High-efficiency heat storage and energy storage assembled greenhouse
The design of the guide rail structure and sliding components enables rapid installation and enhanced stability of the greenhouse frame, solving the problem of slow installation speed in existing technologies.
Patent Information
- Application Number
- CN202310365849.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-07
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2043-04-07
AI Technical Summary
The existing curved steel frame for greenhouses is slow to install, resulting in long construction time and low efficiency.
It adopts a guide rail structure and sliding components, connects the support frame with steel cables, and uses U-bolts and limiting components to achieve rapid deployment and positioning fixation, thereby enhancing stability.
It enabled the rapid construction of the greenhouse frame, enhanced overall stability, and improved construction efficiency.
Smart Images

Figure CN116267333B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of greenhouse, in particular to a high-efficiency energy storage and assembly greenhouse. BACKGROUND
[0002] The greenhouse can solve a series of problems such as lighting, heat storage, electricity storage and heat preservation, and can be used for anti-season vegetable production in winter in northern and cold regions, so as to achieve the purposes of energy saving, high quality and high efficiency.
[0003] The existing Chinese patent 201110075721.5 discloses an industrialized prefabricated greenhouse and its manufacturing method, wherein the frame of the greenhouse is mainly composed of a surrounding wall, a low wall and an arc-shaped steel skeleton, and the arc-shaped steel skeleton is fixed to the surrounding wall and the low wall by bolts and U-shaped sleeves.
[0004] However, since the greenhouse frame needs to be supported by multiple arc-shaped steel skeletons, when installing the above-mentioned greenhouse arc-shaped steel skeleton, the distance between the arc-shaped steel skeletons needs to be measured after the surrounding wall is built, and then the arc-shaped steel skeletons need to be fixed to the surrounding wall and the low wall one by one through bolts and U-shaped sleeves according to the measured distance, which results in slow installation speed of the greenhouse arc-shaped steel skeleton, long construction time of the greenhouse and low efficiency. SUMMARY
[0005] The present application aims to provide a high-efficiency energy storage and assembly greenhouse which can quickly build the greenhouse skeleton and solve the problems in the background art.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a high-efficiency energy storage and assembly greenhouse, comprising a plurality of groups of support skeletons which are distributed at equal distances, the lower sides of the two ends of the support skeletons are symmetrically provided with guide rail structures, the inner sides of the support skeletons are provided with three groups of cross beam structures which are distributed in an equilateral triangle shape and are used for enhancing the stability of the greenhouse, a sliding assembly is used for connecting the support skeletons and the guide rail structures, a plurality of groups of the sliding assemblies which are distributed at equal distances are installed inside the cavities of the guide rail structures, a plurality of groups of steel cables are fixedly installed between the sliding assemblies, the guide rail structures comprise channel steels which are embedded in the ground surface, and the channel steels are divided into a plurality of sections, the outer sides of the interfaces of the channel steels are all sleeved with first U-shaped pins, the outer sides of the first U-shaped pins are sleeved with four groups of positioning sleeves which are symmetrically arranged in pairs, the connection mode between the positioning sleeves and the channel steels is fixed welding, and the first U-shaped pins are fixedly connected with the channel steels and the positioning sleeves through bolts.
[0007] Preferably, the sliding assembly comprises a plurality of plug-in sockets arranged at equal distances, and one of the plug-in sockets at the leftmost side is fixedly welded to the channel steel, the outer sides of the other plug-in sockets are rotatably installed with rollers, the other plug-in sockets are connected to the channel steel in a sliding manner through the rollers, the connection between the support frame and the plug-in sockets is a plug-in connection, the outer side of the plug-in socket is installed with a U-shaped bolt, the U-shaped bolt penetrates through the plug-in socket and the support frame respectively, and the support frame is fixedly connected to the plug-in socket through the U-shaped bolt and a nut, and the roller can reduce the friction between the plug-in socket and the channel steel.
[0008] Preferably, the beam structure comprises a reinforcing beam movably attached to the inner wall of the support frame, the right end of the reinforcing beam is fixedly connected with a fixed plate, and the left end surface of the fixed plate abuts against the right end surface of the rightmost support frame, and the fixed plate can prevent the reinforcing beam from being separated from the connecting sleeve.
