Isolation device
Through the design of the isolation monitoring base and mechanical structure, the problem of insufficient supervision of the behavior of isolated people in traditional isolation methods is solved, realizing instant monitoring of behaviors approaching or opening the door, ensuring efficient and safe prevention and control of infectious diseases.
Patent Information
- Application Number
- CN202510298908.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-07-18
AI Technical Summary
Traditional infectious disease isolation methods lack real-time supervision of the behavior of quarantined people, resulting in the inability to detect and deal with key behaviors in a timely manner, such as getting close to or opening the door, increasing the risk of virus transmission.
An isolation device is designed, including an isolation monitoring base, proximity sensing assembly and deployment sensing assembly. Through the mechanical structure of the pressing plate and matching strips, instant wireless transmission of messages to the isolated persons approaching or opening the door is achieved, ensuring that the monitoring center is aware of the situation in a timely manner.
Realize instant monitoring of the behavior of quarantined people, ensure the efficiency and safety of quarantine work, reduce the risk of virus transmission, and improve the reliability of infectious disease prevention and control.
Smart Images

Figure CN120335048A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of infectious disease prevention and control isolation, and particularly to an isolation device. Background Art
[0002] Infectious diseases often have significant characteristics such as high infectivity, rapid transmission, and concealment. For this reason, the prevention and control isolation of infectious diseases has become the core and key to blocking its transmission chain. Under the traditional infectious disease isolation mode, the quarantined personnel are usually placed in an independent room for isolation. However, this method has obvious defects. It lacks an effective supervision mechanism for the behavior of the quarantined personnel in the isolation room and is difficult to monitor the dynamic situation of the quarantined personnel in real time. Generally speaking, only timed manual inspections can be relied on for management. However, this manual inspection method not only requires a large amount of human and material resources, but also due to the time interval, it is impossible to detect and handle in a timely manner the key behaviors of the quarantined personnel that may come into contact with the outside world, such as approaching the door or trying to open the door. Once these key behaviors fail to be discovered and effectively handled in a timely manner, it is very likely that the isolation measures will lose their effectiveness, thus greatly increasing the risk of virus transmission and posing a serious threat to public health safety. Summary of the Invention
[0003] The present invention relates to an isolation device, which solves the problem that the prevention and control isolation measure of isolating personnel in a single room lacks supervision of the behavior of the quarantined personnel, resulting in the inability to discover and handle in a timely manner when they make key behaviors such as approaching or opening the door, and there is a hidden danger of virus transmission due to the failure of isolation.
[0004] The present invention provides an isolation device, which specifically includes: an isolation monitoring base. The isolation monitoring base has a rectangular block structure. Inside the isolation monitoring base, there are a microcontroller, a storage battery electrically connected thereto, and a 5G module. The storage battery is externally connected to a power supply, and the 5G module is wirelessly connected to a monitoring center for data transmission; on the top surface of the isolation monitoring base, there is a pressing groove. At the center of the bottom surface of the inner end of the pressing groove, a set of proximity sensing components electrically connected to the microcontroller are fixedly installed. The proximity sensing components adopt tactile switches, and the key ends of the proximity sensing components face upward; inside the pressing groove, a pressing plate is slidably inserted. On the left and right sides of the bottom surface of the pressing plate, a spring support member is fixedly installed respectively. The bottom ends of the two spring support members are fixedly connected to the bottom surface of the inner end of the pressing groove; in the natural state of the spring support members, the top surface of the pressing plate is at the same horizontal plane as the top surface of the isolation monitoring base, and at this time, the bottom surface of the pressing plate does not contact the key end of the proximity sensing component.
[0005] Further, a rubber support pad is inserted into the pressing groove. On both left and right sides of the top surface of the rubber support pad, there is a mating through hole penetrating its bottom surface, and the two mating through holes correspond to the positions of two spring support members respectively; at the central part of the top surface of the rubber support pad, there is a mating opening penetrating its bottom surface, and the mating opening corresponds to the position of the proximity sensing component.
