Medical glass sterilization method and system based on ultraviolet irradiation management
By variable temperature drying and ultraviolet sterilization of medical glass, combined with ultraviolet sensor detection and management unit, the problem of moisture on the surface of medical glass affecting the sterilization effect is solved, and efficient and refined ultraviolet sterilization management is achieved.
Patent Information
- Application Number
- CN202411964703.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-05-23
AI Technical Summary
When using ultraviolet sterilization medical glass, the prior art has the problem that the sterilization effect is affected by the moisture on the surface of the medical glass, and there is a lack of refined management of the ultraviolet sterilization process.
By receiving drying instructions, the set of dried glass is heat-changing and drying, ensuring that it is dried before ultraviolet sterilization is performed, and the intensity is detected using ultraviolet sensors during the sterilization process, adjust the irradiation intensity and time according to the detection results, generate detection messages and unit irradiation reports, and realize accurate recording and management of the sterilization process.
It effectively avoids the problem that moisture on the surface of medical glass affects the sterilization effect, ensures the integrity and efficiency of ultraviolet sterilization, and improves the traceability and management of the sterilization process through refined management records.
Smart Images

Figure CN120022394A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ultraviolet sterilization management, and in particular to a medical glass sterilization method, system, electronic equipment and computer-readable storage medium based on ultraviolet irradiation management. Background Art
[0002] Medical glass has a wide range of uses in actual use, such as endoscopes, culture dishes, test tubes and other medical devices. A large part of these medical devices need to be reused, so sterilization of medical glass is very important.
[0003] In the prior art, ultraviolet sterilization is a commonly used technical means. Medical glass is introduced into a container where an ultraviolet lamp is located, and sterilization can be completed by irradiating the ultraviolet lamp.
[0004] However, in the actual sterilization process, since the previous step of sterilization with ultraviolet lamps is cleaning, if there is moisture on the surface of medical glass, the sterilization effect will be greatly reduced. In addition, in the process of ultraviolet irradiation, since ultraviolet rays are very harmful to humans, remote control is often used in existing technologies to achieve ultraviolet management, which easily leads to the inability to directly supervise the status of various equipment on site. Therefore, it is necessary to monitor and finely manage ultraviolet sterilization. Summary of the invention
[0005] The present invention provides a medical glass sterilization method based on ultraviolet irradiation management and a computer-readable storage medium, the main purpose of which is to effectively utilize ultraviolet rays to sterilize medical glass and accurately record the sterilization process.
[0006] To achieve the above object, the present invention provides a medical glass sterilization method based on ultraviolet irradiation management, comprising: Receive a drying instruction, obtain a set of glasses to be dried based on the drying instruction, input the set of glasses to be dried into a pre-built drying unit, and perform a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; Inputting the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment comprises: an irradiation unit and a management unit, wherein the irradiation unit comprises an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; After confirming that the detection intensity is within the intensity interval, generating a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message; Summarize the irradiation reports of multiple units to obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
[0007] Optionally, performing a drying operation on the glass set to be dried based on the drying unit includes: Based on the drying unit, obtain the variable temperature drying temperature zone, drying time, temperature monitoring unit and dryer; After the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried; Based on the drying time, a plurality of unit drying time are obtained, unit drying time is extracted from the plurality of unit drying time in sequence, and the following operations are performed on the extracted unit drying time: Obtaining a target temperature zone based on the variable temperature drying temperature zone, obtaining a unit minimum temperature based on the target temperature zone and inputting the unit minimum temperature into the dryer, wherein the temperature interval corresponding to the target temperature zone is within the interval corresponding to the variable temperature drying temperature; After detecting the real-time temperature of the dryer based on the temperature monitoring unit and confirming that the real-time temperature is equal to the unit minimum temperature; Based on the unit drying time and the unit minimum temperature, the glass set to be dried is dried, and the temperature monitoring unit is used to perform real-time temperature measurement on the dryer to obtain a real-time temperature sequence. Based on the real-time temperature sequence, the glass set to be dried within the unit drying time is dried.
[0008] Optionally, after the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried, including: The ambient room temperature corresponding to the glass set to be dried is obtained by using a temperature monitoring unit, the lowest drying temperature is obtained based on the variable temperature drying temperature zone, and the initial temperature difference is obtained based on the ambient room temperature and the lowest drying temperature, wherein the initial temperature difference is the numerical difference between the lowest drying temperature and the ambient room temperature; The breaking temperature difference of the glass set to be dried is obtained according to the glass set to be dried, wherein the breaking temperature difference is: ; in, Indicates the crushing temperature difference, represents the safety factor, Indicates the temperature difference that can be tolerated by the glass material; Comparing the crushing temperature difference with the initial temperature difference; If the broken temperature difference is greater than or equal to the initial temperature difference, a preheating temperature curve is constructed based on the initial temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer; If the broken temperature difference is smaller than the initial temperature difference, a preheating temperature curve is constructed based on the broken temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer.
[0009] Optionally, the method of using a temperature monitoring unit to perform a real-time temperature measurement operation on the dryer to obtain a real-time temperature sequence, and completing the drying of the glass set to be dried within a unit drying time based on the real-time temperature sequence, includes: Acquire a temperature measurement frequency based on a temperature monitoring unit, perform a real-time temperature measurement operation on the glass set to be dried based on the temperature measurement frequency, and obtain a real-time temperature sequence, wherein the real-time temperature sequence includes a plurality of real-time temperatures, and the plurality of real-time temperatures are sorted in chronological order; Acquire the unit maximum temperature based on the target temperature zone, extract the real-time temperatures from the real-time temperature sequence in sequence, and compare the extracted real-time temperatures with the unit maximum temperature; If the real-time temperature is greater than the unit maximum temperature, the real-time temperature is compared with the high temperature threshold. If the real-time temperature is greater than the high temperature threshold, the temperature monitoring unit prompts that the dryer is abnormal. Otherwise, a pre-built cooling unit is enabled based on the dryer. After the cooling unit is used to cool the dryer, the real-time temperature is obtained using a temperature sensor, and the process returns to the step of comparing the real-time temperature with the unit maximum temperature. If the real-time temperature is lower than the unit maximum temperature, the temperature monitoring unit indicates that the dryer is normal; After confirming that the dryer is normal within the unit drying time based on the temperature monitoring unit and the real-time temperature sequence, the drying of the glass set to be dried within the unit drying time is completed.
