Electrode patch, method for detecting electrode patch abnormality, and tumor electrotherapy system

By configuring the temperature sensors into multiple row groups and column groups on the electrode sheet of the tumor electric field treatment system, and detecting the switch combination relationship, the problem of insufficient coverage of the electrode sheet temperature sensor is solved, and 100% coverage and abnormal detection capabilities are achieved, while avoiding excessive loading of the electrode sheet and reduced application effect.

CN117919599BActive Publication Date: 2025-06-27JIANGSU HEALTHY LIFE INNOVATION MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202410011962.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-30
Publication Date
2025-06-27
Estimated Expiration
2042-12-30

AI Technical Summary

Technical Problem

In the existing tumor electric field treatment system, the insufficient coverage of the temperature sensor of the electrode sheet leads to an increase in the risk of low-temperature scalding in the skin. At the same time, increasing the number of cable cores will lead to excessive loading of the electrode sheet and reduced application effect.

Method used

By configuring multiple temperature sensors into multiple row groups and column groups, and connecting in series and ground terminals on the circuit connection, a 100% temperature sensor coverage is achieved. At the same time, by configuring the switch combination relationship, abnormal temperature sensors are detected and judged.

Benefits of technology

Without increasing the number of cable cores, higher temperature sensor coverage is achieved, avoiding the electrode sheet being too heavy, maintaining the electrode sheet being applied, and being able to quickly detect and position abnormal temperature sensors.

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Abstract

The present invention discloses an electrode sheet, an electrode sheet abnormality detection method, and a tumor electric field therapy system. The electrode sheet includes: a plurality of electrode elements and a plurality of temperature sensors. The plurality of temperature sensors are configured into a plurality of row groups and a plurality of column groups in terms of circuit connection; corresponding temperature sensors in each row group are connected in series, and the grounding ends of the corresponding temperature sensors in each column group are connected together. Among them, whether there is an abnormal temperature sensor in the electrode sheet is determined based on the temperature signals sampled from one or more corresponding combinations of all the temperature sensors of the electrode sheet. Thus, without increasing the number of wire cores of the cable, 100% temperature sensor coverage is achieved, and abnormal temperature sensors can be detected.
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Description

[0001] This application is a divisional application of the invention patent application with the application date of December 30, 2022, application number 202211721902.5, and invention creation name "Electrode Sheet, Electrode Sheet Temperature Detection Method and Tumor Electric Field Therapy System". Technical Field

[0002] The present invention relates to the technical field of medical devices, and in particular to an electrode sheet, an electrode sheet abnormality detection method and a tumor electric field therapy system. Background Art

[0003] Tumor electric field therapy is a tumor treatment method that uses an electric field generator to generate a low-intensity, medium-high frequency alternating electric field to interfere with the mitotic process of tumor cells. The electric field applied by this treatment method can affect the aggregation of tubulin, prevent the formation of the spindle, inhibit the mitotic process, and induce apoptosis of cancer cells.

[0004] Currently, the tumor electric field therapy system mainly includes an electric field generator, an adapter electrically connected to the electric field generator, and multiple pairs of electrode sheets electrically connected to the electric field generator through the adapter. The electric field generator transmits the alternating electric signal for tumor electric field therapy to each electrode sheet through the adapter, and then applies an alternating electric field to the tumor site of the patient through the paired electrode sheets for tumor electric field therapy. Among them, when the electric field is applied to the patient's body, heat will accumulate at the corresponding position where the electrode sheet is attached to the skin. Therefore, it is necessary to monitor the temperature of the electrode sheet attached to the corresponding body surface of the patient's tumor site in real time. When the body surface temperature is too high, it is necessary to adjust the intensity of the alternating electric field in time to avoid low-temperature burns of the patient's skin caused by excessive temperature.

[0005] In the related art, a thermistor element is provided on each corresponding electrode element of the electrode sheet, and multiple thermistor elements are connected in parallel with each other. The temperature change of the corresponding electrode element is monitored in real time through the resistance value change of the thermistor element. For example, in an electrode sheet with 9 electrode elements, 8 thermistor elements are provided, and the resistance values of the 8 thermistor elements are transmitted through a 10-core cable. The 10-core cable includes 1 alternating current signal line (AC line), 1 ground line, and 8 signal lines. The coverage rate of the thermistor elements in this electrode sheet is approximately 89% (8 / 9≈0.89). When the number of electrode elements increases, if the number of thermistor elements remains unchanged, it is easy to cause low-temperature burns on the patient's skin. For example, in an electrode sheet with 20 electrode elements, 8 thermistor elements are provided, and the coverage rate of the thermistor elements in the electrode sheet is approximately 40% (8 / 20 = 0.4), that is, the temperature of more than half of the electrode elements cannot be monitored, and it is easy to cause low-temperature burns on the patient's skin. If a thermistor element is provided on each electrode element to maintain the coverage rate of the thermistor elements, then a cable with more cores is required, but this will cause the cable to become thicker and the softness of the cable to become harder, increasing the difficulty of cable fixation. At the same time, the overall weight of the electrode sheet will increase due to the increase in the number of cable cores, which will not only affect the adhesion effect between the electrode sheet and the corresponding body surface of the patient's tumor site, but also increase the patient's load and cause discomfort. Summary of the Invention

[0006] The present invention aims to solve at least one of the technical problems in the related art to some extent. For this reason, the first object of the present invention is to provide an electrode sheet for a tumor electric field treatment system, which can achieve a larger coverage rate of temperature sensors without increasing the number of cable cores, avoid excessive load on the electrode sheet, maintain the sticking effect of the electrode sheet, and can detect abnormal temperature sensors.

[0007] The second object of the present invention is to provide a tumor electric field treatment system.

[0008] The third object of the present invention is to provide a tumor treatment device.

[0009] The fourth object of the present invention is to provide a method for detecting electrode sheet abnormalities in a tumor electric field treatment system.

[0010] The fifth object of the present invention is to provide a computer-readable storage medium.

[0011] The sixth object of the present invention is to provide an adapter for a tumor electric field treatment system.

[0012] The seventh object of the present invention is to provide an electric field generator for a tumor electric field treatment system.

[0013] To achieve the above object, the present invention provides an electrode sheet for a tumor electric field therapy system, comprising: a plurality of electrode elements, each of which can apply an alternating electric field; a plurality of temperature sensors, each of which is arranged corresponding to an electrode element to detect the temperature at the corresponding electrode element, each of the temperature sensors has a signal terminal and a ground terminal, and the plurality of temperature sensors are configured into a plurality of row groups and a plurality of column groups in terms of circuit connection, the corresponding temperature sensors in each row group are connected in series, and the ground terminals of the corresponding temperature sensors in each column group are connected together; wherein, whether there is an abnormal temperature sensor in the electrode sheet is judged based on the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet sampled.

[0014] For the electrode sheet according to an embodiment of the present invention, by configuring a plurality of temperature sensors into a plurality of row groups and a plurality of column groups, and connecting the corresponding temperature sensors in series in each row group and connecting the ground terminals of the corresponding temperature sensors in each column group together, whether there is an abnormal temperature sensor in the electrode sheet can be judged based on the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet sampled, so that without increasing the number of cable cores, 100% temperature sensor coverage can be achieved, the excessive load of the electrode sheet can be avoided, the pasting effect of the electrode sheet can be maintained, and the abnormal temperature sensor can be detected.

[0015] Further, the corresponding temperature sensors in each row group are connected in series and then connected to a first switch, and the ground terminals of the corresponding temperature sensors in each column group are connected together and then connected to a second switch; wherein, whether there is an abnormal temperature sensor in the electrode sheet is judged by the configuration of the switch combination relationship of the first switch and the second switch and based on the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet sampled according to the switch combination relationship of the first switch and the second switch.

[0016] Further, after the corresponding temperature sensors in each row group are connected in series, they are connected to a DC power supply through series connection of the first switch and a voltage dividing resistor, and after the ground terminals of the corresponding temperature sensors in each column group are connected together, they are connected to a ground pin through the second switch.

[0017] Further, the electrode sheet further comprises a plurality of diodes, each of the diodes has an anode and a cathode, and each of the diodes is arranged corresponding to a temperature sensor. Wherein, after the ground terminal of the corresponding temperature sensor in each column group is connected to the anode of the corresponding diode, they are connected together through the cathode of the corresponding diode and then connected to the corresponding second switch.

[0018] Further, the temperature sensor is a thermistor.