[0006] Further, in the natural state of the spring support member, the bottom surface of the pressing plate is higher than the top surface of the rubber support pad; when the proximity sensing component is not in the pressed and activated state, the top surface of the key end of the proximity sensing component is higher than the top surface of the rubber support pad; when the bottom surface of the pressing plate is in contact with the top surface of the rubber support pad, at this time the proximity sensing component is in the pressed and activated state; when the proximity sensing component is in the pressed and activated state, the proximity sensing component feeds back a signal to the microcontroller, and the microcontroller controls the 5G module to wirelessly transmit a message to the monitoring center.
[0007] Further, at the left and right corner parts of the front of the top surface of the isolation monitoring base, there is an installation notch respectively, and at the bottom surface of the inner end of the two installation notches, there is an installation hole penetrating the bottom surface of the isolation monitoring base; at the rear end surface of the isolation monitoring base, there is a storage notch in the shape of a rectangular notch structure, and the storage notch penetrates the top surface and the bottom surface of the isolation monitoring base.
[0008] Further, a mating strip in the shape of a rectangular bar is inserted into the storage notch, and between the right end surface of the mating strip and the right side surface of the inner end of the storage notch, they are fixedly installed and connected by a spring connecting piece; the left end surface of the mating strip adopts a semi-circular structure.
[0009] Further, inside the isolation monitoring base, relative to the storage notch part, there is a reciprocating movement cavity in the shape of a cylindrical cavity. At the central part of the right side surface of the inner end of the reciprocating movement cavity, there is a plugging opening communicating with the storage notch, and the plugging opening is a circular hole; at the left side surface of the inner end of the reciprocating movement cavity, there is a plugging opening penetrating the left end surface of the isolation monitoring base, and the plugging opening is in the shape of a rectangular opening structure.
[0010] Further, at the front side surface of the inner end of the plugging opening, there is an induction groove, and inside the front side surface of the inner end of the induction groove, a set of unfolding induction components electrically connected to the microcontroller is fixedly installed. The unfolding induction components adopt proximity switches, and the induction ends of the unfolding induction components face the rear side.
[0011] Further, a mating moving slider with the same diameter as it is slidably installed in the reciprocating movement cavity, and between the right end surface of the mating moving slider and the right side surface of the inner end of the reciprocating movement cavity, they are fixedly connected by a spring return member; in the natural state of the spring return member, the left end surface of the mating moving slider does not contact the left side surface of the inner end of the reciprocating movement cavity.
[0012] Furthermore, a plug-in block is fixedly installed on the left end face of the mating movable slider, and the plug-in block is slidably plugged into the inside of the plug-in opening. A metal mating sensing block that can cooperate with the expansion sensing component is embedded between the front end face and the rear end face of the plug-in block; when the spring return part is in a natural state, the metal mating sensing block corresponds to the position of the sensing slot, and at this time, the metal mating sensing block is within the sensing range of the expansion sensing component; when the expansion sensing component senses the metal mating sensing block, the expansion sensing component feedbacks a signal to the microcontroller, and the microcontroller controls the 5G module to wirelessly transmit messages to the monitoring center.
[0013] Furthermore, a plug-in column is fixedly installed on the axial center of the right end face of the mating movable slider, and the plug-in column is slidably plugged into the plug-in opening; the right end of the plug-in column adopts a semicircular structure; when the spring return member is in a natural state, the arc surface of the right end of the plug-in column protrudes from the right opening end of the plug-in opening; when the arc surface of the left end of the mating bar block contacts the left side surface of the inner end of the storage groove, the right end of the plug-in column is pressed into the inside of the plug-in opening by the mating bar block, and at this time the spring return member is in a stretched state, the metal mating sensing block is staggered from the sensing slot, and the metal mating sensing block is no longer within the sensing range of the unfolding sensing component.
