Digital electronic detonator initiation network uid code double dialing method, communication method and device
By using a dual dialing method based on UID codes, the UID codes of digital electronic detonators are split into two groups for dual dialing, which solves the problem of excessively long network communication time for digital electronic detonators and achieves efficient network communication.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SICHUAN MEIXIN MICROELECTRONICS TECH CO LTD
- Filing Date
- 2023-08-03
- Publication Date
- 2026-05-26
AI Technical Summary
The existing digital electronic detonator detonation network has a long networking and communication time, which leads to excessive time for clearing the blasting site and road cordoning, causing traffic and personnel delays.
The UID code dual dialing method is adopted, which splits the UID code of the digital electronic detonator into two groups and performs dual dialing on each group. The selection dialing state is confirmed by the first dialing state and the second dialing state, and finally one-to-one communication is established with the detonator.
It reduces the communication time of digital electronic detonator detonation networks and improves network communication efficiency, typically reducing communication time by more than 30%.
Smart Images

Figure CN117006907B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of digital electronic detonator technology, and in particular to a dual dialing method, communication method and corresponding device for UID code initiation network of digital electronic detonators. Background Technology
[0002] A digital electronic detonator detonation network typically consists of a single detonator and hundreds or thousands of digital electronic detonators controlled by the detonator, as shown in the attached diagram. Figure 1 As shown.
[0003] Each digital electronic detonator consists of an electronic control module and a basic detonator. The electronic control module communicates one-to-one with the detonator to perform tasks such as reading circuit status, password verification, setting the detonation delay, charging / discharging, and detonation. Each digital electronic detonator has a unique digital identification number (UID) stored in the electronic control module; the typical length of the UID is approximately 7 bytes (56 bits). The detonator selects the corresponding digital electronic detonator in the detonation network by dialing the UID, thus establishing a one-to-one communication.
[0004] The typical communication rate of an initiation network is approximately 1 Kbit / s. When dialing the UID, in addition to the UID itself, data check bits, byte start bits, byte end bits, and byte gaps also consume communication time. Taking a standard 400-initiator initiation network of existing digital electronic detonators as an example, it takes 3-5 minutes for the initiator to complete communication across the entire detonator network. When establishing a network for blasting, the blasting site and adjacent danger zones need to be cleared, and road intersections need to be cordoned off. The extended communication time for digital electronic detonators consumes significant time costs; if a major traffic intersection requires 3-5 minutes of cordoning off, it can cause significant traffic congestion and delays. Therefore, it is necessary to reduce the network communication time of digital electronic detonator initiation networks, keeping it to a shorter time, such as less than 1 minute. Summary of the Invention
[0005] The purpose of this invention is to propose a dual dialing method, communication method, and corresponding device for UID codes in digital electronic detonator detonation networks, thereby improving the dialing and communication mechanisms of UID codes in digital electronic detonator detonation networks and solving the problems in the background art.
[0006] On one hand, this invention provides a dual dialing method for UID codes in a digital electronic detonator initiation network system. This method involves splitting the UIDs of all digital electronic detonators in the network and then performing dual dialing on each detonator according to its split UID group. The method then confirms the first and second dialing states of each detonator after the dual dialing and ultimately determines whether the corresponding detonator has entered the selected dialing state based on these states. The detonator that ultimately enters the selected dialing state can communicate one-to-one with the detonator, thereby reducing the communication time of the digital electronic detonator initiation network.
[0007] On the one hand, the present invention provides a digital electronic detonator initiation network communication method, which uses a dual dialing method based on the UID code of the digital electronic detonator initiation network to complete the communication of the digital electronic detonator initiation network.
[0008] On the other hand, the present invention also provides a dual dialing device for a digital electronic detonator detonation network UID code, comprising the following units:
[0009] The UID code acquisition unit is used to acquire the UID codes of all digital electronic detonators in the digital electronic detonator detonation network system.
[0010] The UID sorting unit is used to optimize the dialing order of all digital electronic detonators in order to save communication time to the greatest extent.
[0011] The UID code grouping unit is used to group all UID codes.
[0012] The first UID group dialing unit is used to dial the first UID group.