[0010] Optionally, calculating the irradiation intensity using a pre-built ultraviolet intensity calculation formula includes: The irradiation distance is obtained based on the irradiation container and the irradiation lamp, the radiation angle coefficient is calculated based on the irradiation distance and the pre-constructed radiation angle coefficient calculation formula, and the irradiation intensity at the set to be sterilized is calculated according to the radiation angle coefficient and the pre-constructed ultraviolet intensity calculation formula, wherein the ultraviolet intensity calculation formula is: ; in, represents the irradiation intensity, Indicates the output power of the irradiation lamp. represents the total viewpoint factor of the set to be sterilized, Represents the radiation angle coefficient of the set to be sterilized, Indicates the size and shape parameters of the illumination lamp.
[0011] Optionally, constructing the intensity interval based on the illumination intensity includes: The minimum value of the intensity interval is obtained using the pre-constructed minimum enhancement coefficient and the irradiation intensity, the maximum value of the intensity interval is obtained using the pre-constructed maximum enhancement coefficient, and the intensity interval is constructed based on the maximum value of the intensity interval and the minimum value of the intensity interval.
[0012] Optionally, the determining, based on the management unit, whether the detection intensity is within the intensity range includes: Compare the detection intensity with the minimum value of the intensity interval. If the detection intensity is less than the minimum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, compare the detection intensity with the maximum value of the intensity interval. If the detection intensity is greater than the maximum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, confirm that the detection intensity is within the intensity interval.
[0013] Optionally, the generating a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message includes: Obtain the lamp code according to the irradiated lamp, use the extracted unit sterilization period to obtain the time start and time end of the extracted unit sterilization period, obtain the time code according to the time start and time end, obtain the batch code corresponding to the sterilization set based on the sterilization set, obtain the administrator identification code of the administrator according to the management unit, and use the lamp code, time code, batch code and administrator identification code to calculate the execution hash value; The execution hash is sent to the management unit, and the management unit compares the execution hash value with the preset hash value. If the execution hash value is inconsistent with the preset hash value, the management unit prompts that the information is incorrect. Otherwise, a detection message is generated based on the execution hash value and the detection intensity, and a unit irradiation report is generated based on the detection message.
[0014] Optionally, the calculating and executing hash value using the lamp code, the time start point, the time end point, the batch code and the administrator identification code includes: The execution hash value is calculated using the pre-built hash function and the lamp code, time start point, time end point, batch code and administrator identification code. The calculation formula for the execution hash value is: ; in, Indicates the execution hash value corresponding to the extracted unit sterilization period, Indicates the serial number corresponding to the extracted unit sterilization period. represents a hash function, Indicates the lamp code. Indicates time code, Indicates the batch code, Indicates the administrator identification code.
[0015] To achieve the above object, the present invention also provides a medical glass sterilization system based on ultraviolet irradiation management, comprising: A drying module, used for receiving a drying instruction, obtaining a set of glasses to be dried based on the drying instruction, inputting the set of glasses to be dried into a pre-built drying unit, and performing a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; The ultraviolet sterilization module is used to input the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment includes: an irradiation unit and a management unit, wherein the irradiation unit includes an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; A unit irradiation report module, configured to generate a detection message based on the extracted management unit, intensity interval and detection intensity after confirming that the detection intensity is within the intensity interval, and generate a unit irradiation report based on the detection message; The management report module is used to summarize the irradiation reports of multiple units, obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
[0016] In order to solve the above problem, the present invention further provides an electronic device, the electronic device comprising: a memory storing at least one instruction; and The processor executes the instructions stored in the memory to implement the above-mentioned medical glass sterilization method based on ultraviolet irradiation management.
[0017] In order to solve the above problems, the present invention also provides a computer-readable storage medium, in which at least one instruction is stored. The at least one instruction is executed by a processor in an electronic device to implement the above-mentioned medical glass sterilization method based on ultraviolet irradiation management.
[0018] The present invention is to solve the problem described in the background technology. The present invention receives a drying instruction, obtains a glass set to be dried based on the drying instruction, inputs the glass set to be dried into a pre-constructed drying unit, performs a drying operation on the glass set to be dried based on the drying unit, obtains a sterilization set, and inputs the sterilization set into a pre-constructed ultraviolet sterilization environment. In the embodiment of the present invention, before using ultraviolet sterilization, in order to avoid the situation where the surface of the medical glass is not completely sterilized when the same intensity of ultraviolet light and the same irradiation time are used due to moisture on the surface of the medical glass, the glass set to be dried is first subjected to variable temperature drying to avoid deformation or cracking of the medical glass due to too fast drying rate during the drying process. The total drying time can also be shortened while ensuring the drying effect, which is conducive to cost saving. In the embodiment of the present invention, before performing the drying operation on the glass set to be dried, the glass set to be dried needs to be preheated to avoid the glass set to be dried from being cracked and deformed after being introduced into the dryer due to the large temperature difference between the ambient room temperature and the lowest drying temperature. After confirming that the set to be sterilized is imported into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: based on the ultraviolet sensor, the detection intensity at the set to be sterilized is obtained, and the detection intensity is sent to the management unit. The embodiment of the present invention uses the ultraviolet irradiation method to perform sterilization operations on the set to be sterilized. In order to ensure that the medical glass in the set to be sterilized can fully meet the sterilization requirements, the embodiment of the present invention detects the ultraviolet intensity at the set to be sterilized, and controls the normal operation of the extracted irradiation lamp according to the detection results and the management unit. The intensity interval is confirmed based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, constructing an intensity interval based on the irradiation intensity, and judging whether the detection intensity is within the intensity interval based on the management unit. Based on the irradiation intensity, the embodiment of the present invention strengthens the irradiation intensity and extends the original irradiation time, and sets the intensity interval to simplify the calculation amount during the operation process. After confirming that the detection intensity is within the intensity interval, a detection message is generated based on the extracted management unit, intensity interval and detection intensity, and a unit irradiation report is generated based on the detection message. In the embodiment of the present invention, a hash function is set to record various information in the detection process, thereby realizing refined management, summarizing multiple unit irradiation reports, obtaining a management report, and completing the sterilization of medical glass based on ultraviolet irradiation management based on the management report. In the embodiment of the present invention, the administrator can consult each unit irradiation report in multiple unit irradiation reports by consulting the management report. Therefore, the present invention effectively utilizes ultraviolet rays to sterilize medical glass and accurately records the sterilization process. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A schematic diagram of a process for sterilizing medical glass using ultraviolet radiation management provided by an embodiment of the present invention; Figure 2 A functional module diagram of a medical glass sterilization system managed by ultraviolet irradiation provided by an embodiment of the present invention; Figure 3 A schematic structural diagram of an electronic device for implementing the medical glass sterilization method with ultraviolet irradiation management provided in one embodiment of the present invention.
[0020] The realization of the purpose, functional features and advantages of the present invention will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0021] It should be understood that the specific embodiments described herein are only used to explain the present invention, and are not used to limit the present invention.
