Liquid microbial agent multi-channel uniform distribution delivery structure
Patent Information
- Application Number
- CN202522124311.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-09
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-10-09
AI Technical Summary
多数传统分配装置难以实现多通道的精准可控分配,要么通道数量固定无法灵活调整,难以满足不同使用场景对菌剂分配通道数量的需求;要么缺乏有效的流量控制机制,无法根据实际需求精确调节各通道的菌剂流量,导致菌剂浪费或使用效果不佳,同时,部分装置的密封性较差,在菌剂输送过程中容易发生泄漏,不仅造成菌剂损失,还可能污染环境,且外界杂质进入会影响菌剂活性,鉴于此我们提出一种液体微生物菌剂多通道均匀分配输送结构来解决现有的问题
1.液体微生物菌剂经主通管流入分配箱内的分流槽,隔板将分流槽分隔为多个分流通道,初步实现菌剂的多向分流,通过安装分流筒,实现多通道可控化,可根据所需的通道,优化呈-个多通道,分流筒通过连接件安装至固定座上,并且通过定位杆和凹槽配合,提高连接稳定性。
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Figure CN224692084U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of liquid microbial agent delivery devices, specifically a multi-channel uniform distribution and delivery structure for liquid microbial agents. Background Technology
[0002] Microbial inoculants are live bacterial preparations made by industrially producing and propagating target microorganisms and then using porous materials as adsorbents to adsorb the fermentation broth of the bacteria. These inoculants are used for seed dressing or root dipping and have the effects of directly or indirectly improving soil, restoring soil fertility, preventing soil-borne diseases, maintaining the balance of rhizosphere microbial flora, and degrading toxic substances. The proper use of agricultural microbial inoculants can increase agricultural yield, improve agricultural product quality, reduce fertilizer use, reduce costs, improve soil, and protect the ecological environment. Most traditional distribution devices struggle to achieve precise and controllable multi-channel distribution. Either the number of channels is fixed and cannot be flexibly adjusted to meet the varying demands of different application scenarios, or they lack an effective flow control mechanism, failing to precisely adjust the flow rate of each channel according to actual needs, leading to waste or poor performance. Furthermore, some devices have poor sealing, making leakage during agent transport easy, resulting in agent loss, potential environmental pollution, and the entry of external impurities that can affect agent activity. Therefore, we propose a multi-channel uniform distribution and transport structure for liquid microbial agents to address these existing problems. Utility Model Content
[0003] The purpose of this invention is to provide a multi-channel uniform distribution and delivery structure for liquid microbial agents to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a multi-channel uniform distribution and conveying structure for liquid microbial agents, including a main pipe, a distribution box, a sealing connection mechanism, a diversion channel, and partitions. The main pipe is fixedly connected to one side of the distribution box, and a diversion channel is provided inside the distribution box. Multiple partitions are equally spaced on the side of the diversion channel away from the main pipe, and a sealing connection mechanism is provided between every two partitions.
[0005] Preferably, the sealing connection mechanism includes a connecting frame, a fixed seat, a first baffle, a diverting cylinder, an inlet pipe, a connector, a positioning rod, a first return spring, a flow port, an outlet, a connecting groove, a second baffle, and a second return spring. The distribution box is fixedly connected to the connecting frame in the diverting groove. The connecting frame passes through the distribution box and is fixedly connected to the fixed seat. The first baffle is slidably connected in the fixed seat. The first return spring is provided between the first baffle and the connecting frame. The inlet pipe is provided in the connecting frame. The first baffle is located on the inlet pipe, and an outlet is opened on one side of the inlet pipe.
[0006] Preferably, a connector is fixedly connected to one side of the diverter cylinder, and the diverter cylinder is movably connected to the fixing frame through the connector. Multiple positioning rods are arranged in a ring on the surface of the diverter cylinder, and a groove is opened on the surface of the fixing seat. The positioning rods and the groove cooperate with each other.
[0007] Preferably, a sealing frame is fixedly connected inside the diverter, a second baffle is slidably connected inside the sealing frame, a second return spring is provided between the second baffle and the sealing frame, and a connecting groove is provided on the side of the sealing frame away from the second return spring.
[0008] Preferably, the connecting groove and the feed pipe are mutually compatible, and the sealing frame has a flow port inside the diverter cylinder, and the discharge port and the flow port are mutually compatible.
[0009] Compared with the prior art, the beneficial effects of this utility model are: 1. Liquid microbial inoculant flows into the distribution tank through the main pipe. The partition divides the distribution tank into multiple distribution channels, initially realizing multi-directional distribution of the inoculant. By installing the distribution cylinder, multi-channel controllability is achieved. It can be optimized into a multi-channel configuration according to the required channels. The distribution cylinder is installed on the fixed base through the connector, and the connection stability is improved by the cooperation of the positioning rod and the groove.