[0013] The second UID group dialing unit is used to dial the second UID group.
[0014] The first dialing status confirmation unit is used to confirm the first dialing status of the digital electronic detonator.
[0015] The second dialing status confirmation unit is used to confirm the second dialing status of the digital electronic detonator.
[0016] The selected dialing status confirmation unit is used to confirm the digital electronic detonator that has entered the selected dialing status based on the first dialing status and the second dialing status, and to conduct communication.
[0017] On the other hand, the present invention also provides a digital electronic detonator detonation network communication device, which completes the communication of the digital electronic detonator detonation network system based on a dual dialing device for the digital electronic detonator detonation network UID code.
[0018] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:
[0019] This invention improves the dialing and communication mechanisms of the UID code corresponding to the digital electronic detonator initiation network, achieving fast and efficient UID code dialing and reducing the time consumed by UID code dialing. This, in turn, reduces the communication time of the digital electronic detonator initiation network and improves network communication efficiency. Under typical conditions, it can reduce the communication time of the digital electronic detonator initiation network by at least 30%. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort, wherein:
[0021] Figure 1 This is a structural diagram of the digital electronic detonator initiation system provided in an embodiment of the present invention;
[0022] Figure 2 This is a schematic diagram of a UID code dual dialing method provided in an embodiment of the present invention. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only for explaining the invention and are not intended to limit the invention; that is, the described embodiments are merely some embodiments of the invention, and not all embodiments. The components of the embodiments of the invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0024] It should be noted that relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0025] The features and performance of the present invention will be further described in detail below with reference to embodiments.
[0026] Example 1
[0027] like Figure 1 As shown, a digital electronic detonator initiation network system includes an initiator and n digital electronic detonators that are communicated and controlled by the initiator. Each digital electronic detonator includes at least an electronic control module and a basic detonator. The electronic control module is used to establish a one-to-one communication connection with the initiator and control the working state of each module within the digital electronic detonator, thereby completing tasks such as reading the circuit status of the digital electronic detonator, verifying the password, setting the delay initiation time, charging and discharging, and initiation.
[0028] In a detonation network system, multiple digital electronic detonators exist. To enable precise detonation control of these detonators, each detonator has a unique, one-to-one digital identification number (UID) within its electronic control module. The detonator communicates with the electronic control module and selects the UID, thereby selecting the digital electronic detonator in the detonation network corresponding to that UID and establishing a one-to-one communication.
[0029] The UID code in a digital electronic detonator is generally compiled according to certain rules. For example, it can be composed of information such as the electronic control module manufacturer code, detonator manufacturer code, production date, production machine number, and serial number. Therefore, under typical circumstances, most bits of the UID code of multiple digital electronic detonators connected to the detonation network are the same, and only a few bits are different.
[0030] The conventional method for dialing and communicating using a UID code in existing technology includes: first, executing the operation of
Dial UID command + UID data
[0031] The detonation network system typically takes a long time to complete communication using the conventional UID code dialing method. This invention aims to optimize and improve the UID code dialing communication mechanism to reduce the time cost of the dialing communication process.
[0032] Example 2
[0033] This embodiment is a UID code dual dialing method that can be used in the aforementioned detonation network system. By optimizing the UID code dialing process and mechanism, the communication efficiency of the detonation network system is improved.
[0034] The described UID dual-dialing method divides the UIDs of all digital electronic detonators in the detonation network system into two groups based on the frequency of byte or bit changes. The digital electronic detonators are then dual-dialed sequentially according to their respective UID groups. After each dual-dialing, the detonator sequentially confirms its first and second dialing states, ultimately determining whether it has been selected for dialing. The digital electronic detonator that ultimately enters the selected dialing state can communicate one-to-one with the detonator, thereby reducing communication time.
[0035] In a preferred embodiment, the first dialing state and the second dialing state correspond to the two groups of UIDs after being split, and include two states: dialed and not dialed.
[0036] Specifically, such as Figure 2 The optimized UID code dual dialing method includes the following steps:
[0037] The complete UID codes of all n digital electronic detonators are split into two groups: the bytes or bits that are likely to have the same data among the UIDs in the detonation network system are divided into the first UID group which is not easily changed, and the data corresponding to the first UID group is UIDA; the remaining UID codes are assigned to the second UID group which is easily changed, and the data corresponding to the second UID group is UIDB.
