Monitoring system

By setting up multiple sets of slots and partitions in the main cabin of the monitoring system and separating them into multiple sub cabins, the inaccuracy of monitoring and equipment damage caused by different wake-up times during the post-operative monitoring of multiple rodents is solved, and independent monitoring of each animal and safe use of equipment is achieved.

CN222899118UActive Publication Date: 2025-05-27GUANGANMEN HOSPITAL CHINA ACAD OF CHINESE MEDICAL SCI
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Patent Information

Application Number
CN202421671333.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-15
Publication Date
2025-05-27
Estimated Expiration
2034-07-15

AI Technical Summary

Technical Problem

In the prior art, when many rodents perform vital sign monitoring during recovery after surgery, due to different awakening time and equipment monitoring needs, it is easy to lead to inaccurate monitoring or equipment damage.

Method used

A monitoring system is designed to separate the main cabin into multiple sub-cabin bodies by providing multiple sets of slots and partitions in the main cabin body. Each sub-cabin body can place a monitored animal and be equipped with a foldable cover to cover the opening of the sub-cabin body.

Benefits of technology

By separating the space of monitoring animals, the system avoids the impact of early awakening animals on other animals and damage to equipment, ensures independent monitoring of each animal, and simplifies the use of covers.

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Abstract

The monitoring system comprises a main cabin body with an opening in the top, the main cabin body comprises a plurality of groups of slots which are arranged at equal intervals and are sequentially arranged in the first direction, and each group of slots comprises two slot bodies which are formed in the two opposite inner side walls of the main cabin body respectively; each groove body extends in the vertical direction; the two side parts of the partition plates can be inserted into the two groove bodies of each group of slots respectively, so that the main cabin body is divided into a plurality of sub cabin bodies; the cover plate is used for covering the top opening of the sub cabin body; comprising a first plate body and a second plate body which are rotatably connected; the first plate body and the second plate body have a folded state and an unfolded state; when the first plate body and the second plate body are in a folded state, the cover plate covers the top opening of the single sub cabin body; when the first plate body and the second plate body are in an unfolded state, the cover plate covers the top openings of the two adjacent single sub-cabins at the same time; the system further comprises a monitoring equipment cabin located below the main cabin body, and monitoring equipment is placed in the monitoring equipment cabin.
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Description

Technical Field

[0001] The present application relates to the technical field of medical devices, and more specifically, to a monitoring system. Background Art

[0002] Rodents, such as mice, need to be monitored for vital signs during the postoperative recovery process, and an alarm is triggered immediately when the vital signs decline to remind relevant personnel to quickly implement rescue; however, currently, when monitoring multiple animals after surgery, multiple animals can only be placed in the same cabin for simultaneous monitoring. In this way, during the monitoring process, since each animal wakes up at a different time, and each animal needs to monitor multiple vital sign indicators, such as heart rate, pulse, blood oxygen, blood pressure, blood sugar, respiration, etc., all of which rely on sensors to contact the animal's body. For animals that wake up earlier, they may run around, which will inevitably affect the monitoring of other animals, and even bite the equipment parts, resulting in inaccurate monitoring of other animals or equipment damage.

[0003] Therefore, in order to overcome the defects existing in the prior art, a monitoring system needs to be provided. Utility Model Content

[0004] The purpose of the present utility model is to provide a monitoring system to solve at least one of the above technical problems.

[0005] In order to achieve at least one of the above purposes, the present application adopts the following technical solutions:

[0006] The present application provides a monitoring system, including:

[0007] A main cabin with an open top, the main cabin includes multiple groups of slots arranged in sequence along a first direction at equal intervals, and each group of slots includes two slots respectively formed on two opposite inner side walls of the main cabin; each slot extends vertically;

[0008] A partition, both side parts of the partition can be inserted into the two slots of each group of slots respectively to divide the main cabin into multiple sub-cabins, and the animals to be monitored are placed in the sub-cabins;

[0009] A cover plate for covering the open top of the sub-cabin; the cover plate includes a first plate body and a second plate body rotatably connected with the second direction as the axial direction; the first plate body and the second plate body include a folded state and an unfolded state;

[0010] When the first plate body and the second plate body are in the folded state, the cover plate covers the open top of a single sub-cabin;

[0011] When the first plate body and the second plate body are in the unfolded state, the cover plate covers the open tops of two adjacent single sub-cabins at the same time;

[0012] The monitoring system further includes a monitoring equipment cabin located below the main cabin body, and monitoring equipment for monitoring the vital signs of the animals to be monitored is placed in the monitoring equipment cabin.

