Mining data collector and angle detection system

By designing a wirelessly connected mining data collector to communicate with the wireless angle detector, the problem of mining data collectors in the prior art needs to be connected through wires is solved, wireless transmission and signal stability is achieved, and work efficiency and equipment reliability are improved.

CN223207367UActive Publication Date: 2025-08-08UROICA (SHANDONG) MINING TECH CO LTD
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Patent Information

Application Number
CN202422476633.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-08-08
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

Existing mining data collectors need to be connected to the angle detection device through wires to collect data, resulting in complex wiring, increased labor costs and maintenance costs, and unstable signal transmission, especially in deep hole environments, which are difficult to recover.

Method used

A mining data collector is designed, which communicates with the wireless angle detector through wireless connection mode, and realizes wireless transmission of data through the transceiver components, including a housing, display component, control component and transceiver components. The transceiver components are protrudingly arranged to enhance signal reception and transmission capabilities, and are equipped with a protective cover to protect the internal components.

Benefits of technology

It realizes wireless data transmission, reduces wiring complexity, improves work efficiency, enhances signal quality, reduces the risk of equipment damage, and simplifies the on-site deployment process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a mining data collector and an angle detection system, the mining data collector is used for collecting installation angle data of a borehole stress meter detected by a wireless angle detector, and the mining data collector comprises a housing, a display part, a control part and a transmit-receive part, the shell is provided with an observation opening and a first containing cavity communicating with the observation opening. The display part and the control part are both installed in the first containing cavity, and a display part of the display part corresponds to the observation opening. The display part is connected with the control part, and the control part is used for receiving installation angle data, detected by the wireless angle detector, of the borehole stressmeter and transmitting the installation angle data to the display part; the transmit-receive component is arranged on the outer wall of the shell and protrudes out of the shell. The mining data collector can effectively solve the technical problem that in the prior art, a mining data collector needs to be connected with an angle detection device through a wire to collect data.
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Description

Technical Field

[0001] The utility model relates to the technical field of coal seam stress monitoring, in particular to a mining data collector and an angle detection system. Background Art

[0002] As coal seam mining increases in depth, mine pressure gradually intensifies, and disasters such as rock bursts become more frequent. Therefore, rock bursts are essentially a stress issue within the coal mass. To monitor changes in relative stress in the coal mass in real time, borehole stress gauges are often used to ensure safe coal mine production.

[0003] Currently, borehole stress gauges are typically of the oil-pressure pillow type. To monitor the vertical stress trends in the coal mass, the gauges must be installed horizontally within the coal borehole. Furthermore, the boreholes are typically small in diameter and deep. When placing the gauges, they are typically blindly pushed to a preset position using a wired angle detection device, which then measures the gauge's angle. Furthermore, the mining data collector also requires a wired connection to the angle detection device to collect the borehole stress gauge's installation angle data.

[0004] However, when using wired mining data collectors in deep holes, a large amount of wire must be fed into the hole, requiring staff to assist in wire delivery. Furthermore, when retrieving the wired mining data collector from the hole, staff are also required to assist in winding the wire, which increases labor costs and operation time, thereby reducing work efficiency. Furthermore, due to the unevenness of the hole channel and the presence of stones, the wires may be worn, resulting in unstable signal transmission or wire breakage, increasing maintenance and replacement costs. Furthermore, in the case of small apertures, the size of the wired angle detection device and the diameter of the wire may make recovery very difficult, and even the wire may have to be cut, separating the mining data collector from the wire, resulting in equipment loss or repair work. Utility Model Content

[0005] The purpose of the present invention is to overcome the above technical deficiencies and provide a mining data collector and an angle detection system to solve the technical problem in the prior art that the mining data collector needs to be connected to the angle detection device through a wire in order to collect data.

[0006] In order to achieve the above technical objectives, according to one aspect of the utility model: a mining data collector is provided, which is used to collect the installation angle data of the drilling stress gauge detected by the wireless angle detector. The mining data collector includes: a shell, which is provided with an observation port and a first placement cavity connected to the observation port; a display component and a control component, the display component and the control component are both installed in the first placement cavity, and the display part of the display component is arranged corresponding to the observation port; the display component is connected to the control component, and the control component is used to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector and transmit it to the display component; a transceiver component, the transceiver component is arranged on the outer wall of the shell, and the transceiver component is protruding from the shell, the transceiver component has a receiving part and a transmitting part connected to each other, the receiving part is used to wirelessly connect to the wireless angle detector to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector through the receiving part; the transmitting part is connected to the control component, and the transmitting part sends the installation angle data of the drilling stress gauge detected by the wireless angle detector received by the receiving part to the control component.

