Intestinal microorganism regulating device based on artificial intelligence
Through an intestinal microbial regulation device based on artificial intelligence, gastrointestinal data processor and precise detection, the problem of diarrhea patients aggravated by traditional massage is solved, and personalized intestinal regulation and healthy recovery is achieved.
Patent Information
- Application Number
- CN202510387891.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During massage of existing intestinal microbial regulation devices, patients with diarrhea may worsen the symptoms of diarrhea due to improper massage, which will cause diarrhea symptoms to worsen due to lack of targeted intervention.
An intestinal microbial regulation device based on artificial intelligence is used to capture peristaltic rhythm, pH and temperature information through a gastrointestinal data processor, and combine accurate microbial flora detection and image shooting to design a personalized regulation strategy to avoid aggravation of intestinal peristalsis.
Accurate diagnosis and personalized treatment of diarrhea patients is achieved, avoiding the aggravation of symptoms caused by traditional massage, and improving the pertinence and safety of intestinal regulation.
Smart Images

Figure CN120240934A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of gastrointestinal treatment, and particularly relates to an intestinal microbiota regulation device based on artificial intelligence. Background Art
[0002] In the fields of modern medicine and health science, the profound impact of the gut microbiota on human health has attracted increasing attention. A vast number and variety of microorganisms inhabit the human intestine, including bacteria, fungi, viruses, etc., which form a complex and delicate ecosystem and are deeply involved in multiple physiological functions of the human body. On the one hand, gut microbiota play a key role in digestion and metabolism. Many microorganisms have enzyme systems that can assist in decomposing indigestible components in food. For example, dietary fiber is fermented by specific bacteria into short-chain fatty acids, which provide energy for intestinal epithelial cells and maintain the integrity of the intestinal barrier. On the other hand, gut microbiota interact closely with the immune system and are core elements in shaping and regulating immune function. Under normal circumstances, they maintain immune homeostasis and resist pathogen invasion by "communicating" with immune cells.
[0003] After retrieval, a patent with the Chinese patent number CN117883280A discloses an intestinal microbiota regulation device based on artificial intelligence, including a regulation device housing. Inside the regulation device housing, there is an abdominal massage mechanism, and the abdominal massage mechanism includes a massage cover, and the massage cover is arranged inside the regulation device housing.
[0004] The above device regulates the intestinal bacteria by forming massage and heating, but when regulating by promoting gastrointestinal digestion, the intestines may react differently to the massage. For example, in the case of diarrhea patients, the diarrhea symptoms may worsen due to the increased intestinal peristalsis caused by the massage. Summary of the Invention
[0005] The purpose of the present invention is to solve the problem that when regulating by promoting gastrointestinal digestion through massage, since the intestines may react differently to the massage, for example, diarrhea patients may experience worsening of diarrhea symptoms due to increased intestinal peristalsis during massage, and thus propose an intestinal microbiota regulation device based on artificial intelligence.
[0006] To achieve the above purpose, the present invention adopts the following technical solutions:
[0007] An intestinal microbiota regulation device based on artificial intelligence, comprising an ingestible shell. Inside the ingestible shell, there is an output motor. The output motor is fixedly connected to a third bevel gear. The third bevel gear is meshed with a fourth bevel gear. On one side of the fourth bevel gear, there is a collection mechanism. The collection mechanism includes a disc bin arranged on the side of the fourth bevel gear. The surface of the disc bin is provided with a second collection port. Inside the disc bin, there is a detection cavity. At the bottom of the detection cavity, there is a gastrointestinal detector. On one side of the gastrointestinal detector, there is a sensing motor block. Above the sensing motor block, there is a first bevel gear rotatably connected. The first bevel gear is meshed with a second bevel gear. On the side of the second bevel gear, there is a winding rod fixedly connected. The surface of the winding rod is wound with a winding rope for dragging the cover plate. The surface of the ingestible shell is provided with a first collection port.
[0008] The above technical solution further includes:
[0009] On the side of the ingestible shell, there is an anti-retention glass fixedly connected. On one side of the anti-retention glass, there is a power supply fixing block. On the side of the ingestible shell away from the power supply fixing block, there is a gastrointestinal data processor. The surface of the ingestible shell is provided with a first collection port.
