A compression hemostasis device for the puncture site after femoral artery intervention
Through the compression hemostasis device with sliding connection structure and sensor combined with intelligent control system, the problem of the compression hemostasis device displaced when the patient is active after femoral intervention is solved, precise hemostasis and automated control are achieved, and the hemostasis effect and patient comfort are improved.
Patent Information
- Application Number
- CN202510543746.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2045-04-28
AI Technical Summary
The existing post-femoral intervention compression hemostasis device is prone to displacement when the patient moves or limbs move, causing the compression point to deviate from the puncture site and lacks precise pressure measurement and observation functions, affecting the hemostasis effect.
The compression hemostasis device with a sliding connection structure and sensor combined with an intelligent control system is adopted. The sliding connection structure allows relative movement between the hemostasis structure and the fixed plate. Combined with a pressurized airbag and a hemostasis patch, it realizes automatic adjustment of the compression force, and ensures accurate hemostasis through the sensor and PLC controller.
Ensure that the hemostasis structure acts accurately on the puncture point when the patient is active, avoids hematoma formation, improves the hemostasis effect and device stability, enhances applicability and comfort, and achieves automated control and real-time feedback.
Smart Images

Figure CN120078476B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical devices, and more specifically, it relates to a compression hemostasis device for the puncture site after femoral artery intervention. Background Art
[0002] Femoral artery intervention is a technique for diagnosis and treatment by inserting a catheter through the femoral artery, which is widely used in the diagnosis and treatment of cardiovascular diseases. This technique uses the femoral artery as a channel to send the catheter to the target blood vessel site for operations such as angiography, angioplasty, and stent implantation.
[0003] After femoral artery intervention, hemostasis at the puncture site is an important link to ensure the safety and postoperative recovery of patients. Currently, the commonly used hemostasis methods in clinical practice include manual compression, vascular closure devices, arterial compression hemostasis devices, and arterial hemostatic patches, etc. However, these methods still have the following problems: (1) For the fixation methods of some existing compression hemostasis devices, when the patient moves, turns over, or has limb activities, the compression hemostasis device is prone to shift, causing the compression point to deviate from the puncture site, resulting in hemostasis failure or the formation of a hematoma; (2) Some existing compression hemostasis devices cover the puncture site, making it inconvenient to directly observe the condition of the wound, such as whether there is bleeding, hematoma formation, skin color change, etc.; (3) Some existing compression hemostasis devices lack precise pressure measurement, and medical staff can only rely on experience and the touch of the dorsalis pedis artery pulsation to judge whether the compression is appropriate.
[0004] Therefore, the present invention aims to provide a compression hemostasis device for the puncture site after femoral artery intervention to solve the above problems. Summary of the Invention
[0005] The object of the present invention is to provide a compression hemostasis device for the puncture site after femoral artery intervention. Through the hemostasis structure, the present invention can achieve the function of medical staff pressing and stopping bleeding at the puncture site of the patient. At the same time, through the sensor combined with the intelligent control system, the inflation volume in the airbag can be automatically adjusted, enabling the compression hemostasis device to adjust the pressing force on the puncture site according to different pressing stages, reducing the instability of the hemostasis effect caused by differences in human experience, and thus improving the hemostasis effect on the puncture opening of the patient. Moreover, the sliding connection structure I allows relative movement between the hemostasis structure and the fixing plate, so that when the patient moves, turns over, or performs limb activities, it can avoid the compression point deviating from the puncture site due to the contact friction between the compression hemostasis device and the body, preventing the occurrence of hemostasis failure or hematoma formation, and thus ensuring that the compression point can always accurately act on the puncture site.
[0006] The above technical object of the present invention is achieved through the following technical solutions: A compression hemostasis device for the puncture site after femoral artery intervention, including a fixed plate, both ends of the fixed plate are provided with arc-shaped splints, the end of the arc-shaped splint away from the fixed plate is provided with an elastic strap, the end of the elastic strap away from the arc-shaped splint is provided with a magic tape, the bottom of the fixed plate is provided with a sliding connection structure I, and the bottom of the sliding connection structure I is provided with a hemostasis structure. The sliding connection structure I is used to help generate relative movement between the hemostasis structure and the fixed plate, and the hemostasis structure is used to compress the puncture site to play a hemostatic role.