[0013] Optionally, at the tops of two opposite side walls of each of the sub-cabin bodies, accommodation grooves for accommodating cover plates and extending along a second direction are included;

[0014] The direction perpendicular to the first direction in the horizontal plane is the second direction.

[0015] Optionally, the connection between the first plate body and the second plate body is connected by a rotating shaft, and the rotating shaft extends along the second direction;

[0016] The bottom of the rotating shaft includes a first connecting portion extending along the second direction;

[0017] At the bottom of the side of the first plate body away from the rotating shaft, a second connecting portion extending along the second direction is included;

[0018] At the bottom of the side of the second plate body away from the rotating shaft, a third connecting portion extending along the second direction is included;

[0019] When the cover plate is in the folded state, the first connecting portion and the second connecting portion are respectively inserted into the accommodation grooves of the corresponding sub-cabin bodies;

[0020] When the cover plate is in the unfolded state, the first connecting portion and the third connecting portion are respectively inserted into the accommodation grooves of the corresponding sub-cabin bodies.

[0021] Optionally, the first connecting portion includes a first vertical portion formed by extending downward from the bottom of the rotating shaft, and a first flat portion formed by extending from the first vertical portion in the direction towards the third connecting portion;

[0022] The second connecting portion includes a second vertical portion formed by extending downward from the bottom of the side of the first plate body away from the rotating shaft, and a second flat portion formed by extending from the second vertical portion in the direction away from the third connecting portion;

[0023] The third connecting portion includes a third vertical portion formed by extending downward from the bottom of the side of the second plate body away from the rotating shaft, and a third flat portion formed by extending from the third vertical portion in the direction away from the first connecting portion;

[0024] When the cover plate is in the folded state, the first flat portion and the second flat portion are respectively inserted into the accommodation grooves of the corresponding sub-cabin bodies;

[0025] When the cover plate is in the unfolded state, the first flat portion and the third flat portion are respectively inserted into the accommodation grooves of the corresponding sub-cabin bodies.

[0026] Optionally, the slot is formed by the inner wall of the cabin recessing inward, or two convex strips are formed by the inner wall of the cabin protruding outward, and the space between the two convex strips forms the slot.

[0027] Optionally, receiving grooves are respectively formed at the tops of two opposite side surfaces of the partition plate and at the tops of two opposite inner side walls of the main cabin arranged in the first direction.

[0028] Optionally, the monitoring device includes a monitoring component; the monitoring component includes a physiological signal acquisition unit connected to the animal to be monitored; and a data processing unit connected to the physiological signal acquisition unit.

[0029] Optionally, the monitoring system further includes a communication component connected to the data processing unit;

[0030] A terminal device communicatively connected to the communication component.

[0031] Optionally, the monitoring system further includes: a temperature sensor for detecting the internal cavity temperature of each sub-cabin, and a temperature controller connected to the temperature sensor; the temperature controller is used to control the internal cavity temperature of each sub-cabin.

[0032] Optionally, the physiological signal acquisition unit includes a sensor.