[0010] Inside the ingestible shell, there is a first fixing plate fixedly connected. On the side of the first fixing plate, there is a second fixing plate. On the side of the second fixing plate, there is a fixing plate block fixedly connected. Above the fixing plate block, there is an output motor. The output motor is rotatably connected to a third bevel gear.
[0011] Inside the disc bin, there are multiple detection cavities. On the side of the pawl, there is a compression spring fixedly connected. The compression spring is fixed inside the ring. One end of the support rod is provided with a camera. On the side of the ring, there is a fixing strip. The fixing strip is rotatably connected to a pawl. The support rod is rotatably connected to a ratchet. One end of the ratchet is fixedly connected to a fifth bevel gear. The fifth bevel gear is meshed with the third bevel gear. Aiming at the problem that the intestines respond differently to traditional conditioning means such as massage, especially that diarrhea patients are prone to aggravate symptoms due to improper massage, this device abandons the general and lack of targeted intervention methods. Through the gastrointestinal data processor, basic information such as the rhythm of gastrointestinal peristalsis, pH value and temperature is carefully captured, combined with the subsequent precise detection and imaging of the microbial flora in the intestines.
[0012] The ingestible shell is fixedly connected to the second fixing plate. The second fixing plate is rotatably connected to the fifth bevel gear.
[0013] The fourth bevel gear is rotatably connected to the fixed plate. A connecting block for support is provided on one side of the second bevel gear. The anti-retention glass has the property of preventing intestinal substances from being retained. The fixed plate is fixed on one side of the second fixed disk. During the intestinal internal sampling process, it has high intelligence and accuracy. Initially, the misaligned layout of the first collection port and the second collection port is like a protective gate, blocking the gastrointestinal contents from mixing into the key parts during non-detection periods, ensuring the stable operation of the device. Once it reaches the predetermined detection area, with the cooperation of the output motor, the sensing motor block and a series of delicate gear structures, the sampling process is driven in an orderly manner.
[0014] The present invention has the following beneficial effects:
[0015] 1. In the present invention, in view of the fact that the intestines respond differently to traditional conditioning means such as massage, especially for diarrhea patients who are prone to aggravated symptoms due to improper massage, this device abandons the general and lack of targeted intervention methods. By carefully capturing basic information such as the rhythm of gastrointestinal peristalsis, pH value, and temperature through the gastrointestinal data processor, combined with the subsequent precise detection of the microbial flora and imaging in the intestine, it effectively identifies the group of diarrhea patients with sensitive intestines and vulnerable to external stimuli. When formulating the conditioning plan, it cleverly avoids operations that may aggravate intestinal peristalsis and instead implements a gentle and personalized microbial regulation strategy.
[0016] 2. In the present invention, the intestinal internal sampling process has high intelligence and accuracy. Initially, the misaligned layout of the first collection port and the second collection port is like a protective gate, blocking the gastrointestinal contents from mixing into the key parts during non-detection periods, ensuring the stable operation of the device. Once it reaches the predetermined detection area, with the cooperation of the output motor, the sensing motor block and a series of delicate gear structures, the sampling process is driven in an orderly manner. Multiple detection cavities collect intestinal samples as needed, and then the gastrointestinal detector immediately conducts professional flora detection. The detection data is quickly and accurately transmitted to the supporting software through the gastrointestinal data processor. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic structural diagram of an intestinal microbial regulation device based on artificial intelligence proposed by the present invention;
[0018] Figure 2 is an internal structural schematic diagram of an intestinal microbial regulation device based on artificial intelligence in the present invention;
[0019] Figure 3 is a schematic structural diagram of the collection mechanism of an intestinal microbial regulation device based on artificial intelligence in the present invention;