[0022] The embodiment of the present application provides a medical glass sterilization method based on ultraviolet irradiation management. The execution subject of the medical glass sterilization method based on ultraviolet irradiation management includes but is not limited to at least one of the electronic devices such as a server and a terminal that can be configured to execute the method provided in the embodiment of the present application. In other words, the medical glass sterilization method based on ultraviolet irradiation management can be executed by software or hardware installed in a terminal device or a server device, and the software can be a blockchain platform. The server includes but is not limited to: a single server, a server cluster, a cloud server or a cloud server cluster, etc.
[0023] Reference Figure 1 FIG. 1 is a flow chart of a medical glass sterilization method based on ultraviolet irradiation management provided by an embodiment of the present invention. In this embodiment, the medical glass sterilization method based on ultraviolet irradiation management includes: S1. Receive a drying instruction, obtain a glass set to be dried based on the drying instruction, input the glass set to be dried into a pre-built drying unit, perform a drying operation on the glass set to be dried based on the drying unit, and obtain a glass set to be sterilized.
[0024] It is understandable that the drying instruction is an instruction for drying glass, the glass set to be dried is a set consisting of multiple medical glasses that need to be dried, and the drying unit is a unit for drying medical glass. In daily life, medical glass can be a variety of medical instruments such as endoscopes, culture dishes, test tubes, etc. The embodiment of the present invention does not limit the shape of medical glass, but the embodiment of the present invention is intended to process reusable medical glass instruments, so it is necessary to sterilize the medical glass. In the embodiment of the present invention, an ultraviolet sterilization method is used. Since ultraviolet sterilization is to irradiate and sterilize the glass with ultraviolet light emitted by an ultraviolet lamp, if there is moisture on the surface of the medical glass, the moisture on the surface of the glass will affect the effect of ultraviolet irradiation: when using ultraviolet light of the same intensity and irradiation time, the surface of the medical glass is not completely sterilized. During the drying process, the medical glass can also have a sterilization effect, so it is necessary to perform a drying operation on the medical glass.
[0025] Furthermore, the drying unit performs a drying operation on the glass set to be dried, including: Based on the drying unit, obtain the variable temperature drying temperature zone, drying time, temperature monitoring unit and dryer; After the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried; Based on the drying time, a plurality of unit drying time are obtained, unit drying time is extracted from the plurality of unit drying time in sequence, and the following operations are performed on the extracted unit drying time: Obtaining a target temperature zone based on the variable temperature drying temperature zone, obtaining a unit minimum temperature based on the target temperature zone and inputting the unit minimum temperature into the dryer, wherein the temperature interval corresponding to the target temperature zone is within the interval corresponding to the variable temperature drying temperature; After detecting the real-time temperature of the dryer based on the temperature monitoring unit and confirming that the real-time temperature is equal to the unit minimum temperature; Based on the unit drying time and the unit minimum temperature, the glass set to be dried is dried, and the temperature monitoring unit is used to perform real-time temperature measurement on the dryer to obtain a real-time temperature sequence. Based on the real-time temperature sequence, the glass set to be dried within the unit drying time is dried.
[0026] It can be understood that the drying unit is a unit used to perform drying operations on the glass set to be dried, the variable temperature drying zone is the lowest temperature to the highest temperature set by the dryer during the entire process of performing the drying operation on the glass set to be dried, the drying time is the total time for drying the glass set to be dried using the dryer, the temperature monitoring unit is a unit used to monitor and feedback the temperature conditions of the drying unit, and the dryer is a device used to dry the glass set to be dried.
[0027] It should be noted that the unit drying time is the time obtained by dividing the drying time into multiple units, and the sum of the multiple unit drying times is the drying time, and the time length of each unit drying time in the multiple unit drying times is not completely consistent. The target temperature zone is the drying temperature interval set when the dryer dries the glass set to be dried within the unit drying time, and the target temperature zone corresponding to each unit drying time is different. The purpose of this setting is to allow the glass set to be dried to be dried slowly during the drying process.
[0028] Specifically, the unit minimum temperature is the minimum temperature value in the target temperature zone. When the temperature inside the dryer reaches the unit minimum temperature, the glass set to be dried can be dried. The real-time temperature is the temperature obtained after the temperature of the dryer is measured by the temperature monitoring unit. In the embodiment of the present invention, the temperature monitoring unit is used to monitor the temperature of the dryer to control the drying temperature and drying rate. The real-time temperature sequence includes multiple real-time temperatures. The real-time drying sequence is a sequence in which the real-time temperatures are sorted based on the time sequence.
[0029] It is understandable that in the embodiment of the present invention, the variable temperature drying operation is performed on the glass set to be dried, and no limitation is imposed on each unit drying time and target temperature zone in the variable temperature drying operation. The purpose is to avoid deformation or cracking of the medical glass due to too fast drying rate during the drying process, and to shorten the total drying time while ensuring the drying effect, which is conducive to cost saving.
[0030] Furthermore, after the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried, including: The ambient room temperature corresponding to the glass set to be dried is obtained by using a temperature monitoring unit, the lowest drying temperature is obtained based on the variable temperature drying temperature zone, and the initial temperature difference is obtained based on the ambient room temperature and the lowest drying temperature, wherein the initial temperature difference is the numerical difference between the lowest drying temperature and the ambient room temperature; The breaking temperature difference of the glass set to be dried is obtained according to the glass set to be dried, wherein the breaking temperature difference is: ; in, Indicates the crushing temperature difference, represents the safety factor, Indicates the temperature difference that can be tolerated by the glass material; Comparing the crushing temperature difference with the initial temperature difference; If the broken temperature difference is greater than or equal to the initial temperature difference, a preheating temperature curve is constructed based on the initial temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer; If the broken temperature difference is smaller than the initial temperature difference, a preheating temperature curve is constructed based on the broken temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer.
[0031] It should be understood that the ambient room temperature is the room temperature of the glass set to be dried, the lowest drying temperature is the lowest temperature in the variable temperature drying zone, the breaking temperature difference is the minimum temperature difference at which the glass will be damaged, determined by the material of the glass set to be dried, and the tolerance temperature difference is the maximum temperature difference that can be determined by the glass material without being damaged, that is, when the temperature difference of the glass set to be dried exceeds the tolerance temperature difference, the glass set to be dried will be damaged. The preheating temperature curve is a curve used to describe the temperature change of the dryer at a preset time. In the embodiment of the present invention, the dryer performs a preheating operation on the glass set to be dried according to the preheating temperature curve.
