An automatic remote monitoring tourniquet system dispatch method

The automatic remote monitoring system for tourniquets uses timers, detection modules, and communication modules to provide feedback on tourniquet status, solving the problem of inconvenient tourniquet management in mass casualty incidents and realizing intelligent medical resource allocation and efficient rescue.

CN115644976BActive Publication Date: 2026-03-27北京紫云智能科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-31
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In mass casualty incidents, existing hemostasis methods rely on manual operation, which places a heavy burden on medical staff and makes it difficult to effectively manage the use of tourniquets in noisy environments, resulting in poor hemostasis. This is especially true when there is a shortage of medical staff and resource management is not intelligent enough.

Method used

Design an automatic remote monitoring system for tourniquets, comprising a timer, a detection module, a pressure sensor, an automatic tensioning device, and a communication module. The communication module feeds back the working status of the tourniquet to the scheduling device, enabling intelligent allocation and management of medical resources.

Benefits of technology

It enables personalized management of tourniquets in mass casualty incidents, improves hemostasis and rescue efficiency, reduces the burden on medical staff, and rationally allocates medical resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of automatic remote monitoring tourniquet system scheduling methods, the system includes multiple tourniquets and scheduling device, the tourniquet includes electrically connected timer, detection module, pressure sensing device, automatic tension device, control module and communication module, the control module controls the automatic tension device operating state, and the tourniquet is communicated with the scheduling device between communication module communication connection;The method comprises: detection module detects the individual information and injury information of wounded person;Obtain the pressure information of the pressure sensing device;According to the individual information, injury information and pressure information, adjust the automatic tension device operating state;Obtain the operating state of multiple tourniquets;Based on the operating state of multiple tourniquets, scheduling module determines medical resource allocation.Based on tourniquet, overall management is carried out, and the use of multiple tourniquets is deployed in advance for on-site personnel, and different treatments are carried out for patients with different injury degrees.The application can also be used in combination with other medical equipment usage, on-site feedback, etc.Comprehensive analysis is carried out, and the effectiveness of hemostatic effect is improved.
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Description

Technical Field

[0001] This invention relates to the field of medical devices, and more specifically to an automatic remote monitoring method for scheduling a tourniquet system. Background Technology

[0002] When the human body suffers severe external injury, massive bleeding is easily caused. When doctors perform surgery, the first priority is to stop the bleeding. Current emergency hemostasis methods typically involve pressure, originally performed by nurses. However, because pressure requires prolonged and significant force, it places a heavy burden on nurses. Therefore, tourniquets are now commonly used. Especially in war and natural disasters, when there are large numbers of injured people, medical personnel often use voice alarms to alert them when applying tourniquets. However, due to noisy environments and the large number of patients, the voice alarms may not be effectively heard. Furthermore, adjusting tourniquet pressure according to the patient's condition is complex and requires a large number of on-site medical personnel. In mass casualty incidents, where medical personnel are generally insufficient, there is a need for unified and more intelligent management of personnel and equipment.

[0003] Therefore, how to intelligently manage medical resources and effectively stop bleeding in mass casualty incidents has become an urgent technical problem to be solved. Summary of the Invention

[0004] To address the technical problem described in the background section regarding how to intelligently manage medical resources and effectively stop bleeding in mass casualty events, this application proposes an automatic remote monitoring method for scheduling tourniquet systems.

[0005] Another objective of this application is to provide an automatic remote monitoring system for tourniquets.

[0006] In accordance with the first objective mentioned above, this application provides an automatic remote monitoring method for scheduling a tourniquet system. The system includes multiple tourniquets and a scheduling device. Each tourniquet includes an electrically connected timer, a detection module, a pressure sensor, an automatic tensioning device, a control module, and a communication module. The control module controls the operating state of the automatic tensioning device. The tourniquet and the scheduling device are connected via the communication module. The method includes: the detection module detecting individual patient information and injury information; acquiring pressure information from the pressure sensor; adjusting the operating state of the automatic tensioning device based on the individual information, injury information, and pressure information; acquiring the operating states of multiple tourniquets; and the scheduling device determining medical resource allocation based on the operating states of the multiple tourniquets.