[0007] By adopting the above technical solutions, arc-shaped splints are provided at both ends of the fixed plate, an elastic strap is provided at the end of the arc-shaped splint away from the fixed plate, and a magic tape is provided at the end of the elastic strap away from the arc-shaped splint. The combination of the elastic strap and the magic tape can adapt to the leg sizes of patients with different body types. Moreover, a sliding connection structure I is provided at the bottom of the fixed plate, and a hemostasis structure is provided at the bottom of the sliding connection structure I. The hemostasis structure helps compress the puncture site to play a hemostatic role, and the sliding connection structure I allows relative movement between the hemostasis structure and the fixed plate. When the patient moves, turns over or the limb moves, it can avoid the compression point deviating from the puncture site due to the contact and friction between the compression hemostasis device and the body, preventing the occurrence of hemostasis failure or hematoma formation, so as to ensure that the compression point can always accurately act on the puncture site.
[0008] The present invention is further configured as: The hemostasis structure includes a pressure plate and a pressure airbag; the pressure plate is connected to the bottom of the fixed plate, and the pressure airbag is connected to the bottom of the pressure plate.
[0009] By adopting the above technical solutions, the pressure plate is connected to the bottom of the fixed plate, and the pressure airbag is connected to the bottom of the pressure plate. By inflating the pressure airbag, it can simulate the medical staff pressing on the patient's puncture site to achieve the effect of pressing hemostasis. At the same time, by adjusting the inflation volume in the pressure airbag, different pressing forces can be generated on the puncture site, and thus different pressing situations can be adjusted according to different pressing stages, improving the practicability of the device.
[0010] The present invention is further configured as: A hemostatic medicated patch is further provided at the bottom of the pressure airbag.
[0011] By adopting the above technical solutions, a hemostatic medicated patch is also provided at the bottom of the pressure airbag. The drug components in the hemostatic medicated patch can further promote blood coagulation, quickly seal the blood vessel breakage at the wound, reduce bleeding, and at the same time the drug components can inhibit the inflammatory reaction at the puncture site, thereby accelerating the healing of the puncture site.
[0012] The present invention is further configured as follows: The first sliding connection structure includes a first helical spring, a first limiting rod, a first sliding block, and a first connecting block; a first sliding groove is provided at the bottom of the fixing plate, both ends of the first limiting rod are fixedly connected to opposite side walls of the first sliding groove, the first sliding block is sleeved on the first limiting rod and slides along the first sliding groove, the first helical spring is sleeved on the first limiting rod and its two ends are respectively connected to the first sliding groove and the first sliding block, and both ends of the first connecting block are respectively connected to the first sliding block and the hemostatic structure.
[0013] By adopting the above technical solution, both ends of the first limiting rod are fixedly connected to opposite side walls of the first sliding groove, the first sliding block is sleeved on the first limiting rod and slides along the first sliding groove, the first helical spring is sleeved on the first limiting rod and its two ends are respectively connected to the first sliding groove and the first sliding block, so that the first sliding block can move left and right along the first limiting rod. At the same time, both ends of the first connecting block are respectively connected to the first sliding block and the hemostatic structure, and thus the hemostatic structure can be driven to move left and right. When the displacement is generated due to the contact and friction between the compression hemostasis device and the body, only the fixing plate and the patient's body generate displacement. At this time, the hemostatic structure still remains at the puncture point position, so as to ensure that the compression point can always act accurately on the puncture point.
[0014] The present invention is further configured as follows: A support structure is provided on the arc-shaped splint, and the support structure is used to relieve the pressure outside the puncture point position during the compression hemostasis process. The support structure includes a support soft pad and a second sliding connection structure.
