Earthquake monitoring satellite data real-time analyzer

By designing a sliding connection between the sleeve and the connecting ring, the problems of terminal shaking, water seepage, and dust accumulation in the earthquake monitoring satellite data analyzer when used outdoors were solved, thus achieving stability in signal transmission and reliability of the equipment.

CN223711841UActive Publication Date: 2025-12-23SHANGHAI BOYON NEW ENERGY TECH
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Patent Information

Application Number
CN202423042795.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2025-12-23
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

When existing earthquake monitoring satellite data analyzers are used outdoors, they are easily exposed to wind and rain, which can cause the wiring terminals to shake, leak water, and accumulate dust, affecting the stability of signal transmission and the lifespan of the equipment.

Method used

A real-time data analyzer for earthquake monitoring satellites was designed. By using a sliding connection of a sleeve and a connecting ring, the terminal is protected and clamped to prevent water seepage and dust accumulation, thus ensuring stable signal transmission.

Benefits of technology

It effectively prevents water seepage and dust accumulation at the terminals, reduces terminal shaking and cable detachment, and ensures the stability of signal transmission and the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of remote sensing monitoring, and particularly relates to an earthquake monitoring satellite data real-time analyzer which comprises a wiring end fixedly assembled on one side of a frequency demultiplier, a sleeve shell is fixedly connected to one end of the frequency demultiplier and located on the outer side of the wiring end, a first sleeve is sleeved on the outer side of the wiring end in a sliding mode, and a second sleeve is sleeved on the other end of the frequency demultiplier. The diameter of one end of the first sleeve is larger than that of the other end of the first sleeve, the first sleeve is arranged to be in a column shape with the middle penetrating through, one end of the first sleeve is fixedly connected with a second sleeve, the outer wall of the second sleeve is fixedly connected with a check ring, and the check ring is in sliding connection with the sleeve shell through a sliding rod. According to the utility model, through the movement of the first sleeve, the cable can be connected with the wiring terminal, the first sleeve can surround and protect the wiring terminal, the cable is clamped and fixed, water seepage or dust accumulation at the wiring terminal is prevented, short circuit of a water seepage circuit board is avoided, stable signal transmission is ensured, and shaking of the wiring terminal is reduced; and the risks of cable falling and excessive wear are reduced.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the remote sensing monitoring technical field, concretely relates to a real -time analyzer of earthquake monitoring satellite data. BACKGROUND

[0002] In earthquake monitoring, satellite remote sensing technology is widely used to obtain key information such as deformation and displacement of the ground. As a key component of the satellite receiving system, the LNB frequency reducer in the remote sensing ground receiving system can receive high-frequency signals from the satellite and convert them into lower-frequency signals for subsequent demodulation, decoding and processing. This is crucial for real-time acquisition of remote sensing data in earthquake areas, providing timely and accurate information sources for earthquake monitoring.

[0003] The analyzer for receiving satellite data in the prior art is usually installed outdoors, and in daily use, the interface end is easily shaken or infiltrated with water, causing the cable to fall off and wear out, and water can also cause changes in circuit impedance or short circuits on the circuit board, affecting signal transmission. Moreover, the exposed wiring end is also prone to dust accumulation, which may affect the contact performance between the wiring end and the cable. UTILITY MODEL CONTENT

[0004] The utility model aims at providing a real-time analyzer of earthquake monitoring satellite data, which can connect the cable with the wiring end by moving the sleeve one, and also surround and protect the wiring end with the sleeve one to clamp and fix the cable, prevent water infiltration or dust accumulation at the wiring end, avoid short circuits on the circuit board caused by water infiltration, ensure stable signal transmission, reduce the shaking of the wiring end, and reduce the risk of cable falling off and excessive wear.

[0005] The technical scheme adopted by the utility model is as follows:

[0006] A real-time analyzer of earthquake monitoring satellite data, comprising a wiring end fixedly assembled on one side of a frequency reducer, wherein one end of the frequency reducer is fixedly connected with a sleeve on the outside of the wiring end, a sleeve one is slidably sleeved on the outside of the wiring end, the diameter of one end of the sleeve one is larger than that of the other end, the sleeve one is a cylindrical shape with a through hole in the middle, one end of the sleeve one is fixedly connected with a sleeve two, the outer wall of the sleeve two is fixedly connected with a retaining ring, the retaining ring is slidably connected with the sleeve through a sliding rod, one end of the sleeve is provided with a through slot two for the sleeve one to slide through, and the inner wall of one end of the sleeve one, away from the sleeve two, is fixedly connected with a clamping block.

[0007] The inner wall of one end of the sleeve one, on one side of the clamping block, is fixedly connected with a thin clamping layer, and the outer wall of one end of the sleeve one, away from the sleeve two, is rotatably connected with a connecting ring.

[0008] The connecting plate is fixedly connected with the adapter ring on both sides.

