Electronic module product design control system based on integrated circuit technology
Through the electronic module product design control system with integrated circuit technology, the problems of incomplete battery performance, RF performance and chip safety monitoring in the existing technology are solved, and automated and intelligent monitoring and early warning of electronic module design are realized, design efficiency and quality are improved.
Patent Information
- Application Number
- CN202510536762.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2045-04-27
AI Technical Summary
The lack of timely and precise battery performance, RF performance and chip safety monitoring and early warning in the prior art has led to a low degree of automation and intelligence in the design of electronic modules.
Design an electronic module product design control system based on integrated circuit technology, including a battery performance analysis module, a filter transmission characteristic analysis module and a chip environmental control analysis module. It conducts comprehensive monitoring and early warning by generating battery performance characterization index, coupling coefficient and environmental control abnormal signals.
It realizes timely and precise monitoring and early warning of battery performance, RF performance and chip safety of electronic module products, improves the automation and intelligence of design, and enhances the adaptability to complex integrated circuits.
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Figure CN120064855B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electronic module product monitoring, and particularly to a design control system for electronic module products based on integrated circuit technology. Background Art
[0002] In the design process of integrated circuit products, the design and control of electronic modules are key links. Traditional electronic module design often relies on manual operation, which not only has a long design cycle and low efficiency, but also is prone to introducing human errors. In addition, with the continuous improvement of the complexity of integrated circuits, traditional design methods have been difficult to meet the requirements of modern electronic products for high performance, low power consumption, and high reliability.
[0003] In the existing design control systems for electronic module products, there is no system that can comprehensively monitor and warn the battery performance, radio frequency performance, and chip security of electronic module products in a timely and accurate manner, resulting in low automation and low intelligence in electronic module design.
[0004] Therefore, there is an urgent need for a design control system for electronic module products based on integrated circuit technology to solve the above problems. Summary of the Invention
[0005] The purpose of the present invention is to provide a design control system for electronic module products based on integrated circuit technology, which solves the technical problem that there is no system in the prior art that can comprehensively monitor and warn the battery performance, radio frequency performance, and chip security of electronic module products in a timely and accurate manner.
[0006] The purpose of the present invention can be achieved through the following technical solutions:
[0007] A design control system for electronic module products based on integrated circuit technology, the system includes:
[0008] A battery performance status analysis module, which is used to detect and analyze the battery performance status of each electronic module product in sequence based on the design management sequence, generate a battery performance characterization index, and determine whether the battery of the electronic module product meets the standard based on the battery performance characterization index;
[0009] A filter transmission characteristic analysis module, which is used to collect the filter transmission data corresponding to the electronic module products with qualified batteries, obtain the coupling coefficient of the electronic components based on the filter transmission data, and determine whether the filter transmission characteristics of the electronic module product meet the design requirements based on the coupling coefficient;
[0010] A chip environmental control analysis module, which is used to analyze the chip operating temperature parameters corresponding to the electronic module products that meet the filter transmission characteristic design requirements, generate an environmental control abnormal signal or an environmental control normal signal accordingly, and send the environmental control abnormal signal to the quality monitoring unit;
[0011] A quality monitoring unit, configured to receive an environmental control abnormal signal and generate a warning signal.
[0012] Further, the acquisition of the design management sequence specifically includes the following steps: obtaining the design management value of each electronic module product, setting the boundary value of the design management value, calculating the difference between each design management value and the boundary value of the design management value, sorting in descending order according to the difference, obtaining a sequence after sorting, and denoting this sequence as the design management sequence.
[0013] Further, the process of obtaining the design management value of each electronic module product specifically includes the following:
[0014] Collecting the production time of each electronic module product and the arrival time of each electronic module product entered into the design control system, calculating the time interval between the production time and the arrival time, obtaining all the time intervals and taking the average value to get the average time interval, calculating the difference between the time interval of each electronic module product and the average time interval, and denoting this difference as the design management coefficient;
[0015] Numbering each design management coefficient to obtain a number of numbered values, constructing a rectangular coordinate system with the numbered value as the X-axis and the design management coefficient as the Y-axis, marking all the design management coefficients in the rectangular coordinate system in the form of points, connecting the adjacent points in the rectangular coordinate system to generate a design management coefficient curve, selecting any one design management coefficient as the reference design management coefficient, obtaining the two adjacent design management coefficients of the reference design management coefficient, denoting the design management coefficient with a larger numbered value among the two adjacent design management coefficients as the selected design management coefficient, drawing perpendicular lines to the X-axis with the reference design management coefficient and the selected design management coefficient to obtain two starting and ending line segments, forming a closed figure by the design management coefficient curve, the two starting and ending line segments, and the X-axis, and calculating the total area of the closed figure;
[0016] Denoting the total area of this closed figure as the design management value of each electronic module product.
