Intelligent temperature control method and device for glass kettle and glass kettle
Through dual temperature sensor monitoring and dynamic adjustment of the heating power of the glass kettle, the problem of uneven temperature distribution during the heating process of the glass kettle is solved, which improves the safety of use and prevents cracking or damage caused by local overheating.
Patent Information
- Application Number
- CN202510242630.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-05-06
AI Technical Summary
There is a problem of uneven temperature distribution during the heating process of glass kettle, which leads to local overheating, which increases safety risks and may cause the kettle to break or damage.
Dual temperature sensors are used to monitor the temperatures of different areas of the glass kettle in real time, calculate the temperature difference, and dynamically adjust the heating power according to the set standard temperature value to keep the temperature difference within the safe range.
Effectively prevent the glass kettle from breaking or damage due to local overheating, improve the safety of use, and ensure uniformity of temperature distribution.
Smart Images

Figure CN119924691A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of temperature detection, and in particular to an intelligent temperature control method and device for a glass kettle, and a glass kettle. Background Art
[0002] In daily life and beverage preparation, glass kettles are widely used in homes, offices and catering places because of their high transparency, easy cleaning and beautiful appearance. However, glass kettles face the problem of uneven temperature distribution during use, especially during heating. At the same time, due to the material characteristics and structural limitations of glass kettles, local overheating often occurs during heating. Especially at the bottom of the kettle or in the area close to the heating element, the temperature rises rapidly, while the temperature rises slowly in the area far from the heating element, resulting in uneven temperature distribution inside the kettle. This uneven temperature distribution not only affects the taste and quality of the beverage, but more importantly, it may cause the glass kettle to break or be damaged due to concentrated thermal stress. Especially in glass kettles, due to the relatively poor thermal conductivity of glass, the problem of uneven temperature distribution is more prominent, and safety hazards also increase. Summary of the invention
[0003] The present invention provides an intelligent temperature control method and device for a glass kettle, and a glass kettle, which can reduce adverse effects caused by uneven temperature distribution when heating the glass kettle and improve the safety of the glass kettle.
[0004] In order to solve the above technical problems, the first aspect of the present invention discloses an intelligent temperature control method for a glass kettle, the method comprising:
[0005] After it is determined that the glass kettle starts heating, the first temperature sensor is controlled to collect first temperature data corresponding to the first area on the glass kettle in real time, and the second temperature sensor is controlled to collect second temperature data corresponding to the second area on the glass kettle in real time;
[0006] For the first temperature data and the second temperature data in the same acquisition period, calculating the temperature difference between the first temperature data and the second temperature data;
[0007] Determine whether the temperature difference is greater than a set first standard temperature value. When it is determined that the temperature difference is greater than the first standard temperature value, perform a first temperature control on the glass kettle to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
[0008] As an optional embodiment, in the first aspect of the present invention, the method further comprises:
[0009] When it is determined that the temperature difference is less than or equal to the first standard temperature value, determining whether there is a first abnormal temperature greater than a second standard temperature value in the first temperature data;
[0010] When it is determined that there is a first abnormal temperature greater than the second standard temperature value in the first temperature data, performing a second temperature control on the glass kettle;
[0011] Wherein, the second temperature control includes reducing the heating power based on the first abnormal temperature and the second standard temperature.
[0012] As an optional embodiment, in the first aspect of the present invention, the method further comprises:
[0013] Detecting whether there is a second abnormal temperature greater than a third standard temperature value in the first temperature data;
[0014] When a second abnormal temperature greater than the third standard temperature value is detected in the first temperature data, performing a third temperature control on the glass kettle;
[0015] Among them, the third temperature control includes a stop heating control and a dry-burning alarm for the glass kettle. The stop heating control is used to terminate the heating power output to the glass kettle; the dry-burning alarm is used to prompt the user that there is a heating abnormality in the glass kettle.
[0016] As an optional implementation, in the first aspect of the present invention, the first region is the bottom region of the kettle body of the glass kettle; the first temperature data at least includes an average temperature of the first region corresponding to the bottom region of the kettle body;
[0017] The second area includes the side wall area of the glass kettle body or the water storage temperature corresponding to the current water storage in the glass kettle; the second temperature data includes the average temperature of the second area corresponding to the side wall area of the kettle body or the average water temperature corresponding to the water storage temperature.
[0018] As an optional embodiment, in the first aspect of the present invention, performing a first temperature control on the glass kettle includes:
[0019] According to the temperature difference and the first standard temperature value, in combination with a set power ratio calculation formula, a target reduction ratio for the glass kettle is determined; the target reduction ratio is used to indicate a reduction percentage corresponding to the power reduction executed for the current heating power of the glass kettle;
[0020] The current heating power is updated to the first heating power according to the target downward adjustment ratio, and a first value change of the temperature difference within a preset monitoring time period is collected in real time;
[0021] When the first value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed.