[0007] Furthermore, the transceiver component also includes: a protective cover, which is arranged on the outer wall of the shell and protrudes from the shell; a mounting groove is provided in the protective cover, and the receiving part and the transmitting part are arranged in the mounting groove; and / or the receiving part and the transmitting part are integrated as a transmitter and receiver.

[0008] Furthermore, the mining data collector also includes: a power-on component, which is installed on the side wall of the first placement cavity, and is spaced apart from the control component. The power-on component is used to control the power-on of the wireless angle detector and / or the repeater; and / or, an observation window, which is installed on the shell and is used to block the observation port. The observation window is made of transparent material, and the user can view the content displayed on the display part through the observation window.

[0009] Furthermore, the shell is provided with a plurality of buttons for different instructions, and the plurality of buttons for different instructions are all connected to the control component, and the control component performs corresponding actions according to the buttons for each different instruction; wherein, when the control component performs corresponding actions according to the buttons for each different instruction, the display unit displays corresponding content according to the instruction of the control component.

[0010] Furthermore, a second placement cavity is provided in the shell, and the first placement cavity and the second placement cavity are arranged at intervals; the mining data collector also includes: an energy storage component, the energy storage component is arranged in the second placement cavity, the energy storage component is connected to the control component, and the energy storage component is used to store electrical energy and supply power.

[0011] Furthermore, the mining data collector also includes: a charging component, which is connected to the control component; the charging component is used to process the electric energy provided by the external power supply and transmit the processed electric energy to the energy storage component.

[0012] Furthermore, the mining data collector also includes: a conductive component, which is arranged on the outer wall of the shell, and at least part of the conductive component is located in the first placement cavity, the conductive component is connected to the charging component through a wire, and the conductive component is used to be connected to an external power supply, and the external power supply transmits electrical energy to the charging component through the conductive component.

[0013] Furthermore, the shell includes: a main body and a cover body, the main body is provided with an observation port, a first placement cavity and a first mounting port connected to the first placement cavity, and the observation port and the first mounting port are arranged opposite to each other; the cover body is installed on the main body to block the first mounting port; the cover body is provided with a second placement cavity and a second mounting port connected to the second placement cavity, and the energy storage component is placed in the second placement cavity through the second mounting port; and a blocking member is installed on the cover body to block the second mounting port.

[0014] According to another aspect of the present invention, an angle detection system is provided, which includes: a wireless angle detector, which is used to detect the installation angle of the drilling stress gauge; a mining data collector, which is the above-mentioned mining data collector, which is used to wirelessly connect to the wireless angle detector, and the mining data collector is used to collect the installation angle data of the drilling stress gauge detected by the wireless angle detector, and send instructions to the wireless angle detector.

[0015] Furthermore, the angle detection system also includes: a terminal, the mining data collector is connected to the terminal, the terminal is used to receive the installation angle data of the drilling stress meter detected by the wireless angle detector collected by the mining data collector, and is used to issue instructions to the mining data collector.

[0016] Beneficial effects:

[0017] Applying the technical solution of the present invention, the mining data collector provided by the present invention comprises a housing, a display component, a control component, and a transceiver component. The housing is provided with an observation port and a first placement cavity connected to the observation port. The display component and the transceiver component are both disposed within the first placement cavity, with the display portion of the display component corresponding to the observation port and connected to the control component. The display portion of the display component is configured to display the installation angle data of the borehole stress gauge detected by the wireless angle detector and received by the control component, thereby facilitating real-time data monitoring by the user directly viewing the display content through the observation port. This allows the user to promptly adjust the installation angle of the borehole stress gauge, ultimately ensuring that the borehole stress gauge is installed horizontally. Furthermore, the transceiver component is disposed on the outer wall of the housing and comprises a receiving portion and a transmitting portion, which are interconnected. The receiving portion is configured to wirelessly connect to the wireless angle detector to receive the installation angle data of the borehole stress gauge detected by the wireless angle detector via the receiving portion. The transmitting portion is connected to the control component and transmits the installation angle data of the borehole stress gauge detected by the wireless angle detector received by the receiving portion to the control component. Thus, it can be seen that by providing a transceiver component, the mining data collector and the wireless angle detector can be wirelessly connected, thereby realizing wireless data transmission and avoiding the inconvenience caused by traditional wire connections. The wireless transmission method also makes the mining data collector more flexible, reduces the complexity of wiring, and facilitates rapid deployment on site. In addition, the protruding setting of the transceiver component can enhance the reception and transmission capabilities of wireless signals. This makes the receiving and transmitting parts of the transceiver component closer to the external environment, reduces the shielding effect of the shell on the signal, and improves the quality of wireless communication. This mining data collector can effectively solve the technical problem in the prior art that mining data collectors need to be connected to the angle detection device through wires in order to collect data. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic structural diagram of a mining data collector according to an embodiment of the present invention from a first perspective is shown;

