Tumor electric field therapy system and quality testing method for electrode pad

HK40137627APending Publication Date: 2026-09-18HANGZHOU HEALTHY LIFE INNOVATION MEDICAL TECHNOLOGY CO LTD +1
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Patent Information

Application Number
HK42026125754
Authority / Receiving Office
HK · HK
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-27
Filing Date
2026-07-06
Publication Date
2026-09-18
Estimated Expiration
2044-10-24

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Abstract

The invention provides a tumor electric field treatment system and an electrode slice quality detection method, the system comprises electrode slices, each electrode slice comprises a plurality of electrode units and a plurality of temperature detection units, the plurality of electrode units are divided into a plurality of row groups and a plurality of column groups, the grounding ends of the temperature detection units in each row group are short-circuited to the same grounding wire, and the grounding ends of the temperature detection units in each column group are short-circuited to the same grounding wire; the signal end of each temperature detection unit in each column group is in short circuit with the corresponding electrode unit and then is jointly connected to the same dual-purpose signal line. Thus, the electric field generator or the adapter can use fewer conductive traces to perform partition control on a plurality of electrode units and sampling of temperature detection signals, and can perform quality detection on the electrode slices based on the sampled temperature detection signals.
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Description

(19) State Intellectual Property Office (12) Invention Patent Application (10) Application Publication Number (43) Application Publication Date (21) Application Number 202511667376.2 (22) Application Date 2024.10.25 (66) Domestic Priority Data 202311809226.1 2023.12.26 CN PCT / CN2023 / 142515 2023.12.27 CN (62) Divisional Application Data 202411505611.1 2024.10.25 (71) Applicant Hangzhou Hailai Xinchuang Medical Technology Co., Ltd. Address 310051, Room 2601-7, Building 3, Haiwei Business Center, Xixing Street, Binjiang District, Hangzhou City, Zhejiang Province Applicant Jiangsu Hailai Xinchuang Medical Technology Co., Ltd. (72) Inventors Yu Jing, Ying Jianjun, Shen Qichao, Hui Jiajie Request Not to Disclose Name Hu Tao (51) Int.Cl. A61N 1 / 36(2006.01) G01K 13 / 00(2021.01) G01K 13 / 20(2021.01) G01N 25 / 00(2006.01) G01R 31 / 00(2006.01) A61N 1 / 04(2006.01) H01R 13 / 70(2006.01) (54) Invention Title: Tumor Electric Field Therapy System and Electrode Quality Inspection Method (57) Abstract: This application provides a tumor electric field therapy system and an electrode quality inspection method. The system includes: an electrode sheet, each electrode sheet including multiple electrode units and multiple temperature detection units. The multiple electrode units are divided into multiple row groups and multiple column groups. The grounding terminals of each temperature detection unit in each row group are short-circuited to the same grounding line. The signal terminals of each temperature detection unit in each column group are short-circuited to the corresponding electrode unit and then connected to the same dual-purpose signal line. Thus, the electric field generator or adapter can use fewer conductive traces to control multiple electrode units in zones and sample temperature detection signals, and the quality of the electrode sheet can be inspected based on the sampled temperature detection signals. Claims 2 pages, Description 27 pages, Drawings 13 pages, CN 121265985 A 2026.01.06 CN 1 21 26 59 85 A 1. A tumor electric field therapy system, characterized in that it comprises: an electrode sheet, the electrode sheet including multiple electrode units and multiple temperature detection units, each electrode unit being capable of applying an alternating electrical signal, each temperature detection unit being respectively configured corresponding to one of the electrode units for detecting the temperature at each of the electrode units, the signal terminals of each temperature detection unit being short-circuited to the corresponding electrode unit, wherein the multiple temperature detection units are configured in the circuit as multiple row groups and multiple column groups, and each temperature detection unit located in the same row group...The grounding terminals of the temperature detection units are short-circuited to the same grounding line. The grounding terminals of the temperature detection units located in different rows are connected in parallel through different grounding lines. The signal terminals of the temperature detection units located in the same column are short-circuited to the same dual-purpose signal line. The signal terminals of the temperature detection units located in different columns are connected in parallel through different dual-purpose signal lines. An adapter or electric field generator electrically connected to the electrode plates is configured to switch each dual-purpose signal line to either a temperature sampling point or an alternating power supply line, so that... (1) When each of the dual-purpose signal lines is connected to the temperature sampling point, a) each of the grounding lines is sequentially and individually turned on so that the analog temperature signal detected by each of the temperature detection units is sampled based on the temperature sampling point; b) the test code array of the electrode is determined based on the sampled analog temperature signal detected by each of the temperature detection units; c) the test code array is compared with the standard code array for consistency; (2) When the dual-purpose signal line is connected to the alternating power line, the corresponding electrode unit is applied with the alternating electrical signal based on the alternating power line. 2. The tumor electric field therapy system according to claim 1, wherein each of the grounding lines of the electrode is connected in series with a corresponding control switch and grounded through the corresponding control switch; each of the dual-purpose signal lines of the electrode is connected in series with a corresponding bidirectional switching switch, the first end of each bidirectional switching switch is connected to a temperature sampling point of the corresponding column, and the second end of each bidirectional switching switch is connected to the alternating power line. 3. The tumor electric field therapy system according to claim 2, characterized in that the adapter or the electric field generator is provided with an ADC unit, the ADC unit is provided with multiple detection channels, and the first end of each of the bidirectional switching switches is electrically connected to a corresponding detection channel through a corresponding temperature sampling point. 4. The tumor electric field therapy system according to claim 2, characterized in that the adapter or the electric field generator is provided with a controller, the controller controlling the on / off state of each of the control switches and the on / off state of each bidirectional switching switch. 5. The tumor electric field therapy system according to claim 2, characterized in that the number of control switches is the same as the number of grounding wires, and the number of bidirectional switching switches is the same as the number of dual-purpose signal lines. 6. The tumor electric field therapy system according to claim 2, characterized in that the number of control switches is greater than the number of grounding wires, and / or the number of bidirectional switching switches is greater than the number of dual-purpose signal lines; wherein, a control switch not connected to a grounding wire is in a floating state, and / or a bidirectional switching switch not connected to a dual-purpose signal line is in a floating state.7. The tumor electric field therapy system according to claim 2, characterized in that the simulated temperature signal detected by each of the sampled temperature detection units is characterized by a voltage value, the voltage value corresponding to a different code according to its voltage range, the test code array including at least one of a first code, a second code, and a third code, wherein the first code is used to indicate that the temperature detection unit is in a normal state, the second code is used to indicate that the temperature detection unit is in an open circuit state or an unset state, and the third code is used to indicate that the temperature detection unit is in a short circuit state. 8. The tumor electric field therapy system according to claim 7, characterized in that the standard code array includes at least the first code among the first code and the second code. Claims 1 / 2 page 2 CN 121265985 A 9. The tumor electric field therapy system according to claim 8, characterized in that the standard code array is pre-stored in the adapter or the electric field generator; or obtained by the adapter or the electric field generator by detecting qualified electrode plates. 10. The tumor electric field therapy system according to any one of claims 1-9, characterized in that the adapter or the electric field generator is configured to determine at least one of the following by comparing the test code array with the standard code array: (1) whether the electrode sheet is qualified or whether the electrode sheet is damaged; (2) whether the electrode sheet has a faulty temperature detection unit; (3) the number of faulty temperature detection units on the electrode sheet; (4) whether the electrode sheet needs to be replaced. 11. An electrode sheet quality inspection method, characterized in that it is applied to the tumor electric field therapy system according to any one of claims 1-10, the method comprising: determining the temperature detection signal of each electrode unit of the electrode sheet; determining the test code array of the electrode sheet according to the temperature detection signal; and comparing the test code array with the standard code array to perform quality inspection on the electrode sheet. 12. The method according to claim 11, characterized in that the adapter or the electric field generator is configured to perform quality inspection on the electrode sheet to identify whether a faulty temperature detection unit exists in the electrode sheet during use of the electrode sheet. 13. The method according to claim 12, wherein when a faulty temperature detection unit exists in the electrode sheet, the method further comprises: determining the number of faulty temperature detection units in the electrode sheet; and determining whether the electrode sheet needs to be replaced based on the number of faulty temperature detection units. 14. The method according to claim 13, wherein the adapter or the electric field generator is further configured to perform quality inspection on the electrode sheet to determine whether the electrode sheet is qualified during the electrode sheet production process.The method further includes displaying a standard code array, a test code array for the electrode pad, and whether the electrode pad is qualified. 15. The method according to claim 13, wherein the adapter or the electric field generator is further configured to perform quality inspection on the electrode pad to determine whether the electrode pad is damaged during use. Claims 2 / 2 Page 3 CN 121265985 A Tumor electric field therapy system and electrode pad quality inspection method

[0001] This invention is a divisional application of the invention patent application filed by the applicant on October 25, 2024, with application number 202411505611.1 and invention title "Tumor electric field therapy system, tumor treatment device and electrode pad quality inspection method". Technical Field

[0002] This application relates to tumor electric field therapy technology, and more particularly to a tumor electric field therapy system and electrode pad quality inspection method. Background Art

[0003] Currently, tumor electric field therapy systems mainly include an electric field generator, an adapter electrically connected to the electric field generator, and multiple pairs of electrode pads electrically connected to the electric field generator via the adapter. The electric field generator transmits alternating electric signals for tumor electric field therapy to each electrode pad through the adapter, and then applies an alternating electric field to the tumor site of the patient through the electrode pads for tumor electric field therapy. Since the alternating electric field applied to the patient will accumulate heat at the corresponding position where the electrode pad is attached to the skin, in order to avoid low-temperature burns to the skin, a temperature sensor needs to be configured at each electrode unit to monitor the skin surface temperature at each electrode unit. However, in the process of using electrode pads for tumor treatment, there is an inevitable problem that a very small number of electrode pads will malfunction after a period of use. If too many temperature sensors on the electrode pads fail, it will easily cause the risk of low-temperature burns to the patient. Summary of the Invention

[0004] This application aims to at least partially solve one of the technical problems in the related art. Therefore, the first objective of this application is to propose a tumor electric field therapy system that can achieve zoned control of multiple electrode units and sampling of temperature detection signals using fewer conductive traces. This not only improves the efficacy of tumor electric field therapy but also facilitates electrode application. Furthermore, during electrode use, the sampled temperature detection signals can monitor for electrode damage, allowing for timely replacement and minimizing the risk of low-temperature burns to patients. During electrode production, the sampled temperature detection signals can monitor the proper connection of each temperature detection unit, determining the electrode's quality and allowing for the removal of substandard electrodes, thus ensuring that each temperature detection unit of the manufactured electrode can perform normal detection. Additionally, the adapter in this embodiment can adapt to electrode sheets with different numbers of electrode units.

[0005] To achieve the above objectives, a first aspect of this application provides a tumor electric field therapy system, comprising: an electrode sheet, the electrode sheet including a plurality of electrode units and a plurality of temperature detection units, each electrode unit being capable of receiving an alternating electrical signal, each temperature detection unit being configured corresponding to one of the electrode units for detecting the temperature at each electrode unit, the signal terminal of each temperature detection unit being short-circuited to the corresponding electrode unit, wherein the plurality of temperature detection units are configured in a circuit as a plurality of row groups and a plurality of column groups, and the ground terminal of each temperature detection unit located in the same row group is short-circuited to... The grounding terminals of the temperature detection units located in different rows are connected in parallel through different grounding lines. The signal terminals of the temperature detection units located in the same column are shorted to the same dual-purpose signal line. The signal terminals of the temperature detection units located in different columns are connected in parallel through different dual-purpose signal lines. An adapter or electric field generator electrically connected to the electrode sheet is configured to: switch each dual-purpose signal line to a temperature sampling point or an alternating power supply line so that (1) in each of the two... (Instruction manual 1 / 27) Page 4 CN 121265985 A When the signal line is connected to the temperature sampling point, a) each of the grounding lines is sequentially and individually turned on so that the analog temperature signal detected by each of the temperature detection units is sampled based on the temperature sampling point; b) the test code array of the electrode sheet is determined based on the sampled analog temperature signal detected by each of the temperature detection units; c) the test code array is compared with the standard code array for consistency; (2) when the two signal lines are connected to the alternating power line, the corresponding electrode unit is applied with the alternating power line based on the alternating power line.

[0006] The second objective of this application is to provide an electrode sheet quality detection method.

[0007] To achieve the above objective, a third aspect of this application provides an electrode sheet quality detection method, applied to the aforementioned tumor electric field therapy system, the method comprising: determining the temperature detection signal of each electrode unit in the electrode sheet; determining the test code array of the electrode sheet according to the temperature detection signal; and comparing the test code array with the standard code array for consistency to perform quality detection on the electrode sheet.

[0008] The above description is merely an overview of the technical solution of this application. In order to better understand the technical means of this application and to implement it according to the contents of the specification, and to make the above and other objects, features and advantages of this application more apparent and understandable, specific embodiments of this application are described below. Brief Description of the Drawings

[0009] Figure 1 is a schematic diagram of a tumor electric field therapy system according to the first embodiment of this application;

[0010] Figure 2 is a schematic diagram of the circuit connection between an electrode plate and an adapter in the tumor electric field therapy system shown in Figure 1;

[0011] Figure 3 is a schematic block diagram of the internal structure of the adapter of the tumor electric field therapy system shown in Figure 1;

[0012] Figure 4 is a schematic block diagram of the internal structure of the electric field generator of the tumor electric field therapy system shown in Figure 1;

[0013] Figure 5 is a schematic diagram of temperature detection of the temperature detection unit;

[0014] Figure 6 is a schematic diagram of the tumor electric field therapy system of the second embodiment of this application;

[0015] Figure 7 is a schematic diagram of the tumor electric field therapy system of the third embodiment of this application;

[0016] Figure 8 is a schematic diagram of the circuit connection between an electrode plate and the adapter of the tumor electric field therapy system shown in Figure 7;

[0017] Figure 9 is a schematic diagram of the circuit connection between an electrode plate and the adapter of the tumor electric field therapy system of the fourth embodiment of this application;

[0018] Figure 10 is a schematic diagram of the tumor electric field therapy system of the fifth embodiment of this application;

[0019] Figure 11 is a schematic diagram of the tumor electric field therapy system of the sixth embodiment of this application;

[0020] Figure 12 is a schematic diagram of the tumor electric field therapy system of the seventh embodiment of this application;

[0021] Figure 13 is a schematic diagram of the circuit connection between an electrode sheet and an adapter in the tumor electric field therapy system shown in Figure 12;

[0022] Figure 14 is a schematic diagram of the circuit connection between an electrode sheet and an adapter in the tumor electric field therapy system according to the eighth embodiment of this application;

[0023] Figure 15 is a schematic flowchart of an electrode sheet quality detection method according to an embodiment of this application;

[0024] Explanation of reference numerals:

