Edible mushroom inoculator

By using a servo motor-driven insertion rod system and guide rail structure, the problem of low efficiency in existing edible fungi inoculators has been solved, realizing automated insertion and depth adjustment, thus improving insertion efficiency and applicability.

CN223626575UActive Publication Date: 2025-12-05海林市职业教育中心
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Patent Information

Application Number
CN202422802636.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-18
Publication Date
2025-12-05
Estimated Expiration
2034-11-18

AI Technical Summary

Technical Problem

Existing edible mushroom inoculation devices are inefficient, require a large amount of manual insertion, and are difficult to adjust to accommodate culture bags of different sizes.

Method used

The insertion system, driven by a servo motor, combined with a miniature electric telescopic rod and a guide rail structure, enables automatic insertion and depth adjustment. The microbial inoculum is pushed through the hole opened by the soil-breaking rod.

Benefits of technology

It achieves automated insertion, reducing workload, and can quickly adjust the insertion depth to adapt to various culture bags, thus improving insertion efficiency and applicability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an edible fungus inoculator, which relates to the technical field of edible fungus inoculation and comprises a fungus storage box, supporting rods are fixed at the bottoms of two sides of the fungus storage box, a servo motor is fixed at one end of each supporting rod, an inserting rod is slidably connected to one side of the bottom of the fungus storage box, and a baffle is fixed at the top of one end of each inserting rod. A connecting rod is fixed to the middle of one end of the inserting rod, and a guide rail is fixed to one end of the connecting rod. According to the device, strains are poured into a strain storage box, a servo motor drives a guide rail to move, then an inserting rod and a soil breaking rod are driven to move, the soil breaking rod pushes away soil in a culture bag to generate a hole, the inserting rod can enter the culture bag conveniently, and after the inserting rod enters the culture bag, a miniature electric telescopic rod drives a push plate to push the strains in the inserting rod outwards; the strain is pushed into the culture bag, and an operator only needs to place the culture bag on the moving side of the inserting rod in the past, so that the effect of reducing the workload by inserting through a machine is achieved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to edible fungus inoculation technical field, more specifically, especially edible fungus inoculator. BACKGROUND

[0002] Edible fungus is more and more loved by people with its extremely high nutritional value and delicious taste.The process of artificial cultivation of edible fungus is the cultivation of edible fungus strain stage, edible fungus cultivation production bag making stage and inoculation stage, and the workload of inoculation stage is relatively large, and in order to facilitate inoculation, inoculator is generally used, and the culture bag is inserted into the culture bag by inserting tube, and the culture bag is inserted into the culture bag.

[0003] The edible fungus inoculator with the publication number CN220712332U is disclosed, although the top rod can be raised and lowered, when the inoculation cylinder is inserted into the culture medium, it is in a closed state, prevents the culture medium from entering the inner cavity of the inoculation cylinder and causes blockage, and the rising of the top rod can facilitate the injection of the culture medium from the lower part of the inoculation cylinder, and the use is convenient and efficient.

[0004] Based on the above, the inventor finds that the following problems exist: But the inoculator adopts manual insertion, and the efficiency is low, and the workload is large for long time use, and the inoculation personnel are tired, and the existing part of inoculator adopts the auxiliary insertion function, but these inoculators with auxiliary insertion function do not have the function of adjusting the insertion depth, so that the insertion depth is still the same when using different size culture bags.

[0005] Therefore, in view of the above, the existing structure and defects are improved, and the edible fungus inoculator is provided, so as to achieve the purpose of more practical value. INVENTION CONTENTS

[0006] In order to solve the above technical problems, the utility model provides edible fungus inoculator, so as to solve the problem of large workload of manual insertion and difficult control of insertion depth of machine insertion.

[0007] The utility model provides edible fungus inoculator, which is achieved by the following specific technical means:

[0008] The utility model provides an edible fungus inoculator, including the fungus storage box, both sides bottom of fungus storage box are fixed with support rod, one end of support rod is fixed with servo motor, one side bottom of fungus storage box is connected with the plug -in rod of sliding, the top of one end of plug -in rod is fixed with baffle, the middle of one end of plug -in rod is fixed with connecting rod, one end of connecting rod is fixed with guide rail, the power output of servo motor is fixed with rotating shaft, the top of rotating shaft is fixed with sleeve rod, the inside movable sleeve of sleeve rod is connected with telescopic link, the top of telescopic link is fixed with sliding block, both sides of plug -in rod inner wall are fixed with baffle, the bottom of plug -in rod inner wall is fixed with micro - electric telescopic link, the top of micro - electric telescopic link is fixed with push -plate.