[0017] Further, the process of detecting and analyzing the battery performance status of each electronic module product and generating a battery performance characterization index specifically includes the following:
[0018] Generating a management cycle, dividing the management cycle into i management time periods, obtaining the battery performance status information of the first management time period, the battery performance status information of the second management time period until the battery performance status information of the i-th management time period, where the battery performance status information of the first management time period includes the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data, and the battery performance status information of the i-th management time period includes the i-th charging rate data, the i-th charging efficiency data, the i-th discharge duration data, and the i-th discharge efficiency data;
[0019] Substitute the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data into the correlation formula to calculate the first battery performance characterization coefficient until the i-th battery performance characterization coefficient is calculated. The correlation formula is ; is the i-th battery performance characterization coefficient, is the i-th charging rate, is the i-th charging efficiency, is the i-th discharge duration, is the i-th discharge efficiency, , , and are the weight coefficients corresponding to the charging rate, charging efficiency, discharge duration, and discharge efficiency respectively, and their values are set by the system;
[0020] Calculate the average value of the first battery performance characterization coefficient to the i-th battery performance characterization coefficient, and use this average value as the battery performance characterization index during the management cycle.
[0021] Furthermore, determining whether the battery of the electronic module product meets the standard based on the battery performance characterization index specifically includes the following process:
[0022] Load the battery performance characterization index threshold, whose value is set by the system and stored in the system. Determine whether the battery performance characterization index of the electronic module product is greater than the battery performance characterization index threshold. If so, determine that the battery of the electronic module product meets the standard; if not, determine that the battery of the electronic module product does not meet the standard.
[0023] Furthermore, obtaining the coupling coefficient of the electronic component based on the filter transmission data specifically includes the following process:
[0024] Obtain the filter transmission frequency of the electronic component of the electronic module product based on the filter transmission data , the total capacitance of the electronic module product, , the total inductance of the electronic module product, the filter transmission relative bandwidth FWB, and the resonator admittance slope, and obtain the coupling coefficient through the coupling coefficient calculation formula where is the admittance slope of resonator i, is the admittance slope of resonator j, and
[0025] Furthermore, determining whether the filter transmission characteristics of the electronic module product meet the design requirements based on the coupling coefficient specifically includes the following process:
[0026] Generate a management cycle, divide the management cycle into i management time periods, obtain the coupling coefficients of the filter of the electronic module product in each management time period within the management cycle, construct a rectangular coordinate system with the execution time of the management time period as the X-axis and the coupling coefficient as the Y-axis, mark all the coupling coefficients in the rectangular coordinate system in the form of points, connect the adjacent points in the rectangular coordinate system to generate a coupling coefficient curve, set a coupling coefficient threshold, draw a coupling coefficient threshold line in the rectangular coordinate system, mark the part of the graph where the coupling coefficient curve exceeds the coupling coefficient threshold line, and calculate the area value of the part of the graph;
[0027] Obtain the lower peak value and lower valley value of the filter within the management time period. The lower peak value is the highest frequency passing through the filter within the management time period, and the lower valley value is the lowest frequency passing through the filter within the management time period. Denote the difference between the lower peak value and the lower valley value as the filter transmission characteristic coefficient;
[0028] Denote the product value of the filter transmission characteristic coefficient and the area value of the part of the graph as the filter transmission characteristic value of the electronic module product. Determine whether the filter transmission characteristic value exceeds the preset filter transmission characteristic value threshold. If so, determine that the filter transmission characteristic of the electronic module product meets the design requirements. If not, determine that the filter transmission characteristic of the electronic module product does not meet the design requirements.