[0025] Tumor electric field therapy system 100, 300, 400, 600, 700, 800; Electrode sheet 110, 310, 410, 510, 610, 710, 810, 910; Substrate 111, 411, 511, 811, 911; Electrode unit 112, 312, 412, 512, 612, 712, 812, 912, Perforations 1121, 4121, 5121, 8121, 9121; temperature detection units 113, 413, 513, 813, 913; signal terminals 113B, 413B, 513B, 813B, 913B; ground terminals 113A, 413A, 513A, 813A, 913A; temperature sensors 114, 414, 514, 814, 914; signal terminals 114B, 414B, 514B, 814B, 914B; ground terminals 114A, 414A, 514A, 814A, 914A; diode 115. 415, 515, 815, 915; Anode 115B, 415B, 515B, 815B, 915B; Cathode 115A, 415A, 515A, 815A, 915A; Instruction manual, page 2 / 27, 5 CN 121265985 ACables are 116, 316, 416, 616, 716, and 816; grounding wires are 118, 418, 518, 818, and 918; first grounding wires are 118-1, 418-1, 5781-1, 818-1, and 918-1; second grounding wires are 118-2, 418-2, 581-2, 818-2, and 918-2; third grounding wire is 118-3. 418-3, 581-3, 918-3; Fourth grounding wire 118-4, 518-4; Dual-purpose signal wires 119, 419, 519, 819, 919; First dual-purpose signal wires 119-1, 419-1, 519-1, 819-1, 919-1; Second dual-purpose signal wires 119-2, 419-2, 519-2, 819-2, 919-2; Third dual-purpose signal wires 119-3, 419-3, 519-3, 819-3, 919-3; Fourth dual-purpose signal wires 119-4, 419-4, 519-4, 819-4; Fifth dual-purpose signal wires 119-5, 419-5, 819-5; Adapters 120, 320, 420, 520, 620, 720. 820, 920; First controllers 121, 421, 521, 821, 921; ADC units 122, 422, 522, 822, 922; Voltage divider resistors 123, 423, 523, 823, 923; Control switches 124, 424, 524, 824, 924; First control switches 124-1, 424-1, 524-1, 824-1, 924-1; Second control switches 124-2, 424-2, 524-2, 824-2, 924-2; Third control switches 124-3, 424-... 3, 524-3, 824-3, 924-3; fourth control switch 124-4, 424-4, 524-4, 824-4, 924-4; fifth control switch 224-5; bidirectional switching switches 125, 425, 525, 825, 925; first bidirectional switching switches 125-1, 425-1, 525-1, 825-1, 925-1; second bidirectional switching switches 125-2, 425-2, 525-2, 825-2, 925-2; third bidirectional switching switch 125-3. 425-3, 525-3, 825-3, 925-3; fourth bidirectional switch 125-4, 425-4, 525-4, 825-4, 925-4; fifth bidirectional switch 125-5, 425-5, 525-5, 825-5, 925-5; second communication unit 126, 426, 526, 826, 926; alternating power lines 127, 427, 527, 827, 927; first power module 128, 428, 528, 828, 928; second cable 129, 329.429, 629, 729, 829; electric field generators 130, 330, 430, 630, 730, 830; second controller 131; AC signal generator 132; power supply switch 133; first power supply switch 133-1; second power supply switch 133-2; third power supply switch 133-3; fourth power supply switch 133-4; AC power cord 134; first AC power cord 134-1; second AC power cord 134-2; third AC power cord 134-3; fourth AC power cord 134-4; second communication unit 135; second power module 136; first connectors 140, 340, 440, 540, 640, 740, 840, 940; first plugs 141, 341, 441, 641, 741, 841; first socket 142. 342, 442, 642, 742, 842, second connectors 150, 350, 450, 650, 750, 850, second plugs 151, 351, 451, 651, 751, 851, second sockets 152, 352, 452, 652, 752, 852. Detailed Description of Embodiments

[0026] The embodiments of the technical solutions of this application will be described in detail below with reference to the accompanying drawings. The following embodiments are only used to more clearly illustrate the technical solutions of this application, and are therefore only examples, and cannot be used to limit the scope of protection of this application.

[0027] Some embodiments:

[0028] FIG1 is a schematic diagram of a tumor electric field therapy system 100 according to the first embodiment of this application. As shown in FIG1, the tumor electric field therapy system 100 includes: at least one pair of electrode plates 110, an adapter 120 connected to at least one pair of electrode plates 110, and an electric field generator 130 connected to the adapter 120. At least one pair of electrode pads 110 can be disposed in pairs on the patient's body surface, as shown in Figure 1 with four electrode pads 110, each pair of electrode pads 110 disposed on the patient's body surface. An electric field generator 130 is used to supply power to the at least one pair of electrode pads 110, thereby generating an alternating electric field for tumor treatment between the at least one pair of electrode pads 110. An adapter 120 is electrically connected between the at least one pair of electrode pads 110 and the electric field generator 130, for transmitting the alternating electrical signal generated by the electric field generator 130 to the at least one pair of electrode pads 110. That is, the electric field generator 130 can generate an alternating electrical signal, which is transmitted to each electrode pad 110 through the adapter 120, thereby generating an alternating electric field for tumor treatment between the same pair of electrode pads 110, applying the alternating electric field to the patient's tumor site for tumor treatment.

[0029] As shown in FIG1, in this embodiment, there are four electrode plates 110, and each electrode plate 110 includes the same number of electrode units 112. Each electrode unit 112 is electrically connected to the adapter 120. The instruction manual for each electrode plate 110 is on page 3 / 27 of page 6CN.121265985 A The number of electrode units 112 is 20. In some embodiments, the tumor electric field therapy system 100 may have more or fewer electrode pads 110; in some embodiments, each pair of electrode pads 110 has the same number of electrode units 112, and different pairs of electrode pads 110 may have different numbers of electrode units 112; in some embodiments, the number of electrode units 112 on each electrode pad 110 may be 9, 13, 19, etc.

[0030] Figure 2 is a schematic diagram of the circuit connection between an electrode pad 110 and the adapter 120 of the tumor electric field therapy system 100 shown in Figure 1. It is worth noting that the arrangement of electrode units 112 shown in Figure 2 is to more clearly show the electrical connection between an electrode pad 110 and the adapter 120, and the arrangement of electrode units 112 shown in Figure 2 does not represent the spatial arrangement of electrode units 112. Referring to Figures 1 and 2, the electrode sheet 110 includes: a substrate 111, a plurality of electrode units 112 electrically connected to the substrate 111 at intervals, a plurality of temperature detection units 113, and a first cable 116 electrically connected to the substrate 111. The substrate 111 may be a flexible circuit board. The substrate 111 is embedded with multiple conductive traces, including multiple ground lines 118 and multiple dual-purpose signal lines 119. The first cable 116 has nine core wires (not shown), each of which is electrically connected to the multiple ground lines 118 and the multiple dual-purpose signal lines 119 of the substrate 111 respectively. In this embodiment, the total number of ground lines 118 and dual-purpose signal lines 119 embedded in the substrate 111 does not exceed nine, so the number of wires in the first cable 116 does not exceed nine.

[0031] The plurality of electrode units 112 are configured into multiple row groups and multiple column groups. In this embodiment, each electrode sheet 110 has 20 electrode units 112. These 20 electrode units 112 are grouped in a sequence from 1 to 20 in the circuit connection, forming four row groups and five column groups. Each electrode unit 112 corresponds to a temperature detection unit 113, and each temperature detection unit 113 has a signal terminal 113B and a ground terminal 113A. Both the electrode units 112 and the temperature detection units 113 are soldered onto the substrate 111, and the signal terminal 113B of the electrode unit 112 is shorted to the corresponding temperature detection unit 113. Since multiple temperature detection units 113 are configured in a one-to-one correspondence with multiple electrode units 112, the multiple temperature detection units 113 are also arranged in a four-row, five-column group in the circuit connection. It should be noted that the arrangement shown here is to more clearly illustrate the electrical connection between the electrode plate 110 and the adapter 120, and does not represent the spatial arrangement of the electrode unit 112. Its spatial structure may be a roughly array-like structure as shown in Figure 1.Other structures are also possible, such as petal-shaped or scattering-shaped, and can be regular or irregular. Electrode unit 112 is configured to apply an alternating electrical signal to the patient's tumor site. Temperature detection unit 113 is configured to detect the temperature of the patient's body surface in contact with electrode pad 110, i.e., the temperature at the corresponding electrode unit 112, and output a temperature detection signal to an external device such as adapter 120. In this embodiment, the multi-purpose signal lines 119 of substrate 111 are respectively arranged in a one-to-one correspondence with multiple columns of electrode units 112, and are configured to transmit the alternating electrical signal generated by electric field generator 130 to each electrode unit 112 in the corresponding column. That is, electrode units 112 located in the same column are all short-circuited through the same multi-purpose signal line 119 of substrate 111, and electrode units 112 located in different columns are connected in parallel through different multi-purpose signal lines 119 of substrate 111. The dual-purpose signal line 119 of the substrate 111 is electrically connected to the first cable 116, and then electrically connected to the electric field generator 130 via the adapter 120. Further, the dual-purpose signal line 119 of the substrate 111 receives the alternating electrical signal generated by the electric field generator 130 through the first cable 116 and the adapter 120.

[0032] Multiple grounding lines 118 are respectively configured to correspond one-to-one with multiple rows of the electrode unit 112. The multiple grounding lines 118 are used to sequentially short-circuit and ground each temperature detection unit 113 corresponding to each row group. That is, the grounding terminals 113A of multiple temperature detection units 113 located in the same row group are all short-circuited through the same grounding line 118 of the substrate 111, and the grounding terminals 113A of temperature detection units 113 located in different row groups are connected in parallel through different grounding lines 118 of the substrate 111. During the temperature detection period, only one of the multiple grounding lines 118 is conducting at any given time, while the rest are disconnected.

[0033] Each of the multiplexed dual-purpose signal lines 119 is also configured to short-connect the signal terminal 113B of at most one temperature detection unit 113 in each row group to an external device for receiving detection signals, wherein the signal terminal 113B of the temperature detection unit 113 connected to each of the multiplexed dual-purpose signal lines 119 is different from each other, so as to avoid the subsequent output of duplicate signals by the dual-purpose signal lines 119. That is, when the number of electrode units 112 in a row group is the same as the number of dual-purpose signal lines 119, each dual-purpose signal line 119 is electrically connected to the signal terminal 113B of a different temperature detection unit 113 in that row group; when the number of electrode units 112 in a row group is less than the number of dual-purpose signal lines 119, at least one dual-purpose signal line 119 is not electrically connected to the signal terminal 113B of the temperature detection unit 113, and the remaining dual-purpose signal lines 119 are electrically connected to the signal terminal 113B of the temperature detection unit 113 in that row group.Each temperature detection unit 113 has a different signal terminal 113B. In this embodiment, the external device for receiving the detection signal is an adapter 120. The signal terminals 113B of the multiple temperature detection units 113 located in different columns are connected in parallel through different dual-purpose signal lines 119 of the substrate 111. The signal terminals 113B of the multiple temperature detection units 113 located in the same column are all short-circuited to the same dual-purpose signal line 119 of the substrate 111.

[0034] In this embodiment, when each electrode unit 112 is equipped with a temperature detection unit 113 for temperature detection, the above-mentioned circuit design reduces the number of wires in the first cable 116, avoiding the cable from becoming thicker and harder, thus increasing the difficulty of cable fixation; at the same time, it avoids the increased number of wires in the first cable 116 affecting the adhesion effect between the electrode sheet 110 and the corresponding body surface of the patient's tumor site. The grounding wire 118 and the dual-purpose signal line 119 embedded in the substrate 111 have a total of 9 lines. Specifically, in this embodiment, the grounding wires 118 embedded in the substrate 111 are 4-wire lines, and the dual-purpose signal lines 119 are 5-wire lines. The number of grounding wires 118 is related to the number of rows M of the electrode units 112, which is greater than or equal to the number of rows of the electrode units 112, where M is a positive integer. The number of dual-purpose signal lines 119 is related to the number of columns N of the electrode units 112, which is greater than or equal to the number of columns of the electrode units 112, where N is a positive integer. The number of lines L embedded in the substrate 111 of the electrode sheet 110 is equal to the sum of the number of grounding wires 118 and the number of dual-purpose signal lines 119. In this embodiment, the number of grounding wires 118 is equal to the number of rows M of the electrode units 112; the number of dual-purpose signal lines 119 is equal to the number of columns N of the electrode units 112.

[0035] In terms of spatial structure, multiple electrode units 112 are arranged at intervals on the substrate 111 in a roughly two-dimensional array. As shown in Figure 1, the electrode sheet 110 in this embodiment includes 20 electrode units 112 and 20 temperature detection units 113 corresponding to the electrode units 112. The 20 electrode units 112 are arranged in a four-row, six-column array. Each of the first and fourth rows has four electrode units 112, and each of the second and third rows has six electrode units 112. The four electrode units 112 in each of the first and fourth rows are located in the second to fifth columns, respectively, and the six electrode units 112 in each of the second and third rows are located in the first to sixth columns, respectively.

[0036] As shown in Figure 1, in terms of spatial structure, multiple electrode units 112 are connected in an asymmetrical connection manner. For example, adjacent electrode units 112 in the four electrode units 112 located in the third column of the first row, the third column of the second row, the third column of the third row, and the third column of the fourth row are connected by a column-oriented connecting strip (unlabeled). At the same time, the electrode units 112 located in the fifth column of the first row, the third column of the second row, the third column of the third row, and the third column of the fourth row are connected by a column-oriented connecting strip (unlabeled).In the four electrode units 112 of the second row, fifth column, third row, fifth column, and fourth row, adjacent electrode units 112 are also connected by a column-oriented connecting strip (unlabeled). Each electrode sheet 110 has a free end. For example, at least one electrode unit 112 is connected to at most one other electrode unit 112. For instance, the electrode units 112 located in the first row, second column, second row, second column, third row, first column, third row, and fourth row, second column have no connecting strips in their column direction, thus forming an open space. This open space is adjustable; for example, the position of the electrode unit 112 in the first row, second column can be moved relative to the position of the electrode unit 112 in the first row, third column. The positions of the electrode units 112 in the second row and first column are movable relative to those in the second row and second column, the positions of the electrode units 112 in the third row and first column are movable relative to those in the third row and second column, and the positions of the electrode units 112 in the fourth row and second column are movable relative to those in the fourth row and third column. Therefore, when the electrode pad 110 is applied to the patient's skin, the open space between the corresponding electrode units 112 can be adjusted by changing the positions of the electrode units 112 in the first row and second column, the second row and first column, the third row and first column, and the fourth row and second column. This increases the heat dissipation space of the corresponding electrode units 112, thereby accelerating heat dissipation. It also allows the patient to adjust the position of the electrode units 112 based on the fever level or the skin condition of the area where the electrode pad 110 is applied. Similarly, the electrode units 112 located in the first row, fourth column, second row, fourth column, second row, sixth column, third row, and fourth row, fourth column, also have no connecting strips in the column direction, thus forming an open space. This open space is adjustable; for example, the position of the electrode unit 112 in the first row, fourth column, relative to the position of the electrode unit 112 in the first row, fifth column, the second row, fourth column, and second row, sixth column, relative to the position of the electrode unit 112 in the second row, fifth column, and so on, can be adjusted. The positions are movable, so that when the electrode pad 110 is applied to the patient's skin, the open space between the corresponding electrode units 112 can be adjusted by adjusting the positions of the electrode units 112 in the first row, fourth column, second row, fourth column, second row, sixth column, third row, sixth column, and fourth row, fourth column. This increases the heat dissipation space of the corresponding electrode units 112, thereby accelerating heat dissipation. At the same time, it is beneficial for the patient to adjust the position of the electrode units 112 based on the fever or the skin condition of the area where the electrode pad 110 is applied.

[0037] As shown in Figure 1, in terms of spatial structure, the four electrode units 112 located in the first row can be divided into region 1; the four electrode units 112 located in the first column of the second row, the first column of the third row, the second column of the fourth row, and the third column of the fourth row can be divided into region 2; the four electrode units 112 located in the sixth column of the second row, the sixth column of the third row, the fourth column of the fourth row, and the fifth column of the fourth row can be divided into region 3; the four electrode units 112 located in the second column of the second row, the third column of the second row, the second column of the third row, the second column of the third row, and the third column of the third row can be divided into region 4; and the four electrode units 112 located in the fourth column of the second row, the fifth column of the second row, the fourth column of the third row, and the fifth column of the third row can be divided into region 5. Each region (1-5) of electrode units 112 corresponds to a column group in the circuit connection shown in Figure 2, and the corresponding 20 electrode units 112 are arranged in a four-row, five-column group arrangement in the circuit connection. In other embodiments, the 20 electrode units 112 can also be arranged in other ways. Of course, in other embodiments, the electrode sheet 110 may also have other numbers of electrode units 112. In short, the implementation of this application is not limited by the number and arrangement of the electrode units 112 of the electrode sheet 110.