[0009] Further, the bottom inner wall of the fungus storage box is provided with a chute, and the top of the plug-in rod is provided with a slide rod on both sides, and the slide rod is slidably connected with the chute.

[0010] Further, the bottom of the fungus storage box is provided with a discharge port, and the discharge port is arranged in an arc shape, and the top of the baffle is attached to the bottom of the fungus storage box.

[0011] Further, the sliding block is slidably connected with the guide rail, the length of the sleeve rod is equal to the length of the telescopic link, and the sum of the lengths of the sleeve rod and the telescopic link is equal to half of the length of the inner wall of the guide rail.

[0012] Further, the bottom of the sleeve rod is threadedly connected with a fastening bolt, the fastening bolt penetrates through the sleeve rod and is in contact with the bottom of the outer wall of the telescopic link.

[0013] Further, the other end of the plug-in rod is provided with a soil breaking rod in the middle, and the soil breaking rod is arranged in a conical shape.

[0014] Further, the width of the push plate is adapted to the spacing of the two baffles, and the top of the plug-in rod is provided with a discharge port.

[0015] Compared with the prior art, the utility model has the following beneficial effects:

[0016] 1. In the utility model, the fungus is poured into the fungus storage box, the guide rail is moved by the servo motor, the plug-in rod and the soil breaking rod are moved, the soil breaking rod pushes away the soil in the culture bag to form a hole for the plug-in rod to enter, after the plug-in rod enters the culture bag, the micro - electric telescopic link drives the push plate to push the fungus in the plug-in rod outward, and the fungus is pushed into the culture bag, and the previous operator only needs to place the culture bag on one side of the plug-in rod movement, so as to realize the effect of machine insertion and reduce the work load.

[0017] 2. The utility model discloses a rotating shaft is driven to rotate through servo motor, and then drives sleeve rod and telescopic rod to carry out circular motion, and the slider slides in the inside guide rail, and through the cooperation of slider and guide rail, the circular motion of slider is converted into the horizontal direction reciprocating movement of guide rail, and the spacing of slider and rotating shaft is the maximum spacing when guide rail moves, and the spacing of the both ends of sleeve rod and telescopic rod can be adjusted, and the motion track length of the plug-in rod is adjusted, thereby the effect that the insertion depth can be adjusted quickly and is suitable for various length culture bags is achieved. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is the whole structure schematic diagram of the utility model.

[0019] Figure 2 It is the schematic diagram of plug-in rod and servo motor of the utility model.

[0020] Figure 3 It is Figure 3 A part structure enlarged schematic diagram of

[0021] Figure 4 It is the structure schematic diagram of plug-in rod inside and baffle of the utility model.

[0022] The corresponding relationship of component name and drawing number in the drawing is:

[0023] 1, store bacteria box, 2, support rod, 3, servo motor, 4, slide rod, 5, baffle, 6, plug-in rod, 7, partition, 8, micro electric telescopic rod, 9, push plate, 10, break soil rod, 11, connecting rod, 12, guide rail, 13, rotating shaft, 14, sleeve rod, 15, telescopic rod, 16, slider, 17, fastening bolt. DETAILED DESCRIPTION

[0024] The embodiment of the utility model is further described in detail below in combination with the drawings and examples. The following examples are used to illustrate the utility model, but cannot be used to limit the scope of the utility model.

