Novel agaricus bisporus cultivation frame bed
By incorporating adjustment and splicing components into the mushroom cultivation racks, the inflexibility issues in the connection and spacing adjustment of cultivation racks in existing technologies have been resolved. This has resulted in stable connections and flexible spacing adjustments, improving the practicality and installation efficiency of the cultivation beds.
Patent Information
- Application Number
- CN202520270121.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2035-02-20
AI Technical Summary
The existing button mushroom cultivation racks are not stable or flexible in terms of connection, installation, and spacing adjustment, which makes them inconvenient to use.
The system employs an adjustment component and a splicing component mounted on a connecting column. The adjustment component includes a connecting frame and a sleeve, while the splicing component includes a concave plate and a connecting cylinder. The disassembly and spacing adjustment of the cultivation bed are achieved through the cooperation of the sliding protrusion and the limiting hole.
This design achieves stable connection and flexible spacing adjustment of the cultivation racks, improving the practicality and installation efficiency of the cultivation beds.
Smart Images

Figure CN223626579U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of agaricus bisporus planting, especially to a novel agaricus bisporus cultivation rack bed. BACKGROUND
[0002] With the improvement of people's living quality, the demand for mushroom food is increasing, and agaricus bisporus cultivation is gradually popularized. In order to meet the growing market demand, agaricus bisporus cultivation gradually changes from seasonal production to year-round factory production, and a cultivation rack is needed in agaricus bisporus cultivation.
[0003] According to the related technology in the above, the inventor believes that the following defects exist: the existing cultivation rack is inconvenient to stably connect and install during actual use, and the spacing adjustment between the cultivation racks is relatively complicated. UTILITY MODEL CONTENT
[0004] In order to improve the problem that the existing cultivation rack is inconvenient to stably connect and install during actual use, and the spacing adjustment between the cultivation racks is relatively complicated, the present application provides a novel agaricus bisporus cultivation rack bed.
[0005] The present application provides a novel agaricus bisporus cultivation rack bed, which adopts the following technical scheme: a novel agaricus bisporus cultivation rack bed, comprising a connecting column, an adjusting assembly is fixed on the top surface of the connecting column, and a splicing assembly is fixed on the bottom surface of the connecting column, the adjusting assembly comprises a connecting frame fixed on the top surface of the connecting column, a plurality of limiting holes one are formed in the side surface of the connecting frame, a recessed plate one is arranged on the inner side of the connecting frame, a sleeve is fixed on the surface of the recessed plate one, a cultivation bed is fixed on the top surface of the recessed plate one, a sliding groove one is formed on the surface of the sleeve, a spring one is arranged in the sleeve, a convex column one is movably connected in the sleeve, and a sliding column one is fixed on the surface of the convex column one.
[0006] Further arrangement, the rear end surface of the recessed plate one is fixed with a limiting column, and the surface of the limiting column is attached to the inner wall of the limiting hole one.
[0007] Further arrangement, the inner wall of the connecting frame is in contact with the inner walls of the recessed plate one and the cultivation bed, and the connecting frame and the connecting column constitute a fixed structure through bolts.
[0008] Further arrangement, the cultivation bed and the connecting frame are an integrated structure, and the limiting holes one are symmetrically arranged.
[0009] Further arrangement, the surface of the sliding column one is in contact with the surface of the sliding groove one, and the surface of the convex column one is attached to the inner wall of the limiting hole one.
[0010] Further setting, the splicing assembly includes the concave plate two fixed to the bottom surface of the connecting column, and the bottom surface of the concave plate two is fixed with a cylinder, the bottom of the cylinder is provided with a ball, the side surface of the concave plate two is fixed with a U-shaped block one, and the surface of the U-shaped block one is provided with a limiting hole two, the side surface of the concave plate two is fixed with a U-shaped block two, and the surface of the U-shaped block two is fixed with a connecting barrel, the side surface of the concave plate two is fixed with a clamping column, and the side surface of the concave plate two is fixed with an annular column.