[0020] Figure 4 is for Figure 3 the enlarged schematic diagram at A in
[0021] Figure 5 The partial structural schematic diagram of an intestinal microbiota regulation device based on artificial intelligence in the present invention;
[0022] Figure 6 The structural schematic diagram of the collection port of an intestinal microbiota regulation device based on artificial intelligence in the present invention;
[0023] Figure 7 is Figure 6 The enlarged schematic diagram at position B in
[0024] In the figure: 1, ingestible outer shell; 2, gastrointestinal data processor; 3, anti-retention glass; 4, power supply fixing block; 5, first collection port; 6, first fixing disk; 7, second fixing disk; 8, disk bin; 9, second collection port; 10, cover plate; 11, sensing motor block; 12, gastrointestinal detector; 13, first bevel gear; 14, second bevel gear; 15, winding rod; 16, winding rope; 17, fixing plate block; 18, output motor; 19, third bevel gear; 20, fourth bevel gear; 21, fifth bevel gear; 22, ring; 23, fixing strip; 24, pawl; 25, compression spring; 26, ratchet; 27, support rod; 28, camera; 29, detection cavity. Detailed implementation manners
[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0026] Please refer to Figures 1-7 As shown in the figure, the present invention is an intestinal microbiota regulation device based on artificial intelligence, including an ingestible outer shell 1. An output motor 18 is arranged inside the ingestible outer shell 1. The output motor 18 is fixedly connected with a third bevel gear 19. The third bevel gear 19 is meshed and connected with a fourth bevel gear 20. A collection mechanism is arranged on one side of the fourth bevel gear 20. The collection mechanism includes a disk bin 8 arranged on the side of the fourth bevel gear 20. A second collection port 9 is opened on the surface of the disk bin 8. A detection cavity 29 is arranged inside the disk bin 8. A gastrointestinal detector 12 is arranged at the bottom of the detection cavity 29. A sensing motor block 11 is arranged on one side of the gastrointestinal detector 12. A first bevel gear 13 is rotatably connected above the sensing motor block 11. The first bevel gear 13 is meshed and connected with a second bevel gear 14. A winding rod 15 is fixedly connected to the side of the second bevel gear 14. A winding rope 16 for dragging the cover plate 10 is wound on the surface of the winding rod 15. A first collection port 5 is opened on the surface of the ingestible outer shell 1.
[0027] In one embodiment, for the above, a retention-preventing glass 3 is fixedly connected to the side of the ingestible shell 1. A power supply fixing block 4 is provided on one side of the retention-preventing glass 3. A gastrointestinal data processor 2 is provided on the side of the ingestible shell 1 away from the power supply fixing block 4. A first collection port 5 is formed on the surface of the ingestible shell 1.
[0028] In this embodiment, by using the retention-preventing glass, the detection substances in the gastrointestinal tract can be well prevented from accumulating on its surface.
[0029] In one embodiment, for the above ingestible shell 1, a first fixing plate 6 is fixedly connected inside the ingestible shell 1. A second fixing plate 7 is provided on the side of the first fixing plate 6. A fixing plate block 17 is fixedly connected to the side of the second fixing plate 7. An output motor 18 is provided above the fixing plate block 17. The output motor 18 is rotationally connected to a third bevel gear 19.
[0030] In one embodiment, for the above disk bin 8, a plurality of detection cavities 29 are formed inside the disk bin 8. A compression spring 25 is fixedly connected to the side of the pawl 24. The compression spring 25 is fixed inside the ring 22.
[0031] In this embodiment, by using the disk bin 8, multiple positions in the gastrointestinal tract can be well detected, increasing the reliability.
[0032] In one embodiment, for the above ingestible shell 1, the ingestible shell 1 is fixedly connected to the second fixing plate 7, and the second fixing plate 7 is rotationally connected to a fifth bevel gear 21.
[0033] In one embodiment, for the above fourth bevel gear 20, the fourth bevel gear 20 is rotationally connected to the fixing plate block 17, and a connecting block for support is provided on one side of the second bevel gear 14.
[0034] In this embodiment, by using multiple groups of gears in cooperation, the overall stability of the device can be well increased.
[0035] In one embodiment, for the above retention-preventing glass 3, the retention-preventing glass 3 has the property of preventing intestinal substances from staying. The fixing plate block 17 is fixed to one side of the second fixing plate 7.