[0007] Furthermore, obtaining the working status of multiple tourniquets includes: starting the timer for each tourniquet; calculating the duration of the timer; and determining the working status of each tourniquet based on the duration of the timer and the corresponding working status of the automatic tightening / loosening device.

[0008] Furthermore, the medical resource allocation decision based on the tourniquet working status scheduling module includes: determining the on-site patient situation based on the working status of each tourniquet; and deploying rescue personnel and / or transferring patients based on the on-site patient situation.

[0009] Furthermore, determining the working state of each tourniquet based on the timing duration and the corresponding working state of the automatic tensioning device includes: setting a preset working duration for the automatic tensioning device based on the individual information and injury information; comparing the preset duration with the timing duration; and determining that the patient is in a state of excessive blood loss and urgently needs rescue when the timing duration is greater than the preset duration and the automatic tensioning device is in working state.

[0010] Furthermore, determining the working state of each tourniquet based on the timing duration and the corresponding automatic tensioning device working state includes: when the timing duration is less than the preset duration and the automatic tensioning device is in a non-working state, it is determined that the patient's bleeding has been stopped and the rescue level is reduced.

[0011] Furthermore, adjusting the working state of the automatic tensioning device based on the individual information, injury information, and pressure information includes: setting a pressure threshold based on the individual information and injury information; determining whether the pressure information is within the preset pressure threshold; and adjusting the automatic tensioning device to loosen, tighten, or remain stationary based on the determination result.

[0012] Based on the second objective, embodiments of this application provide an automatic remote monitoring tourniquet system, including multiple tourniquets and a scheduling device. Each tourniquet includes an electrically connected timer, a detection module, a pressure sensing device, an automatic tensioning device, a control module, and a communication module. The control module controls the working state of the automatic tensioning device. The tourniquet and the scheduling module are connected via the communication module. The system also includes the scheduling method for the automatic remote monitoring tourniquet system described in any one of the above-mentioned embodiments.

[0013] This application also provides an electronic device, including a processor, a communication interface, a memory, and a communication bus, wherein the processor, the communication interface, and the memory communicate with each other through the communication bus, the memory is used to store a computer program, and the processor is used to execute the steps of the automatic remote monitoring tourniquet system scheduling method described above by running the computer program stored in the memory.

[0014] This application also provides a computer-readable storage medium storing a computer program, wherein the computer program is configured to execute the steps of the automatic remote monitoring tourniquet system scheduling method described above when running.

[0015] This application improves tourniquets by adding detection, control, and communication modules. It allows for adaptive pressure adjustments based on the current user of the tourniquet to achieve optimal hemostasis. In the event of a mass casualty incident, multiple tourniquets and a dispatching device form an automatic remote tourniquet monitoring system. This system can infer the on-site situation based on the number of tourniquets used, the pressure applied to each tourniquet, and the duration of use, allowing for the immediate deployment of corresponding treatment strategies and the mobilization of appropriate medical resources. It also enables on-site management based on tourniquet usage, allowing for the pre-deployment and allocation of personnel based on the usage status of each tourniquet. This embodies intelligent management of medical resources and improves rescue efficiency in mass casualty incidents. Attached Figure Description

[0016] The accompanying drawings, which are included to provide a further understanding of the invention and form part of this invention, illustrate exemplary embodiments of the invention and are used to explain the invention, but do not constitute an undue limitation of the invention. In the drawings:

[0017] Figure 1 This is a schematic diagram of the scheduling method for an automatic remote monitoring tourniquet system in one embodiment of this application;

[0018] Figure 2 This is a schematic diagram of an automatic remote monitoring tourniquet structure in one embodiment of this application;

[0019] Figure 3 This is a schematic diagram of the scheduling method for an automatic remote monitoring tourniquet system in one embodiment of this application;

[0020] Figure 4 This is a schematic diagram of the scheduling method for an automatic remote monitoring tourniquet system in another embodiment of this application;

[0021] Figure 5 This is a schematic diagram of the scheduling method for an automatic remote monitoring tourniquet system in another embodiment of this application;

[0022] Figure 6 This is a structural block diagram of an optional electronic device according to this application. Detailed Implementation

[0023] To provide a clearer understanding of the technical features, objectives, and effects of the present invention, specific embodiments of the present invention will now be described with reference to the accompanying drawings. In the drawings, the same reference numerals indicate components with the same or similar structures but the same function.