[0038] The detonation network system after grouping uses a dual UID code dialing mechanism for dialing communication. The dialing communication process includes dialing the first UID group and the second UID group respectively.
[0039] In a preferred embodiment, the first UID group and the second UID group are dialed using UIDA and UIDB respectively, that is, the operations of
dialing UIDA command + UIDA data
dialing UIDB command + UIDB data
[0040] After dialing the first UID group, the dialing status can be divided into "Dialed UIDA" and "Undialed UIDA" states based on whether the dialing of the first UID group was successful. All digital electronic detonators corresponding to the successful dialing of the first UID group form the first group of digital electronic detonators and enter the "Dialed UIDA" state, while the remaining digital electronic detonators remain in the "Undialed UIDA" state.
[0041] After dialing the first UID group, the second UID group is dialed sequentially. The dialing status of the second UID group can be divided into "UIDB in progress" and "UIDB in progress" based on whether the dialing was successful. Digital electronic detonators corresponding to successfully dialed second UID groups are in the "UIDB in progress" state. These digital electronic detonators form the second group of digital electronic detonators. The digital electronic detonators that enter the selected dialing state can be determined based on whether they are simultaneously in the first and second groups, and can then communicate with the detonator one by one.
[0042] In a preferred embodiment, the second UID group dialing can be performed on the first group of digital electronic detonators that have entered the dialed UIDA state, or it can be performed on all digital electronic detonators. In a preferred embodiment, the second UID group dialing can be preferentially performed on the first group of digital electronic detonators that have entered the dialed UIDA state.
[0043] When the UIDA is not dialed, regardless of whether the UIDB is dialed again in the second UID group, the corresponding digital detonator will not enter the selected dialing state. When the UIDA is dialed but the UIDB is not dialed, the corresponding digital detonator will also not enter the selected dialing state. Only when both the UIDA and UIDB are dialed will the corresponding digital detonator enter the selected dialing state.
[0044] Whether UIDB is dialed or not, or whether it receives a release command, will not cause a change in the state of whether UIDA is dialed.
[0045] In a preferred embodiment, the first UID group can be dialed first and then the second UID group can be dialed, or the second UID group can be dialed first and then the first UID group can be dialed, or both can be done simultaneously.
[0046] Example 3
[0047] In a preferred embodiment, when the detonation network communicates, the communication sequence is sorted according to the first UID group, that is, a group of digital electronic detonators with the same UID are arranged consecutively and sequentially as a group, and then the detonator communicates one-to-one with the digital electronic detonator in sequence according to this order.
[0048] For a group of digital detonators that are arranged consecutively and have the same UIDA, you only need to perform a complete operation of [UIDA command + UIDA data] and [UIDB command + UIDB data] on the first digital detonator in the group. The remaining digital detonators in the group that follow can be selected by simply performing the [UIDB command + UIDB data] operation. This can significantly save the time spent on dialing UIDs.
[0049] Taking a detonation network system with n digital electronic detonators as an example, the system includes one detonator and n digital electronic detonators connected via communication. After grouping the n UID codes, the n digital electronic detonators are first sorted according to the first UID group. Assuming the first UID group contains n1 UIDA data, the digital electronic detonators with the same UIDA are sorted to form n1 rows. Based on this, the [UIDA dialing command + UIDA data] is executed once for the first digital electronic detonator in each row, which selects all digital electronic detonators in the n1 rows as having their corresponding dialed UIDA status.
[0050] Based on this, the second UID group is dialed, that is, each digital electronic detonator is dialed sequentially using UIDB data. When the digital electronic detonator is finally confirmed to be in the selected dialing state, it can communicate one-to-one with the detonator.
