Mounting aid and system for an electronic detonator initiation controller
By designing a placement base and pressure mechanism for the installation auxiliary device, the problem of the transparent plate not fitting properly with the scanning head mounting slot was solved, thus achieving stable installation of the transparent plate and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUIZHOU QUANAN MILING TECHNOLOGY LIMITED COMPANY
- Filing Date
- 2025-07-18
- Publication Date
- 2026-07-21
Smart Images

Figure CN224534901U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pyrotechnic detonation control equipment manufacturing technology, and in particular to an installation auxiliary device and system for an electronic detonator detonation controller. Background Technology
[0002] Currently, electronic detonators are widely used in tunnel excavation, hazard removal blasting, demolition blasting, rock and ore separation, open-pit mine blasting, and other applications. In existing detonation systems, the electronic detonator detonation controller interacts with the blasting supervision service center via a data transmission terminal to exchange monitoring data. The electronic detonator detonation controller establishes a connection with multiple electronic detonators, and after the electronic detonator detonation controller verifies the legitimacy of all parties involved, engineers can use the electronic detonator detonation controller to detect, network, and control the detonation of electronic detonators.
[0003] Furthermore, existing electronic detonator initiation controllers lack scanning capabilities. During their use, additional scanning instruments are required to scan the electronic detonators, hindering rapid blasting operations. Therefore, our R&D team developed an electronic detonator initiation controller with scanning functionality. However, during production, a transparent plate needs to be installed in the mounting slot on the outside of the scanning head to protect the scanning lens. To ensure a seal between the transparent plate and the mounting slot on the scanning head, adhesive is applied to the transparent plate before... The adhesive attached to the transparent plate bonds it to the mounting slot on the scanning head. However, during this process, the transparent plate is pressed against the inner wall of the mounting slot by production personnel. The pressure applied by these personnel is highly subjective and uncertain, making it difficult to ensure a proper fit between the transparent plate and the inner wall of the mounting slot, and also compromising the reliability and stability of the transparent plate mounted on the scanning head. Furthermore, the adhesive requires time to cure, and the time spent pressing the transparent plate by production personnel results in low production efficiency for the electronic detonator detonation controller. Therefore, there is an urgent need for an installation auxiliary device that improves the reliability and stability of the transparent plate mounted in the scanning head's mounting slot and also enhances installation efficiency. Summary of the Invention
[0004] The purpose of this utility model is to overcome at least one deficiency of the prior art and provide an installation auxiliary device for an electronic detonator initiation controller that is beneficial to improving the reliability and firmness of the transparent plate installed in the mounting groove of the scanning head and improving the installation efficiency. In addition, an installation auxiliary system for an electronic detonator initiation controller is also provided.
[0005] The technical solution of this utility model to solve the above-mentioned technical problems is as follows:
[0006] According to one aspect of this application, an installation auxiliary device for an electronic detonator initiation controller is provided. The electronic detonator initiation controller includes a body and a scanning head. The scanning head is mounted on the body and has an installation port. An installation groove communicating with the installation port is provided on the outer periphery of the outer port of the installation port. The installation groove is positioned to install a transparent plate, which covers the installation port. The installation auxiliary device for the electronic detonator initiation controller includes:
[0007] A placement base is used for fixed installation, and the placement base is provided with a placement limiting groove for fitting the main body;
[0008] A pressure-applying mechanism is fixedly disposed on one side of the placement seat, directly opposite the placement limiting groove. The pressure-applying mechanism is provided with a movable driving part and a movable pressure-applying part. The movable pressure-applying part is movably connected to the movable driving part. Under the drive of the movable driving part, the movable pressure-applying part can move to a pressure position and a retraction position opposite to the mounting groove of the scanning head placed on the body in the placement limiting groove. When the movable pressure-applying part is in the pressure position, it applies pressure to the transparent plate, which is covered with adhesive and placed in the mounting groove, so that the transparent plate is adhered to the mounting groove by the adhesive and covers the mounting opening. When the movable pressure-applying part is in the retraction position, it releases the pressure on the transparent plate.
[0009] The beneficial effects of this utility model are as follows: In this embodiment, by providing a placement limiting groove on the placement base for adapting to the placement body, it is convenient to place the body in the placement limiting groove, thereby realizing the placement and limiting of the body and improving the accuracy and consistency of the body placement position; furthermore, by providing a pressure applying mechanism, when it is necessary to apply pressure to the transparent plate, it is convenient to drive the movable pressure applying part towards the mounting groove of the scanning head to the pressure applying position, thereby applying pressure to the transparent plate with adhesive and placed in the mounting groove, and it is also beneficial to uniformly apply a suitable amount of force, thereby making the transparent plate with adhesive and placed in the mounting groove fully... The transparent plate is adhered to and bonded to the inner wall of the mounting slot, improving the reliability and firmness of the transparent plate installed in the mounting slot of the scanning head. This also helps to improve the quality and consistency of the electronic detonator initiation controllers produced. It also avoids the problem of difficulty in ensuring full adhesion between the transparent plate and the inner wall of the mounting slot due to the subjectivity and uncertainty of the pressure applied by the production personnel. In addition, the pressure applied by the pressure mechanism can be maintained until the adhesive solidifies, without taking up the production personnel's time to continuously press the transparent plate. This frees up production time and improves the production efficiency of electronic detonator initiation controllers.
[0010] In addition, based on the above technical solution, the present invention can be further improved as follows, and can also have the following additional technical features.
[0011] According to one embodiment of this application, the installation auxiliary device for the electronic detonator initiation controller further includes:
[0012] A linear motion guide is provided on the movable pressure part. The linear motion guide is used to guide the movement of the movable pressure part in a linear motion, so that the movable pressure part can move linearly towards the mounting groove of the scanning head placed in the placement limiting groove of the body under the drive of the movable drive part.
[0013] In this embodiment, the linear guide part guides the movement of the movable pressure part in a linear motion, which helps to improve the reliability and stability of the movement of the movable pressure part. This, in turn, improves the accuracy and stability of the movable pressure part in applying pressure to the transparent plate with adhesive and placed in the mounting groove, so that the transparent plate with adhesive and placed in the mounting groove can fully fit and bond with the inner wall of the mounting groove.
[0014] According to one embodiment of this application, the linear motion guide includes:
[0015] A linear movable guide rod is horizontally connected between the movable pressure application part and the placement seat, and the linear movable guide rod is vertically arranged relative to the placement seat;
[0016] The guide seat is horizontally connected to the movable pressure part and sleeved on the outer periphery of the linear movable guide rod.
[0017] In this embodiment, the guide seat is horizontally connected to the movable pressure part and sleeved on the outer periphery of the linear movable guide rod, which facilitates the linear sliding of the guide seat relative to the linear movable guide rod, thereby limiting the movement direction of the movable pressure part. This improves the accuracy and stability of the movable pressure part in applying pressure to the transparent plate with adhesive and placed in the mounting groove, ensuring that the transparent plate with adhesive and placed in the mounting groove is fully attached to and bonded to the inner wall of the mounting groove.
[0018] According to one embodiment of this application, the pressure applying mechanism includes:
[0019] Mounting base, used for fixed installation on one side of the placement seat;
[0020] The active driving unit includes:
[0021] A push-pull clamp structure is mounted on the mounting base;
[0022] The movable pressure applying part includes:
[0023] The transmission rod is connected to the push-pull clamp structure, and the transmission rod can move linearly in the horizontal direction relative to the placement seat under the drive of the push-pull clamp structure;
[0024] A connecting plate is vertically connected in the horizontal direction to the end of the transmission rod away from the push-pull clamp structure;
[0025] A connecting base is attached to the side of the connecting plate facing the placement base;
[0026] An elastic pad is installed on the side of the connecting seat facing the placement seat. The elastic pad is used to apply pressure to the transparent plate that is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate that is covered with adhesive and placed in the mounting groove, the elastic pad undergoes elastic deformation and squeezes the transparent plate.
