Epimedium cultivation arched shed device
Patent Information
- Application Number
- CN202521296925.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-06-24
AI Technical Summary
[0005]本实用新型的目的在于克服现有技术的不足,适应现实需要,提供一种淫羊藿栽培用拱棚装置,以解决当前传统的淫羊藿栽培所使用的拱棚装置,其清理灰尘的方式是利用电机驱动往复螺纹杆,进而带动清理板在拱棚表面进行往复移动来清理灰尘,然而,这种清理方式在移动过程中仅仅是将灰尘来回推移,并不能将灰尘彻底清除,在清理板往复移动的过程中,拱棚表面的灰尘会被逐渐推移至拱棚表面的两端堆积起来,导致仍需要工作人员手动对拱棚表面进行进一步清理,整体操作不够便捷的技术问题
[0013]1.本实用新型通过齿槽、齿轮和连接板体的结合,经过第一驱动电机驱动齿轮和齿槽传动,使凹型卡板带动连接板体直接围绕拱棚的弧形顶面移动,不仅可以利用弧形移动的连接板体弧形往复移动将拱棚表面的灰尘、杂质或雪刮除,使灰尘、杂质或雪直接从拱棚表面刮除到地面,而且,在连接板体底部设置有第二驱动电机和清洁刷筒,能够在连接板体移动的过程中,经过第二驱动电机驱动清洁刷筒旋转,从而进一步提升对拱棚表面清洁的效果,解决了传统的淫羊藿栽培所使用的拱棚装置,其清理灰尘的方式是利用电机驱动往复螺纹杆,进而带动清理板在拱棚表面进行往复移动来清理灰尘,然而,这种清理方式在移动过程中仅仅是将灰尘来回推移,并不能将灰尘彻底清除,在清理板往复移动的过程中,拱棚表面的灰尘会被逐渐推移至拱棚表面的两端堆积起来,导致仍需要工作人员手动对拱棚表面进行进一步清理,整体操作不够便捷的技术问题。
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Figure CN224638651U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of arched shed devices, specifically an arched shed device for cultivating Epimedium. Background Technology
[0002] Epimedium: A perennial herb belonging to the genus Epimedium in the family Berberidaceae. The plant is generally 20 to 60 cm tall; the rhizome is short and thick, dark brown; the complete leaves are trifoliate compound leaves with long petioles; the leaflets are papery or thickly papery, with spiny teeth on the leaf margins; the flowers are white or pale yellow.
[0003] According to publicly available patent CN220755763U, a greenhouse device for cultivating wild Epimedium includes a support frame. The support frame has a support mechanism and a dust removal mechanism on its sides. The support mechanism includes an installation part and a disassembly part. By setting up a first support plate and a second support plate, which are interlocked, and by setting up a first hydraulic rod and a drill rod, the greenhouse can be quickly installed and disassembled, effectively enabling rapid transport during the cultivation of wild Epimedium. A first motor drives a reciprocating threaded rod to rotate, which in turn moves a first cleaning plate to quickly remove dust from the surface of the greenhouse, facilitating the growth of wild Epimedium. An insert plate and a first slider are used, and a second hydraulic rod moves a lifting plate, which in turn moves the insert plate and support frame up and down to adjust the height of the greenhouse.
[0004] However, in practice, the traditional arched greenhouse system used for Epimedium cultivation cleans dust by using a motor-driven reciprocating screw rod to move a cleaning plate back and forth across the greenhouse surface. However, this method merely pushes the dust back and forth and doesn't completely remove it. During the reciprocating motion of the cleaning plate, dust gradually accumulates at both ends of the greenhouse surface, requiring manual cleaning by staff. This overall operation is inconvenient. Therefore, a new technical solution is needed to address this issue. Utility Model Content
[0005] The purpose of this utility model is to overcome the shortcomings of the existing technology, adapt to the needs of reality, and provide a greenhouse device for Epimedium cultivation. This solves the problem that the current traditional greenhouse devices used for Epimedium cultivation clean dust by using a motor to drive a reciprocating threaded rod, which in turn drives a cleaning plate to move back and forth on the surface of the greenhouse. However, this cleaning method only pushes the dust back and forth during the movement and cannot completely remove the dust. During the reciprocating movement of the cleaning plate, the dust on the surface of the greenhouse will be gradually pushed to the two ends of the greenhouse surface and accumulate, which still requires the staff to manually clean the surface of the greenhouse for further cleaning. The overall operation is not convenient.