[0011] Further setting, the surface of the connecting barrel is provided with a sliding groove two, and the inside of the connecting barrel is provided with a spring two, the inside of the connecting barrel is provided with a convex column two, and the surface of the convex column two is fixed with a sliding column two.
[0012] Compared with the related art, the novel double-spore mushroom cultivation frame bed has the following beneficial effects:
[0013] The novel double-spore mushroom cultivation frame bed is provided with the adjusting assembly on the surface of the connecting column, the connecting frame and the sleeve are arranged in the adjusting assembly, the convex column one is arranged in the sleeve, when the user slides the convex column one, the convex column one moves, the convex column one is separated from the limiting hole one, the cultivation bed can be disassembled by sliding the concave plate one and the cultivation bed, and the distance between the cultivation beds can be conveniently adjusted.
[0014] The novel double-spore mushroom cultivation frame bed is provided with the splicing assembly on the surface of the connecting column, the concave plate two and the connecting barrel are arranged in the splicing assembly, the convex column two is arranged in the connecting barrel, when the user slides the convex column two, the convex column two moves, the U-shaped block one on the surface of another group of concave plate two is clamped with the U-shaped block two, the convex column two is loosened, a plurality of groups of concave plate two can be spliced, and the practicability is improved. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 A structure schematic view of a preferred embodiment of the novel double-spore mushroom cultivation frame bed is provided.
[0016] Figure 2 A front view of the novel double-spore mushroom cultivation frame bed is provided.
[0017] Figure 3 A side view of the novel double-spore mushroom cultivation frame bed is provided.
[0018] Figure 4 A bottom view of the novel double-spore mushroom cultivation frame bed is provided.
[0019] Figure 5 A Figure 2 enlarged view of A in the figure.
[0020] The diagram is labeled as follows: 1. Connecting post; 2. Adjusting assembly; 201. Connecting frame; 202. Limiting hole one; 203. Concave plate one; 204. Sleeve; 205. Cultivation bed; 206. Slide groove one; 207. Spring one; 208. Protruding post one; 209. Slide post one; 210. Limiting post; 3. Splicing assembly; 301. Concave plate two; 302. U-shaped block one; 303. Limiting hole two; 304. U-shaped block two; 305. Connecting cylinder; 306. Locking post; 307. Annular post; 308. Slide groove two; 309. Spring two; 310. Protruding post two; 311. Slide post two; 312. Cylinder; 313. Ball bearing. Detailed Implementation
[0021] To facilitate understanding of this utility model, a more comprehensive description will be provided below with reference to the accompanying drawings. The drawings show typical embodiments of this utility model.
[0022] Example 1:
[0023] like Figures 1-5 As shown, the novel button mushroom cultivation rack of this utility model includes a connecting column 1, an adjusting component 2 fixed on the top surface of the connecting column 1, and a splicing component 3 fixed on the bottom surface of the connecting column 1. The adjusting component 2 includes a connecting frame 201 fixed to the top surface of the connecting column 1, and multiple sets of limiting holes 202 are opened on the side surface of the connecting frame 201. A concave plate 203 is provided on the inner side of the connecting frame 201, and a sleeve 204 is fixed on the surface of the concave plate 203. A cultivation bed 205 is fixed on the top surface of the concave plate 203. A sliding groove 206 is opened on the surface of the sleeve 204, and a spring 207 is provided inside the sleeve 204. A protruding column 208 is movably connected inside the sleeve 204, and a sliding column 209 is fixed on the surface of the protruding column 208.
[0024] like Figures 1-5 As shown, a limiting post 210 is fixed on the rear end surface of the concave plate 203, and the surface of the limiting post 210 is in contact with the inner wall of the limiting hole 202.
