A fiber optic transceiver for computer network equipment that facilitates fiber optic plugging and unplugging.

CN224709657UActive Publication Date: 2026-09-01FUJIAN WANJIABAO CABLE CO LTD
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Patent Information

Application Number
CN202521780332.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-21
Publication Date
2026-09-01
Estimated Expiration
2035-08-21

AI Technical Summary

Technical Problem

[0002]光纤收发装置是一种用于实现光电信号转换的关键网络设备,广泛应用于数据中心、通信基站和工业控制等领域,提升了设备部署效率和可靠性,特别适合需要频繁维护的高密度网络环境;现有的光纤收发装置在与光纤连接器一般为通过将连接头直接插入数据传输口内进行连接,但这种结构由于缺乏自锁结构导致在长时间使用后连接头容易与光纤收发装置断连导致影响网络,因此,需对上述提出的问题加以改进处理

Benefits of technology

[0010] Compared with the prior art, the beneficial effects of this utility model are as follows: In this utility model, the cooperation between the first control ring and the second control ring facilitates the sliding of the limiting block, making it easier for the connector to connect smoothly to the data transmission port; the cooperation between the connecting rod and the spring facilitates the automatic reset of the limiting block to lock the connector, preventing the connector from loosening after insertion; the cooperation between the sealing groove and the sealing ring prevents dust from entering the connection point, protecting the device. The above structure solves the problem that existing computer network equipment fiber optic transceivers are prone to loosening after connecting the optical fiber.

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Abstract

This utility model discloses a fiber optic transceiver for computer network equipment, relating to the technical field of easily pluggable computer network equipment. It includes a transceiver with data transmission ports installed on both sides of its front end. Multiple fiber optic pins are equidistantly installed inside each data transmission port. Multiple indicator lights are equidistantly arranged in the center of the front end of the transceiver, and a wiring hole is installed on one side of the rear end. A limit structure and a connection structure are installed inside the data transmission ports. This utility model, through the cooperation of a first control ring and a second control ring, facilitates the sliding of the limit block, allowing the connector to smoothly connect to the data transmission port. The cooperation of the connecting rod and the spring allows the limit block to automatically reset and lock the connector, preventing it from loosening after insertion. This structure solves the problem of easy loosening of existing fiber optic transceivers for computer network equipment after fiber optic connection.
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Description

Technical Field

[0001] This utility model relates to the field of computer network equipment technology, and in particular to a fiber optic transceiver device for computer network equipment that facilitates fiber optic cable insertion and removal. Background Technology

[0002] Fiber optic transceivers are key network devices used to convert photoelectric signals. They are widely used in data centers, communication base stations, and industrial control, improving equipment deployment efficiency and reliability. They are particularly suitable for high-density network environments that require frequent maintenance. Existing fiber optic transceivers typically connect to fiber optic connectors by directly inserting the connector into the data transmission port. However, this structure lacks a self-locking mechanism, which can lead to the connector easily disconnecting from the transceiver after prolonged use, affecting the network. Therefore, the aforementioned problems need to be addressed and improved. Utility Model Content

[0003] The purpose of this invention is to address the shortcomings of existing technologies by proposing a fiber optic transceiver device for computer network equipment that facilitates fiber optic cable insertion and removal.

[0004] To achieve the above objectives, the present invention adopts the following technical solution: a computer network equipment fiber optic transceiver device that facilitates fiber optic plugging and unplugging, comprising a transceiver, data transmission ports installed on both sides of the front end of the transceiver, multiple fiber optic pins equally spaced inside the data transmission ports, multiple indicator lights equally spaced in the middle of the front end of the transceiver, and a wiring hole installed on one side of the rear end of the transceiver, a limit structure installed inside the data transmission ports, and a connection structure provided inside the data transmission ports.

[0005] Preferably, the connection structure includes a connector installed in the data transmission port, the connector being connected to an optical fiber, and the rear end of the connector having a positioning hole in conjunction with the optical fiber ferrule.