[0024] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and therefore the scope of protection of the invention is not limited to the specific embodiments disclosed below.

[0025] As mentioned in the background, mass casualty incidents involve a large number of injured individuals and require the management of numerous tourniquets. On-site setup and management are labor-intensive. Existing technologies use tourniquets with timers and automatic tightening / untightening devices, but individual differences in the injured and the nature of their injuries lead to variations in tourniquet pressure settings, such as differences in pressure and duration of use. Tourniquets require on-site manual setting and cannot be adjusted for individual circumstances, potentially resulting in poor hemostasis. Furthermore, effective management of information regarding the injured and tourniquets is crucial to prevent information chaos and equipment loss. A more intelligent approach is needed to provide real-time deployment of appropriate treatment strategies. Based on this, the inventors propose an automatic remote monitoring and scheduling method for tourniquet systems. Optionally, in this embodiment, the aforementioned automatic remote monitoring and scheduling method for tourniquet systems can be applied to, for example... Figure 1 The hardware environment shown consists of terminal 102 and server 104. Figure 1 As shown, server 104 is connected to terminal 102 via a network and can provide services to the terminal or clients installed on the terminal. A database can be set up on the server or independently of the server to provide data storage services for server 104. It can also be used to handle cloud services. The aforementioned network includes, but is not limited to, wide area networks (WANs), metropolitan area networks (MANs), or local area networks (LANs). Terminal 102 is not limited to PCs, mobile phones, tablets, etc. The vehicle gear shifting control method of this application embodiment can be executed by server 104, by terminal 102, or by both server 104 and terminal 102. The automatic remote monitoring tourniquet system scheduling method of this application embodiment executed by terminal 102 can also be executed by a client installed on it.

[0026] In this embodiment, the automatic remote monitoring tourniquet system includes multiple tourniquets and a scheduling device. The operating status of each tourniquet is fed back to the scheduling device for processing, and on-site medical resources are allocated and scheduled accordingly. An exemplary tourniquet structure can be found in [reference needed]. Figure 2The tourniquet includes an electrically connected timer 100, a detection module 200, a pressure sensor 300, an automatic tensioning device 400, a control module 500, and a communication module 700. The control module 500 controls the operating status of the automatic tensioning device 400. The tourniquet's operating status specifically includes tourniquet pressure and tourniquet operating time. The communication module 700 transmits the operating status and injury information detected by the tourniquet to a dispatching device in the system. The dispatching device combines the collected information to determine the situation on-site and rationally allocate medical resources or promptly transfer the injured. For example, if a patient's tourniquet operating time exceeds the preset time, or the tourniquet pressure increases, indicating worsening bleeding, the tourniquet feedback is sent to the dispatching device via the communication module 700, and the dispatching device promptly assigns medical personnel to treat the patient.

[0027] Taking the automatic remote monitoring tourniquet system scheduling method in this embodiment, executed by terminal 102 and / or server 104, as an example, Figure 3 This is a flowchart illustrating an optional post-processing system control method according to an embodiment of this application. For example, see [link to flowchart illustration]. Figure 3 The process of this method may include the following steps:

[0028] S100. The detection module detects individual information and injury information of the injured person.

[0029] S200. Obtain the pressure information from the pressure sensing device.

[0030] S300. Adjust the working state of the automatic tensioning device according to the individual information, injury information and pressure information.

[0031] S400. Obtain the working status of multiple tourniquets.

[0032] S500. Based on the scheduling device for the working status of the multiple tourniquets, determine the allocation of medical resources.

[0033] Through steps S100 to S500, the pressure of the tourniquet is adaptively adjusted based on the current user to achieve optimal hemostasis. In the event of a mass casualty incident, multiple tourniquets and a dispatching device form an automatic remote monitoring tourniquet system. Based on the number of tourniquets used, the pressure applied to each tourniquet, and the duration of use, the system anticipates the situation on-site and immediately deploys corresponding treatment strategies and mobilizes appropriate medical resources. Simultaneously, on-site management is implemented based on the tourniquets, allowing for advance deployment and allocation of personnel according to the usage status of each tourniquet. This embodies intelligent management of medical resources and improves rescue efficiency in mass casualty incidents.