[0010] 2. During the installation of the connector, the first baffle is pushed to move. The first baffle moves upward against the elastic force of the first return spring, opening the feed channel. After the bacterial agent flows into the feed pipe, the feed pipe enters the connecting groove. The feed pipe pushes the second baffle to compress the second return spring, aligning the discharge port with the flow port. The bacterial agent flows out through the flow port to complete the distribution. After the distributor is disassembled, the first and second return springs quickly release their elastic force, resetting the first and second baffles respectively, closing the feed channel and the bacterial agent discharge channel. This effectively prevents bacterial agent leakage and the entry of external impurities, ensuring the system's sealing and the purity of the bacterial agent. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the internal structure of the diversion channel in this utility model; Figure 3 This is a schematic diagram of the sealing connection mechanism in this utility model; Figure 4 This is a schematic diagram of the internal structure of the sealing connection mechanism in this utility model.
[0012] In the diagram: 1. Main pipe; 2. Distribution box; 3. Sealing connection mechanism; 301. Connecting frame; 302. Fixed seat; 303. First baffle; 304. Diverter cylinder; 305. Feed pipe; 306. Connecting piece; 307. Positioning rod; 308. First return spring; 309. Flow port; 310. Discharge port; 311. Connecting groove; 312. Second baffle; 313. Second return spring; 314. Sealing frame; 4. Diverter groove; 5. Partition plate. Detailed Implementation
[0013] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this utility model. Furthermore, descriptions of well-known structures and technologies are omitted in the following description to avoid unnecessarily obscuring the concept of this utility model.
[0014] like Figures 1-4 As shown, the present invention proposes a multi-channel uniform distribution and delivery structure for liquid microbial agents, including a main pipe 1, a distribution box 2, a sealing connection mechanism 3, a diversion channel 4, and partitions 5. The main pipe 1 is fixedly connected to one side of the distribution box 2, and a diversion channel 4 is provided inside the distribution box 2. Multiple partitions 5 are arranged at equal intervals on the side of the diversion channel 4 away from the main pipe 1, and a sealing connection mechanism 3 is provided between every two partitions 5.
[0015] In an optional embodiment, the sealing connection mechanism 3 includes a connecting frame 301, a fixed seat 302, a first baffle 303, a diverter 304, an inlet pipe 305, a connector 306, a positioning rod 307, a first return spring 308, a flow port 309, an outlet 310, a connecting groove 311, a second baffle 312, and a second return spring 313. The distribution box 2 is fixedly connected to the connecting frame 301 in the diverter 4. The connecting frame 301 passes through the distribution box 2 and is fixedly connected to the fixed seat 302. The first baffle 303 is slidably connected in the fixed seat 302. The first return spring 308 is provided between the first baffle 303 and the connecting frame 301. The inlet pipe 305 is provided in the connecting frame 301. The first baffle 303 is located on the inlet pipe 305. An outlet 310 is opened on one side of the inlet pipe 305.
[0016] In an optional embodiment, a connector 306 is fixedly connected to one side of the diverter 304, the diverter 304 is movably connected to the fixing frame through the connector 306, and a plurality of positioning rods 307 are arranged in a ring on the surface of the diverter 304, and a groove is opened on the surface of the fixing seat 302, and the positioning rods 307 and the groove cooperate with each other. Liquid microbial agent flows into the distribution tank 4 in the distribution box 2 through the main pipe 1. The partition 5 divides the distribution tank 4 into multiple distribution channels, initially realizing the multi-directional distribution of the agent. By installing the distribution cylinder 304, multi-channel controllability is achieved. It can be optimized into 2-4 multi-channels according to the required channels. The distribution cylinder 304 is installed on the fixed base 302 through the connector 305, and the connection stability is improved by the positioning rod 307 and the groove.
[0017] In an optional embodiment, a sealing frame 314 is fixedly connected inside the diverter 304, a second baffle 312 is slidably connected inside the sealing frame 314, a second return spring 313 is provided between the second baffle 312 and the sealing frame 314, and a connecting groove 311 is provided on the side of the sealing frame 314 away from the second return spring 313.
[0018] In an optional embodiment, the connecting groove 311 and the feed pipe 305 cooperate with each other, and the sealing frame has a flow port 309 in the diversion cylinder 304, and the discharge port 310 and the flow port 309 cooperate with each other. When the connector 305 is installed, it pushes the first baffle 303 to move. The first baffle 303 moves upward against the elastic force of the first return spring 308, opening the feed channel. After the bacterial agent flows into the feed pipe 305, the feed pipe 305 enters the connecting groove 311. The feed pipe 305 pushes the second baffle 312 to compress the second return spring 313, so that the outlet 310 is aligned with the flow port 309. The bacterial agent flows out through the flow port 309 to complete the distribution. After the distributor cylinder 304 is disassembled, the first return spring 308 and the second return spring 313 quickly release their elastic force, resetting the first baffle 303 and the second baffle 312 respectively, closing the feed channel and the bacterial agent outflow channel, effectively preventing bacterial agent leakage and the entry of external impurities, and ensuring the system's sealing and the purity of the bacterial agent.