[0009] The connecting plate is fixedly connected with the adapter ring on both sides.

[0010] One end of the sleeve is fixedly connected with the side plate on one side of the first slot.

[0011] The middle part of the side plate is slidably provided with a fastener for being screwed with the first panel or the second panel.

[0012] The technical effects achieved by the utility model are as follows: through the movement of the sleeve, the cable can be connected with the wiring end, the sleeve can also surround and protect the wiring end, the cable can be clamped and fixed, water seepage or dust accumulation at the wiring end can be prevented, water seepage circuit board short circuit can be avoided, signal transmission stability can be ensured, the shaking of the wiring end can be reduced, and the risk of cable falling off and excessive wear can be reduced. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 is the overall appearance view of the data real-time analyzer provided by the embodiment of the utility model;

[0014] Figure 2 is the structure exploded view of the data real-time analyzer provided by the embodiment of the utility model;

[0015] Figure 3 is Figure 2 the local enlarged view of A in the middle;

[0016] Figure 4 is Figure 2 the local enlarged view of B in the middle.

[0017] In the drawings, the component list represented by each sign is as follows:

[0018] 1, frequency reducer; 101, wiring end; 102, sleeve; 103, first slot; 104, side plate; 105, fastener; 106, sleeve; 107, sliding rod; 108, stop ring; 109, first panel; 110, adapter ring; 111, sleeve; 112, second panel; 113, thin interlayer; 114, clamping block; 115, connecting plate; 116, second slot. DETAILED DESCRIPTION

[0019] In order to make the purpose and advantages of the utility model more clear and obvious, the utility model is specifically described below in combination with embodiments. It should be understood that the following text is only used to describe one or several specific embodiments of the utility model, and does not strictly limit the protection scope of the utility model.

[0020] As Figures 1-4 The utility model provides a kind of real-time analyzer of satellite data of earthquake monitoring, including fixedly assembled to the one side of frequency reducer 1 terminal 101, the one end of frequency reducer 1 and located the outside of terminal 101 is fixedly connected with sleeve 102, the outside of terminal 101 is slidably sleeved with sleeve one 106, the diameter of one end of sleeve one 106 is greater than the other end, sleeve one 106 is set as the cylindrical of through middle part, one end of sleeve one 106 is fixedly connected with sleeve two 111, the outer wall of sleeve two 111 is fixedly connected with stop ring 108, stop ring 108 is slidably connected with sleeve 102 by sliding rod 107, one end of sleeve 102 is through slot two 116 for sleeve one 106 sliding through and is set, the inner wall of one end of sleeve one 106 and located the one side of clamping block 114 is fixedly connected with thin interlayer 113, the outer wall of one end of sleeve one 106 and located the one side of clamping block 114 is rotatably connected with link ring 110, the two sides of link ring 110 are symmetrically fixedly connected with connecting plate 115, one end of connecting plate 115 is fixedly connected with panel two 112, the two sides of stop ring 108 are fixedly connected with panel one 109, one end of sleeve 102 is symmetrically through slot one 103 and is set, for panel one 109 is movably embedded, one end of sleeve 102 and located the one side of slot one 103 is fixedly connected with side plate 104, the middle part of side plate 104 is slidably arranged with fastener 105 for being threadedly connected with panel one 109 or panel two 112.

[0021] According to the above structure, the sleeve one 106 is moved by the sliding adapter ring 110, the sleeve one 106 and the stop ring 108 slide in the inside of the sleeve shell 102 through the sliding rod 107, after the sleeve one 106 slides through the outside of the terminal 101, the sleeve two 111 is connected with one side of the frequency reducer 1, at this time, the thin interlayer 113 is close to one end of the terminal 101, the panel two 112 is located at one side of the side plate 104, the side plate 104 and the panel two 112 can be fixed through the fastener 105, so that the position of the sleeve one 106 is fixed, the thin interlayer 113 can protect the terminal 101 from dust when it is not damaged, and the terminal 101 is prevented from accumulating dust when it is stored, when the cable needs to be connected with the terminal 101, the fastener 105 can be removed, the adapter ring 110 is rotated, the connecting plate 115 is dislocated with the side plate 104, the sleeve one 106 is continuously pushed to the frequency reducer 1, the terminal 101 pierces the thin interlayer 113 and passes through the clamping block 114, the clamping block 114 is slightly offset in position under extrusion, then the cable is connected and fixed with the terminal 101, the sleeve one 106 is slid outward through the adapter ring 110, the sleeve one 106 passes through the through slot two 116, the stop ring 108 is close to the inner wall of one end of the sleeve shell 102, the panel one 109 is embedded in the through slot one 103, the panel one 109 and the side plate 104 are fixed through the fastener 105, so that the position of the sleeve one 106 is fixed, at this time, the sleeve one 106 protrudes outside the sleeve shell 102, the clamping block 114 is separated from the terminal 101 to clamp the cable after the sleeve one 106 slides, the sleeve one 106 guides rainwater through the difference formed by the two ends of different sizes, and the stop ring 108 blocks the through slot two 116 and can prevent rainwater from penetrating into the sleeve shell 102; the cable can be connected with the terminal 101 through the movement of the sleeve one 106, the sleeve one 106 can also surround and protect the terminal 101, clamp and fix the cable, prevent water from penetrating or dust from accumulating at the terminal 101, avoid the short circuit of the water-penetrated circuit board, ensure the stability of signal transmission, reduce the shaking of the terminal 101, and reduce the risk of cable falling off and excessive wear.

