Spiral microbial reactor
By introducing a movable seat, locking device, and plug-in device into the spiral microbial reactor, the problem of cumbersome installation of multiple pipes in the prior art is solved, and a fast and stable pipe connection is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2026-03-06
AI Technical Summary
The existing spiral microbial reactor is cumbersome, time-consuming and labor-intensive to install multiple pipes, and the existing technology is difficult to complete the installation of multiple pipes efficiently.
The system employs a movable base, locking device, fixing device, and plug-in device. Distances are marked with a ruler, the movable base is fixed using the locking device, and the plug-in device connects the bends and straight pipes, enabling the rapid installation of multiple pipes.
It enables rapid and stable installation of multiple pipelines, improves installation efficiency, and simplifies the operation process.
Smart Images

Figure CN223974081U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of bioscience and technology, specifically a spiral microbial reactor. Background Technology
[0002] In existing helical microbial reactors, the installation of the helical tubes typically relies on manual adjustment of the straight tube spacing. For example, the traditional method requires determining the spacing between adjacent straight tubes based on the distance between the two ends of the U-shaped tube, and repeatedly measuring, marking, and adjusting the position of the straight tubes on the mounting base. This installation method has the following drawbacks: it is cumbersome to operate, requiring multiple measurements, positioning, and fixing, which is time-consuming and labor-intensive. Chinese patent CN216692531U discloses a connection device for a tubular photobioreactor. Specifically, it discloses a method where a threaded post and a nut are used to place the pipe into the inner wall of the installation frame. Rotating the threaded post causes a clamping plate to hold the pipe. Rotating the nut, using the helical transmission between the nut and the threaded post, allows the installation frame to move up and down within the installation groove, thereby adjusting the distance between the two pipes. This facilitates the connection of bent pipes and improves connection efficiency. While this patent effectively utilizes the up-and-down movement of the installation frame to adjust the distance between the two pipes, it still has problems. Because this patent uses the rotation of the nut and threaded post, it is only applicable to two pipes. When multiple pipes are involved, this patent obviously cannot complete the installation of multiple pipes. Therefore, there is an urgent need for a spiral-type microbial reactor capable of installing multiple pipes. Utility Model Content
[0003] The technical problem to be solved by this utility model is to provide a spiral microbial reactor that can complete the installation of multiple pipes.
[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a spiral microbial reactor, comprising:
[0005] The base plate has support plates on both sides, and the support plates are perpendicular to the base plate.
[0006] A movable seat, several movable seats are movably connected to a support plate along the vertical direction, and a fixing device is provided on the movable seat for fixing the straight pipe;
[0007] Locking device, used to fix the movable seat to the support plate;
[0008] The two ends of the bend are connected to the straight pipe via a plug-in device;
[0009] A ruler is attached to the Y-axis side of the support plate.
[0010] Furthermore, the fixing device includes a first clamp and a second clamp. The first clamp is connected to the movable seat, and the outer wall of the pipe is locked by the second clamp.
[0011] Furthermore, the locking device includes a threaded post and a nut. The support plate has a strip-shaped opening, and the inner wall of the strip-shaped opening has limiting grooves on both sides. The movable seat has limiting protrusions on both sides that are slidably connected to the limiting grooves. The threaded post is connected to the Y-direction side of the movable seat, and one end of the threaded post extends to the outside of the Y-direction side of the strip-shaped opening. The movable seat is fixed to the support plate by the cooperation of the nut and the threaded post.
[0012] Furthermore, the insertion device includes a connector sleeve, a plug block, and a spring. The connector sleeve has an internal thread, and one end of the straight tube has an external thread that matches the internal thread. The outer wall of the connector sleeve has a through-hole that matches the plug block. One end of the bent tube has a groove on its outer wall, and the spring is connected to the groove. The axis of the spring is perpendicular to the axis of the straight tube, and the plug block is connected to the spring.
[0013] Furthermore, the shape of the limiting port is rectangular.
[0014] The beneficial effects of this utility model are as follows: by setting up a movable seat, a locking device, a fixing device, and a plug-in device for the bend, the straight pipe is fixed by the fixing device, and then several movable seats move on the support plate and are locked by the locking device, so that the distance between two adjacent straight pipes is equal to the distance between the two ends of the bend. Finally, the bend and the straight pipe are connected by the plug-in device, and the spiral tube reactor can be installed. Compared with the prior art, it can complete the installation of multiple pipes. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of a spiral microbial reactor according to a specific embodiment of the present invention;
[0016] Figure 2 This is a schematic diagram of the structure of a spiral microbial reactor according to a specific embodiment of the present invention;
[0017] Figure 3 for Figure 1 Enlarged view of part A;
[0018] Figure 4 This is a front view of a spiral microbial reactor according to a specific embodiment of the present invention;
[0019] Figure 5 for Figure 4 A-axis cross-sectional perspective;
[0020] Figure 6 This is a schematic diagram of the insertion device structure of a spiral microbial reactor according to a specific embodiment of the present invention.
[0021] Label Explanation
[0022] 1. Base plate; 11. Support plate;
[0023] 2. Movable seat; 21. Fixing device; 211. First clamp; 212. Second clamp; 22. Limiting protrusion;
[0024] 3. Locking device; 31. Threaded post; 32. Nut;
[0025] 4. Bend; 41. Groove;
[0026] 5. Plug-in device; 51. Connector sleeve; 511. Limiting port; 52. Insert block; 53. Spring;
[0027] 6. Ruler. Detailed Implementation
[0028] To explain in detail the technical content, objectives, and effects of this utility model, the following description is provided in conjunction with the embodiments and accompanying drawings.