[0034] The technical solution described in step S100 above allows for the detection of individual information about the injured person, including height, weight, and body temperature. Injury information can include blood pressure, blood oxygen saturation, wound location, wound area, and bleeding rate. Since each individual is different, collecting individual injury information and injury data allows for more personalized settings and monitoring.

[0035] Through the technical solution in step S200 above, the pressure information from the pressure sensing device can provide information on the hemostasis of the injured person. Simultaneously, adjustments can be made based on the injured person's condition and specific circumstances to determine whether the pressure has reached a suitable preset value. For effective hemostasis, a pressure value can be preset in advance based on individual and injury information, and the pressure can be adjusted directly based on the detected information when using a tourniquet.

[0036] Through the technical solution in step S300 above, the automatic tensioning device can change the pressure to adjust the hemostatic effect of the tourniquet. Information detected in the tourniquet is transmitted to the control module, which adjusts the automatic tensioning device according to the patient's condition or a preset pressure value.

[0037] Through the technical solution in step S400 above, in the event of a mass injury incident with numerous injured persons, the working status of multiple tourniquets is transmitted to a dispatching device via the communication module within the tourniquets. The dispatching device can not only remotely control the tourniquets for fine-tuning to achieve better hemostasis, but also provide different treatments for patients with varying degrees of injury. For example, if a patient's injury has lessened and bleeding has stopped, the patient's level of emergency attention is reduced, prompting medical personnel to remove the tourniquet; if the bleeding worsens and the injury becomes more severe, the tourniquet pressure is increased, raising the patient's level of emergency attention and prompting medical personnel to provide immediate care or prioritize transfer. A higher level of emergency attention indicates a more severe injury and a greater need for immediate care or further treatment.

[0038] Through the technical solutions in step S500 above, multiple tourniquets are managed in a coordinated manner, the on-site situation is comprehensively analyzed, the effectiveness of hemostasis is improved, corresponding treatment strategies are deployed in a timely manner, and corresponding medical resources are mobilized, reflecting intelligent management of medical resources and improving rescue efficiency in mass casualty incidents.

[0039] As an optional embodiment, due to individual differences, such as differences in body size between children and adults, differences in vascular tolerance between the elderly and young people, and differences in wound size, the pressure and time required for hemostasis will vary. To achieve more effective hemostasis, the tourniquet is adjusted accordingly based on detected information, including the adjustment time and pressure. Therefore, the working state of each tourniquet will differ. For example, see [link to example]. Figure 4 The process of obtaining the working status of multiple tourniquets may include the following steps:

[0040] S401. Start the timer for each tourniquet.

[0041] S402. Calculate the duration of each time.

[0042] S403. Determine the working state of each tourniquet based on the timing duration and the corresponding working state of the automatic tightening device.

[0043] Using the technical solutions in steps S401 to S403 above, the working time and working status of the automatic tensioning device for each tourniquet are obtained. The working status of the automatic tensioning device reflects the pressure of the tourniquet; the tighter the device, the greater the pressure on the injured person. The collected information can be used to fine-tune the feedback for each tourniquet, and also for overall management, comprehensive analysis, and rational allocation of medical resources.

[0044] As another optional embodiment, the rational allocation of medical resources includes not only the mobilization of medical personnel but also the mobilization of injured patients. The method for determining medical resource allocation based on the tourniquet working status scheduling module includes: determining the on-site patient situation based on the working status of each tourniquet; deploying rescue personnel and / or transferring patients based on the on-site patient situation. Taking a natural disaster like an earthquake as an example, in the rescue site, there are usually multiple people buried and injured. However, due to traffic obstruction and insufficient medical personnel, it is often necessary to treat multiple injured people simultaneously. Using the tourniquet proposed in this application, with a computer as the scheduling device, the information collected by multiple tourniquets is transmitted to the computer. The computer comprehensively analyzes the on-site situation, which can determine whether the injury severity of any patient has worsened and urgently requires medical personnel assistance; whether any patient's bleeding has stopped and they are out of danger, allowing the tourniquet to be removed; how many more medical personnel need to be dispatched to the scene; and how many injured people urgently need to be transferred to a hospital for treatment, etc.