[0019] Figure 2 A second perspective structural diagram of an embodiment of the mining data collector of the present utility model is shown;

[0020] Figure 3 A schematic structural diagram of an embodiment of a mining data collector of the present invention without a blocking member and an energy storage component is shown;

[0021] Figure 4 The diagram shows a structural diagram of the mining data collector in an embodiment of the present utility model without the blocking piece, the energy storage component and the cover body.

[0022] The above drawings include the following reference numerals:

[0023] 1. Shell; 10. Observation port; 11. First placement cavity; 12. Main body; 120. First installation port; 13. Cover; 130. Second installation port; 14. Second placement cavity; 15. Blocking piece; 2. Display component; 3. Transceiver component; 31. Protective cover; 4. Power-on component; 5. Observation window; 6. Button; 7. Energy storage component; 8. Conductive component; 9. Circuit board. DETAILED DESCRIPTION

[0024] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention 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 in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.

[0025] See also Figures 1 to 4 According to an embodiment of the present invention, the present invention provides a mining data collector, which is used to collect installation angle data of a borehole stress gauge detected by a wireless angle detector. The mining data collector includes: a shell 1, a display component 2, a control component and a transceiver component 3. The shell 1 is provided with an observation port 10 and a first placement cavity 11 connected to the observation port 10; the display component 2 and the control component are both installed in the first placement cavity 11, and the display part of the display component 2 is arranged corresponding to the observation port 10; the display component 2 is connected to the control component, and the control component is used to receive the installation angle data of the borehole stress gauge detected by the wireless angle detector and transmit it to the display component 2; the transceiver component 3 is arranged on the outer wall of the shell 1, and the transceiver component 3 is protruding from the shell 1. The transceiver component 3 has a receiving part and a transmitting part connected to each other, the receiving part is used to wirelessly connect to the wireless angle detector to receive the installation angle data of the borehole stress gauge detected by the wireless angle detector through the receiving part; the transmitting part is connected to the control component, and the transmitting part sends the installation angle data of the borehole stress gauge detected by the wireless angle detector received by the receiving part to the control component.

[0026] As can be seen, the mining data collector provided by the present invention comprises a housing 1, a display unit 2, a control unit, and a transceiver unit 3. The housing 1 is provided with an observation port 10 and a first placement cavity 11 connected to the observation port 10. The display unit 2 and the transceiver unit 3 are both disposed within the first placement cavity 11. The display portion of the display unit 2 is disposed corresponding to the observation port 10, and the display unit 2 is connected to the control unit. The display portion of the display unit 2 is used to display the installation angle data of the borehole stress gauge detected by the wireless angle detector received by the control unit, thereby facilitating the user to directly view the displayed content through the observation port and facilitate real-time data monitoring. This enables the user to promptly adjust the installation angle of the borehole stress gauge, ultimately enabling the borehole stress gauge to be installed horizontally. Furthermore, a transceiver component 3 is provided on the outer wall of the housing 1. The transceiver component 3 comprises a receiving portion and a transmitting portion, which are interconnected. The receiving portion is configured to wirelessly connect to the wireless angle detector to receive the borehole stress gauge installation angle data detected by the wireless angle detector. The transmitting portion is connected to the control component to transmit the borehole stress gauge installation angle data received by the wireless angle detector to the control component. Thus, the provision of the transceiver component enables wireless connection between the mining data collector and the wireless angle detector, thereby achieving wireless data transmission and avoiding the inconvenience of traditional wired connections. Furthermore, wireless transmission makes the mining data collector more flexible, reduces wiring complexity, and facilitates rapid deployment on-site. Furthermore, the protruding configuration of the transceiver component enhances the ability to receive and transmit wireless signals. This brings the receiving and transmitting portions of the transceiver component closer to the external environment, reduces the shielding effect of the housing on the signal, and improves the quality of wireless communication. This mining data collector effectively solves the technical problem of existing mining data collectors requiring wired connection to the angle detection device to collect data.