[0009] Preferably, the reinforcing beam is divided into a plurality of sections, the inner side of the interface of the reinforcing beam is embedded with a pin plate, the outer side of the interface of the reinforcing beam is embedded with a second U-shaped pin, the pin plate and the second U-shaped pin are fixedly connected to the reinforcing beam through a countersunk screw, the top end surface of the screw is flush with the outer wall of the reinforcing beam, the outer side of the reinforcing beam movably sleeves a connecting sleeve corresponding in number to the support frame, and the connecting sleeve and the support frame are fixedly welded, and the screw is embedded to facilitate the movement of the connecting sleeve on the reinforcing beam.
[0010] Preferably, the lower side of the plug-in socket is installed with a first limiting assembly inside the channel steel, the first limiting assembly comprises a first rack movably embedded in the channel steel, the right end of the first rack is fixedly installed with a first baffle, the center of the right end surface of the first baffle is fixedly installed with a first spring, the right end of the first spring is fixedly connected to the channel steel, and the first spring can drive the first rack and the first limiting plate to reset through the first baffle.
[0011] Preferably, the right end surface of each of the plug-in sockets except the two plug-in sockets at the two ends is movably abutted with a first limiting plate, the outer side of the first limiting plate is fixedly installed with a first gear, and the first limiting plate and the first gear are rotatably connected to the channel steel through a connecting shaft, the connection between the first gear and the first rack is a meshing connection, the outer side of the interface of the first rack is embedded with a third U-shaped pin, and a plurality of groups of the third U-shaped pins are fixedly connected to the first rack through a countersunk screw, and the first gear facilitates the linkage of the first rack and the first limiting plate.
[0012] Preferably, the inside of the reinforcing beam mounted on the side wall of the support framework is provided with a second limiting component, the second limiting component comprises a second rack movably embedded in the inside of the reinforcing beam, the left end of the second rack is fixedly provided with a second baffle, the left end surface of the second baffle is fixedly provided with a second spring, the left end of the second spring is fixedly connected with the reinforcing beam, the left end surface of the connecting sleeve mounted on the side wall of the support framework is movably provided with two second limiting plates which are symmetrically distributed, and the two connecting sleeves at both ends are not included, the outer side of the second limiting plate is fixedly provided with a second gear, and the second limiting plate and the second gear are rotatably connected with the reinforcing beam through a connecting shaft, the connecting mode between the second gear and the second rack is meshing connection, the second rack is divided into several sections, the outer side of the interface of the second rack is embedded with a fourth U-shaped pin, and a plurality of groups of the fourth U-shaped pin are fixedly connected with the second rack through a countersunk screw, and the second spring can drive the second rack and the second limiting plate to reset through the second baffle.
[0013] Preferably, the right end surface of the cross beam structure mounted on the top wall of the support framework movably abuts against the left end surface of the leftmost support framework, and the right end surface of the second limiting plate in the second limiting component mounted on the top wall of the support framework abuts against the left end surface of the connecting sleeve mounted on the top wall of the support framework, and the two connecting sleeves at both ends are not included, and the connecting sleeve is in the shape of U.
[0014] Preferably, the left end surface of the rightmost plug-in seat is movably abutted with a limiting pin, the one end of the limiting pin inside the channel steel is fixedly provided with a third spring, and the other end of the third spring is fixedly connected with the channel steel, the right end surface of the rightmost plug-in seat is fixedly provided with a positioning plate, and the lower end surface of the positioning plate movably abuts against the upper end surface of the channel steel, the positioning plate is fixedly connected with the channel steel through bolts, and the limiting pin can limit the rightmost plug-in seat.
[0015] Preferably, the outer side of a plurality of groups of the support framework is provided with a heat storage structure, the heat storage structure comprises plastic pipes fixedly mounted on the outer side of the support framework, the outer side of the plastic pipes is wrapped with thermal insulation cotton, one side of the thermal insulation cotton is provided with a plurality of groups of first steel columns which are equidistantly distributed, and the connecting mode between the first steel columns and the support framework is fixed welding, one side of the first steel column is provided with an air wall composed of a plurality of groups of inflatable columns which are in communication with each other, one side of the air wall is provided with a plurality of groups of second steel columns which are equidistantly distributed, and the connecting mode between the second steel columns and the first steel columns is fixed welding, the spacing between the second steel columns is equal to one half of the spacing between the first steel columns, and the outer side of the second steel column is covered with a cotton quilt.