[0045] Furthermore, the effectiveness of tourniquet hemostasis is primarily determined by pressure and duration. The method for determining the working state of each tourniquet based on the timing duration and the corresponding automatic tensioning device includes: setting a preset working duration for the automatic tensioning device based on individual and injury information; comparing the preset duration with the timing duration; and determining that the patient is in a state of excessive blood loss and urgently needs assistance when the timing duration exceeds the preset duration and the automatic tensioning device is active. Pre-settings are made based on individual tolerance to pressure and duration. For example, for a ten-year-old child, a force of 90 mmHg is applied to the upper limb for 3-15 minutes. If the tourniquet is applied to the child's upper limb for more than 15 minutes at the scene of the injury, and the automatic tensioning device is still active, it indicates that the bleeding at the wound site has not stopped, the condition is worsening, and the child urgently needs medical personnel to arrive for further treatment. A dispatching device rationally allocates medical personnel, improving rescue efficiency.

[0046] Furthermore, the method for determining the working status of each tourniquet based on the timing duration and the corresponding automatic tensioning device's working status also includes: when the timing duration is less than the preset duration and the automatic tensioning device is in a non-working state, it is determined that the patient's bleeding has been stopped and the rescue level is lowered. Due to the shortage of on-site medical resources, including the possibility that the number of tourniquets may not be sufficient for all injured patients, after the tourniquet has stopped the patient's bleeding and the patient's vital signs have stabilized, the tourniquet can be used on other unused injured patients. However, it is impossible for medical staff to check each tourniquet individually and allocate them in a timely manner. By using a scheduling device to collect system information, tourniquets can be allocated promptly, alerting medical staff and improving efficiency.

[0047] As an optional embodiment, participants Figure 5 As shown, the method for adjusting the working state of the automatic tensioning device based on the individual information, injury information, and pressure information includes the following steps:

[0048] S301. Preset a pressure threshold based on the individual information and injury information.

[0049] S302. Determine whether the pressure information is within the preset pressure threshold.

[0050] S303. Based on the judgment result, adjust the automatic tensioning device to loosen, tighten, or stop.

[0051] Through the technical solutions in steps S301 to S303 above, the control device in the tourniquet controls the operation of the automatic tightening device. The tighter the automatic tightening device, the greater the pressure on the patient. This varies between individuals; for example, the tourniquet pressure applied to the upper limbs of an adult is 200 mmHg, and to the lower limbs, it is 250 mmHg. When the user is an elderly person or a child, the vascular tolerance differs, and the tourniquet pressure is generally half that applied to an adult. Higher tourniquet pressure or longer wear time is not necessarily better. Excessive pressure or prolonged wear can lead to ischemia and necrosis of body tissues. Therefore, based on the detected user information, such as color or temperature (e.g., purplish-blue discoloration, cold and clammy skin), the automatic tightening device needs to be immediately loosened to release the tourniquet. This effectively allows for adaptive adjustments based on individual differences.

[0052] It should be noted that, for the sake of simplicity, the foregoing method embodiments are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to this application. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0053] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods according to the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM (Read-Only Memory) / RAM (Random Access Memory), magnetic disk, optical disk), and includes several instructions to cause a terminal device (which may be a mobile phone, computer, server, or network device, etc.) to execute the methods described in the various embodiments of this application.

[0054] Based on the second objective, embodiments of this application provide an automatic remote monitoring system for tourniquets, including multiple tourniquets and a scheduling device, wherein the tourniquets participate in... Figure 2 As shown, the system includes an electrically connected timer 100, a detection module 200, a pressure sensor 300, an automatic tensioning device 400, a control module 500, and a communication module 700. The control module 500 controls the operating status of the automatic tensioning device 400. The tourniquet's operating status specifically includes tourniquet pressure and tourniquet operating time. The communication module 700 transmits the operating status and injury information detected by the tourniquet to a dispatching device in the system. The dispatching device combines the collected information to determine the situation on-site and rationally allocate medical resources or promptly transfer the injured. For example, if a patient's tourniquet operating time exceeds the preset time, or the tourniquet pressure increases, indicating worsening bleeding, the tourniquet feedback is sent to the dispatching device via the communication module 700. The dispatching device then promptly assigns medical personnel to treat the patient. The system also includes the automatic remote monitoring tourniquet system dispatching method described in any of the above embodiments.

