Lung lobe respiration monitoring system

By designing a lung lobe respiratory monitoring system, and utilizing multiple sub-detection devices and computational processing to display signal waveforms, the problem of inaccurate lung lesion localization in existing technologies has been solved, thereby improving the diagnosis and treatment of lung diseases.

CN224070451UActive Publication Date: 2026-04-03ANHUI PROVINCIAL HOSPITAL
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing lung function testing methods cannot determine the exact location of lung lesions, especially when lesions occur locally, and the accuracy of monitoring one-lung ventilation or lobar ventilation is required during anesthesia.

Method used

A lung lobe respiratory monitoring system is designed, comprising five sub-detection devices corresponding to each lobe of the lung. The respiratory signals are processed by a computing device and the signal waveforms are displayed on a display device to locate lung lobe lesions.

Benefits of technology

It enables precise monitoring of the respiratory status of each lung lobe, improving the diagnosis and treatment of lung diseases and accurately locating the lesion site when the disease occurs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a lung lobe respiration monitoring system. The system comprises a detection device, a calculation device and a display device. The detection device is used for detecting lung lobe respiration signals and sending the detected respiration signals to the calculation device. The detection device comprises five sub-detection devices, the five sub-detection devices are in one-to-one correspondence with the lung lobes of the lung, and the sub-detection devices are used for detecting respiratory signals at the corresponding lung lobes; the calculation device is used for processing the respiratory signal detected by the detection device and sending the processed respiratory signal to the display device; the display device is used for converting the processed respiration signal into a signal oscillogram so as to display the lung lobe respiration state; the display device comprises five display areas, the five display areas are in one-to-one correspondence with the lung lobes of the lung, and the display areas are used for displaying signal oscillogram at the positions of the corresponding lung lobes. According to the application, the plurality of sub-detection devices are arranged to respectively detect the respiration signals at the lung lobes, and the signal oscillogram of each lung lobe is displayed on the display device, so that the respiration state of each lung lobe is judged.
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Description

Technical Field

[0001] This utility model relates to the field of human vital sign monitoring technology, specifically to a lung lobe respiratory monitoring system. Background Technology

[0002] The human respiratory system is an important indicator of health. In daily life, monitoring respiratory function can facilitate disease diagnosis and the detection of abnormalities. Pulmonary function testing plays a vital clinical role in early diagnosis, assessing disease severity, guiding clinical treatment, identifying the causes of dyspnea, and evaluating surgical tolerance. It is an indispensable tool in the diagnosis and treatment of respiratory diseases.

[0003] Current pulmonary function testing methods mostly focus on the overall functional status of the lungs. However, the lungs consist of the left and right lungs; the left lung comprises the upper and lower lobes, while the right lung consists of the upper, middle, and lower lobes. When pulmonary function is impaired, the lesions are generally localized. Therefore, even monitoring the overall functional status of the lungs cannot pinpoint the exact location of the lesion. Furthermore, during anesthesia, anesthesiologists require single-lung ventilation or precise lobular ventilation to maintain oxygenation and prevent postoperative complications. Monitoring the status of one or a single lung lobe is also necessary to prevent duct obstruction caused by excessively deep catheter insertion. Utility Model Content

[0004] The utility model description section introduces a series of simplified concepts, which will be further explained in detail in the detailed description section. This utility model description section is not intended to limit the key features and essential technical features of the claimed technical solution, nor is it intended to determine the scope of protection of the claimed technical solution.

[0005] This utility model is proposed to solve the above problems. According to this utility model, a lobar respiratory monitoring system is provided, including a detection device, a computing device, and a display device: the detection device is used to detect lobar respiratory signals and send the detected respiratory signals to the computing device; the detection device includes five sub-detection devices, each corresponding to a lobe of the lung, and each sub-detection device is used to detect the respiratory signal at its corresponding lobe; the computing device processes the respiratory signals detected by the detection devices and sends the processed respiratory signals to the display device; the display device is used to convert the processed respiratory signals into a signal waveform to display the lobar respiratory state; the display device includes five display areas, each corresponding to a lobe of the lung, and each display area is used to display the signal waveform at its corresponding lobe.