[0033] The beneficial effects of the present application are as follows:

[0034] Aiming at the problems existing in the current prior art, the present application provides a monitoring system. The combined use of multiple groups of slots and partition plates can divide the main cabin into multiple sub-cabins, and each sub-cabin can hold one animal to be monitored. In this way, each animal to be monitored has its own independent space. When multiple animals to be monitored have undergone surgery and are in the recovery process, it can prevent some animals that wake up earlier from affecting the vital sign monitoring of other animals to be monitored. At the same time, it can also prevent the animals to be monitored after waking up from biting and chewing on the components of the system to avoid damage to the components. The partition plate can be inserted into a corresponding group of slots according to the size of the animal to be monitored, so that the sub-cabin has enough space to hold the animal to be monitored. When the animal to be monitored is relatively large, two adjacent single sub-cabins are connected to form a larger space; in addition, the cover plate can cover the top opening of a single sub-cabin or the top openings of two adjacent single sub-cabins at the same time, without the need to replace the cover plate, which is simple and convenient. By connecting the monitoring device to the animal to be detected, the vital signs of the animal to be monitored can be monitored. The detection system provided by the present application can not only separate multiple animals to be monitored and monitor them separately, but also adjust the space of the sub-cabin according to the size of the animal to be monitored. Brief Description of the Drawings

[0035] The following further describes in detail the specific embodiments of the present utility model in conjunction with the drawings.

[0036] Figure 1 The schematic diagram of the overall structure of the monitoring system in an embodiment of the present application is shown.

[0037] Figure 2 The top view of the monitoring system in an embodiment of the present application is shown.

[0038] Figure 3 The schematic diagram of the cooperation between some sub-cabin bodies and the cover plate in the monitoring system in an embodiment of the present application is shown.

[0039] Figure 4 The side view of the cover plate in the monitoring system in an embodiment of the present application is shown.

[0040] Figure 5 The front view of the partition in the monitoring system in an embodiment of the present application is shown.

[0041] Figure 6 The side view of the partition in the monitoring system in an embodiment of the present application is shown.

[0042] Figure 7 The schematic diagram when the second inner side wall of some main cabin bodies in the monitoring system in an embodiment of the present application cooperates with the groove body is shown. Specific Embodiments

[0043] In the following description, for the purpose of illustration, in order to provide a comprehensive understanding of one or more embodiments, many specific details are set forth. However, it is obvious that these embodiments can also be implemented without these specific details.

[0044] In the description of the present application, it should be noted that the orientation or positional relationship indicated by terms such as "upper", "lower", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present application. Unless otherwise clearly specified and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0045] It should also be noted that in the description of the present application, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprise", "include" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "comprising a..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0046] To solve the problems existing in the prior art, an embodiment of the present application provides a monitoring system, as Figure 1-7 shown, comprising: a main cabin with an open top, the main cabin including a plurality of groups of slots arranged at equal intervals and sequentially along a first direction, each group of slots including two slots 14 respectively formed on two opposite inner side walls of the main cabin; specifically, the main cabin includes two first inner side walls 11 arranged along the first direction, and two second inner side walls 12 arranged along a second direction, and the two slots 14 in each group of slots are respectively oppositely arranged on the two second inner side walls 12 of the main cabin; the direction perpendicular to the first direction in the horizontal plane is the second direction. Here, as Figure 1As shown, the first direction is the X direction and the second direction is the Y direction. The distance between the first inner side wall 11 of the multi-group slots closest to the cabin body and the first inner side wall 11 is equal to the distance between two adjacent slots. The monitoring system further includes a partition 2, and both side parts of the partition 2 can be inserted into two slot bodies 14 of each group of slots respectively to divide the main cabin body into multiple sub-cabin bodies 13, and the animals to be monitored are placed in the sub-cabin bodies 13; two adjacent sub-cabin bodies 13 can be communicated, that is, there is no partition 2 inserted between two adjacent single sub-cabin bodies; here, it is defined that a single sub-cabin body 13 is a first cabin body with a first space; when there is no partition 2 inserted between two adjacent single sub-cabin bodies 13, the two adjacent single sub-cabin bodies 13 are communicated, and the two communicated single sub-cabin bodies 13 are a second cabin body with a second space; of course, when the partition 2 is inserted into the group of slots closest to the first inner side wall 11 of the multi-group slots, the sub-cabin body 13 formed between the partition 2 and one first inner side wall 11 and two second inner side walls 12 of the cabin body is also a first cabin body with a first space. When there is a group of slots without a partition 2 inserted between two groups of slots with a partition 2 inserted or between the partition 2 and the first inner side wall 11 of the main cabin body, the sub-cabin body 13 is a second cabin body with a second space; the second space of the second cabin body is twice the first space of the first cabin body. The monitoring system further includes a cover plate for covering the top opening of the sub-cabin body 13; the cover plate includes a first plate body 3 and a second plate body 4 which are rotatably connected, and the first plate body 3 and the second plate body 4 include a folded state or an unfolded state; when the first plate body 3 and the second plate body 4 are in the folded state, the cover plate covers the top opening of a single sub-cabin body 13; when the first plate body 3 and the second plate body 4 are in the unfolded state, the cover plate covers the top openings of two adjacent single sub-cabin bodies 13 at the same time; the monitoring system further includes a monitoring equipment cabin 6 located below the main cabin body, and a monitoring device 61 for monitoring the vital signs of the animals 10 to be monitored is placed in the monitoring equipment cabin 6. The monitoring equipment cabin 6 further includes a power supply device (not shown in the figure) for supplying power to the whole monitoring system.