[0022] As an optional embodiment, in the first aspect of the present invention, the performing the first temperature control on the glass kettle further includes:
[0023] When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the end time of the preset monitoring time is reached, the target downward adjustment ratio is updated to a preset minimum downward adjustment ratio, and the first heating power is updated to a second heating power according to the minimum downward adjustment ratio, and the second value change of the temperature difference within the preset monitoring time is collected in real time;
[0024] When the second value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed;
[0025] When the second value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the cut-off time of the preset monitoring time is reached, the heating power output to the glass kettle is suspended.
[0026] As an optional embodiment, in the first aspect of the present invention, the heating program corresponding to the glass kettle at least includes a first temperature monitoring interval, a second temperature monitoring interval and a third temperature monitoring interval;
[0027] Wherein, the first temperature monitoring interval includes the first standard temperature value; the second temperature monitoring interval includes the second standard temperature value; the third temperature monitoring interval includes the third standard temperature value;
[0028] And, the maximum interval temperature of the first temperature monitoring interval is lower than the minimum interval temperature of the second temperature monitoring interval; the maximum interval temperature of the second temperature monitoring interval is lower than the minimum interval temperature of the third temperature monitoring interval.
[0029] The second aspect of the present invention discloses an intelligent temperature control device for a glass kettle, the device comprising:
[0030] A temperature acquisition module, for controlling the first temperature sensor to acquire first temperature data corresponding to a first area on the glass kettle in real time, and controlling the second temperature sensor to acquire second temperature data corresponding to a second area on the glass kettle in real time after determining that the glass kettle starts heating;
[0031] a temperature difference calculation module, for the first temperature data and the second temperature data in the same acquisition period, calculating the temperature difference between the first temperature data and the second temperature data;
[0032] A judging module, used for judging whether the temperature difference is greater than a set first standard temperature value;
[0033] A temperature control module is used to perform a first temperature control on the glass kettle when the judgment module determines that the temperature difference is greater than the first standard temperature value, so as to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
[0034] As an optional implementation, in the second aspect of the present invention, the judgment module is further configured to judge whether there is a first abnormal temperature greater than a second standard temperature value in the first temperature data when the judgment module judges that the temperature difference is less than or equal to the first standard temperature value;
[0035] The temperature control module is further configured to perform a second temperature control on the glass kettle when the judgment module judges that there is a first abnormal temperature greater than the second standard temperature value in the first temperature data;
[0036] Wherein, the second temperature control includes reducing the heating power based on the first abnormal temperature and the second standard temperature.
[0037] As an optional implementation, in the second aspect of the present invention, the device further includes:
[0038] A detection module, used for detecting whether there is a second abnormal temperature greater than a third standard temperature value in the first temperature data;
[0039] The temperature control module is further configured to perform a third temperature control on the glass kettle when a second abnormal temperature greater than the third standard temperature value is detected in the first temperature data;
[0040] Among them, the third temperature control includes a stop heating control and a dry-burning alarm for the glass kettle. The stop heating control is used to terminate the heating power output to the glass kettle; the dry-burning alarm is used to prompt the user that there is a heating abnormality in the glass kettle.
[0041] As an optional embodiment, in the second aspect of the present invention, the first area is the bottom area of the kettle body of the glass kettle; the first temperature data at least includes an average temperature of the first area corresponding to the bottom area of the kettle body;
[0042] The second area includes the side wall area of the glass kettle body or the water storage temperature corresponding to the current water storage in the glass kettle; the second temperature data includes the average temperature of the second area corresponding to the side wall area of the kettle body or the average water temperature corresponding to the water storage temperature.
[0043] As an optional implementation, in the second aspect of the present invention, the temperature control module performs the first temperature control on the glass kettle in a manner that specifically includes:
[0044] According to the temperature difference and the first standard temperature value, in combination with a set power ratio calculation formula, a target reduction ratio for the glass kettle is determined; the target reduction ratio is used to indicate a reduction percentage corresponding to the power reduction executed for the current heating power of the glass kettle;
[0045] The current heating power is updated to the first heating power according to the target downward adjustment ratio, and a first value change of the temperature difference within a preset monitoring time period is collected in real time;
[0046] When the first value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed.
[0047] As an optional implementation, in the second aspect of the present invention, the temperature control module performs the first temperature control on the glass kettle in a manner that specifically includes:
[0048] When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the end time of the preset monitoring time is reached, the target downward adjustment ratio is updated to a preset minimum downward adjustment ratio, and the first heating power is updated to a second heating power according to the minimum downward adjustment ratio, and the second value change of the temperature difference within the preset monitoring time is collected in real time;
[0049] When the second value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed;
[0050] When the second value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the cut-off time of the preset monitoring time is reached, the heating power output to the glass kettle is suspended.
[0051] As an optional embodiment, in the second aspect of the present invention, the heating program corresponding to the glass kettle at least includes a first temperature monitoring interval, a second temperature monitoring interval and a third temperature monitoring interval;
[0052] Wherein, the first temperature monitoring interval includes the first standard temperature value; the second temperature monitoring interval includes the second standard temperature value; the third temperature monitoring interval includes the third standard temperature value;
[0053] And, the maximum interval temperature of the first temperature monitoring interval is lower than the minimum interval temperature of the second temperature monitoring interval; the maximum interval temperature of the second temperature monitoring interval is lower than the minimum interval temperature of the third temperature monitoring interval.