[0036] In this embodiment, by using the retention-preventing glass, it is convenient for the camera to take pictures in time, preventing the phenomenon of obstruction and resulting in inaccurate shooting positions.
[0037] The working principle of an intestinal microbiota regulation device based on artificial intelligence in the present invention is that the examiner first scans the QR code on the surface of the ingestible shell 1 with a mobile phone to bind the device with the examiner's information, laying a foundation for subsequent data tracking and analysis. Subsequently, the device wrapped by the ingestible shell 1 is taken according to the doctor's advice. After the device enters the gastrointestinal tract, it waits for the response of the supporting software and enters the standby state.
[0038] The gastrointestinal data processor 2 can sensitively sense the basic information of the gastrointestinal tract of the user, such as peristaltic rhythm, pH value, temperature, etc. While grasping the basic state of the gastrointestinal tract, it also provides a basis for subsequent precise detection and operation. The whole device moves forward following the peristalsis of the gastrointestinal tract.
[0039] In the initial stage, the first collection port 5 and the second collection port 9 are in a misaligned state, playing a protective role in preventing gastrointestinal contents from prematurely entering the internal key parts. When reaching the gastrointestinal detection area, the output motor 18 starts to rotate, driving the fifth bevel gear 21 to rotate synchronously with the fourth bevel gear 20, and then driving the ratchet wheel 26 to rotate forward. Each time its edge rotates, it squeezes the pawl 24. The pawl 24 continuously adheres to the side of the ratchet wheel 26 under the support of the compression spring 25. At the same time, the fourth bevel gear 20 rotates to drive the disc bin 8 to rotate inside the ingestible shell 1. When reaching the designated detection area, the first collection port 5 and the second collection port 9 are precisely aligned to form a channel. Given that the holes of both are relatively small, it is difficult for external pressure to directly press gastrointestinal contents into the detection cavity 29.
[0040] At this time, driven by the control software, the sensing motor block 11 rotates, driving the first bevel gear 13 to mesh and drive, prompting the winding rod 15 fixed on one side of the second bevel gear 14 to rotate. The winding rod 15 rotates to wind the winding rope 16 on its own surface. During this process, the cover plate 10 is dragged to slide on the inner wall of the disc bin 8. Multiple detection cavities 29 inside the disc bin 8 collect gastrointestinal contents as needed. The collected samples are then subjected to flora detection by the gastrointestinal detector 12, and the detection data is transmitted to the supporting software through the gastrointestinal data processor 2.
[0041] After the sample collection and detection are completed, the output motor 18 rotates in the reverse direction. The ratchet wheel 26 abuts against the pawl 24, driving the ring 22 to rotate on the side of the first fixed disk 6. The support rod 27 fixed on the side of the ring 22 drives the camera 28 to rotate. The camera 28 takes pictures of the inside of the gastrointestinal tract through the anti-stagnation glass 3. If there is an angle blockage, since there are multiple cameras on the side of the ring 22, clear images can be obtained by rotating the angle to overcome the obstacle.
[0042] Finally, the examiner comprehensively analyzes based on the flora detection data and the images taken inside the gastrointestinal tract. Then, the software analyzes the flora and the doctor analyzes to accurately judge the gastrointestinal condition of the patient, so as to prescribe the right medicine and implement a targeted treatment plan, effectively regulating the gastrointestinal microbiota environment of the patient and helping the gastrointestinal tract to recover to a healthy state.