[0038] Each electrode unit 112 can be applied with an alternating electrical signal, and the paired electrode sheets 110 are used to apply an alternating electric field to the tumor site of the patient. Optionally, the electrode unit 112 is a dielectric element, such as a ceramic sheet, or it can be a polymer dielectric layer made of polymer material. Each temperature detection unit 113 is provided corresponding to one electrode unit 112 to detect the temperature at the corresponding electrode unit 112. Each temperature detection unit 113 can be provided at any position of the corresponding electrode unit 112. In this embodiment, each electrode unit 112 is provided with a through hole 1121, which is suitable for installing the temperature detection unit 113. For example, each electrode unit 112 has a through hole 1121 in the middle, and each electrode unit 112 has a corresponding temperature detection unit 113 housed in the through hole 1121. Each temperature detection unit 113 includes a temperature sensor 114 and a diode 115. The temperature sensor 114 has a signal terminal 114B and a ground terminal 114A. The diode 115 has an anode 115B and a cathode 115A. The anode 115B of the diode 115 is connected to the ground terminal 114A of the temperature sensor 114, and the cathode 115A of the diode 115 serves as the ground terminal 113A of the temperature detection unit 113. The signal terminal 114B of the temperature sensor 114 serves as the signal terminal 113B of the temperature detection unit 113. The temperature sensor 114 can be a thermistor or other temperature sensor. Each temperature sensor 114 is correspondingly provided with a diode 115, and the diode 115 is connected in series with the temperature sensor 114 of the corresponding electrode unit 112.It can prevent the reverse flow of current to prevent the detection signal from other electrode units 112 from affecting the temperature sensor 114.

[0039] As shown in FIG2, the electrode sheet 110 of this embodiment includes four grounding wires 118, each grounding wire 118 being used to ground the grounding terminal 113A of the temperature detection unit 113 in the same row group. The four grounding wires 118 of the electrode sheet 110 are the first grounding wire 118-1, the second grounding wire 118-2, the third grounding wire 118-3, and the fourth grounding wire 118-4. In the four-line specification of electrode sheet 110, page 6 / 27, group 9 CN 121265985, the first line group includes electrode units 112-1 to 112-5, the second line group includes electrode units 112-6 to 112-10, the third line group includes electrode units 112-11 to 112-15, and the fourth line group includes electrode units 112-16 to 112-20. Specifically, the first grounding wire 118-1 is used to ground electrode units 112-1 to 112-5 in the first row group; the second grounding wire 118-2 is used to ground electrode units 112-6 to 112-10 in the second row group; the third grounding wire 118-3 is used to ground electrode units 112-11 to 112-15 in the third row group; and the fourth grounding wire 118-4 is used to ground electrode units 112-16 to 112-20 in the fourth row group. It should be noted that these grounding wires 118 can be selectively closed or opened. This can be achieved by connecting each grounding wire 118 in series with a control switch 124. That is, the grounding terminals 113A of the temperature detection units 113 corresponding to each electrode unit 112 in each row group are connected to the grounding pin through a single control switch 124, which will be described in detail below. The above-mentioned "grounding the electrode unit 112" can refer to grounding the grounding terminal 114A of the temperature sensor 114 corresponding to each electrode unit 112, or it can refer to the diode 115 being connected in series with the temperature sensor 114 corresponding to the same electrode unit 112 and grounded together. In short, each grounding wire 118 short-circuits and grounds the grounding terminal 113A of the temperature detection unit 113 corresponding to all electrode units 112 in each row group.

[0040] As shown in FIG2, the electrode sheet 110 of this embodiment also includes 5 dual-purpose signal lines 119. One end of each dual-purpose signal line 119 is connected to all electrode units 112 in each column group, and the other end is connected to the adapter 120 for receiving temperature detection signals and transmitting alternating electrical signals. That is, for each row group, each dual-purpose signal line 119 can be selectively connected to one of the electrode units 112 or not connected to any electrode unit 112 in the row group to avoid dual-purpose signals.Line 119 subsequently outputs a repeating signal. Specifically, the five dual-purpose signal lines 119 of the electrode sheet 110 include a first dual-purpose signal line 119-1, a second dual-purpose signal line 119-2, a third dual-purpose signal line 119-3, a fourth dual-purpose signal line 119-4, and a fifth dual-purpose signal line 119-5. One end of the first dual-purpose signal line 119-1 is simultaneously connected to the signal terminal 113B of four electrode units 112 (electrode units 112-1, 112-6, 112-11, and 112-16) and their respective temperature detection units 113; one end of the second dual-purpose signal line 119-2 is simultaneously connected to the signal terminal 113B of four electrode units 112 (electrode units 112-2, 112-7, 112-12, and 112-17) and their respective temperature detection units 113; one end of the third dual-purpose signal line 119-3 is simultaneously connected to electrode units 112-3, 112-8, and 112-16. -13, Electrode units 112-18: four electrode units 112 and their corresponding temperature detection units 113, signal terminals 113B; One end of the fourth dual-purpose signal line 119-4 is simultaneously connected to the signal terminals 113B of the four electrode units 112 (112-4, 112-9, 112-14, 112-19, and their corresponding temperature detection units 113); One end of the fifth dual-purpose signal line 119-5 is connected to the signal terminals 113B of the four electrode units 112 (112-5, 112-10, 112-15, 112-20, and their corresponding temperature detection units 113). In short, each dual-purpose signal line 119 short-circuits the signal terminals 113B of each electrode unit 112 and its corresponding temperature detection unit 113 in parallel within the same column group as temperature sampling points (unlabeled) for connection to external devices. It should be noted that these dual-purpose signal lines 119 can selectively transmit alternating electrical signals or receive temperature detection signals. This can be achieved by connecting each dual-purpose signal line 119 in series with a bidirectional switching switch 125 and coordinating the closing or opening of the grounding wire 118. In other words, after the signal terminal 113B of each temperature detection unit 113 in each row group is shorted to the corresponding electrode unit 112, they are connected together to a switching unit (unlabeled) via a single dual-purpose signal line 119. This switching unit (unlabeled) includes multiple bidirectional switching switches 125, configured to switch the dual-purpose signal line 119 to either a temperature sampling point (unlabeled) or an alternating power line 127. This allows the switching state of the control switch 124 to adjust the temperature detection of the corresponding temperature detection unit 113 in each row group when the dual-purpose signal line 119 is connected to the temperature sampling point (unlabeled).The signal is sampled based on temperature sampling points (unlabeled), and in the case where the dual-purpose signal line 119 is connected to the alternating power line 127, at least one column of electrode units 112 is subjected to an alternating electrical signal based on the alternating power line 127. The analog temperature signal detected by each sampled temperature detection unit 113 is used to determine the test code array of the corresponding electrode piece 110. By comparing the test code array with the standard code array, the fault condition of each temperature detection unit 113 in the corresponding electrode piece 110 is identified, or the corresponding electrode piece 110 is determined to be qualified. This will be described in detail below.

[0041] The multiple grounding line 118 and the multiple dual-purpose signal line 119 are both conductive traces embedded in the substrate 111. The substrate 111 is electrically connected to the first cable 116. The multiple grounding wires 118 and multiple dual-purpose signal lines 119 embedded in the substrate 111 are electrically connected to the corresponding wires (not shown) in the first cable 116.

[0042] The tumor electric field therapy system 100 of this embodiment includes at least one pair of the above-mentioned electrode plates 110, an adapter 120 electrically connected to the electrode plates 110, and an electric field generator 130 electrically connected to the adapter 120. The adapter 120 is connected between the electrode plates 110 and the electric field generator 130. The electric field generator 130 provides alternating electrical signals to the multiple electrode units 112 of the electrode plates 110 via the adapter 120 and the dual-purpose signal lines 119 of the electrode plates 110, or is used to receive temperature detection signals output by the temperature detection units 113 corresponding to the multiple electrode units 112. The adapter 120 transmits the alternating electrical signal generated by the electric field generator 130 to the dual-purpose signal line 119 of the electrode plate 110, and is also configured to receive the temperature detection signal output by the multiple dual-purpose signal line 119 of the electrode plate 110.

[0043] Referring to Figures 2 and 3, the adapter 120 includes: a first controller 121, multiple ADC units 122 connected to the first controller 121, multiple voltage-reducing resistors 123 and multiple control switches 124 corresponding to the multiple ADC units 122, multiple bidirectional switching switches 125 corresponding to the multiple ADC units 122, a first communication unit 126, an alternating power supply line 127 corresponding to each bidirectional switching switch 125, and a first power module 128 connected to the first communication unit 126, the first controller 121, and the multiple ADC units 122. The first power module 128 provides DC power VCC to each electronic component of the adapter 120. The adapter 120 also includes multiple circuit lines (unlabeled), which are respectively connected to the multiple ground lines 118 and multiple two-way ground lines 118 in the substrate 111 of the corresponding electrode plate 110 via the first cable 116 of the corresponding electrode plate 110.The signal lines 119 are electrically connected one-to-one. The multiple circuit lines (unlabeled) include an alternating power supply line 127 that transmits alternating electrical signals to the corresponding electrode 110 and is electrically connected to the multiple dual-purpose signal lines 119 in the substrate 111 of the corresponding electrode 110; multiple circuit lines (unlabeled) that are electrically connected one-to-one to the multiple dual-purpose signal lines 119 in the substrate 111 of the corresponding electrode 110 and are used to power each temperature detection unit 113 of the electrode 110 or transmit the temperature detection signal of the electrode 110; and multiple circuit lines (unlabeled) that are electrically connected one-to-one to the multiple ground lines 118 in the substrate 111 of the corresponding electrode 110. The number L of circuit lines electrically connecting the adapter 120 to one electrode piece 110 is greater than or equal to the sum of the number of rows and columns of the electrode units 112 of the electrode piece 110; the number H of circuit lines electrically connecting the adapter 120 to X electrode pieces 110 is greater than or equal to X times the number of circuit lines electrically connecting it to a single electrode piece 110, that is, H=XL≥X×(M+N). In this embodiment, the number L of circuit lines electrically connecting the adapter 120 to one electrode piece 110 is equal to the sum of the number of rows and columns of the electrode units 112 of the electrode piece 110; the number H of circuit lines electrically connecting the adapter 120 to X electrode pieces 110 is equal to X times the number of circuit lines electrically connecting it to a single electrode piece 110, that is, H=XL=X×(M+N). The number of groups of control switches 124 and the number of groups of bidirectional switching switches 125 are both related to the number of electrode pieces 110. The number of groups of control switches 124 is the same as the number of groups of bidirectional switching switches 125, and is not less than the number of electrode pieces 110. Optionally, the number of control switches 124 and bidirectional switching switches 125 is the same as the number of electrode plates 110. The following detailed description uses the electrical connection of an electrode plate 110 with 20 electrode units 112 to the adapter 120 as an example.

[0044] Each group of control switches 124 has multiple control switches 124, which are respectively connected to the adapter 120 and electrically connected to circuit lines (unlabeled) corresponding one-to-one with the multiple grounding wires 118 of a corresponding electrode plate 110, and are configured to control the conduction or disconnection of the multiple grounding wires 118. The circuit lines (unlabeled) that are electrically connected one-to-one with the multiple grounding wires 118 of the electrode plate 110 are grounded to GND at the end closest to the control switch 124. The number of control switches 124 in each group of control switches (page 8 / 27, CN 121265985 A 124) is related to the number of grounding wires 118 on the substrate 111 of the corresponding electrode sheet 110; in this embodiment, the two are equal. As shown in Figure 2, in this embodiment, the multiple control switches 124 in each group of control switches 124 are respectively the first control switch 124-1, the second control switch 124-2, the third control switch 124-3, and the fourth control switch 124-4. (The last sentence appears to be incomplete and possibly refers to a different set of control switches.)Each of the multiple control switches 124 controls the opening or closing of the corresponding grounding wire 118 of the same electrode plate 110. Specifically, the first control switch 124-1 is used to control the opening or closing of the first grounding wire 118-1 of the corresponding electrode plate 110, and can cooperate with the corresponding set of bidirectional switching switches 125 to control the energization and de-energization of the temperature detection units 113 corresponding to the five electrode units 112 in the first row of the electrode plate 110, from electrode unit 112-1 to electrode unit 112-5; the second control switch 124-2 is used to control the opening or closing of the second grounding wire 118-2 of the electrode plate 110, and can cooperate with the corresponding set of bidirectional switching switches 125 to control the five electrode units 112 in the second row of the electrode plate 110, from electrode unit 112-6 to electrode unit 112-10. The third control switch 124-3 controls the energization and de-energization of the corresponding temperature detection unit 113; the third control switch 124-3 controls the opening and closing of the third grounding wire 118-3 of the electrode plate 110, and can cooperate with the corresponding set of bidirectional switching switches 125 to control the energization and de-energization of the temperature detection units 113 corresponding to the five electrode units 112 in the third row of the electrode plate 110; the fourth control switch 124-4 controls the opening and closing of the fourth grounding wire 118-4 of the electrode plate 110, and can cooperate with the corresponding set of bidirectional switching switches 125 to control the energization and de-energization of the temperature detection units 113 corresponding to the five electrode units 112 in the fourth row of the electrode plate 110. The control switches 124 can be mechanical switches, such as relays. The control switches 124 can also be electronic switches, and each control switch 124 can be opened and closed by an additional first controller 121.

[0045] In this embodiment, all sets of control switches 124 are electronic switches. The first controller 121 is communicatively connected to the multiple sets of control switches 124 and is used to sequentially and cyclically control the opening and closing states of multiple control switches 124 in each set of control switches 124, thereby sequentially and individually turning on each grounding wire 118 of the corresponding electrode 110 and cooperating with the switching of the corresponding bidirectional switching switch 125 to collect the temperature of the patient's body surface detected by all temperature detection units 113 on the electrode 110. The number of each set of control switches 124 is not less than the number of grounding wires 118 of the substrate 111 of the corresponding electrode 110. In this embodiment, the number of each set of control switches 124 is the same as the number of grounding wires 118 of the corresponding electrode 110.

[0046] Each set of bidirectional switching switches 125 is provided with multiple bidirectional switching switches 125. The multiple bidirectional switching switches 125 in each set are respectively connected to the adapter 120 and electrically connected to the multi-purpose signal line of the corresponding electrode 110.119 corresponds to the circuit lines (unlabeled). The number of bidirectional switching switches 125 in each group of bidirectional switching switches 125 is related to the number of dual-purpose signal lines 119 on the substrate 111 of the corresponding electrode sheet 110, which is greater than or equal to the number of dual-purpose signal lines 119 on the substrate 111 of the corresponding electrode sheet 110. In this embodiment, the two are equal. Each bidirectional switching switch 125 has two ends labeled 1 and 2. The 1 end of multiple bidirectional switching switches 125 in the same group is electrically connected to the corresponding detection channel in the multiple detection channels of the corresponding group of ADC units 122 through temperature sampling points (unlabeled). The 2 end of each bidirectional switching switch 125 in the same group is electrically connected to the corresponding AC power line 127 and is configured to control the multiple dual-purpose signal lines 119 to connect to the corresponding AC power line 127 to transmit AC electrical signals or to connect to the corresponding detection channel of the corresponding group of ADC units 122 to receive the temperature detection signal output by the temperature detection unit 113.