[0019] Further, it further includes a substrate, and the voltage dividing resistor, the first switch, and the second switch are all disposed outside the substrate.

[0020] Further, the electrode element is a dielectric element.

[0021] Further, the dielectric element is a ceramic sheet.

[0022] Further, each of the electrode elements is provided with a perforation, and the perforation is adapted to mount the temperature sensor.

[0023] Further, a plurality of the electrode elements are connected in parallel to an alternating current signal line.

[0024] Further, a plurality of the electrode elements are configured into a plurality of row groups and a plurality of column groups in circuit connection, and the number of the electrode elements in each row group is the same as the number of the temperature sensors, and the number of the electrode elements in each column group is the same as the number of the temperature sensors.

[0025] Further, there are 20 of the plurality of electrode elements, and they are arranged in a four-row group and a five-column group in circuit connection; or, there are 9 of the plurality of electrode elements, and they are arranged in a three-row group and a three-column group in circuit connection.

[0026] Further, a plurality of the electrode elements are arranged in a substantially array in spatial arrangement.

[0027] Further, the number of the first switches is equal to the number of the row groups, and the number of the second switches is equal to the number of the column groups.

[0028] Further, the total number of the first switches and the second switches does not exceed 9.

[0029] To achieve the above object, the present invention further provides a tumor electric field treatment system. A tumor electric field treatment system includes: at least a pair of the foregoing electrode sheets; a controller, configured to determine whether there is an abnormal temperature sensor in the corresponding electrode sheet based on the temperature signals detected by one or more combinations of all the temperature sensors of the electrode sheet sampled.

[0030] According to the tumor electric field treatment system of the present invention, through the foregoing electrode sheet, it is possible to achieve a larger temperature sensor coverage rate without increasing the number of cable cores, avoid excessive load on the electrode sheet, maintain the sticking effect of the electrode sheet, and be able to detect a faulty temperature sensor.

[0031] Further, when the electrode sheet includes a first switch and a second switch, the controller is further configured to determine whether there is an abnormal temperature sensor in the corresponding electrode sheet by configuring the switch combination relationship between the first switch and the second switch and judging the temperature signal detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet based on the switch combination relationship between the first switch and the second switch.

[0032] Further, there are four electrode sheets.

[0033] To achieve the above object, the present invention further provides a tumor treatment device. A tumor treatment device includes: at least a pair of the foregoing electrode sheets, or the foregoing tumor electric field treatment system.

[0034] The tumor treatment device provided by the present invention can achieve a larger temperature sensor coverage rate, avoid excessive load on the electrode sheet, maintain the sticking effect of the electrode sheet, and detect a faulty temperature sensor through the foregoing electrode sheet or tumor electric field treatment system without increasing the number of cable cores.

[0035] To achieve the above object, the present invention further provides a method for detecting electrode sheet abnormality in a tumor electric field treatment system. A method for detecting electrode sheet abnormality in a tumor electric field treatment system, where the electrode sheet is the foregoing electrode sheet, and the method includes: S210: Sampling the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet; S220: Judging whether there is an abnormal temperature sensor in the electrode sheet according to the temperature signals detected by each of the sampled temperature sensors.

[0036] The method for detecting electrode sheet abnormality in a tumor electric field treatment system provided by the present invention can detect an abnormal temperature sensor by sampling the temperature signals detected by each temperature sensor and judging whether there is an abnormal temperature sensor in the electrode sheet according to the sampled temperature signals.

[0037] Further, when the electrode sheet includes a first switch and a second switch, the step S210 further includes: Configuring the switch timings of the first switch and the second switch to sample the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet.

[0038] Further, under the condition of determining the number of temperature sensors in each row group and each column group of the electrode sheet, after the step S210, the method further includes:

[0039] Determining the switch combination relationship between the first switch and the second switch;

[0040] Based on the switching combination relationship of the first switch and the second switch and the temperature signals detected by each of the sampled temperature sensors, it is determined whether there is an abnormal temperature sensor in the corresponding electrode plate.

[0041] To achieve the above object, the present invention also provides a computer-readable storage medium. A computer-readable storage medium stores an electrode plate abnormality detection program for a tumor electrotherapy system. When the electrode plate abnormality detection program for the tumor electrotherapy system is executed by a controller, the foregoing electrode plate abnormality detection method for the tumor electrotherapy system is implemented.

[0042] A computer-readable storage medium provided by the present invention can detect an abnormal temperature sensor by executing the foregoing electrode plate abnormality detection method.

[0043] To achieve the above object, the present invention also provides an adapter for a tumor electrotherapy system. An adapter for a tumor electrotherapy system includes a memory, a controller, and an electrode plate abnormality detection program for the tumor electrotherapy system stored on the memory and executable on the controller. When the controller executes the electrode plate abnormality detection program for the tumor electrotherapy system, the foregoing electrode plate abnormality detection method for the tumor electrotherapy system is implemented.

[0044] An adapter for a tumor electrotherapy system provided by the invention can detect an abnormal temperature sensor by executing the foregoing electrode plate abnormality detection method.

[0045] To achieve the above object, the present invention also provides an electric field generator for a tumor electrotherapy system. An electric field generator for a tumor electrotherapy system includes a memory, a controller, and an electrode plate abnormality detection program for the tumor electrotherapy system stored on the memory and executable on the controller. When the controller executes the electrode plate abnormality detection program for the tumor electrotherapy system, the foregoing electrode plate abnormality detection method for the tumor electrotherapy system is implemented.

[0046] An electric field generator for a tumor electrotherapy system provided by the invention can detect an abnormal temperature sensor by executing the foregoing electrode plate abnormality detection method.

[0047] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] Figure 1 A schematic structural diagram of a tumor electrotherapy system according to an embodiment of the present invention;

[0049] Figure 2For Figure 1 A schematic block diagram of an electrode sheet in Figure 1 and an adapter;

[0050] Figure 3 For Figure 1 A schematic block diagram of the internal structure of the adapter in Figure 1 ;

[0051] Figure 4 It is a schematic flowchart of a method for detecting the temperature of an electrode sheet of a tumor electric field therapy system according to the first embodiment of the present invention.

[0052] Reference numerals:

[0053] 1000, tumor electric field therapy system; 100, X1, Y1, X2 and Y2 electrode sheets; 111, substrate; 112, electrode element; 113, temperature sensor; 113A, signal terminal; 113B, ground terminal; 114, diode; 114A, anode; 114B, cathode; 115, first cable; 120, adapter; 121, temperature detection switch unit; 122, ADC sampling unit; 123, controller; 124, serial communication unit; 125, second cable; 126, inverter; 130, electric field generator; 140, first connector; 141, first plug; 142, first socket; 150, second connector; 151, second plug; 152, second socket; K1, K2, K3 and K4, first switch; K5, K6, K7, K8 and K9, second switch; R1-R16, voltage dividing resistor; VCC, DC power supply; GND, ground pin. Detailed implementation manners

[0054] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present invention and should not be construed as limiting the present invention.

[0055] Referring to Figure 1 As shown in Figure 1 , the tumor electric field therapy system 1000 includes: at least a pair of electrode sheets 100, an adapter 120 electrically connected to each electrode sheet 100, and an electric field generator 130 electrically connected to the adapter 120. At least a pair of electrode sheets 100 are arranged in pairs on the patient's body surface, such as Figure 1Among the four electrode pads X1, Y1, X2, and Y2, every two electrode pads are used as a pair and applied to the body surface corresponding to the tumor site of the patient. The electric field generator 130 is used to generate an alternating electric signal, and the alternating electric signal is switched and transmitted to at least one pair of electrode pads 100 through the adapter 120. Each pair of electrode pads 100 applies the alternating electric signal to the tumor site of the patient, so as to generate an alternating electric field for treatment (i.e., tumor treatment electric field) between the same pair of electrode pads 100, and act on the tumor site of the patient to treat the patient's tumor. The alternating electric signals applied by the two electrode pads 100 in the same pair of electrode pads 100 are different. The two electrode pads 100 respectively apply a set of alternating electric signals with opposite polarities, and generate an alternating electric field in one direction between the two electrode pads 100. Different alternating electric fields are generated between different pairs of electrode pads 100.