[0015] By adopting the above technical solution, a support structure is provided on the arc-shaped splint. The support structure can make a gap between the arc-shaped plate and the patient's leg position, avoid the arc-shaped splint tightly adhering to the patient's leg skin, so that the situation of the puncture opening can be observed, whether there is blood oozing, hematoma formation, and skin color change can be observed, and it can also relieve the pressure outside the puncture point position during the compression hemostasis process, avoid excessive compression of the leg blood vessels, and facilitate adjusting the compression intensity of the puncture point.
[0016] The present invention is further configured as follows: The second sliding connection structure includes a second helical spring, a second limiting rod, a second sliding block, and a second connecting block; a second sliding groove is provided on the side wall of the arc-shaped splint, both ends of the second limiting rod are fixedly connected to opposite side walls of the second sliding groove, the second sliding block is sleeved on the second limiting rod and slides along the second sliding groove, the second helical spring is sleeved on the second limiting rod and its two ends are respectively connected to the second sliding groove and the second sliding block, and both ends of the second connecting block are respectively connected to the second sliding block and the support soft pad.
[0017] By adopting the above technical solution, a second sliding groove is provided on the side wall of the arc-shaped splint. The two ends of the second limiting rod are fixedly connected to the opposite side walls of the second sliding groove. The second sliding block is sleeved on the second limiting rod and slides along the second sliding groove, enabling the second sliding block to slide up and down along the second limiting rod. The second spiral spring is sleeved on the second limiting rod and its two ends are respectively connected to the second sliding groove and the second sliding block. The two ends of the second connecting block are respectively connected to the second sliding block and the supporting soft pad, enabling the movement of the supporting structure to be driven. Furthermore, when the compression hemostasis device comes into contact with the body and generates displacement due to friction, only the arc-shaped splint generates displacement with the patient's body. At this time, the supporting structure still maintains the initial position of contacting the leg, thereby ensuring that the compression point can always act precisely on the puncture point while further enhancing the stability of the overall structure of the compression hemostasis device.
[0018] The present invention is further configured such that: a waist strap is provided on the fixing plate.
[0019] By adopting the above technical solution, a waist strap is provided on the fixing plate. The waist strap can further fix the compression hemostasis device. At the same time, by being arranged at the waist, it is also convenient for medical staff to fix the compression hemostasis device, improving the comfort of the patient during use.
[0020] The present invention is further configured such that: a sensor is provided between the pressurizing airbag and the pressurizing plate.
[0021] By adopting the above technical solution, a sensor is provided between the pressurizing airbag and the pressurizing plate. The sensor can accurately obtain the pressure exerted by the compression hemostasis device on the puncture point during the compression hemostasis process, solving the limitation problem that mainly relies on the personal experience of medical staff to judge whether the pressure is appropriate in the traditional treatment process, enabling more medical staff to accurately perform pressing adjustments and improving the applicability of the compression hemostasis device.
[0022] The present invention is further configured such that: an electric air pump and a PLC controller are further provided on the fixing plate; the PLC controller is communicatively connected to both the sensor and the electric air pump, and the PLC controller is integrated with an intelligent control system.
[0023] By adopting the above technical solution, an electric air pump and a PLC controller are further provided on the fixing plate. The PLC controller is communicatively connected to both the sensor and the electric air pump. The PLC controller is integrated with an intelligent control system. The sensor obtains the pressure on the pressurizing airbag and transmits it to the PLC controller. The PLC controller judges whether it is in the optimal inflation state corresponding to the pressurizing stage by analyzing the current pressure of the pressurizing airbag, and then automatically controls the pressurizing airbag through the intelligent control system to ensure the accuracy of the hemostasis effect and improve the hemostasis efficiency.