[0025] In the description of the utility model, unless otherwise specified, the meaning of "multiple" is two or more than two; in addition, the terms "first", "second", "third" and the like are only used for the purpose of description, and cannot be understood as indicating or implying relative importance. EMBODIMENT

[0026] As shown in the accompanying Figure 1 to the accompanying Figure 4 :

[0027] The utility model provides edible fungus inoculator, including the fungus storage box 1, both sides bottom of fungus storage box 1 are fixed with support rod 2, one end of support rod 2 is fixed with servo motor 3, one side of fungus storage box 1 bottom is slidably connected with the plug rod 6, the top of one end of plug rod 6 is fixed with the baffle 5, the middle of one end of plug rod 6 is fixed with the connecting rod 11, one end of connecting rod 11 is fixed with the guide rail 12, the power output of servo motor 3 is fixed with the rotating shaft 13, the top of rotating shaft 13 is fixed with the sleeve rod 14, the inside of sleeve rod 14 is movably sleeved with the telescopic rod 15, the top of telescopic rod 15 is fixed with the sliding block 16, both sides of plug rod 6 inner wall are fixed with the partition 7, the bottom of plug rod 6 inner wall is fixed with the micro electric telescopic rod 8, the top of micro electric telescopic rod 8 is fixed with the push plate 9.

[0028] Wherein, the fungus storage box 1 bottom inner wall is provided with a chute, the top of both sides of the plug rod 6 is fixed with a sliding rod 4, the sliding rod 4 is slidably connected with the chute, by sliding the sliding rod 4 inside the chute, the fungus storage box 1 limits the plug rod 6, so that the plug rod 6 can only move in the horizontal direction.

[0029] Wherein, the fungus storage box 1 bottom is provided with a discharge port, the discharge port is arranged in an arc shape, the top of the baffle 5 is attached to the bottom of the fungus storage box 1, the fungus inside the fungus storage box 1 can fall from the discharge port, and fall inside the plug rod 6, when the baffle 5 moves to the discharge port 1, the discharge port of the fungus storage box 1 will be blocked at this time.

[0030] Wherein, the sliding block 16 is slidably connected with the guide rail 12, the length of the sleeve rod 14 is equal to the length of the telescopic rod 15, the sum of the length of the sleeve rod 14 and the telescopic rod 15 is equal to half of the length of the inner wall of the guide rail 12, the rotating shaft 13 is driven to rotate by the servo motor 12, and then the sleeve rod 14 and the telescopic rod 15 are driven to circularly move, and the sliding block 16 slides inside the guide rail 12, the circular motion of the sliding block 16 is converted into the horizontal reciprocating motion of the guide rail 12 by the cooperation of the sliding block 16 and the guide rail 12, and the distance between the sliding block 16 and the rotating shaft 13 is the maximum distance when the guide rail 12 moves.

[0031] Wherein, the bottom of the sleeve rod 14 is threadedly connected with a fastening bolt 17, the fastening bolt 17 penetrates the sleeve rod 14 and touches the bottom of the outer wall of the telescopic rod 15 at the top, and the position of the telescopic rod 15 is adjusted and positioned by using the fastening bolt 17.

[0032] Wherein, the other end of the plug rod 6 is fixed with a soil breaking rod 10 in the middle, the soil breaking rod 10 is arranged in a conical shape, the guide rail 12 is driven to move by the servo motor 12, and then the plug rod 6 and the soil breaking rod 10 are driven to move, the soil breaking rod 10 pushes away the soil in the culture bag to form a hole for the plug rod 6 to enter.

[0033] The width of the push plate 9 is matched with the interval of the two partition plates 7, and a discharging port is formed at the top of the inserting rod 6, after the inserting rod 6 enters the culture bag, the miniature electric telescopic rod 8 drives the push plate 9 to push the bacteria in the inserting rod 6 outward, and the bacteria are pushed into the culture bag, when the inserting rod 6 moves to the bottom of the bacteria storage box 1, at this time, the miniature electric telescopic rod 8 is shortened, so that there is space in the inserting rod 6 to store the bacteria falling from the bacteria storage box 1.