[0027] In this embodiment, the movable pressure-applying part includes an elastic pad. When the elastic pad is pressed against the transparent plate, the elastic pad can generate elastic compression deformation. This elastic compression deformation allows the elastic pad to generate an elastic pushing force on the transparent plate, facilitating the reliable pushing of the transparent plate by the elastic pad. This ensures that the transparent plate is fully fitted to the mounting groove. Furthermore, during the curing process of the adhesive, the elastic pad has a pre-tight pushing force on the transparent plate, which helps to ensure that the transparent plate is bonded to the inner wall of the mounting groove by the adhesive.
[0028] According to one embodiment of this application, the placement seat includes:
[0029] The base plate is long and flat.
[0030] The first end limiting protrusion is U-shaped. The first end limiting protrusion is connected to the upper side of the first end in the length direction of the base plate and protrudes upward. The two side guards on the first end limiting protrusion extend toward the second end in the length direction of the base plate.
[0031] The second end limiting protrusion is connected to the upper side of the second end in the length direction of the base plate and protrudes upward. The second end limiting protrusion is located on one side of the base plate in the width direction.
[0032] End limiting protrusion three is connected to the upper side of the second end of the base plate in the length direction and protrudes upward, opposite to end limiting protrusion two. End limiting protrusion three is located on the other side of the base plate in the width direction. There is a gap between end limiting protrusion two and end limiting protrusion three to form a clearance opening. When the body is placed in the placement limiting groove, the mounting groove is directly opposite the clearance opening. The movable pressure part can move through the clearance opening and directly opposite the mounting groove.
[0033] A lateral stop protrusion is connected to the upper side of the base plate and located between the first end and the second end in the length direction of the base plate. The lateral stop protrusion protrudes upward and is located on one side of the base plate in the width direction.
[0034] Lateral stop protrusion 2 is connected to the upper side of the base plate and located between the first end and the second end in the length direction of the base plate, directly opposite to the lateral stop protrusion 1. Lateral stop protrusion 2 protrudes upward and is located on the other side of the base plate in the width direction.
[0035] The placement limiting groove is defined between the base plate, the first end limiting protrusion, the second end limiting protrusion, the third end limiting protrusion, the first lateral stop protrusion, and the second lateral stop protrusion.
[0036] In this embodiment, a U-shaped end-limiting protrusion is connected to the first end of the base plate along its length, and an end-limiting protrusion and an end-limiting protrusion are connected to the second end of the base plate along its length. This facilitates the limitation of the two ends of the body along its length by the end-limiting protrusions. Furthermore, by connecting a lateral stop protrusion and a lateral stop protrusion to both sides of the base plate along its width, the two lateral stop protrusions limit the two sides of the body along its width. This facilitates the placement of the body in the positioning and limiting groove and enables the limiting of the body.
[0037] According to one embodiment of this application, the installation auxiliary device for the electronic detonator initiation controller further includes:
[0038] Elastic pad one is installed on the end limiting protrusion one and extends into the placement limiting groove, facing the movable pressure part. When the body is placed in the placement limiting groove, the end of the body with the scanning head is set towards the pressure mechanism, and the end face of the body away from the scanning head is elastically squeezed and stopped by the elastic pad one.
[0039] The second elastic pad is installed on the second end limiting protrusion and extends into the placement limiting groove. When the body is placed in the placement limiting groove, one side of the width of the body is elastically squeezed and resisted by the second elastic pad.
[0040] The elastic pad three is installed on the end limiting protrusion three and extends into the placement limiting groove. When the body is placed in the placement limiting groove, the other side of the width of the body is elastically squeezed and stopped by the elastic pad three.
[0041] In this embodiment, an elastic pad 1 is installed on the end limiting protrusion 1 facing the movable pressure part, an elastic pad 2 is installed on the end limiting protrusion 2, and an elastic pad 3 is installed on the end limiting protrusion 3. When the body is placed in the placement limiting groove, it is beneficial to make the end face of the body away from the scanning head elastically squeezed and stopped by the elastic pad 1. Furthermore, the elastic pad 2 and the elastic pad 3 elastically squeeze and stop on both sides of the width of the body in the width direction and clamp the body, thereby improving the reliability of the body limiting.
[0042] According to one embodiment of this application, the installation auxiliary device for the electronic detonator initiation controller further includes:
[0043] An elastic pad is installed on the movable pressure part. The elastic pad is used to apply pressure to the transparent plate that is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate that is covered with adhesive and placed in the mounting groove, the elastic pad undergoes elastic deformation and squeezes the transparent plate.
[0044] In this embodiment, an elastic pad is installed on the movable pressure part. When the elastic pad is pressed against the transparent plate, the elastic pad can generate elastic compression deformation. This elastic compression deformation allows the elastic pad to generate an elastic pushing force on the transparent plate, which facilitates the reliable pushing of the transparent plate by the elastic pad. This ensures that the transparent plate is fully fitted with the mounting groove. Furthermore, during the curing process of the adhesive, the elastic pad has a pre-tight pushing force on the transparent plate, which helps to ensure that the transparent plate is bonded to the inner wall of the mounting groove by the adhesive.
[0045] According to one embodiment of this application, the elastic pad includes:
[0046] An elastic block is installed on the movable pressure-applying part;
[0047] A pressure buffer pad is installed on the side of the elastic block facing the placement limiting groove.
[0048] The elastic pad in this embodiment includes an elastic block and a pressure buffer pad. Under the drive of the movable drive unit, when the pressure buffer pad is pressed against the transparent plate, the pressure buffer pad can generate elastic compression deformation, thereby buffering the pushing force applied to the transparent plate and preventing the pushing force applied to the transparent plate from damaging it. When the pressure buffer pad is further pressed against the transparent plate, the elastic block generates elastic compression deformation, which helps the elastic block to form an elastic pushing force on the transparent plate based on the generated elastic compression deformation. This facilitates the elastic pad to reliably push the transparent plate, thereby making the transparent plate fully fit with the mounting groove. Furthermore, during the curing process of the adhesive, the pressure buffer pad has a pre-tight pushing force on the transparent plate, which helps to ensure that the transparent plate is attached to the inner wall of the mounting groove by the adhesive.
[0049] According to one embodiment of this application, the mounting groove is inclined relative to the mounting opening, and a first included angle is formed between the vertical center plane passing through the center of the mounting opening and the center plane passing through the center of the mounting groove.
[0050] The inner bottom wall of the placement limiting groove near the pressure applying mechanism is provided with an angle adjustment support protrusion opposite the lower outer wall of the scanning head. When the body is placed in the placement limiting groove, the lower outer wall of the scanning head abuts against the upper side of the angle adjustment support protrusion, so that the central plane passing through the center of the mounting groove is vertically set under the support of the angle adjustment support protrusion, and the movement direction of the movable pressure applying part is perpendicular to the mounting groove and perpendicular to the transparent plate with adhesive and placed in the mounting groove.
[0051] In this embodiment, an angle adjustment support protrusion is provided on the inner bottom wall of the end of the placement limiting groove near the pressure applying mechanism, which is directly opposite the lower outer wall of the scanning head. When the main body is placed in the placement limiting groove, the lower outer wall of the scanning head abuts against the upper side of the angle adjustment support protrusion, so that the movement direction of the movable pressure part is perpendicular to the mounting groove and perpendicular to the transparent plate with adhesive and placed in the mounting groove. This is beneficial for the movable pressure part to vertically push the transparent plate, improving the reliability and stability of the movable pressure part pushing the transparent plate. In addition, during the process of the movable pressure part pushing the transparent plate, it is beneficial to avoid the transparent plate from shifting laterally, which would affect the accuracy of the transparent plate installation.