[0014] Compared with the prior art, the present invention has the following beneficial effects:
[0015] The present invention is installed in a room used for infectious disease prevention and control isolation, and is in contact with the door panel of the room, so as to achieve a large-scale occupation of the space at the door of the room. Through this design, when the isolated person approaches the door of the room, due to the large-scale occupation of the space at the door of the room, the isolated person will inevitably stand on the pressure plate, and based on the pressure of the pressure plate, the proximity sensing component is pressed and started simultaneously, thereby first realizing wireless transmission of messages to the monitoring center, so that the isolation and prevention and control staff in the monitoring center can be informed of the behavior of the current isolated person approaching the door of the room at the first time, so as to facilitate them to send people to observe the specific situation and inquire about the reason in time, effectively ensuring the efficiency and safety of the isolation work, and providing reliable guarantee for the smooth progress of the infectious disease prevention and control isolation process.
[0016] Through the fixed installation of the matching strip and the door panel of the door, when the isolated person opens the door of the room for the prevention and control of infectious diseases, the door will drive the matching strip to unfold synchronously. Based on the position movement of the matching strip, without the matching and pressing of the matching strip, the spring reset member will drive the matching moving slider, the inserting column and the inserting block to move based on the reset rebound, so that the metal matching induction block moves into the induction range of the unfolding induction component. The induction feedback between the unfolding induction component and the metal matching induction block enables the first realization of wireless transmission of messages to the monitoring center, so that the isolation prevention and control staff in the monitoring center can learn the behavior of the current isolated person opening the door in a timely manner, so that they can send someone to observe the specific situation and ask the reason in time, effectively ensuring the efficiency and safety of the isolation work, and providing a reliable guarantee for the smooth progress of the infectious disease prevention and control isolation process. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0018] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0019] In the drawings:
[0020] Figure 1 The front end isometric structure diagram of the present application is shown;
[0021] Figure 2 The rear end isometric structure diagram of the present application is shown;
[0022] Figure 3 The top isometric structure diagram of the present application in the split state of the stepping plate and the rubber support pad is shown;
[0023] Figure 4 The bottom isometric structure diagram of the present application in the split state of the stepping plate and the rubber support pad is shown;
[0024] Figure 5 The cross-sectional structure diagram of the present application is shown;
[0025] Figure 6 The left rear end isometric structure diagram of the present application in the split state of the matching strip is shown;
[0026] Figure 7 The Figure 6 partial enlarged structure diagram at position A in the present application is shown;
[0027] Figure 8 The right rear end isometric structure diagram of the present application in the split state of the matching strip is shown;
[0028] Figure 9 shows the Figure 8 schematic diagram of the partial enlarged structure at position B in
[0029] Figure 10 schematic diagram of the partial sectional enlarged structure of the reciprocating movement cavity part in the state where the matching strip block presses against the insertion column of the present application;
[0030] Figure 11 shows the Figure 10 schematic diagram of the structure in the state where the matching strip block is removed in
[0031] Figure 12 schematic diagram of the system block diagram of the present application;
[0032] List of reference numerals
[0033] 1. Isolation monitoring base; 101. Installation notch; 102. Installation hole position; 103. Storage notch; 104. Step-on groove; 105. Proximity induction component; 106. Insertion opening; 107. Matching moving slider; 108. Insertion column; 109. Spring return member; 1010. Insertion block; 1011. Metal matching induction block; 1012. Insertion opening; 1013. Induction groove; 1014. Deployment induction component; 1015. Reciprocating movement cavity; 1016. Battery; 1017. 5G module; 1018. Monitoring center; 1019. Microcontroller;
[0034] 2. Step-on plate; 201. Spring support member;
[0035] 3. Matching strip block; 301. Spring connecting member;
[0036] 4. Rubber support pad; 401. Matching opening; 402. Matching opening. Detailed implementation manners
[0037] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0038] Embodiment: Please refer to Figures 1 to 12 :