[0027] Specifically, if Figures 1 to 4 As shown, the transceiver component 3 also includes a protective cover 31, which is disposed on the outer wall of the housing 1 and protrudes from the housing 1. The protective cover 31 is provided with a mounting slot, and the receiving and transmitting units are disposed within the mounting slot. With this structural arrangement, the protective cover 31 can effectively protect the receiving and transmitting units within the transceiver component 3, thereby reducing the impact of the external environment on these sensitive components and effectively preventing external objects (such as stones, tools, etc.) from directly impacting the receiving and transmitting units, reducing the risk of physical damage. Furthermore, the protective cover 31 provides additional sealing, preventing dust, moisture, and the like from entering the interior of the protective cover, ensuring the long-term stable operation of the receiving and transmitting units. Furthermore, the protective cover 31 can protect the receiving and transmitting units from erosion by corrosive gases or liquids, thereby extending the service life of the equipment.

[0028] Furthermore, the protective cover 31 has a metal material or an electromagnetic shielding coating, which can reduce electromagnetic interference (EMI), protect the receiving part and the transmitting part from the influence of the external electromagnetic field, and maintain the purity of the signal and the communication quality.

[0029] Specifically, the receiving and transmitting units are integrated. This can be understood as an integrated structure. This structural arrangement reduces the size and weight of the device, improving portability, while also optimizing the signal path, reducing interference, and improving the quality of wireless communications.

[0030] Furthermore, the receiving part and the transmitting part form the transceiver part of the transceiver component 3 .

[0031] Optionally, the transceiver portion of the transceiver component 3 is a transceiver antenna, and the transceiver antenna is preferably an integrated transceiver antenna.

[0032] Optionally, when the wireless angle detector is connected to the borehole stress gauge and the wireless angle detector is used to blindly push the borehole stress gauge to a preset position in the borehole, the detection component of the wireless angle detector detects the installation angle of the borehole stress gauge and transmits the detection structure to the mining data collector via wireless transmission. When the transceiver of the transceiver component of the mining data collector receives the installation angle data of the borehole stress gauge detected by the wireless angle detector, it sends it to the control component. The control component processes the data and sends the processed structure to the display component 2. At this time, the display component will display the installation angle data of the borehole stress gauge detected by the current wireless angle detector. After the user views the installation angle data of the borehole stress gauge detected by the current wireless angle detector through the observation port 10, it is determined whether the borehole stress gauge is installed horizontally in the coal body borehole. If not, the installation angle of the borehole stress gauge is adjusted through the wireless angle detector. During the adjustment process, the mining data collector collects the installation angle data of the borehole stress gauge detected by the wireless angle detector in real time; when the borehole stress gauge is installed horizontally in the coal borehole, the mining data collector ends the collection and separates the wireless angle detector from the borehole stress gauge.

[0033] Furthermore, the display unit of the display component 2 can not only display the installation angle data of the borehole stress gauge detected by the wireless angle detector collected in real time by the mining data collector, but also display different contents or perform different operations according to the instructions sent by the control component.

[0034] Optionally, the display portion of the display component 2 is a display screen. This display screen functions as an interactive interface. Users can use the display screen to not only view the installation angle data of the borehole stress gauge detected by the wireless angle detector and collected by the mining data collector, but also to view the operating status of the mining data collector, such as power status, signal strength, and connection status. Furthermore, a menu system on the display screen guides users through various settings and operations.

[0035] Furthermore, the control component can not only receive and process the installation angle data of the drilling stress gauge detected by the wireless angle detector, but also control the corresponding components to perform corresponding actions according to the instructions issued by the user and / or the instructions received.