[0052] According to another aspect of this application, an installation auxiliary system for an electronic detonator initiation controller is provided, comprising:
[0053] Mounting plate;
[0054] In the aforementioned installation auxiliary device for electronic detonator initiation controller, the placement base is fixedly mounted on the mounting plate, and the pressure applying mechanism is fixedly mounted on the mounting plate opposite the placement limiting groove and located on one side of the placement base.
[0055] The installation auxiliary system for the electronic detonator initiation controller in this embodiment includes the aforementioned installation auxiliary device for the electronic detonator initiation controller. This facilitates the placement of the main body within the placement limiting groove, enabling placement and limiting of the main body, thus improving the accuracy and consistency of the main body's placement position. Furthermore, when pressure needs to be applied to the transparent plate, the movable pressure unit can be driven by the movable drive unit to move towards the mounting groove of the scanning head to the pressure position, applying pressure to the transparent plate with adhesive and placed in the mounting groove. This also facilitates uniform and appropriate application of force, thereby ensuring that the transparent plate with adhesive and placed in the mounting groove is fully... The bonding and adhesion between the transparent plate and the inner wall of the mounting slot improves the reliability and firmness of the transparent plate installed in the mounting slot of the scanning head. It also helps to improve the quality and consistency of the electronic detonator initiation controllers produced. Furthermore, it avoids the problem of difficulty in ensuring full adhesion between the transparent plate and the inner wall of the mounting slot due to the subjectivity and uncertainty of the pressure applied by the production personnel. In addition, the pressure applied by the pressure mechanism makes it easy to maintain pressure until the adhesive solidifies, without taking up the production personnel's time to continuously press the transparent plate. This frees up production time and improves the production efficiency of electronic detonator initiation controllers.
[0056] According to one embodiment of this application, there are multiple placement seats, and multiple pressure applying mechanisms are provided one-to-one opposite to the multiple placement seats. The multiple placement seats are arranged in a straight line on the mounting plate, and the multiple pressure applying mechanisms are arranged in a straight line opposite to the multiple placement seats on the mounting plate.
[0057] In this embodiment, multiple placement seats are provided, and multiple pressure applying mechanisms are provided one for each of the multiple placement seats. This facilitates the placement of multiple bodies into the placement limiting grooves on the multiple placement seats, and also facilitates the application of pressure to the transparent plate, which is coated with adhesive and placed in the mounting groove, by the multiple pressure applying mechanisms. This allows the transparent plate to be installed onto the scanning head of the multiple bodies placed in the placement limiting groove, thereby obtaining the electronic detonator detonation controller and further improving the production efficiency of the electronic detonator detonation controller.
[0058] According to one embodiment of this application, the installation assistance system for the electronic detonator initiation controller further includes:
[0059] A pressure-applying drive mechanism is disposed on one side of the pressure-applying mechanism, and multiple pressure-applying mechanisms are respectively connected to the pressure-applying drive mechanism;
[0060] The control unit, wherein the pressure driving mechanism is electrically connected to the control unit and is capable of driving multiple pressure mechanisms to move under the control of the control unit, such that the active pressure parts on the multiple pressure mechanisms, under the drive of the active driving part, move to the mounting slot of the scanning head placed in the placement limiting slot and have the pressure position and the retraction position respectively.
[0061] In this embodiment, a pressure-applying drive mechanism is provided. This mechanism is electrically connected to the control unit and can drive multiple pressure-applying mechanisms to move under the control of the control unit. When multiple transparent plates need to be pressed, the control unit can control the pressure-applying drive mechanism to move the movable drive parts on the multiple pressure-applying mechanisms to the pressure position respectively, applying pressure to the transparent plates with adhesive and placed in the mounting groove. This helps to ensure that the transparent plates with adhesive and placed in the mounting groove are fully attached to and bonded to the inner wall of the mounting groove, improving the reliability and firmness of the transparent plates installed in the mounting groove of the scanning head. It also helps to improve the quality and consistency of the electronic detonator initiation controllers obtained in production, and further improves the production efficiency of electronic detonator initiation controllers. Furthermore, the pressure-applying drive mechanism is controlled by the control unit, which facilitates the automation of pressing the transparent plates. Attached Figure Description
[0062] To more clearly illustrate the technical solutions in this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0063] Figure 1 This is a schematic diagram of the installation auxiliary device for an electronic detonator initiation controller according to an embodiment of the present invention;
[0064] Figure 2 for Figure 1 The front view after straightening;
[0065] Figure 3 for Figure 2 Top view;
[0066] Figure 4 for Figure 2 The left view;
[0067] Figure 5 This is a schematic diagram of the structure of the electronic detonator initiation controller placed on the installation auxiliary device according to an embodiment of the present utility model;
[0068] Figure 6 This is a schematic diagram of the structure of the electronic detonator initiation controller according to an embodiment of the present invention;
[0069] Figure 7 for Figure 6 A cross-sectional view of the electronic detonator detonation controller after it has been aligned and cut along the vertical center plane in the left-right direction;
[0070] Figure 8 for Figure 7 A magnified view of region I in the diagram.
[0071] The attached diagram lists the components represented by each number as follows:
[0072] 1. Mounting plate; 2. Placement seat; 3. Pressure applying mechanism; 4. Elastic block; 5. Pressure buffer pad; 6. Fixing seat; 7. Electronic detonator initiation controller; 8. Scanning assembly; 10. Pick-up and drop-off clearance port one; 20. Base plate; 21. End limiting protrusion one; 22. End limiting protrusion two; 23. End limiting protrusion three; 24. Lateral stop protrusion one; 25. Lateral stop protrusion two; 26. Angle adjustment support protrusion; 27. Elastic pad one; 28. Elastic pad two; 29. Elastic pad three; 30. Mounting base; 31. Vertical support protrusion; 32. Push-pull clamp structure. 33. Push-pull rod, 34. Grip sleeve, 35. Guide support seat, 36. Transmission rod, 37. Connecting plate, 38. Connecting seat, 39. Mounting support seat, 60. Handle, 70. Body, 71. Display screen, 72. Busbar terminal block, 73. Mounting cavity, 74. Lower housing protrusion, 80. Support frame, 81. Scanning head, 82. Moisture-absorbing block, 83. Transparent plate, 301. Screw one, 361. Locking limit nut, 362. Locking screw, 371. Guide seat, 372. Linear movable guide rod, 391. Screw two, 821. Clearance opening two. Detailed Implementation
[0073] To make the objectives, technical solutions, and advantages of this application clearer, the embodiments of this application will be described in further detail below with reference to the accompanying drawings.
[0074] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0075] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0076] One aspect of this application provides an installation auxiliary device for an electronic detonator initiation controller. The electronic detonator initiation controller 7 includes a body 70 and a scanning head 81. The scanning head 81 is mounted on the body 70 and has an installation port. An installation groove communicating with the installation port is provided on the outer periphery of the outer port of the installation port. The position of the installation groove is used to install a transparent plate 83, which covers the installation port. Figures 1 to 8 As shown, the installation auxiliary device for the electronic detonator initiation controller includes:
[0077] Placement base 2 is used for fixed installation, and placement base 2 is provided with placement limiting groove for fitting the placement body 70;
[0078] The pressure applying mechanism 3 is fixedly installed on one side of the placement base 2, facing the placement limiting groove. The pressure applying mechanism 3 is provided with a movable driving part and a movable pressure applying part. The movable pressure applying part is movably connected to the movable driving part. Under the drive of the movable driving part, the movable pressure applying part can move to the mounting groove of the scanning head 81 placed in the placement limiting groove of the main body 70, having a pressure applying position and a retraction position. When the movable pressure applying part is in the pressure applying position, the movable pressure applying part applies pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove, so that the transparent plate 83 is adhered to the mounting groove by the adhesive and covers the mounting opening. When the movable pressure applying part is in the retraction position, the movable pressure applying part releases the pressure on the transparent plate 83.