[0032] It is understandable that in the embodiment of the present invention, before the drying operation is performed on the glass set to be dried, the glass set to be dried needs to be preheated, in order to avoid the glass set to be dried from being cracked and deformed after being introduced into the dryer due to the large temperature difference between the ambient room temperature and the lowest drying temperature. Similarly, in the embodiment of the present invention, the interval span of the variable temperature drying temperature zone and the interval span of the target temperature zone do not exceed the breakage temperature difference.
[0033] Specifically, when the embodiment of the present invention performs preheating on the glass set to be dried, the broken temperature difference is used as the maximum temperature difference that can prevent the glass set to be dried from being damaged. This step is to avoid unnecessary loss of the glass set to be dried by setting a safety factor. Therefore, in the embodiment of the present invention, the smaller temperature difference is selected from the broken temperature difference and the initial temperature difference to construct the preheating temperature curve, thereby avoiding unnecessary loss of the glass set to be dried.
[0034] Furthermore, the temperature monitoring unit is used to perform real-time temperature measurement on the dryer to obtain a real-time temperature sequence, and the drying of the glass set to be dried within a unit drying time is completed based on the real-time temperature sequence, including: Acquire a temperature measurement frequency based on a temperature monitoring unit, perform a real-time temperature measurement operation on the glass set to be dried based on the temperature measurement frequency, and obtain a real-time temperature sequence, wherein the real-time temperature sequence includes a plurality of real-time temperatures, and the plurality of real-time temperatures are sorted in chronological order; Acquire the unit maximum temperature based on the target temperature zone, extract the real-time temperatures from the real-time temperature sequence in sequence, and compare the extracted real-time temperatures with the unit maximum temperature; If the real-time temperature is greater than the unit maximum temperature, the real-time temperature is compared with the high temperature threshold. If the real-time temperature is greater than the high temperature threshold, the temperature monitoring unit prompts that the dryer is abnormal. Otherwise, a pre-built cooling unit is enabled based on the dryer. After the cooling unit is used to cool the dryer, the real-time temperature is obtained using a temperature sensor, and the process returns to the step of comparing the real-time temperature with the unit maximum temperature. If the real-time temperature is lower than the unit maximum temperature, the temperature monitoring unit indicates that the dryer is normal; After confirming that the dryer is normal within the unit drying duration based on the temperature monitoring unit and the real-time temperature sequence, complete the drying of the glass set to be dried within the unit drying duration.
[0035] It can be understood that the temperature measurement frequency is the frequency of measuring the temperature in the dryer in the temperature monitoring unit, the unit maximum temperature is the highest temperature in the target temperature zone, the high temperature threshold is the highest temperature at which the dryer works normally for the current drying operation, and the cooling unit is the unit used to cool the dryer.
[0036] It should be noted that when using the dryer to perform the drying operation on the glass set to be dried, due to various reasons, it is normal for the real-time temperature to be greater than the unit maximum temperature briefly. Although this situation occurs very briefly, it will also be captured by the temperature monitoring unit. After this situation occurs, the dryer can work normally after being cooled by the cooling unit. When the real-time temperature is greater than the high temperature threshold, it means that the dryer cannot operate normally.
[0037] S2. Input the set to be sterilized into a pre-constructed ultraviolet sterilization environment. The ultraviolet sterilization environment includes: an irradiation unit and a management unit. The irradiation unit includes an irradiation lamp tube, an ultraviolet sensor, and an irradiation container. After confirming that the set to be sterilized is introduced into the irradiation container, start the irradiation lamp tube, and divide the preset ultraviolet sterilization duration by the preset detection frequency to obtain multiple unit sterilization periods.
[0038] It should be noted that the set to be sterilized is composed of the dried glass set to be dried, so the set to be sterilized includes multiple medical glasses that need to be sterilized. The ultraviolet sterilization environment is an environment used to achieve ultraviolet irradiation sterilization. The irradiation unit is a unit used to sterilize medical glasses with an ultraviolet lamp tube. The irradiation lamp tube is composed of ultraviolet lamp tubes. In actual use, the irradiation lamp tube is mostly composed of multiple different ultraviolet lamp tubes. However, the embodiment of the present invention does not limit the arrangement of the ultraviolet lamp tubes, and regards the irradiation lamp tube composed of multiple ultraviolet lamp tubes as a whole as a simplified model. The ultraviolet sensor is a sensor used to detect the ultraviolet intensity. The irradiation container is a container used to place the set to be sterilized. The management unit is a unit used to monitor, control, and feedback the irradiation unit. The detection frequency is the frequency of detecting the detection intensity of the ultraviolet lamp tube. The ultraviolet sterilization duration is the total duration of using the irradiation unit to perform ultraviolet irradiation sterilization on the set to be sterilized. The unit sterilization period is the period obtained by dividing the ultraviolet sterilization duration by the detection frequency. The sum of multiple unit sterilization periods is the ultraviolet sterilization duration.
[0039] Exemplarily, the ultraviolet sterilization duration is 6h, and the detection frequency is 30min. Then, after the irradiation unit is started, detection will be performed every 30min, and a unit sterilization period is 30min.
[0040] S3. Extracting unit sterilization time periods from the plurality of unit sterilization time periods in sequence, and performing the following operations on the extracted unit sterilization time periods: acquiring detection intensity at the set to be sterilized based on an ultraviolet sensor, and sending the detection intensity to a management unit.
[0041] It is understandable that the detection intensity is the irradiation intensity of the ultraviolet light at the set to be sterilized detected by the tool. The embodiment of the present invention uses the ultraviolet irradiation method to perform a sterilization operation on the set to be sterilized. In order to ensure that the medical glass in the set to be sterilized can fully meet the sterilization requirements, the embodiment of the present invention detects the ultraviolet intensity at the set to be sterilized, and controls the normal operation of the extracted ultraviolet lamp according to the detection result and the management unit.
[0042] S4. Confirming an intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity.
[0043] Furthermore, the irradiation intensity is calculated using a pre-built ultraviolet intensity calculation formula, including: The irradiation distance is obtained based on the irradiation container and the irradiation lamp, the radiation angle coefficient is calculated based on the irradiation distance and the pre-constructed radiation angle coefficient calculation formula, and the irradiation intensity at the set to be sterilized is calculated according to the radiation angle coefficient and the pre-constructed ultraviolet intensity calculation formula, wherein the ultraviolet intensity calculation formula is: ; in, represents the irradiation intensity, Indicates the output power of the irradiation lamp. represents the total viewpoint factor of the set to be sterilized, Represents the radiation angle coefficient of the set to be sterilized, Indicates the size and shape parameters of the illumination lamp.