[0051] In a preferred embodiment, after grouping and sorting all digital electronic detonators in the detonation network system as described above, the first digital electronic detonator in the first group of digital electronic detonators with the same UIDA can be dialed using the complete UID code data. That is, the conventional UID code dialing method is performed on the first digital electronic detonator / all digital electronic detonators in the first group: [Dial UID command + UID data]. Since the aforementioned conventional UID code dialing method can also put the first group of digital electronic detonators with the same UIDA into the dialed UIDA state, the UIDB data can be used again to dial the second UID group, that is, executing [Dial UIDB command + UIDB], which will determine that the corresponding digital electronic detonator is in the selected dialing state.
[0052] This embodiment improves communication efficiency by saving the time consumed in selecting the UID of the digital electronic detonator.
[0053] Example 4
[0054] This embodiment is a further illustration of the present invention.
[0055] Example 3 provides a digital electronic detonator initiation network communication method based on the aforementioned examples, and provides a detailed explanation of how to perform UID grouping and how to achieve efficient digital electronic detonator initiation network communication using the dual dialing mechanism of the grouped UID codes.
[0056] In a preferred embodiment, the number of digital electronic detonators n in the detonation network system is 500, and the detonation network system includes one detonator and 500 digital electronic detonators connected in communication.
[0057] The detonator communicates with each electronic detonator in units of bytes. Each byte includes 8 bits of valid data or instructions, as well as information such as a check bit, a start bit, and an end bit.
[0058] The UID code of the digital electronic detonator is 7 bytes long. Before grouping the UID code, the first 6 bytes are divided into the first UID group, and the corresponding byte content is set as UIDA data; the last 1 byte is divided into the second UID group, and the corresponding byte content is set as UIDB data.
[0059] In this embodiment, it is assumed that the UIDs of the 500 digital electronic detonators constituting the detonation network system are consecutive hexadecimal numbers from CBAF2301010000 to CBAF23010101F3.
[0060] In addition, the data lengths corresponding to other information in the aforementioned communication data are as follows: password length is 4 bytes, delay data length is 3 bytes, return status data length is 1 byte, detonation command length is 4 bytes, and other command lengths are 1 byte.
[0061] When the detonation network system performs detonation communication, it mainly includes two communication processes: network detection and timed detonation. The following analysis will focus on the execution process of these two communication processes and the communication consumption corresponding to different UID code dialing methods.
[0062] (1) When performing network detection, the detonation network system needs to detect whether all digital electronic detonators of the detonators are correctly connected to the detonation network. At this time, the communication time will be different when using the conventional UID code dialing method and the optimized UID code dual dialing method provided in the aforementioned embodiment.
[0063] If the conventional UID code dialing method is used, the following operations need to be performed on each digital electronic detonator: [Dial UID command (1 byte) + UID (7 bytes) + Read status command (1 byte) + Return status (1 byte) + Release command (1 byte)]. Therefore, each digital electronic detonator needs to consume 11 bytes of communication time, and all digital electronic detonators consume a total of 5500 bytes of communication time.
[0064] As with the improved UID code dual dialing method provided in the aforementioned embodiment, since there are only two UIDAs in the first UID group (CBAF23010100 and CBAF23010101), only two operations are needed when dialing the first UID group: dialing the UIDA instruction (1 byte) + UIDA (6 bytes). The first operation is performed when dialing the first CBAF2301010000, and the second operation is performed when dialing the 257th CBAF2301010100, consuming a total of 14 bytes of communication time.
[0065] Next, the second UID group needs to be dialed, which involves executing the following steps: [Dial UIDB command (1 byte) + UIDB (1 byte) + Read status command (1 byte) + Return status (1 byte) + Release command (1 byte)]. Each digital electronic detonator requires 5 bytes of communication time, for a total of 2500 bytes of communication time. The entire network detection process consumes a total of 2514 bytes of communication time.
[0066] The comparison shows that after adopting the improved UID code dual dialing method in the aforementioned embodiments in the network detection program, the communication time of the entire network detection is only 2514 / 5500 of the conventional UID code dialing method, which can save about 54% of the communication time.
[0067] (2) When the timing is activated, the detonation network system needs to perform operations such as password verification, delay writing, and status confirmation (at least including whether the password is successfully verified and whether the delay is correctly written) for each digital electronic detonator. At this time, the communication time will be different when using the conventional UID code dialing method and the optimized UID code dual dialing method provided in the aforementioned embodiment.