[0006] To achieve the purpose of this utility model, the technical solution adopted by this utility model is as follows: design an arched shed device for Epimedium cultivation, including a roof, with supporting shells installed on both sides of the bottom of the roof, an arc-shaped supporting pipe fixed on the top of the supporting shell, the arc-shaped supporting pipe being attached to the bottom of the roof, an arc-shaped plate installed at one end of the top of the roof, and an arc-shaped cleaning component provided on the top of the arc-shaped plate.
[0007] Preferably, the arc-shaped cleaning component includes multiple grooves, which are arc-shaped and formed on the surface of the arc-shaped plate.
[0008] Preferably, a gear is engaged at the top of the tooth groove, and one end of the gear is connected to a first drive motor via an output shaft. A concave clamping plate is installed at the bottom of the first drive motor, and the concave clamping plate is engaged with one end of the arc-shaped plate.
[0009] Preferably, a connecting plate is fixed to one end of the concave card plate, and a groove is provided at the bottom of the connecting plate, with a second drive motor installed at one end inside the groove.
[0010] Preferably, the output shaft at one end of the second drive motor is connected to a rotating rod via a coupling, and a cleaning brush cylinder passes through the outside of the rotating rod, with the penetration position of the cleaning brush cylinder and the rotating rod being fixed.
[0011] Preferably, the inner side of the support housing is provided with an installation groove, the opening of the installation groove is covered with a cover plate, an electric heating tube is installed inside the installation groove, and an arc-shaped support tube is connected to its top.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. This utility model, through the combination of toothed grooves, gears, and connecting plates, uses a first drive motor to drive the gears and toothed grooves, causing the concave clamping plate to move the connecting plate directly around the arc-shaped top surface of the arched shed. This not only scrapes away dust, impurities, or snow from the arched shed surface by the arc-shaped reciprocating movement of the connecting plate, directly removing the dust, impurities, or snow from the shed surface to the ground, but also features a second drive motor and a cleaning brush at the bottom of the connecting plate. During the movement of the connecting plate, the second drive motor drives the cleaning brush to rotate, further improving the cleaning effect on the arched shed surface. This solves the problem of traditional arched shed devices used for Epimedium cultivation, which clean dust by using a motor to drive a reciprocating threaded rod, thereby moving the cleaning plate back and forth on the shed surface. However, this cleaning method merely pushes the dust back and forth during movement and cannot completely remove it. During the reciprocating movement of the cleaning plate, dust on the shed surface is gradually pushed to both ends and accumulates, requiring manual cleaning by workers, making the overall operation inconvenient.
[0014] 2. This utility model combines a supporting shell, an electric heating tube, and an arc-shaped support tube. When rainwater or snow accumulates on the surface of the arched shed, the electric heating tube generates heat inside the supporting shell. The heat enters multiple arc-shaped support tubes, thereby using multiple arc-shaped support tubes with heat entering inside to quickly dry the rainwater or snow on the surface of the arched shed, preventing the arched shed from being crushed and deformed. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0016] Figure 2 This is a bottom view of the connecting plate structure of this utility model;
[0017] Figure 3 This is a schematic diagram of the internal structure of the mounting slot of this utility model.