[0055] Those skilled in the art should understand that the numerical values ​​and ranges in all the above examples are merely exemplary examples for ease of understanding, and the scope of protection in this embodiment is not limited to the numerical values ​​and ranges in all the examples listed above.

[0056] Figure 6 This is a structural block diagram of an optional electronic device according to an embodiment of this application, such as... Figure 6 As shown, it includes a processor 602, a communication interface 604, a memory 606, and a communication bus 608. The processor 602, communication interface 604, and memory 606 communicate with each other via the communication bus 608.

[0057] Memory 606 is used to store computer programs;

[0058] When processor 602 executes a computer program stored in memory 606, it performs the following steps:

[0059] The detection module detects individual information and injury information of the injured person;

[0060] Obtain the pressure information from the pressure sensing device;

[0061] The automatic tensioning device is adjusted according to the individual information, injury information, and pressure information.

[0062] Obtain the working status of multiple tourniquets;

[0063] The allocation of medical resources is determined based on the scheduling device for the working status of the multiple tourniquets.

[0064] Optionally, in this embodiment, the communication bus can be a PCI (Peripheral Component Interconnect) bus or an EISA (Extended Industry Standard Architecture) bus, etc. This communication bus can be divided into an address bus, a data bus, a control bus, etc. For ease of representation, Figure 6 The bus is represented by a single thick line, but this does not mean that there is only one bus or one type of bus.

[0065] The communication interface is used for communication between the aforementioned electronic devices and other devices.

[0066] The memory may include RAM, or non-volatile memory, such as at least one disk storage device. Optionally, the memory may also be at least one storage device located remotely from the aforementioned processor.

[0067] As an example, such as Figure 6 As shown, the memory 606 may include, but is not limited to, multiple tourniquets and scheduling devices in the aforementioned automatic remote monitoring tourniquet system. Furthermore, it may include, but is not limited to, other module units in the aforementioned automatic remote monitoring tourniquet system, which will not be elaborated upon in this example.

[0068] The processors mentioned above can be general-purpose processors, including but not limited to: CPU (Central Processing Unit), NP (Network Processor), etc.; they can also be DSP (Digital Signal Processor), ASIC (Application Specific Integrated Circuit), FPGA (Field-Programmable Gate Array), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components.

[0069] Optionally, specific examples in this embodiment can refer to the examples described in the above embodiments, and will not be repeated here.

[0070] Those skilled in the art will understand that Figure 6 The structure shown is for illustrative purposes only. The device that implements the above vehicle weight estimation method can be a terminal device, such as a smartphone (e.g., Android phone, iOS phone), tablet computer, PDA, mobile Internet device (MID), PAD, etc. Figure 6 This does not limit the structure of the aforementioned electronic device. For example, the terminal device may also include components that are more... Figure 6 The more or fewer components shown (such as network interfaces, display devices, etc.), or having the same Figure 6 The different configurations shown.

[0071] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing the hardware related to the terminal device. The program can be stored in a computer-readable storage medium, which may include: flash drive, ROM, RAM, disk or optical disk, etc.

[0072] According to another aspect of the embodiments of this application, a storage medium is also provided. Optionally, in this embodiment, the storage medium can be used to execute program code for a vehicle mass estimation method.

[0073] Optionally, in this embodiment, the storage medium may be located on at least one of the multiple network devices in the network shown in the above embodiment.

[0074] Optionally, in this embodiment, the storage medium is configured to store program code for performing the following steps:

[0075] The detection module detects individual information and injury information of the injured person;

[0076] Obtain the pressure information from the pressure sensing device;

[0077] The automatic tensioning device is adjusted according to the individual information, injury information, and pressure information.

[0078] Obtain the working status of multiple tourniquets;

[0079] The allocation of medical resources is determined based on the scheduling device for the working status of the multiple tourniquets.

[0080] Optionally, specific examples in this embodiment can refer to the examples described in the above embodiments, and will not be repeated in this embodiment.

[0081] Optionally, in this embodiment, the storage medium may include, but is not limited to, various media capable of storing program code, such as USB flash drives, ROMs, RAMs, portable hard drives, magnetic disks, or optical disks.

[0082] The sequence numbers of the embodiments in this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.