[0006] Preferably, two limiting grooves are offset on the outside of the data transmission port, and a first control ring and a second control ring are respectively installed in the limiting grooves. The front and rear ends of the first control ring and the second control ring are fixedly connected to sliders, and the limiting grooves are provided with sliding grooves on both sides to cooperate with the sliders.

[0007] Preferably, one end of the first control ring abuts against one end of the second control ring, and the other ends of the first control ring and the second control ring are installed in a staggered manner.

[0008] Preferably, the limiting structure includes limiting blocks installed at both ends of the inner wall of the data transmission port. The inner wall of the data transmission port is provided with a movable groove for horizontal sliding of the limiting blocks. The movable groove is T-shaped, and a guide rod is fixedly connected to the rear end of the inner wall of the movable groove. A connecting rod is provided at the front end of the inner wall of the movable groove. The connecting rod is fixedly connected to the limiting block. Springs are sleeved on both the guide rod and the connecting rod. Guide grooves are provided on both sides of the rear end of the limiting block to cooperate with the guide rod.

[0009] Preferably, the connector has slots at both ends that cooperate with the limiting blocks, and an annular sealing groove is formed around the front end of the data transmission port. A sealing ring is installed in each sealing groove, and the front end of the sealing ring is in contact with the connector.

[0010] Compared with the prior art, the beneficial effects of this utility model are as follows: In this utility model, the cooperation between the first control ring and the second control ring facilitates the sliding of the limiting block, making it easier for the connector to connect smoothly to the data transmission port; the cooperation between the connecting rod and the spring facilitates the automatic reset of the limiting block to lock the connector, preventing the connector from loosening after insertion; the cooperation between the sealing groove and the sealing ring prevents dust from entering the connection point, protecting the device. The above structure solves the problem that existing computer network equipment fiber optic transceivers are prone to loosening after connecting the optical fiber. Attached Figure Description

[0011] The accompanying drawings, which are included to provide a further understanding of the present invention and form part of this application, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings:

[0012] Figure 1 This is a three-dimensional schematic diagram of the overall structure proposed in this utility model;

[0013] Figure 2 This is a schematic diagram of the overall structure proposed in this utility model from another perspective;

[0014] Figure 3 This is a three-dimensional schematic diagram of the limiting structure proposed in this utility model;

[0015] Figure 4 This is a cross-sectional view of the overall structure proposed in this utility model;

[0016] Figure 5 This is a three-dimensional schematic diagram of the connection structure proposed in this utility model;

[0017] Figure 6 The present utility model proposes Figure 4 An enlarged schematic diagram of the structure of part A in the middle.

[0018] The numbers in the diagram are: 1. Transceiver; 2. Data transmission port; 3. Connector; 4. First control ring; 5. Sealing ring; 6. Limit block; 7. Second control ring; 8. Spring; 9. Wiring hole. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0020] Example: See Figure 1-6 This utility model discloses a fiber optic transceiver for computer network equipment that facilitates fiber optic insertion and removal. It includes a transceiver 1, with data transmission ports 2 installed on both sides of the front end of the transceiver 1. Multiple fiber optic pins are equidistantly installed inside the data transmission ports 2. Multiple indicator lights are equidistantly arranged in the middle of the front end of the transceiver 1, and a wiring hole 9 is installed on one side of the rear end of the transceiver 1. A limiting structure and a connecting structure are installed inside the data transmission ports 2. The limiting structure and the connecting structure facilitate the fixing of a connector 3. The connecting structure includes a connector 3 installed inside the data transmission ports 2, with an optical fiber connected to it. A positioning hole is provided at the rear end of the connector 3 to cooperate with the fiber optic pins, facilitating data transmission through the fiber optic pins and the positioning hole. Two limiting grooves are offset on the outer side of the data transmission ports 2. A first control ring 4 and a second control ring 7 are respectively installed in the limiting grooves. Slider blocks are fixed to the front and rear ends of both sides of the first control ring 4 and the second control ring 7. Sliding grooves are provided on both sides of the limiting grooves to cooperate with the sliders, facilitating the control of the sliding direction of the first control ring 4 and the second control ring 7.