[0024] The present invention is further configured such that: the intelligent control system includes a data acquisition module, a data processing module, an intelligent analysis module, an automatic control module, and a voice broadcast module;
[0025] The data acquisition module is used to receive the electrical signals transmitted by the sensors, convert the electrical signals into digital signals, and then transmit them to the data processing module; the data processing module is used to receive the digital signals transmitted by the data acquisition module, perform signal filtering and format conversion to obtain accurate digital signals, and then transmit them to the intelligent analysis module; the intelligent analysis module is used to receive the digital signals transmitted by the data processing module, perform analysis, generate control signals, and simultaneously transmit them to the automatic control module and the voice broadcast module; the automatic control module is used to receive the control signals transmitted by the intelligent analysis module, convert them into control instructions, and automatically control the electric air pump; the voice broadcast module is used to receive the control signals transmitted by the intelligent analysis module, combine them with the time stamps to generate the status information of the compression hemostasis device, and then broadcast it.
[0026] By adopting the above technical solutions, the coordinated work of the data acquisition module, the data processing module, the intelligent analysis module, and the automatic control module can automatically adjust the inflation volume of the pressurized airbag according to the pressure data fed back by the sensors. At the same time, the voice broadcast module can accurately obtain the hemostasis time of the current compression hemostasis device in combination with the time stamps, and then broadcast it through the voice broadcast module to give timely feedback to the medical staff, further improving the hemostasis efficiency. Among them, the data processing module receives the digital information in the data acquisition module, then filters and converts the format of the digital information to obtain complete and standardized signal data. The processed data will be more standardized and tidy, facilitating subsequent analysis and processing. At the same time, sending the processed data to the intelligent analysis module can improve the analysis accuracy and facilitate the generation of more accurate control information. Secondly, the processed data can also be stored in the database according to needs for subsequent query and use.
[0027] In summary, the present invention has the following beneficial effects:
[0028] The sliding connection structure I in the present invention allows relative movement between the hemostasis structure and the fixing plate, ensuring that when the patient moves, turns over, or the limb moves, the hemostasis structure can still accurately act on the puncture point, avoiding the compression point deviating due to friction, thereby effectively preventing hemostasis failure or hematoma formation;
[0029] In the present invention, through the combination of the arc-shaped splint, the elastic bandage, and the magic tape, it is possible to adapt to the leg sizes of patients with different body types, ensure that the device is firmly fixed on the patient's leg, and avoid hemostasis failure caused by the device loosening;
[0030] In the hemostasis structure of the present invention, the pressurized airbag is inflated to simulate the pressing hemostasis by medical staff. At the same time, the pressing force can be adjusted at different pressing stages by adjusting the inflation volume, improving the practicability and adaptability of the device. In addition, the hemostatic patch at the bottom of the pressurized airbag can promote blood coagulation, reduce bleeding, inhibit the inflammatory response, and accelerate the healing of the puncture site.
[0031] Through the support structure on the arc-shaped splint of the present invention, a gap can be generated between the arc-shaped splint and the patient's leg, avoiding the arc-shaped splint from tightly adhering to the leg skin, thereby relieving the pressure outside the puncture site, preventing excessive compression of the leg blood vessels, and improving the comfort of the patient.
[0032] The present invention uses a sensor to monitor the hemostasis pressure in real time and transmits the data to the PLC controller. Combined with the intelligent control system, it realizes the automatic control of the pressurized airbag, ensuring the accuracy of the hemostasis effect. The voice broadcast module combined with the timestamp function can real-time feedback the status of the compression hemostasis device, facilitating the medical staff to adjust the operation in time and further improving the hemostasis efficiency.
[0033] Overall, through the combination of the sliding connection structure I and the support structure, the present invention ensures that when the patient moves, the compression point of the compression hemostasis device can still accurately act on the puncture site, while further improving the overall structural stability of the device and avoiding hemostasis failure caused by friction or displacement. Description of the Drawings
[0034] Figure 1 is a front view of a compression hemostasis device for the puncture site after femoral artery intervention according to an embodiment of the present invention;
[0035] Figure 2 is a structural cross-sectional view of a compression hemostasis device for the puncture site after femoral artery intervention according to an embodiment of the present invention;
[0036] Figure 3 is Figure 2 the enlarged view of part A in
[0037] Figure 4 is Figure 2 the enlarged view of part B in
[0038] Figure 5 is an installation diagram of a compression hemostasis device for the puncture site after femoral artery intervention according to an embodiment of the present invention;
[0039] Figure 6 is a schematic diagram of the working principle of the PLC controller according to an embodiment of the present invention;
[0040] Figure 7 is a schematic diagram of the module structure of the intelligent control system according to an embodiment of the present invention.