[0056] Reference Figure 2 As shown, each electrode pad 100 includes a substrate 111, a plurality of electrode elements 112 and a plurality of temperature sensors 113 arranged on the substrate 111. As Figure 1 shown, the plurality of electrode elements 112 are arranged substantially in an array, and each electrode element 112 can apply an alternating electric signal. The plurality of electrode elements 112 of the same electrode pad 100 all apply the same alternating electric signal. Each temperature sensor 113 is arranged corresponding to one electrode element 112, and the number of temperature sensors 113 is equal to the number of electrode elements 112, that is, the coverage rate of the temperature sensors 113 on the electrode pad 100 reaches 100%. As Figure 2 shown, in this embodiment, each electrode pad 100 includes 20 electrode elements 112, and each electrode element 112 is correspondingly provided with a temperature sensor 113. The temperature at the corresponding electrode element 112 is detected by the temperature sensor 113.

[0057] Each electrode element 112 is provided with a through hole 116, and a corresponding temperature sensor 113 is adapted to be received in the through hole 116, so as to realize real-time monitoring of the temperature of each electrode element 112, and avoid that the temperature of some electrode elements 112 cannot be monitored, resulting in too high temperature on the patient's body surface and causing hypothermic burns to the patient. As Figure 2 shown, the through hole 116 of each electrode element 112 is located in the middle thereof. In this embodiment, the electrode element 112 is a dielectric element. Preferably, the electrode element 112 is a ceramic chip.

[0058] As Figure 2As shown, a plurality of electrode elements 112 and a corresponding plurality of temperature sensors 113 are each configured as at least three row groups and at least three column groups in terms of the circuit connection structure. It should be noted that the arrangement here is to more clearly show the internal situation of the electrode sheet 100 and the electrical connection between the electrode sheet 100 and the adapter 120, and does not represent the arrangement of the electrode elements 112 in the spatial structure, and its spatial structure may be as Figure 1 shown, a structure that is generally in an array. The number of electrode elements 112 and temperature sensors 113 in the same row group is the same, and the number of electrode elements 112 and temperature sensors 113 in the same column group is the same. The plurality of electrode elements 112 in each row group are all connected in parallel to the same line, and the lines to which the plurality of electrode elements 112 in each row group are connected in parallel are cascaded into one line, and this line is an alternating current signal line (AC line) for transmitting an alternating current signal to the plurality of electrode elements 112.

[0059] Both ends of each temperature sensor 113 are a signal terminal 113A and a ground terminal 113B respectively. The plurality of temperature sensors 113 in the same row group are connected in series, and one signal terminal 113A at the end of each row group is connected to the DC power supply VCC through a series-connected first switch (one of K1, K2, K3, and K4) and a voltage-dividing resistor (one of R1, R2, R3, and R4). After the ground terminals 113B of the corresponding temperature sensors 113 in each column group are connected together, they are connected to the ground pin GND through a second switch (one of K5, K6, K7, K8, and K9). The total number of the first switch (K1-K4) and the second switch (K5-K9) does not exceed 9, so that the analog temperature signals detected by one or more corresponding combinations among all the temperature sensors 113 of the electrode sheet 100 can be sampled by configuring the switching timings of the first switch and the second switch.

[0060] In this embodiment, each electrode sheet has 20 electrode elements 112, and the 20 electrode elements 112 are configured into four row groups and five column groups. Each row group has five temperature sensors 113, and each column group has four temperature sensors 113. The 20 electrode elements 112 are connected in a topological structure and are connected in parallel to an alternating current signal line (AC line) to transmit an alternating current signal by the alternating current signal line (AC line) and form a treatment electric field for treating tumors between the opposite electrode sheets 100. After the corresponding five temperature sensors 113 in each row group are connected in series, they are connected to the DC power supply VCC through a series-connected first switch (one of K1, K2, K3, and K4) and a voltage-dividing resistor (one of R1, R2, R3, and R4). After the grounding ends 113B of the corresponding four temperature sensors 113 in each column group are connected together, they are connected to the grounding pin GND through a second switch (one of K5, K6, K7, K8, and K9), so as to sample the analog temperature signals detected by the corresponding temperature sensors 113 by configuring the switching timings of the first switch (K1, K2, K3, and K4) and the second switch (K5, K6, K7, K8, and K9). As Figure 2 shown, all the temperature sensors 113 in the same row group are connected in series into a line (such as one of the lines 1, 2, 3, and 4) and are connected to the DC power supply VCC through a line connected to the signal end 113A of one at the end of each row group. The grounding ends 113B of all the temperature sensors 113 in the same row group are respectively connected to the grounding pin GND by 5 ground lines (such as ground lines 5, 6, 7, 8, and 9) in one-to-one correspondence. The grounding ends 113B of all the temperature sensors 113 in the same column group are connected to the same ground line (such as one of the lines of ground lines 5, 6, 7, 8, or 9). Each series-connected temperature sensor 113 in each row group is connected in series with a first switch (such as one of the first switches K1, K2, K3, and K4) and a voltage-dividing resistor (such as one of the voltage-dividing resistors R1, R2, R3, and R4) at the DC power supply VCC end, and the voltage-dividing resistors (such as the voltage-dividing resistors R1, R2, R3, and R4) are closer to the DC power supply VCC end than the first switch (such as the first switches K1, K2, K3, and K4). Each ground line (such as one of the ground lines 5, 6, 7, 8, and 9) is connected in series with a second switch (such as one of the second switches K5, K6, K7, K8, and K9). It should be noted that the types of the first switch and the second switch are not limited. For example, they can be normally open switches or normally closed switches, or active switch tubes or passive switch tubes.

[0061] Specifically, referring to Figure 2As shown, five temperature sensors 113 in the first row group (with corresponding serial numbers 1, 2, 3, 4, and 5) are connected in series end to end to form a circuit 1, which is connected to the DC power supply VCC, and is also connected to the first switch K1 and the voltage-dividing resistor R1. The grounding terminal 113B of the first temperature sensor 113 (with corresponding serial number 1) in the first row group is connected to the grounding wire 5 and the second switch K5. The grounding terminal 113B of the second temperature sensor 113 (with corresponding serial number 2) is connected to the grounding wire 6 and the second switch K6. The grounding terminal 113B of the third temperature sensor 113 (with corresponding serial number 3) is connected to the grounding wire 7 and the second switch K7. The grounding terminal 113B of the fourth temperature sensor 113 (with corresponding serial number 4) is connected to the grounding wire 8 and the second switch K8. The grounding terminal 113B of the fifth temperature sensor 113 (with corresponding serial number 5) is connected to the grounding wire 9 and the second switch K9.

[0062] Five temperature sensors 113 in the second row group (with corresponding serial numbers 6, 7, 8, 9, and 10) are connected in series end to end to form a circuit 2, which is connected to the DC power supply VCC, and is also connected to the first switch K2 and the voltage-dividing resistor R2. The grounding terminal 113B of the first temperature sensor 113 (with corresponding serial number 6) in the second row group is connected to the grounding wire 5 and the second switch K5. The grounding terminal 113B of the second temperature sensor 113 (with corresponding serial number 7) is connected to the grounding wire 6 and the second switch K6. The grounding terminal 113B of the third temperature sensor 113 (with corresponding serial number 8) is connected to the grounding wire 7 and the second switch K7. The grounding terminal 113B of the fourth temperature sensor 113 (with corresponding serial number 9) is connected to the grounding wire 8 and the second switch K8. The grounding terminal 113B of the fifth temperature sensor 113 (with corresponding serial number 10) is connected to the grounding wire 9 and the second switch K9.

[0063] Five temperature sensors 113 in the third row group (with corresponding serial numbers 11, 12, 13, 14, and 15) are connected in series end to end to form a circuit 3, which is connected to the DC power supply VCC, and is also connected to the first switch K3 and the voltage-dividing resistor R3. The grounding terminal 113B of the first temperature sensor 113 (with corresponding serial number 11) in the third row group is connected to the grounding wire 5 and the second switch K5. The grounding terminal 113B of the second temperature sensor 113 (with corresponding serial number 12) is connected to the grounding wire 6 and the second switch K6. The grounding terminal 113B of the third temperature sensor 113 (with corresponding serial number 13) is connected to the grounding wire 7 and the second switch K7. The grounding terminal 113B of the fourth temperature sensor 113 (with corresponding serial number 14) is connected to the grounding wire 8 and the second switch K8. The grounding terminal 113B of the fifth temperature sensor 113 (with corresponding serial number 15) is connected to the grounding wire 9 and the second switch K9.