[0025] like Figures 1-5 As shown, the inner wall of the connecting frame 201 is in contact with the inner wall of the concave plate 203 and the cultivation bed 205. The connecting frame 201 is fixed to the connecting column 1 by bolts.
[0026] like Figures 1-5 As shown, the cultivation bed 205 and the connecting frame 201 are an integrated structure, and the limiting holes 202 are symmetrically arranged.
[0027] like Figures 1-5 As shown, the surface of the sliding post 209 is in contact with the surface of the sliding groove 206, and the surface of the protruding post 208 is in contact with the inner wall of the limiting hole 202.
[0028] During implementation, when it is necessary to disassemble the cultivation bed 205, by sliding the sliding column 209, the sliding column 209 can drive the protruding column 208 to slide, thereby separating the protruding column 208 from the limiting hole 202. At the same time, by sliding the cultivation bed 205, the cultivation bed 205 can be disassembled. Since there are multiple sets of limiting holes 202, the distance between the sliding columns 209 can also be adjusted by sliding the sliding column 209.
[0029] Example 2:
[0030] like Figures 1-5 As shown, based on Embodiment 1, this utility model provides a technical solution: the splicing component 3 includes a concave plate 301 fixed to the bottom surface of the connecting column 1, and a cylinder 312 fixed to the bottom surface of the concave plate 301. A ball bearing 313 is provided at the bottom of the cylinder 312. A U-shaped block 302 is fixed to the side surface of the concave plate 301, and a limiting hole 303 is opened on the surface of the U-shaped block 302. A U-shaped block 304 is fixed to the side surface of the concave plate 301, and a connecting cylinder 305 is fixed to the surface of the U-shaped block 304. A locking post 306 is fixed to the side surface of the concave plate 301, and an annular post 307 is fixed to the side surface of the concave plate 301.
[0031] like Figures 1-5 As shown, the surface of the connecting cylinder 305 is provided with a sliding groove 308, and the inside of the connecting cylinder 305 is provided with a spring 309. The inside of the connecting cylinder 305 is provided with a protrusion 310, and the surface of the protrusion 310 is fixed with a sliding post 311.
[0032] In practice, when multiple sets of concave plates 301 need to be joined, sliding column 311 drives convex column 310 to slide, simultaneously engaging U-shaped block 302 and U-shaped block 304 on the surface of another set of concave plates 301. Releasing sliding column 311 allows spring 309 to push convex column 310 to engage with U-shaped block 302 on the surface of one set of concave plates 301, thus joining multiple sets of concave plates 301 and improving practicality.
[0033] The advantages of this technical solution in practical applications include, but are not limited to, the following:
[0034] 1. The adjusting component 2 is provided with a connecting frame 201 and a sleeve 204. The sleeve 204 is provided with a protruding post 208. When the user slides the protruding post 208, the protruding post 208 moves, thereby separating the protruding post 208 from the limiting hole 202. The cultivation bed 205 can be disassembled by sliding the concave plate 203 and the cultivation bed 205, and the spacing between the cultivation beds 205 can also be adjusted.
[0035] 2、The inside of the splicing assembly 3 is provided with recessed plates two 301 and a connecting cylinder 305, the inside of the connecting cylinder 305 is provided with convex columns two 310, so that when the user slides the convex columns two 310, the convex columns two 310 move, at the same time, the U-shaped blocks one 302 on the surface of another set of recessed plates two 301 are clamped with the U-shaped blocks two 304, the convex columns two 310 are loosened, a plurality of sets of recessed plates two 301 can be spliced, and the practicability is improved.