[0006] In one embodiment of this utility model, the five sub-detection devices are a first detection device for the left lung, a second detection device for the left lung, a first detection device for the right lung, a second detection device for the right lung, and a third detection device for the right lung;

[0007] The first detection device for the left lung corresponds to the first lobe of the left lung, the second detection device for the left lung corresponds to the second lobe of the left lung, the first detection device for the right lung corresponds to the first lobe of the right lung, the second detection device for the right lung corresponds to the second lobe of the right lung, and the third detection device for the right lung corresponds to the third lobe of the right lung.

[0008] In one embodiment of this utility model, the five display areas are a first display area for the left lung, a second display area for the left lung, a first display area for the right lung, a second display area for the right lung, and a third display area for the right lung;

[0009] The first display area of ​​the left lung corresponds to the first lobe of the left lung, the second display area of ​​the left lung corresponds to the second lobe of the left lung, the first display area of ​​the right lung corresponds to the first lobe of the right lung, the second display area of ​​the right lung corresponds to the second lobe of the right lung, and the third display area of ​​the right lung corresponds to the third lobe of the right lung.

[0010] In one embodiment of this utility model, the respiratory signals detected by the five sub-detection devices are processed by the computing device and then displayed as signal waveforms on five display areas respectively.

[0011] In one embodiment of this utility model, the sub-detection device includes a sensor and a detector:

[0012] The sensor is placed close to the human lungs to detect lung vibration signals;

[0013] The detector is used to convert the vibration signal into an electrical signal, which is a lung lobe breathing signal.

[0014] In one embodiment of this utility model, the detection device sends the detected lung lobe breathing signal to the computing device via a data collection line;

[0015] The five sub-detection devices transmit the detected lung respiration signals to the computing device via data collection lines.

[0016] In one embodiment of this utility model, the processing of the respiratory signal detected by the detection device by the computing device includes:

[0017] The computing device filters the respiratory signal to remove noise and unwanted frequency components.

[0018] The computing device amplifies the respiratory signal, increasing its level.

[0019] In one embodiment of this utility model, the computing device sends the processed respiratory signal to the display device, comprising:

[0020] The computing device transmits the processed respiratory signal to the display device via a data transmission line;

[0021] During the transmission of respiratory signals, the computing device performs signal shielding processing on the respiratory signals to prevent interference from external signals.

[0022] In one embodiment of this utility model, the display device is used to convert the processed respiratory signal into a signal waveform diagram, including:

[0023] The areas in the signal waveform diagram that produce waveforms are marked in green, and the areas in the signal waveform diagram that do not produce waveforms are marked in red;

[0024] The area marked in green in the signal waveform diagram represents the lung lobe in motion.

[0025] The area marked in red in the signal waveform diagram represents the lung lobe in a dormant state.

[0026] In one embodiment of this utility model, the system further includes an alarm light:

[0027] When the respiratory signal received by the computing device exceeds the normal signal range, the alarm light illuminates.

[0028] The lung lobe respiratory monitoring system according to this utility model embodiment sets up multiple sub-detection devices to detect respiratory signals at each lung lobe, processes the respiratory signals through a computing device, and displays the signal waveform of each lung lobe on a display device to determine the respiratory status of each lung lobe. This allows for the localization of the lesion to a specific lung lobe when lung lesions are present, thereby improving the diagnosis and treatment of lung diseases. Attached Figure Description

[0029] The above and other objects, features, and advantages of this utility model will become more apparent from the more detailed description of the embodiments thereof in conjunction with the accompanying drawings. The drawings are provided to further illustrate the embodiments of this utility model and form part of the specification. They are used together with the embodiments of this utility model to explain the utility model and do not constitute a limitation thereof. In the drawings, the same reference numerals generally represent the same components or steps.