[0036] Furthermore, the mining data collector also has the function of controlling the shutdown of the wireless angle detector and / or repeater. To shut down the wireless angle detector and / or repeater, the user sends a corresponding command to the control component, which then transmits the command to the transceiver component 3. The transceiver component 3 then sends the command to the wireless angle detector and / or repeater. After receiving the command, the wireless angle detector and / or repeater performs the corresponding shutdown operation.

[0037] Specifically, if Figure 4 As shown, the mining data collector also includes: a power-on component 4, which is installed on the side wall of the first placement cavity 11. The power-on component 4 is spaced apart from the control component, and the power-on component 4 is used to control the power-on of the wireless angle detector and / or repeater. With such a structural arrangement, by setting up the power-on component 4, the user can easily control the power-on operation of the wireless angle detector and / or repeater through the power-on component 4 without the need for a complicated operating procedure. In addition, designing the power-on component 4 within the mining data collector can simplify the user's operation. The user only needs to use the mining data collector to complete the control of the wireless angle detector and / or repeater. In addition, setting the power-on component 4 within the first placement cavity 11 can also prevent the external environment from damaging the power-on component.

[0038] Optionally, the power-on component 4 is a strong magnet. This strong magnet is located within the first cavity 11 and mounted on a sidewall of the cavity 11. Since the wireless angle detector and / or repeater's power-on control unit is a reed switch, placing the strong magnet near the reed switch of the wireless angle detector and / or repeater magnetizes the ferromagnetic reed inside the reed switch, causing them to attract each other, thereby closing the contacts inside the reed switch and turning on the wireless angle detector and / or repeater.

[0039] Specifically, the mining data collector also includes: an observation window 5, which is mounted on the shell 1, and the observation window 5 is used to block the observation port 10. The observation window 5 is made of a transparent material, and the user can view the content displayed on the display unit through the observation window 5. With such a structural setting, by setting the observation window 5, the observation window 5 is mounted on the shell 1, and the observation window 5 is used to block the observation port 10. It can be seen that the user can monitor the working status of the equipment at any time through the observation window 5 to ensure the continuity and accuracy of data collection. Moreover, the observation window 5 is made of a transparent material, which can effectively block the observation port 10, prevent dust, moisture, etc. from entering the interior of the shell, and improve the protection level of the equipment. In addition, the design of the observation window 5 makes the appearance of the equipment more uniform, and improves the overall aesthetics of the equipment. In addition, it makes it easier to replace or maintain the observation window, and improves the maintainability of the equipment.

[0040] Specifically, if Figure 1 As shown, the housing 1 is provided with multiple buttons 6 for different commands. Each of these buttons 6 is connected to a control unit, which performs corresponding actions according to each button 6. When the control unit performs corresponding actions according to each button 6, the display unit displays corresponding content according to the control unit's instructions. This structural arrangement allows the user to perform specific operations using different buttons, eliminating the need for complex menu selections or multiple operations, simplifying the user's operational process. Furthermore, each button corresponds to a specific command, allowing the user to quickly perform the desired operation and improving work efficiency. Furthermore, the multiple buttons for different commands allow for intuitive operation, with each button having a clear function, reducing learning curves. Furthermore, the multiple buttons for different commands allow the user to perform a variety of operations, such as powering on and off, collecting data, and configuring equipment, thereby improving the functionality and practicality of the device. By combining different buttons, more complex operations can be achieved, increasing the device's flexibility.

[0041] Alternatively, as Figure 1 As shown, the housing 1 has a power button, a power button, a confirmation button, a switch button, and the like. By pressing the power button and the shutdown button, the user can control the power on and off of the mining data collector. After the mining data collector is turned on, the user can perform related operations using the remaining buttons on the housing 1 except the power button. The confirmation button is used to confirm the user again. Only when the confirmation button is pressed will the control component execute the corresponding command. At the same time, when the user presses the button 6 for different commands on the housing 1, the display portion of the display component 2 will display the corresponding content.

[0042] Specifically, if Figure 2 and Figure 3As shown, the housing 1 is further provided with a second placement cavity 14, with the first placement cavity 11 and the second placement cavity 14 spaced apart. The mining data collector further includes an energy storage component 7, which is disposed within the second placement cavity 14 and connected to the control component. The energy storage component 7 is used to store and supply electrical energy. With this structural arrangement, by providing the energy storage component 7 and connecting the energy storage component 7 to the control component, electrical energy can be provided to the mining data collector, making the mining data collector more portable, without reliance on an external power source, and suitable for a variety of application scenarios. Furthermore, the energy storage component 7 can cooperate with the control component to achieve intelligent power management, optimize electrical energy usage, and reduce energy waste.