[0047] As shown in FIG2, taking the electrical connection of one electrode plate 110 with the adapter 120 as an example, in this embodiment with 20 electrode units 112, the multiple bidirectional switching switches 125 in each group of bidirectional switching switches 125 are respectively the first bidirectional switching switch 125-1, the second bidirectional switching switch 125-2, the third bidirectional switching switch 125-3, the fourth bidirectional switching switch 125-4, and the fifth bidirectional switching switch 125-5. The multiple bidirectional switching switches 125 in the same group control the switching of a corresponding dual-purpose signal line 119 of the multi-channel dual-purpose signal line 119 of the same electrode plate 110 between transmitting alternating electrical signals and transmitting temperature detection signals. Specifically, the first bidirectional switching switch 125-1 is used to control the switching of the first dual-purpose signal line 119-1 of the corresponding electrode sheet 110 between alternating electrical signals and temperature detection signals, thereby controlling the switching between the conduction of each electrode unit 112 of the first column group of electrode units 112-1, 112-6, 112-11, and 112-16 and the conduction of the signal terminal 113B of each temperature detection unit 113 corresponding to the first column group of electrode units 112-1, 112-6, 112-11, and 112-16, and cooperating with the corresponding control switches 124-1, 124-2, 124-3, and 124-4, so that the first column of electrode units 112-1, 112-6, 112-11, and 112-16... 6. Electrode units 112-11 and 112-16 transmit alternating electrical signals to the patient or output temperature detection signals collected by the temperature detection unit 113 corresponding to these electrode units 112 to the corresponding ADC unit 122; the second bidirectional switch 125-2 is used forThe second dual-purpose signal line 119-2 of the corresponding electrode sheet 110 is controlled to switch between transmitting alternating electrical signals and transmitting temperature detection signals. This, in turn, controls the switching between the conduction of each electrode unit 112 in the second column of electrode units 112-2, 112-7, 112-12, and 112-17 and the conduction of the signal terminal 113B of each temperature detection unit 113 corresponding to each electrode unit 112, 112-7, 112-12, and 112-17 in the second column of the electrode sheet 110, and coordinates with the corresponding control switches 124-1, 124-2, 124-3, and 124-4 to ensure that the second column of electrode units 112-2, 112-7, 112-12, and 112-17... 17. Transmits alternating electrical signals to the patient or outputs temperature detection signals collected by the temperature detection units 113 corresponding to the electrode units 112 to the corresponding ADC unit 122; the third bidirectional switching switch 125-3 is used to control the switching of the third dual-purpose signal line 119-3 of the corresponding electrode sheet 110 between transmitting alternating electrical signals and transmitting temperature detection signals, thereby controlling the switching between the conduction of each electrode unit 112 of the third column group of electrode units 112-3, 112-8, 112-13, and 112-18 and the conduction of the signal terminal 113B of each temperature detection unit 113 corresponding to the third column group of electrode units 112-3, 112-8, 112-13, and 112-18, and cooperating with the corresponding control switches 124-1, 124-2, 124-3, and 124-4, so that the third column of electrode units 112- 3. Electrode units 112-8, 112-13, and 112-18 transmit alternating electrical signals to the patient or output temperature detection signals collected by the temperature detection units 113 corresponding to these electrode units 112 to the corresponding ADC unit 122; the fourth bidirectional switching switch 125-4 is used to control the switching of the fourth dual-purpose signal line 119-4 of the corresponding electrode pad 110 between transmitting alternating electrical signals and transmitting temperature detection signals, thereby controlling the switching between the conduction of each electrode unit 112 of the fourth column group of electrode units 112-4, 112-9, 112-14, and 112-19 and the conduction of the signal terminals 113B of the corresponding temperature detection units 113 of the fourth column group of electrode units 112-4, 112-9, 112-14, and 112-19, and the corresponding control switches 124-1, 124-2, and 125-4.124-3 and control switch 124-4 cooperate to enable the fourth column of electrode units 112-4, 112-9, 112-14, and 112-19 to transmit alternating electrical signals to the patient or output temperature detection signals collected by the temperature detection unit 113 corresponding to these electrode units 112 to the corresponding ADC unit 122; the fifth bidirectional switching switch 125-5 is used to control the switching of the fifth dual-purpose signal line 119-5 of the corresponding electrode pad 110 between transmitting alternating electrical signals and transmitting temperature detection signals, thereby controlling the conduction of each electrode unit 112 in the fifth column of electrode units 112-5, 112-10, 112-15, and 112-20 in the fifth column of electrode pad 110 and the conduction of each electrode unit 112 in the fifth column of electrode units 112. -5. Switching between the conduction of the signal terminals 113B of the temperature detection units 113 corresponding to electrode units 112-10, 112-15, and 112-20 and the corresponding control switches 124-1, 124-2, 124-3, and 124-4, so that the fifth column of electrode units 112-5, 112-10, 112-15, and 112-20 transmits alternating electrical signals to the patient or outputs temperature detection signals collected by the temperature detection units 113 corresponding to these electrode units 112 to the corresponding ADC unit 122. When two ends of each bidirectional switching switch 125 are on and one end is off, alternating electrical signals can be transmitted to each electrode unit 112 of the corresponding electrode plate 110. When one end of each bidirectional switching switch 125 is on and two ends are off, it can cooperate with each control switch 124 in the corresponding control switch 124 to sequentially and time-divisionally transmit the temperature detection signals collected by the temperature detection unit 113 of each electrode unit 112 on the electrode plate 110. The bidirectional switching switch 125 can be a mechanical switch, such as a relay. The bidirectional switching switch 125 can also be an electronic switch, and each bidirectional switching switch 125 can be switched by an additional first controller 121.

[0048] In this embodiment, all of the bidirectional switching switches 125 are electronic switches. The first controller 121 is communicatively connected to multiple sets of bidirectional switching switches 125, and is used to control the switching of multiple bidirectional switching switches 125 in each set between their respective terminals 1 and 2, and cooperate with the closing or opening of the corresponding control switch 124 to continuously monitor the temperature of the patient's body surface detected by all temperature detection units 113 on the electrode pad 110 or to transmit alternating electrical signals to the patient.

[0049] In this embodiment, each ADC unit 122 is connected to multiple circuit lines (unlabeled) in the adapter 120 respectively.One end of each of the bidirectional switching switches 125 in the corresponding group is electrically connected and configured to receive the temperature detection signal transmitted by the multi-purpose signal line 119 of the corresponding electrode 110, and convert the temperature detection signal from an analog signal to a digital signal. Each ADC unit 122 includes multiple detection channels A, B, C, D, and E, which are set one-to-one with the corresponding temperature detection points (unlabeled). Each detection channel A, B, C, D, and E is used to connect to one of the corresponding multi-purpose signal lines 119 through the corresponding bidirectional switching switch 125. As shown in Figure 2, each ADC unit 122 contains a total of 5 detection channels A, B, C, D, and E, which are respectively the first detection channel A, the second detection channel B, the third detection channel C, the fourth detection channel D, and the fifth detection channel E. The first detection channel A is connected to the first dual-purpose signal line 119-1 via terminal 1 of the first bidirectional switch 125-1; the second detection channel B is connected to the second dual-purpose signal line 119-2 via terminal 1 of the second bidirectional switch 125-2; the third detection channel C is connected to the third dual-purpose signal line 119-3 via terminal 1 of the third bidirectional switch 125-3; the fourth detection channel D is connected to the fourth dual-purpose signal line 119-4 via terminal 1 of the fourth bidirectional switch 125-4; and the fifth detection channel E is connected to the fifth dual-purpose signal line 119-5 via terminal 1 of the fifth bidirectional switch 125-5. Each detection channel A, B, C, D, and E is used to receive the temperature detection signal collected by the temperature detection unit 113 corresponding to the electrode unit 112 connected to the corresponding dual-purpose signal line 119. In addition, each detection channel A, B, C, D, and E is connected to a first power module 128 via a corresponding voltage divider resistor 123 within the adapter 120. This first power module 128 provides DC power to the detection channel A, B, C, D, and E.

[0050] In this embodiment, the first controller 121 is also configured to determine the test code array of the corresponding electrode plate 110 based on the analog temperature signal detected by each sampled temperature detection unit 113, and to perform a consistency comparison between the test code array and the standard code array to identify the fault condition of each temperature detection unit 113 in the corresponding electrode plate 110. The standard code array is the code array when the electrode plate 110 is qualified. The adapter 120 may also include a reminder unit (not shown). When the first controller 121 detects a faulty temperature detection unit 113 in the electrode plate 110, it controls the reminder unit (not shown) to issue a first reminder message and instructs the electric field generator 130 to continue working. For example, when there is no faulty temperature detection unit 113 in the electrode plate 110, the control reminder unit (not shown) will light up green, and when there is a faulty temperature detection unit 113 in the electrode plate 110, the control reminder unit (not shown) will light up red.

[0051] In this embodiment, the first controller 121 is also configured to determine the number of faulty temperature detection units 113 in the electrode sheet 110 when comparing the test code array with the standard code array, and to determine whether the electrode sheet 110 needs to be replaced based on the number. For example, if the number exceeds a preset number (which can be set to a minimum of 1), it is determined that the electrode sheet 110 needs to be replaced; if the number does not exceed the preset number, it is determined that the electrode sheet 110 does not need to be replaced. The first controller 121 can also control the reminder unit (not shown) to issue a second reminder message and instruct the electric field generator 130 to stop working when it is determined that the electrode sheet 110 needs to be replaced. For example, when the first controller 121 determines that the electrode sheet 110 needs to be replaced, it controls the reminder unit (not shown) to light up red and flash, and can also control the reminder unit (not shown) to sound an alarm, such as a buzzer.

[0052] In this embodiment, the first communication unit 126 is configured to acquire digital signals output by multiple ADC units 122 and send the digital signals to the electric field generator 130. The electric field generator 130 is also configured to control and adjust the voltage of the alternating electrical signal provided to the multiple electrode units 112 of the electrode sheet 110 according to the received digital signals. For example, when any digital signal among the multiple received digital signals exceeds a preset threshold, it indicates that the temperature detected by the temperature detection unit 113 corresponding to at least one electrode unit 112 in the electrode sheet 110 exceeds the preset temperature threshold (e.g., 41°C, 42°C, etc.). At this time, the voltage of the alternating electrical signal output by the electric field generator 130 can be appropriately reduced to avoid the electrode unit 112 of the electrode sheet 110 from becoming too hot when the alternating electrical signal is applied, causing low-temperature burns to the patient's skin. The above-mentioned preset temperature threshold and preset threshold can be determined according to human safety thresholds. The first communication unit 126 is controlled by the first controller 121 and serially transmits digital signals converted by multiple ADC units 122. In this embodiment, the preset temperature threshold can be a value within the range of 36℃-45℃. In this embodiment, the electric field generator 130 is also configured to determine the test code array of the corresponding electrode 110 based on the analog temperature signal detected by each sampled temperature detection unit 113, and to compare the test code array with the standard code array to identify the fault condition of each temperature detection unit 113 in the corresponding electrode 110.

[0053] Referring to Figures 3 and 4, in this embodiment, the first power module 128 is electrically connected to the second power module 136 of the electric field generator 130 and is configured to supply power to the first controller 121, multiple ADC units 122, and the first communication unit 126 of the adapter 120. A first connector 140 is provided between each electrode 110 and the adapter 120.Connector 140 is adapted to connect the corresponding electrode 110 to adapter 120. As shown in FIG1, the first connector 140 includes a first plug 141 located at the end of the first cable 116 away from the electrode 110 and a first socket 142 located on adapter 120. The first plug 141 and the first socket 142 are press-type spring connectors, that is, the first connector 140 connects adapter 120 and electrode 110 by means of connectors. Each first cable 116 has 5 wires electrically connected to the bidirectional switch 125 in the corresponding set of bidirectional switch 125 and 4 wires electrically connected to the control switch 124 in the corresponding set of control switches 124. That is, each first connector 140 is electrically connected to the corresponding set of bidirectional switch 125 and the corresponding set of control switches 124 of adapter 120 through 9 wires, and is connected to electric field generator 130 through a corresponding alternating power line 127 of adapter 120.

[0054] A second connector 150 is provided between the adapter 120 and the electric field generator 130. The second connector 150 is adapted to connect the electric field generator 130 to the adapter 120. As shown in FIG1, the adapter 120 also includes a second cable 129 connected to the second connector 150. The second connector 150 includes a second plug 151 located at the end of the second cable 129 away from the first controller 121 and a second socket 152 located on the electric field generator 130. The second plug 151 and the second socket 152 are push-button spring connectors, that is, the second connector 150 connects the adapter 120 and the electric field generator 130 by means of a connector. Each first connector 140, such as X1, Y1, X2, and Y2, is connected to the second connector 150 via a corresponding alternating power line 127. The first connectors 140, such as X1, Y1, X2, and Y2, are also connected to a corresponding set of control switches 124 and a corresponding set of ADC units 122. Each first connector 140 is connected to the second connector 150 and the corresponding set of ADC units 122 via a corresponding set of bidirectional switching switches 125. The second cable 129 has eight wires, including four wires 1 to 4 that are electrically connected to the corresponding alternating power lines 127 for transmitting alternating electrical signals, one wire 5 that is electrically connected to the data receiving line RX of the first communication unit 126, one wire 6 that is electrically connected to the data transmitting line TX of the first communication unit 126, one wire 7 that is electrically connected to the VCC power line of the first power module 128, and one wire 8 that is electrically connected to the GND line of the first power module 128. The second connector 150 is connected to the first communication unit 126 via a data receiving line RX and a data transmitting line TX. The VCC pin of the second connector 150 is connected to the VVC power line of the first power module 128, and the GND pin of the second connector 150 is connected to the first power module 128.The GND line of the power supply module 128 is connected and grounded. The VCC pin of the second connector 150 is also connected to the corresponding group voltage resistors 123 and the corresponding group ADC units 122 through the VCC power line of the first power supply module 128.

[0055] Referring to FIG4, the electric field generator 130 includes: a second power supply module 136, a second controller 131, an AC signal generator 132, a second communication unit 135, and a set of power supply switches 133. The VCC pin of the second connector 150 is also electrically connected to the VCC power line of the second power supply module 136, and the GND pin of the second connector 150 is grounded through the GND line of the second power supply module 136. The second power supply module 136 is also connected to and supplies power to the second controller 131 and the AC signal generator 132 respectively. The second communication unit 135 is electrically connected to wire 5 of the second connector 150 via its data receiving line RX and to wire 6 of the second connector 150 via its data transmitting line TX, thereby enabling information exchange between the electric field generator 130 and the adapter 120. The second controller 131 is also electrically connected to the second communication unit 135, the AC signal generator 132, and a set of power switches 133. The second controller 131 is configured to control the opening and closing of each power switch 133 in the set of power switches 133 and to adjust the relevant parameters of the alternating electrical signal applied by the AC signal generator 132 according to the relevant digital signals received from the adapter 120 by the second communication unit 135. The AC signal generator 132 is electrically connected to wires 1 to 4 of the second connector 150 for transmitting alternating electrical signals via the set of power switches 133. The set of power switches 133 includes multiple power switches 133, each corresponding to a different electrode piece 110. Each power supply switch 133 is electrically connected to a corresponding conductor 1, 2, 3, 4 in the second connector 150 via an AC power line 134-1, 134-2, 134-3, 134-4 for transmitting alternating electrical signals, and is also electrically connected to a corresponding electrode 110 via corresponding conductors 1, 2, 3, 4 in the second connector 150, to deliver an alternating electrical signal to each electrode 110. The AC signal generator 132 is electrically connected to this group of power supply switches 133 via multiple AC power lines 134. Specifically, the number of power supply switches 133 in the electric field generator 130 is related to the number of electrode 110s; in this embodiment, the number of power supply switches 133 is equal to the number of electrode 110s, and both are four. The power supply switches 133 include a first power supply switch 133-1, a second power supply switch 133-2, a third power supply switch 133-3, and a fourth power supply switch 133-4, each electrically connected to conductors 1 to 4 of the second connector 150 in a one-to-one correspondence. One end of the first power supply switch 133-1 is connected to the AC power supply line of the electric field generator 130 and the AC signal.The signal generator 132 is electrically connected at one end, and the other end is electrically connected to the corresponding conductor 1 for transmitting alternating electrical signals in the second connector 150 via an AC power line 134-1. The conductor 1 of the second connector 150 is also electrically connected to the alternating power line 127 at port X1 of the adapter 120. The alternating power line 127 at port X1 of the adapter 120 is electrically connected to the first connector 140. The first connector 140 at port X1 of the adapter 120 is electrically connected to the corresponding electrode 110, thereby controlling whether the AC signal generator 132 transmits alternating electrical signals to the electrode 110 electrically connected to port X1 of the adapter 120. The second power supply switch 133-2... One end of the third power switch 133-3 is electrically connected to the AC signal generator 132 via the AC power line of the electric field generator 130, and the other end is electrically connected to the corresponding alternating signal transmission wire 2 in the second connector 150 via an AC power line 134-2. The other end is also electrically connected to the alternating power line 127 at port Y1 of the adapter 120 via the wire 2 of the second connector 150. The alternating power line 127 at port Y1 of the adapter 120 is electrically connected to the first connector 140. The first connector 140 at port Y1 of the adapter 120 is electrically connected to the corresponding electrode 110, thereby controlling whether the AC signal generator 132 supplies alternating signals to the electrode 110 electrically connected to port Y1 of the adapter 120. One end of the third power switch 133-3 is electrically connected to the AC signal generator 132 via the AC power line of the electric field generator 130, and the other end is electrically connected to the corresponding alternating signal transmission wire 3 in the second connector 150 via an AC power line 134-3. Line 3 is electrically connected to the alternating power line 127 located at port X2 of adapter 120; the alternating power line 127 located at port X2 of adapter 120 is electrically connected to the first connector 140; the first connector 140 located at port X2 of adapter 120 is electrically connected to the corresponding electrode plate 110, so as to control whether the AC signal generator 132 supplies an alternating electrical signal to the electrode plate 110 electrically connected to port X2 of adapter 120; one end of the fourth power supply switch 133-4 is connected to the electric field generator 130. The AC power cord is electrically connected to the AC signal generator 132. The other end is electrically connected via an AC power cord 134-4 to the corresponding conductor 4 transmitting alternating electrical signals in the second connector 150. It is also electrically connected via conductor 4 of the second connector 150 to the AC power cord 127 located at port Y2 of the adapter 120. The AC power cord 127 at port Y2 of the adapter 120 is electrically connected to the first connector 140. The first connector 140 located at port Y2 of the adapter 120 is electrically connected to the corresponding electrode 110 to control whether the AC signal generator 132 transmits signals to port Y2 of the adapter 120.The electrode 110 at the electrode plate 110 transmits an alternating electrical signal.