[0079] In this embodiment, as Figures 1 to 8As shown, in this embodiment, a placement limiting groove for adapting to the placement body 70 is provided on the placement base 2, which facilitates the placement of the body 70 within the placement limiting groove, thereby achieving placement and limiting of the body 70 and improving the accuracy and consistency of the placement position of the body 70. Furthermore, by providing a pressure applying mechanism 3, when pressure needs to be applied to the transparent plate 83, the movable driving part can be driven towards the mounting groove of the scanning head 81 to the pressure applying position, applying pressure to the transparent plate 83 with adhesive and placed in the mounting groove. This also facilitates uniformity and the application of appropriate force, thereby ensuring that the transparent plate 83 with adhesive and placed in the mounting groove is fully engaged with the scanning head 81. The bonding and adhesion of the inner wall of the mounting slot improves the reliability and firmness of the transparent plate 83 installed in the mounting slot on the scanning head 81. It also helps to improve the quality and consistency of the electronic detonator initiation controller 7 produced. It also avoids the problem that the pressure applied by the production personnel to the transparent plate 83 is highly subjective and uncertain, which could lead to difficulties in ensuring that the transparent plate 83 is fully bonded to the inner wall of the mounting slot. In addition, the pressure applied by the pressure applying mechanism 3 makes it easy to maintain pressure until the adhesive solidifies, without taking up the production personnel's time to continuously press the transparent plate 83. This frees up the production personnel's time for production, thereby improving the production efficiency of the electronic detonator initiation controller 7.
[0080] In this embodiment, as Figures 1 to 5 As shown, in this embodiment, the placement seat 2 is fixedly installed at the rear of the mounting plate 1, and the pressure applying mechanism 3 is fixed at the front of the mounting plate 1 and located in front of the placement seat 2, directly opposite the placement limiting groove. It should be noted that the mounting plate 1 shown in this embodiment is provided with multiple placement seats 2 and multiple pressure applying mechanisms 3. The placement seats 2 and pressure applying mechanisms 3, arranged in a one-to-one configuration, constitute an installation auxiliary device for an electronic detonator initiation controller. Therefore, it can be considered that the mounting plate 1 shown in this embodiment is provided with multiple installation auxiliary devices, constituting an installation auxiliary system for an electronic detonator initiation controller. Furthermore, the placement seat 2 and pressure applying mechanism 3 in this embodiment can also be fixed in other ways to facilitate applying pressure to the transparent plate 83, which is coated with adhesive and placed in the mounting groove, ensuring that the transparent plate 83 is fully adhered to and bonded to the inner wall of the mounting groove.
[0081] In this embodiment, as Figures 1 to 5 As shown, the placement limiting groove in this embodiment is approximately rectangular in shape, and the body 70 of the electronic detonator detonator controller 7 in this embodiment is approximately cuboid in shape. In addition, the outline of the placement limiting groove can be designed according to the shape of the body 70 of the electronic detonator detonator controller 7 to be placed, so as to place and limit the body 70 of the electronic detonator detonator controller 7 within the placement limiting groove.
[0082] In this embodiment, as Figure 5 and Figure 6 As shown, the electronic detonator initiation controller 7 in this embodiment is equipped with buttons, a display screen 71, and bus terminals 72. There is a pair of bus terminals 72, which are located at the rear end of the main body 70 and are electrically connected to the control module. In this embodiment, the pair of bus terminals 72 are used to connect to a pair of control buses, which are used to connect to the electronic detonator. In addition, the buttons, display screen 71, and bus terminals 72 of the electronic detonator initiation controller 7 in this embodiment can all refer to the electronic detonator initiation control equipment in the prior art, and will not be described in detail here.
[0083] In this embodiment, as Figure 7 and Figure 8 As shown, the scanning head 81 is mounted on the support frame 80, and the scanning lens on the scanning head 81 is positioned away from the support frame 80; further, the body 70 of the electronic detonator detonation controller 7 forms a sealed mounting cavity 73 inside, and the support frame 80 is installed inside the mounting cavity 73; further, a moisture-absorbing block 82 is installed between the transparent plate 83 and the scanning head 81, the transparent plate 83 is installed on the outside of the scanning head 81 facing the scanning lens, and the moisture-absorbing block 82 has an avoidance opening facing the scanning lens; in this embodiment, the support frame 80, the scanning head 81, the scanning lens, the moisture-absorbing block 82 and the transparent plate 83 constitute the scanning assembly 8; further, in this embodiment, the moisture-absorbing block 82 is foam.
[0084] Furthermore, in this embodiment, the scanning lenses are spaced three apart, including scanning lens one, scanning lens two, and scanning lens three; correspondingly, the moisture-absorbing block 82 has three clearance openings, including clearance opening one, clearance opening two 821, and clearance opening three. Clearance opening one is positioned directly opposite scanning lens one, clearance opening two 821 is positioned directly opposite scanning lens two, and clearance opening three is positioned directly opposite scanning lens three; furthermore, clearance opening one and clearance opening three are approximately square, and clearance opening two 821 is circular. The shapes of clearance opening one, clearance opening two 821, and clearance opening three can also be set to other shapes as needed; furthermore, the number of scanning lenses and clearance openings in this embodiment can also be set to two, four, etc., as needed.
[0085] In this embodiment, as Figure 7 and Figure 8 As shown, the transparent plate 83 is installed in the mounting groove on the body 70 by adhesive, and the gap between the transparent plate 83 and the mounting groove is filled by adhesive, so that the transparent plate 83 and the mounting groove are sealed; furthermore, the transparent plate 83 in this embodiment is specifically glass, but the transparent plate 83 can also be made of other suitable transparent materials.
[0086] Furthermore, in this embodiment, the scanning head 81 is electrically connected to the control module disposed in the electronic detonator initiation controller 7. The control module in this embodiment can also be optimized based on the control processing unit of the existing electronic detonator initiation control equipment. The connection method between the scanning head 81 and the control module in this embodiment can also refer to the prior art. Moreover, the control module and other components of the electronic detonator initiation controller 7 in this embodiment are not the focus of this application and will not be described in detail here.
[0087] It should be noted that the installation auxiliary device for the electronic detonator initiation controller in this embodiment is used to apply pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove, so that the transparent plate 83 is fully attached to and bonded to the inner wall of the mounting groove. This is a process of installing the transparent plate 83 onto the body 70 of the electronic detonator initiation controller 7. Other production and installation processes of the electronic detonator initiation controller 7 are not the focus of this application and will not be described in detail here.
[0088] One embodiment of this application, such as Figures 1 to 5 As shown, the installation auxiliary device for the electronic detonator initiation controller also includes:
[0089] A linear motion guide is provided on the movable pressure part. The linear motion guide is used to guide the movement of the movable pressure part in a linear motion, so that the movable pressure part can move linearly towards the mounting groove of the scanning head 81 placed in the placement limiting groove of the body 70 under the drive of the movable drive part.
[0090] In this embodiment, as Figures 1 to 5 As shown, in this embodiment, the linear movable guide part guides the movement of the movable pressure part in a linear motion, which helps to improve the reliability and stability of the movement of the movable pressure part. This, in turn, improves the accuracy and stability of the movable pressure part in applying pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove, so that the transparent plate 83, which is covered with adhesive and placed in the mounting groove, can fully adhere to and bond with the inner wall of the mounting groove.
[0091] One embodiment of this application, such as Figures 1 to 5 As shown, the linear motion guide includes:
[0092] A linear movable guide rod 372 is horizontally connected between the movable pressure application part and the placement seat 2, and the linear movable guide rod 372 is set vertically relative to the placement seat 2.