[0068] If the conventional UID code dialing method is used, the following operations need to be performed for each digital electronic detonator: [Dial UID command (1 byte) + UID (7 bytes) + Verify password command (1 byte) + Password (4 bytes) + Write delay command (1 byte) + Delay data (3 bytes) + Read status command (1 byte) + Return status (1 byte) + Release command (1 byte)]. Each digital electronic detonator requires 20 bytes of communication time, totaling 10,000 bytes of communication time for all digital electronic detonators. Finally, a detonation command (4 bytes, one-to-many communication) is needed to complete the detonation of the entire detonation network system. Therefore, the entire timed detonation process consumes a total of 10,004 bytes of communication time.
[0069] If the improved UID code dual dialing method described in the previous embodiment is used, based on the same grouping, only two operations are needed when dialing the first UID group: dialing the UIDA command (1 byte) + UIDA (6 bytes), consuming a total of 14 bytes of communication time. Then, dialing the second UID group requires executing the following operations: dialing the UIDB command (1 byte) + UIDB (1 byte) + password verification command (1 byte) + password (4 bytes) + write delay command (1 byte) + delay data (3 bytes) + read status command (1 byte) + return status (1 byte) + release command (1 byte). Each digital electronic detonator requires 14 bytes of communication time, for a total of 7000 bytes of communication time for all digital electronic detonators. Finally, a detonation command (4 bytes) is needed to complete the detonation of the entire detonation network system. Therefore, the entire timed detonation process consumes a total of 7004 bytes of communication time.
[0070] As can be seen from the comparison, after adopting the improved UID code dual dialing method in the aforementioned embodiment in the timing detonation procedure, the communication time of the entire detonation network system is only 7004 / 10004 of that of the conventional UID code dialing method, which can save about 30% of the communication time.
[0071] Example 5
[0072] Another embodiment of this application provides a dual dialing device for a digital electronic detonator detonation network UID code, comprising the following units:
[0073] The UID code acquisition unit is used to acquire the UID codes of all digital electronic detonators in the digital electronic detonator detonation network system.
[0074] The UID code grouping unit is used to group all UID codes.
[0075] The first UID group dialing unit is used to dial the first UID group.
[0076] The second UID group dialing unit is used to dial the second UID group.
[0077] The first dialing status confirmation unit is used to confirm the first dialing status of the digital electronic detonator.
[0078] The second dialing status confirmation unit is used to confirm the second dialing status of the digital electronic detonator.
[0079] The selected dialing status confirmation unit is used to confirm the digital electronic detonator that has entered the selected dialing status based on the first dialing status and the second dialing status, and to conduct communication.
[0080] In a preferred embodiment, the device further includes a full UID code sorting unit for optimizing the dialing order of all digital electronic detonators in order to save communication time to the greatest extent.
[0081] Another embodiment of this application provides a digital electronic detonator detonation network communication device, which includes at least the aforementioned UID code dual dialing device and performs detonation network communication.
[0082] It should be noted that the specific working process of each unit provided in the above embodiments of this application can be referred to the corresponding steps in the above method embodiments, and will not be repeated here.
[0083] Another embodiment of this application provides an electronic device, including a memory and a processor.
[0084] The memory is used to store programs.
[0085] The processor is used to execute programs, which, when executed, are specifically used to implement the digital electronic detonator detonation network UID code dual dialing method and / or communication method provided in any of the above embodiments.
[0086] Another embodiment of this application provides a computer storage medium for storing a computer program, which, when executed, is used to implement the digital electronic detonator detonation network UID code dual dialing method and / or communication method as provided in any of the above embodiments.
[0087] Computer storage media, including both permanent and non-permanent, removable and non-removable media, can store information using any method or technology. Information can be computer-readable instructions, data structures, program modules, or other data. Examples of computer storage media include, but are not limited to, phase-change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technologies, optical disc read-only memory (CD-ROM), digital versatile optical disc (DVD) or other optical storage, magnetic tape, magnetic magnetic disk storage or other magnetic storage devices, or any other non-transferable medium that can be used to store information accessible by a computing device. As defined herein, computer-readable media does not include transient computer-readable media, such as modulated data signals and carrier waves.