[0064] Five temperature sensors 113 in the fourth row group (with corresponding serial numbers 16, 17, 18, 19, and 20) are connected in series end to end to form a circuit 4 that is connected to the DC power supply VCC, and a first switch K4 and a voltage-dividing resistor R4 are connected. The grounding terminal 113B of the first temperature sensor 113 (with corresponding serial number 16) in the fourth row group is connected to the ground wire 5 and a second switch K5. The grounding terminal 113B of the second temperature sensor 113 (with corresponding serial number 17) is connected to the ground wire 6 and a second switch K6. The grounding terminal 113B of the third temperature sensor 113 (with corresponding serial number 18) is connected to the ground wire 7 and a second switch K7. The grounding terminal 113B of the fourth temperature sensor 113 (with corresponding serial number 19) is connected to the ground wire 8 and a second switch K8. The grounding terminal 113B of the fifth temperature sensor 113 (with corresponding serial number 20) is connected to the ground wire 9 and a second switch K9.

[0065] Each electrode plate 100 further includes a plurality of diodes 114, and each diode 114 is arranged corresponding to one temperature sensor 113. The diode 114 has an anode 114A and a cathode 114B. After the grounding terminals 113B of the respective temperature sensors 113 in each column group are connected to the anodes 114A of the corresponding diodes 114, they are connected together through the cathodes 114B of the corresponding diodes 114. As Figure 2As shown, the ground terminals 113B of the respective temperature sensors 113 in the first column group (corresponding serial numbers are 1, 6, 11, and 16) are respectively connected with a diode 114, and the anode 114A of the diode 114 is connected to the ground terminal 113B of the corresponding temperature sensor 113. The cathodes 114B of the respective diodes 114 in the first column group are all connected to the ground wire 5; the ground terminals 113B of the respective temperature sensors 113 in the second column group (corresponding serial numbers are 2, 7, 12, and 17) are respectively connected with a diode 114, and the anode 114A of the diode 114 is connected to the ground terminal 113B of the corresponding temperature sensor 113. The cathodes 114B of the respective diodes 114 in the second column group are all connected to the ground wire 6; the ground terminals 113B of the respective temperature sensors 113 in the third column group (corresponding serial numbers are 3, 8, 13, and 18) are respectively connected with a diode 114, and the anode 114A of the diode 114 is connected to the ground terminal 113B of the corresponding temperature sensor 113. The cathodes 114B of the respective diodes 114 in the third column group are all connected to the ground wire 7; the ground terminals 113B of the respective temperature sensors 113 in the fourth column group (corresponding serial numbers are 4, 9, 14, and 19) are respectively connected with a diode 114, and the anode 114A of the diode 114 is connected to the ground terminal 113B of the corresponding temperature sensor 113. The cathodes 114B of the respective diodes 114 in the fourth column group are all connected to the ground wire 8; the ground terminals 113B of the respective temperature sensors 113 in the fifth column group (corresponding serial numbers are 5, 10, 15, and 20) are respectively connected with a diode 114, and the anode 114A of the diode 114 is connected to the ground terminal 113B of the corresponding temperature sensor 113. The cathodes 114B of the respective diodes 114 in the fifth column group are all connected to the ground wire 9. That is, a diode 114 is respectively connected between the ground terminal 113B of all the temperature sensors 113 in the same column group and the ground pin GND. Through this diode 114, it can effectively prevent other temperature sensors 113 from affecting the resistance value of the corresponding temperature sensor 113 detected by the switching sequence control of the first switch and the second switch.

[0066] As Figures 1-3 shown, a first connector 140 is connected between each electrode plate 100 and the adapter 120. The first connector 140 is adapted to connect the corresponding electrode plate 100 to the adapter 120. Each electrode plate 100 has a first cable 115 electrically connected to its substrate 111. The first connector 140 includes a first plug 141 provided at one end of the first cable 115 away from the substrate 111 and a first socket 142 provided on the adapter 120. The first plug 141 and the first socket 142 are push-button spring connectors, that is, the first connector 140 connects the adapter 120 and the electrode plate 100 in a plug-and-socket manner.

[0067] AsFigure 1 As shown, four electrode pads X1, Y1, X2, and Y2 are respectively connected to the adapter 120 through a first connector 140. Among them, the electrode pads X1 and X2 are configured as a pair of electrode pads 100, and the electrode pads Y1 and Y2 are configured as another pair of electrode pads 100. As Figure 3 shown, each first connector 140 is respectively connected Figure 3 to a corresponding one of the lines a1, a2, a3, and a4 in the figure to transmit an alternating current signal with a corresponding polarity in a corresponding direction, so as to generate a treatment electric field for treating tumors between a corresponding pair of electrode pads 100 (such as electrode pads X1 and X2 or electrode pads Y1 and Y2). It can be understood that the lines a1, a2, a3, and a4 are AC lines that transmit alternating current signals with corresponding polarities in corresponding directions, and extend into a corresponding electrode pad 100 to provide corresponding alternating current signals for multiple electrode elements 112 of the electrode pad 100. The lines a1, a2, a3, and a4 are connected to a second connector 150 in a direction away from the first connector 140, and the second connector 150 is connected to the electric field generator 130. The electric field generator 130 is powered by a DC power supply, which generates two groups of alternately switched alternating current signals through inversion, filtering, etc. Each group of alternating current signals is two alternating current signals with opposite polarities. The two groups of alternating current signals generated by the electric field generator 130 are respectively transmitted to multiple electrode elements 112 of a corresponding electrode pad 100 through the second connector 150, a corresponding one of the lines a1, a2, a3, and a4, and the corresponding first connector 140. In addition, the electric field generator 130 also transmits the DC power supply to multiple temperature sensors 113 of a corresponding electrode pad 100 through the second connector 150, the power supply line and ground line of the DC power supply VCC inside the adapter 120, and the corresponding first connector 140, so that the corresponding temperature sensors 113 work and generate analog temperature signals.

[0068] As Figures 2-3 shown, each first connector 140 is also respectively connected to a group of temperature switching and acquisition lines a5, a6, a7, or a8 with 9 lines. Each temperature switching and acquisition line includes: 4 lines respectively connected to the first switches K1, K2, K3, and K4 and 5 ground lines respectively connected to the second switches K5, K6, K7, K8, and K9. Combining Figures 1 to 3 shown, the first cable 115 of the electrode pad X1 is connected to 10 lines combined by the line a1 and a5 connected to the first connector 140. And so on, the first cable 115 of the electrode pad Y1 is connected to 10 lines combined by the line a2 and a6 connected to the first connector 140, the first cable 115 of the electrode pad X2 is connected to 10 lines combined by the line a3 and a7 connected to the first connector 140, and the electrode pad Y2 is connected to 10 lines composed of the line a4 and a8 connected to the first connector 140. Correspondingly, asFigures 1-2 As shown, each first cable 115 between each electrode piece 100 and the corresponding first connector 140 is a 10-core cable.

[0069] As Figures 2-3 shown, a plurality of first switches (K1, K2, K3, and K4) and a plurality of second switches (K5, K6, K7, K8, and K9) connected to each first connector 140 form a temperature detection switch unit 121, and the temperature detection switch unit 121 and voltage dividing resistors (such as voltage dividing resistors R1-R4, R5-R8, R9-R12, or R13-R16) connected to the first switches in each temperature detection switch unit 121 are all located in the adapter 120. The adapter 120 includes the aforementioned plurality of temperature detection switch units 121, voltage dividing resistors (such as voltage dividing resistors R1-R4, R5-R8, R9-R12, or R13-R16), and further includes an ADC sampling unit 122 for collecting analog temperature signals of the corresponding temperature sensors 113, and a controller 123 for controlling the sequential on / off of the plurality of first switches and the plurality of second switches in the corresponding temperature detection switch unit 121. The controller 123 is used to configure the switching timings of the plurality of first switches and the plurality of second switches of the temperature detection switch unit 121, select one first switch (for example, one of K1, K2, K3, and K4) and one second switch (for example, one of K5, K6, K7, K8, and K9) to close, so as to energize the temperature sensor 113 of the corresponding electrode piece 100, so that the corresponding temperature sensor 113 generates an analog temperature signal. The analog temperature signal is transmitted to the ADC sampling unit 122 through the corresponding first connector 140, a 9-channel temperature switching and acquisition line (such as temperature switching and acquisition line a5, a6, a7, or a8), and the temperature detection switch unit 121. The ADC sampling unit 122 collects the analog temperature signal, and then the controller 123 operates and converts the analog temperature signal collected by the ADC sampling unit 122 into a digital temperature signal.