[0093] The guide seat 371 is horizontally connected to the movable pressure part and sleeved on the outer periphery of the linear movable guide rod 372.
[0094] In this embodiment, as Figures 1 to 5 As shown, in this embodiment, the guide seat 371 is horizontally connected to the movable pressure part and sleeved on the outer periphery of the linear movable guide rod 372, which facilitates the linear sliding of the guide seat 371 relative to the linear movable guide rod 372, thereby limiting the movement direction of the movable pressure part and improving the accuracy and stability of the movable pressure part in applying pressure to the transparent plate 83 with adhesive and placed in the mounting groove, so that the transparent plate 83 with adhesive and placed in the mounting groove can fully fit and bond with the inner wall of the mounting groove.
[0095] One embodiment of this application, such as Figures 1 to 5 As shown, the pressure applying mechanism 3 includes:
[0096] Mounting base 30 is used to fix the mounting base 2 on one side;
[0097] The Activity Driving Department includes:
[0098] A push-pull clamp structure 32 is mounted on the mounting base 30;
[0099] The active pressure application section includes:
[0100] The transmission rod 36 is connected to the push-pull clamp structure 32, and the transmission rod 36 can move linearly in the horizontal direction relative to the placement seat 2 under the drive of the push-pull clamp structure 32.
[0101] The connecting plate 37 is vertically connected in the horizontal direction to the end of the transmission rod 36 away from the push-pull clamp structure 32;
[0102] Connector 38 is connected to the side of connector 37 facing the placement seat 2;
[0103] An elastic pad is installed on the side of the connecting seat 38 facing the placement seat 2. The elastic pad is used to apply pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate 83, it undergoes elastic deformation and squeezes the transparent plate 83.
[0104] In this embodiment, as Figures 1 to 5 As shown, the movable pressure-applying part in this embodiment includes an elastic pad. When the elastic pad is pressed against the transparent plate 83, the elastic pad can generate elastic compression deformation. This elastic compression deformation allows the elastic pad to generate an elastic pushing force on the transparent plate 83, facilitating the reliable pushing of the transparent plate 83 by the elastic pad. This ensures that the transparent plate 83 is fully fitted with the mounting groove. Furthermore, during the curing process of the adhesive, the elastic pad has a pre-tight pushing force on the transparent plate 83, which helps to ensure that the transparent plate 83 is bonded to the inner wall of the mounting groove by the adhesive.
[0105] In this embodiment, as Figure 1 and Figure 3 As shown, in this embodiment, more than 30 mounting bases are fixedly mounted on the mounting plate 1 by screws 301. A vertical support protrusion 31 is provided on the upper side of the mounting base 30. The push-pull clamp structure 32 includes a first swinging movable seat, a second swinging movable seat, and a push-pull rod 33. The front end of the first swinging movable seat is rotatably connected to the vertical support protrusion 31, the second swinging movable seat is rotatably connected to the middle of the first swinging movable seat, a transmission rod 36 is connected to the rear end of the second swinging movable seat, and the push-pull rod 33 is fixedly connected to the second swinging movable seat. The clamp is operated by pushing and pulling from the rear to the front. Rod 33, the push-pull rod 33 drives the swing movable seat one and the swing movable seat two to swing backward. The lower end of the push-pull rod 33 pushes the swing movable seat two backward, thereby placing the movable pressure part in the pressure position. In this embodiment, the push-pull rod 33 and the movable pressure part are placed in the pressure position. By pushing the push-pull rod 33 forward, the push-pull rod 33 drives the swing movable seat one and the swing movable seat two to swing forward, and moves them to the withdrawal position. It should be noted that the state of the push-pull rod 33 and the movable pressure part in the withdrawal position is not illustrated in this embodiment.
[0106] Furthermore, such as Figure 1 and Figure 3 As shown, in this embodiment, the connecting plate 37 is fixedly connected to the rear end of the transmission rod 36 by locking screws 362 and locking limit nuts 361. The connecting plate 37 extends in the left-right direction. In this embodiment, the connecting seat 38 is approximately U-shaped. Two support blocks are provided at one open end of the connecting seat 38 and are respectively installed on both ends of the connecting plate 37 by screws. Furthermore, in this embodiment, there are two sets of linear movable guide rods 372. The two sets of linear movable guide rods 372 are respectively arranged on both sides of the transmission rod 36 in the left-right direction. The front end of 372 is supported by a mounting support 39, which is mounted on the mounting plate 1 by screw 391. The rear end of the linear movable guide rod 372, which is positioned opposite the end limiting protrusion 22, is mounted on the end limiting protrusion 22. The rear end of the linear movable guide rod 372, which is positioned opposite the end limiting protrusion 33, is mounted on the end limiting protrusion 33. Furthermore, in this embodiment, there are two guide seats 371, which are mounted on both ends of the connecting plate 37 and are located outside the connecting seat 38 in the left-right direction.
[0107] Furthermore, such as Figure 1 and Figure 3As shown, in order to facilitate gripping the push-pull rod 33, a gripping sleeve 34 is provided on the push-pull rod 33 in this embodiment; in addition, in order to improve the reliability of the linear motion of the transmission rod 36, a guide support seat 35 is installed at the rear end of the mounting base 30. The transmission rod 36 has a cylindrical structure and is slidably installed in the guide support seat 35. The transmission rod 36 can slide back and forth in the front-back direction under the guidance of the guide support seat 35.
[0108] Furthermore, the push-pull clamp structure 32 in this embodiment can refer to the prior art in this field. The push-pull clamp structure 32 in this embodiment can also adopt other push-pull clamp structures. In addition, the movable drive unit in this embodiment can also adopt a linear telescopic drive motor or other suitable pressure drive device.
[0109] One embodiment of this application, such as Figures 1 to 5 As shown, the placement base 2 includes:
[0110] The base plate is 20mm long and flat.
[0111] The end limiting protrusion 21 is U-shaped. The end limiting protrusion 21 is connected to the upper side of the first end of the base plate 20 in the length direction and protrudes upward. The two side flanges on the end limiting protrusion 21 extend toward the second end of the base plate 20 in the length direction.
[0112] End limiting protrusion 22 is connected to the upper side of the second end of the base plate 20 in the length direction and protrudes upward. End limiting protrusion 22 is located on one side of the base plate 20 in the width direction.
[0113] End limiting protrusion 3 23 is connected to the upper side of the second end of the base plate 20 in the length direction and protrudes upward, opposite to end limiting protrusion 22. End limiting protrusion 3 is located on the other side of the base plate 20 in the width direction. There is a gap between end limiting protrusion 22 and end limiting protrusion 3 23 to form a clearance opening. When the body 70 is placed in the placement limiting groove, the mounting groove is directly opposite the clearance opening, and the movable pressure part can move through the clearance opening and directly opposite the mounting groove.
[0114] Lateral stop protrusion 24 is connected to the upper side of the base plate 20 and located between the first end and the second end of the base plate 20 in the length direction. Lateral stop protrusion 24 protrudes upward and is located on one side of the base plate 20 in the width direction.
[0115] Lateral stop protrusion 25 is connected to the upper side of the base plate 20 opposite to lateral stop protrusion 24 and is located between the first end and the second end in the length direction of the base plate 20. Lateral stop protrusion 25 protrudes upward and is located on the other side of the base plate 20 in the width direction.
[0116] A placement limiting groove is formed between the base plate 20, end limiting protrusion 1 21, end limiting protrusion 22, end limiting protrusion 3 23, lateral stop protrusion 1 24, and lateral stop protrusion 25.