[0029] Please refer to Figures 1 to 6 A spiral microbial reactor, comprising:
[0030] The base plate 1 has support plates 11 on both sides, and the support plates 11 are perpendicular to the base plate 1.
[0031] Movable seat 2, several movable seats 2 are movably connected to support plate 11 in the vertical direction, and fixed device 21 is provided on movable seat 2 for fixing straight pipe;
[0032] Locking device 3, used to fix the movable seat 2 on the support plate 11;
[0033] The two ends of the bend 4 are connected to the straight pipe via the plug-in device 5.
[0034] Scale 6 is connected to the Y-direction side of support plate 11.
[0035] In the above embodiments, by measuring the distance between the two ends of the U-shaped pipe, the movable seat 2 is moved, and the distance between the two straight pipes is made equal to the distance between the two ends of the U-shaped pipe by using the markings on the scale 6. Then, the locking device 3 locks the movable seat 2 onto the support plate 11 to prevent the movable seat 2 from shifting. Then, the two ends of the bend 4 are connected to the straight pipe by the plug-in device 5. Compared with the prior art, the installation of multiple pipes can be completed quickly.
[0036] As an optional implementation, the fixing device 21 includes a first clamp 211 and a second clamp 212. The first clamp 211 is connected to the movable seat 2, and the second clamp 212 locks the outer wall of the pipe.
[0037] In the above embodiments, the straight pipe can be fixed on the support base.
[0038] As an optional implementation, the locking device 3 includes a threaded post 31 and a nut 32. The support plate 11 is provided with a strip-shaped opening, and the inner wall of the strip-shaped opening is provided with limiting grooves on both sides. The movable seat 2 is provided with limiting protrusions 22 that are slidably connected to the limiting grooves on both sides. The threaded post 31 is connected to the Y-direction side of the movable seat 2, and one end of the threaded post 31 extends to the outside of the Y-direction side of the strip-shaped opening. The movable seat 2 is fixed to the support plate 11 by the cooperation of the nut 32 and the threaded post 31.
[0039] As an optional implementation, the plug-in device 5 includes a connector sleeve 51, a plug block 52, and a spring 53. The connector sleeve 51 has an internal thread, and one end of the straight tube has an external thread that matches the internal thread. The outer wall of the connector sleeve 51 has a through-hole 511 that matches the plug block 52. One end of the bent tube 4 has a groove 41 on its outer wall, and the spring 53 is connected in the groove 41. The axis of the spring 53 is perpendicular to the axis of the straight tube, and the plug block 52 is connected to the spring 53.
[0040] In the above embodiment, the connector sleeve 51 is threaded to one end of the straight pipe, and then one end of the bent pipe 4 is inserted into the connector sleeve 51. The insert block 52 is held in place by both hands, so that the insert block 52 enters the connector sleeve 51. The spring 53 is compressed, and the insert block 52 presses against the inner wall of the connector sleeve 51. When the insert block 52 enters the limiting port 511, the spring 53 rebounds, so that the insert block 52 is inserted into the limiting port 511, thus connecting both ends of the bent pipe 4 to the straight pipe.
[0041] As an optional implementation, the limiting port 511 is rectangular in shape.
[0042] In the above embodiments, the connection between the straight pipe and the bent pipe 4 can be made more stable by the cooperation of the rectangular limiting port 511 and the insertion block 52.
[0043] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent modifications made based on the content of this utility model specification and drawings, or direct or indirect applications in related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A spiral microbial reactor, characterized in that, The utility model relates to a kind of pipe bending machine, including: Bottom plate, both sides of bottom plate are equipped with support plate, support plate is perpendicular to bottom plate; Moving seat, several moving seats are connected in vertical direction movably on support plate, fixed device is equipped on moving seat, and fixed device is used to fix straight pipe line; Locking device, locking device is used to fix moving seat on support plate; Elbow pipe, both ends of elbow pipe are connected with straight pipe by inserting device; Scale, scale is connected on the Y side of support plate.
2. The spiral microbial reactor according to claim 1, characterized in that, Fixed device includes first hoop and second hoop, first hoop is connected on moving seat, and the outer wall of pipe line is locked by second hoop.
3. The spiral microbial reactor according to claim 1, wherein Locking device includes threaded column and nut, support plate is equipped with strip-shaped mouth, the inner wall of strip-shaped mouth is equipped with limiting slot on both sides, the both sides of moving seat are equipped with limiting lug with the sliding connection of limiting slot, threaded column is connected on the Y side of moving seat, one end of threaded column extends to the Y side outside of strip-shaped opening, and moving seat is fixed on support plate by the cooperation of nut and threaded column.
4. The spiral microbial reactor of claim 1, wherein, Inserting device includes joint sleeve, plug and spring, inner thread is equipped in joint sleeve, one end of straight pipe is equipped with outer thread matched with inner thread, outer wall on joint sleeve is equipped with through limiting mouth, limiting mouth is matched with plug, recess is equipped on the outer wall of one end of elbow pipe, spring is connected in recess, the axial direction of spring is perpendicular to the axial direction of straight pipe, plug is connected on spring.
5. The spiral microbial reactor of claim 1, wherein, The shape of limiting mouth is rectangle.