[0016] Compared with the prior art, the greenhouse shed has the beneficial effects that:
[0017] The greenhouse shed has the beneficial effects that: BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 The greenhouse shed has the beneficial effects that:
[0019] Figure 2 The greenhouse shed has the beneficial effects that:
[0020] Figure 3 The greenhouse shed has the beneficial effects that: Figure 2 The greenhouse shed has the beneficial effects that:
[0021] Figure 4 The greenhouse shed has the beneficial effects that:
[0022] Figure 5 The greenhouse shed has the beneficial effects that:
[0023] Figure 6 The greenhouse shed has the beneficial effects that:
[0024] Figure 7 The greenhouse shed has the beneficial effects that: Figure 2 The greenhouse shed has the beneficial effects that:
[0025] Figure 8 The greenhouse shed has the beneficial effects that:
[0026] In the figure: 1, support framework; 2, guide rail structure; 201, channel steel; 202, first U-shaped pin; 203, positioning sleeve; 3, cross beam structure; 301, reinforcing beam; 302, fixed plate; 303, pin plate; 304, second U-shaped pin; 4, connecting sleeve; 5, sliding assembly; 501, plug-in seat; 502, roller; 503, U-shaped bolt; 6, steel cable; 7, first limiting assembly; 701, first rack; 702, first baffle; 703, first spring; 704, first limiting plate; 705, first gear; 706, third U-shaped pin; 8, second limiting assembly; 801, second rack; 802, second baffle; 803, second spring; 804, second limiting plate; 805, second gear; 806, fourth U-shaped pin; 9, limiting pin; 10, third spring; 11, positioning plate; 12, heat storage structure; 1201, plastic conduit; 1202, thermal insulation cotton; 1203, first steel stand; 1204, air wall; 1205, second steel stand. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0028] Embodiment 1
[0029] Please refer to Figure 1 and Figure 5 , a high-efficiency heat storage and energy storage assembly greenhouse is shown in the figure, which comprises a plurality of groups of support frameworks 1 distributed at equal distances, the lower sides of the two ends of the support framework 1 are symmetrically provided with guide rail structures 2, and the inner sides of the support framework 1 are provided with three groups of cross beam structures 3 distributed in an equilateral triangle shape for enhancing the stability of the greenhouse; a plurality of groups of sliding assemblies 5 distributed at equal distances for connecting the support framework 1 and the guide rail structure 2 are installed inside the cavities of the guide rail structure 2, a plurality of groups of steel cables 6 are fixedly installed between the sliding assemblies 5, the guide rail structure 2 comprises channel steels 201 embedded in the ground surface, and the channel steels 201 are divided into a plurality of sections, the outer sides of the interfaces of the channel steels 201 are all sleeved with first U-shaped pins 202, the outer sides of the first U-shaped pins 202 are sleeved with four groups of positioning sleeves 203 symmetrically in pairs, the connection mode between the positioning sleeves 203 and the channel steels 201 is fixed welding, and the first U-shaped pins 202 are fixedly connected with the channel steels 201 and the positioning sleeves 203 through bolts.
[0030] Please refer to Figure 2 and Figure 7The sliding assembly 5 comprises a plurality of plug-in sockets 501 arranged at equal distances, and the leftmost plug-in socket 501 is fixedly welded to the channel steel 201, the outer side of the other plug-in sockets 501 is rotatably provided with a roller 502, the other plug-in sockets 501 are slidably connected to the channel steel 201 through the rollers 502, the support frame 1 is connected to the plug-in sockets 501 in a plug-in manner, the outer side of the plug-in socket 501 is provided with a U-shaped bolt 503, and the U-shaped bolt 503 penetrates through the plug-in socket 501 and the support frame 1, and the support frame 1 is fixedly connected to the plug-in socket 501 through the U-shaped bolt 503 and a nut.