[0070] The plurality of temperature detection switch units 121 in the adapter 120 respectively transmit the analog temperature signals to the corresponding channels of the ADC sampling unit 122 through a set of line groups (one of a9, a10, a11, and a12). Combining Figure 2 and Figure 3As shown, in this embodiment, four temperature detection switch units 121 respectively transmit analog temperature signals to corresponding channels of the ADC sampling unit 122 through a set of line groups (one of a9, a10, a11, and a12). Specifically, the temperature detection switch unit 121 corresponding to the electrode plate X1 transmits the analog temperature signal generated by the corresponding temperature sensor 113 of the electrode plate X1 to channels 1-4 of the ADC sampling unit 122 through the 4-line group a9; the temperature detection switch unit 121 corresponding to the electrode plate Y1 transmits the analog temperature signal generated by the corresponding temperature sensor 113 of the electrode plate Y1 to channels 5-8 of the ADC sampling unit 122 through the 4-line group a10; the temperature detection switch unit 121 corresponding to the electrode plate X2 transmits the analog temperature signal generated by the corresponding temperature sensor 113 of the electrode plate X2 to channels 9-12 of the ADC sampling unit 122 through the 4-line group a11; the temperature detection switch unit 121 corresponding to the electrode plate Y2 transmits the analog temperature signal generated by the corresponding temperature sensor 113 of the electrode plate Y2 to channels 13-16 of the ADC sampling unit 122 through the 4-line group a12. The controller 123 controls the on / off of multiple first switches and multiple second switches in the corresponding temperature detection switch unit 121, and closes one first switch (such as one of K1, K2, K3, and K4) and one second switch (such as one of K5, K6, K7, K8, and K9) to enable the corresponding temperature sensor 113 to generate an analog temperature signal. The ADC sampling unit 122 collects this analog temperature signal and transmits it to the corresponding channel of the ADC sampling unit 122 through a line connected to the closed first switch. That is, when the ADC acquisition unit 122 collects the analog temperature signals of the corresponding temperature sensors 113 on each electrode plate 100, it is transmitted to its corresponding channel through a line in the corresponding line group (one of a9, a10, a11, and a12) connected to the closed first switch.

[0071] As Figures 2-3 shown, the adapter 120 further includes a serial communication unit 124, and the serial communication unit 124 transmits the digital temperature signal calculated and converted by the controller 123 to the electric field generator 130. Specifically, the controller 123 controls the on / off of multiple first switches and multiple second switches in each temperature detection switch unit 121, and closes one first switch (such as one of K1, K2, K3, and K4) and one second switch (such as one of K5, K6, K7, K8, and K9) to sequentially obtain the analog temperature signals generated by the corresponding temperature sensors 113 in the electrode plate 100. As Figure 2As shown, when the controller 123 controls the first switch K1 and the second switch K5 to conduct, and other switches to disconnect, the ADC sampling unit 122 samples the analog temperature signal of the first temperature sensor 113 (corresponding serial number is 1) in the first row group; when the controller 123 controls the first switch K1 and the second switch K6 to conduct, and other switches to disconnect, the ADC sampling unit 122 samples the combined analog temperature signal of the first to second temperature sensors 113 (corresponding serial numbers are 1 and 2) in the first row group; when the controller 123 controls the first switch K1 and the second switch K7 to conduct, and other switches to disconnect, the ADC sampling unit 122 samples the combined analog temperature signal of the first to third temperature sensors 113 (corresponding serial numbers are 1, 2, and 3) in the first row group; when the controller 123 controls the first switch K1 and the second switch K8 to conduct, and other switches to disconnect, the ADC sampling unit 122 samples the analog temperature signal of the first to fourth temperature sensors 113 (corresponding serial numbers are 1, 2, 3, and 4) in the first row group; when the controller 123 controls the first switch K1 and the second switch K9 to conduct, and other switches to disconnect, the ADC sampling unit 122 samples the analog temperature signal of the first to fifth temperature sensors 113 (corresponding serial numbers are 1, 2, 3, 4, and 5) in the first row group. By analogy, the analog temperature signals generated by the temperature sensors 113 in other row groups can be obtained. The serial communication unit 124 is controlled by the controller 123, and the digital temperature signals obtained by the controller 123 through operation and conversion are serially transmitted through the serial communication unit 124 for the digital temperature signals of each temperature sensor 113, such as transmitted to the electric field generator 130.

[0072] Preferably, the temperature sensor 113 is a thermistor. As Figure 2 shown, when the serial numbers 1-20 are used as the temperature measurement point labels, the resistance value of the thermistor corresponding to each temperature measurement point label can be represented by Rtn. For example, the resistance value of the thermistor corresponding to the temperature measurement point label 1 is Rt1, specifically the resistance value corresponding to the temperature of the first thermistor in the first row group, the resistance value of the thermistor corresponding to the temperature measurement point label 2 is Rt2, specifically the resistance value corresponding to the temperature of the second thermistor in the first row group, and so on.

[0073] After the controller 123 obtains the analog temperature signal corresponding to the temperature measurement point label, the analog temperature signal is the resistance value of one or more combinations corresponding to the temperature sensors 113 of all the electrode plates 100, and the actual temperature of the thermistor corresponding to the temperature measurement point label is calculated through the following formula (1):

[0074] (1)

[0075] Among them, Tn is the actual temperature of the thermistor corresponding to the temperature measurement point label n, x is the analog temperature signal corresponding to the temperature measurement point label n obtained by sampling, span is the maximum range of the ADC sampling unit 122. For example, when the ADC sampling unit 122 uses a 16-bit sampling chip, span is 65535, R is the resistance value of the voltage-dividing resistor, such as the resistance values of the voltage-dividing resistors R1, R2, R3 or R4.

[0076] The resistance value of the thermistor corresponding to the temperature measurement point label can be calculated through the following formula (2):

[0077] (2)

[0078] It can be understood that by transforming formula (2), when obtaining the resistance value of the thermistor corresponding to the temperature measurement point label, the analog temperature signal of the thermistor corresponding to the temperature measurement point label can be obtained:

[0079] (3)

[0080] Among them, y is the analog temperature signal of the thermistor corresponding to the temperature measurement point label.

[0081] It should be noted that by selecting voltage-dividing resistors with appropriate resistance values, such as voltage-dividing resistors R1, R2, R3 and R4, the current flowing through the thermistor can be restricted to avoid excessive temperature rise of the thermistor caused by excessive current, thereby affecting the test accuracy. In severe cases, it may even cause damage to the thermistor, etc.

[0082] Under the condition that the foregoing electrode sheet 100 is qualified in the test, with the characteristic that the temperature sensor 113 and the electrode element 112 are arranged in one-to-one correspondence, the controller 123 can also configure the switching combination relationship of each first switch and second switch in each temperature detection switch unit 121, so as to identify the electrode sheet 100 (which electrode elements 112 the electrode sheet 100 belongs to) according to the analog temperature signal of each temperature sensor 113 sampled. It should be noted that the qualified electrode sheet 100 at least includes: all temperature sensors 113 and their electrical connections are normal, and all electrode elements 112 and their electrical connections are normal. The type of the electrode sheet 100 here is determined based on the number of electrode elements 112 included in the electrode sheet 100. For example, the electrode sheet 100 with 20 electrode elements 112 is one type, the electrode sheet 100 with 16 electrode elements 112 is another type, and the electrode sheet 100 with 9 electrode elements 112 is yet another type.