[0029] Furthermore, analyze the chip operating temperature parameters corresponding to the electronic module product that meets the filter transmission characteristic design requirements, and generate an environmental control abnormal signal or an environmental control normal signal accordingly, which specifically includes the following process:
[0030] Collect the voltage data of the chip corresponding to the electronic module product at several detection time points during the charge and discharge process, perform mean calculation and variance calculation on all the voltage data to obtain the average voltage data and the fluctuating voltage data, and perform difference calculation on the average voltage data compared with its preset standard charge and discharge voltage value to obtain the voltage performance data;
[0031] Collect the average temperature data of the chip corresponding to the electronic module product during the charge and discharge process and mark it as the temperature performance data. Mark the ratio of the duration exceeding the preset standard temperature value during the charge and discharge process as the temperature overshoot feedback data. Perform numerical summation calculation on the voltage performance data, the fluctuating voltage data, the temperature performance data, and the temperature overshoot feedback data to obtain the chip safety factor;
[0032] Set a chip safety factor threshold, whose value is set by the system and stored in the system. Determine whether the chip safety factor exceeds the chip safety factor threshold. If so, generate an environmental control abnormal signal. If not, generate an environmental control normal signal.
[0033] Furthermore, the warning signal includes at least one of the following methods: audible and visual alarm, SMS alarm, email alarm, and APP push.
[0034] Beneficial effects achieved by the present invention compared with existing solutions:
[0035] Based on the design management sequence, the present invention sequentially detects and analyzes the battery performance status of each electronic module product to generate a battery performance characterization index, and determines whether the battery of the electronic module product meets the standard based on the battery performance characterization index; collects the filter transmission data corresponding to the electronic module products with qualified batteries, obtains the coupling coefficient of the electronic components based on the filter transmission data, and determines whether the filter transmission characteristics of the electronic module product meet the design requirements based on the coupling coefficient; analyzes the chip working temperature parameters corresponding to the electronic module products that meet the design requirements of the filter transmission characteristics, thereby generating an environmental control abnormal signal or an environmental control normal signal, and sending the environmental control abnormal signal to the quality monitoring unit, which can comprehensively monitor and warn the battery performance, radio frequency performance, and chip safety of the electronic module products in a timely and accurate manner, improving the automation and intelligence levels of electronic module design.
[0036] Furthermore, the present invention enhances the adaptability to complex integrated circuits and improves the design efficiency and quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required in the embodiments. Obviously, the drawings described below are only some embodiments recorded in the present invention, and those of ordinary skill in the art can also obtain other drawings based on these drawings.
[0038] Figure 1 It is a system block diagram of an electronic module product design control system based on integrated circuit technology according to an embodiment of the present invention;
[0039] Figure 2 It is a working flowchart of a first electronic module product design control system based on integrated circuit technology according to an embodiment of the present invention;
[0040] Figure 3 It is a working flowchart of a second electronic module product design control system based on integrated circuit technology according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0041] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0042] In addition, the described features, structures, or characteristics may be combined in any suitable manner in one or more example embodiments. In the following description, numerous specific details are provided to give a thorough understanding of the example embodiments of the present disclosure. However, those skilled in the art will recognize that the technical solutions of the present disclosure may be practiced without one or more of the specific details, or other methods, components, steps, etc. may be employed. In other cases, well-known structures, methods, implementations, or operations are not shown or described in detail to avoid obscuring aspects of the present disclosure.
[0043] This embodiment provides an electronic module product design control system based on integrated circuit technology. Figure 1 It is a system block diagram of an electronic module product design control system according to an embodiment of the present invention, as Figure 1 shown. The system includes:
[0044] A battery performance status analysis module, configured to sequentially detect and analyze the battery performance status of each electronic module product based on a design management sequence, generate a battery performance characterization index, and determine whether the battery of the electronic module product meets the standard based on the battery performance characterization index;
[0045] A filter transmission characteristic analysis module, configured to collect filter transmission data corresponding to an electronic module product with a qualified battery, obtain a coupling coefficient of an electronic component based on the filter transmission data, and determine whether the filter transmission characteristic of the electronic module product meets the design requirements based on the coupling coefficient;
[0046] A chip environmental control analysis module, configured to analyze the chip operating temperature parameters corresponding to an electronic module product that meets the filter transmission characteristic design requirements, thereby generating an environmental control abnormal signal or an environmental control normal signal, and sending the environmental control abnormal signal to a quality monitoring unit;
[0047] A quality monitoring unit, configured to receive the environmental control abnormal signal and generate a warning signal.