[0083] If the integrated units in the above embodiments are implemented as software functional units and sold or used as independent products, they can be stored in the aforementioned computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause one or more computer devices (which may be personal computers, servers, or network devices, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application.

[0084] In the above embodiments of this application, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions of other embodiments.

[0085] In the several embodiments provided in this application, it should be understood that the disclosed client can be implemented in other ways. The device embodiments described above are merely illustrative; for example, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, indirect coupling or communication connection between units or modules, and may be electrical or other forms.

[0086] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of the solution provided in this embodiment, depending on actual needs.

[0087] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.

[0088] The above description is only a preferred embodiment of this application. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this application, and these improvements and modifications should also be considered within the scope of protection of this application.

Claims

1. An automatic remote monitoring tourniquet system, characterized by, The application relates to a tourniquet system, which comprises a plurality of tourniquets and a dispatch device, wherein the tourniquet comprises a timer, a detection module, a pressure sensing device, an automatic tightening device, a control module and a communication module, the control module controls the working state of the automatic tightening device, and the tourniquet and the dispatch device are connected through the communication module; the automatic remote monitoring tourniquet system executes the following dispatch method: The detection module detects individual information and injury information of the wounded; Pressure information of the pressure sensing device is acquired; The working state of the automatic tightening device is adjusted according to the individual information, the injury information and the pressure information; The working states of the plurality of tourniquets are acquired, and when a mass injury event occurs, the working states of the plurality of tourniquets are transmitted to the dispatch device through the communication module in the tourniquet, the dispatch device remotely controls the tourniquet to be finely adjusted so as to achieve better tourniquet effect, and different treatments are carried out on patients with different injury degrees; The dispatch device determines medical resource allocation based on the working states of the plurality of tourniquets; When the time length is less than a preset time length and the automatic tightening device is in a non-working state, it is judged that the patient has stopped bleeding and the rescue level is reduced; after the tourniquet stops bleeding of the patient and the patient's vital signs are stable, the dispatch device collects system information and timely distributes the tourniquet.

2. The automatic remote monitoring tourniquet system of claim 1, wherein, The acquisition of the working states of the plurality of tourniquets comprises: The timer of each tourniquet is started to time; The time length is respectively counted; The working state of each tourniquet is determined based on the time length and the working state of the corresponding automatic tightening device.

3. The automatic remote monitoring tourniquet system of claim 2, wherein, The dispatch device determines medical resource allocation based on the working states of the plurality of tourniquets, which comprises: The on-site patient condition is determined based on the working state of each tourniquet; Rescue personnel and / or patients are transferred based on the on-site patient condition.

4. The automatic remote monitoring tourniquet system of claim 2, wherein, The determination of the working state of each tourniquet based on the time length and the working state of the corresponding automatic tightening device comprises: The working preset time length of the automatic tightening device is set based on the individual information and the injury information; The preset time length is compared with the time length; When the time length is greater than the preset time length and the automatic tightening device is in a working state, it is judged that the patient is in a state of excessive blood loss and urgently needs rescue.

5. The automatic remote monitoring tourniquet system of claim 2, wherein, The determination of the working state of each tourniquet based on the time length and the working state of the corresponding automatic tightening device comprises: When the time length is less than the preset time length and the automatic tightening device is in a non-working state, it is judged that the patient has stopped bleeding and the rescue level is reduced.

6. The automatic remote monitoring tourniquet system of claim 1, wherein, The adjustment of the working state of the automatic tightening device according to the individual information, the injury information and the pressure information comprises: A pressure threshold value is preset according to the individual information and the injury information; It is judged whether the pressure information is in the preset pressure threshold value; The automatic tightening device is adjusted to be loosened, tightened or stationary based on the judgment result.

7. An electronic device comprising a processor, a communication interface, a memory and a communication bus, wherein, The processor, the communication interface and the memory complete mutual communication through the communication bus, and the memory is used for storing a computer program. ​ The processor is configured to execute the scheduling method steps of the automatic remote monitoring tourniquet system according to any one of claims 1 to 6 by running the computer program stored on the memory.

8. A computer readable storage medium, characterized in that, The storage medium stores a computer program, and the computer program is configured to execute the scheduling method steps of the automatic remote monitoring tourniquet system according to any one of claims 1 to 6 when running.

Citation Information

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