[0047] In practical applications, one of the two second inner side walls 12 of the main cabin body includes a plurality of connection channels 15 for connecting the animals 10 to be monitored and the monitoring device 61, and the plurality of connection channels 15 are respectively arranged between two adjacent slot bodies 14 and between the slot body 14 closest to the first inner side wall 11 and the first inner side wall 11; that is to say, when all the sub-cabin bodies 13 are first cabin bodies with a first space, each first cabin body has a connection channel 15.

[0048] In the above embodiments of the present application, the cooperation of multiple groups of slots and the partition 2 can divide the main cabin into multiple sub-cabins 13. One monitored animal 10 can be placed in each sub-cabin 13. In this way, each monitored animal 10 has its own independent space. When multiple monitored animals 10 have undergone surgery, during the recovery process, it can prevent some of the earlier-awakened monitored animals 10 from affecting the vital sign monitoring of other monitored animals 10. At the same time, it can also prevent the awakened monitored animals 10 from biting the components of the system, etc., to avoid damage to the components. The partition 2 can be inserted into a corresponding group of slots according to the body size of the monitored animal 10, so that the sub-cabin 13 has enough space to place the monitored animal 10. When the monitored animal 10 is relatively large in size, two adjacent single sub-cabins 13 are connected to form a larger space. In addition, the cover plate can cover the top opening of a single sub-cabin or the top openings of two adjacent single sub-cabins 13 at the same time, without replacing the cover plate, which is simple and convenient. By connecting the monitoring device 61 with the detected animal, the vital signs of the monitored animal 10 can be monitored. The detection system provided by the present application can not only separate multiple monitored animals 10 and monitor them separately, but also adjust the space of the sub-cabin 13 according to the size of the monitored animal 10.

[0049] In a specific embodiment, each groove 14 extends in the vertical direction; the groove 14 is formed by the inner wall of the cabin recessing inward, or two convex strips are formed by the inner wall of the cabin protruding outward, and the space between the two convex strips forms the groove 14.

[0050] In a specific embodiment, the tops of two opposite side walls of each sub-cabin 13 each include a receiving groove 21 extending in the second direction for receiving the cover plate; the direction perpendicular to the first direction in the horizontal plane is the second direction. By the cooperation of the cover plate and the receiving groove 21, the cover plate can be fixed on the top of the sub-cabin 13, so that the sub-cabin 13 forms a closed space to prevent the monitored animal 10 from escaping from the sub-cabin 13.

[0051] Specifically, the tops of two opposite sides of the partition 2, and the tops of two opposite inner walls of the main cabin arranged in the first direction respectively form the receiving groove 21. In this way, the first connecting portion, the second connecting portion and the third connecting portion of the cover plate can be inserted into the corresponding receiving groove 21 according to the actual situation.

