Optical fiber sensor wireless hybrid networking sensing monitoring device
By setting a protective baffle on the top of the fiber sensor main body and using the rotating fan blade to dissipate heat, the problem of dust accumulation and poor heat dissipation effect after long-term use of the monitoring device is solved, and a better heat dissipation effect and user experience is achieved.
Patent Information
- Application Number
- CN202510189716.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-05-13
AI Technical Summary
When monitoring wireless hybrid networking for a long time, dust is easily accumulated on the monitoring device, and the prior art affects the heat dissipation effect and has poor use effect.
By providing two first baffles on the top of the optical fiber sensor body, dust is prevented from falling into place, and at the same time, the fan blade is driven to rotate by a rotating shaft, wind is generated to dissipate heat, and the first baffle is driven to move away from each other through the rotating shaft, to avoid dust accumulation.
It significantly improves the heat dissipation effect of the fiber sensor main body, avoids dust accumulation, has a good use effect, and does not require a fixed cover to install a protective cover.
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Figure CN119997406A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of optical fiber sensors, and in particular to an optical fiber sensor wireless hybrid networking sensing monitoring device. Background Art
[0002] Wireless hybrid networking is a network structure design that combines different types of wireless devices and technologies to achieve wider coverage and higher network efficiency. Monitoring wireless hybrid networking can help timely discover and solve network problems and ensure the continuity and stability of network services. Existing monitoring devices cannot ensure the connection and fixation between the optical fiber plug and the monitoring device. When the optical fiber plug is accidentally hit by the outside world or due to aging, the optical fiber plug is easy to fall off from the monitoring device, resulting in the inability to monitor its network.
[0003] The utility model with announcement number CN219678475U discloses a PON network real-time monitoring device, which fixes the optical fiber plug by a left clamping block and a right clamping block to prevent the optical fiber plug from falling off from the optical fiber socket due to accidental collision from the outside, resulting in the inability to monitor the optical fiber network. At the same time, it prevents the optical fiber plug from aging and falling off, ensures that the optical fiber is always connected to the network real-time monitoring device body, ensures that the network real-time monitoring device body can monitor the optical fiber network in real time, and ensures the network monitoring effect.
[0004] When the above-mentioned monitoring device is in use, a heat dissipation port is opened on the top surface of the network real-time monitoring device body to improve the heat dissipation effect inside the network real-time monitoring device body, and the heat dissipation effect inside the network real-time monitoring device body is further improved by a heat dissipation fan. When the wireless hybrid network is monitored for a long time, dust is easily accumulated on the monitoring device. Generally, a protective cover is set on the monitoring device, which affects the heat dissipation effect and the use effect is poor. Summary of the invention
[0005] In view of this, the present invention provides a fiber optic sensor wireless hybrid networking sensing monitoring device, which solves the technical problem that dust is easily accumulated on the monitoring device when the wireless hybrid network is monitored for a long time, while the existing technology affects the heat dissipation effect and has poor use effect.
[0006] The present invention provides a fiber optic sensor wireless hybrid networking sensing monitoring device, comprising a fiber optic sensor body 1, wherein the top plate of the fiber optic sensor body 1 is provided with two first baffles 7, and the plate surface formed by splicing the two first baffles 7 is adapted to the structure of the top plate of the fiber optic sensor body 1; the bottom edge positions of the two first baffles 7 are fixedly connected with a vertical plate 6, and the vertical plate 6 extends to the bottom end of the fiber optic sensor body 1;
[0007] The bottom end of the optical fiber sensor body 1 is fixedly connected to a base 4, and the base 4 is provided with a rotating assembly 11 and two slot plates 5, and the rotating assembly 11 includes a rotating shaft 1101, a gear 1102, two tooth plates 1103, two connecting plates 1104 and a fan blade 1106;
[0008] The bottom end of the rotating shaft 1101 is movably connected to the base 4 via a bearing, the top end of the rotating shaft 1101 is fixedly connected to the center of the fan blade 1106, the gear 1102 is fixedly sleeved on the rotating shaft 1101, the two tooth plates 1103 are arranged on opposite sides relative to the gear 1102, the two tooth plates 1103 are respectively slidably connected to the grooves in the two groove plates 5, and the two tooth plates 1103 are both meshed and connected to the gear 1102, one end of the two connecting plates 1104 is respectively fixedly connected to the two tooth plates 1103, and the other ends of the two connecting plates 1104 are respectively fixedly connected to the two vertical plates 6.