[0039] The present invention provides an isolation device, comprising: an isolation monitoring base 1, the isolation monitoring base 1 is in a rectangular block structure, and a microcontroller 1019, a storage battery 1016 electrically connected thereto, and a 5G module 1017 are arranged inside the isolation monitoring base 1. The storage battery 1016 is externally connected to a power supply, and the 5G module 1017 is wirelessly connected to a monitoring center 1018 for data transmission; a pressing groove 104 is formed in the top end surface of the isolation monitoring base 1. A group of proximity sensing components 105 electrically connected to the microcontroller 1019 are fixedly installed at the center of the bottom surface of the inner end of the pressing groove 104. The proximity sensing components 105 adopt touch switches, and the key ends of the proximity sensing components 105 face upward; a pressing plate 2 is slidably inserted into the pressing groove 104. Spring supports 201 are fixedly installed on both the left and right sides of the bottom end surface of the pressing plate 2, and the bottom ends of the two spring supports 201 are fixedly connected to the bottom surface of the inner end of the pressing groove 104; when the spring supports 201 are in a natural state, the top end surface of the pressing plate 2 is at the same horizontal plane as the top end surface of the isolation monitoring base 1, and at this time, the bottom end surface of the pressing plate 2 does not contact the key end of the proximity sensing components 105; a rubber support pad 4 is inserted into the pressing groove 104. Through holes 401 penetrating the bottom end surface are formed on both the left and right sides of the top end surface of the rubber support pad 4, and the two through holes 401 correspond to the positions of the two spring supports 201 respectively; a through opening 402 penetrating the bottom end surface is formed at the center of the top end surface of the rubber support pad 4, and the through opening 402 corresponds to the position of the proximity sensing components 105; when the spring supports 201 are in a natural state, the bottom end surface of the pressing plate 2 is higher than the top end surface of the rubber support pad 4; when the proximity sensing components 105 are not pressed and activated, the top end surface of the key end of the proximity sensing components 105 is higher than the top end surface of the rubber support pad 4; when the bottom end surface of the pressing plate 2 is in contact with the top end surface of the rubber support pad 4, the proximity sensing components 105 are in a pressed and activated state at this time; when the proximity sensing components 105 are in a pressed and activated state, the proximity sensing components 105 send feedback signals to the microcontroller 1019, and the microcontroller 1019 controls the 5G module 1017 to wirelessly transmit messages to the monitoring center 1018.
[0040] In this embodiment, mounting notches 101 are provided at the left and right corner parts in front of the top surface of the isolation monitoring base 1, and mounting holes 102 penetrating the bottom surface of the isolation monitoring base 1 are provided at the bottom surfaces of the inner ends of the two mounting notches 101; a receiving notch 103 in the shape of a rectangular notch structure is provided on the rear end surface of the isolation monitoring base 1, and the receiving notch 103 penetrates the top surface and the bottom surface of the isolation monitoring base 1; a matching strip 3 in the shape of a rectangular strip structure is inserted into the receiving notch 103, and a spring connecting piece 301 is fixedly installed between the right end surface of the matching strip 3 and the right side surface of the inner end of the receiving notch 103; the left end surface of the matching strip 3 adopts a semi-circular structure; a reciprocating moving cavity 1015 in the shape of a cylindrical cavity is provided inside the isolation monitoring base 1 at the position corresponding to the receiving notch 103, a plugging opening 106 communicating with the receiving notch 103 is provided at the central part of the right side surface of the inner end of the reciprocating moving cavity 1015, and the plugging opening 106 is a circular hole; a plugging opening 1012 penetrating the left end surface of the isolation monitoring base 1 is provided on the left side surface of the inner end of the reciprocating moving cavity 1015, and the plugging opening 1012 is in the shape of a rectangular opening; an induction groove 1013 is provided on the front side surface of the inner end of the plugging opening 1012, and a set of unfolding induction components 1014 electrically connected to the microcontroller 1019 are fixedly installed on the front side surface of the inner end of the induction groove 1013. The unfolding induction components 1014 adopt proximity switches, and the induction ends of the unfolding induction components 1014 face the rear side; a matching moving slider 107 with the same diameter as the reciprocating moving cavity 1015 is slidably installed in the reciprocating moving cavity 1015, and a spring resetting piece 109 is fixedly connected between the right end surface of the matching moving slider 107 and the right side surface of the inner end of the reciprocating moving cavity 1015; in the natural state of the spring resetting piece 109, the left end surface of the matching moving slider 107 does not contact the left side surface of the inner end of the reciprocating moving cavity 1015.