[0044] It is understandable that the ultraviolet intensity calculation formula is a calculation formula for calculating the ultraviolet irradiation intensity at a certain point. In the embodiment of the present invention, the multiple ultraviolet lamps that may exist in the irradiation lamp are simplified into a simple model. Therefore, when calculating the total viewpoint factor, the size and shape parameters are used as calculation parameters, so that the calculation formula has a wider application. The size and shape parameters are parameters used to describe the influence of the size and shape of the irradiation lamp on the irradiation intensity. For example, when the irradiation lamp is a cylindrical lamp, the size and shape parameters are: ,in, Indicates the radius of the cylindrical lamp tube, Indicates the length of the cylindrical lamp tube.
[0045] It should be noted that the irradiation intensity is the preset ultraviolet irradiation intensity at the set to be sterilized, and the radiation angle coefficient is a physical quantity used to describe the percentage of radiation energy emitted by a surface that falls on another surface. The total viewpoint factor is a physical parameter for calculating the ultraviolet irradiation intensity using the viewpoint factor method. This technology is existing technology and will not be repeated here.
[0046] It is understandable that in the process of sterilization using ultraviolet lamps, since the energy of ultraviolet irradiation is easily reflected and refracted, especially in the embodiment of the present invention, the sterilization object is medical glass, which promotes the refraction and reflection effect of ultraviolet energy, so it is very unfavorable to achieve the ideal sterilization effect. The embodiment of the present invention strengthens the irradiation intensity and extends the original irradiation time on the basis of the irradiation intensity. And because in actual operation, the shapes and placement of different batches of irradiated objects cannot be exactly the same, if the irradiation intensity needs to be recalculated every time the irradiation unit is used for sterilization, it is very troublesome, so the embodiment of the present invention sets the intensity interval to simplify the calculation amount during the operation process.
[0047] Furthermore, constructing the intensity interval based on the illumination intensity includes: The minimum value of the intensity interval is obtained using the pre-constructed minimum enhancement coefficient and the irradiation intensity, the maximum value of the intensity interval is obtained using the pre-constructed maximum enhancement coefficient, and the intensity interval is constructed based on the maximum value of the intensity interval and the minimum value of the intensity interval.
[0048] It can be understood that the maximum value and the minimum value of the intensity interval are both greater than the irradiation intensity, the maximum value of the intensity interval is the upper limit of the intensity interval, the minimum value of the intensity interval is the lower limit of the intensity interval, and the minimum enhancement factor and the maximum enhancement factor are both safety factors used to increase the ultraviolet irradiation intensity setting.
[0049] S5. Determine whether the detection intensity is within the intensity range based on the management unit.
[0050] Specifically, judging whether the detection intensity is within the intensity range based on the management unit includes: Compare the detection intensity with the minimum value of the intensity interval. If the detection intensity is less than the minimum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, compare the detection intensity with the maximum value of the intensity interval. If the detection intensity is greater than the maximum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, confirm that the detection intensity is within the intensity interval.
[0051] It is understandable that after the intensity range is set in the embodiment of the present invention, when the detection intensity is within the intensity range, the sterilization effect on medical glasses of different shapes and materials can be accommodated, thereby reducing the amount of system calculations.
[0052] It should be noted that the intensity intervals corresponding to different unit sterilization time periods in the embodiment of the present invention are different. This is because the embodiment of the present invention ensures the sterilization effect by extending the irradiation time and enhancing the time for the ultraviolet lamp to irradiate the set to be sterilized. However, if all unit sterilization time periods use the enhanced intensity of the ultraviolet lamp to sterilize the set to be sterilized, there will be an excessive increase in energy consumption. Therefore, after the embodiment of the present invention completes the irradiation of the corresponding time period according to the pre-constructed ultraviolet sterilization model, the intensity interval of the unit sterilization time period used to enhance the sterilization effect is adjusted to reduce the intensity of the irradiation. Among them, the ultraviolet sterilization model is a model of the relationship between surviving bacteria, fire-killing bacteria and time constructed based on past experimental conditions. The construction of this model is a prior art and will not be repeated here.
[0053] S6. After confirming that the detection intensity is within the intensity interval, a detection message is generated based on the extracted management unit, intensity interval and detection intensity, and a unit irradiation report is generated based on the detection message.
[0054] It is understandable that the detection message is a message generated according to the detection results. Optionally, the detection message in the embodiment of the present invention is a hash value generated using various information in the detection process. This is because the hash value is tamper-proof, and the hash values generated according to the same information are the same, and the hash value cannot be reversed. In this way, when there is a problem with the sterilization effect, it can be traced back to the source, thereby achieving refined management.
[0055] Further, the generating of a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message includes: Obtain the lamp code according to the irradiated lamp, use the extracted unit sterilization period to obtain the time start and time end of the extracted unit sterilization period, obtain the time code according to the time start and time end, obtain the batch code corresponding to the sterilization set based on the sterilization set, obtain the administrator identification code of the administrator according to the management unit, and use the lamp code, time code, batch code and administrator identification code to calculate the execution hash value; The execution hash is sent to the management unit, and the management unit compares the execution hash value with the preset hash value. If the execution hash value is inconsistent with the preset hash value, the management unit prompts that the information is incorrect. Otherwise, a detection message is generated based on the execution hash value and the detection intensity, and a unit irradiation report is generated based on the detection message.
[0056] It should be noted that the time end is the start time corresponding to the extracted unit sterilization period, the time end is the end time corresponding to the extracted unit sterilization period, the time code is the time code constructed based on the time start point, time end point and hash function, and its construction method is consistent with the construction method of the execution hash value, the batch code is the code used to describe the information of the batch of medical glass to be sterilized, the lamp code is the identifier corresponding to the irradiation lamp used in the process of ultraviolet sterilization, and the administrator code is a unique identifier based on the administrator's identity, which can directly lock the corresponding administrator through the unique identifier. The execution hash value is a hash value calculated based on the lamp code, time code, batch code and administrator identification code, which is used to describe the information of all parties performing sterilization operations in the ultraviolet sterilization environment. The preset hash value is the hash value obtained by the management element setting various facilities and information in the ultraviolet sterilization environment before performing the sterilization operation. The unit irradiation report is a graphic report used to record the sterilization operation performed in the extracted unit sterilization period, which is used for the administrator to consult.
[0057] It is understandable that in the embodiment of the present invention, the execution hash value is compared with the preset hash value to see if they are consistent, and the comparison result is used to determine whether there are various situations during the sterilization operation, such as whether there are unauthorized changes made by the administrator, unauthorized changes to the irradiation lamp, sterilization is not performed within the preset irradiation time, and whether the sterilization object is incorrect.