[0043] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will understand that various changes, modifications, substitutions and permutations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An intestinal microbiota regulation device based on artificial intelligence, characterized in that, It includes an ingestible shell (1). Inside the ingestible shell (1), there is an output motor (18). The output motor (18) is fixedly connected to a third bevel gear (19). The third bevel gear (19) is meshed with a fourth bevel gear (20). On one side of the fourth bevel gear (20), there is a collection mechanism. The collection mechanism includes a disc bin (8) arranged on the side of the fourth bevel gear (20). The surface of the disc bin (8) is provided with a second collection port (9). Inside the disc bin (8), there is a detection cavity (29). At the bottom of the detection cavity (29), there is a gastrointestinal detector (12). On one side of the gastrointestinal detector (12), there is a sensing motor block (11). Above the sensing motor block (11), there is a first bevel gear (13) rotatably connected. The first bevel gear (13) is meshed with a second bevel gear (14). On the side of the second bevel gear (14), there is a winding rod (15) fixedly connected. The surface of the winding rod (15) is wound with a winding rope (16) for dragging a cover plate (10). The surface of the ingestible shell (1) is provided with a first collection port (5). After taking the ingestible shell (1), the output motor (18) rotates to drive the third bevel gear (19) to rotate. The third bevel gear (19) drives the fourth bevel gear (20) to rotate. The fourth bevel gear (20) drives the disc bin (8) to rotate. The disc bin (8) rotates to align the first collection port (5) with the second collection port (9). The sensing motor block (11) rotates to drive the first bevel gear (13) to mesh with the second bevel gear (14). The second bevel gear (14) drives the winding rod (15) to wind the winding rope (16). The winding rope (16) drags the cover plate (10) to descend. The gastrointestinal detection substance is sucked into the detection cavity (29). Rotate the output motor (18) to other positions and continue to use the next detection cavity (29) to collect the detection substances at other positions of the gastrointestinal tract. After collection, use the gastrointestinal detector (12) to record the detailed parameters.
2. The intestinal microbiota regulation device based on artificial intelligence according to claim 1, wherein On the side of the ingestible shell (1), there is an anti-retention glass (3) fixedly connected. On one side of the anti-retention glass (3), there is a power supply fixing block (4). On the side of the ingestible shell (1) far from the power supply fixing block (4), there is a gastrointestinal data processor (2). The surface of the ingestible shell (1) is provided with a first collection port (5).
3. The intestinal microbiota regulation device based on artificial intelligence according to claim 1, characterized in that Inside the ingestible shell (1), there is a first fixing disk (6) fixedly connected. On the side of the first fixing disk (6), there is a second fixing disk (7). On the side of the second fixing disk (7), there is a fixing plate (17) fixedly connected. Above the fixing plate (17), there is an output motor (18). The output motor (18) is rotatably connected to a third bevel gear (19).
4. An intestinal microbiota regulation device based on artificial intelligence according to claim 1, characterized in that, A plurality of detection cavities (29) are formed inside the disc silo (8). A first fixed disk (6) is arranged inside the ingestible outer shell (1). The first fixed disk (6) is rotatably connected to a support rod (27). A circular ring (22) is arranged on the side of the support rod (27). A camera (28) is arranged at one end of the support rod (27). A fixing strip (23) is arranged on the side of the circular ring (22). The fixing strip (23) is rotatably connected to a ratchet pawl (24). The support rod (27) is rotatably connected to a ratchet wheel (26). One end of the ratchet wheel (26) is fixedly connected to a fifth bevel gear (21). The fifth bevel gear (21) is meshed with a third bevel gear (19).
5. An intestinal microbiota regulation device based on artificial intelligence according to claim 4, characterized in that, A compression spring (25) is fixedly connected to the side of the ratchet pawl (24). The compression spring (25) is fixed inside the circular ring (22).
6. The intestinal microbiota regulation device based on artificial intelligence according to claim 1, characterized in that, The ingestible outer shell (1) is fixedly connected to a second fixed disk (7). The second fixed disk (7) is rotatably connected to the fifth bevel gear (21).
7. The intestinal microbiota regulation device based on artificial intelligence according to claim 1, wherein, The fourth bevel gear (20) is rotatably connected to a fixed plate (17).
8. An intestinal microbiota regulation device based on artificial intelligence according to claim 1, characterized in that, A connecting block for support is arranged on one side of the second bevel gear (14).
9. The intestinal microbiota regulation device based on artificial intelligence according to claim 2, characterized in that, The anti-retention glass (3) has the property of preventing intestinal substances from retaining.
10. The intestinal microbiota regulation device based on artificial intelligence according to claim 3, characterized in that, The fixed plate (17) is fixed on one side of the second fixed disk (7).
Citation Information
Patent Citations
Intestinal microorganism regulating device based on artificial intelligence
CN117883280A
Cited By
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