[0048] In summary, the present invention sequentially detects and analyzes the battery performance status of each electronic module product based on the design management sequence, generates a battery performance characterization index, and determines whether the battery of the electronic module product meets the standard based on the battery performance characterization index; collects the filter transmission data corresponding to the electronic module products with qualified batteries, obtains the coupling coefficient of the electronic components based on the filter transmission data, and determines whether the filter transmission characteristics of the electronic module product meet the design requirements based on the coupling coefficient; analyzes the chip operating temperature parameters corresponding to the electronic module products that meet the filter transmission characteristic design requirements, and thereby generates an environmental control abnormal signal or an environmental control normal signal, and sends the environmental control abnormal signal to the quality monitoring unit, which can comprehensively monitor and warn the battery performance, radio frequency performance, and chip safety of the electronic module product in a timely and accurate manner, and improve the automation and intelligence levels of the electronic module design.
[0049] In some embodiments, the acquisition of the design management sequence specifically includes the following steps: obtaining the design management value of each electronic module product, setting the boundary value of the design management value, calculating the difference between each design management value and the boundary value of the design management value, sorting them in descending order according to the difference, obtaining a sequence after sorting, and recording this sequence as the design management sequence.
[0050] Furthermore, Figure 2 is the flowchart of the working process of the first electronic module product design control system based on integrated circuit technology in the embodiment of the present invention. As Figure 2 shown, the acquisition of the design management value of each electronic module product specifically includes the following processes:
[0051] Step S201: Collect the production time of each electronic module product and the arrival time of each electronic module product entered into the design control system, calculate the time interval between the production time and the arrival time, obtain all the time intervals and take the average to get the average time interval, calculate the difference between the time interval of each electronic module product and the average time interval, and record this difference as the design management coefficient;
[0052] Step S202: Number each design management coefficient to obtain a number of numbered values, construct a rectangular coordinate system with the numbered value as the X-axis and the design management coefficient as the Y-axis, mark all the design management coefficients in the rectangular coordinate system in the form of points, and connect the adjacent points in the rectangular coordinate system to generate a design management coefficient curve;
[0053] Step S203: Select any one design management coefficient and mark it as the reference design management coefficient. Obtain the two adjacent design management coefficients of the reference design management coefficient, and mark the design management coefficient with a larger number value among the two adjacent design management coefficients as the selected design management coefficient. Draw perpendicular lines to the X-axis with the reference design management coefficient and the selected design management coefficient to obtain two starting and ending line segments. A closed figure is formed by the design management coefficient curve, the two starting and ending line segments, and the X-axis. Calculate the total area of the closed figure.
[0054] Step S204: Denote the total area of this closed figure as the design management value of each electronic module product.
[0055] Furthermore, detect and analyze the battery performance status of each electronic module product, and generate a battery performance characterization index, which specifically includes the following process:
[0056] Generate a management cycle, divide the management cycle into i management time periods, and obtain the battery performance status information of the first management time period, the battery performance status information of the second management time period, until the battery performance status information of the i-th management time period. Among them, the battery performance status information of the first management time period includes the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data. The battery performance status information of the i-th management time period includes the i-th charging rate data, the i-th charging efficiency data, the i-th discharge duration data, and the i-th discharge efficiency data.
[0057] Substitute the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data into the correlation formula to calculate the first battery performance characterization coefficient until the i-th battery performance characterization coefficient is calculated. Among them, the correlation formula is ; is the i-th battery performance characterization coefficient, is the i-th charging rate, is the i-th charging efficiency, is the i-th discharge duration, is the i-th discharge efficiency, 、 、 and are the weight coefficients corresponding to the charging rate, charging efficiency, discharge duration, and discharge efficiency respectively, and their values are set by the system;
[0058] Calculate the average value of the first battery performance characterization coefficient to the i-th battery performance characterization coefficient, and use this average value as the battery performance characterization index within the management cycle.
[0059] In some embodiments, determining whether the battery of this electronic module product meets the standard based on the battery performance characterization index specifically includes the following process:
[0060] Load the battery performance characterization index threshold, whose value is set by the system and stored in the system, and determine whether the battery performance characterization index of the electronic module product is greater than the battery performance characterization index threshold. If so, it is determined that the battery of the electronic module product meets the standard; if not, it is determined that the battery of the electronic module product does not meet the standard.