[0030] Figure 1 This is a schematic diagram of a lung lobe respiratory monitoring system.

[0031] Reference numerals: 1: Detection device; 2: Calculation device; 3: Display device; 4: Data collection line; 5: Data transmission line; 6: Alarm light; 10: Sub-detection device; 30: Display area; 11: First detection device for left lung; 12: Second detection device for left lung; 13: First detection device for right lung; 14: Second detection device for right lung; 15: Third detection device for right lung; 31: First display area for left lung; 32: Second display area for left lung; 33: First display area for right lung; 34: Second display area for right lung; 35: Third display area for right lung; 101: Sensor; 102: Detector Detailed Implementation

[0032] In the following description, numerous specific details are set forth in order to provide a more thorough understanding of the present invention. However, it will be apparent to those skilled in the art that the present invention can be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described in order to avoid confusion with the present invention.

[0033] It should be understood that this invention can be embodied in various forms and should not be construed as being limited to the embodiments set forth herein. Rather, providing these embodiments will make the disclosure thorough and complete, and will fully convey the scope of this invention to those skilled in the art. In the drawings, for clarity, the dimensions of layers and regions, as well as their relative dimensions, may be exaggerated. The same reference numerals denote the same elements throughout.

[0034] Spatial relation terms such as “below,” “under,” “below,” “under,” “above,” “above,” etc., are used herein for convenience of description to describe the relationship between one element or feature shown in the figure and other elements or features. It should be understood that, in addition to the orientation shown in the figure, spatial relation terms are intended to also include different orientations of the device in use and operation. For example, if the device in the figure is flipped, then the element or feature described as “below” or “under” the other element or feature will be oriented “above” the other element or feature. Therefore, the exemplary terms “below” and “under” can include both upper and lower orientations. The device may be otherwise oriented (rotated 90 degrees or otherwise) and the spatial descriptive terms used herein will be interpreted accordingly.

[0035] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention. When used herein, the singular forms “a,” “an,” and “the” are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the terms “comprise” and / or “comprising,” when used in this specification, identify the presence of the stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups. When used herein, the term “and / or” includes any and all combinations of the associated listed items.

[0036] Unless otherwise defined, all terms used herein (including technical and scientific terms) shall have the same meaning as commonly understood by one of ordinary skill in the art. It will also be understood that terms as defined in commonly used dictionaries shall be construed as having the meaning consistent with their meaning in the relevant field and / or the context of this specification, and shall not be interpreted in an ideal or overly formal sense, unless expressly defined herein.

[0037] To make the objectives, technical solutions, and advantages of this utility model more apparent, exemplary embodiments according to this utility model will be described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are merely some embodiments of this utility model, and not all embodiments of this utility model. It should be understood that this utility model is not limited to the exemplary embodiments described herein. Based on the embodiments of this utility model described herein, all other embodiments obtained by those skilled in the art without inventive effort should fall within the protection scope of this utility model.

[0038] Therefore, in view of the aforementioned technical problems, this utility model proposes a lung lobe respiration monitoring system, such as... Figure 1 As shown. The lobar respiratory monitoring system includes: a detection device 1, a computing device 2, and a display device 3.

[0039] The detection device 1 detects respiratory signals from the lung lobes and sends the detected signals to the computing device 2. The detection device 1 includes five sub-detection devices 10, each corresponding to a lobe of the lung, and each sub-detection device 10 detects the respiratory signal at its corresponding lobe. The computing device 2 processes the respiratory signals detected by the detection device 1 and sends the processed respiratory signals to the display device 3. The display device 3 converts the processed respiratory signals into a waveform diagram to display the respiratory status of the lung lobes. The display device 3 includes five display areas 30, each corresponding to a lobe of the lung, and each display area 30 displays the waveform diagram at its corresponding lobe.