[0031] Please refer to Figure 6 The beam structure 3 comprises a reinforcing beam 301 movably attached to the inner wall of the support frame 1, and the right end of the reinforcing beam 301 is fixedly connected to a fixed plate 302, and the left end surface of the fixed plate 302 abuts against the right end surface of the rightmost support frame 1.
[0032] Please refer to Figure 6 The reinforcing beam 301 is divided into a plurality of sections, the inner part of the interfaces of the reinforcing beam 301 is embedded with a pin plate 303, and the outer side of the interfaces of the reinforcing beam 301 is embedded with a second U-shaped pin 304, the pin plate 303 and the second U-shaped pin 304 are fixedly connected to the reinforcing beam 301 through a countersunk screw, and the top end surface of the screw is flush with the outer wall of the reinforcing beam 301, the outer side of the reinforcing beam 301 movably sleeves a connecting sleeve 4 corresponding in number to the support frame 1, and the connecting sleeve 4 is fixedly welded to the support frame 1.
[0033] The working principle of quickly building the greenhouse skeleton is as follows: first, the guide rail structure 2 and the first limiting assembly 7 are assembled from right to left, two sections of the first rack 701 are first spliced and fixed through the third U-shaped pin 706 and the screw, and then two sections of the channel steel 201 are spliced and fixed through the first U-shaped pin 202, the positioning sleeve 203 and the screw, and so on, the entire guide rail structure 2 and the first limiting assembly 7 are spliced, and at the same time, a plurality of groups of sliding assemblies 5 are installed in the cavity of the channel steel 201, then the two spliced guide rail structures 2 are poured with concrete on the ground, then a plurality of groups of support skeletons 1 are respectively inserted into the corresponding two insertion seats 501, and then the U-shaped bolts 503 are installed to fix the support skeletons 1 and the insertion seats 501, after the support skeletons 1 are completely installed, the beam structure 3 and the second limiting assembly 8 are assembled and spliced in the same way as the guide rail structure 2 and the first limiting assembly 7, but at the same time, the reinforcing beam 301 needs to be inserted on the connecting sleeve 4 for assembly, after the reinforcing beam 301 is completely assembled, the connecting sleeve 4 is movably connected with the reinforcing beam 301, under the condition that the insertion seat 501 is slidably connected with the channel steel 201 through the roller 502, the rightmost support skeleton 1 is pulled to the right, and under the driving of a plurality of groups of steel wires 6, pulling the rightmost support skeleton 1 can drive a plurality of groups of support skeletons 1 to quickly and equidistantly expand, so that the overall building efficiency of the greenhouse skeleton can be improved.
[0034] Embodiment 2
[0035] Please refer to Figure 3 and Figure 5 , the embodiment further illustrates the embodiment 1, the first limiting assembly 7 is installed on the inside of the channel steel 201 at the lower side of the insertion seat 501, the first limiting assembly 7 comprises a first rack 701 movably embedded in the inside of the channel steel 201, a first baffle 702 is fixedly installed at the right end of the first rack 701, a first spring 703 is fixedly installed at the center of the right end surface of the first baffle 702, and the right end of the first spring 703 is fixedly connected with the channel steel 201.
[0036] Please refer to Figure 3 and Figure 5 , the right end surface of each insertion seat 501 except the two insertion seats 501 at both ends movably abuts against a first limiting plate 704, a first gear 705 is fixedly installed at the outer side of the first limiting plate 704, and the first limiting plate 704 and the first gear 705 are rotatably connected with the channel steel 201 through a connecting shaft, the connection between the first gear 705 and the first rack 701 is meshing connection, a third U-shaped pin 706 is embedded at the outer side of each interface of the first rack 701, and a plurality of groups of third U-shaped pins 706 are fixedly connected with the first rack 701 through countersunk head screws
[0037] Please refer to Figure 3 and Figure 5The second limiting assembly 8 is internally installed on the reinforcing beam 301 installed on the side walls of the support framework 1, the second limiting assembly 8 comprises a second rack 801 movably embedded in the reinforcing beam 301, the left end of the second rack 801 is fixedly installed with a second baffle 802, the left end face of the second baffle 802 is fixedly installed with a second spring 803, and the left end of the second spring 803 is fixedly connected with the reinforcing beam 301, the left end face of the connecting sleeve 4 installed on the side wall of the support framework 1 movably abuts against two symmetrically distributed second limiting plates 804, and the two connecting sleeves 4 at both ends are excluded, the outer side of the second limiting plate 804 is fixedly installed with a second gear 805, and the second limiting plate 804 and the second gear 805 are rotatably connected with the reinforcing beam 301 through a connecting shaft, the connecting mode between the second gear 805 and the second rack 801 is meshing connection, the second rack 801 is divided into several sections, the outer side of the interface of the second rack 801 is embedded with a fourth U-shaped pin 806, and the fourth U-shaped pins 806 are fixedly connected with the second rack 801 through the countersunk screws.