[0021] In this invention, one end of the first control ring 4 and the second control ring 7 abut against each other, and the other ends of the first control ring 4 and the second control ring 7 are installed at different positions. The first control ring 4 and the second control ring 7 facilitate the control of the movement of the limiting block 6. The limiting structure includes limiting blocks 6 installed at both ends of the inner wall of the data transmission port 2. The inner wall of the data transmission port 2 is provided with a movable groove for the limiting block 6 to slide horizontally. The movable groove is T-shaped, and a guide rod is fixedly connected to the rear end of the inner wall of the movable groove. The movable groove facilitates the sliding of the limiting block 6. A connecting rod is provided at the front end of the inner wall of the movable groove. The connecting rod is fixedly connected to the limiting block 6. A spring 8 is sleeved on both the guide rod and the connecting rod. Guide grooves are provided on both sides of the rear end of the limiting block 6 in conjunction with the guide rod. The two ends of the connector 3 are provided with slots in conjunction with the limiting block 6. An annular sealing groove is provided around the front end of the data transmission port 2. A sealing ring 5 is installed in the sealing groove. The front end of the sealing ring 5 is attached to the connector 3. The sealing ring 5 facilitates the maintenance of the stability of the connection.

[0022] Working Principle: When using this utility model, the basic connection preparation of the equipment is required first. Connect the power cord to the transceiver 1 through the wiring hole 9 on the rear side of the transceiver 1 to provide power support for the entire device and ensure that the transceiver 1 can start and run normally. Next, perform the connection operation of the optical fiber and data cable. Connect the two ends of the optical fiber to one of the data transmission ports 2 of the two transceivers 1 respectively. At the same time, connect the other data transmission port 2 of the transceiver 1 to the corresponding transceiver end through the data cable. In the specific process of connecting the optical fiber and data cable, the connection structure and the limiting structure must be operated first. This involves the first control ring 4, the second control ring 7, the limiting block 6, the movable groove and other structures. Press the side of the first control ring 4 and the second control ring 7 that is far away from each other. Since the front and rear ends of both sides of the first control ring 4 and the second control ring 7 are fixed with sliders, and the limiting groove is provided with sliding grooves on both sides to cooperate with the sliders, the first control ring 4 and the second control ring 7 will slide along the limiting groove and move away from each other under the guidance of the sliding groove.

[0023] As the first control ring 4 and the second control ring 7 move, they drive the limit blocks 6 installed at both ends of the inner wall of the data transmission port 2 to move. The limit blocks 6 are located in the T-shaped movable grooves that are fitted into the inner wall of the data transmission port 2, and the movable grooves provide space for the limit blocks 6 to slide horizontally. During the movement of the limit blocks 6, the guide rods in the movable grooves guide them, and the rear sides of the limit blocks 6 are provided with guide grooves to cooperate with the guide rods, ensuring the stability of the sliding of the limit blocks 6. At the same time, the connecting rods fixed to the limit blocks 6 at the front end of the inner wall of the movable grooves, as well as the movable grooves... Springs 8 are fitted onto the guide rods fixed to the rear end of the wall. At this time, the springs 8 will be compressed. Finally, the limit block 6 moves horizontally into the movable groove under the drive of the first control ring 4 and the second control ring 7. At this time, the connector 3 can be inserted into the data transmission port 2 for connection. The connector 3 is connected to an optical fiber. Its front end is attached to the sealing ring 5 installed in the sealing groove opened around the front end of the data transmission port 2. The rear end is equipped with a positioning hole to cooperate with the optical fiber ferrule in the data transmission port 2. During the insertion process, the optical fiber ferrule is precisely aligned with the positioning hole to prepare for subsequent data transmission.