[0041] In the figure: 1. Fixed plate; 2. Arc-shaped splint; 3. Elastic band; 4. Magic tape; 5. First connecting block; 6. Pressing plate; 7. Pressing airbag; 8. Hemostatic patch; 9. First sliding block; 10. First sliding groove; 11. First limiting rod; 12. First spiral spring; 13. Sensor; 14. Second sliding groove; 15. Second limiting rod; 16. Second spiral spring; 17. Second sliding block; 18. Second connecting block; 19. Support soft pad; 20. PLC controller; 21. Electric air pump; 22. Data acquisition module; 23. Data processing module; 24. Intelligent analysis module; 25. Automatic control module; 26. Voice broadcast module; 27. Waist band. Detailed implementation mode
[0042] The following will Figures 1-7 further elaborate on the present invention in conjunction with the attached drawings.
[0043] Embodiment: A compression hemostasis device for the puncture site after femoral artery intervention includes a fixed plate 1. The fixed plate 1 is made of a transparent hard material and has an inclined arc shape that fits the leg contour and the wound position, facilitating the better fit of the compression hemostasis device to the patient's leg shape. Arc-shaped splints 2 are hinged at both ends of the fixed plate 1. An elastic band 3 is provided at the end of the arc-shaped splint 2 away from the fixed plate 1, and a magic tape 4 is provided at the end of the elastic band 3 away from the arc-shaped splint 2. The combination of the arc-shaped splint 2, the elastic band 3, and the magic tape 4 can adapt to the leg sizes of patients with different body types. A first sliding connection structure is installed at the center of the bottom of the fixed plate 1, and a hemostasis structure is fixedly connected to the bottom of the first sliding connection structure. The hemostasis structure helps to compress the puncture site to achieve the hemostasis effect. The first sliding connection structure allows relative movement between the hemostasis structure and the fixed plate 1, so that when the patient moves, turns over, or the limb moves, it can avoid the compression point deviating from the puncture site due to the contact and friction between the compression hemostasis device and the body, preventing the occurrence of hemostasis failure or hematoma formation, thereby ensuring that the compression point can always accurately act on the puncture site.
[0044] Preferably in this embodiment, the hemostasis structure includes a pressing plate 6 and a pressing airbag 7. The pressing plate 6 is supported by a transparent hard material, and the pressing airbag 7 is made of a transparent soft material, which can better observe the situation of the patient's puncture opening, including whether there is blood oozing, hematoma formation, skin color change, etc. The pressing plate 6 is connected to the bottom of the fixed plate 1, and the pressing airbag 7 is connected to the bottom of the pressing plate 6. By inflating the pressing airbag 7, it can simulate the pressing of the puncture site by medical staff to achieve the effect of pressing hemostasis. At the same time, by adjusting the inflation amount in the pressing airbag 7, different pressing forces can be generated on the puncture site, and thus different pressing situations can be adjusted according to different pressing stages, improving the practicability of the device.
[0045] Preferably, in this embodiment, a hemostatic patch 8 is detachably adhered to the bottom of the pressurized airbag 7. The drug components in the hemostatic patch 8 can further promote blood coagulation, quickly seal the blood vessel break at the wound, reduce bleeding, and at the same time, the drug components can inhibit the inflammatory reaction at the puncture site, thereby accelerating the healing of the puncture site.