[0041] In this embodiment, a plug-in block 1010 is fixedly installed on the left end face of the movable slider 107, and the plug-in block 1010 is slidably plugged into the plug-in opening 1012. A metal matching sensing block 1011 that can be matched with the expansion sensing component 1014 is embedded between the front end face and the rear end face of the plug-in block 1010; when the spring return member 109 is in the natural state, the metal matching sensing block 1011 corresponds to the position of the sensing groove 1013, and the metal matching sensing block 1011 is within the sensing range of the expansion sensing component 1014; when the expansion sensing component 1014 senses the metal matching sensing block 1011, the expansion sensing component 1014 feedbacks a signal to the microcontroller 1019, and the microcontroller 1019 controls the 5G module 1017 to send a signal to the monitoring center The core 1018 transmits messages wirelessly; a plug-in column 108 is fixedly installed on the axial center of the right end face of the movable slider 107, and the plug-in column 108 is slidably plugged into the plug-in opening 106; the right end of the plug-in column 108 adopts a semicircular structure; when the spring return member 109 is in a natural state, the arc surface of the right end of the plug-in column 108 protrudes from the right open end of the plug-in opening 106; when the arc surface of the left end of the matching strip 3 contacts the left side surface of the inner end of the storage groove 103, the right end of the plug-in column 108 is pressed into the inside of the plug-in opening 106 by the matching strip 3, and at this time the spring return member 109 is in a stretched state, the metal matching sensing block 1011 is staggered from the sensing groove 1013, and the metal matching sensing block 1011 is no longer within the sensing range of the unfolding sensing component 1014.
[0042] The working principle of this embodiment:
[0043] The isolation monitoring base 1 is installed in a room used for infectious disease prevention and control isolation, and its position is adjacent to the door of the room. At this time, the rear end face of the isolation monitoring base 1 is in contact with the door panel of the room with an outward opening door structure, and fasteners such as screws are inserted through the installation holes 102 and fixedly connected to the ground, so as to achieve a fixed installation of the isolation monitoring base 1, and the rear end face of the matching strip 3 is fixedly installed and connected to the door panel of the room with an outward opening door structure;
[0044] During prevention and control isolation, when the quarantined person approaches the door of the room, due to the space occupied by the isolation monitoring base 1 at the door of the room, the quarantined person will inevitably stand on the stepping plate 2. Thus, under the weight pressure of the quarantined person, the stepping plate 2 moves downward along the stepping groove 104. At this time, the spring support 201 is compressed, and the bottom end surface of the stepping plate 2 will also come into contact with the top end surface of the rubber support pad 4. At this time, the bottom end surface of the stepping plate 2 will also simultaneously press against the button end of the proximity sensing component 105, causing the proximity sensing component 105 to be in a pressed and activated state. At this time, the proximity sensing component 105 feeds back a signal to the microcontroller 1019, and the microcontroller 1019 controls the 5G module 1017 to wirelessly transmit a message to the monitoring center 1018, so that the isolation prevention and control staff in the monitoring center 1018 can learn in a timely manner that the current quarantined person is approaching the door of the room, and thus send someone to observe the specific situation and ask for the reason in a timely manner;