[0058] Specifically, the method of calculating and executing the hash value using the lamp code, the time start point, the time end point, the batch code and the administrator identification code includes: The execution hash value is calculated using the pre-built hash function and the lamp code, time start point, time end point, batch code and administrator identification code. The calculation formula for the execution hash value is: ; in, Indicates the execution hash value corresponding to the extracted unit sterilization period, Indicates the serial number corresponding to the extracted unit sterilization period. represents a hash function, Indicates the lamp code. Indicates time code, Indicates the batch code, Indicates the administrator identification code.
[0059] S7. Summarize the irradiation reports of multiple units to obtain a management report, and complete the sterilization of medical glass based on ultraviolet irradiation management based on the management report.
[0060] It is understandable that the management report is a smart report generated by summarizing multiple unit irradiation reports. The management report includes multiple unit irradiation reports, and the administrator can view each unit irradiation report in the multiple unit irradiation reports by viewing the management report.
[0061] The present invention is to solve the problem described in the background technology. The present invention receives a drying instruction, obtains a glass set to be dried based on the drying instruction, inputs the glass set to be dried into a pre-constructed drying unit, performs a drying operation on the glass set to be dried based on the drying unit, obtains a sterilization set, and inputs the sterilization set into a pre-constructed ultraviolet sterilization environment. In the embodiment of the present invention, before using ultraviolet sterilization, in order to avoid the situation where the surface of the medical glass is not completely sterilized when the same intensity of ultraviolet light and the same irradiation time are used due to moisture on the surface of the medical glass, the glass set to be dried is first subjected to variable temperature drying to avoid deformation or cracking of the medical glass due to too fast drying rate during the drying process. The total drying time can also be shortened while ensuring the drying effect, which is conducive to cost saving. In the embodiment of the present invention, before performing the drying operation on the glass set to be dried, the glass set to be dried needs to be preheated to avoid the glass set to be dried from being cracked and deformed after being introduced into the dryer due to the large temperature difference between the ambient room temperature and the lowest drying temperature. After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: based on the ultraviolet sensor, the detection intensity at the set to be sterilized is obtained, and the detection intensity is sent to the management unit. The embodiment of the present invention uses the ultraviolet irradiation method to perform sterilization operations on the set to be sterilized. In order to ensure that the medical glass in the set to be sterilized can fully meet the sterilization requirements, the embodiment of the present invention detects the ultraviolet intensity at the set to be sterilized, and controls the normal operation of the extracted irradiation lamp according to the detection results and the management unit. The intensity interval is confirmed based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, constructing an intensity interval based on the irradiation intensity, and judging whether the detection intensity is within the intensity interval based on the management unit. Based on the irradiation intensity, the embodiment of the present invention strengthens the irradiation intensity and extends the original irradiation time, and sets the intensity interval to simplify the calculation amount during the operation process. After confirming that the detection intensity is within the intensity interval, a detection message is generated based on the extracted management unit, intensity interval and detection intensity, and a unit irradiation report is generated based on the detection message. In the embodiment of the present invention, a hash function is set to record various information in the detection process, thereby realizing refined management, summarizing multiple unit irradiation reports, obtaining a management report, and completing the sterilization of medical glass based on ultraviolet irradiation management based on the management report. In the embodiment of the present invention, the administrator can consult each unit irradiation report in multiple unit irradiation reports by consulting the management report. Therefore, the present invention effectively utilizes ultraviolet rays to sterilize medical glass and accurately records the sterilization process.
[0062] like Figure 2, which is a functional module diagram of a medical glass sterilization system based on ultraviolet irradiation management provided by one embodiment of the present invention.
[0063] The medical glass sterilization system 100 based on ultraviolet irradiation management of the present invention can be installed in an electronic device. According to the functions to be implemented, the medical glass sterilization system 100 based on ultraviolet irradiation management can include a drying module 101, an ultraviolet sterilization module 102, a unit irradiation report module 103 and a management report module 104. The module of the present invention can also be called a unit, which refers to a series of computer program segments that can be executed by an electronic device processor and can complete fixed functions, which are stored in the memory of the electronic device.
[0064] The drying module 101 is used to receive a drying instruction, obtain a set of glasses to be dried based on the drying instruction, input the set of glasses to be dried into a pre-built drying unit, and perform a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; The ultraviolet sterilization module 102 is used to input the set to be sterilized into a pre-constructed ultraviolet sterilization environment, wherein the ultraviolet sterilization environment includes: an irradiation unit and a management unit, wherein the irradiation unit includes an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; The unit irradiation reporting module 103 is used to generate a detection message based on the extracted management unit, intensity interval and detection intensity after confirming that the detection intensity is within the intensity interval, and generate a unit irradiation report based on the detection message; The management report module 104 is used to summarize the irradiation reports of multiple units to obtain a management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
[0065] In detail, each module in the medical glass sterilization system 100 based on ultraviolet irradiation management in the embodiment of the present invention is used in the same manner as described above. Figure 1The same technical means are used as the medical glass sterilization method based on ultraviolet irradiation management described in, and can produce the same technical effects, so I will not go into details here.
[0066] like Figure 3 , is a schematic diagram of the structure of an electronic device for implementing a medical glass sterilization method based on ultraviolet irradiation management provided by an embodiment of the present invention.
[0067] The electronic device 1 may include a processor 10, a memory 11 and a bus 12, and may also include a computer program stored in the memory 11 and executable on the processor 10, such as a medical glass sterilization method program based on ultraviolet irradiation management.
[0068] The memory 11 includes at least one type of readable storage medium, including flash memory, mobile hard disk, multimedia card, card-type memory (e.g., SD or DX memory, etc.), magnetic memory, disk, optical disk, etc. In some embodiments, the memory 11 may be an internal storage unit of the electronic device 1, such as a mobile hard disk of the electronic device 1. In other embodiments, the memory 11 may also be an external storage device of the electronic device 1, such as a plug-in mobile hard disk, a smart memory card (Smart Media Card, SMC), a secure digital (SecureDigital, SD) card, a flash card (Flash Card), etc. equipped on the electronic device 1. Further, the memory 11 also includes an internal storage unit of the electronic device 1 and an external storage device. The memory 11 can not only be used to store application software and various types of data installed in the electronic device 1, such as the code of the medical glass sterilization method program based on ultraviolet irradiation management, but also can be used to temporarily store data that has been output or is to be output.
[0069] The processor 10 may be composed of an integrated circuit in some embodiments, for example, a single packaged integrated circuit, or a plurality of packaged integrated circuits with the same or different functions, including one or more central processing units (CPUs), microprocessors, digital processing chips, graphics processors, and combinations of various control chips, etc. The processor 10 is the control core (Control Unit) of the electronic device, and uses various interfaces and lines to connect various components of the entire electronic device, and executes or executes programs or modules stored in the memory 11 (such as a medical glass sterilization method program based on ultraviolet irradiation management, etc.), and calls data stored in the memory 11, so as to execute various functions of the electronic device 1 and process data.