[0019] The working principle of this utility model is as follows: When using this device, the liquid microbial agent flows into the distribution tank 4 in the distribution box 2 through the main pipe 1. The partition 5 divides the distribution tank 4 into multiple distribution channels, initially realizing the multi-directional distribution of the agent. By installing the distribution cylinder 304, the multi-channel controllability is realized. It can be optimized into 2-4 multi-channels according to the required channels. The distribution cylinder 304 is installed on the fixed base 302 through the connector 305, and the connection stability is improved by the positioning rod 307 and the groove. Simultaneously, when the connector 305 is installed, it pushes the first baffle 303 to move. The first baffle 303 overcomes the elastic force of the first return spring 308 and moves upward, opening the feed channel. After the bacterial agent flows into the feed pipe 305, the feed pipe 305 enters the connecting groove 311. The feed pipe 305 pushes the second baffle 312 to compress the second return spring 313, so that the outlet 310 is aligned with the flow port 309. The bacterial agent flows out through the flow port 309 to complete the distribution. After the distributor cylinder 304 is disassembled, the first return spring 308 and the second return spring 313 quickly release their elastic force, resetting the first baffle 303 and the second baffle 312 respectively, closing the feed channel and the bacterial agent outflow channel, effectively preventing bacterial agent leakage and the entry of external impurities, and ensuring the system's sealing and the purity of the bacterial agent.
[0020] It should be understood that the specific embodiments described above are for illustrative purposes or to explain the principles of this utility model, and do not constitute a limitation thereof. Therefore, any modifications, equivalent substitutions, improvements, etc., made without departing from the spirit and scope of this utility model should be included within its protection scope. Furthermore, the appended claims are intended to cover all variations and modifications falling within the scope and boundaries of the appended claims, or equivalent forms of such scope and boundaries.
Claims
1. A multi-channel uniform distribution and delivery structure for liquid microbial agents, characterized in that: It includes a main pipe (1), a distribution box (2), a sealing connection mechanism (3), a diversion channel (4) and a partition (5). The main pipe (1) is fixedly connected to one side of the distribution box (2), and a diversion channel (4) is opened inside the distribution box (2). Multiple partitions (5) are arranged at equal distances on the side of the diversion channel (4) away from the main pipe (1), and a sealing connection mechanism (3) is provided between every two partitions (5).
2. The multi-channel uniform distribution and delivery structure for liquid microbial agents according to claim 1, characterized in that: The sealing connection mechanism (3) includes a connecting frame (301), a fixed base (302), a first baffle (303), a diverter (304), an inlet pipe (305), a connector (306), a positioning rod (307), a first return spring (308), a flow port (309), a discharge port (310), a connecting groove (311), a second baffle (312), and a second return spring (313). The distribution box (2) is fixedly connected to the connecting frame in the diverter groove (4). (301) The connecting frame (301) passes through the distribution box (2) and is fixedly connected to the fixed seat (302). The fixed seat (302) is slidably connected to the first baffle (303). The first baffle (303) and the connecting frame (301) are provided with a first reset spring (308). The connecting frame (301) is provided with an inlet pipe (305). The first baffle (303) is located on the inlet pipe (305). The inlet pipe (305) has an outlet (310) on one side.
3. The multi-channel uniform distribution and delivery structure for liquid microbial agents according to claim 2, characterized in that: A connector (306) is fixedly connected to one side of the diverter (304). The diverter (304) is movably connected to the fixed frame through the connector (306). Multiple positioning rods (307) are arranged in a ring on the surface of the diverter (304). A groove is opened on the surface of the fixed seat (302). The positioning rods (307) and the groove cooperate with each other.
4. The multi-channel uniform distribution and delivery structure for liquid microbial agents according to claim 3, characterized in that: A sealing frame (314) is fixedly connected inside the diverter (304), and a second baffle (312) is slidably connected inside the sealing frame (314). A second reset spring (313) is provided between the second baffle (312) and the sealing frame (314), and a connecting groove (311) is provided on the side of the sealing frame away from the second reset spring (313).
5. The multi-channel uniform distribution and delivery structure for liquid microbial agents according to claim 4, characterized in that: The connecting groove (311) and the feed pipe (305) cooperate with each other, and the sealing frame (314) opens a flow port (309) in the diversion cylinder (304), and the discharge port (310) and the flow port (309) cooperate with each other.