[0083] Such as Figure 2As shown, under the condition that the foregoing electrode sheet 100 is qualified in testing, when the tumor electric field therapy system is initialized, the electric field generator 130 does not transmit an alternating current signal to the plurality of electrode elements 112 of the adapter 120 and the electrode sheet 100 first. Instead, it only transmits the DC power supply VCC to operate the corresponding temperature sensors 113 of the adapter 120 and the electrode sheet 100, so as to avoid the influence of the alternating electric field generated by the alternating current signal on the analog temperature signal detected by the temperature sensor 113 due to temperature changes. The analog temperature signals generated by each temperature sensor 113 of the electrode sheet 100 are approximately the same, and the corresponding actual temperatures and resistance values are also approximately the same. For example, the resistance values Rt1, Rt2, Rt3, Rt4, and Rt5 of the thermistors corresponding to the temperature measurement point numbers 1, 2, 3, 4, and 5 are approximately the same. The controller 123 can obtain the combined resistance value Rt of the five thermistors in the first row group by controlling the first switch K1 and the second switch K9 to conduct and other switches to disconnect. Since Rt = Rt1 + Rt2 + Rt3 + Rt4 + Rt5 and Rt1, Rt2, Rt3, Rt4, and Rt5 are approximately the same, Rt is approximately equal to 5 times Rt1. Similarly, the combined resistance values of the five thermistors in the second row group, the third row group, and the fourth row group can be obtained as a 5-fold relationship between Rt and Rt1 respectively. Therefore, the number of electrode elements 112 in the electrode sheet 100 can be calculated, and thus it can be determined that the type of the electrode sheet 100 is the electrode sheet 100 with 20 electrode elements 112. According to the sampled analog temperature signal, the actual temperature Tz1 corresponding to each thermistor can be calculated through the above formula (1). Similarly, the actual temperatures Tz2, Tz3, and Tz4 of each thermistor in the second row group, the third row group, and the fourth row group can be obtained respectively, and Tz1, Tz2, Tz3, and Tz4 are approximately the same, all approximately being the actual temperature corresponding to Rt1.

[0084] As Figure 2 shown, the controller 123 can also configure the switch combination relationship of each first switch and second switch in each temperature detection switch unit 121, so as to determine whether there is an abnormal temperature sensor 113 in the electrode sheet 100 according to the analog temperature signal detected according to one or more corresponding combinations of all the temperature sensors 113 of the sampled electrode sheet 100.

[0085] As Figure 2As shown, before the electric field generator 130 transmits an alternating current signal to the plurality of electrode elements 112 of the adapter 120 and the electrode plate 100, it first transmits the DC power supply VCC to the corresponding temperature sensors 113 of the adapter 120 and the electrode plate 100 to operate. This is to avoid the influence of the alternating electric field generated by the alternating current signal on the analog temperature signal detected by the temperature sensor 113 due to temperature changes. The analog temperature signals generated by each temperature sensor 113 (thermistor) of the electrode plate 100 are approximately the same, and the corresponding actual temperatures and resistance values are also approximately the same. That is, the total resistance values corresponding to the combination of all the thermistors in each row group with the same number of thermistors are approximately the same.

[0086] Collect and compare the total resistance values corresponding to the combination of all the thermistors in each row group. For example, control the first switch K1 and the second switch K9 to conduct, and the other switches to disconnect, to obtain the total resistance value corresponding to the combination of the five thermistors in the first row group. Then control the first switch K2 and the second switch K9 to conduct, and the other switches to disconnect, to obtain the total resistance value corresponding to the combination of the five thermistors in the second row group, and so on, to complete the total resistance values corresponding to the combination of the five thermistors in all row groups. Finally, determine whether the total resistance values corresponding to the combination of the five thermistors in each group are consistent or close to determine whether each thermistor is abnormal. In this process, if the total resistance values corresponding to the combination of the five thermistors in each group are approximately the same, then each temperature sensor 113 (thermistor) of the electrode plate 100 is normal. If the total resistance value corresponding to the combination of the five thermistors in a certain row group is abnormal (different from the total resistance values corresponding to the combination of the five thermistors in other row groups), then obtain the resistance and actual temperature of the thermistor corresponding to each temperature measurement point label in the following manner.

[0087] Taking the abnormal total resistance value corresponding to the combination of the five thermistors in the first row group as an example. Control the first switch K1 and the second switch K5 to conduct, and the other switches to disconnect. At this time, sample and obtain the analog temperature signal of the first thermistor in the first row group. The actual temperature T1 of this thermistor can be calculated through the above formula (1), and the resistance value Rt1 of this thermistor can be calculated through the above formula (2).

[0088] Next, control the first switch K1 and the second switch K6 to conduct, and the other switches to disconnect. At this time, sample and obtain the analog temperature signal corresponding to the combination of the first to second thermistors in the first row group. The resistance value corresponding to the combination of the first to second thermistors, that is, Rt1 + Rt2, can be calculated through the above formula (2). Since Rt1 has been obtained, Rt2 can be calculated. Then, according to Rt2 and the above formula (3), the analog temperature signal of the second thermistor can be calculated, and the actual temperature T2 of the second thermistor can be calculated by substituting this analog temperature signal into the above formula (1).

[0089] Next, control the first switch K1 and the second switch K7 to conduct, and turn off other switches. At this time, sample the combined analog temperature signal of the first to third thermistors in the first row group. The combined resistance value of the first to third thermistors, that is, Rt1+Rt2+Rt3, can be calculated through the above formula (2). Since Rt1 and Rt2 have been obtained, Rt3 can be calculated. Then, based on Rt3 and the above formula (3), the analog temperature signal of the third thermistor can be calculated, and substituting this analog temperature signal into the above formula (1) to calculate the actual temperature T3 of the third thermistor.

[0090] Next, control the first switch K1 and the second switch K8 to conduct, and turn off other switches. At this time, sample the combined analog temperature signal of the first to fourth thermistors in the first row group. The combined resistance value of the first to fourth thermistors, that is, Rt1+Rt2+Rt3+Rt4, can be calculated through the above formula (2). Since Rt1, Rt2, and Rt3 have been obtained, Rt4 can be calculated. Then, based on Rt4 and the above formula (3), the analog temperature signal of the fourth thermistor can be calculated, and substituting this analog temperature signal into the above formula (1) to calculate the actual temperature T4 of the fourth thermistor.

[0091] Next, control the first switch K1 and the second switch K9 to conduct, and turn off other switches. At this time, sample the combined analog temperature signal of the first to fifth thermistors in the first row group. The combined resistance value of the first to fifth thermistors, that is, Rt1+Rt2+Rt3+Rt4+Rt5, can be calculated through the above formula (2). Since Rt1, Rt2, Rt3, and Rt4 have been obtained, Rt5 can be calculated. Then, based on Rt5 and the above formula (3), the analog temperature signal of the fifth thermistor can be calculated, and substituting this analog temperature signal into the above formula (1) to calculate the actual temperature T5 of the fifth thermistor.

[0092] Finally, compare the actual temperatures T1, T2, T3, T4, and T5 of the five thermistors. If the actual temperature of a certain thermistor differs greatly from the actual temperatures of other thermistors, it indicates that there is a temperature abnormality in this thermistor, thus quickly locating the abnormal thermistor. If the above abnormal detection of the temperature sensor 113 (thermistor) is carried out on the electrode sheet 100 at the ambient temperature, the actual temperatures T1, T2, T3, T4, and T5 of the five thermistors can also be compared with the ambient temperature. If the actual temperature of a certain (some) thermistor differs greatly from the ambient temperature, then this (these) thermistor(s) is / are the abnormal thermistor(s).

[0093] It should be noted that if the resistance values of all line groups are normal, that is, the temperatures are all normal, then the actual temperature of the thermistor corresponding to each temperature measurement point label can be obtained in the above manner. That is to say, through the above method, not only can the actual temperature of each thermistor be obtained, but also the abnormal thermistors can be promptly discovered and quickly located through simple comparison, and the electrode plate 100 with abnormal thermistors can be found, so as to facilitate the quality inspection of the electrode plate 100.

[0094] Reference Figure 1 As shown, 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. The adapter 120 also has a second cable 125. The second connector 150 includes a second plug 151 provided at one end of the second cable 125 away from the adapter 120 and a second socket 152 provided 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 in the form of a connector.

[0095] Reference Figure 3 As shown, when there are four electrode plates 100, the second cable is an 8-core cable. Among them, 4 wire cores are alternating current power lines (a1, a2, a3, and a4) respectively connected to the four first connectors 40, which are used to provide alternating current signals in corresponding directions and polarities. 2 wire cores are the receiving data line RX and the transmitting data line TX electrically connected to the serial communication unit 124 in the adapter 120. The remaining 2 wire cores are the power line and the ground wire that provide DC power VCC for at least one temperature sensor 113 of each electrode plate 100. The controller 123 converts the digital temperature signal sampled by the ADC sampling unit 122 from the corresponding temperature sensor 113 into a digital temperature signal through operation. The controller 123 controls the serial communication unit 124 to transmit the digital temperature signal to the electric field generator 130 via the second connector 150. That is, after the analog temperature signal collected by the ADC sampling unit 122 in the adapter 120 is converted into a digital temperature signal by the controller 123, it is transmitted to the electric field generator 130 via the serial communication unit 124, the transmitting data line TX connected to the serial communication unit 124, and the second connector 150. It should be noted that the controller 123 can also transmit other information such as the type of the electrode plate 100 through the serial communication unit 124, which is not limited here.