[0117] In this embodiment, as Figures 1 to 5 As shown, in this embodiment, the first end of the base plate 20 in the length direction is connected to a U-shaped end limiting protrusion 21, and the second end of the base plate 20 in the length direction is connected to an end limiting protrusion 22 and an end limiting protrusion 3 23 facing each other, so as to limit the two ends of the body 70 in the length direction by the end limiting protrusion 21, the end limiting protrusion 22 and the end limiting protrusion 3 23; furthermore, by connecting the two sides of the base plate 20 in the width direction to the side of the body 70, the side of the body 70 in the width direction is limited by the side limiting protrusion 24 and the side limiting protrusion 25; thus, it is convenient to place the body 70 in the placement limiting groove and realize the limiting of the body 70.
[0118] Furthermore, the structure of the placement seat 2 and the placement limiting groove in this embodiment can also be varied, and the outline of the placement limiting groove can also be designed according to the shape of the electronic detonator initiation controller 7 that needs to install the transparent plate 83, which will not be elaborated here.
[0119] One embodiment of this application, such as Figures 1 to 5 As shown, the installation auxiliary device for the electronic detonator initiation controller also includes:
[0120] The elastic pad 27 is installed on the end limiting protrusion 21 opposite to the movable pressure part and extends into the placement limiting groove. When the main body 70 is placed in the placement limiting groove, the end of the main body 70 with the scanning head 81 is set towards the pressure mechanism 3, and the end face of the main body 70 away from the scanning head 81 is elastically squeezed and stopped by the elastic pad 27.
[0121] Elastic pad 28 is installed on end limiting protrusion 222 and extends into placement limiting groove. When the body 70 is placed in placement limiting groove, one side of the width of the body 70 is elastically squeezed and stopped by elastic pad 28.
[0122] The elastic pad 329 is installed on the end limiting protrusion 323 and extends into the placement limiting groove. When the body 70 is placed in the placement limiting groove, the other side of the width of the body 70 is elastically squeezed and stopped by the elastic pad 329.
[0123] In this embodiment, as Figures 1 to 5As shown, in this embodiment, an elastic pad 27 is installed on the end limiting protrusion 21 facing the movable pressure part, an elastic pad 28 is installed on the end limiting protrusion 22, and an elastic pad 29 is installed on the end limiting protrusion 23. When the body 70 is placed in the placement limiting groove, it is beneficial to make the end face of the body 70 away from the scanning head 81 elastically squeezed and stopped by the elastic pad 27. The elastic pads 28 and 29 elastically squeeze and stop on both sides of the width of the body 70 in the width direction and clamp the body 70, thereby improving the reliability of limiting the body 70.
[0124] In this embodiment, as Figure 1 and Figure 3 As shown, elastic pad 27 is approximately U-shaped and is detachably mounted in the middle of end limiting protrusion 21. Elastic pad 28 and elastic pad 29 are approximately U-shaped, with elastic pad 28 detachably mounted on end limiting protrusion 22 and elastic pad 29 detachably mounted on end limiting protrusion 23. In addition, elastic pad 27, elastic pad 28 and elastic pad 29 in this embodiment can also be configured with other structures, and the installation methods of elastic pad 27, elastic pad 28 and elastic pad 29 can also be varied.
[0125] One embodiment of this application, such as Figure 1 and Figure 3 As shown, the installation auxiliary device for the electronic detonator initiation controller also includes:
[0126] An elastic pad is installed on the movable pressure part. The elastic pad is used to apply pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate 83, it undergoes elastic deformation and squeezes the transparent plate 83.
[0127] In this embodiment, as Figure 1 and Figure 3 As shown, in this embodiment, an elastic pad is installed on the movable pressure part. When the elastic pad is pressed against the transparent plate 83, the elastic pad can generate elastic compression deformation. This elastic compression deformation helps the elastic pad to generate an elastic pushing force on the transparent plate 83, which facilitates the elastic pad to reliably push the transparent plate 83. This allows the transparent plate 83 to fully fit with the mounting groove. Furthermore, during the curing process of the adhesive, the elastic pad has a pre-tight pushing force on the transparent plate 83, which helps to ensure that the transparent plate 83 is bonded to the inner wall of the mounting groove by the adhesive.
[0128] One embodiment of this application, such as Figure 1 and Figure 3 As shown, the elastic pad includes:
[0129] Elastic block 4 is installed on the movable pressure-applying part;
[0130] The pressure buffer pad 5 is installed on the side of the elastic block 4 opposite to the placement limit groove.
[0131] In this embodiment, as Figure 1 and Figure 3 As shown, the elastic pad in this embodiment includes an elastic block 4 and a pressure buffer pad 5. Under the drive of the movable drive unit, when the pressure buffer pad 5 is pressed against the transparent plate 83, the pressure buffer pad 5 can generate elastic compression deformation, thereby buffering the pushing force applied to the transparent plate 83 and preventing the pushing force applied to the transparent plate 83 from damaging it. When the pressure buffer pad 5 is further pressed against the transparent plate 83, the elastic block 4 generates elastic compression deformation, which helps the elastic block 4 to form an elastic pushing force on the transparent plate 83 based on the generated elastic compression deformation. This facilitates the elastic pad to reliably push the transparent plate 83, thereby making the transparent plate 83 fully fit with the mounting groove. During the curing process of the adhesive, the pressure buffer pad 5 has a pre-tight pushing force on the transparent plate 83, which helps to ensure that the transparent plate 83 is attached to the inner wall of the mounting groove by the adhesive.
[0132] One embodiment of this application, such as Figures 5 to 8 As shown, the mounting groove is inclined relative to the mounting opening, and the vertical center plane passing through the center of the mounting opening and the center plane passing through the center of the mounting groove form a first angle;
[0133] An angle adjustment support protrusion 26 is provided on the inner bottom wall of the end of the placement limiting groove near the pressure applying mechanism 3, which is opposite to the lower outer wall of the scanning head 81. When the main body 70 is placed in the placement limiting groove, the lower outer wall of the scanning head 81 abuts against the upper side of the angle adjustment support protrusion 26, so that the center plane passing through the center of the mounting groove is vertically set under the support of the angle adjustment support protrusion 26, and the movement direction of the movable pressure applying part is perpendicular to the mounting groove and perpendicular to the transparent plate 83 with adhesive and placed in the mounting groove.
[0134] In this embodiment, as Figures 5 to 8 As shown, in this embodiment, an angle adjustment support protrusion 26 is provided on the inner bottom wall of the end of the placement limiting groove near the pressure mechanism 3, which is opposite to the lower outer wall of the scanning head 81. When the body 70 is placed in the placement limiting groove, the lower outer wall of the scanning head 81 abuts against the upper side of the angle adjustment support protrusion 26, so that the movement direction of the movable pressure part is perpendicular to the mounting groove and perpendicular to the transparent plate 83 with adhesive and placed in the mounting groove. This is beneficial for the movable pressure part to vertically push the transparent plate 83, thereby improving the reliability and stability of the movable pressure part pushing the transparent plate 83. In addition, during the process of the movable pressure part pushing the transparent plate 83, it is beneficial to avoid the transparent plate 83 from shifting laterally, which would affect the accuracy of the installation of the transparent plate 83.
[0135] In this embodiment, as Figure 7 and Figure 8 As shown, in this embodiment, the first included angle A between the transparent plate 83 and the moisture-absorbing block 82 is 7°. Further, in this embodiment, the angle adjustment support protrusion 26 is specifically an angle adjustment support inclined surface. When the body 70 is placed in the placement limiting groove, the lower outer wall of the scanning head 81 abuts against the upper side of the angle adjustment support inclined surface. The angle adjustment support inclined surface supports the lower outer wall of the scanning head 81. In this embodiment, the lower outer wall of the scanning head 81 is the lower housing protrusion 74 of the body 70 of the electronic detonator detonation controller 7. Of course, the scanning head 81 can also be designed with other structures, and the angle adjustment support protrusion 26 can also be designed with other structures to facilitate the angle adjustment support protrusion 26 to adjust the angle of the body 70 placed in the placement limiting groove, so that the angle of the body 70 is tilted and equal to the first included angle A, so that the movement direction of the movable pressure part is perpendicular to the mounting groove and perpendicular to the transparent plate 83 with adhesive and placed in the mounting groove. In addition, the angle of the first included angle A between the transparent plate 83 and the moisture-absorbing block 82 in this embodiment can also be set to other angles between 1° and 10°. The tilt of the angle adjustment support tilt surface needs to be designed to be equal to the tilt angle of the first included angle A.