[0009] Optionally, the two opposite sides of the two tooth plates 1103 are fixedly connected to the limiting plate 1105.
[0010] The two limit plates 1105 are respectively slidably connected to the slots in the two slot plates 5 , and both ends of the two slot plates 5 are fixed with limit blocks.
[0011] Optionally, a handle 1107 is provided at the bottom end of the base 4 , and the handle 1107 is fixedly connected to the rotating shaft 1101 .
[0012] Optionally, support columns 10 are respectively provided at the four corners of the bottom end of the base 4 .
[0013] Optionally, a transparent plate 9 is provided at each of the adjacent ends of the two first baffles 7 , and the two transparent plates 9 are spliced together to form an integral body.
[0014] Optionally, a display screen 12 and a button 13 are fixedly installed on the top of the optical fiber sensor body 1, a signal transceiver 2 is fixedly installed on one side of the optical fiber sensor body 1, and three interfaces are opened on one side of the optical fiber sensor body 1, wherein an optical fiber 3 is plugged into at least one interface.
[0015] Optionally, two second baffles 8 are movably provided on the top of the optical fiber 3 , and one side of the two second baffles 8 is fixedly connected to the two first baffles 7 respectively.
[0016] Optionally, the optical fiber sensor body 1 includes a photodetector, a signal processor, a central processing unit, a pump light source, a wavelength division multiplexer, an optical fiber laser and an isolator;
[0017] The photodetector is connected to the signal processor, the signal processor is connected to the central processor, the central processor is connected to the pump light source, the pump light source is connected to the wavelength division multiplexer, and the wavelength division multiplexer is respectively connected to the fiber laser and the isolator.
[0018] Optionally, two heat dissipation tubes 1108 are further provided on the base 4, each of which is a cavity structure, wherein the cavity portion of the heat dissipation tube 1108 is divided into a plurality of sub-cavities by an isolation plate 1109, each of which is slidably connected with a piston 1110, and a plurality of pistons 1110 are all sleeved on the same piston rod 1111, one end of the piston rod 1111 passes through a plurality of the isolation plates 1109, and is fixedly connected to the limit plate 1105, a plurality of injection holes 1112 are provided on the side wall of the heat dissipation tube 1108, a rubber film 1113 is provided in the injection hole 1112, and the rubber film 1113 is provided with a penetrating injection seam 1114.
[0019] Optionally, a ventilation mesh plate 14 is provided at the bottom end of the optical fiber sensor body 1 .
[0020] It can be seen from the above technical scheme that the present invention protects the top of the optical fiber sensor body through two first baffles to prevent dust from falling on the top of the optical fiber sensor body. By rotating the rotating shaft, the fan blades are driven to rotate. The rotation of the fan blades generates wind, which can dissipate heat for the optical fiber sensor body. At the same time, the rotating shaft drives the two first baffles to move back to back, so that the two first baffles are away from the optical fiber sensor body, thereby facilitating subsequent operations on the optical fiber sensor. There is no need to fix a protective cover, which also avoids dust accumulation on the top of the optical fiber sensor body, and significantly improves the heat dissipation effect, with better use effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0022] Figure 1 A schematic diagram of the overall structure of a wireless hybrid networking sensing monitoring device for optical fiber sensors provided by an embodiment of the present invention;
[0023] Figure 2 A bottom view of the overall structure of a fiber optic sensor wireless hybrid networking sensing monitoring device provided by an embodiment of the present invention;
[0024] Figure 3A schematic diagram of the assembly structure of a base and a first baffle of a fiber optic sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0025] Figure 4 A schematic diagram of the structure of a rotating component of a fiber optic sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0026] Figure 5 A schematic diagram of the assembly structure of a tooth plate and a second baffle plate of a wireless hybrid networking sensing and monitoring device for an optical fiber sensor provided by an embodiment of the present invention;
[0027] Figure 6 A schematic diagram of the assembly structure of a fiber sensor body and a button of a fiber optic sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0028] Figure 7 A schematic diagram of the assembly structure of an optical fiber sensor body and a ventilation mesh plate of an optical fiber sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0029] Figure 8 A circuit block diagram of a fiber sensor body of a fiber optic sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0030] Fig. 9 A schematic diagram of the structure of a heat dissipation tube of a fiber optic sensor wireless hybrid networking sensing and monitoring device provided by an embodiment of the present invention;
[0031] Fig.10 for Fig. 9 Enlarged view of part A in the middle.