[0096] In the above embodiments, by connecting multiple electrode elements 112 on the electrode sheet 100 in groups, after the temperature sensors 113 in the same row group are connected in series, they are connected to the DC power supply through the first switch and the voltage-dividing resistor connected in series. After the grounding ends 113B of the temperature sensors 113 in the same column group are connected together, they are connected to the grounding pin GND through the second switch. The total number of the first switch and the second switch does not exceed 9. And by configuring the switching timings of the first switch and the second switch so that the analog temperature signals detected by one or more corresponding combinations among all the temperature sensors 113 of the electrode sheet 100 are respectively sampled, it is possible to achieve a 100% coverage rate of the temperature sensors 113 without increasing the number of cable cores, avoid excessive load on the electrode sheet 100, and maintain the pasting effect of the electrode sheet 100. For example, Figure 2 When the coverage rate of the temperature sensors 113 on the shown electrode sheet 100 reaches 100%, 22 cable cores are required in the related art, resulting in a very thick first cable 115, very poor flexibility, and very poor pasting effect. However, in this embodiment, it is possible to ensure that the coverage rate of the temperature sensors 113 reaches 100% without increasing the number of cable cores of the first cable 115, so as to realize the comprehensive temperature monitoring of each electrode element 112 in the electrode sheet 100. At the same time, by configuring the switching timings of the first switch and the second switch so that the analog temperature signals detected by one or more corresponding combinations among all the temperature sensors 113 of the electrode sheet 100 are respectively sampled, not only can the actual temperatures of the respective temperature sensors 113, that is, the actual temperatures of the electrode elements 112, be obtained, but also the electrode elements 112 with abnormal temperatures can be quickly located, and different types of electrode sheets 100 can be distinguished. In addition, since the electrode sheet 100 outputs analog temperature signals, it is avoided to provide an ADC sampling unit 122 etc. on the electrode sheet 100, further reducing the overall weight of the electrode sheet 100 and improving the pasting effect of the electrode sheet 100.

[0097] In some embodiments, the number of electrode elements 112 of the electrode sheet 100 is 9, and they are arranged in a three-row group and a three-column group. The number of temperature sensors 113 in each row group and each column group is 3. The number of the first switches is equal to the number of row groups, and the number of the second switches is equal to the number of column groups. That is, when there are three first switches and three second switches, they are the first switches K1, K2, and K3 and the second switches K4, K5, and K6 respectively. There are three voltage-dividing resistors (R1, R2, and R3) corresponding to the first switches (K1, K2, and K3), there are 6 temperature switching acquisition lines, and there are 12 channels (1-3, 4-6, 7-9, 10-12) for the ADC sampling unit 122 channels. It should be noted that for the electrode sheet 100 with 9 electrode elements 112, compared with Figure 2In the shown example, the difference lies in the different numbers of electrode elements 112 and temperature sensors 113. Correspondingly, when performing temperature sampling, temperature anomaly detection, and determination of the type of electrode sheet 100, the total resistance values of all temperature sensors 113 (thermistors) in each row group are different. The specific sampling process, temperature anomaly detection method, and determination of the type of electrode sheet 100 are basically the same, and will not be elaborated here one by one.

[0098] The present invention also provides a tumor treatment device, including: the aforementioned electrode sheet 100, or the aforementioned tumor electric field treatment system 1000.

[0099] According to the tumor treatment device of the embodiment of the present invention, through the aforementioned electrode sheet 100 or tumor electric field treatment system 1000, it is possible to achieve a 100% coverage rate of temperature sensors 113 without increasing the number of cores of the first cable 115, avoid excessive load on the electrode sheet 100, and maintain the sticking effect of the electrode sheet 100.

[0100] The present invention also provides a method for detecting the temperature of the electrode sheet of a tumor electric field treatment system. The tumor electric field treatment system includes the aforementioned electrode sheet 100, as Figure 4 shown, the method includes:

[0101] S210, configure the switching timings of the first switch and the second switch, so that the analog temperature signals respectively detected for one or more corresponding combinations among all the temperature sensors 113 of the electrode sheet 100 are sampled to obtain the digital temperature signals corresponding to each temperature sensor.

[0102] S220, transmit the digital temperature signals to the electric field generator 130 of the tumor electric field treatment system, so that the electric field generator 130 determines the temperature at each electrode element 112 according to the digital temperature signals.

[0103] Optionally, under the condition that the electrode sheet 100 is qualified in testing, after obtaining the digital temperature signals corresponding to each temperature sensor, the method further includes: determining the switching combination relationship between the first switch and the second switch; identifying the type of the corresponding electrode sheet 100 according to the switching combination relationship between the first switch and the second switch, and the analog temperature signals detected for one or more corresponding combinations among all the temperature sensors 113 of the sampled electrode sheet 100.

[0104] Optionally, under the condition of determining the number of temperature sensors 113 in each row group and each column group of the electrode patch 100, after obtaining the digital temperature signals corresponding to each temperature sensor, the method further includes: determining the switching combination relationship between the first switch and the second switch; and determining whether there is an abnormal temperature sensor 113 in the corresponding electrode patch 100 based on the switching combination relationship between the first switch and the second switch and the analog temperature signals detected for one or more corresponding combinations among all the temperature sensors 113 of the electrode patch 100 sampled.

[0105] According to the electrode patch temperature detection method of the tumor electro-field therapy system according to an embodiment of the present invention, by configuring the switching timings of the first switch and the second switch, the analog temperature signals detected for one or more corresponding combinations among all the temperature sensors 113 of the electrode patch 100 are respectively sampled to obtain digital temperature signals, and the digital temperature signals are transmitted to the electric field generator 130 of the tumor electro-field therapy system 1000, so that the electric field generator 130 can determine the temperature at each electrode element 112 based on the digital temperature signals. Thus, without increasing the number of cores of the first cable 115, a 100% coverage rate of the temperature sensors 113 can be achieved, the excessive load on the electrode patch 100 can be avoided, and the pasting effect of the electrode patch 100 can be maintained.

[0106] The present invention also provides a computer-readable storage medium, on which an electrode patch 100 temperature detection program of the tumor electro-field therapy system 1000 is stored. When the electrode patch 100 temperature detection program of the tumor electro-field therapy system 1000 is executed by the controller 123, the foregoing electrode patch 100 temperature detection method of the tumor electro-field therapy system 1000 is implemented.

[0107] According to the computer-readable storage medium of the embodiment of the present invention, by executing the foregoing electrode patch 100 temperature detection method, a 100% coverage rate of the temperature sensors can be achieved without increasing the number of cores of the first cable 115, the excessive load on the electrode patch 100 can be avoided, and the pasting effect of the electrode patch 100 can be maintained.

[0108] The present invention also provides an adapter 120 of the tumor electro-field therapy system 1000, including a memory (not shown), a controller 123, and an electrode patch 100 temperature detection program of the tumor electro-field therapy system 1000 stored on the memory (not shown) and executable on the controller 123. When the controller 123 executes the electrode patch 100 temperature detection program of the tumor electro-field therapy system 1000, the foregoing electrode patch 100 temperature detection method of the tumor electro-field therapy system 1000 is implemented.

[0109] The adapter 120 of the tumor electric field therapy system 1000 according to the embodiment of the present invention can achieve 100% temperature sensor coverage without increasing the number of cores of the first cable 115 by performing the foregoing temperature detection method for the electrode patch 100, avoid excessive load on the electrode patch 100, and maintain the application effect of the electrode patch 100.

[0110] It should be noted that the logic and / or steps represented in the flowchart or described in other ways herein, for example, can be considered as a definite sequence list of executable instructions for implementing logical functions, and can be specifically implemented in any computer-readable medium for use by an instruction execution system, apparatus, or device (such as a computer-based system, a system including the controller 123, or other systems that can fetch and execute instructions from the instruction execution system, apparatus, or device), or in combination with these instruction execution systems, apparatus, or devices. For the purposes of this specification, a "computer-readable medium" can be any device that can contain, store, communicate, propagate, or transport a program for use by or in connection with an instruction execution system, apparatus, or device. More specific examples (non-exhaustive list) of the computer-readable medium include the following: an electrical connection part (electronic device) having one or more wirings, a portable computer diskette (magnetic device), a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber device, and a portable compact disc read-only memory (CDROM). Additionally, the computer-readable medium can even be paper or other suitable media on which the program can be printed, because the program can be obtained electronically, for example, by optically scanning the paper or other media, followed by editing, interpretation, or other suitable processing as necessary, and then stored in a computer memory.