[0056] In this embodiment, the second controller 131 is also configured to determine the test code array of the corresponding electrode 110 based on the simulated temperature signal detected by each sampled temperature detection unit 113, and to compare the test code array with the standard code array to identify the fault condition of each temperature detection unit 113 in the corresponding electrode 110. The electric field generator 130 may also include a reminder unit (not shown). When the second controller 131 detects a faulty temperature detection unit 113 in the electrode 110, it controls the reminder unit (not shown) to issue a first reminder message and continues to control the AC signal generator 132 to output an alternating electrical signal. For example, when the second controller 131 detects no faulty temperature detection unit 113 in the electrode 110, it controls the reminder unit (not shown) to light up green, and when a faulty temperature detection unit 113 in the electrode 110 is detected, it controls the reminder unit (not shown) to light up red.

[0057] In this embodiment, the second controller 131 is also configured to determine the number of faulty temperature detection units 113 in the electrode plate 110 when comparing the test code array with the standard code array, and to determine whether the electrode plate 110 needs to be replaced based on the number. For example, if the number exceeds a preset number (which can be set to a minimum of 1), it is determined that the electrode plate 110 needs to be replaced; if the number does not exceed the preset number, it is determined that the electrode plate 110 does not need to be replaced. The second controller 131 can also control the reminder unit (not shown) to issue a second reminder message and control the AC signal generator 132 to stop working when it is determined that the electrode plate 110 needs to be replaced. For example, when the second controller 131 determines that the electrode plate 110 needs to be replaced, it controls the reminder unit (not shown) to light up red and flash, and can also control the reminder unit (not shown) to sound an alarm, such as a buzzer.

[0058] In this embodiment, the first controller 121 or the second controller 131 is further configured to send the test code array to a host computer (not shown), so that the host computer (not shown) can perform a consistency comparison between the test code array and the standard code array to determine whether the electrode sheet 110 is qualified. For example, the first controller 121 sends the test code array to the host computer (not shown) through the electric field generator 130, or directly to the host computer (not shown), so that the host computer (not shown) can perform a consistency comparison between the test code array and the standard code array to determine whether the electrode sheet 110 is qualified; or, the second controller 131 sends the test code array to the host computer (not shown), so that the host computer (not shown) can perform a consistency comparison between the test code array and the standard code array to determine whether the electrode sheet 110 is qualified. The host computer (not shown) may be connected to a display (not shown) to control the display (not shown) to display the test code array, the standard code array, and whether the electrode sheet 110 is qualified.The host computer (not shown) is also connected to an alarm to issue a reminder message when the electrode plate 110 is defective.

[0059] The working principle of the tumor electric field therapy system 100 of this embodiment will be described in detail below with reference to Figures 2 to 4.

[0060] Specifically, when it is necessary to detect the temperature at each electrode unit 112 of an electrode plate 110, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 controls each of the multiple bidirectional switching switches 125 electrically connected to the electrode plate 110 to turn on one end and turn off the other end, so as to disconnect the alternating electrical signal applied to the electrode plate 110; at the same time, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 controls each of the control switches 124 electrically connected to the electrode plate 110 to turn on sequentially in a time-division manner. At this time, the temperature detection signals collected by each temperature detection unit 113 corresponding to each electrode unit 112 of each row of the electrode plate 110 can be collected sequentially in a time-division manner through the multiple detection channels A, B, C, D, E of a group of ADC units 122 corresponding to the electrode plate 110. Each detection channel A, B, C, D, and E of each ADC unit 122 in each row simultaneously acquires the temperature detection signal of the temperature detection unit 113 corresponding to each electrode unit 112 in the same row of the electrode plate 110. The temperature detection signal can be characterized by a voltage value. Only one of the four control switches 124 in the group corresponding to the electrode plate 110 can be turned on at any given time, while the other three are turned off. The five bidirectional switches 125 corresponding to the ADC unit 122 are all switched to their respective terminals 1, so that the dual-purpose signal lines 119 of the electrode plate 110 are electrically connected to the corresponding detection channels A, B, C, D, and E of the corresponding ADC unit 122 and thus turned on. With this configuration, the ADC unit 122 can collect the voltage values ​​of all temperature detection units 113 corresponding to each electrode unit 112 in the same row group that are shorted by the ground line 118 corresponding to the turned-on control switch 124.

[0061] Specifically, when control switch 124-1 is closed, control switches 124-2, 124-3, and 124-4 are all open, and the first bidirectional switching switch 125-1, the second bidirectional switching switch 125-2, the third bidirectional switching switch 125-3, the fourth bidirectional switching switch 125-4, and the fifth bidirectional switching switch 125-5 are all switched to their respective terminals 1, the temperature detection units 113 corresponding to electrode units 112-1 to 112-5 in the first row group are energized, and the electrode units 112-6 in the remaining rows are energized.When the temperature detection units 113 corresponding to electrode units 112-20 are de-energized, the signal terminals 113B of the temperature detection units 113 corresponding to electrode units 112-1, 112-6, 112-11, and 112-16 in the first detection channel A of the ADC unit 122 are shorted. Since only the ground terminal 113A of the temperature detection unit 113 corresponding to electrode unit 112-1 is grounded, the temperature detection units 113 corresponding to electrode units 112-6, 112-11, and 112-16 are not grounded. The grounding terminal 113A of element 113 is disconnected, and each temperature detection unit 113 includes a temperature sensor 114 and a diode 115 connected in series with the temperature sensor 114. This does not affect the resistance value of the temperature detection unit 113 corresponding to electrode unit 112-1. Therefore, only the temperature detection unit 113 corresponding to electrode unit 112-1 is effectively operating on the first detection channel A of this group of ADC units 122. The temperature detection signal (voltage value) acquired by the first detection channel A is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-1. Similarly, the voltage value acquired on the second detection channel B of this group of ADC units 122 is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-2. The voltage value acquired on the third detection channel C of this group of ADC units 122 is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-3. The voltage value acquired on the fourth detection channel D of this group of ADC units 122 is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-4. The voltage value acquired on the fifth detection channel E in the ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to the electrode unit 112-5.

[0062] When the control switch 124-2 is closed, the control switches 124-1, 124-3, and 124-4 are all open. When all four bidirectional switches 125-1, 125-2, 125-3, 125-4, and 125-5 are switched to their respective terminals 1, the temperature detection units 113 corresponding to electrode units 112-6 to 112-10 in the second row are energized, while the temperature detection units 113 corresponding to electrode units 112-1 to 112-5 and 112-11 to 112-20 in the other rows are de-energized. The signal terminals 113B of the temperature detection units 113 corresponding to electrode units 112-1, 112-6, 112-11, and 112-16 in the first detection channel A of the ADC unit 122 are shorted. Since only the temperature detection unit corresponding to electrode unit 112-6...The grounding terminal 113A of the temperature detection unit 113 is grounded, while the grounding terminals 113A of the temperature detection units 113 corresponding to electrode units 112-1, 112-11, and 112-16 are all disconnected. Each temperature detection unit 113 includes a temperature sensor 114 and a diode 115 connected in series with the temperature sensor 114. This does not affect the resistance value of the temperature detection unit 113 corresponding to electrode unit 112-6. Therefore, only the temperature detection unit 113 corresponding to electrode unit 112-6 is effectively operating on the first detection channel A of this ADC unit 122. At this time, the temperature detection signal (voltage value) acquired by the first detection channel A is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-6. Similarly, the voltage value acquired on the second detection channel B of this ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-7. The voltage value acquired on the third detection channel C of this ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to electrode units 112-8. The voltage value acquired on the fourth detection channel D of this ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to electrode units 112-9. The voltage value acquired on the fifth detection channel E of this ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to electrode unit manual page 15 / 27, document number 18, CN 121265985 A 112-10.

[0063] When control switch 124-3 is closed, and control switches 124-1, 124-2, and 124-4 are all open, and the first bidirectional switching switch 125-1, the second bidirectional switching switch 125-2, the third bidirectional switching switch 125-3, the fourth bidirectional switching switch 125-4, and the fifth bidirectional switching switch 125-5 are all switched to their respective terminals 1, the temperature detection units 113 corresponding to electrode units 112-11 to 112-15 in the third row group are energized, and the temperature detection units 113 corresponding to electrode units 112-1 to 112-10 and electrode units 112-16 to 112-20 in the other rows are de-energized. Electrode units 112-1, 112-6, and 112-11 are short-circuited on the first detection channel A of the ADC unit 122 in this group. The signal terminal 113B of the temperature detection unit 113 corresponding to each of electrode units 112-16 is grounded only because the ground terminal 113A of the temperature detection unit 113 corresponding to electrode unit 112-11 is connected, while the ground terminal 113A of the temperature detection units 113 corresponding to electrode units 112-1, 112-6, and 112-16 is disconnected, and each temperature detection unit 113 has...The presence of temperature sensor 114 and diode 115 connected in series with it does not affect the resistance of temperature detection unit 113 corresponding to electrode units 112-11. Therefore, only temperature detection unit 113 corresponding to electrode units 112-11 is effectively operating on the first detection channel A of this ADC unit group 122. At this time, the temperature detection signal (voltage value) acquired by the first detection channel A is the voltage value of temperature detection unit 113 corresponding to electrode units 112-11. Similarly, the voltage value acquired on the second detection channel B of this ADC unit group 122 is the voltage value of temperature detection unit 113 corresponding to electrode units 112-12. The voltage value acquired on the third detection channel C of this ADC unit group 122 is the voltage value of temperature detection unit 113 corresponding to electrode units 112-13. The voltage value acquired on the fourth detection channel D of this ADC unit group 122 is the voltage value of temperature detection unit 113 corresponding to electrode units 112-14. The voltage value collected on the fifth detection channel E in the ADC unit 122 is the voltage value of the temperature detection unit 113 corresponding to the electrode unit 112-15.

[0064] When the control switch 124-4 is closed, the control switches 124-1, 124-2, and 124-3 are all open, and the first bidirectional switching switch 125-1, the second bidirectional switching switch 125-2, the third bidirectional switching switch 125-3, the fourth bidirectional switching switch 125-4, and the fifth bidirectional switching switch 125-5 are all switched to their respective terminals 1. The temperature detection units 113 corresponding to the electrode units 112-16 to 112-20 in the fourth row group are powered on, and the temperature detection units 113 corresponding to the electrode units 112-1 to 112-15 in the other rows are de-powered. The electrode unit is short-circuited on the first detection channel A in the ADC unit 122. Since only the grounding terminal 113A of the temperature detection unit 113 corresponding to electrode unit 112-1, electrode unit 112-6, electrode unit 112-11, and electrode unit 112-16 is grounded, while the grounding terminal 113A of the temperature detection unit 113 corresponding to electrode unit 112-1, electrode unit 112-6, and electrode unit 112-11 is disconnected, and each temperature detection unit 113 includes a temperature sensor 114 and a diode 115 connected in series with the temperature sensor 114, it will not affect the resistance value of the temperature detection unit 113 corresponding to electrode unit 112-16. Therefore, only the temperature detection unit 113 corresponding to electrode unit 112-16 is effectively operating on the first detection channel A of this ADC unit 122. At this time, the temperature detection signal (voltage value) collected by the first detection channel A is the temperature detection signal (voltage value) corresponding to electrode unit 112-16.The voltage value measured in ADC unit 113 is the same as the voltage value of temperature detection unit 113 corresponding to electrode units 112-17. Similarly, the voltage value measured in ADC unit 122 in the second detection channel B is the same as the voltage value of temperature detection unit 113 corresponding to electrode units 112-18. The voltage value measured in ADC unit 122 in the fourth detection channel D is the same as the voltage value of temperature detection unit 113 corresponding to electrode units 112-19. The voltage value measured in ADC unit 122 in the fifth detection channel E is the same as the voltage value of temperature detection unit 113 corresponding to electrode units 112-20.

[0065] Thus, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 can acquire the temperature detection signals of the temperature detection units 113 corresponding to all electrode units 112 of the electrode unit 110 (as described in the specification page 16 / 27, CN 121265985 A 110) by controlling a set of bidirectional switching switches 125 and a set of control switches 124, all of which are electrically connected to a certain electrode unit 110. That is, the switching unit (unlabeled) is configured to switch the dual-purpose signal lines 119 corresponding to at least two column groups to be simultaneously connected to the corresponding temperature sampling points (unlabeled), and the switching state of the corresponding control switches 124 is configured so that the temperature detection signals detected by the corresponding temperature detection units 113 in each row group are sampled based on the corresponding temperature sampling points (unlabeled). Similarly, the temperature detection signals of the temperature detection units 113 of each electrode unit 112 of other electrode units 110 can be obtained.

[0066] The first controller 121 or the second controller 131, the multiple ADC units 122, and the multiple bidirectional switching switches 125 can automatically perform operations through pre-programmed program code. For example, the first controller 121 or the second controller 131 first controls all the bidirectional switching switches 125 in the corresponding group to switch to end 1, so that all ends 1 of these bidirectional switching switches 125 are turned on and all ends 2 are turned off, so that each dual-purpose signal line 119 of the corresponding electrode plate 110 is electrically connected to the corresponding group of ADC units 122. Then, the control switch 124-1 in the corresponding group of control switches 124 is closed, and the remaining control switches 124-2 to 124-4 in the group of control switches 124 are turned off. During this period, each detection channel A, B, C, D, and E of the group of ADC units 122 acquires the temperature detection signal of each temperature detection unit 113 corresponding to each electrode unit 112 in the first row of the corresponding electrode plate 110, converts it into a digital signal, and stores it in a separately set memory. Then, after a preset time interval, The first controller 121 or the second controller 131 then closes the control switch 124-2 in the group of control switches 124, disconnecting the group of control switches.Control switches 124-1, 124-3, and 124-4 in the control switch 124 are used to acquire temperature detection signals of temperature detection units 113 corresponding to each electrode unit 112 in the second row group during the period of control switch 124. By sequentially turning on each control switch 124 in the control switch 124, temperature detection signals of all temperature detection units 113 on the electrode 110 can be obtained. Similarly, temperature detection signals of all temperature detection units 113 on at least one pair of electrode 110 can be obtained through this operation.