[0032] Description of reference numerals:
[0033] In the figure: 1. fiber optic sensor body; 2. signal transceiver; 3. optical fiber; 4. base; 5. slot plate; 6. vertical plate; 7. first baffle plate; 8. second baffle plate; 9. transparent plate; 10. support column; 11. rotating assembly; 12. display screen; 13. button; 14. ventilation mesh plate; 1101. rotating shaft; 1102. gear; 1103. tooth plate; 1104. connecting plate; 1105. limit plate; 1106. fan blade; 1107. handle; 1108. heat sink; 1109. isolation plate; 1110. piston; 1111. piston rod; 1112. injection hole; 1113. rubber film; 1114. injection seam. DETAILED DESCRIPTION
[0034] In order to enable those skilled in the art to better understand the scheme of the present invention, the technical scheme in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0035] like Figure 1~Figure 5 As shown, the embodiment of the present application provides a fiber optic sensor wireless hybrid networking sensing monitoring device, including a fiber optic sensor body 1, the top plate of the fiber optic sensor body 1 is provided with two first baffles 7, the plate surface formed by splicing the two first baffles 7 is adapted to the structure of the top plate of the fiber optic sensor body 1; the bottom edge positions of the two first baffles 7 are fixedly connected with a vertical plate 6, and the vertical plate 6 extends to the bottom end of the fiber optic sensor body 1;
[0036] The bottom end of the optical fiber sensor body 1 is fixedly connected to a base 4, and the base 4 is provided with a rotating assembly 11 and two slot plates 5, and the rotating assembly 11 includes a rotating shaft 1101, a gear 1102, two tooth plates 1103, two connecting plates 1104 and a fan blade 1106;
[0037] The bottom end of the rotating shaft 1101 is movably connected to the base 4 via a bearing, the top end of the rotating shaft 1101 is fixedly connected to the center of the fan blade 1106, the gear 1102 is fixedly sleeved on the rotating shaft 1101, the two tooth plates 1103 are arranged on opposite sides relative to the gear 1102, the two tooth plates 1103 are respectively slidably connected to the grooves in the two groove plates 5, and the two tooth plates 1103 are both meshed and connected to the gear 1102, one end of the two connecting plates 1104 is respectively fixedly connected to the two tooth plates 1103, and the other ends of the two connecting plates 1104 are respectively fixedly connected to the two vertical plates 6.
[0038] The method of using the embodiment of the present application is as follows:
[0039] When in use, the top of the optical fiber sensor body 1 is protected by the two first baffles 7 to prevent dust from falling on the top of the optical fiber sensor body 1. The rotating shaft 1101 is driven to rotate manually or electrically, thereby driving the fan blades 1106 to rotate. The rotation of the fan blades 1106 generates wind, which can dissipate heat for the optical fiber sensor body 1. At the same time, the rotating shaft 1101 drives the two gears 1102 to move in opposite directions, thereby driving the two connecting plates 1104 to move in opposite directions, and then driving the two vertical plates 6 to move in opposite directions. The two vertical plates 6 can drive the two first baffles 7 to move in opposite directions, so that the two first baffles 7 are away from the optical fiber sensor body 1. Similarly, the reverse rotation drives the rotating shaft 1101 to rotate, thereby driving the two first baffles 7 to move toward each other and spliced into one, thereby protecting the top of the optical fiber sensor body 1 from dust.
[0040] It should be noted that the embodiment of the present application protects the top of the optical fiber sensor body through two first baffles to prevent dust from falling on the top of the optical fiber sensor body. By rotating the rotating shaft, the fan blades are driven to rotate. The rotation of the fan blades generates wind, which can dissipate heat for the optical fiber sensor body. At the same time, the rotating shaft drives the two first baffles to move back to back, so that the two first baffles are away from the optical fiber sensor body, thereby facilitating subsequent operations on the optical fiber sensor. There is no need to fix a protective cover, dust accumulation on the top of the optical fiber sensor body is avoided, and the heat dissipation effect is significantly improved, with better use effect.
[0041] In some embodiments, Figure 3~Figure 5 As shown, the two tooth plates 1103 are fixedly connected to the limiting plate 1105 on the opposite sides thereof.