[0038] Please refer to Figure 3 and Figure 4 The right end face of the fixed plate 302 in the cross beam structure 3 installed on the top wall of the support framework 1 movably abuts against the left end face of the leftmost support framework 1, the right end face of the second limiting plate 804 in the second limiting assembly 8 installed on the top wall of the support framework 1 abuts against the left end face of the connecting sleeve 4 installed on the top wall of the support framework 1, and the two connecting sleeves 4 at both ends are excluded.
[0039] Please refer to Figure 7 The left end face of the rightmost one of the plug-in sockets 501 movably abuts against the limiting pin 9, the left end face of the limiting pin 9 is an inclined end face, one end of the limiting pin 9 fixedly installed in the channel steel 201 is fixedly installed with a third spring 10, and the other end of the third spring 10 is fixedly connected with the channel steel 201, the right end face of the rightmost one of the plug-in sockets 501 is fixedly installed with a positioning plate 11, and the lower end face of the positioning plate 11 movably abuts against the upper end face of the channel steel 201, the positioning plate 11 is fixedly connected with the channel steel 201 through bolts.
[0040] In this embodiment: after the support framework 1 is fully deployed, the limiting pin 9 is driven by the third spring 10 to abut against the left end face of the rightmost plug-in seat 501, and then the positioning plate 11 installed on the right end face of the rightmost plug-in seat 501 is fixed to the channel steel 201 by bolts. When the rightmost plug-in seat 501 moves to the right to press the first baffle 702, the first baffle 702 drives the first rack 701 to move to the right. Under the condition that the first gear 705 is engaged with the first rack 701, the first rack 701 drives the first gear 705 and the first limiting plate 704 to rotate counterclockwise. The left end face of the first limiting plate 704 abuts against the right end face of the plug-in seat 501. The second rack 801 installed inside the reinforcing beam 301 on the side walls of the support framework 1 moves to the left under the drive of the second baffle 802. The second rack 801 drives the second limiting plate 804 to rotate clockwise through the second gear 805 during the leftward movement of the second rack 801. The right end face of the second limiting plate 804 abuts against the left end face of the connecting sleeve 4, and the second limiting plate 804 installed on the top wall of the support framework 1 abuts against the right end face of the connecting sleeve 4. Under the staggered distribution of the first limiting plate 704 and the second limiting plate 804, the left and right sides of the support framework 1 excluding the left and right ends are positioned and fixed, which can effectively improve the stability of the greenhouse.
[0041] Embodiment 3
[0042] Please refer to Figure 8 , the present embodiment is further illustrated by other embodiments. The outer side of the plurality of groups of support frameworks 1 is provided with a heat storage structure 12. The heat storage structure 12 comprises plastic pipes 1201 fixedly installed on the outer side of the support framework 1. The plastic pipes 1201 are filled with clean water. The outer side of the plastic pipes 1201 is wrapped with thermal insulation cotton 1202. One side of the thermal insulation cotton 1202 is provided with a plurality of groups of first steel columns 1203 distributed at equal distances. The first steel columns 1203 are fixedly welded with the support framework 1. One side of the first steel columns 1203 is provided with a gas wall 1204 composed of a plurality of groups of inflatable columns in communication with each other. One side of the gas wall 1204 is provided with a plurality of groups of second steel columns 1205 distributed at equal distances. The second steel columns 1205 are fixedly welded with the first steel columns 1203. The spacing between the second steel columns 1205 is equal to one-half of the spacing between the first steel columns 1203.