[0136] One embodiment of this application, such as Figure 8 As shown, the maximum vertical distance D between the inner side of the transparent plate 83 facing the installation opening and the side of the moisture-absorbing block 82 facing the transparent plate 83 is no greater than 1.0 mm.
[0137] In this embodiment, as Figure 8 As shown, in this embodiment, the maximum vertical distance D from the inner side of the transparent plate 83 facing the installation opening to the side of the moisture-absorbing block 82 facing the transparent plate 83 is no greater than 1.0 mm, which helps to reduce the sealed space formed between the moisture-absorbing block 82 and the transparent plate 83.
[0138] Another aspect of this application provides an installation auxiliary system for an electronic detonator initiation controller, such as... Figures 1 to 5 As shown, it includes:
[0139] Mounting plate 1;
[0140] The aforementioned installation auxiliary device for electronic detonator initiation controller has a placement base 2 fixedly installed on the mounting plate 1, and a pressure applying mechanism 3 fixedly installed on the mounting plate 1 opposite the placement limiting groove and located on one side of the placement base 2.
[0141] In this embodiment, as Figures 1 to 5As shown, the installation auxiliary system for the electronic detonator initiation controller in this embodiment includes the aforementioned installation auxiliary device for the electronic detonator initiation controller. This facilitates the placement of the main body 70 within the placement limiting groove, enabling the placement and limiting of the main body 70, thus improving the accuracy and consistency of the main body 70's placement position. Furthermore, when pressure needs to be applied to the transparent plate 83, the movable driving unit can be driven towards the mounting groove of the scanning head 81 to apply pressure to the transparent plate 83, which is covered with adhesive and placed in the mounting groove. This also facilitates uniform and appropriate application of force, thereby ensuring that the transparent plate 83, covered with adhesive and placed in the mounting groove, is properly positioned. The transparent plate 83 is fully fitted and bonded to the inner wall of the mounting slot, improving the reliability and firmness of the mounting slot on the scanning head 81. This also helps improve the quality and consistency of the electronic detonator initiation controller 7 produced. It also avoids the problem of the transparent plate 83 not being fully fitted to the inner wall of the mounting slot due to the subjectivity and uncertainty of the pressure applied by the production personnel. In addition, the pressure applied by the pressure mechanism 3 makes it easy to maintain pressure until the adhesive solidifies, without taking up the production personnel's time to continuously press the transparent plate 83. This frees up the production personnel's time for production, thereby improving the production efficiency of the electronic detonator initiation controller 7.
[0142] One embodiment of this application, such as Figures 1 to 5 As shown, there are multiple placement seats 2, and multiple pressure applying mechanisms 3 are arranged in a straight line opposite to the multiple placement seats 2. The multiple placement seats 2 are installed on the mounting plate 1 in a straight line opposite to the multiple placement seats 2.
[0143] In this embodiment, as Figures 1 to 5 As shown, in this embodiment, there are multiple placement seats 2 and multiple pressure applying mechanisms 3 facing the multiple placement seats 2, which facilitates the placement of multiple bodies 70 into the placement limiting grooves on the multiple placement seats 2, and also facilitates the application of pressure by the multiple pressure applying mechanisms 3 to the transparent plate 83 which is covered with adhesive and placed in the mounting groove, so that the transparent plate 83 is installed on the scanning head 81 of the multiple bodies 70 placed in the placement limiting groove, thereby obtaining the electronic detonator detonation controller 7, and further improving the production efficiency of the electronic detonator detonation controller 7.
[0144] In this embodiment, as Figures 1 to 5 As shown, the mounting plate 1 in this embodiment has a rectangular plate structure. Four placement seats 2 and four pressure applying mechanisms 3 are installed on the mounting plate 1. The mounting plate 1 in this embodiment is provided with a pick-up and placement clearance opening 10. Correspondingly, the placement seats 2 are provided with a pick-up and placement clearance opening 2. In addition, the mounting plate 1 in this embodiment can also be configured with other structures.
[0145] Furthermore, in this embodiment, a fixing base 6 is installed in the middle of the mounting plate 1, and a handle 60 is installed on the fixing base 6, so that the installation auxiliary system can be lifted and placed by the handle 60.
[0146] In one embodiment of this application, the installation auxiliary system for the electronic detonator initiation controller further includes:
[0147] A pressure-applying drive mechanism is located on one side of the pressure-applying mechanism 3, and multiple pressure-applying mechanisms 3 are respectively connected to the pressure-applying drive mechanism;
[0148] The control unit and the pressure driving mechanism are electrically connected to the control unit and can drive multiple pressure mechanisms 3 to move under the control of the control unit, so that the active pressure parts on the multiple pressure mechanisms 3 are respectively driven by the active driving unit to move to the mounting slot of the scanning head 81 placed in the placement limiting slot, having a pressure position and a withdrawal position.
[0149] In this embodiment, a pressure-applying drive mechanism is provided. This mechanism is electrically connected to the control unit and can drive multiple pressure-applying mechanisms 3 to move under the control of the control unit. When it is necessary to apply pressure to multiple transparent plates 83, the control unit can control the pressure-applying drive mechanism to move the movable drive parts on the multiple pressure-applying mechanisms 3 to the pressure position respectively, applying pressure to the transparent plates 83 that are covered with adhesive and placed in the mounting groove. This helps to ensure that the transparent plates 83 covered with adhesive and placed in the mounting groove are fully attached to and bonded to the inner wall of the mounting groove, improving the reliability and firmness of the transparent plates 83 installed in the mounting groove on the scanning head 81. It also helps to improve the quality and consistency of the electronic detonator initiation controller 7 produced, and further improves the production efficiency of the electronic detonator initiation controller 7. Furthermore, the pressure-applying drive mechanism is controlled by the control unit, which facilitates the automation of applying pressure to the transparent plates 83.
[0150] In this embodiment, the pressure-applying drive mechanism is not illustrated. The pressure-applying drive mechanism can employ a pressure-applying drive telescopic motor, connected to the push-pull rods 33 via multiple connecting rods. The pressure-applying drive telescopic motor drives the multiple push-pull rods 33 to move synchronously through the connecting rods, thereby applying pressure to the multiple transparent plates 83. It should be noted that there are various methods and structures for the pressure-applying drive telescopic motor to drive the multiple push-pull rods 33 to move synchronously through the connecting rods. Those skilled in the art can select and design such mechanisms based on the content disclosed in this application and in conjunction with relevant existing technologies, and these will not be elaborated upon here. Furthermore, the configuration of the control unit in this embodiment can also be adjusted and designed according to the driving requirements and in conjunction with relevant existing technologies, and these will also not be elaborated upon here.
[0151] In addition to the technical solutions disclosed in this embodiment, the structure and working principle of the scanning head 81, control module, control unit, and electronic detonator initiation controller 7 in this utility model can be referred to conventional technical solutions in this technical field. However, these conventional technical solutions are not the focus of this utility model, and will not be described in detail here.