[0046] Preferably, in this embodiment, the first sliding connection structure includes a first spiral spring 12, a first limiting rod 11, a first sliding block 9 and a first connecting block 5; a first sliding groove 10 is formed at the bottom of the fixing plate 1, both ends of the first limiting rod 11 are fixedly connected to the opposite side walls of the first sliding groove 10, the first sliding block 9 is sleeved on the first limiting rod 11 and slides along the first sliding groove 10, the first spiral spring 12 is sleeved on the first limiting rod 11 and its two ends are respectively connected to the first sliding groove 10 and the first sliding block 9, and both ends of the first connecting block 5 are respectively connected to the first sliding block 9 and the hemostatic structure, so as to be able to drive the hemostatic structure to move left and right. When the compression hemostasis device contacts and rubs against the body to generate displacement, only the fixing plate 1 generates displacement with the patient's body. At this time, the hemostatic structure is still located at the puncture site, so as to ensure that the compression point can always act accurately on the puncture site.
[0047] Preferably, in this embodiment, a support structure is provided on the arc-shaped splint 2. The support structure includes a support soft pad 19 and a second sliding connection structure. The support structure can make a gap between the arc-shaped plate and the patient's leg position, avoid the arc-shaped splint 2 sticking tightly to the patient's leg skin, thereby relieving the pressure outside the puncture site during the compression hemostasis process, avoiding over-tight compression of the leg blood vessels, and at the same time facilitating the adjustment of the puncture site compression intensity.
[0048] Preferably, in this embodiment, the second sliding connection structure includes a second spiral spring 16, a second limiting rod 15, a second sliding block 17 and a second connecting block 18; a second sliding groove 14 is formed on the side wall of the arc-shaped splint 2, both ends of the second limiting rod 15 are fixedly connected to the opposite side walls of the second sliding groove 14, the second sliding block 17 is sleeved on the second limiting rod 15 and slides along the second sliding groove 14, the second spiral spring 16 is sleeved on the second limiting rod 15 and its two ends are respectively connected to the second sliding groove 14 and the second sliding block 17, and both ends of the second connecting block 18 are respectively connected to the second sliding block 17 and the support soft pad 19, so as to be able to drive the movement of the support structure. Then, when the compression hemostasis device contacts and rubs against the body to generate displacement, only the arc-shaped splint 2 generates displacement with the patient's body. At this time, the support structure still maintains the initial position of contacting the leg, so as to ensure that the compression point can always act accurately on the puncture site while further improving the stability of the overall structure of the compression hemostasis device.
[0049] Preferably, in this embodiment, a waist strap 27 is connected to the fixing plate 1 by a buckle. The waist strap 27 can further fix the compression hemostasis device. At the same time, by being arranged at the waist, it is also convenient for medical staff to fix the compression hemostasis device and improve the comfort of the patient during use.
[0050] Preferably, in this embodiment, a sensor 13 is fixedly installed between the pressurized airbag 7 and the pressing plate 6. The sensor 13 can accurately obtain the pressure exerted on the puncture point by the hemostasis device during the hemostasis process by compression, solving the limitation problem that mainly relies on the personal experience of medical staff to judge whether the pressure is appropriate in the traditional treatment process, enabling more medical staff to accurately perform pressing adjustment and improving the applicability of the hemostasis device by compression.
[0051] Preferably, in this embodiment, an electric air pump 21 and a PLC controller 20 are further installed on the fixing plate 1; the PLC controller 20 is communicatively connected to both the sensor 13 and the electric air pump 21. The PLC controller 20 is integrated with an intelligent control system. The sensor 13 obtains the pressure on the pressurized airbag 7 and transmits it to the PLC controller 20. The PLC controller 20 judges whether it is in the optimal inflation state corresponding to the pressurizing stage by analyzing the current pressure of the pressurized airbag 7, and then automatically controls the pressurized airbag 7 through the intelligent control system to ensure the accuracy of the hemostasis effect and improve the hemostasis efficiency.