[0067] It should be noted that in some other embodiments, a set of bidirectional switching switches 125 and a set of control switches electrically connected to a certain electrode 110 can also be controlled by the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 to acquire temperature detection signals of temperature detection units 113 corresponding to some electrode units 112 of the electrode 110 during the same temperature acquisition period. For example, when only the first bidirectional switch 125-1 is switched to its terminal 1, switch 124-1 can be closed first, and switches 124-2, 124-3, and 124-4 can all be opened. At this time, only the temperature detection unit 113 corresponding to the electrode unit 112-1 of the first row group is energized. The signal terminal 113B of the temperature detection unit 113 corresponding to the electrode unit 112-1 in the first detection channel A of the ADC unit 122 of this group is shorted. Therefore, the ADC unit 122 of this group... The voltage value of the temperature detection unit 113 corresponding to electrode unit 112-1 will be detected. Then, control switch 124-2 will be closed, and control switches 124-1, 124-3, and 124-4 will all be opened. At this time, the ADC unit 122 will detect the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-6. Then, control switch 124-3 will be closed, and control switches 124-1, 124-2, and 124-4 will all be opened. At this time, the ADC unit 122 will detect the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-11. Finally, control switch 124-4 will be closed, and control switches 124-1, 124-2, and 124-3 will all be opened. At this time, the ADC unit 122 will detect the voltage value of the temperature detection unit 113 corresponding to electrode unit 112-16. Therefore, within the same acquisition time period, only the temperature detection signal of the temperature detection unit 113 corresponding to one column of electrode units 112 can be sampled. Similarly, the temperature detection signals of the temperature detection units 113 corresponding to other columns of electrode units 112 can be sampled in other acquisition time periods. That is, the switching unit (not labeled)The configuration (number) is set to switch the dual-purpose signal line 119 corresponding to each column group to the corresponding temperature sampling point (unnumbered), and the switching state of the control switch 124 is configured to allow the temperature detection signal detected by each temperature detection unit 113 in each column group to be sampled separately. It should be noted that in some embodiments, the temperature detection signals of the temperature detection units 113 corresponding to two, three, or four column groups of electrode units 112 can also be sampled within the same acquisition time period. For details, see page 17 / 27 of the specification, 20 CN 121265985 A, which will not be elaborated here.

[0068] Specifically, when it is necessary to apply an alternating electrical signal to each electrode unit 112 of an electrode plate 110, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 controls each of the multiple bidirectional switching switches 125 of a set of bidirectional switching switches 125 electrically connected to the electrode plate 110 to turn on at end 2 and turn off at end 1. At the same time, it controls all the multiple control switches 124 of a set of control switches 124 electrically connected to the electrode plate 110 to turn off, and controls a power supply switch 133 electrically connected to the electrode plate 110 to turn on. At this time, the second controller 131 of the electric field generator 130 controls the AC signal generator 132 to apply an alternating electrical signal to each electrode unit 112 of the electrode plate 110 through the alternating power line 127, and the magnitude of the applied alternating electrical signal voltage or current is adjustable. That is, the switching unit (unlabeled) is configured to switch the dual-purpose signal lines 119 corresponding to at least two column groups to be simultaneously connected to the alternating power supply line 127, so that the electrode units 112 of at least two column groups are simultaneously subjected to alternating electrical signals based on the alternating power supply line 127.

[0069] It should be noted that, in some other embodiments, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 can also control a set of bidirectional switching switches 125 electrically connected to a certain electrode piece 110 to apply alternating electrical signals to some electrode units 112 of the electrode piece 110 in the same time period. For example, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 controls the first bidirectional switch 125-1, one of a group of bidirectional switches 125 electrically connected to the electrode plate 110, to be turned on at both ends and off at the other end. Simultaneously, it controls all the control switches 124 of a group of control switches 124 electrically connected to the electrode plate 110 to be turned off, and controls a power supply switch 133 electrically connected to the electrode plate 110 to be turned on. At this time, the second controller 131 of the electric field generator 130 controls the AC signal generator 132 to supply power to the first column of electrode units 112-1 and the electrode units of the electrode plate 110 via the alternating power line 127.Alternating electrical signals are applied to electrode units 112-6, 112-11, and 112-16, and the magnitude of the applied alternating electrical signal's voltage or current is adjustable. That is, the switching unit (unlabeled) is configured to switch the dual-purpose signal line 119 corresponding to each column group to the alternating power supply line 127, so that the electrode units 112 of each column group are simultaneously subjected to alternating electrical signals based on the alternating power supply line 127. It should be noted that in some other embodiments, alternating electrical signals can also be applied simultaneously to two, three, or four column groups of electrode units 112 within the same time period; details will not be elaborated here.

[0070] Specifically, during the use of the electrode pad 110, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 can determine the test code array of the electrode pad 110 based on the temperature detection signal detected by each sampled temperature detection unit 113, and compare the test code array with the standard code array to monitor whether the electrode pad 110 is damaged, so as to replace the electrode pad 110 in time and avoid or reduce the risk of low-temperature burns to the patient. For example, the temperature sensor 114 in the temperature detection unit 113 is a negative temperature coefficient thermistor, which has the characteristic that the higher the temperature, the lower the resistance, and the lower the temperature, the higher the resistance. Since the electrode pad 110 is applied to the human body surface during use, and the human body surface temperature is generally between 36°C and 37°C, a negative temperature coefficient thermistor with a temperature range of 0°C to 50°C can be selected. For example, you can choose a thermistor with model number NCP18XH103D03RB. When the temperature it senses is 0℃, the corresponding resistance is approximately 27.45KΩ; when the temperature it senses is 25℃, the corresponding resistance is approximately 10.0KΩ; and when the temperature it senses is 50℃, the corresponding resistance is approximately 4.16KΩ.

[0071] As shown in Figure 5, when any control switch 124 is turned on, the DC power supply VCC provides DC power to the voltage divider resistor 123, temperature sensor 114 and diode 115 in sequence. The ADC unit 122 in the adapter 120 collects the voltage between the temperature sensor 114 and the voltage divider resistor 123 through the corresponding acquisition channel, that is, the voltage division between the temperature sensor 114 and the diode 115 and the voltage divider resistor 123, and obtains the AD sampling value, i.e. the voltage value (the voltage value of the thermistor), as shown in the following formula (1):

[0072] VADC=(VCC-VD)×R / (Rz+R) (1)

[0073] Wherein, VADC is the AD sampling value, i.e. the voltage value, VCC is also used to represent the voltage of the DC power supply, VD is the voltage drop of the diode 115, R is the resistance value of the thermistor, and Rz is the resistance value of the voltage divider resistor 123. Instruction manual, pages 18 / 27, 21 CN 121265985 A

[0074] Assuming the voltage drop VD of diode 115 is 0.3V and the resistance Rz of voltage divider resistor 123 is 10KΩ, then when the temperature transfer...When the temperature sensed by sensor 114 is 0℃, the corresponding resistance is approximately 27.45KΩ. Based on formula (1), the corresponding AD sampling value V0 = (3.3 - 0.3) × 27.45 / (10 + 27.45) = 2.20V can be obtained. When the temperature sensed by temperature sensor 114 is 25℃, the corresponding resistance is approximately 10.0KΩ. Based on formula (1), the corresponding AD sampling value V25 = (3.3 - 0.3) × 10 / (10 + 10) = 1.50V can be obtained. When the temperature sensed by temperature sensor 114 is 50℃, the corresponding resistance is approximately 4.16KΩ. Based on formula (1), the corresponding AD sampling value V50 = (3.3 - 0.3) × 4.16 / (10 + 4.16) = 0.88V can be obtained. When the temperature sensor 114 is disconnected, for example, due to abnormal welding of the temperature sensor 114 or an open circuit, the corresponding AD sampling value is 3.3V. When the temperature sensor 114 and diode 115 are short-circuited, the corresponding AD sampling value is 0V.

[0075] Since the ADC unit 122 collects the voltage value of the temperature sensor 114, and the temperature sensor 114 has different voltage values ​​corresponding to different temperatures, the voltage values ​​collected by the ADC unit 122 can be reasonably segmented for differentiation, and the voltage value can be converted into a corresponding code. That is, different voltage ranges correspond to different codes, and the test code array of the electrode sheet 110 can be determined based on the code. The test code array includes at least one of a first code, a second code, and a third code, wherein the first code is used to indicate that the temperature detection unit 113 is in a normal state, the second code is used to indicate that the temperature detection unit 113 is in an open circuit state or an unset state, and the third code is used to indicate that the temperature detection unit 113 is in a short circuit state.

[0076] Specifically, taking the temperature sensor 114 sensing a temperature range of 0℃ to 50℃, and the AD sampling value (i.e., voltage value) obtained by the ADC unit 122 sampling in the range of 0.88V to 2.20V as an example, considering factors such as detection error, the voltage value range can be appropriately expanded to 0.5V to 3V.

[0077] When the AD sampling value obtained by the ADC unit 122 sampling is greater than 0.5V and less than 3V, the corresponding code is the first code, such as 1; when the AD sampling value obtained by the ADC unit 122 sampling is less than or equal to 0.3V, the corresponding code is the third code, such as 0; when the AD sampling value obtained by the ADC unit 122 sampling is greater than or equal to 3.1V, the corresponding code is the second code, such as 2. Therefore, in the corresponding detection positions numbered 1 to 20 on the electrode sheet 110, if the temperature sensor 114 is short-circuited, the corresponding code is 0, i.e., the third code; if the temperature sensor 114 is present, the corresponding code is 1, i.e., the first code; if there is no temperature sensor 114, or the temperature sensor 114 is disconnected...The corresponding code is 2, which is the second code.

[0078] Referring to Figure 2, under normal circumstances, when the electrode sheet 110 has 20 electrode units 112, and each electrode unit 112 corresponds to a temperature sensor 114 and a diode 115, that is, the corresponding detection positions of the electrode sheet 110 numbered 1 to 20 all have temperature sensors 114, and the codes are all 1. The 20 codes are combined to obtain the 20-bit standard code array 11111 11111 11111 11111 of the electrode sheet 110. When the temperature sensor 114 is open-circuited, assuming that the temperature sensor 114 of the detection position numbered 1 is open-circuited, the obtained 20-bit test code array is 21111 11111 11111 11111. When the temperature sensor 114 short-circuits, assuming the temperature sensor 114 at detection bit 1 short-circuits, the resulting 20-bit test code array is 01111 11111 11111 11111.

[0079] Based on the above coding rules, the quality of the electrode pad 110 can be detected during use so that the electrode pad 110 can be replaced in time to avoid low-temperature burns. The specific process is as follows:

[0080] Step 1: Provide at least one pair of qualified electrode pads 110 (since the electrode pad 110 is a medical device, each electrode pad 110 will undergo multiple tests before leaving the factory to ensure that the electrode pad 110 is qualified. Therefore, the electrode pads 110 provided to the user are all qualified electrode pads 110). Connect at least one pair of qualified electrode pads 110 to the aforementioned adapter 120, and connect the aforementioned adapter 120 to the aforementioned electric field generator 130.

[0081] Step 2: Power on the electric field generator 130 to provide DC power VCC to the temperature detection unit 113 in at least one pair of qualified electrode pads 110 for temperature detection. The ADC unit 122 in the adapter 120 collects the simulated temperature signal detected by the temperature detection unit 113 of at least one pair of qualified electrode pads 110, and obtains several AD sampling values. The first controller 121 in the adapter 120 obtains at least two sets of standard encoding arrays A1 and A2 according to the aforementioned encoding rules. The at least two sets of standard encoding arrays A1 and A2 can be stored in the adapter 120 and used as comparison encoding.

[0082] Step 3: Turn off the power of the electric field generator 130 and place the aforementioned at least one pair of qualified electrode pads 110 on the body surface corresponding to the tumor part of the patient.

[0083] Step 4: Power on the electric field generator 130 to provide a DC power supply VCC to the temperature detection unit 113 in at least one pair of qualified electrode plates 110 for temperature detection, and at the same time provide an alternating current power supply to the electrode unit 112 in the electrode plate 110.The signal is used to form an alternating electric field between the paired electrode pads 110 for tumor electric field therapy. The ADC unit 122 in the adapter 120 collects the temperature signal detected by the temperature detection unit 113 of at least one pair of qualified electrode pads 110 and obtains several AD sampling values. The first controller 121 in the adapter 120 obtains at least two sets of detection code arrays B1' and B2' according to the aforementioned encoding rules.

[0084] Step 5: The first controller 121 in the adapter 120 compares the detection code arrays B1' and B2' with the corresponding standard code arrays A1 and A2 one by one. If the detection code arrays B1' and B2' are consistent with the standard code arrays A1 and A2, then steps 4 and 5 are repeated; if at least one detection code array B1' or B2' is inconsistent with the standard code arrays A1 and A2, then step 6 is performed.

[0085] Step Six: The adapter 120 confirms the number of abnormal temperature detection units 113 in the electrode plates 110 corresponding to the inconsistency detection code array B1' or / and B2', and determines whether the number of abnormal temperature detection units 113 in the corresponding electrode plates 110 exceeds the upper limit. If it does not exceed the upper limit, proceed to Step Seven; if it exceeds the upper limit, proceed to Step Eight.

[0086] Step Seven: Continue to cycle through Steps Four and Five.

[0087] Step Eight: The adapter 120 issues an alarm through its internal reminder unit (not shown), and simultaneously sends a corresponding signal to the electric field generator 130 through the first communication unit 126, so that the electric field generator 130 stops providing alternating electrical signals to the electrode units 112 in the electrode plates 110, reminding the user to replace the corresponding electrode plates 110.

[0088] Step Nine: Turn off the power to the electric field generator 130, remove the electrode plate 110 that needs to be replaced from the adapter 120, and connect the new electrode plate 110 to the adapter 120.

[0089] Step 10: Power on the electric field generator 130 to continue providing DC power VCC to the temperature detection unit 113 in the electrode plate 110 connected to the adapter 120 for temperature detection. The ADC unit 122 in the adapter 120 acquires the temperature signal detected by the temperature detection unit 113 of the replaced qualified electrode 110, and obtains several AD sampling values. The first controller 121 in the adapter 120 obtains a new standard code array A1' or / and A2' according to the aforementioned encoding rules. At least one new standard code array A1' or / and A2' is compared with the corresponding standard code array A1 or / and A2 stored above. If the new standard code array A1' or / and A2' is consistent with the standard code array A1 or / and A2, the power supply of the electric field generator 130 is turned off, and the replaced new electrode 110 is placed on the body surface corresponding to the tumor part of the patient. Then, steps four and five are repeated. If, after comparing the new standard code array A1' or / and A2' with the aforementioned stored standard codes A1 or / and A2 one by one, there is at least one new standard code array, then...If arrays A1' and / or A2' are inconsistent with the previously stored and corresponding standard code arrays A1 and / or A2, then steps nine and ten are repeated until the new standard code arrays A1' and / or A2' of the replaced qualified electrode 110 are consistent with the previously stored and corresponding standard code arrays A1 and / or A2.

[0090] It should be noted that in the above steps, the paired electrode 110s can use electrode 110s of the same design, that is, the standard code arrays of the paired electrode 110s are the same, that is, the standard code arrays A1 and A2 are the same.

[0091] Steps one and two above can be replaced by the user inputting at least two sets of standard code arrays A1 and A2, which can be stored in the adapter 120 and used as comparison codes.

[0092] In step six above, the number of abnormal temperature detection units 113 in the corresponding electrode sheet 110 is determined by comparing the number of codes that differ from the corresponding standard code arrays A1' and / or A2' in the inconsistency detection code array (page 23, CN 121265985 A). For example, if only the first code differs from A1', the number of abnormal temperature detection units 113 in the corresponding electrode sheet 110 is 1; or if only the last two codes differ from A1', the number of abnormal temperature detection units 113 in the corresponding electrode sheet 110 is 2; and so on.