[0052] In a specific embodiment, the connection between the first plate body 3 and the second plate body 4 is connected by a rotating shaft 5, and the rotating shaft 5 is extended along the second direction; the design of the rotating shaft 5 enables the cover plate to be in a folded state or an unfolded state. The bottom of the rotating shaft 5 includes a first connecting portion extending along the second direction; the bottom of the first plate body 3 away from the rotating shaft 5 includes a second connecting portion extending along the second direction; the bottom of the second plate body 4 away from the rotating shaft 5 includes a third connecting portion extending along the second direction; when the cover plate is in a folded state, the first connecting portion and the second connecting portion are respectively inserted into the receiving groove 21 corresponding to the sub-cabin body 13; when the cover plate is in an unfolded state, the first connecting portion and the third connecting portion are respectively inserted into the receiving groove 21 corresponding to the sub-cabin body 13. That is to say, when the sub-cabin 13 is a first cabin having a first space, the cover is in a folded state, and the first connection portion on the rotating shaft 5 and the second connection portion on the first plate 3 are respectively inserted into the corresponding receiving groove 21, so that the first plate 3 covers the top of the first cabin; when the sub-cabin 13 is a second cabin having a second space, the cover is in an unfolded state, and the second connection portion on the first plate 3 and the third connection portion on the second plate 4 are respectively inserted into the corresponding receiving groove 21, so that the first plate 3 and the second plate 4 cover the top of the second cabin. Such a design allows the same cover to cover both the top of the first cabin having a first space and the top of the second cabin having a second space; when the size of the space in the sub-cabin 13 is changed, no other cover is needed, which is not only simple and convenient, but also saves costs. In addition, the design of the first connecting part being arranged at the bottom of the rotating shaft 5 can not only be consistent with the second connecting part and the third connecting part, and will not affect the coordinated use of the first connecting part and the second connecting part, but also will not affect the relative rotation of the first plate body 3 and the second plate body 4, that is, it will not affect the arbitrary switching of the cover between the folded state and the unfolded state.

[0053] In actual application, when the inner wall of the cabin body protrudes outward to form two convex strips, and the space between the two convex strips forms the groove body 14, the two end portions of the first connection part are located on the inner side of the edge of the cover plate, that is, there is an avoidance area between the two opposite sides of the cover plate and the first connection part, and the avoidance area is used to avoid the two groove bodies 14 of each group of slots to prevent the two second inner side walls 12 of the main cabin body and the groove body 14 located on the second inner side walls 12 from blocking the first connection part when the cover plate is in the expanded state, so that the second connection part and the third connection part cannot be smoothly inserted into the accommodating groove 21.

[0054] Further, the first connecting portion includes a first vertical portion 51 formed by extending downward from the bottom of the rotating shaft 5, and a first flat portion 52 formed by extending from the first vertical portion 51 toward the third connecting portion; the second connecting portion includes a second vertical portion 31 formed by extending downward from the bottom of the side of the first plate body 3 away from the rotating shaft 5, and a second flat portion 32 formed by extending from the second vertical portion 31 in a direction away from the third connecting portion; the third connecting portion includes a third vertical portion 41 formed by extending downward from the bottom of the side of the second plate body 4 away from the rotating shaft 5, and a third flat portion 42 formed by extending from the third vertical portion 41 in a direction away from the first connecting portion; when the cover plate is in a folded state, the first flat portion 52 and the second flat portion 32 are respectively inserted into the receiving grooves 21 corresponding to the sub-compartments 13; when the cover plate is in an unfolded state, the first flat portion 52 and the third flat portion 42 are respectively inserted into the receiving grooves 21 corresponding to the sub-compartments 13. With such a design, the first flat portion 52, the second flat portion 32, and the third flat portion 42 can all be on the same horizontal plane, facilitating the cooperation of the second flat portion 32 with the first flat portion 52 and the third flat portion 42 respectively, and enabling the first flat portion 52, the second flat portion 32, and the third flat portion 42 to be smoothly inserted into the corresponding receiving grooves 21.