[0088] Those skilled in the art will further recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, computer software, or a combination of both. To clearly illustrate the interchangeability of hardware and software, the components and steps of the various examples have been generally described in terms of functionality in the foregoing description. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0089] In summary, this invention proposes a UID code dual dialing method, communication method, and corresponding device for digital electronic detonator initiation networks. By splitting the UIDs of all digital electronic detonators in the initiation network system and performing dual dialing according to the split UID groups, the first and second dialing states of each digital electronic detonator after dual dialing are sequentially confirmed. Based on the first and second dialing states, it is finally determined whether the corresponding digital electronic detonator has entered the selected dialing state. All digital electronic detonators that ultimately enter the selected dialing state can communicate one-to-one with the detonator, thereby reducing the communication time of the digital electronic detonator initiation network system and improving network communication efficiency.
[0090] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be conceived by those skilled in the art within the technical scope disclosed in the present invention without creative effort should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope defined in the claims.
Claims
1. A dual dialing method for UID codes initiation networks of digital electronic detonators, characterized in that, The method includes the following steps: The UID codes of all digital electronic detonators in the digital electronic detonator detonation network system are obtained, and all UID codes are grouped. The parts of the UID code data that have the same data are grouped into a first UID group, and the parts of the UID code data that have different data are grouped into a second UID group, thus obtaining the first UID group and the second UID group. The data corresponding to the UID codes of all digital electronic detonators is the UID code data, which includes the first group data UIDA corresponding to the first UID group and the second group data UIDB corresponding to the second UID group. The digital electronic detonators are sorted according to the first UID group. The first digital electronic detonator in a group with the same UID is dialed using the first UID data, and the first dialing status of the digital electronic detonator after dialing the first UID group is confirmed. The first dialing status includes the first dialing status that has been dialed and the first dialing status that has not been dialed. When the first UID group dialing is successful, the corresponding digital electronic detonator is in the first dialing status that has been dialed. When the first UID group dialing fails or is not performed, the corresponding digital electronic detonator is in the first dialing status that has not been dialed. For digital electronic detonators that have successfully dialed the first dialing state, the second UID data is used to dial the second UID group, and the second dialing state of the digital electronic detonator after the second UID group is dialed is confirmed; the second dialing state includes the successfully dialed second dialing state and the unsuccessfully dialed second dialing state. When the second UID group is successfully dialed, the corresponding digital electronic detonator is in the successfully dialed second dialing state. When the second UID group dialing fails or is not performed, the corresponding digital electronic detonator is in the unsuccessfully dialed second dialing state. The first and second dialing states are used to determine whether the digital electronic detonator has entered the selected dialing state. When both the first and second dialing states are in the "dial received" state, the corresponding digital electronic detonator is in the selected dialing state. If either the first or second dialing state is in the "not dialed" state, the corresponding digital electronic detonator is not in the selected dialing state. The digital electronic detonator in the selected dialing state is then used for detonation network communication.
2. A digital electronic detonator initiation network communication method, characterized in that, Communication is performed using the dual dialing method of UID code for digital electronic detonator detonation network as described in claim 1.
3. A dual dialing device for a digital electronic detonator detonation network UID code, characterized in that, The device includes the following units and is used to implement the dual dialing method for the UID code of the digital electronic detonator detonation network as described in claim 1: The UID code acquisition unit is used to acquire the UID codes of all digital electronic detonators in the digital electronic detonator detonation network system. UID code grouping unit, used to group all UID codes; The first UID group dialing unit is used to dial the first UID group; The second UID group dialing unit is used to dial the second UID group; The first dialing status confirmation unit is used to confirm the first dialing status of the digital electronic detonator. The second dialing status confirmation unit is used to confirm the second dialing status of the digital electronic detonator. The selected dialing status confirmation unit is used to confirm the digital electronic detonator that has entered the selected dialing status based on the first dialing status and the second dialing status, and to conduct communication.
4. A digital electronic detonator detonation network communication device, characterized in that: The communication device is used to implement the communication method as described in claim 2.