[0052] Preferably, in this embodiment, the intelligent control system includes a data acquisition module 22, a data processing module 23, an intelligent analysis module 24, an automatic control module 25, and a voice broadcast module 26; the data acquisition module 22 is used to receive the electrical signal transmitted by the sensor 13, and convert the electrical signal into a digital signal and then transmit it to the data processing module 23; the data processing module 23 is used to receive the digital signal transmitted by the data acquisition module 22, and perform signal filtering and format conversion to obtain an accurate digital signal and transmit it to the intelligent analysis module 24; the intelligent analysis module 24 is used to receive the digital signal transmitted by the data processing module 23 and perform analysis, generate a control signal and transmit it to both the automatic control module 25 and the voice broadcast module 26 at the same time; the automatic control module 25 is used to receive the control signal transmitted by the intelligent analysis module 24, and convert it into a control instruction to automatically control the electric air pump 21; the voice broadcast module 26 is used to receive the control signal transmitted by the intelligent analysis module 24, and generate the status information of the hemostasis device by compression in combination with the time stamp and then broadcast it.
[0053] Preferably, in this embodiment, the collaborative work of the data acquisition module 22, the data processing module 23, the intelligent analysis module 24, and the automatic control module 25 can automatically adjust the inflation volume of the pressurized airbag 7 according to the pressure data fed back by the sensor 13. At the same time, the voice broadcast module 26 can accurately obtain the hemostasis time of the current compression hemostasis device in combination with the timestamp, and then perform voice broadcast through the voice broadcast module 26 to feed back to the medical staff in a timely manner, further improving the hemostasis efficiency. Among them, the data processing module 23 receives the digital information in the data acquisition module 22, and then filters and converts the format of the digital information to obtain complete and standardized signal data. The processed data will be more standardized and tidy, facilitating subsequent analysis and processing. At the same time, sending the processed data to the intelligent analysis module 24 can improve the analysis accuracy and facilitate the generation of more accurate control information. Secondly, the processed data can also be stored in the database according to needs for subsequent query and use.
[0054] Working principle: When using this compression hemostasis device, stick the medicated patch on the pressurized airbag 7, then align it with the puncture site of the patient, and use the elastic strap 3 and the magic tape 4 to fix it according to the size of the patient's leg. Then fix the waist strap 27 at the patient's waist position, and then turn on the electric air pump 21 to inflate the pressurized airbag 7. After the pressurized airbag 7 is inflated, it can press and stop bleeding at the puncture site of the patient. At the same time, the sensor 13 can continuously obtain the pressure at the puncture site, and the intelligent control module will automatically and slowly adjust the pressure according to the pressing time, thereby improving the hemostasis effect on the patient's puncture site. When the patient moves, turns over, or performs limb activities, the sliding connection structure I allows relative movement between the hemostasis structure and the fixing plate 1, thereby avoiding the deviation of the compression point from the puncture site caused by the contact and friction between the compression hemostasis device and the body, preventing the occurrence of hemostasis failure or hematoma formation, and ensuring that the compression point can always accurately act on the puncture site.
[0055] This specific embodiment is only an interpretation of the present invention, and it is not a limitation of the present invention. After reading this specification, those skilled in the art can make modifications to this embodiment without creative contributions according to needs, but as long as it is within the scope of the claims of the present invention, it is protected by the patent law.