[0152] In this utility model, the term "multiple" refers to two or more unless otherwise explicitly defined. The terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "linking" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0153] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0154] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0155] The above are merely preferred embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. An auxiliary installation device for an electronic detonator initiation controller, the electronic detonator initiation controller comprising a body and a scanning head, the scanning head being mounted on the body, the scanning head having an installation port, and an installation groove communicating with the installation port being provided on the outer periphery of the outer port of the installation port, the installation groove being positioned for mounting a transparent plate and covering the installation port through the transparent plate, characterized in that, It includes: A placement base is used for fixed installation, and the placement base is provided with a placement limiting groove for fitting the main body; A pressure-applying mechanism is fixedly disposed on one side of the placement seat, directly opposite the placement limiting groove. The pressure-applying mechanism is provided with a movable driving part and a movable pressure-applying part. The movable pressure-applying part is movably connected to the movable driving part. Under the drive of the movable driving part, the movable pressure-applying part can move to a pressure position and a retraction position opposite to the mounting groove of the scanning head placed on the body in the placement limiting groove. When the movable pressure-applying part is in the pressure position, it applies pressure to the transparent plate, which is covered with adhesive and placed in the mounting groove, so that the transparent plate is adhered to the mounting groove by the adhesive and covers the mounting opening. When the movable pressure-applying part is in the retraction position, it releases the pressure on the transparent plate.
2. The installation auxiliary device for an electronic detonator initiation controller according to claim 1, characterized in that, Also includes: A linear motion guide is provided on the movable pressure part. The linear motion guide is used to guide the movement of the movable pressure part in a linear motion, so that the movable pressure part can move linearly towards the mounting groove of the scanning head placed in the placement limiting groove of the body under the drive of the movable drive part.
3. The installation auxiliary device for an electronic detonator initiation controller according to claim 2, characterized in that, The linear motion guide includes: A linear movable guide rod is horizontally connected between the movable pressure application part and the placement seat, and the linear movable guide rod is vertically arranged relative to the placement seat; The guide seat is horizontally connected to the movable pressure part and sleeved on the outer periphery of the linear movable guide rod.
4. The installation auxiliary device for an electronic detonator initiation controller according to claim 3, characterized in that, The pressure-applying mechanism includes: Mounting base, used for fixed installation on one side of the placement seat; The active driving unit includes: A push-pull clamp structure is mounted on the mounting base; The movable pressure applying part includes: The transmission rod is connected to the push-pull clamp structure, and the transmission rod can move linearly in the horizontal direction relative to the placement seat under the drive of the push-pull clamp structure; A connecting plate is vertically connected in the horizontal direction to the end of the transmission rod away from the push-pull clamp structure; A connecting base is attached to the side of the connecting plate facing the placement base; An elastic pad is installed on the side of the connecting seat facing the placement seat. The elastic pad is used to apply pressure to the transparent plate that is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate that is covered with adhesive and placed in the mounting groove, the elastic pad undergoes elastic deformation and squeezes the transparent plate.
5. The installation auxiliary device for an electronic detonator initiation controller according to any one of claims 1 to 3, characterized in that, The placement base includes: The base plate is long and flat. The first end limiting protrusion is U-shaped. The first end limiting protrusion is connected to the upper side of the first end in the length direction of the base plate and protrudes upward. The two side guards on the first end limiting protrusion extend toward the second end in the length direction of the base plate. The second end limiting protrusion is connected to the upper side of the second end in the length direction of the base plate and protrudes upward. The second end limiting protrusion is located on one side of the base plate in the width direction. End limiting protrusion three is connected to the upper side of the second end of the base plate in the length direction and protrudes upward, opposite to end limiting protrusion two. End limiting protrusion three is located on the other side of the base plate in the width direction. There is a gap between end limiting protrusion two and end limiting protrusion three to form a clearance opening. When the body is placed in the placement limiting groove, the mounting groove is directly opposite the clearance opening. The movable pressure part can move through the clearance opening and directly opposite the mounting groove. A lateral stop protrusion is connected to the upper side of the base plate and located between the first end and the second end in the length direction of the base plate. The lateral stop protrusion protrudes upward and is located on one side of the base plate in the width direction. Lateral stop protrusion 2 is connected to the upper side of the base plate and located between the first end and the second end in the length direction of the base plate, directly opposite to the lateral stop protrusion 1. Lateral stop protrusion 2 protrudes upward and is located on the other side of the base plate in the width direction. The placement limiting groove is defined between the base plate, the first end limiting protrusion, the second end limiting protrusion, the third end limiting protrusion, the first lateral stop protrusion, and the second lateral stop protrusion.
6. The installation auxiliary device for an electronic detonator initiation controller according to claim 5, characterized in that, Also includes: Elastic pad one is installed on the end limiting protrusion one and extends into the placement limiting groove, facing the movable pressure part. When the body is placed in the placement limiting groove, the end of the body with the scanning head is set towards the pressure mechanism, and the end face of the body away from the scanning head is elastically squeezed and stopped by the elastic pad one. The second elastic pad is installed on the second end limiting protrusion and extends into the placement limiting groove. When the body is placed in the placement limiting groove, one side of the width of the body is elastically squeezed and resisted by the second elastic pad. The elastic pad three is installed on the end limiting protrusion three and extends into the placement limiting groove. When the body is placed in the placement limiting groove, the other side of the width of the body is elastically squeezed and stopped by the elastic pad three.
7. The installation auxiliary device for an electronic detonator initiation controller according to any one of claims 1 to 3, characterized in that, Also includes: An elastic pad is installed on the movable pressure part. The elastic pad is used to apply pressure to the transparent plate that is covered with adhesive and placed in the mounting groove. When the elastic pad applies pressure to the transparent plate that is covered with adhesive and placed in the mounting groove, the elastic pad undergoes elastic deformation and squeezes the transparent plate.
8. The installation auxiliary device for an electronic detonator initiation controller according to claim 7, characterized in that, The elastic pad includes: An elastic block is installed on the movable pressure-applying part; A pressure buffer pad is installed on the side of the elastic block facing the placement limiting groove.
9. The installation auxiliary device for an electronic detonator initiation controller according to any one of claims 1 to 3, characterized in that, The mounting groove is inclined relative to the mounting opening, and a first included angle is formed between the vertical center plane passing through the center of the mounting opening and the center plane passing through the center of the mounting groove. The inner bottom wall of the placement limiting groove near the pressure applying mechanism is provided with an angle adjustment support protrusion opposite the lower outer wall of the scanning head. When the body is placed in the placement limiting groove, the lower outer wall of the scanning head abuts against the upper side of the angle adjustment support protrusion, so that the central plane passing through the center of the mounting groove is vertically set under the support of the angle adjustment support protrusion, and the movement direction of the movable pressure applying part is perpendicular to the mounting groove and perpendicular to the transparent plate with adhesive and placed in the mounting groove.
10. An installation auxiliary system for an electronic detonator initiation controller, characterized in that, include: Mounting plate; The installation auxiliary device for an electronic detonator initiation controller according to any one of claims 1 to 9, wherein the placement seat is fixedly installed on the mounting plate, and the pressure applying mechanism is fixedly installed on the mounting plate opposite to the placement limiting groove and located on one side of the placement seat.
11. The installation auxiliary system for an electronic detonator initiation controller according to claim 10, characterized in that, The placement seats are provided in multiple ways, and the pressure applying mechanisms are provided one by one in front of the multiple placement seats. The multiple placement seats are arranged in a straight line on the mounting plate, and the multiple pressure applying mechanisms are arranged in a straight line on the mounting plate, one by one in front of the multiple placement seats.
12. The installation auxiliary system for an electronic detonator initiation controller according to claim 11, characterized in that, Also includes: A pressure-applying drive mechanism is disposed on one side of the pressure-applying mechanism, and multiple pressure-applying mechanisms are respectively connected to the pressure-applying drive mechanism; The control unit, wherein the pressure driving mechanism is electrically connected to the control unit and is capable of driving multiple pressure mechanisms to move under the control of the control unit, such that the active pressure parts on the multiple pressure mechanisms, under the drive of the active driving part, move to the mounting slot of the scanning head placed in the placement limiting slot and have the pressure position and the retraction position respectively.