[0040] According to the embodiment of this utility model, the lung lobe respiratory monitoring system sets up multiple sub-detection devices 10 to detect respiratory signals at each lung lobe, processes the respiratory signals through a calculation device 2, and displays the signal waveform of each lung lobe on a display device 3 to determine the respiratory status of each lung lobe. This allows for the localization of the lesion to a specific lung lobe when there is a lesion in the lung, thereby improving the diagnosis and treatment of lung diseases.

[0041] In one embodiment, the five sub-detection devices 10 are a first detection device 11 for the left lung, a second detection device 12 for the left lung, a first detection device 13 for the right lung, a second detection device 14 for the right lung, and a third detection device 15 for the right lung. The first detection device 11 for the left lung corresponds to the first lobe of the left lung, the second detection device 12 for the left lung corresponds to the second lobe of the left lung, the first detection device 13 for the right lung corresponds to the first lobe of the right lung, the second detection device 14 for the right lung corresponds to the second lobe of the right lung, and the third detection device 15 for the right lung corresponds to the third lobe of the right lung.

[0042] The first lobe of the left lung is the upper lobe of the left lung, and the second lobe of the left lung is the lower lobe of the left lung. The first lobe of the right lung is the upper lobe of the right lung, the second lobe of the right lung is the middle lobe of the right lung, and the third lobe of the right lung is the lower lobe of the right lung. The detection device 1 includes at least five sub-detection devices 10, which detect the respiratory status of the corresponding lung lobe. This allows for the acquisition of respiratory signals from each lung lobe, facilitating the identification of the specific location of lung lesions when problems arise in the lungs.

[0043] For example, the five sub-detection devices 10 can be a first-side detection device and a second-side detection device, whereby the first-side detection device is used to detect the respiratory signal of the left lung and the second-side detection device is used to detect the respiratory signal of the right lung. The five display areas 30 can be a first-side display area and a second-side display area, whereby the first-side display area is used to display the signal waveform of the left lung and the second-side display area is used to display the signal waveform of the right lung.

[0044] In one embodiment, the five display areas 30 are a first display area 31 for the left lung, a second display area 32 for the left lung, a first display area 33 for the right lung, a second display area 34 for the right lung, and a third display area 35 for the right lung. The first display area 31 for the left lung corresponds to the first lobe of the left lung, the second display area 32 for the left lung corresponds to the second lobe of the left lung, the first display area 33 for the right lung corresponds to the first lobe of the right lung, the second display area 34 for the right lung corresponds to the second lobe of the right lung, and the third display area 35 for the right lung corresponds to the third lobe of the right lung.

[0045] The display device 3 includes five display areas 30, which are used to display the signal waveforms of each lung lobe to visually show the breathing status of each lung lobe, so as to provide more accurate test results for clinical diagnosis and treatment and improve the level of diagnosis and treatment of lung diseases.

[0046] In one embodiment, the respiratory signals detected by the five sub-detection devices 10 are processed by the computing device 2 and displayed as signal waveforms on five display areas 30. Each sub-detection device 10 corresponds one-to-one with a lung lobe. The detected respiratory signals, after processing by the computing device 2, are displayed on the five display areas 30 of the display device 3, which in turn correspond one-to-one with each lung lobe, displaying signal waveforms. The five display areas 30, corresponding one-to-one with the five sub-detection devices 10, can display the respiratory state of a specific lung lobe.

[0047] Since each lung lobe exchanges gases through its lobar bronchus during respiration, the functional status of the lung lobe directly affects the waveform characteristics of the sound wave signal at its lobar bronchus. Therefore, the waveform characteristics of the respiratory signal at the lobar bronchus can reflect the main functional status of the lung lobe. Based on this, the respiratory signal at the lobar bronchus of the lung lobe can be detected by the detection device 1. Here, the aforementioned lung lobe refers to the lobar bronchus of the lung lobe, and the lung lobe respiratory signal refers to the lobar bronchus respiratory signal of the lung lobe.