Claims
1. A compression hemostasis device for the puncture site after femoral artery intervention, characterized in that: It includes a fixing plate (1), arc-shaped clamping plates (2) are provided at both ends of the fixing plate (1), an elastic strap (3) is provided at the end of the arc-shaped clamping plate (2) away from the fixing plate (1), a magic tape (4) is provided at the end of the elastic strap (3) away from the arc-shaped clamping plate (2), a first sliding connection structure is provided at the bottom of the fixing plate (1), a hemostatic structure is provided at the bottom of the first sliding connection structure, the first sliding connection structure is used to help generate relative movement between the hemostatic structure and the fixing plate (1), and the hemostatic structure is used to compress the puncture point to play a hemostatic role; The first sliding connection structure includes a first spiral spring (12), a first limiting rod (11), a first sliding block (9) and a first connecting block (5); a first sliding groove (10) is provided at the bottom of the fixing plate (1), both ends of the first limiting rod (11) are fixedly connected to the opposite side walls of the first sliding groove (10), the first sliding block (9) is sleeved on the first limiting rod (11) and slides along the first sliding groove (10), the first spiral spring (12) is sleeved on the first limiting rod (11) and its two ends are respectively connected to the first sliding groove (10) and the first sliding block (9), and both ends of the first connecting block (5) are respectively connected to the first sliding block (9) and the hemostatic structure; A support structure is provided on the arc-shaped clamping plate (2), and the support structure is used to relieve the pressure outside the puncture point position during the compression hemostasis process. The support structure includes a support soft pad (19) and a second sliding connection structure; The second sliding connection structure includes a second spiral spring (16), a second limiting rod (15), a second sliding block (17) and a second connecting block (18); a second sliding groove (14) is provided on the side wall of the arc-shaped clamping plate (2), both ends of the second limiting rod (15) are fixedly connected to the opposite side walls of the second sliding groove (14), the second sliding block (17) is sleeved on the second limiting rod (15) and slides along the second sliding groove (14), the second spiral spring (16) is sleeved on the second limiting rod (15) and its two ends are respectively connected to the second sliding groove (14) and the second sliding block (17), and both ends of the second connecting block (18) are respectively connected to the second sliding block (17) and the support soft pad (19).
2. The compression hemostasis device for the puncture site after femoral artery intervention according to claim 1, wherein: The hemostatic structure includes a pressure plate (6) and a pressure airbag (7); the pressure plate (6) is connected to the bottom of the fixing plate (1), and the pressure airbag (7) is connected to the bottom of the pressure plate (6).
3. The compression hemostasis device for the puncture site after femoral artery intervention according to claim 2, characterized in that: A hemostatic patch (8) is further provided at the bottom of the pressure airbag (7).
4. A compression hemostasis device for a puncture site after femoral artery intervention according to claim 1, characterized in that: A waist strap (27) is provided on the fixing plate (1).
5. The compression hemostasis device for the puncture site after femoral artery intervention according to claim 2, wherein: A sensor (13) is provided between the pressure airbag (7) and the pressure plate (6).
6. The compression hemostasis device for the puncture site after femoral artery intervention according to claim 5, characterized in that: An electric air pump (21) and a PLC controller (20) are further provided on the fixing plate (1); the PLC controller (20) is communicatively connected to both the sensor (13) and the electric air pump (21), and the PLC controller (20) is integrated with an intelligent control system.
7. The compression hemostasis device for the puncture site after femoral artery intervention according to claim 6, characterized in that: The intelligent control system includes a data acquisition module (22), a data processing module (23), an intelligent analysis module (24), an automatic control module (25) and a voice broadcast module (26); The data acquisition module (22) is configured to receive the electrical signals transmitted by the sensor (13), convert the electrical signals into digital signals, and then transmit the digital signals to the data processing module (23); the data processing module (23) is configured to receive the digital signals transmitted by the data acquisition module (22), perform signal filtering and format conversion to obtain accurate digital signals, and then transmit the digital signals to the intelligent analysis module (24); the intelligent analysis module (24) is configured to receive the digital signals transmitted by the data processing module (23), perform analysis, generate control signals, and simultaneously transmit the control signals to the automatic control module (25) and the voice broadcast module (26); the automatic control module (25) is configured to receive the control signals transmitted by the intelligent analysis module (24), convert the control signals into control instructions, and then perform automatic control on the electric air pump (21); the voice broadcast module (26) is configured to receive the control signals transmitted by the intelligent analysis module (24), generate the status information of the hemostasis device under pressure in combination with the time stamp, and then perform a broadcast.
Citation Information
Patent Citations
Femoral artery pressurization type air bag hemostat
CN118453026A
PICC (peripherally inserted central catheter) air bag hemostat
CN221512049U