[0036] When the cultivation bed 205 needs to be disassembled, the slide column one 209 is slid, the slide column one 209 can drive the convex column one 208 to slide, so that the convex column one 208 is separated from the limiting hole one 202, the cultivation bed 205 is slid, and the cultivation bed 205 can be disassembled. Since the limiting hole one 202 is provided with a plurality of sets, the distance between the slide columns one 209 can be adjusted by sliding the slide column one 209. When a plurality of sets of recessed plates two 301 need to be spliced, the slide column two 311 is slid, the slide column two 311 can drive the convex column two 310 to slide, at the same time, the U-shaped blocks one 302 on the surface of another set of recessed plates two 301 are clamped with the U-shaped blocks two 304. The slide column two 311 is loosened, the convex column two 310 is clamped with the U-shaped blocks one 302 on the surface of a set of recessed plates two 301 under the action of the spring two 309, a plurality of sets of recessed plates two 301 can be spliced, and the practicability is improved.
[0037] The above is only an exemplary embodiment of the present disclosure, which cannot limit the scope of the present disclosure. Any equivalent changes and modifications made according to the teachings of the present disclosure are still within the scope of the present disclosure. The present application aims to cover any variations, uses or adaptive changes of the present disclosure, which follow the general principles of the present disclosure and include common knowledge or conventional technical means in the technical field of the present disclosure not recorded in the present disclosure.
Claims
1. A new type of Agaricus bisporus cultivation shelf bed comprising a connecting column (1), characterized in that: The top surface of the connecting column (1) is fixed with an adjusting assembly (2), and the bottom surface of the connecting column (1) is fixed with a splicing assembly (3); The adjusting assembly (2) comprises a connecting frame (201) fixed to the top surface of the connecting column (1), a plurality of sets of limiting holes (202) are formed in the side surface of the connecting frame (201), the inner side of the connecting frame (201) is provided with a concave plate (203), the surface of the concave plate (203) is fixed with a sleeve (204), the top surface of the concave plate (203) is fixed with a cultivation bed (205), the surface of the sleeve (204) is provided with a sliding groove (206), the inside of the sleeve (204) is provided with a spring (207), the inside of the sleeve (204) is movably connected with a convex column (208), and the surface of the convex column (208) is fixed with a sliding column (209).
2. The new shelf bed for Agaricus bisporus cultivation according to claim 1, characterized in that, The rear end surface of the concave plate (203) is fixed with a limiting column (210), and the surface of the limiting column (210) is in contact with the inner wall of the limiting hole (202).
3. The new shelf bed for Agaricus bisporus cultivation according to claim 1, characterized in that, The inner wall of the connecting frame (201) is in contact with the inner walls of the concave plate (203) and the cultivation bed (205), and the connecting frame (201) is fixed to the connecting column (1) by bolts.
4. The new shelf bed for Agaricus bisporus cultivation according to claim 1, characterized in that, The cultivation bed (205) and the connecting frame (201) are integrated, and the limiting holes (202) are symmetrically arranged.
5. The new shelf bed for Agaricus bisporus cultivation according to claim 1, characterized in that, The surface of the sliding column (209) is in contact with the surface of the sliding groove (206), and the surface of the convex column (208) is in contact with the inner wall of the limiting hole (202).
6. The new shelf bed for Agaricus bisporus cultivation according to claim 1, characterized in that, The splicing assembly (3) comprises a concave plate (301) fixed to the bottom surface of the connecting column (1), a cylindrical column (312) fixed to the bottom surface of the concave plate (301), a plurality of sets of limiting holes (303) formed in the surface of the U-shaped block (302) fixed to the side surface of the concave plate (301), a U-shaped block (304) fixed to the side surface of the concave plate (301), a connecting cylinder (305) fixed to the surface of the U-shaped block (304), a clamping column (306) fixed to the side surface of the concave plate (301), and a ring-shaped column (307) fixed to the side surface of the concave plate (301).
7. The new shelf bed for Agaricus bisporus cultivation according to claim 6, characterized in that, The surface of the connecting cylinder (305) is provided with a sliding groove (308), the inside of the connecting cylinder (305) is provided with a spring (309), the inside of the connecting cylinder (305) is provided with a convex column (310), and the surface of the convex column (310) is fixed with a sliding column (311).