[0043] Optionally, the energy storage component 7 is an energy storage battery.

[0044] Specifically, the mining data collector also includes a charging component connected to a control component; the charging component is connected to an energy storage component 7 through the control component. The charging component processes the electrical energy provided by the external power source and transmits the processed electrical energy to the energy storage component 7. With this structural arrangement, the charging component can process the electrical energy provided by the external power source to meet the requirements of the energy storage component 7, and then transmit the processed electrical energy to the energy storage component 7 to charge the energy storage component 7. Thus, the charging component can adjust the input voltage and current to ensure the safety and efficiency of the charging process. By processing the electrical energy, the charging component prevents overcharging and over-discharging, protecting the energy storage component. Furthermore, the connection between the charging component and the energy storage component through the control component enables more unified power management for the entire system. Furthermore, the control component coordinates the operation of the charging component and the energy storage component 7 to ensure smooth switching between charging and power supply. It can also detect abnormalities during the charging process and issue timely alarms, thereby improving the reliability of the equipment.

[0045] In this embodiment, in the first embodiment of the control component and the charging component, the control component is a control circuit board, and the charging component is a charging circuit board; the control circuit board and the charging circuit board are connected.

[0046] In this embodiment, the second embodiment of the control component and the charging component, as shown in FIG. Figure 4 As shown, the mining data collector further includes: a circuit board 9, a control component and a charging component to form the circuit board 9. It can be understood that the circuit board 9 integrates the control component and the charging component on the same circuit board, or it can be understood that the circuit board 9 has the control component and the charging component.

[0047] The charging circuit board charges the energy storage component through the control circuit board. This design aims to ensure that the control circuit board provides safety control, ensuring that the charging voltage does not exceed the safe range of the energy storage component 7. The control circuit board also limits the charging current to prevent excessive current from overheating or damaging the energy storage component. Furthermore, the control circuit board monitors the status of the energy storage component 7 in real time during the charging process. Furthermore, the control circuit board communicates with the charging circuit board to obtain charging status information and adjusts charging parameters as needed, thus achieving intelligent charging. This dynamically adjusts the charging strategy based on the usage of the energy storage component 7, thereby extending the life of the energy storage component 7.

[0048] In this embodiment, Figure 1 、 Figure 3 and Figure 4 As shown, the mining data collector also includes: a conductive component 8, which is arranged on the outer wall of the shell 1, and at least part of the conductive component 8 is located in the first placement cavity 11, the conductive component 8 is connected to the charging component through a wire, and the conductive component 8 is used to connect to an external power supply, and the external power supply transmits electrical energy to the charging component through the conductive component 8.

[0049] Optionally, the conductive component 8 has a positive electrode and a negative electrode, both of which are connected to the charging component. When the energy storage component 7 needs to be connected, both the positive electrode and the negative electrode are connected to an external power source to transmit electrical energy to the charging component through the conductive component 8.

[0050] Specifically, the housing 1 includes a main body 12, a cover 13, and a sealing member 15. The main body 12 is provided with an observation port 10, a first placement cavity 11, and a first mounting port 120 communicating with the first placement cavity 11, with the observation port 10 and the first mounting port 120 being arranged opposite each other. The cover 13 is mounted on the main body 12 to seal the first mounting port 120. The cover 13 is provided with a second placement cavity 14 and a second mounting port 130 communicating with the second placement cavity 14, with the energy storage component 7 being placed in the second placement cavity 14 through the second mounting port 130. The sealing member 15 is mounted on the cover 13 to seal the second mounting port 130. This structural arrangement, through the arrangement of the main body 12, the cover 13, and the sealing member 15, effectively seals the first placement cavity 11 and the second placement cavity 14, preventing impurities such as dust and moisture from entering the interior of the housing 1, thereby extending the service life of the mining data collector.

[0051] Furthermore, when the energy storage component 7 is installed in the second placement cavity 14, the energy storage component 7 is fixed in the second placement cavity 14 by pouring the material for encapsulation into the second placement cavity 14, thereby preventing the electrolyte of the energy storage component 7 from flowing out and playing an explosion-proof role.