[0045] When the quarantined person opens the door, the door will synchronously drive the cooperating strip 3 fixedly connected thereto to unfold. At this time, the spring connecting member 301 is stretched and bent accordingly. And because the cooperating strip 3 disengages from the receiving notch 103 at this time, without the pressing of the cooperating strip 3 on the plug post 108, the spring return member 109 that was originally in a stretched state quickly returns and rebounds, thereby driving the cooperating moving slider 107, the plug post 108 and the plug block 1010 to move to the right. After the spring return member 109 returns and rebounds, at this time, the left end surface of the cooperating moving slider 107 does not contact the left inner end surface of the reciprocating moving cavity 1015, the arc surface part at the right end of the plug post 108 protrudes from the right opening end part of the plugging opening 106, and the metal cooperating sensing block 1011 will be corresponding to the sensing groove 1013. Therefore, at this time, the metal cooperating sensing block 1011 is within the sensing range of the unfolding sensing component 1014. When the unfolding sensing component 1014 senses the metal cooperating sensing block 1011, it feeds back a signal to the microcontroller 1019, and the microcontroller 1019 controls the 5G module 1017 to wirelessly transmit a message to the monitoring center 1018, so that the isolation prevention and control staff in the monitoring center 1018 can learn in a timely manner that the current quarantined person has opened the door, and thus send someone to observe the specific situation and ask for the reason in a timely manner.
Claims
1. An isolation device, characterized in that, Including: An isolation monitoring base (1), the isolation monitoring base (1) has a rectangular block structure, and a microcontroller (1019), a storage battery (1016) electrically connected thereto, and a 5G module (1017) are provided inside the isolation monitoring base (1). The storage battery (1016) is externally connected to a power supply, and the 5G module (1017) is wirelessly transmission-connected to a monitoring center (1018); a pressing groove (104) is formed on the top end surface of the isolation monitoring base (1), and a set of proximity sensing components (105) electrically connected to the microcontroller (1019) are fixedly installed at the center of the bottom end surface inside the pressing groove (104). The proximity sensing components (105) adopt tactile switches, and the key ends of the proximity sensing components (105) face upward; a pressing plate (2) is slidably inserted into the pressing groove (104), and a spring support member (201) is fixedly installed on each of the left and right sides of the bottom end surface of the pressing plate (2). The bottom ends of the two spring support members (201) are fixedly connected to the bottom end surface inside the pressing groove (104); in the natural state of the spring support member (201), the top end surface of the pressing plate (2) is on the same horizontal plane as the top end surface of the isolation monitoring base (1), and at this time, the bottom end surface of the pressing plate (2) does not contact the key end of the proximity sensing component (105).
2. The isolation device according to claim 1, characterized in that, A rubber support pad (4) is inserted into the pressing groove (104), and a mating opening (401) penetrating through its bottom end surface is formed on each of the left and right sides of the top end surface of the rubber support pad (4). The two mating openings (401) correspond to the positions of the two spring support members (201) respectively; a mating opening (402) penetrating through its bottom end surface is formed at the center of the top end surface of the rubber support pad (4), and the mating opening (402) corresponds to the position of the proximity sensing component (105).
3. The isolation device according to claim 2, characterized in that, In the natural state of the spring support member (201), the bottom end surface of the pressing plate (2) is higher than the top end surface of the rubber support pad (4); in the state where the proximity sensing component (105) is not pressed and activated, the top end surface of the key end of the proximity sensing component (105) is higher than the top end surface of the rubber support pad (4); when the bottom end surface of the pressing plate (2) is in contact with the top end surface of the rubber support pad (4), the proximity sensing component (105) is in the pressed and activated state at this time; when the proximity sensing component (105) is in the pressed and activated state, the proximity sensing component (105) feeds back a signal to the microcontroller (1019), and the microcontroller (1019) controls the 5G module (1017) to wirelessly transmit a message to the monitoring center (1018).