[0034] The specific use mode and effect of the embodiment are as follows:

[0035] In the utility model, first, the bacteria are poured into the bacteria storage box 1, then the depth of the inserting rod 6 is adjusted according to the length of the culture bag, the telescopic rod 15 is moved in the sleeve rod 14, after the position of the telescopic rod 15 is adjusted, the telescopic rod 15 is positioned by using the fastening bolt 17, then the servo motor 12 is started to drive the rotating shaft 13 to rotate, and then the sleeve rod 14 and the telescopic rod 15 are driven to move in a circle, the sliding block 16 slides in the guide rail 12, the circular motion of the sliding block 16 is converted into the horizontal reciprocating motion of the guide rail 12 by the cooperation of the sliding block 16 and the guide rail 12, the distance between the sliding block 16 and the rotating shaft 13 is the maximum distance when the guide rail 12 moves, the guide rail 12 is driven to move by the servo motor 12, and then the inserting rod 6 and the soil breaking rod 10 are driven to move, the soil breaking rod 10 pushes away the soil in the culture bag to form a hole for the inserting rod 6 to enter, after the inserting rod 6 enters the culture bag, the miniature electric telescopic rod 8 drives the push plate 9 to push the bacteria in the inserting rod 6 outward, and the bacteria are pushed into the culture bag, when the inserting rod 6 moves to the bottom of the bacteria storage box 1, at this time, the miniature electric telescopic rod 8 is shortened, so that there is space in the inserting rod 6 to store the bacteria falling from the bacteria storage box 1, and the previous operator only needs to place the culture bag on one side of the motion of the inserting rod 6.

[0036] The embodiments of the utility model are given for example and description, and are not exhaustive or limit the utility model to the disclosed forms. Many modifications and changes are obvious to those skilled in the art. The embodiments are selected and described in order to better illustrate the principles and practical application of the utility model, and enable those skilled in the art to understand the utility model so as to design various embodiments with various modifications suitable for specific purposes.

Claims

1. An edible fungus inoculator, comprising a fungus storage box (1), both sides of the bottom of the fungus storage box (1) are fixed with support rods (2), one end of the support rods (2) is fixed with a servo motor (3), characterized in that: The bottom side of the bacteria storage box (1) is slidably connected with a plug rod (6), one end of the plug rod (6) is fixedly connected with a baffle (5), one end of the plug rod (6) is fixedly connected with a connecting rod (11), one end of the connecting rod (11) is fixedly connected with a guide rail (12), the power output end of the servo motor (3) is fixedly connected with a rotating shaft (13), the top of the rotating shaft (13) is fixedly connected with a sleeve rod (14), the inside of the sleeve rod (14) is movably sleeved with an extension rod (15), the top of the extension rod (15) is fixedly connected with a sliding block (16), the inner walls of the plug rod (6) are fixedly connected with baffles (7) on both sides, the inner wall bottom of the plug rod (6) is fixedly connected with a micro electric telescopic rod (8), the top of the micro electric telescopic rod (8) is fixedly connected with a push plate (9).

2. The edible mushroom inoculator of claim 1, wherein: The inner wall of the bottom of the bacteria storage box (1) is provided with a sliding groove, the top of the plug rod (6) is fixedly connected with a sliding rod (4) on both sides, and the sliding rod (4) is slidably connected with the sliding groove.

3. The edible mushroom inoculator of claim 1, wherein: The bottom of the bacteria storage box (1) is provided with a discharge port, the discharge port is arranged in an arc shape, and the top of the baffle (5) is attached to the bottom of the bacteria storage box (1).

4. The edible mushroom inoculator of claim 1, wherein: The sliding block (16) is slidably connected with the guide rail (12), the length of the sleeve rod (14) is equal to the length of the extension rod (15), and the sum of the lengths of the sleeve rod (14) and the extension rod (15) is equal to half of the length of the inner wall of the guide rail (12).

5. The edible mushroom inoculator of claim 1, wherein: The bottom of the sleeve rod (14) is threadedly connected with a fastening bolt (17), the fastening bolt (17) penetrates the sleeve rod (14) and is in contact with the bottom of the outer wall of the extension rod (15).

6. The edible mushroom inoculator of claim 1, wherein: The other end of the plug rod (6) is fixedly connected with a soil breaking rod (10), and the soil breaking rod (10) is arranged in a conical shape.

7. The edible mushroom inoculator of claim 1, wherein: The width of the push plate (9) is adapted to the spacing of the two baffles (7), and the top of the plug rod (6) is provided with a discharge port.

Citation Information

Patent Citations

  • Edible mushroom inoculator

    CN220712332U