[0043] In this embodiment: after the greenhouse framework is completed, the heat storage structure 12 is installed on one side of the support framework 1. Finally, a film is covered on the outer side of the support framework 1 and the heat storage structure 12. The plastic pipes 1201 filled with clean water in the heat storage structure 12 and the gas wall 1204 composed of a plurality of groups of inflatable columns in communication with each other enable the heat preservation greenhouse to have a high-efficiency heat storage and energy storage function.
[0044] It is to be understood that the terminology used herein such as first and second, and the like, is only used to distinguish one entity or action from another entity or action, and does not necessarily require or imply any such actual relationship or order between such entities or actions. Moreover, the terms "comprises" - "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process - method - article of manufacture - or apparatus that comprises a list of elements does not include only those elements but can also include other elements not expressly listed or inherent to such process - method - article of manufacture - or apparatus.
[0045] While embodiments of the application have been shown and described, it is to be understood that the application is not limited to the details of the embodiments described, since numerous modifications - alterations - substitutions and changes can be made to the embodiments without departing from the spirit and scope of the present application, which is defined by the appended claims and their equivalents.
Claims
1. A high-performance heat storage and energy storage assembly greenhouse, comprising a plurality of sets of support skeletons (1) distributed at equal distances, characterized in that: The both ends of the support framework (1) are symmetrically provided with guide rail structures (2), and the inner side of the support framework (1) is provided with three groups of beam structures (3) in equilateral triangle distribution for enhancing the stability of the greenhouse; A plurality of groups of sliding assemblies (5) are arranged in equal distance distribution and are arranged in the cavities of the guide rail structures (2), a plurality of groups of the sliding assemblies (5) are fixedly provided with steel wires (6), the guide rail structures (2) comprise channel steels (201) embedded in the ground, the channel steels (201) are divided into a plurality of sections, the outer sides of the interfaces of the channel steels (201) are all sleeved with first U-shaped pins (202), the outer sides of the first U-shaped pins (202) are sleeved with four groups of positioning sleeves (203) in two-by-two symmetry, the connection between the positioning sleeves (203) and the channel steels (201) is fixed welding, and the first U-shaped pins (202) are fixedly connected with the channel steels (201) and the positioning sleeves (203) through bolts; The sliding assemblies (5) comprise a plurality of groups of plug-in seats (501) in equal distance distribution, the leftmost plug-in seat (501) is fixedly welded with the channel steel (201), the outer sides of the other plug-in seats (501) are rotatably provided with rollers (502), the other plug-in seats (501) are slidably connected with the channel steel (201) through the rollers (502), the support framework (1) is connected with the plug-in seat (501) in plug-in connection, the outer sides of the plug-in seat (501) are provided with U-shaped bolts (503), the U-shaped bolts (503) penetrate the plug-in seat (501) and the support framework (1) respectively, and the support framework (1) is fixedly connected with the plug-in seat (501) through the U-shaped bolts (503) and nuts; The lower side of the plug-in seat (501) is provided with a first limiting assembly (7) in the inside of the channel steel (201), the first limiting assembly (7) comprises a first rack (701) movably embedded in the inside of the channel steel (201), the right end of the first rack (701) is fixedly provided with a first baffle (702), the center of the right end face of the first baffle (702) is fixedly provided with a first spring (703), and the right end of the first spring (703) is fixedly connected with the channel steel (201); The right end face of each of the plug-in sockets (501) except the two plug-in sockets (501) at both ends movably abuts against a first limiting plate (704), a first gear (705) is fixedly installed on the outer side of the first limiting plate (704), the first limiting plate (704) and the first gear (705) are rotationally connected with the channel steel (201) through a connecting shaft, the first gear (705) and the first rack (701) are in meshing connection, the outer side of each interface of the first rack (701) is embedded with a third U-shaped pin (706), and each group of the third U-shaped pins (706) is fixedly connected with the first rack (701) through a countersunk screw.
2. The high-efficiency heat storage and energy storage assembled greenhouse big shed according to claim 1, characterized in that: The cross beam structure (3) comprises a reinforcing beam (301) movably attached to the inner wall of the support framework (1), and a fixed plate (302) is fixedly connected to the right end of the reinforcing beam (301), and the left end face of the fixed plate (302) abuts against the right end face of the rightmost support framework (1).