[0048] In one embodiment, the sub-detection device 10 includes a sensor 101 and a detector 102: the sensor 101 is positioned close to the lungs to sense lung vibration signals; the detector 102 converts the vibration signals into electrical signals, which are lung lobe breathing signals. The detector 102 can be a pressure sensor or other sensitive element. When a patient breathes, respiratory vibrations are transmitted to the pressure sensor via the sensor 101. Due to the complex internal structure of the pressure sensor, it can convert vibration signals into electrical signals. Different types of pressure sensors have different working principles for their pressure-sensitive elements, but the basic principle is the same. Pressure causes deformation of the sensor, which is then converted into an electrical signal output.

[0049] Regarding the structural form of the detection device 1, several sub-detection devices 10 can be mounted on a flexible patch, with sensors 101 and detectors 102 installed on the patch. The positional relationship between the sub-detection devices 10 corresponds to the positional relationship between the lobar bronchioles of each lung lobe. When the flexible patch is attached to a suitable position on the back or chest of a person, the position of each sub-detection device 10 corresponds one-to-one with the position of the lobar bronchioles of each lung lobe. By analyzing a certain number of human samples, the approximate size of a lung and the positional relationship between the lobar bronchioles of each lung lobe can be determined. Based on this, the distance and positional relationship between the sub-detection devices 10 on the flexible patch can be determined to correspond to the distance and positional relationship between the lobar bronchioles of each lung lobe. In use, the flexible patch is attached to the back or chest at an angle that roughly matches the position of the lobar bronchioles of each lung lobe to the position corresponding to the lung, thus enabling lung function monitoring. It is convenient to carry and use.

[0050] In one embodiment, the detection device 1 transmits the detected lung lobe breathing signals to the computing device 2 via the data collection line 4; five sub-detection devices 10 transmit the detected lung lobe breathing signals to the computing device 2 via the data collection line 4. The breathing signals of each lung lobe detected by the five sub-detection devices 10 are respectively transmitted to the computing device 2, and after processing the breathing signals, the computing device 2 transmits them to the five display areas 30 of the display device 3.

[0051] In one embodiment, the processing of the respiratory signal detected by the detection device 1 by the computing device 2 includes: filtering the respiratory signal to remove noise and unwanted frequency components; and amplifying the respiratory signal to increase its level. Digital or analog filters can be used to filter the respiratory signal, removing noise and unwanted frequency components. The signal can be amplified linearly or non-linearly as needed to increase its level.

[0052] Because the lungs are very close to the heart, the respiratory signals in each lung lobe include not only the lung lobe respiratory signals but also the heartbeat signals. There may also be other signals, such as signals caused by the flow of blood and body fluids, signals caused by the peristalsis of other organs, and signals caused by environmental noise. These signals are different from the lung lobe respiratory signals and are background noise signals.

[0053] In one embodiment, the computing device 2 sending the processed respiratory signal to the display device 3 includes: the computing device 2 transmitting the processed respiratory signal to the display device 3 via the data transmission line 5; during the transmission of the respiratory signal, the computing device 2 performs signal shielding processing on the respiratory signal to prevent interference from external signals. After processing the respiratory signal, the computing device 2 processes the respiratory signals of each lung lobe detected by the five sub-detection devices 10 and sends them to the display device 3, where they are displayed in five display areas 30 of the display device 3.

[0054] In one embodiment, the display device 3 is used to convert the processed respiratory signal into a signal waveform diagram, which includes: marking the area in the signal waveform diagram where a waveform is generated in green and marking the area in the signal waveform diagram where no waveform is generated in red; the area marked in green in the signal waveform diagram represents the lung lobe in motion; and the area marked in red in the signal waveform diagram represents the lung lobe in dormancy.

[0055] After processing, the respiratory signal is output to the display device 3. Over a continuous period, it exhibits a certain continuous peak value, frequency, and period, which can be displayed as a waveform in the five display areas 30 of the display device 3, representing the respiratory status of the monitored site. Only the lung lobe locations detected by the five sub-detection devices 10 that acquire respiratory vibration signals will have their waveforms processed and output to the display area 30 of the display device 3, indicating that this location is in a respiratory state and marked in green; areas where no waveform is displayed indicate that this location is in a state of respiratory arrest and are marked in red.