4. An isolation device according to claim 3, wherein, An installation notch (101) is formed at each of the left front corner and the right front corner of the top end surface of the isolation monitoring base (1), and an installation hole position (102) penetrating through the bottom end surface of the isolation monitoring base (1) is formed at the bottom end surface inside the two installation notches (101); a storage notch (103) having a rectangular notch structure is formed on the rear end surface of the isolation monitoring base (1), and the storage notch (103) penetrates through the top end surface and the bottom end surface of the isolation monitoring base (1).
5. An isolation device according to claim 4, characterized in that, A mating strip (3) in the shape of a rectangular bar is inserted into the storage notch (103), and a spring connector (301) is fixedly installed between the right end face of the mating strip (3) and the right inner side face of the storage notch (103); the left end face of the mating strip (3) has a semi-circular structure.
6. An isolation device according to claim 5, characterized in that, Inside the isolation monitoring base (1), a reciprocating movement cavity (1015) in the shape of a cylindrical cavity is provided at the position corresponding to the storage notch (103). An insertion opening (106) communicating with the storage notch (103) is provided at the center of the right inner side face of the reciprocating movement cavity (1015), and the insertion opening (106) is a circular hole; an insertion opening (1012) penetrating the left end face of the isolation monitoring base (1) is provided on the left inner side face of the reciprocating movement cavity (1015), and the insertion opening (1012) has a rectangular opening structure.
7. An isolation device according to claim 6, characterized in that, An induction groove (1013) is provided on the front side of the inner end of the insertion opening (1012), and a set of expansion induction components (1014) electrically connected to the microcontroller (1019) are fixedly installed on the front side of the inner end of the induction groove (1013). The expansion induction components (1014) adopt proximity switches, and the induction ends of the expansion induction components (1014) face the rear side.
8. An isolation device according to claim 7, wherein, A mating moving slider (107) with the same diameter as the reciprocating movement cavity (1015) is slidably installed inside the reciprocating movement cavity (1015). A spring return member (109) is fixedly connected between the right end face of the mating moving slider (107) and the right inner side face of the reciprocating movement cavity (1015); in the natural state of the spring return member (109), the left end face of the mating moving slider (107) does not contact the left inner side face of the reciprocating movement cavity (1015).
9. An isolation device according to claim 8, characterized in that, A plugging block (1010) is fixedly installed on the left end face of the mating moving slider (107). The plugging block (1010) is slidably inserted inside the insertion opening (1012). A metal mating induction block (1011) capable of inductively cooperating with the expansion induction components (1014) is installed inside the plugging block (1010) between the front end face and the rear end face; in the natural state of the spring return member (109), the metal mating induction block (1011) corresponds to the position of the induction groove (1013), and at this time, the metal mating induction block (1011) is within the induction range of the expansion induction components (1014); when the expansion induction components (1014) sense the metal mating induction block (1011), the expansion induction components (1014) feed back a signal to the microcontroller (1019), and the microcontroller (1019) controls the 5G module (1017) to wirelessly transmit a message to the monitoring center (1018).
10. An isolation device according to claim 9, characterized in that, A plug column (108) is fixedly installed at the axial center of the right end face of the matching moving slider (107), and the plug column (108) is slidably inserted and matched with the plugging opening (106); the right end of the plug column (108) adopts a semi-circular structure; in the natural state of the spring reset member (109), the arc surface part at the right end of the plug column (108) protrudes from the right opening end part of the plugging opening (106); when the arc surface at the left end of the matching strip block (3) contacts the left inner side surface of the receiving notch (103), the right end of the plug column (108) is pressed by the matching strip block (3) into the interior of the plugging opening (106), and at this time the spring reset member (109) is in a stretched state, and the metal matching induction block (1011) is displaced from the position of the induction groove (1013), and the metal matching induction block (1011) is no longer within the induction range of the unfolded induction assembly (1014).