3. The high-efficiency heat storage and energy storage assembled greenhouse big shed according to claim 2, characterized in that: The reinforcing beam (301) is divided into several sections, a pin plate (303) is embedded in the inside of each interface of the reinforcing beam (301), a second U-shaped pin (304) is embedded on the outside of each interface of the reinforcing beam (301), the pin plate (303) and the second U-shaped pin (304) are fixedly connected with the reinforcing beam (301) through a countersunk screw, the top end face of the screw is flush with the outer wall of the reinforcing beam (301), a connecting sleeve (4) corresponding in number to the support framework (1) is movably sleeved on the outside of the reinforcing beam (301), and the connecting sleeve (4) and the support framework (1) are fixedly welded.
4. The high-efficiency heat storage and energy storage assembled greenhouse big shed according to claim 3, characterized in that: The second limiting assembly (8) is internally installed on the reinforcing beam (301) installed on the side walls of the support framework (1), the second limiting assembly (8) comprises a second rack (801) movably embedded in the reinforcing beam (301), the left end of the second rack (801) is fixedly installed with a second baffle (802), the left end face of the second baffle (802) is fixedly installed with a second spring (803), the left end of the second spring (803) is fixedly connected with the reinforcing beam (301), the left end face of the connecting sleeve (4) installed on the side wall of the support framework (1) is movably abutted with two symmetrically distributed second limiting plates (804), and the two connecting sleeves (4) at both ends are excluded, the outer side of the second limiting plate (804) is fixedly installed with a second gear (805), and the second limiting plate (804) and the second gear (805) are rotatably connected with the reinforcing beam (301) through a connecting shaft, the connecting mode between the second gear (805) and the second rack (801) is meshing connection, the second rack (801) is divided into several sections, the outer side of the interface of the second rack (801) is embedded with a fourth U-shaped pin (806), and a plurality of groups of the fourth U-shaped pin (806) are fixedly connected with the second rack (801) through a countersunk screw.
5. The high-performance heat storage and energy storage assembled greenhouse according to claim 4, characterized in that: The right end face of the fixed plate (302) in the cross beam structure (3) installed on the top wall of the support framework (1) is movably attached to the left end face of the leftmost support framework (1), the right end face of the second limiting plate (804) in the second limiting assembly (8) installed on the top wall of the support framework (1) is abutted with the left end face of the connecting sleeve (4) installed on the top wall of the support framework (1), and the two connecting sleeves (4) at both ends are excluded.
6. The high-performance heat storage and energy storage assembled greenhouse according to claim 1, characterized in that: The left end face of the rightmost plug-in seat (501) is movably attached to a limiting pin (9), one end of the limiting pin (9) is fixedly installed in the channel steel (201), the other end of the third spring (10) is fixedly connected with the channel steel (201), the right end face of the rightmost plug-in seat (501) is fixedly installed with a positioning plate (11), the lower end face of the positioning plate (11) is movably attached to the upper end face of the channel steel (201), and the positioning plate (11) is fixedly connected with the channel steel (201) through bolts.
7. The high-performance heat storage and energy storage assembled greenhouse according to claim 1, characterized in that: The outer side of several groups of the support framework (1) is provided with heat storage structures (12), the heat storage structures (12) comprise plastic pipes (1201) fixedly installed on the outer side of the support framework (1), the outer side of the plastic pipes (1201) is wrapped with thermal insulation cotton (1202), one side of the thermal insulation cotton (1202) is provided with several groups of first steel columns (1203) distributed at equal distances, the first steel columns (1203) and the support framework (1) are fixedly welded, one side of the first steel columns (1203) is provided with air walls (1204) composed of several groups of air filling columns in communication with each other, one side of the air walls (1204) is provided with several groups of second steel columns (1205) distributed at equal distances, the second steel columns (1205) and the first steel columns (1203) are fixedly welded, and the spacing between the second steel columns (1205) is equal to one half of the spacing between the first steel columns (1203).
Citation Information
Patent Citations
Industrialized prefabricated assembled greenhouse and manufacturing method thereof
CN102191814B
Raise assembled sunlight greenhouse of fever type passively
CN206078325U
Planting greenhouse convenient to assemble
CN210959675U
Assembled foldable small arched shed for seedling culture
CN215530331U