[0018] In the diagram: 1. Support shell; 101. Canopy; 2. Arc-shaped plate; 201. Gear groove; 202. Concave clamping plate; 203. First drive motor; 204. Gear; 205. Connecting plate; 206. Second drive motor; 207. Rotating rod; 208. Cleaning brush; 3. Mounting slot; 301. Cover plate; 302. Arc-shaped support tube; 303. Heating element. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments:
[0020] Example 1: A greenhouse device for cultivating Epimedium, see [link to example]. Figures 1 to 3The system includes a canopy 101, with supporting housings 1 installed on both sides of the bottom of the canopy 101. An arc-shaped supporting tube 302 is fixed to the top of the supporting housing 1, and the arc-shaped supporting tube 302 is attached to the bottom of the canopy 101. An arc-shaped plate 2 is installed at one end of the top of the canopy 101, and an arc-shaped cleaning component is provided on the top of the arc-shaped plate 2. When cleaning dust, impurities, or rain and snow from the surface of the canopy, the first drive motor 203 is started, which drives the gear 204 to rotate. Because the gear 204 meshes with the toothed grooves 201 on the surface of the arc-shaped plate 2, the concave clamping plate 202 can move along the arc-shaped surface of the arc-shaped plate 2. During the movement of the concave clamping plate 202, it drives the connecting plate 205 to move along the arc-shaped top surface of the canopy. The arc-shaped reciprocating movement of the connecting plate 205 scrapes away dust, impurities, or snow from the surface of the canopy, allowing the dust, impurities, or snow to be directly scraped off from the surface of the canopy. Furthermore, a second drive motor 206 and a cleaning brush cylinder 208 are installed at the bottom of the connecting plate 205. During the movement of the connecting plate 205, the second drive motor 206 can be activated to drive the cleaning brush cylinder 208 to rotate. The cleaning brush cylinder 208 rotates and cleans the top surface of the arched shed, thereby further improving the cleaning effect on the surface of the arched shed. This solves the problem of the traditional arched shed device used for Epimedium cultivation, which cleans dust by using a motor to drive a reciprocating threaded rod, thereby driving the cleaning plate to move back and forth on the surface of the arched shed. However, this cleaning method only pushes the dust back and forth during the movement and cannot completely remove the dust. During the reciprocating movement of the cleaning plate, the dust on the surface of the arched shed will be gradually pushed to the two ends of the surface of the arched shed and accumulate, which still requires the staff to manually clean the surface of the arched shed for further cleaning. The overall operation is not convenient enough.
[0021] For details, see Figure 1 The arc-shaped cleaning component includes multiple grooves 201, which are arc-shaped and formed on the surface of the arc-shaped plate 2.
[0022] Further, see Figure 1 A gear 204 is meshed at the top of the tooth groove 201. One end of the gear 204 is connected to a first drive motor 203 via an output shaft. A concave clamping plate 202 is installed at the bottom of the first drive motor 203 and is clamped to one end of the arc-shaped plate 2.
[0023] It is worth noting that, see Figure 2 A connecting plate 205 is fixed to one end of a concave card plate 202. A groove is provided at the bottom of the connecting plate 205, and a second drive motor 206 is installed at one end inside the groove.
[0024] It is worth noting that, see Figure 2The output shaft of the second drive motor 206 is connected to a rotating rod 207 via a coupling. A cleaning brush cylinder 208 passes through the outside of the rotating rod 207, and the position of the cleaning brush cylinder 208 through the rotating rod 207 is fixed.
[0025] It is worth mentioning that, see Figure 3 An installation groove 3 is provided on the inner side of the support shell 1. A cover plate 301 is installed at the opening of the installation groove 3. An electric heating tube 303 is installed inside the installation groove 3. When rainwater or snow accumulates on the surface of the arched shed, the electric heating tube 303 is activated. The electric heating tube 303 begins to generate heat inside the support shell 1. The heat then enters into multiple arc-shaped support tubes 302 connected to it. As the hot air enters the arc-shaped support tubes 302, the arc-shaped support tubes 302 will use the heat they emit to quickly dry the rainwater or snow on the surface of the arched shed. In this way, the situation of the arched shed being crushed and deformed due to excessive accumulation of rainwater or snow is effectively avoided.
[0026] It should be noted that the electric heating element 303 is connected to an external thermostat (model XMTD-7000). The temperature of the electric heating element 303 can be controlled through the thermostat. When the electric heating element 303 is working, the temperature is adjusted by the thermostat. If the temperature is too high, the temperature of the electric heating element 303 is lowered to reduce the heating power of the electric heating element 303 and prevent damage to the arched shed due to excessive temperature. For example, it can prevent the arched shed material from deforming, aging, or even causing fire hazards due to high temperature. If the temperature of the electric heating element 303 is too low, its heating power is adjusted by the thermostat to ensure that the electric heating element 303 can generate enough heat to effectively dry the rainwater or snow on the surface of the arched shed, achieve the ideal drying effect, and ensure the safety and stability of the arched shed structure.