[0111] It should be understood that various parts of the present invention can be implemented by hardware, software, firmware, or a combination thereof. In the above embodiments, multiple steps or methods can be implemented by software or firmware stored in a memory and executed by a suitable instruction execution system. For example, if implemented in hardware, as in another embodiment, any one or a combination of the following techniques well known in the art can be used: discrete logic circuits having logic gate circuits for implementing logical functions for data signals, application specific integrated circuits having appropriate combinational logic gate circuits, programmable gate arrays (PGAs), field programmable gate arrays (FPGAs), etc.

[0112] In the description of this specification, the descriptions referring to terms such as "one embodiment", "some embodiments", "examples", "specific examples", or "some examples" etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0113] In addition, the terms "first", "second", etc. used in the embodiments of the present invention are only for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the technical features indicated in this embodiment. Thus, the features defined with terms such as "first", "second", etc. in the embodiments of the present invention can explicitly or implicitly indicate that at least one such feature is included in this embodiment. In the description of the present invention, the meaning of the word "plural" is at least two or more, such as two, three, four, etc., unless otherwise specifically defined in the embodiments.

[0114] In the present invention, unless otherwise clearly specified or limited by relevant regulations in the embodiments, the terms "installed", "connected", "joined", and "fixed" etc. appearing in the embodiments shall be understood in a broad sense. For example, the connection can be a fixed connection, a detachable connection, or integrated. Understandably, it can also be a mechanical connection, an electrical connection, etc.; of course, it can also be directly connected, or indirectly connected through an intermediate medium, or it can be the communication inside two components, or the interaction relationship between two components. For those of ordinary skill in the art, they can understand the specific meanings of the above terms in the present invention according to the specific implementation situations.

[0115] Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be construed as limiting the present invention. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present invention.

Claims

1. An electrode sheet for a tumor electrotherapy system, characterized in that, Comprising: A plurality of electrode elements, each of the electrode elements capable of applying an alternating electric field; A plurality of temperature sensors, each of the temperature sensors being arranged corresponding to an electrode element to detect the temperature at the corresponding electrode element. Each of the temperature sensors has a signal terminal and a ground terminal. The plurality of temperature sensors are configured into a plurality of row groups and a plurality of column groups in terms of circuit connection. After the corresponding temperature sensors in each row group are connected in series, they are connected to a DC power supply through a series-connected first switch and a voltage-dividing resistor. After the ground terminals of the corresponding temperature sensors in each column group are connected together, they are connected to a ground pin through a second switch; Wherein, whether there is an abnormal temperature sensor in the electrode sheet is judged based on the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the sampled electrode sheet.

2. The electrode sheet according to claim 1, wherein, Whether there is an abnormal temperature sensor in the electrode sheet is judged by the configuration of the switching combination relationship of the first switch and the second switch and the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the electrode sheet sampled based on the switching combination relationship of the first switch and the second switch.

3. The electrode sheet according to claim 1 or 2, characterized in that, The electrode sheet further includes a plurality of diodes. Each of the diodes has an anode and a cathode. Each of the diodes is arranged corresponding to a temperature sensor. Wherein, after the ground terminal of the corresponding temperature sensor in each column group is connected to the anode of the corresponding diode, they are connected together through the cathode of the corresponding diode and then connected to the corresponding second switch.

4. The electrode sheet according to claim 1, characterized in that The temperature sensor is a thermistor.

5. The electrode sheet according to claim 1, characterized in that, It further includes a substrate, and the voltage-dividing resistor, the first switch and the second switch are all arranged outside the substrate.

6. The electrode sheet according to claim 1, wherein The electrode element is a dielectric element.

7. The electrode sheet according to claim 6, wherein The dielectric element is a ceramic sheet.

8. The electrode sheet according to claim 1, characterized in that, Each of the electrode elements is provided with a perforation, and the perforation is suitable for installing the temperature sensor.

9. The electrode sheet according to claim 1, characterized in that, The plurality of electrode elements are connected in parallel to an AC power signal line.

10. The electrode sheet according to claim 1, characterized in that, The plurality of electrode elements are configured into a plurality of row groups and a plurality of column groups in terms of circuit connection, and the number of the electrode elements in each row group is the same as that of the temperature sensors, and the number of the electrode elements in each column group is the same as that of the temperature sensors.

11. The electrode sheet according to claim 10, wherein The plurality of electrode elements are 20, and are arranged in a four-row group and a five-column group in terms of circuit connection; or, The plurality of electrode elements are 9, and are arranged in a three-row group and a three-column group in terms of circuit connection.

12. The electrode sheet according to claim 1, wherein, The plurality of electrode elements are arranged in an array in terms of spatial arrangement.

13. The electrode sheet according to claim 1, characterized in that, The number of the first switches is equal to the number of the row groups, and the number of the second switches is equal to the number of the column groups.

14. The electrode sheet according to claim 1, wherein, The total number of the first switch and the second switch does not exceed 9.

15. A tumor electro-field therapy system, characterized in that, Comprising: At least a pair of electrode sheets according to any one of claims 1-14; A controller, configured to judge whether there is an abnormal temperature sensor in the corresponding electrode sheet based on the temperature signals detected by one or more corresponding combinations among all the temperature sensors of the sampled electrode sheet.

16. The tumor electric field therapy system according to claim 15, characterized in that, When the electrode sheet includes a first switch and a second switch, the controller is further configured to detect whether there is an abnormal temperature sensor in the corresponding electrode sheet by configuring the switching combination relationship between the first switch and the second switch and based on the temperature signals detected from one or more corresponding combinations among all the temperature sensors of the electrode sheet sampled according to the switching combination relationship between the first switch and the second switch.

17. The tumor electro-field therapy system according to claim 15, characterized in that, There are four such electrode sheets.

18. A tumor treatment device, characterized in that, including: at least one pair of electrode sheets according to any one of claims 1-14, or a tumor electrotherapy system according to any one of claims 15-17.

19. A method for detecting electrode sheet abnormalities in a tumor electrotherapy system, characterized in that, The electrode sheet is an electrode sheet according to any one of claims 1-14, and the method includes: S210: Sampling the temperature signals detected from one or more corresponding combinations among all the temperature sensors of the electrode sheet. S220: Judging whether there is an abnormal temperature sensor in the electrode sheet according to the temperature signals detected by each of the sampled temperature sensors.

20. The method according to claim 19, wherein When the electrode sheet includes a first switch and a second switch, the step S210 further includes: Configuring the switching timings of the first switch and the second switch to sample the temperature signals detected from one or more corresponding combinations among all the temperature sensors of the electrode sheet.

21. The method according to claim 20, wherein Under the condition of determining the number of temperature sensors in each row group and each column group of the electrode sheet, after the step S210, the method further includes: Determining the switching combination relationship between the first switch and the second switch; Judging whether there is an abnormal temperature sensor in the corresponding electrode sheet according to the switching combination relationship between the first switch and the second switch and the temperature signals detected by each of the sampled temperature sensors.

22. A computer-readable storage medium, characterized in that, A program for detecting abnormal electrode sheets of a tumor electrotherapy system is stored thereon. When the program for detecting abnormal electrode sheets of the tumor electrotherapy system is executed by a controller, the method for detecting abnormal electrode sheets of the tumor electrotherapy system according to any one of claims 19-21 is implemented.

23. An adapter for a tumor electrotherapy system, characterized in that, It includes a memory, a controller, and a program for detecting abnormal electrode sheets of a tumor electrotherapy system stored on the memory and executable on the controller. When the controller executes the program for detecting abnormal electrode sheets of the tumor electrotherapy system, the method for detecting abnormal electrode sheets of the tumor electrotherapy system according to any one of claims 19-21 is implemented.

24. An electric field generator for a tumor electrotherapy system, characterized in that, It includes a memory, a controller, and a program for detecting abnormal electrode sheets of a tumor electrotherapy system stored on the memory and executable on the controller. When the controller executes the program for detecting abnormal electrode sheets of the tumor electrotherapy system, the method for detecting abnormal electrode sheets of the tumor electrotherapy system according to any one of claims 19-21 is implemented.

Citation Information

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