[0042] The two limit plates 1105 are respectively slidably connected to the slots in the two slot plates 5 , and both ends of the two slot plates 5 are fixed with limit blocks.
[0043] It is understandable that, in the present invention, the two tooth plates 1103 are fixedly connected to the limiting plates 1105 on the opposite sides, and the two limiting plates 1105 are respectively slidably connected to the slots in the two slot plates 5. This design allows the slot plate 5 to move within a certain range while ensuring the stability of its movement. In addition, in order to further enhance the stability and safety of the structure, both ends of the two slot plates 5 are fixedly provided with limiting blocks. These limiting blocks can effectively prevent the slot plate 5 from excessive movement during use, thereby avoiding possible mechanical failure or damage.
[0044] In some embodiments, Figure 4As shown, a handle 1107 is provided at the bottom end of the base 4, and the handle 1107 is fixedly connected to the shaft 1101, so that the user can rotate the handle to drive the shaft to rotate, thereby achieving heat dissipation of the optical fiber sensor body and movement control of the first baffle, and the operation is simple and quick.
[0045] In some embodiments, Figure 2 As shown, support columns 10 are respectively provided at the four corners of the bottom end of the base 4 to improve the stability of the entire device and prevent it from tipping over or shaking during use. These support columns 10 are preferably made of high-strength, corrosion-resistant materials to ensure that they have good load-bearing capacity and durability. In addition, anti-slip pads or suction cups can also be provided at the bottom of the support columns 10 to further enhance their stability.
[0046] In some embodiments, Figure 1 As shown, a transparent plate 9 is provided at one end of the two first baffles 7 that are close to each other, and the two transparent plates 9 are spliced together to form a whole. This design allows the user to monitor the working state of the optical fiber sensor body 1 by observing the transparent plate 9 without opening the first baffle 7, thereby improving the convenience and safety of use. The transparent plate 9 is preferably made of a highly light-transmitting and wear-resistant material to ensure that it has good transparency and service life. At the same time, the surface of the transparent plate 9 can also be treated with anti-scratch and anti-fingerprint treatments to improve its cleanliness and aesthetics.
[0047] In some embodiments, Figure 6~Figure 7 As shown, a display screen 12 and a button 13 are fixedly installed on the top of the optical fiber sensor body 1, a signal transceiver 2 is fixedly installed on one side of the optical fiber sensor body 1, and three interfaces are opened on one side of the optical fiber sensor body 1, wherein an optical fiber 3 is plugged into at least one interface.
[0048] Among them, in this fiber optic sensor system, the topmost position of the main body of the fiber optic sensor is designed to be fixedly installed with a display screen 12 and a group of buttons 13. This design allows the user to intuitively view the status information of the sensor and perform simple operations through buttons. In addition, one side of the fiber optic sensor body 1 is specially designed to be fixedly installed with a signal transceiver 2, which is a key component for exchanging data with external devices. In order to further enhance the function and compatibility of the sensor, three interfaces are also opened on one side of the fiber optic sensor body 1, which provide the sensor with the possibility of expansion. Among these interfaces, at least one interface is designed to be plugged into an optical fiber 3. The use of optical fiber enables the fiber optic sensor to transmit signals over long distances, thereby maintaining stable performance in various complex environments.
[0049] In some embodiments, Figure 7As shown, a ventilation mesh plate 14 is provided at the bottom end of the optical fiber sensor body 1.
[0050] Among them, the setting of the ventilation mesh plate 14 can further enhance the heat dissipation effect of the optical fiber sensor body 1. There are multiple ventilation holes evenly distributed on the ventilation mesh plate 14, which allow air to circulate, thereby helping to dissipate the heat generated by the optical fiber sensor body 1 during operation. At the same time, the design of the ventilation mesh plate 14 also takes into account the need for dust prevention, which can not only ensure good ventilation effect, but also effectively prevent larger dust particles from entering the optical fiber sensor body 1, further protecting the normal operation of the optical fiber sensor body 1. Such a design not only improves the heat dissipation performance of the optical fiber sensor body 1, but also takes into account the dust prevention function, making the entire device more practical and reliable.
[0051] In some embodiments, Figure 2 As shown, two second baffles 8 are movably provided on the top of the optical fiber 3, and one side of the two second baffles 8 is fixedly connected to the two first baffles 7 respectively.