[0055] In a specific embodiment, the monitoring device 61 includes a monitoring component; the monitoring component includes a physiological signal acquisition unit connected to the monitored animal 10, and a data processing unit connected to the physiological signal acquisition unit. The data processing unit is integrated in the monitoring component; the physiological signal acquisition unit is configured to acquire the physiological signals of the monitored animal 10 and send the physiological signals to the data processing unit; the data processing unit is configured to process the physiological signals to obtain the vital sign parameters of the monitored animal 10 and output the vital sign parameters. Making timely response measures according to the physiological conditions of the animal, such as timely responding to the abnormal physiological conditions of the animal, is more conducive to the treatment of the animal.

[0056] The physiological signal acquisition unit includes multiple sensors, and the multiple sensors include respiratory sensors, blood oxygen sensors, electrocardiogram sensors, temperature measurement sensors, etc.; the physiological signals include electrocardiogram signals, blood oxygen signals, respiratory signals, body temperature signals, pulse signals, etc., which are signals related to the physiological state of the animal. Accordingly, the corresponding vital sign parameters include: electrocardiogram parameters obtained by processing electrocardiogram signals, blood oxygen parameters obtained by processing blood oxygen signals, respiratory parameters obtained by processing respiratory signals, body temperature parameters obtained by processing body temperature signals, and pulse parameters obtained by processing pulse signals. Therefore, correspondingly, the physiological signal acquisition unit may include multiple sub-units. For example, the sub-unit for acquiring electrocardiogram signals is connected to the body surface part of the animal's heart; the sub-unit for acquiring blood oxygen signals is connected to the blood vessels of the monitored animal 10; the sub-unit for acquiring respiratory signals is connected to the body surface part of the lungs of the monitored animal 10...

[0057] Furthermore, the monitoring system further includes a communication component connected to the data processing unit; a terminal device communicatively connected to the communication component. The communication component is used to obtain the vital sign parameters and / or the physiological signals output by the data processing unit, and send the vital sign parameters and / or the physiological signals to the user's terminal device; the communication component is also used to obtain the alarm information output by the data processing unit, and send the alarm information to the user's terminal device to prompt that the vital signs of the target animal are abnormal. The staff can obtain the abnormal physiological conditions of the monitored animal 10 anytime and anywhere, which helps them take corresponding measures in a timely manner for the abnormal physiological conditions of the monitored animal 10.

[0058] In a specific embodiment, the monitoring system further includes: a temperature sensor (not shown in the figure) for detecting the internal cavity temperature of each sub-cabin 13, and a temperature controller connected to the temperature sensor; the temperature controller is used to control the internal cavity temperature of each sub-cabin 13. The temperature sensor transmits the detected temperature in the sub-cabin 13 to the temperature controller, and the temperature controller determines whether the received temperature in the sub-cabin 13 is within the preset temperature range. If not, it will control the temperature regulator to adjust the temperature in the sub-cabin 13.

[0059] In practical applications, when the vital sign parameters of the monitored animal are not within the normal parameter range, it is necessary to rescue the monitored animal. For example, the monitoring system provided in this application may further include a cardiac rescue pressing device and a sputum drainage device; when the detected electrocardiogram parameters are not within the normal range, the cardiac rescue pressing device can be used to press the heart of the monitored animal, and when the respiratory parameters are not within the normal range, the sputum drainage device can be used to drain sputum from the monitored animal.

[0060] Obviously, the above embodiments of the present utility model are merely examples for clearly illustrating the present utility model, rather than limitations on the implementation manners of the present utility model. For those of ordinary skill in the art, based on the above description, other different forms of changes or modifications can be made. It is impossible to enumerate all the implementation manners here. Any obvious changes or modifications derived from the technical solutions of the present utility model still fall within the protection scope of the present utility model.