[0061] In some embodiments, obtaining the coupling coefficient of the electronic component based on the data transmitted by the filter specifically includes the following process:
[0062] Obtain the filter transmission frequency of the electronic component of the electronic module product based on the data transmitted by the filter , the total capacitance of the electronic module product , the total inductance of the electronic module product , the filter transmission relative bandwidth FWB and the resonator admittance slope, and obtain the coupling coefficient through the coupling coefficient calculation formula , where is the admittance slope of resonator i, is the admittance slope of resonator j, and .
[0063] In some embodiments, Figure 3 is the working flowchart of the second electronic module product design control system based on integrated circuit technology in the embodiments of the present invention. As Figure 3 shown, determining whether the filter transmission characteristic of the electronic module product meets the design requirements based on the coupling coefficient specifically includes the following process:
[0064] Step S301: Generate a management cycle, divide the management cycle into i management time periods, obtain the coupling coefficients of the filter of the electronic module product in each management time period within the management cycle, construct a rectangular coordinate system with the execution time of the management time period as the X-axis and the coupling coefficient as the Y-axis, mark all the coupling coefficients in the rectangular coordinate system in the form of points, connect the adjacent points in the rectangular coordinate system, generate a coupling coefficient curve, set a coupling coefficient threshold, draw a coupling coefficient threshold line in the rectangular coordinate system, mark the part of the graph where the coupling coefficient curve exceeds the coupling coefficient threshold line, and calculate the area value of the part of the graph;
[0065] Step S302: Obtain the lower peak value and the lower valley value of the filter within the management time period. The lower peak value is the highest frequency passing through the filter within the management time period, and the lower valley value is the lowest frequency passing through the filter within the management time period. Denote the difference between the lower peak value and the lower valley value as the filter transmission characteristic coefficient;
[0066] Step S303: Denote the product value of the filter transmission characteristic coefficient and the area value of a partial graph as the filter transmission characteristic value of the electronic module product, and determine whether the filter transmission characteristic value exceeds a preset filter transmission characteristic value threshold. If it does, it is determined that the filter transmission characteristic of the electronic module product meets the design requirements; if not, it is determined that the filter transmission characteristic of the electronic module product does not meet the design requirements.
[0067] In some embodiments, analyzing the chip operating temperature parameters of the electronic module product that meets the filter transmission characteristic design requirements, and accordingly generating an environmental control abnormal signal or an environmental control normal signal specifically includes the following process:
[0068] Collect voltage data of the corresponding chip of the electronic module product at several detection time points during the charging and discharging process, perform mean value calculation and variance calculation on all voltage data to obtain average voltage data and fluctuating voltage data, and perform difference calculation on the average voltage data compared with its preset standard charging and discharging voltage value to obtain voltage performance data;
[0069] Collect the average temperature data of the corresponding chip of the electronic module product during the charging and discharging process and mark it as temperature performance data, mark the ratio of the duration exceeding the preset standard temperature value during the charging and discharging process as temperature overshoot feedback data, and perform numerical summation calculation on the voltage performance data, fluctuating voltage data, temperature performance data and temperature overshoot feedback data to obtain the chip safety factor;
[0070] Set a chip safety factor threshold, the value of which is set by the system and stored in the system, and determine whether the chip safety factor exceeds the chip safety factor threshold. If it does, generate an environmental control abnormal signal; if not, generate an environmental control normal signal.
[0071] Furthermore, the warning signal includes at least one of the following methods: audible and visual alarm, SMS alarm, email alarm, and APP push.
[0072] The above embodiments can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, the above embodiments can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or executed on a computer, the processes or functions described in the embodiments of the present application are generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center by wire (such as infrared, wireless, microwave, etc.). The computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center that contains one or more collections of available media. The available media can be magnetic media (such as floppy disks, hard disks, magnetic tapes), optical media (such as DVDs), or semiconductor media. The semiconductor media can be a solid-state drive.
[0073] Those of ordinary skill in the art can realize that the units and algorithm steps of the examples described in combination with the embodiments disclosed herein can be implemented by electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are executed in hardware or software depends on the specific application and design constraints of the technical solution. Skilled professionals can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of this application.