[0052] Furthermore, the energy storage component 7, at least part of the display component 2 and the circuit board 9 all adopt an intrinsically safe design.

[0053] Optionally, the method for using the mining data collector includes the following steps:

[0054] Step 1: Press the power button 6 to turn on the mining data collector. After the control component receives the power-on command, the energy storage component 7 starts to discharge to provide power for the mining data collector, and the display part of the display component 2 will display the corresponding content when the power is turned on; at the same time, the power-on component 4 is used to turn on the wireless angle detector.

[0055] Step 2: When the wireless angle detector starts to detect the installation angle of the drilling stress gauge in real time, the transceiver component 3 starts to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector in real time, and sends the installation angle data of the drilling stress gauge detected by the wireless angle detector received by the transceiver component 3 to the control component. The control component processes the input and output data and sends it to the display component 2. The display part of the display component 2 will display the corresponding data for the user to observe, so that the user can adjust the installation angle of the drilling stress gauge in real time through the wireless angle detector by observing the displayed data.

[0056] Step 3: When the display unit 2 indicates that the borehole stress gauge's installation angle is horizontal, the user stops adjusting the borehole stress gauge's installation angle and retracts the wireless angle detector. Simultaneously, the user can perform corresponding operations on the mining data collector based on actual conditions. When the mining data collector is no longer needed, the user can shut it down by pressing the power button.

[0057] Step 4: When charging energy storage component 7 (energy storage battery), connect conductive component 8 to an external power source to transmit the electrical energy provided by the external power source to the charging component. The charging component processes the electrical energy and charges energy storage component 7 (energy storage battery) through the control component. During the charging process, the control component monitors the charging status of energy storage component 7 (energy storage battery) in real time. When charging is complete, the control component stops charging energy storage component 7 (energy storage battery).

[0058] The present utility model also provides an angle detection system, which includes: a wireless angle detector and a mining data collector, the wireless angle detector is used to detect the installation angle of the drilling stress gauge; the mining data collector is the mining data collector of the above embodiment, the mining data collector is used to wirelessly connect to the wireless angle detector, the mining data collector is used to collect the installation angle data of the drilling stress gauge detected by the wireless angle detector, and send instructions to the wireless angle detector.

[0059] Specifically, the angle detection system also includes: a terminal, the mining data collector is connected to the terminal, the terminal is used to receive the installation angle data of the drilling stress meter detected by the wireless angle detector collected by the mining data collector, and is used to issue instructions to the mining data collector.

[0060] Optionally, the mining data collector can not only collect the installation angle of the borehole stress gauge detected by the wireless angle detector in real time, but also send power on / off instructions and calibration instructions to the wireless angle detector. The power on instruction is sent by the power on component 4, and the power off instruction and calibration instruction are sent by the transmitting part of the transceiver component 3.

[0061] Optionally, the calibration command can be sent to the mining data collector through the terminal, and then after the mining data collector receives it, it is sent to the wireless angle detector through the transmitting part of the transceiver component 3. The user can also select the calibration instruction by operating the mining data collector (i.e., pressing the corresponding button 6). After the control component receives the instruction to calibrate the wireless angle detector, it sends it to the wireless angle detector through the transmitting part of the transceiver component 3 to calibrate the wireless angle detector.

[0062] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequential order. It should be understood that the data used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein can be implemented in a sequence other than those illustrated or described herein. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device comprising a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.

[0063] Optionally, the specific examples in this embodiment may refer to the examples described in the above embodiments, and this embodiment will not be described in detail here.

[0064] The serial numbers of the above embodiments of the present application are for description only and do not represent the advantages or disadvantages of the embodiments.

[0065] In the above embodiments of the present application, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, please refer to the relevant description of other embodiments.

[0066] The above is only a preferred embodiment of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications should also be regarded as the scope of protection of the present application.