[0052] In the embodiment of the present application, two second baffles 8 are cleverly arranged on both sides of the optical fiber, and one side of each of them is connected to the two first baffles 7 in a fixed manner, thereby ensuring the stability and functionality of the entire structure.
[0053] In some embodiments, Figure 8 As shown, the optical fiber sensor body 1 includes a photodetector, a signal processor, a central processing unit, a pump light source, a wavelength division multiplexer, an optical fiber laser and an isolator;
[0054] The photodetector is connected to the signal processor, the signal processor is connected to the central processor, the central processor is connected to the pump light source, the pump light source is connected to the wavelength division multiplexer, and the wavelength division multiplexer is respectively connected to the fiber laser and the isolator.
[0055] Among them, the pump light source is the core component that provides energy. It is cleverly coupled into the main optical fiber through the wavelength division multiplexer. This process not only reduces the loss of signal light and pump light during transmission, but also significantly improves the efficiency and capacity of data transmission. The role of the wavelength division multiplexer is that it can cleverly combine optical signals of different wavelengths so that they can be transmitted in parallel in the same optical fiber. The isolator ensures that the optical signal can only propagate in one direction, effectively preventing the influence of reflected light on the stability of the system. This unidirectional propagation mechanism helps to protect the laser and receiver from interference from reverse signals, thereby maintaining the efficient operation of the system. As a gain medium, the fiber laser plays a role in converting energy in the entire system. It converts the wavelength of the pump light source into light of a specific wavelength and outputs it in the form of laser. The photodetector receives the transmitted optical signal and converts it into an electrical signal. The signal processing unit receives the electrical signal from the photodetector and performs a series of complex processing tasks. These processing tasks include but are not limited to amplification, filtering, decoding, etc., with the purpose of extracting useful information from the electrical signal and converting it into a data format that the user can understand. .
[0056] In some embodiments, Figure 9~Figure 10 As shown, two heat dissipation tubes 1108 are also provided on the base 4, and each of the heat dissipation tubes 1108 is a cavity structure, wherein the cavity part of the heat dissipation tube 1108 is divided into multiple sub-cavities by an isolation plate 1109, and each of the sub-cavities is slidably connected with a piston 1110, and multiple pistons 1110 are all sleeved on the same piston rod 1111, and one end of the piston rod 1111 passes through multiple isolation plates 1109 and is fixedly connected to the limit plate 1105. The side wall of the heat dissipation tube 1108 is provided with a plurality of injection holes 1112, and a rubber film 1113 is provided in the injection hole 1112, and the rubber film 1113 is provided with a penetrating injection seam 1114.
[0057] It is understandable that when the user operates and turns the handle 1107, the first baffle 7 begins to slowly open along with this action. At the same time, the limit plate 1105 will synchronously pull the piston rod 1111 to cause it to move. The movement of the piston rod 1111 will further drive the piston 1110 inside the heat dissipation cylinder 1108, so that the piston 1110 reciprocates inside the heat dissipation cylinder 1108. This reciprocating motion exerts pressure on the air in the cylinder, thereby compressing the air. As the air is compressed to a certain extent, the injection slit 1114 on the rubber film 1113 inside the injection hole 1112 will be stretched open to form a strong airflow. This airflow directly acts on the surface of the base 4 to effectively dissipate heat. This innovative design not only solves the problem that the traditional fan blade 1106 can only dissipate heat by accelerating the air flow rate, and the heat dissipation effect is limited, but also utilizes the characteristic that the number of injection holes 1112 gradually decreases during the movement of the piston 1110, so that the amount of gas ejected gradually decreases. This gradual reduction in jet volume creates a buffering effect, effectively avoiding the problem of poor contact of internal electronic components due to excessive power during the opening of the first baffle 7. Therefore, the product not only performs well in heat dissipation, but also has very thoughtful protection, ensuring the stable operation of electronic components and the long-term reliability of the product.
[0058] It should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. in the specification and claims of the present invention and the above-mentioned drawings indicate positions or positional relationships based on the positions or positional relationships shown in the drawings, and are only for the convenience of describing the embodiments of the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limitations on the embodiments of the present application. In addition, the terms "first", "second", and "third" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance.