Claims

1. A monitoring system, characterized in that: include: A main cabin body with an open top, the main cabin body comprising a plurality of slots arranged in sequence along a first direction with equal spacing, each slot group comprising two slot bodies respectively formed on two opposite inner side walls of the main cabin body; each slot body extending in a vertical direction; A partition, the two side edges of which can be respectively inserted into the two slots of each group of slots to separate the main cabin into a plurality of sub-cabins, and the monitored animals are placed in the sub-cabins; A cover plate, used to cover the top opening of the sub-cabin; the cover plate includes a first plate body and a second plate body rotatably connected with the second direction as the axial direction; the first plate body and the second plate body include a folded state and an unfolded state; When the first plate body and the second plate body are in a folded state, the cover plate covers the top opening of the single sub-cabin body; When the first plate body and the second plate body are in the unfolded state, the cover plate simultaneously covers the top openings of two adjacent single sub-cabin bodies; The monitoring system also includes a monitoring equipment cabin located below the main cabin body, in which monitoring equipment for monitoring the vital signs of the monitored animal is placed.

2. The monitoring system according to claim 1, characterized in that: The tops of the two opposite side walls of each of the sub-cabin bodies include a receiving groove extending along the second direction for receiving the cover plate; The direction in the horizontal plane that is perpendicular to the first direction is the second direction.

3. The monitoring system according to claim 2, characterized in that: The connection between the first plate body and the second plate body is connected via a rotating shaft, and the rotating shaft is extended along the second direction; The bottom of the rotating shaft includes a first connecting portion extending along the second direction; The bottom of the first plate body on one side away from the rotating shaft includes a second connecting portion extending along a second direction; The bottom of the second plate body on one side away from the rotating shaft includes a third connecting portion extending along the second direction; When the cover is in a folded state, the first connection portion and the second connection portion are respectively inserted into the receiving grooves corresponding to the sub-cabin body; When the cover is in the unfolded state, the first connection portion and the third connection portion are respectively inserted into the corresponding receiving grooves of the sub-cabin body.

4. The monitoring system according to claim 3, characterized in that: The first connecting portion includes a first vertical portion extending downward from the bottom of the rotating shaft, and a first straight portion extending from the first vertical portion toward the third connecting portion; The second connecting portion includes a second vertical portion extending downward from the bottom of one side of the first plate away from the rotating shaft, and a second straight portion extending from the second vertical portion away from the third connecting portion; The third connecting portion includes a third vertical portion extending downward from the bottom of the second plate away from the rotating shaft, and a third straight portion extending from the third vertical portion away from the first connecting portion; When the cover is in a folded state, the first straight portion and the second straight portion are respectively inserted into the receiving grooves corresponding to the sub-cabin body; When the cover is in the unfolded state, the first straight portion and the third straight portion are respectively inserted into the corresponding receiving grooves of the sub-cabin body.

5. The monitoring system according to claim 1, characterized in that: The groove body is formed by the inner wall of the cabin body being concave inwards, or the inner wall of the cabin body being convex outwards to form two convex strips, and the space between the two convex strips forms the groove body.

6. The monitoring system according to claim 2, characterized in that: The accommodating grooves are respectively formed on the tops of two opposite side surfaces of the partition plate and on the tops of two opposite inner side walls of the main cabin arranged along the first direction.

7. The monitoring system according to claim 1, characterized in that: The monitoring device comprises a monitoring component; the monitoring component comprises a physiological signal acquisition unit, the physiological signal acquisition unit is connected to the monitored animal; and a data processing unit connected to the physiological signal acquisition unit.

8. The monitoring system according to claim 7, characterized in that: The monitoring system also includes a communication component connected to the data processing unit; A terminal device that is communicatively connected to the communication component.

9. The monitoring system according to claim 7, characterized in that: The monitoring system further includes: a temperature sensor for detecting the inner cavity temperature of each sub-cabin body, and a temperature controller connected to the temperature sensor; the temperature controller is used to control the inner cavity temperature of each sub-cabin body.

10. The monitoring system according to claim 7, characterized in that: The physiological signal acquisition unit includes a sensor.