Claims

1. A mining data collector, characterized in that: The mining data collector is used to collect the installation angle data of the drilling stress meter detected by the wireless angle detector, and the mining data collector includes: A housing (1), wherein the housing (1) is provided with an observation port (10) and a first placement cavity (11) communicating with the observation port (10); A display component (2) and a control component, wherein the display component (2) and the control component are both installed in the first placement cavity (11), and the display portion of the display component (2) is arranged corresponding to the observation port (10); the display component (2) is connected to the control component, and the control component is used to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector and transmit it to the display component (2); A transceiver component (3) is provided on the outer wall of the housing (1), and the transceiver component (3) is provided protruding from the housing (1). The transceiver component (3) has a receiving portion and a transmitting portion connected to each other, the receiving portion is used to wirelessly connect to the wireless angle detector so as to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector through the receiving portion; the transmitting portion is connected to the control component, and the transmitting portion sends the installation angle data of the drilling stress gauge detected by the wireless angle detector received by the receiving portion to the control component.

2. The mining data collector according to claim 1, characterized in that: The transceiver component (3) further includes: a protective cover (31), the protective cover (31) being arranged on the outer wall of the housing (1), and the protective cover (31) being arranged to protrude from the housing (1); a mounting groove being provided in the protective cover (31), the receiving part and the transmitting part being arranged in the mounting groove; and / or, The receiving unit and the transmitting unit are integrated.

3. The mining data collector according to claim 1, characterized in that: The mining data collector also includes: a power-on component (4), the power-on component (4) being mounted on a side wall of the first placement cavity (11), the power-on component (4) being spaced apart from the control component, the power-on component (4) being used to control the power-on of the wireless angle detector and / or the repeater; and / or, An observation window (5) is mounted on the housing (1), and the observation window (5) is used to block the observation port (10). The observation window (5) is made of a transparent material, and a user can view the content displayed on the display portion through the observation window (5).

4. The mining data collector according to claim 1, characterized in that: The housing (1) is provided with a plurality of buttons (6) with different instructions, and the buttons (6) with the plurality of different instructions are all connected to the control component, and the control component performs corresponding actions according to the buttons (6) with different instructions; When the control component performs corresponding actions according to the keys (6) of different instructions, the display unit displays corresponding content according to the instructions of the control component.

5. The mining data collector according to claim 1, characterized in that: A second placement cavity (14) is further provided in the housing (1), and the first placement cavity (11) and the second placement cavity (14) are arranged at intervals; the mining data collector further comprises: an energy storage component (7), the energy storage component (7) is arranged in the second placement cavity (14), the energy storage component (7) is connected to the control component, and the energy storage component (7) is used for storing electric energy and supplying power.

6. The mining data collector according to claim 5, characterized in that: The mining data collector further comprises: a charging component connected to the control component; the charging component is used to process the electric energy provided by the external power supply and transmit the processed electric energy to the energy storage component (7).

7. The mining data collector according to claim 6, characterized in that: The mining data collector further comprises: a conductive component (8), the conductive component (8) being arranged on the outer wall of the housing (1), and at least a portion of the conductive component (8) being located in the first placement cavity (11), the conductive component (8) being connected to the charging component via a wire, the conductive component (8) being used to be connected to the external power supply, and the external power supply transmitting electrical energy to the charging component via the conductive component (8).

8. The mining data collector according to claim 5, characterized in that: The housing (1) comprises: A main body (12) and a cover (13), wherein the main body (12) is provided with the observation port (10), the first placement cavity (11) and a first mounting port (120) communicating with the first placement cavity (11), and the observation port (10) and the first mounting port (120) are arranged opposite to each other; the cover (13) is installed on the main body (12) to block the first mounting port (120); the cover (13) is provided with the second placement cavity (14) and a second mounting port (130) communicating with the second placement cavity (14), and the energy storage component (7) is placed in the second placement cavity (14) through the second mounting port (130); A blocking piece (15) is installed on the cover body (13) to block the second installation opening (130).

9. An angle detection system, characterized in that: The angle detection system comprises: A wireless angle detector for detecting the installation angle of the drilling stress gauge; A mining data collector, the mining data collector is the mining data collector according to any one of claims 1 to 8, the mining data collector is used to be wirelessly connected to the wireless angle detector, the mining data collector is used to collect the installation angle data of the drilling stress gauge detected by the wireless angle detector, and send instructions to the wireless angle detector.

10. The angle detection system according to claim 9, characterized in that: The angle detection system further includes: a terminal, to which the mining data collector is connected, the terminal being used to receive the installation angle data of the drilling stress gauge detected by the wireless angle detector collected by the mining data collector, and to issue instructions to the mining data collector.