[0022] The working principle of the utility model is: through the sliding joint ring 110 drive sleeve one 106 movement, sleeve one 106, stop ring 108 through the sliding rod 107 in the inside of sleeve shell 102 sliding, sleeve one 106 slide over the outside of terminal 101, sleeve two 111 and the one side of frequency reducer 1 meet, at this time thin interlayer 113 close to the one end of terminal 101, panel two 112 are located in the one side of side plate 104, through fastener 105 can fix side plate 104 and panel two 112, so that the position of sleeve one 106 is fixed, thin interlayer 113 can carry out dustproof protection to terminal 101 when not broken, avoid when depositing, terminal 101 accumulates dust, when needing cable and terminal 101 meet, can remove fastener 105 after rotating joint ring 110, make connecting plate 115 and side plate 104 dislocation, continue to push sleeve one 106 to frequency reducer 1, terminal 101 will thin interlayer 113 puncture after passing through clamping block 114, clamping block 114 is extruded and slightly deviates position, then cable and terminal 101 are connected and fixed, through joint ring 110 to the outside sliding sleeve one 106, sleeve one 106 passes through slot two 116, stop ring 108 close to the one end inner wall of sleeve shell 102, panel one 109 is embedded in slot one 103, through fastener 105 fix panel one 109 and side plate 104, so that the position of sleeve one 106 is fixed, at this time sleeve one 106 protrude in the outside of sleeve shell 102, clamping block 114 also after the sliding of sleeve one 106 is separated from terminal 101 and carries out the clamping of cable, sleeve one 106 guides rainwater through the difference formed by different sizes two ends, stop ring 108 also can prevent rainwater from infiltrating sleeve shell 102.

[0023] The above only is the preferred implementation of the utility model, should point out, for the ordinary skill in the art, on the premise of not departing from the principle of the utility model, can also make several improvements and refinements, these improvements and refinements also should be regarded as the protection scope of the utility model. The structure, device and operation method not specifically described and explained in the utility model, if no special description and limitation, all carry out implementation according to conventional means in the field.

Claims

1. A real-time analyzer for earthquake monitoring satellite data, comprising a terminal block (101) fixedly mounted on one side of a frequency downconverter (1), characterized in that: One end of the frequency reducer (1) and outside the terminal (101) is fixedly connected to a housing (102). A first sleeve (106) is slidably sleeved on the outside of the terminal (101). The diameter of one end of the first sleeve (106) is larger than that of the other end. The first sleeve (106) is configured as a cylindrical shape with a through-center. One end of the first sleeve (106) is fixedly connected to a second sleeve (111). A retaining ring (108) is fixedly connected to the outer wall of the second sleeve (111). The retaining ring (108) is slidably connected to the housing (102) through a sliding rod (107). One end of the housing (102) is provided with a through-groove (116) for the first sleeve (106) to slide through. A clamping block (114) is fixedly connected to the inner wall of the end of the first sleeve (106) opposite to the second sleeve (111).

2. The real-time analyzer for earthquake monitoring satellite data according to claim 1, characterized in that: A thin interlayer (113) is fixedly connected to the inner wall of one end of the sleeve (106) and to one side of the clamp (114). A connecting ring (110) is rotatably connected to the outer wall of the end of the sleeve (106) opposite to the sleeve (111).

3. A real-time analyzer for earthquake monitoring satellite data according to claim 2, characterized in that: The connecting ring (110) is symmetrically fixedly connected to the two sides of the connecting plate (115), and the connecting plate (115) is fixedly connected to the second insert plate (112) at one end.

4. A real-time analyzer for earthquake monitoring satellite data according to claim 3, characterized in that: The retaining ring (108) is fixedly connected to two sides of the insert plate (109), and the sleeve (102) is symmetrically provided with a through groove (103) for the insert plate (109) to be movably inserted.

5. A real-time analyzer for earthquake monitoring satellite data according to claim 4, characterized in that: A side plate (104) is fixedly connected to one end of the casing (102) and to one side of the through groove (103).

6. A real-time analyzer for earthquake monitoring satellite data according to claim 5, characterized in that: The middle part of the side plate (104) is slidably provided with a fastener (105) for threaded connection with the first panel (109) or the second panel (112).