of the shell (1), the heating cover (3) is rotatably connected to the outside of the shell (1), a plurality of groups of heating tubes are arranged inside the heating cover (3), a sliding groove is provided at the top of the shell (1), the second magnetic block (6) and the shell (1) are slidably connected, and two groups of water injection ports (12) are provided, and the water injection ports (12) are symmetrically distributed about the central axis of the shell (1).

Citation Information

Patent Citations

  • Device for freezing and preserving strains

    CN214654888U

  • Edible fungus strain preservation equipment

    CN220088160U