[0027] In the arched shed device, an external power source (such as mains power, diesel generator or solar power system, etc.) is connected to the electric heating tube 303, the first drive motor 203 and the second drive motor 206 to supply power to the electric heating tube 303, the first drive motor 203 and the second drive motor 206.
[0028] When using a greenhouse device for Epimedium cultivation, the first drive motor 203 is started first. The first drive motor 203 drives the gear 204 to rotate. Since the gear 204 meshes with the toothed groove 201 on the surface of the arc-shaped plate 2, the concave clamping plate 202 can move along the arc-shaped surface of the arc-shaped plate 2. During the movement of the concave clamping plate 202, it will drive the connecting plate 205 to move along the arc-shaped top surface of the greenhouse. The arc-shaped reciprocating movement of the connecting plate 205 scrapes away dust, impurities, or snow from the surface of the greenhouse, allowing the dust, impurities, or snow to be directly scraped off from the surface of the greenhouse to the ground. Moreover, a second drive motor 206 and a cleaning brush 208 are provided at the bottom of the connecting plate 205, which can... During the movement of the connecting plate 205, the second drive motor 206 is activated to drive the cleaning brush cylinder 208 to rotate. The cleaning brush cylinder 208 rotates and cleans the top surface of the arched canopy, thereby further improving the cleaning effect on the surface of the arched canopy. When rainwater or snow accumulates on the surface of the arched canopy, the electric heating tube 303 is activated. The electric heating tube 303 begins to generate heat inside the support shell 1. The heat then enters into multiple arc-shaped support tubes 302 connected to it. As the hot air enters the arc-shaped support tubes 302, the arc-shaped support tubes 302 use the heat they emit to quickly dry the rainwater or snow on the surface of the arched canopy. In this way, the situation of the arched canopy being crushed and deformed due to excessive accumulation of rainwater or snow is effectively avoided.
[0029] In addition, all components designed in this utility model are general standard parts or components known to those skilled in the art. Their structure and principle can be learned by those skilled in the art through technical manuals or conventional experimental methods. Those skilled in the art can fully implement them, so there is no need to elaborate. The content protected by this utility model does not involve improvements to the internal structure and method.
Claims
1. A greenhouse device for cultivating Epimedium, comprising a roof (101), characterized in that, Both sides of the bottom of the canopy (101) are equipped with support shells (1), and an arc-shaped support tube (302) is fixed on the top of the support shell (1). The arc-shaped support tube (302) is attached to the bottom of the canopy (101). An arc-shaped plate (2) is installed at one end of the top of the canopy (101), and an arc-shaped cleaning component is provided on the top of the arc-shaped plate (2).
2. The arched shed device for Epimedium cultivation as described in claim 1, characterized in that, The arc-shaped cleaning component includes multiple grooves (201), which are arc-shaped and formed on the surface of the arc-shaped plate (2).
3. The arched shed device for Epimedium cultivation as described in claim 2, characterized in that, A gear (204) meshes with the top of the tooth groove (201). One end of the gear (204) is connected to a first drive motor (203) via an output shaft. A concave clamping plate (202) is installed at the bottom of the first drive motor (203), and the concave clamping plate (202) is engaged with one end of the arc-shaped plate (2).
4. The arched shed device for Epimedium cultivation as described in claim 3, characterized in that, One end of the concave card plate (202) is fixed with a connecting plate (205), and a groove is provided at the bottom of the connecting plate (205). A second drive motor (206) is installed inside the groove.
5. The arched shed device for Epimedium cultivation as described in claim 4, characterized in that, The output shaft of the second drive motor (206) is connected to a rotating rod (207) via a coupling. A cleaning brush cylinder (208) passes through the outside of the rotating rod (207), and the position of the cleaning brush cylinder (208) through the rotating rod (207) is fixed.
6. The arched shed device for Epimedium cultivation as described in claim 1, characterized in that, The inner side of the support housing (1) is provided with an installation groove (3), and a cover plate (301) is installed at the opening of the installation groove (3). An electric heating tube (303) is installed inside the installation groove (3), and an arc-shaped support tube (302) is connected to its top.
Citation Information
Patent Citations
Arched shed device for wild epimedium cultivation
CN220755763U