[0024] After connector 3 is fully inserted into data transmission port 2, release the previously pressed first control ring 4 and second control ring 7. At this time, the compressed spring 8 will generate a rebound force, pushing the limit block 6 to reset in the movable slot. Since the two ends of connector 3 are equipped with slots for the limit block 6, the reset limit block 6 will be locked into the slots, thereby limiting the displacement of connector 3 and achieving a stable connection between connector 3 and data transmission port 2. At the same time, the sealing ring 5 is tightly attached between connector 3 and data transmission port 2, which can effectively prevent external impurities from entering data transmission port 2 from the connection point, maintaining the stability and cleanliness of the connection point and ensuring normal data transmission. During the entire operation of the device, multiple indicator lights equidistantly arranged in the middle of the front end of transceiver 1 will display the working status of the device in real time. The operator can understand whether the device is operating normally through the indicator lights. When it is necessary to disconnect, simply press one side of the first control ring 4 and second control ring 7 again to make the limit block 6 retract into the movable slot, and connector 3 can be pulled out of data transmission port 2. The operation is convenient and realizes quick insertion and removal of optical fiber.

[0025] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A fiber optic transceiver for computer network equipment that facilitates fiber optic plugging and unplugging, comprising a transceiver (1), characterized in that: The transceiver (1) has data transmission ports (2) installed on both sides of its front end. Multiple fiber optic pins are installed equidistantly inside the data transmission ports (2). Multiple indicator lights are arranged equidistantly in the middle of the front end of the transceiver (1). A wiring hole (9) is installed on one side of the rear end of the transceiver (1). A limit structure is installed inside the data transmission ports (2). A connection structure is provided inside the data transmission ports (2).

2. The fiber optic transceiver for computer network equipment with easy fiber optic insertion and removal according to claim 1, characterized in that: The connection structure includes a connector (3) installed in the data transmission port (2), an optical fiber is connected to the connector (3), and a positioning hole is opened at the rear end of the connector (3) in conjunction with the optical fiber ferrule.

3. The fiber optic transceiver for computer network equipment with easy fiber optic insertion and removal according to claim 1, characterized in that: Two limiting grooves are offset on the outside of the data transmission port (2). A first control ring (4) and a second control ring (7) are respectively installed in the limiting grooves. Slider blocks are fixed to the front and rear ends of both sides of the first control ring (4) and the second control ring (7). Sliding grooves are opened on both sides of the limiting grooves to cooperate with the sliders.

4. The fiber optic transceiver for computer network equipment with easy fiber optic insertion and removal according to claim 3, characterized in that: The first control ring (4) abuts against one end of the second control ring (7), and the other ends of the first control ring (4) and the second control ring (7) are installed in a misaligned manner.

5. A fiber optic transceiver for computer network equipment that facilitates fiber optic insertion and removal, as described in claim 1, characterized in that: The limiting structure includes limiting blocks (6) installed at both ends of the inner wall of the data transmission port (2). The inner wall of the data transmission port (2) is provided with a movable groove for horizontal sliding in conjunction with the limiting blocks (6). The movable groove is T-shaped, and a guide rod is fixedly connected to the rear end of the inner wall of the movable groove. A connecting rod is provided at the front end of the inner wall of the movable groove. The connecting rod is fixedly connected to the limiting block (6). Springs (8) are sleeved on both the guide rod and the connecting rod. Guide grooves are provided on both sides of the rear end of the limiting block (6) in conjunction with the guide rod.

6. A fiber optic transceiver for computer network equipment that facilitates fiber optic insertion and removal, as described in claim 2, characterized in that: The connector (3) has slots at both ends that cooperate with the limiting blocks (6). The front end of the data transmission port (2) has an annular sealing groove around the port. Each sealing groove is equipped with a sealing ring (5). The front end of the sealing ring (5) is in contact with the connector (3).