[0074] Those skilled in the art can clearly understand that for the convenience and brevity of description, the specific working processes of the systems, devices, and units described above can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein.
[0075] In the several embodiments provided in this application, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units is only for some logical function divisions, and there can be other division methods in actual implementation. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed couplings, direct couplings, or communication connections to each other can be through some interfaces. The indirect couplings or communication connections of the devices or units can be in electrical, mechanical, or other forms.
[0076] The unit described as a separation component may or may not be physically separated. The component displayed as a unit may or may not be a physical unit, that is, it may be located in one place or may be distributed across multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0077] As described above, only the specific implementation manners of this application are provided, but the protection scope of this application is not limited thereto. Any person skilled in the art within the technical scope disclosed in this application can easily think of changes or substitutions, which should all be covered within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claims.
Claims
1. An electronic module product design control system based on integrated circuit technology, characterized in that, The system includes: A battery performance status analysis module, which is used to detect and analyze the battery performance status of each electronic module product in sequence based on the design management sequence, generate a battery performance characterization index, and determine whether the battery of the electronic module product meets the standard based on the battery performance characterization index; Among them, the acquisition of the design management sequence specifically includes the following steps: obtaining the design management value of each electronic module product, setting the boundary value of the design management value, calculating the difference between each design management value and the boundary value of the design management value, sorting in descending order according to the difference, obtaining a sequence after sorting, and recording this sequence as the design management sequence; The specific process of obtaining the design management value of each electronic module product includes the following: Collect the production time of each electronic module product and the arrival time of each electronic module product entered into the design control system, calculate the time interval between the production time and the arrival time, obtain all the time intervals and take the average value to get the average time interval, calculate the difference between the time interval of each electronic module product and the average time interval, and record this difference as the design management coefficient; Number each design management coefficient to obtain a number of numbered values. Construct a rectangular coordinate system with the numbered value as the X-axis and the design management coefficient as the Y-axis. Mark all the design management coefficients as points in the rectangular coordinate system, connect the adjacent points in the rectangular coordinate system to generate a design management coefficient curve, select any one design management coefficient as the reference design management coefficient, obtain the two design management coefficients adjacent to the reference design management coefficient, record the design management coefficient with the larger numbered value among the two adjacent design management coefficients as the selected design management coefficient, draw perpendicular lines to the X-axis with the reference design management coefficient and the selected design management coefficient to obtain two starting and ending line segments. The closed figure is composed of the design management coefficient curve, the two starting and ending line segments, and the X-axis, and calculate the total area of the closed figure; Record the total area of this closed figure as the design management value of each electronic module product; A filter transmission characteristic analysis module, which is used to collect the filter transmission data corresponding to the electronic module products with qualified batteries, obtain the coupling coefficient of the electronic components based on the filter transmission data, and determine whether the filter transmission characteristic of the electronic module product meets the design requirements based on the coupling coefficient; A chip environmental control analysis module, which is used to analyze the chip operating temperature parameters corresponding to the electronic module products that meet the filter transmission characteristic design requirements, and generate an environmental control abnormal signal or an environmental control normal signal accordingly, and send the environmental control abnormal signal to the quality monitoring unit; A quality monitoring unit, which is used to receive the environmental control abnormal signal and generate a warning signal.
2. The electronic module product design control system based on integrated circuit technology according to claim 1, characterized in that, The specific process of detecting and analyzing the battery performance status of each electronic module product and generating a battery performance characterization index includes the following: Generate a management cycle, divide the management cycle into i management time periods, and obtain the battery performance status information of the first management time period, the battery performance status information of the second management time period, up to the battery performance status information of the i-th management time period. Among them, the battery performance status information of the first management time period includes the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data. The battery performance status information of the i-th management time period includes the i-th charging rate data, the i-th charging efficiency data, the i-th discharge duration data, and the i-th discharge efficiency data; Substitute the first charging rate data, the first charging efficiency data, the first discharge duration data, and the first discharge efficiency data into the correlation formula to calculate the first battery performance characterization coefficient until the i-th battery performance characterization coefficient is calculated. The correlation formula is C i is the i-th battery performance characterization coefficient, Af is the i-th charging rate, As is the i-th charging efficiency, Ad is the i-th discharge duration, Ao is the i-th discharge efficiency, and K1, K2, K3, and K4 are the weight coefficients corresponding to the charging rate, charging efficiency, discharge duration, and discharge efficiency respectively, and their values are set by the system; Calculate the average value of the first battery performance characterization coefficient to the i-th battery performance characterization coefficient, and use this average value as the battery performance characterization index within the management cycle.