[0093] In step six above, the upper limit can be set to 1, that is, if there is one abnormal temperature detection unit 113 on the electrode sheet 110, then step eight (alarm and replacement of electrode sheet 110) is performed. In other embodiments, in step six above, the upper limit is not limited to 1, and can also be a positive integer close to the proportion of the number of temperature detection units 113 in the electrode sheet 110.

[0094] In step eight above, the reminder unit (not shown) may include at least two indicator lights (not shown) corresponding one-to-one with the electrode pads 110, indicating the status of the corresponding electrode pad 110. When the electrode pad 110 does not need to be replaced, the indicator lights (not shown) are all green; when the electrode pad 110 needs to be replaced, the indicator light (not shown) of the electrode pad 110 to be replaced is red. Alternatively, the status of the electrode pad 110 not needing to be replaced or needing to be replaced can be indicated by the indicator lights (not shown) being constantly lit or flashing.

[0095] In step eight above, the reminder unit (not shown) may also include a buzzer (not shown) to indicate the status of the electrode pad 110, and to remind the user at the same time as the indicator lights (not shown). When the electrode pad 110 does not need to be replaced, the buzzer (not shown) does not emit an audible alarm; when the electrode pad 110 needs to be replaced, the buzzer (not shown) emits an audible alarm.

[0096] While comparing the detection code array with the standard code array in steps four, five, and six above, temperature monitoring is also performed simultaneously. The steps include the following:

[0097] Step 11: The first controller 121 in the adapter 120 calculates the digital temperature signal detected by the temperature detection unit 113 based on several AD sampling values, and determines whether the digital temperature signal exceeds the preset temperature. If the digital temperature signal detected by the temperature detection unit 113 of the electrode 110 exceeds the preset temperature, then proceed to step 12; if the digital temperature signals detected by the temperature detection unit 113 of the electrode 110 are all below the preset temperature, then continue with step 11.

[0098] Step 12: When the first controller 121 in the adapter 120 detects that the temperature detected by the temperature detection unit 113 of the electrode 110 exceeds the preset temperature, it sends a corresponding signal through the first communication unit 126 so that the electric field generator 130 reduces or shuts down the corresponding alternating current signal until the temperature detected by the temperature detection unit 113 of the corresponding electrode 110 is below the preset temperature. The preset temperature range can be 39℃~41℃, preferably 40.5℃.

[0099] It should be noted that the above process is described using the adapter 120 for quality monitoring of the electrode sheet 110 as an example. Alternatively, the electric field generator 130 can also perform quality monitoring of the electrode sheet 110, or the adapter 120 and the electric field generator 130 can each perform partial quality monitoring. Details will not be elaborated here. Furthermore, the number of electrode sheets 110, the number of electrode units 112 in each electrode sheet 110, and the setting of the sampling code are all illustrative examples and are not intended to limit the scope of this application.

[0100] Specifically, during the production process of the electrode sheet 110, the first controller 121 of the adapter 120 or the second controller 131 of the electric field generator 130 can send the test code array of the electrode sheet 110 to a host computer (not shown). The host computer (not shown) then compares the test code array with the standard code array to monitor whether each temperature detection unit 113 of the electrode sheet 110 is properly connected, thereby determining whether the electrode sheet 110 is qualified. This allows for the screening out of unqualified electrode sheets 110, ensuring that each temperature detection unit 113 of the manufactured electrode sheet 110 can be tested normally. The standard code array includes at least the first code from the first code and the second code. The specific process is as follows:

[0101] Step 1: Provide a qualified electrode sheet 110, connect the electrode sheet 110 to the aforementioned adapter 120, connect the aforementioned adapter 120 to the aforementioned electric field generator 130, connect the aforementioned electric field generator 130 to a host computer (not shown, such as a computer), and connect the host computer (not shown) to a display (not shown) so that the host computer (not shown) controls the display (not shown) to display the code array (i.e., standard code array) of the qualified electrode sheet 110 and the instruction manual 21 / 27 pages 24 CN 121265985 A of the same batch and specifications as the qualified electrode sheet 110.The encoding array (i.e., test encoding array) of the electrode sheet 110' under test.

[0102] Step 2: Power on the electric field generator 130 to provide DC power VCC to the temperature detection unit 113 of the qualified electrode sheet 110 for temperature detection. The aforementioned adapter 120 obtains a set of standard encoding array A according to the aforementioned encoding rules. The standard encoding array A is routed from the aforementioned adapter 120 to the aforementioned electric field generator 130 to the host computer (not shown), and is finally stored in the host computer (not shown) and used as a standard encoding array for comparison.

[0103] Step 3: Provide a test electrode sheet 110' of the same batch and specification as the qualified electrode sheet 110. Connect the test electrode sheet 110' to the aforementioned adapter 120. The aforementioned adapter 120 obtains a set of test encoding array B according to the aforementioned encoding rules. The test encoding array B is routed from the aforementioned adapter 120 to the aforementioned electric field generator 130 to the host computer (not shown) and is displayed on the display (not shown).

[0104] Step 4: The host computer (not shown) compares the test code array B with the standard code array A for consistency judgment. If the test code array B is consistent with the standard code array A, proceed to Step 5; if the test code array B is inconsistent with the standard code array A, proceed to Step 6.

[0105] Step 5: The display (not shown) shows that the tested electrode 110' is "qualified". The tested electrode 110' is placed in the good product area, and then Steps 3 and 4 are repeated to test the next tested electrode 110'.

[0106] Step 6: The display (not shown) shows that the tested electrode 110' is "unqualified". The tested electrode 110' is placed in the defective product area, and then Steps 3 and 4 are repeated to test the next tested electrode 110'.

[0107] In step six above, while the display (not shown) shows that the tested electrode 110' is "unqualified", the host computer (not shown) can also control an alarm (not shown) to alert the operator that the tested electrode 110' is "unqualified" and needs to be placed in the defective product area. The alarm (not shown) can be an audible alarm, a visual alarm, etc.

[0108] It should be noted that through the above-mentioned quality inspection steps of the electrode 110, the standard code arrays of various qualified electrode 110s can be stored in the host computer (not shown) to form a standard code array library of qualified electrode 110s. When tested electrode 110's of the same specifications are tested again, the corresponding standard code array A in the standard code array library can be called as the comparison code for the batch of tested electrode 110's test and compared with the test code array B corresponding to the tested electrode 110's test to determine whether the batch of tested electrode 110's is qualified.

[0109] The encoding of the standard encoding array A and the corresponding test encoding array B of the electrode sheet 110' in the above steps.The combination is composed of multiple bits of code, and is not limited to the 20-bit code combination corresponding to the electrode sheet 110 in the embodiment of Figure 2. It can be composed of 13-bit, 24-bit, or other code combinations.

[0110] The above steps are described using the adapter 120 to perform quality detection of the electrode sheet 110 as an example. The quality detection of the electrode sheet 110 can also be performed by the electric field generator 130. In addition, the number of electrode sheets 110 that the adapter 120 can connect to, the number of electrode units 112 in each electrode sheet 110, and the setting of the sampling code are all exemplary descriptions and are not intended to limit this application.

[0111] It should be noted that in this embodiment, the control switch 124, which is electrically connected to the multiple grounding lines 118 of the electrode 110, and the bidirectional switching switch 125, which is electrically connected to the multiple dual-purpose signal lines 119 of the electrode 110, are both located in the adapter 120. However, in other embodiments, the control switch 124, which is electrically connected to the grounding lines 118, and the bidirectional switching switch 125, which is electrically connected to the dual-purpose signal lines 119, can also be located on the electrode 110 or in the electric field generator 130, which will not be described in detail here. In addition, the ADC unit 122 located in the adapter 120 can also be located in the electric field generator 130 and directly controlled by the second controller 131.

[0112] Figure 6 shows a schematic diagram of the tumor electric field therapy system 300 of the second embodiment of this application, whose electrode 310 also has a corresponding open space and free end. Unlike the tumor electric field therapy system 100 of the first embodiment shown in Figure 1 (pages 22 / 27, CN 121265985 A), in terms of spatial structure, the multiple electrode units 312 of the electrode sheet 310 in this embodiment are connected in a symmetrical manner. For example, adjacent electrode units 312 in the four electrode units 312 located in the first row and third column, the second row and third column, the third row and third column, and the fourth row and third column are connected by a column-directed connecting strip. At the same time, adjacent electrode units 312 in the four electrode units 312 located in the first row and fourth column, the second row and fourth column, the third row and fourth column, and the fourth row and fourth column are also connected by a column-directed connecting strip. As can be seen from the figure, the 10 electrode units 312 on the left and the 10 electrode units 312 on the right are symmetrically arranged.

[0113] It should be noted that for other related descriptions of the second embodiment, please refer to the related descriptions of the first embodiment, which will not be repeated here.

[0114] Second embodiments:

[0115] FIG7 shows a schematic diagram of a tumor electric field therapy system 400 according to a third embodiment of this application. Unlike the tumor electric field therapy system 100 of the first embodiment shown in FIG1, the electrode sheet 410 of this embodiment has 13 electrode units.412. These 13 electrode units 412 are arranged in a spatial structure of five rows and five columns. Specifically, each of the first and fifth rows includes two electrode units 412, and the two electrode units 412 in each row are located in the second and fourth columns, respectively; each of the second to fourth rows includes three electrode units 412, and the three electrode units 412 in each row are located in the first, third, and fifth columns, respectively. Adjacent electrode units 412 in each of the five rows are connected by a connecting strip (unnumbered). Adjacent electrode units 412 in each of the first, third, and fifth columns are also connected by a connecting strip (unnumbered). The electrode unit 412 located in the first row and second column is connected to the electrode units 412 located in the second row and first column and the first row and third column respectively via a connecting strip (unlabeled); the electrode unit 412 located in the first row and fourth column is connected to the electrode units 412 located in the second row and third column and the first row and fifth column respectively via a connecting strip (unlabeled); the electrode unit 412 located in the fifth row and second column is connected to the electrode units 412 located in the fourth row and first column and the fourth row and third column respectively via a connecting strip (unlabeled); the electrode unit 412 located in the fifth row and fourth column is connected to the electrode units 412 located in the fourth row and third column and the fourth row and fifth column respectively via a connecting strip (unlabeled). Figure 8 is a schematic diagram of the circuit connection between an electrode plate 410 and an adapter 420 of the tumor electric field therapy system 400 shown in Figure 7. As shown in Figure 8, the 13 electrode units 412 are configured in three rows and five columns in the circuit connection. The first two rows each contain 5 electrode units 412, and the third row contains 3 electrode units 412. Therefore, only three of the four control switches 424 are connected to three grounding wires 418, and the other control switch 424 is left floating. A wire (unlabeled) is shorted at a corresponding position in the same row. That is, a wire (unlabeled) is set at the intersection of the three rows and four columns in the circuit connection and shorted to the grounding terminal 413A of the temperature detection unit 413 in the same row, and at the same time shorted to the signal terminal 413B of the temperature detection unit 413 in the same column.

[0116] Referring again to Figure 8, under normal circumstances, when the electrode sheet 410 has 13 electrode units 412, and each electrode unit 412 corresponds to a temperature sensor 414 and a diode 415, that is, the corresponding detection positions numbered 1 to 13 of the electrode sheet 410 all have temperature sensors 414, and the codes are all 1. Combining the 20 codes, we obtain the 20-bit standard code array 11111 11111 11102 22222 corresponding to the electrode sheet 410 in this embodiment. When the temperature sensor 414 is open-circuited, assuming that the temperature sensor 414 at detection position number 1 is open-circuited, the obtained 20-bit test code array is 21111 11111 11102.22222. When the temperature sensor 414 is short-circuited, assuming that the temperature sensor 414 at detection bit 1 is short-circuited, the resulting 20-bit test code array is 01111 11111 11111 11111.

[0117] Based on the above coding rules, the quality of the electrode sheet 410 can be detected during use so that the electrode sheet 410 can be replaced in time to avoid low-temperature burns. For the specific process, please refer to the relevant description in the first embodiment, which will not be repeated here.

[0118] Figure 9 shows a schematic diagram of the circuit connection between the electrode sheet 510 and the adapter 520 in the fourth embodiment of this application. Unlike the electrode plate 410 and adapter 420 of the third embodiment shown in Figure 8, the 13 electrode units 512 in this embodiment are configured as four rows and four columns in the circuit connection on pages 23 / 27 of the specification (CN 121265985 A). The first three rows each contain four electrode units 512, and the fourth row contains one electrode unit 512. Therefore, only four of the five bidirectional switching switches 525 are connected to the dual-purpose signal line 519, and the other bidirectional switching switch 525 is left floating. A wire (unlabeled) is shorted at a corresponding position in the circuit connection. That is, a wire (unlabeled) is set at the intersection of the four rows and two columns to short the ground terminal 513A of the temperature detection unit 513 in the same row group, and at the same time to short the signal terminal 513B of the temperature detection unit 513 in the same column group.

[0119] Referring again to Figure 9, under normal circumstances, when the electrode sheet 510 has 13 electrode units 512, and each electrode unit 512 corresponds to a temperature sensor 514 and a diode 515, that is, when the corresponding detection positions of the electrode sheet 510 numbered 1-4, 6-9, 11-14, and 16 all have temperature sensors 514, and the codes are all 1, the 20 codes are combined to obtain the 20-bit standard code array 11112 11112 11112 10222 corresponding to the electrode sheet 510 in this embodiment. When the temperature sensor 514 is open-circuited, assuming that the temperature sensor 514 at detection position number 1 is open-circuited, the obtained 20-bit test code array is 21112 11112 11112 10222. When the temperature sensor 514 short-circuits, assuming the temperature sensor 514 at detection bit 1 short-circuits, the resulting 20-bit test code array is 01112 11112 11112 10222.

[0120] Based on the above coding rules, the quality of the electrode sheet 510 can be detected during use so that the electrode sheet 510 can be replaced in time to avoid low-temperature burns. For the specific process, please refer to the relevant description in the first embodiment, which will not be repeated here.

[0121] Figure 10 shows a schematic diagram of the tumor electric field therapy system 600 of the fifth embodiment of this application, and Figure 11 shows...A schematic diagram of a tumor electric field therapy system 700 according to the sixth embodiment of this application. In terms of spatial structure, the arrangement of its electrode units is the same as that of the tumor electric field therapy system 400 shown in Figure 7. The difference lies in the arrangement of the connecting strips, which allows for different application methods, such as horizontal or vertical application. Specifically, in the electrode pads 610 of the tumor electric field therapy system 600 shown in Figure 10, no connecting strips are provided between the electrode unit 612 located in the first row, second column and the two electrode units 612 located in the first row, fourth column, and second row, first column; no connecting strips are provided between the electrode unit 612 located in the fifth row, fourth column and the two electrode units 612 located in the fifth row, second column, and fourth row, fifth column; no connecting strips are provided between the two electrode units 610 located in the second row, fifth column, and third row, fifth column; and no connecting strips are provided between the two electrode units 610 located in the second row, fifth column, and third row, fifth column. In the electrode pads 710 of the tumor electric field therapy system 700 shown in Figure 11, no connecting strip is provided between adjacent electrode units 712 in the first and fifth rows; no connecting strip is provided between two electrode units 712 in the first and third columns of the second row; and no connecting strip is provided between two electrode units 712 in the third and fifth columns of the fourth row. The connecting strips (not shown) of the electrode pads 610 and 710 are arranged in this way to form corresponding open spaces and free ends, which facilitates application.

[0122] It should be noted that for other related descriptions of the second embodiments, please refer to the related descriptions of the first embodiments, which will not be repeated here.