[0056] Different types of lung abnormalities can manifest as lung signal waveforms with different characteristics. For each lobe of the lung, when a certain type of abnormality occurs in a lobe, its signal waveform will also have waveform characteristics corresponding to that type of abnormality. Different types of abnormalities will manifest as lung lobe respiratory signals with different waveform characteristics.

[0057] In one embodiment, the system further includes an alarm light 6: the alarm light 6 illuminates when the respiratory signal received by the computing device 2 exceeds the normal signal range. Different types of lung abnormalities can manifest as lung signals with different characteristics. For each lobe of the lung, when a certain type of abnormality occurs in a lobe, its lung signal will also have the signal characteristics corresponding to that type of abnormality. Different types of abnormalities will manifest as different lung lobe respiratory signals.

[0058] This concludes the introduction to the structure of the lobar respiratory monitoring system of this utility model. A complete lobar respiratory monitoring system may also include other components, which will not be described in detail here.

[0059] The lung lobe respiratory monitoring system according to this utility model embodiment sets up multiple sub-detection devices to detect respiratory signals at each lung lobe, processes the respiratory signals through a computing device, and displays the signal waveform of each lung lobe on a display device. Finally, the respiratory status of each lung lobe is determined based on the waveform of the respiratory signal of each lung lobe, so that when there is a lesion in the lung, the lesion site can be located to a specific lung lobe, providing more accurate detection results for clinical diagnosis and treatment, and improving the level of diagnosis and treatment of lung diseases.

[0060] Although exemplary embodiments have been described herein with reference to the accompanying drawings, it should be understood that the above exemplary embodiments are merely illustrative and are not intended to limit the scope of the invention. Various changes and modifications can be made therein by those skilled in the art without departing from the scope and spirit of the invention. All such changes and modifications are intended to be included within the scope of the invention as claimed in the appended claims.

[0061] Numerous specific details are set forth in the specification provided herein. However, it will be understood that embodiments of the present invention may be practiced without these specific details. In some instances, well-known methods, structures, and techniques have not been shown in detail so as not to obscure the understanding of this specification.

[0062] Similarly, it should be understood that, in order to simplify the present invention and aid in understanding one or more aspects of the various inventions, in the description of exemplary embodiments of the present invention, various features of the present invention are sometimes grouped together in a single embodiment, figure, or description thereof. However, this method of the present invention should not be construed as reflecting an intention that the claimed invention requires more features than are expressly recited in each claim. Rather, as reflected in the corresponding claims, its novelty lies in the fact that the corresponding technical problem can be solved with fewer features than all of a single disclosed embodiment. Therefore, the claims following the detailed description are hereby expressly incorporated into that detailed description, wherein each claim itself is a separate embodiment of the present invention.

[0063] Those skilled in the art will understand that, apart from the mutual exclusion of features, all features disclosed in this specification (including the accompanying claims, abstract, and drawings) and all processes or units of any method or apparatus so disclosed can be combined in any combination. Unless otherwise expressly stated, each feature disclosed in this specification (including the accompanying claims, abstract, and drawings) may be replaced by an alternative feature that serves the same, equivalent, or similar purpose.

[0064] Furthermore, those skilled in the art will understand that although some embodiments described herein include certain features but not others included in other embodiments, combinations of features from different embodiments are intended to be within the scope of this invention and form different embodiments. For example, in the claims, any of the claimed embodiments can be used in any combination.

[0065] It should be noted that the above embodiments are illustrative of the present invention and not restrictive, and that those skilled in the art can devise alternative embodiments without departing from the scope of the appended claims. In the claims, any reference signs placed between parentheses should not be construed as limiting the claims. The word "comprising" does not exclude the presence of elements or steps not listed in the claims. The word "a" or "an" preceding an element does not exclude the presence of a plurality of such elements. The present invention can be implemented by means of hardware comprising several different elements and by means of a suitably programmed computer. In the unit claims enumerating several means, several of these means may be embodied by the same item of hardware. The use of the words first, second, and third, etc., does not indicate any order. These words can be interpreted as names.