[0059] In the description of the embodiments of the present application, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a replaceable connection, or an integral connection, it can be a mechanical connection, it can be an electrical connection, it can be a direct connection, it can be indirectly connected through an intermediate medium, and it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the embodiments of the present application can be understood according to specific circumstances.
[0060] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features may be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A fiber optic sensor wireless hybrid networking sensing monitoring device, comprising a fiber optic sensor body (1), characterized in that: The top plate of the optical fiber sensor body (1) is provided with two first baffles (7), and the plate surface formed by splicing the two first baffles (7) is compatible with the structure of the top plate of the optical fiber sensor body (1); the bottom edge positions of the two first baffles (7) are fixedly connected with a vertical plate (6), and the vertical plate (6) extends to the bottom end of the optical fiber sensor body (1); The bottom end of the optical fiber sensor body (1) is fixedly connected to a base (4), and the base (4) is provided with a rotating assembly (11) and two slot plates (5), and the rotating assembly (11) comprises a rotating shaft (1101), a gear (1102), two tooth plates (1103), two connecting plates (1104) and a fan blade (1106); The bottom end of the rotating shaft (1101) is movably connected to the base (4) via a bearing, the top end of the rotating shaft (1101) is fixedly connected to the center of the fan blade (1106), the gear (1102) is fixedly sleeved on the rotating shaft (1101), the two tooth plates (1103) are arranged on opposite sides relative to the gear (1102), the two tooth plates (1103) are respectively slidably connected to the slots in the two slot plates (5), and the two tooth plates (1103) are meshedly connected to the gear (1102), one end of the two connecting plates (1104) is respectively fixedly connected to the two tooth plates (1103), and the other end of the two connecting plates (1104) is respectively fixedly connected to the two vertical plates (6).
2. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1 is characterized in that: The two tooth plates (1103) are fixedly connected to the limiting plate (1105) on opposite sides thereof. The two limit plates (1105) are respectively slidably connected to the slots in the two slot plates (5), and limit blocks are fixedly provided at both ends of the two slot plates (5).
3. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1 is characterized in that: A handle (1107) is provided at the bottom end of the base (4), and the handle (1107) is fixedly connected to the rotating shaft (1101).
4. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1, characterized in that: Support columns (10) are respectively provided at the four corners of the bottom end of the base (4).
5. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1, characterized in that: A transparent plate (9) is provided at the adjacent ends of the two first baffles (7), and the two transparent plates (9) are spliced together to form a whole.
6. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1, characterized in that: A display screen (12) and a button (13) are fixedly mounted on the top of the optical fiber sensor body (1), a signal transceiver (2) is fixedly mounted on one side of the optical fiber sensor body (1), and three interfaces are provided on one side of the optical fiber sensor body (1), at least one of the interfaces being plugged with an optical fiber (3).
7. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 6 is characterized in that: Two second baffles (8) are movably provided on the top of the optical fiber (3), and one side of the two second baffles (8) is fixedly connected to the two first baffles (7) respectively.
8. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1, characterized in that: The optical fiber sensor body (1) comprises a photodetector, a signal processor, a central processing unit, a pump light source, a wavelength division multiplexer, an optical fiber laser and an isolator; The photodetector is connected to the signal processor, the signal processor is connected to the central processor, the central processor is connected to the pump light source, the pump light source is connected to the wavelength division multiplexer, and the wavelength division multiplexer is respectively connected to the fiber laser and the isolator.
9. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 2, characterized in that: Two heat dissipation tubes (1108) are also arranged on the base (4), each of the heat dissipation tubes (1108) being a cavity structure, wherein the cavity portion of the heat dissipation tube (1108) is divided into a plurality of sub-cavities by an isolation plate (1109), each of the sub-cavities is slidably connected with a piston (1110), the plurality of pistons (1110) are sleeved on the same piston rod (1111), one end of the piston rod (1111) passes through the plurality of isolation plates (1109) and is fixedly connected to the limit plate (1105), a plurality of injection holes (1112) are provided on the side wall of the heat dissipation tube (1108), a rubber film (1113) is provided in the injection hole (1112), and the rubber film (1113) is provided with an injection slit (1114) extending therethrough.
10. The optical fiber sensor wireless hybrid networking sensing monitoring device according to claim 1, characterized in that: A ventilation mesh plate (14) is provided at the bottom end of the optical fiber sensor body (1).
Citation Information
Patent Citations
PON network real-time monitoring device
CN219678475U