[0123] Third embodiments:

[0124] Figure 12 shows a schematic diagram of the tumor electric field therapy system 800 of the seventh embodiment of this application. Unlike the tumor electric field therapy system 100 shown in Figure 1, the electrode pads 810 of this embodiment have 9 electrode units 812, which are arranged in three rows and three columns in spatial structure. Figure 13 is a schematic diagram of the circuit connection between an electrode plate 810 and an adapter 820 of the tumor electric field therapy system 800 shown in Figure 12. As shown in Figure 13, the nine electrode units 812 are configured in two rows and five columns in the circuit connection. The first row contains five electrode units 812, and the second row contains four electrode units 812. Therefore, only two of the four control switches 824 are connected to the ground wire 818, and the other two control switches 824 are left floating. A wire (unlabeled) is shorted at a corresponding position in the circuit connection. That is, a wire (unlabeled) is set at the intersection of the two rows and five columns in the circuit connection and shorted to the ground terminal 813A of the temperature detection unit 813 in the same row group. At the same time, it is shorted to the signal terminal 813B of the temperature detection unit 813 in the same row group (page 24 / 27, CN 121265985 A).

[0125] Referring again to Figure 13, under normal circumstances, when the electrode plate 810 has 9 electrode units 812, and each electrode unit 812 corresponds to a temperature sensor 814 and a diode 815, that is, the corresponding detection positions numbered 1 to 9 of the electrode plate 810 all have temperature sensors 814, and the code is 1 for each. Combining the 20 codes, we obtain the 20-bit standard code array 11111 11110 22222 22222 for the electrode plate 810 in this embodiment. When the temperature sensor 814 is open-circuited, assuming that the temperature sensor 814 at detection position number 1 is open-circuited, the resulting 20-bit test code array is 21111 11110 22222 22222. When the temperature sensor 814 is short-circuited, assuming that the temperature sensor 814 at detection position number 1 is short-circuited, the resulting 20-bit test code array is 01111 11110 22222 22222.

[0126] Based on the above coding rules, the quality of the electrode 810 can be detected during use so that the electrode 810 can be replaced in time to avoid low-temperature burns. For the specific process, please refer to the relevant description in the first embodiment, which will not be repeated here.

[0127] Figure 14 shows a schematic diagram of the circuit connection between the electrode 910 and the adapter 920 in the eighth embodiment of this application. Unlike the electrode 810 and adapter 820 in the seventh embodiment shown in Figure 13, the nine electrode units 912 in this embodiment are configured in three rows and three columns in the circuit connection. Each row contains three electrode units 912. Therefore, only three of the four control switches 924 are connected to the ground wire 918, and the other control switch 924 is left floating. Only three of the five bidirectional switching switches 925 are connected to the dual-purpose signal line 919, and the other two bidirectional switching switches 925 are left floating.

[0128] Continuing to refer to Figure 14, under normal circumstances, when the electrode sheet 910 has 9 electrode units 912, and each electrode unit 912 corresponds to a temperature sensor 914 and a diode 915, that is, the corresponding detection positions of electrode sheet 910 numbered 1-3, 6-8, and 11-13 all have temperature sensors 914, and the codes are all 1. Combining the 20 codes, we obtain the 20-bit standard code array 11122 11122 11122 22222 corresponding to the electrode sheet 910 in this embodiment. When the temperature sensor 914 is open-circuited, assuming that the temperature sensor 914 at detection position number 1 is open-circuited, the obtained 20-bit test code array is 21122 11122 11122 22222. When temperature sensor 914 short-circuits, assuming temperature sensor 914 at detection bit 1 short-circuits, the resulting 20-bit test code array is 01122 11122 11122 22222.

[0129] Based on the above coding rules, the quality of the electrode sheet 910 can be inspected during use so that the electrode sheet 910 can be replaced in time to avoid low-temperature burns. For the specific process, please refer to the relevant description in the first embodiment, which will not be repeated here.

[0130] It should be noted that for other relevant descriptions of the third embodiment, please refer to the relevant descriptions of the first embodiment, which will not be repeated here.

[0131] The substrate of the electrode sheet of this application is electrically connected to the signal terminals of the same electrode unit and the corresponding temperature detection unit through the same dual-purpose signal line. While realizing the transmission of alternating electrical signals and DC electrical signals for temperature signal acquisition and the acquired temperature detection signals through the dual-purpose signal line, it also greatly reduces the number of conductive traces (grounding wire, dual-purpose signal line) laid on it, reduces the wiring difficulty of the substrate, simplifies the manufacturing process, reduces the weight of the substrate, and reduces the manufacturing cost. At the same time, it can realize real-time and comprehensive monitoring of the temperature of all electrode units on the electrode sheet without increasing the weight of the electrode sheet or the core of the first cable electrically connected to the electrode sheet, thereby realizing the quality inspection of the electrode sheet.

[0132] In the tumor electric field therapy system of this application, the same type of adapter can be adapted to various electrode sheets with different numbers of grounding wires and dual-purpose signal lines. Although the adapter may have a floating bidirectional switching switch and / or control switch for different electrode sheets, its adaptability is improved.

[0133] Referring to FIG15, this application also provides an electrode sheet quality detection method, which includes the following steps:

[0134] S110: Determine the temperature detection signal of each electrode unit in the electrode sheet.

[0135] Specifically, referring to FIG2, the switching unit is controlled so that at least one column group in the corresponding electrode sheet 110 is connected to the corresponding temperature sampling point via the dual-purpose signal line 119 corresponding to the specification page 25 / 27 28 CN 121265985 A; the control switch 124 corresponding to each row group is controlled so as to sample the analog temperature signal of the corresponding electrode unit 112 based on the corresponding temperature sampling point to determine the temperature detection signal of each electrode unit 112 in each electrode sheet 110.

[0136] S120: Determine the test code array of the electrode sheet based on the temperature detection signal.

[0137] Specifically, the temperature detection signal is represented by a voltage value. Determining the test code array of the electrode sheet 110 based on the temperature detection signal includes: determining the voltage range in which the voltage value is located; determining the code corresponding to the corresponding temperature detection unit 113 based on the voltage range in which the voltage value is located, wherein different voltage ranges in which the voltage value is located correspond to different codes; generating the test code array of the corresponding electrode sheet 110 based on the code corresponding to each temperature detection unit 113. For example, the test code array...Includes at least one of a first code, a second code, and a third code, wherein the first code is used to indicate that the temperature detection unit 113 is in a normal state, the second code is used to indicate that the temperature detection unit 113 is in an open circuit state or an unset state, and the third code is used to indicate that the temperature detection unit 113 is in a short circuit state.

[0138] S130: Compare the test code array with the standard code array to identify the fault condition of each temperature detection unit in the corresponding electrode sheet, or determine whether the corresponding electrode sheet is qualified.

[0139] Specifically, during the use of the electrode sheet 110, the test code array can be compared with the standard code array to identify the fault condition of each temperature detection unit 113 in the corresponding electrode sheet 110, so as to realize the quality detection of the electrode sheet 110 during use. When a faulty temperature detection unit 113 in the electrode sheet 110 is identified, the tumor electric field quality system 100 is also controlled to issue a first reminder message, and the electric field generator 130 is controlled to continue to work.

[0140] After comparing the test code array with the standard code array for consistency, the number of faulty temperature detection units 113 in the electrode 110 is determined, and the electrode 110 is judged to need to be replaced based on the number of faulty temperature detection units 113 in the electrode 110. When it is determined that the electrode 110 needs to be replaced, the tumor electric field therapy system 100 is controlled to issue a second reminder message, and the electric field generator 130 is controlled to stop working.

[0141] Specifically, during the production process of the electrode 110, the test code array and the standard code array can be compared for consistency to determine whether the corresponding electrode 110 is qualified, so as to realize the quality inspection of the electrode 110 during the production process. After determining whether the corresponding electrode 110 is qualified, the test code array, the standard code array and the judgment result of whether the electrode 110 is qualified can also be displayed, and when the electrode 110 is unqualified, a corresponding reminder message can be issued.

[0142] Although the various operations are depicted in the accompanying drawings in a specific order, this should not be construed as requiring that these operations must be performed in the specific order shown or in chronological order, nor should it be construed as requiring that all the operations shown must be performed to obtain the desired result.

[0143] This application also provides a tumor treatment device (not shown), including: the aforementioned tumor electric field therapy system 100 (or 300, etc.).

[0144] This application also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the aforementioned electrode quality detection method.

[0145] This application also provides a tumor electric field therapy adapter 120 (or 320, etc.), including a first memory (not shown) and a first controller 121 (or 321, etc.), the first memory (not shown) storing a computer program, which...When executed by the first controller 121 (or 321), the aforementioned electrode sheet quality detection method is implemented.

[0146] This application also provides an electric field generator 130 (or 330, etc.) for tumor electric field therapy, including a second memory (not shown) and a second controller 131 (or 331, etc.). The second memory (not shown) stores a computer program, which, when executed by the second controller 131 (or 331, etc.), implements the aforementioned electrode sheet quality detection method.

[0147] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application, and they should all be covered within the scope of the claims and the specification of this application. In particular, as long as there is no structural conflict, the technical features mentioned in the various embodiments can be combined in any way. This application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims. Instruction manual, page 27 / 27, 30 CN 121265985 A, Figure 1; Instruction manual, Figure 1 / 13, page 31 CN 121265985 A, Figure 2; Instruction manual, Figure 2 / 13, page 32 CN 121265985 A, Figure 3; Instruction manual, Figure 3 / 13, page 33 CN 121265985 A, Figure 4; Instruction manual, Figure 4 / 13, page 34 CN 121265985 A, Figure 6; Instruction manual, Figure 5 / 13, page 35 CN 121265985 A, Figure 7; Instruction manual, Figure 6 / 13, page 36 CN 121265985 A, Figure 8; Instruction manual, Figure 7 / 13, page 37 CN 121265985 A, Figure 9; Instruction manual, Figure 8 / 13, page 38 CN 121265985 A, Figure 10; Instruction manual, Figure 9 / 13, page 39 CN 121265985 A, Figure 11. Figure 12 of the instruction manual, page 40 of page 10 / 13, CN 121265985 A; Figure 13 of the instruction manual, page 41 of page 11 / 13, CN 121265985 A; Figure 14 of the instruction manual, page 42 of page 12 / 13, CN 121265985 A; Figure 15 of the instruction manual, page 13 / 13.Page 43 CN 121265985 A Abstract The present invention provides a tumor electric field therapy system and a quality testing method for an electrode pad. The system comprises electrode pads, each electrode pad comprises a plurality of electrode units and a plurality of temperature detection units, the plurality of electrode units are divided into a plurality of row groups and a plurality of column groups. Within each row group, the ground ends of the respective temperature detection units are shorted together to a same ground line. Within each column group, the signal ends of the respective temperature detection unit are respectively short-circuited to corresponding electrode units and then collectively connected to a same dual-purpose signal line. In this way, the electric field generator or the adapter can achieve zoned control of a plurality of electrode units and sampling of temperature detection signals by using fewer conductive traces, and perform quality detection on the electrodepads according to the sampled temperature detection signals.

Claims

1. A tumor electric field treatment system, comprising: The electrode sheet comprises a plurality of electrode units and a plurality of temperature detection units, each of the electrode units can apply an alternating electric signal, each of the temperature detection units is arranged corresponding to one of the electrode units for detecting the temperature at each of the electrode units, the signal end of each of the temperature detection units is short-circuited with the corresponding electrode unit, wherein a plurality of the temperature detection units are configured as a plurality of row groups and a plurality of column groups in circuit, the ground end of each of the temperature detection units in the same row group is short-circuited to the same ground line, the ground end of each of the temperature detection units in different row groups is connected in parallel through different ground lines, the signal end of each of the temperature detection units in the same column group is short-circuited to the same dual-purpose signal line, and the signal end of each of the temperature detection units in different column groups is connected in parallel through different dual-purpose signal lines. The adapter or the electric field generator electrically connected with the electrode sheet is configured to switch each of the dual-purpose signal lines to be connected to a temperature sampling point or an alternating power supply line, so as to (1) in the case that each of the dual-purpose signal lines is connected to the temperature sampling point, a) each of the ground lines is sequentially and individually turned on so that the analog temperature signals detected by each of the temperature detection units are sampled based on the temperature sampling point; b) a test code array of the electrode sheet is determined based on the sampled analog temperature signals detected by each of the temperature detection units; c) the test code array is compared with a standard code array for consistency; (2) in the case that each of the dual-purpose signal lines is connected to the alternating power supply line, the corresponding electrode unit is applied with the alternating electric signal based on the alternating power supply line. Each of the ground lines of the electrode sheet is connected in series with a corresponding control switch and grounded through the corresponding control switch; each of the dual-purpose signal lines of the electrode sheet is connected in series with a corresponding bidirectional switching switch, the first end of each of the bidirectional switching switches is connected with a temperature sampling point of the corresponding column group, and the second end of each of the bidirectional switching switches is connected with the alternating power supply line.

2. The tumor electric field therapy system of claim 1, wherein, The adapter or the electric field generator is provided with an ADC unit, the ADC unit is provided with a plurality of detection channels, and the first end of each of the bidirectional switching switches is electrically connected with a corresponding detection channel through the corresponding temperature sampling point.

3. The tumor electric field treatment system of claim 2, wherein, The adapter or the electric field generator is provided with a controller, the controller controls the turn-on and turn-off of each of the control switches and the turn-on of the first end or the second end of the bidirectional switching switch.

4. The tumor electric field therapy system of claim 2, wherein, The number of the control switches is the same as the number of the ground lines, and the number of the bidirectional switching switches is the same as the number of the dual-purpose signal lines.

5. The tumor electric field therapy system of claim 2, wherein, The number of the control switches is greater than the number of the ground lines, and / or the number of the bidirectional switching switches is greater than the number of the dual-purpose signal lines; wherein the control switches not connected with the ground lines are in a suspended state, and / or the bidirectional switching switches not connected with the dual-purpose signal lines are in a suspended state.

6. The tumor electric field therapy system of claim 2, wherein, ​ 7. The tumor electric field therapy system of claim 2, wherein, The analog temperature signals detected by each of the temperature detection units are represented by voltage values, and the voltage values correspond to different codes according to different voltage intervals. The test code array includes at least one of a first code, a second code and a third code, wherein the first code is used to indicate that the temperature detection unit is in a normal state, the second code is used to indicate that the temperature detection unit is in an open circuit state or an uninstalled state, and the third code is used to indicate that the temperature detection unit is in a short circuit state.

8. The tumor electric field treatment system of claim 7, wherein, The standard code array includes at least the first code of the first code and the second code.

9. The tumor electric field treatment system of claim 8, wherein, The standard code array is pre-stored in the adapter or the electric field generator, or is obtained by the adapter or the electric field generator by detecting a qualified electrode sheet.

10. The tumor electric field treatment system of any one of claims 1-9, wherein, The adapter or the electric field generator is configured to determine at least one of the following by comparing the test code array with the standard code array: (1) whether the electrode sheet is qualified or damaged; (2) whether the electrode sheet has a faulty temperature detection unit; (3) the number of faulty temperature detection units in the electrode sheet; and (4) whether the electrode sheet needs to be replaced.

11. An electrode sheet quality detection method characterized by comprising: The method is applied to the tumor electric field treatment system according to any one of claims 1-10, and the method comprises: determining the temperature detection signals of each electrode unit of the electrode sheet; determining a test code array of the electrode sheet according to the temperature detection signals; comparing the test code array with a standard code array to detect the quality of the electrode sheet.

12. The method of claim 11, wherein, The adapter or the electric field generator is configured to detect the quality of the electrode sheet to identify whether there is a faulty temperature detection unit in the electrode sheet during use of the electrode sheet.

13. The method of claim 12, wherein, When the electrode sheet has a faulty temperature detection unit, the method further comprises: determining the number of faulty temperature detection units in the electrode sheet; determining whether the electrode sheet needs to be replaced according to the number of faulty temperature detection units.

14. The method of claim 13, wherein, The adapter or the electric field generator is further configured to detect the quality of the electrode sheet to determine whether the electrode sheet is qualified during production of the electrode sheet, and the method further comprises displaying the standard code array, the test code array of the electrode sheet and whether the electrode sheet is qualified.

15. The method of claim 13, wherein, The adapter or the electric field generator is further configured to detect the quality of the electrode sheet to determine whether the electrode sheet is damaged during use of the electrode sheet.