[0066] The above description is merely a specific embodiment of this utility model or an explanation of that embodiment. The scope of protection of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the scope of protection of this utility model. The scope of protection of this utility model shall be determined by the scope of the claims.

Claims

1. A lung lobe breath monitoring system, characterized by, The system comprises a detection device, a calculation device and a display device. The detection device is used to detect the lung lobe breathing signal and send the detected breathing signal to the calculation device. The detection device comprises five sub-detection devices corresponding to each lung lobe of the lung, and the sub-detection device is used to detect the breathing signal at the corresponding lung lobe. The calculation device processes the breathing signal detected by the detection device and sends the processed breathing signal to the display device. The display device is used to convert the processed breathing signal into a signal waveform diagram to display the lung lobe breathing state. The display device comprises five display areas corresponding to each lung lobe of the lung, and the display area is used to display the signal waveform diagram at the corresponding lung lobe.

2. The lung lobe breathing monitoring system according to claim 1, wherein The five sub-detection devices are a left lung first detection device, a left lung second detection device, a right lung first detection device, a right lung second detection device and a right lung third detection device. The left lung first detection device corresponds to the first lobe of the left lung, the left lung second detection device corresponds to the second lobe of the left lung, the right lung first detection device corresponds to the first lobe of the right lung, the right lung second detection device corresponds to the second lobe of the right lung, and the right lung third detection device corresponds to the third lobe of the right lung.

3. The lung lobe breathing monitoring system according to claim 2, wherein The five display areas are a left lung first display area, a left lung second display area, a right lung first display area, a right lung second display area and a right lung third display area. The left lung first display area corresponds to the first lobe of the left lung, the left lung second display area corresponds to the second lobe of the left lung, the right lung first display area corresponds to the first lobe of the right lung, the right lung second display area corresponds to the second lobe of the right lung, and the right lung third display area corresponds to the third lobe of the right lung.

4. The lung lobe breathing monitoring system according to claim 3, wherein The breathing signal detected by the five sub-detection devices is processed by the calculation device and displayed as a signal waveform diagram on the five display areas.

5. The lung lobe respiration monitoring system of claim 1, wherein, The sub-detection device comprises an inductor and a detector. The inductor is used to be close to the lung position of the human body to sense the lung vibration signal. The detector is used to convert the vibration signal into an electrical signal, which is the lung lobe breathing signal.

6. The lung lobe breathing monitoring system according to claim 1, wherein The detection device sends the detected lung lobe breathing signal to the calculation device through a data collection line. The five sub-detection devices send the detected lung lobe breathing signal to the calculation device through a data collection line.

7. The lung lobe respiration monitoring system of claim 1, wherein, The processing of the breathing signal detected by the detection device by the calculation device comprises: The calculation device filters the breathing signal to remove noise and unwanted frequency components. The calculation device amplifies the breathing signal to enhance the signal level.

8. The lung lobe respiration monitoring system of claim 1, wherein, The calculation device sends the processed breathing signal to the display device comprises: The calculation device transmits the processed breathing signal to the display device through a data transmission line. In the process of transmitting the respiratory signal, the computing device performs signal shielding processing on the respiratory signal to prevent interference from external signals.

9. The lung lobe respiration monitoring system of claim 1, wherein, The display device is used to convert the processed respiratory signal into a signal waveform diagram, which includes: The area in the signal waveform diagram where the waveform is generated is marked in green, and the area in the signal waveform diagram where the waveform is not generated is marked in red. The area marked in green in the signal waveform diagram represents the lung lobe in a motion state. The area marked in red in the signal waveform diagram represents the lung lobe in a dormant state.

10. The lung lobe respiration monitoring system of claim 1, wherein, The system further includes an alarm light: When the respiratory signal received by the computing device is outside the normal signal range, the alarm light is turned on.