3. The electronic module product design control system based on integrated circuit technology according to claim 1, characterized in that, Judging whether the battery of the electronic module product meets the standard based on the battery performance characterization index specifically includes the following process: Load the battery performance characterization index threshold, the value of which is set by the system and stored in the system. Judge whether the battery performance characterization index of the electronic module product is greater than the battery performance characterization index threshold. If so, it is determined that the battery of the electronic module product meets the standard. If not, it is determined that the battery of the electronic module product does not meet the standard.
4. The electronic module product design control system based on integrated circuit technology according to claim 1, characterized in that Obtaining the coupling coefficient of the electronic component based on the filter transmission data specifically includes the following process: Based on the data transmitted by the filter, obtain the transmission frequency ω of the electronic component filter of the electronic module product, the total capacitance C of the electronic module product z , the total inductance L of the electronic module product z , the relative bandwidth FWB of the filter transmission and the admittance slope of the resonator, and obtain the coupling coefficient through the coupling coefficient calculation formula where b i is the admittance slope of resonator i, and b j is the admittance slope of resonator j, and i ≠ j.
5. The electronic module product design control system based on integrated circuit technology according to claim 4, characterized in that, Judging whether the filter transmission characteristics of the electronic module product meet the design requirements based on the coupling coefficient specifically includes the following process: Generate a management cycle, divide the management cycle into i management time periods, obtain the coupling coefficients of each management time period of the filter of the electronic module product within the management cycle, construct a rectangular coordinate system with the execution time of the management time period as the X-axis and the coupling coefficient as the Y-axis, mark all the coupling coefficients in the form of points in the rectangular coordinate system, connect the adjacent points in the rectangular coordinate system, generate a coupling coefficient curve, set a coupling coefficient threshold, draw a coupling coefficient threshold straight line in the rectangular coordinate system, mark the part of the graph where the coupling coefficient curve exceeds the coupling coefficient threshold straight line, and calculate the area value of the part of the graph; Obtain the lower peak value and the lower valley value of the filter within the management time period. The lower peak value is the highest frequency passing through the filter within the management time period, and the lower valley value is the lowest frequency passing through the filter within the management time period. Denote the difference between the lower peak value and the lower valley value as the filter transmission characteristic coefficient; Denote the product value of the filter transmission characteristic coefficient and the area value of the part of the graph as the filter transmission characteristic value of the electronic module product. Judge whether the filter transmission characteristic value exceeds the preset filter transmission characteristic value threshold. If so, it is judged that the filter transmission characteristics of the electronic module product meet the design requirements. If not, it is judged that the filter transmission characteristics of the electronic module product do not meet the design requirements.
6. The electronic module product design control system based on integrated circuit technology according to claim 1, characterized in that Analyze the chip working temperature parameters corresponding to the electronic module product that meets the filter transmission characteristic design requirements, and accordingly generate an environmental control abnormal signal or an environmental control normal signal specifically Includes the following process: Voltage data at several detection time points during the charging and discharging process of the corresponding chip of the electronic module product are collected. All voltage data are subjected to mean calculation and variance calculation to obtain average voltage data and fluctuating voltage data. The average voltage data is subjected to difference calculation compared with its preset standard charging and discharging voltage value to obtain voltage performance data; Average temperature data during the charging and discharging process of the corresponding chip of the electronic module product are collected and marked as temperature performance data. The ratio of the duration exceeding the preset standard temperature value during the charging and discharging process is marked as temperature over-feedback data. The voltage performance data, fluctuating voltage data, temperature performance data, and temperature over-feedback data are subjected to numerical summation calculation to obtain the chip safety factor; A chip safety factor threshold is set, and its value is set by the system and stored in the system. It is judged whether the chip safety factor exceeds the chip safety factor threshold. If so, an environmental control abnormal signal is generated. If not, an environmental control normal signal is generated.
7. The electronic module product design control system based on integrated circuit technology according to claim 1, characterized in that, The warning signal includes at least one of the methods of audible and visual alarm, SMS alarm, email alarm, and APP push.
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