[0070] The bus 12 may be a peripheral component interconnect (PCI) bus or an extended industry standard architecture (EISA) bus, etc. The bus 12 may be divided into an address bus, a data bus, a control bus, etc. The bus 12 is configured to realize connection and communication between the memory 11 and at least one processor 10, etc.
[0071] Figure 3 Only an electronic device with components is shown, and those skilled in the art will understand that Figure 3 The structure shown does not constitute a limitation on the electronic device 1, and may include fewer or more components than shown in the figure, or combine certain components, or arrange the components differently.
[0072] For example, although not shown, the electronic device 1 may also include a power source (such as a battery) for supplying power to various components. Preferably, the power source may be logically connected to the at least one processor 10 through a power management device, so that the power management device can realize functions such as charging management, discharging management, and power consumption management. The power source may also include one or more DC or AC power sources, recharging devices, power failure detection circuits, power converters or inverters, power status indicators, and other arbitrary components. The electronic device 1 may also include a variety of sensors, Bluetooth modules, Wi-Fi modules, etc., which will not be repeated here.
[0073] Furthermore, the electronic device 1 may also include a network interface. Optionally, the network interface may include a wired interface and / or a wireless interface (such as a WI-FI interface, a Bluetooth interface, etc.), which is generally used to establish a communication connection between the electronic device 1 and other electronic devices.
[0074] Optionally, the electronic device 1 may further include a user interface, which may be a display, an input unit (such as a keyboard), or a standard wired interface or a wireless interface. Optionally, in some embodiments, the display may be an LED display, a liquid crystal display, a touch-sensitive liquid crystal display, and an OLED (Organic Light-Emitting Diode) touch device. The display may also be appropriately referred to as a display screen or a display unit, which is used to display information processed in the electronic device 1 and to display a visual user interface.
[0075] It should be understood that the embodiment is for illustration only and the scope of the patent application is not limited to this structure.
[0076] The medical glass sterilization method program based on ultraviolet irradiation management stored in the memory 11 of the electronic device 1 is a combination of multiple instructions. When running in the processor 10, it can achieve: Receive a drying instruction, obtain a set of glasses to be dried based on the drying instruction, input the set of glasses to be dried into a pre-built drying unit, and perform a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; Inputting the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment comprises: an irradiation unit and a management unit, wherein the irradiation unit comprises an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; After confirming that the detection intensity is within the intensity interval, generating a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message; Summarize the irradiation reports of multiple units to obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
[0077] Specifically, the specific implementation method of the processor 10 for the above instructions can refer to Figures 1 to 3 The description of the relevant steps in the corresponding embodiments will not be repeated here.
[0078] Furthermore, if the module / unit integrated in the electronic device 1 is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. The computer-readable storage medium can be volatile or non-volatile. For example, the computer-readable medium can include: any entity or device capable of carrying the computer program code, a recording medium, a USB flash drive, a mobile hard disk, a magnetic disk, an optical disk, a computer memory, and a read-only memory (ROM).
[0079] The present invention further provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor of an electronic device, the computer program can implement: Receive a drying instruction, obtain a set of glasses to be dried based on the drying instruction, input the set of glasses to be dried into a pre-built drying unit, and perform a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; Input the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment includes: an irradiation unit and a management unit, wherein the irradiation unit includes an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; After confirming that the detection intensity is within the intensity interval, generating a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message; Summarize the irradiation reports of multiple units to obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
[0080] The modules described as separate components may or may not be physically separated, and the components shown as modules may or may not be physical units, that is, they may be located in one place or distributed on multiple network units. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0081] In addition, each functional module in each embodiment of the present invention may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of hardware plus software functional modules.
[0082] It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention.
[0083] In addition, it is clear that the word "comprising" does not exclude other units or steps, and the singular does not exclude the plural. Multiple units or devices stated in the system claim can also be implemented by one unit or device through software or hardware. The second and other words are used to indicate names, but not to indicate any particular order.
[0084] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solution of the present invention can be modified or replaced by equivalents without departing from the spirit and scope of the technical solution of the present invention.
Claims
1. A method for sterilizing medical glass based on ultraviolet irradiation management, characterized in that: The method comprises: Receive a drying instruction, obtain a set of glasses to be dried based on the drying instruction, input the set of glasses to be dried into a pre-built drying unit, and perform a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; Inputting the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment comprises: an irradiation unit and a management unit, wherein the irradiation unit comprises an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; After confirming that the detection intensity is within the intensity interval, generating a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message; Summarize the irradiation reports of multiple units to obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.
2. The detection intensity sterilization method based on ultraviolet irradiation management as claimed in claim 1, characterized in that: The drying unit is used to perform a drying operation on the glass set to be dried, comprising: Based on the drying unit, obtain the variable temperature drying temperature zone, drying time, temperature monitoring unit and dryer; After the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried; Based on the drying time, a plurality of unit drying time are obtained, unit drying time is extracted from the plurality of unit drying time in sequence, and the following operations are performed on the extracted unit drying time: Obtaining a target temperature zone based on the variable temperature drying temperature zone, obtaining a unit minimum temperature based on the target temperature zone and inputting the unit minimum temperature into the dryer, wherein the temperature interval corresponding to the target temperature zone is within the interval corresponding to the variable temperature drying temperature; After detecting the real-time temperature of the dryer based on the temperature monitoring unit and confirming that the real-time temperature is equal to the unit minimum temperature; Based on the unit drying time and the unit minimum temperature, the glass set to be dried is dried, and the temperature monitoring unit is used to perform real-time temperature measurement on the dryer to obtain a real-time temperature sequence. Based on the real-time temperature sequence, the glass set to be dried within the unit drying time is dried.
3. The detection intensity sterilization method based on ultraviolet irradiation management as claimed in claim 2, characterized in that: After the glass set to be dried is introduced into the dryer, a preheating operation is performed on the glass set to be dried, including: The ambient room temperature corresponding to the glass set to be dried is obtained by using a temperature monitoring unit, the lowest drying temperature is obtained based on the variable temperature drying temperature zone, and the initial temperature difference is obtained based on the ambient room temperature and the lowest drying temperature, wherein the initial temperature difference is the numerical difference between the lowest drying temperature and the ambient room temperature; The breaking temperature difference of the glass set to be dried is obtained according to the glass set to be dried, wherein the breaking temperature difference is: ; in, Indicates the crushing temperature difference, represents the safety factor, Indicates the temperature difference that can be tolerated by the glass material; Comparing the crushing temperature difference with the initial temperature difference; If the broken temperature difference is greater than or equal to the initial temperature difference, a preheating temperature curve is constructed based on the initial temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer; If the broken temperature difference is smaller than the initial temperature difference, a preheating temperature curve is constructed based on the broken temperature difference, and a preheating operation is performed on the glass to be dried based on the preheating temperature curve and the dryer.
4. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 3, characterized in that: The method of using the temperature monitoring unit to perform real-time temperature measurement on the dryer to obtain a real-time temperature sequence, and completing the drying of the glass set to be dried within a unit drying time based on the real-time temperature sequence, includes: Acquire a temperature measurement frequency based on a temperature monitoring unit, perform a real-time temperature measurement operation on the glass set to be dried based on the temperature measurement frequency, and obtain a real-time temperature sequence, wherein the real-time temperature sequence includes a plurality of real-time temperatures, and the plurality of real-time temperatures are sorted in chronological order; Acquire the unit maximum temperature based on the target temperature zone, extract the real-time temperatures from the real-time temperature sequence in sequence, and compare the extracted real-time temperatures with the unit maximum temperature; If the real-time temperature is greater than the unit maximum temperature, the real-time temperature is compared with the high temperature threshold. If the real-time temperature is greater than the high temperature threshold, the temperature monitoring unit prompts that the dryer is abnormal. Otherwise, a pre-built cooling unit is enabled based on the dryer. After the cooling unit is used to cool the dryer, the real-time temperature is obtained using a temperature sensor, and the process returns to the step of comparing the real-time temperature with the unit maximum temperature. If the real-time temperature is lower than the unit maximum temperature, the temperature monitoring unit indicates that the dryer is normal; After confirming that the dryer is normal within the unit drying time based on the temperature monitoring unit and the real-time temperature sequence, the drying of the glass set to be dried within the unit drying time is completed.
5. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 1, characterized in that: The irradiation intensity is calculated using a pre-built ultraviolet intensity calculation formula, including: The irradiation distance is obtained based on the irradiation container and the irradiation lamp, the radiation angle coefficient is calculated based on the irradiation distance and the pre-constructed radiation angle coefficient calculation formula, and the irradiation intensity at the set to be sterilized is calculated according to the radiation angle coefficient and the pre-constructed ultraviolet intensity calculation formula, wherein the ultraviolet intensity calculation formula is: ; in, represents the irradiation intensity, Indicates the output power of the irradiation lamp. represents the total viewpoint factor of the set to be sterilized, Represents the radiation angle coefficient of the set to be sterilized, Indicates the size and shape parameters of the illumination lamp.
6. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 5, characterized in that: The constructing of the intensity interval based on the irradiation intensity includes: The minimum value of the intensity interval is obtained using the pre-constructed minimum enhancement coefficient and the irradiation intensity, the maximum value of the intensity interval is obtained using the pre-constructed maximum enhancement coefficient, and the intensity interval is constructed based on the maximum value of the intensity interval and the minimum value of the intensity interval.
7. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 6, characterized in that: The determining, based on the management unit, whether the detection intensity is within the intensity range includes: Compare the detection intensity with the minimum value of the intensity interval. If the detection intensity is less than the minimum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, compare the detection intensity with the maximum value of the intensity interval. If the detection intensity is greater than the maximum value of the intensity interval, an early warning is issued based on the management unit. Otherwise, confirm that the detection intensity is within the intensity interval.
8. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 1, characterized in that: The generating of a detection message based on the extracted management unit, intensity interval and detection intensity, and generating a unit irradiation report based on the detection message, comprises: Obtain the lamp code according to the irradiated lamp, use the extracted unit sterilization period to obtain the time start and time end of the extracted unit sterilization period, obtain the time code according to the time start and time end, obtain the batch code corresponding to the sterilization set based on the sterilization set, obtain the administrator identification code of the administrator according to the management unit, and use the lamp code, time code, batch code and administrator identification code to calculate the execution hash value; The execution hash is sent to the management unit, and the management unit compares the execution hash value with the preset hash value. If the execution hash value is inconsistent with the preset hash value, the management unit prompts that the information is incorrect. Otherwise, a detection message is generated based on the execution hash value and the detection intensity, and a unit irradiation report is generated based on the detection message.
9. The method for sterilizing medical glass based on ultraviolet irradiation management according to claim 8, characterized in that: The method of calculating and executing the hash value using the lamp code, the time start point, the time end point, the batch code and the administrator identification code includes: The execution hash value is calculated using the pre-built hash function and the lamp code, time start point, time end point, batch code and administrator identification code. The calculation formula for the execution hash value is: ; in, Indicates the execution hash value corresponding to the extracted unit sterilization period, Indicates the serial number corresponding to the extracted unit sterilization period. represents a hash function, Indicates the lamp code. Indicates time code, Indicates the batch code, Indicates the administrator identification code.
10. A medical glass sterilization system based on ultraviolet irradiation management, characterized in that: The system comprises: A drying module, used for receiving a drying instruction, obtaining a set of glasses to be dried based on the drying instruction, inputting the set of glasses to be dried into a pre-built drying unit, and performing a drying operation on the set of glasses to be dried based on the drying unit to obtain a set to be sterilized; The ultraviolet sterilization module is used to input the set to be sterilized into a pre-built ultraviolet sterilization environment, wherein the ultraviolet sterilization environment includes: an irradiation unit and a management unit, wherein the irradiation unit includes an irradiation lamp, an ultraviolet sensor and an irradiation container; After confirming that the set to be sterilized is introduced into the irradiation container, the irradiation lamp is started, and the preset ultraviolet sterilization time is divided by the preset detection frequency to obtain multiple unit sterilization time periods, and the unit sterilization time periods are sequentially extracted from the multiple unit sterilization time periods, and the following operations are performed on the extracted unit sterilization time periods: Acquire the detection intensity at the set to be sterilized based on the ultraviolet sensor, and send the detection intensity to the management unit; Confirming the intensity interval based on the management unit, wherein the construction of the intensity interval includes: calculating the irradiation intensity using a pre-constructed ultraviolet intensity calculation formula, and constructing the intensity interval based on the irradiation intensity; Determining whether the detection intensity is within the intensity range based on the management unit; A unit irradiation report module, configured to generate a detection message based on the extracted management unit, intensity interval and detection intensity after confirming that the detection intensity is within the intensity interval, and generate a unit irradiation report based on the detection message; The management report module is used to summarize the irradiation reports of multiple units, obtain the management report, and complete the medical glass sterilization based on ultraviolet irradiation management based on the management report.