[0054] The third aspect of the present invention discloses another intelligent temperature control device for a glass kettle, the device comprising:
[0055] A memory storing executable program code;
[0056] a processor coupled to the memory;
[0057] The processor calls the executable program code stored in the memory to execute the intelligent temperature control method for the glass kettle disclosed in the first aspect of the present invention.
[0058] The fourth aspect of the present invention discloses a computer storage medium, wherein the computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the intelligent temperature control method for the glass kettle disclosed in the first aspect of the present invention.
[0059] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0060] In an embodiment of the present invention, an intelligent temperature control method for a glass kettle is provided, the method comprising: after determining that the glass kettle starts heating, controlling a first temperature sensor to collect first temperature data corresponding to a first area on the glass kettle in real time, and controlling a second temperature sensor to collect second temperature data corresponding to a second area on the glass kettle in real time; for the first temperature data and the second temperature data within the same collection period, calculating the temperature difference between the first temperature data and the second temperature data; judging whether the temperature difference is greater than a set first standard temperature value, and when judging that the temperature difference is greater than the first standard temperature value, performing a first temperature control on the glass kettle to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control comprises reducing the heating power based on the temperature difference. It can be seen that by implementing the present invention, through the collaborative work of dual temperature sensors, it is possible to monitor the temperature distribution of different areas in the glass kettle in real time, and perform precise control according to the temperature difference. Different from the temperature monitoring scheme of a traditional single temperature sensor, this method can improve the monitoring accuracy of the actual temperature distribution in the glass kettle, thereby avoiding problems due to local overheating or uneven temperature; and, by real-time monitoring of the temperature difference and dynamically adjusting the heating power, it is possible to effectively prevent the glass kettle from being broken or damaged due to local overheating, especially in a glass kettle, where uneven temperature distribution may lead to thermal stress concentration, thereby causing safety hazards. That is, this method can reduce the temperature difference hazards existing when the glass kettle is used by intelligently adjusting the heating power, thereby improving the safety of the product. BRIEF DESCRIPTION OF THE DRAWINGS
[0061] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0062] Figure 1 It is a flow chart of an intelligent temperature control method for a glass kettle disclosed in an embodiment of the present invention;
[0063] Figure 2 It is a flow chart of another intelligent temperature control method for a glass kettle disclosed in an embodiment of the present invention;
[0064] Figure 3 It is a structural schematic diagram of an intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention;
[0065] Figure 4 It is a structural schematic diagram of another intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention;
[0066] Figure 5 It is a structural schematic diagram of another intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention. DETAILED DESCRIPTION
[0067] In order to enable those skilled in the art to better understand the scheme of the present invention, the technical scheme in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0068] The terms "first", "second", etc. in the specification and claims of the present invention and the above-mentioned drawings are used to distinguish different objects rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, device, product or end including a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units that are not listed, or may optionally include other steps or units inherent to these processes, methods, products or ends.
[0069] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present invention. The appearance of the phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0070] The present invention discloses an intelligent temperature control method and device for a glass kettle, and a glass kettle. Through the collaborative work of dual temperature sensors, the temperature distribution of different areas in the glass kettle can be monitored in real time, and precise control can be performed according to the temperature difference. Different from the temperature monitoring scheme of a traditional single temperature sensor, this method can improve the monitoring accuracy of the actual temperature distribution in the glass kettle, thereby avoiding problems due to local overheating or uneven temperature; and, by real-time monitoring of the temperature difference and dynamically adjusting the heating power, the glass kettle can be effectively prevented from being broken or damaged due to local overheating, especially in a glass kettle, where uneven temperature distribution may lead to thermal stress concentration, thereby causing safety hazards. That is, the method can reduce the temperature difference hazards existing when the glass kettle is used by intelligently adjusting the heating power, thereby improving the safety of the product. The following are detailed descriptions.
[0071] Embodiment 1
[0072] See also Figure 1 , Figure 1 1 is a flow chart of an intelligent temperature control method for a glass kettle disclosed in an embodiment of the present invention. Figure 1 The described intelligent temperature control method for a glass kettle can be applied to an intelligent temperature control device for a glass kettle, and the embodiments of the present invention are not limited thereto. Figure 1 As shown, the intelligent temperature control method of the glass kettle may include the following operations:
[0073] 101. After determining that the glass kettle starts heating, control the first temperature sensor to collect first temperature data corresponding to a first area on the glass kettle in real time, and control the second temperature sensor to collect second temperature data corresponding to a second area on the glass kettle in real time.
[0074] In the embodiment of the present invention, the first area is the body and bottom area of the glass kettle; the first temperature data at least includes an average temperature of the first area corresponding to the body and bottom area.
[0075] In an embodiment of the present invention, the second area includes the side wall area of the glass kettle body or the water storage temperature corresponding to the current water storage in the glass kettle; the second temperature data includes the average temperature of the second area corresponding to the side wall area of the kettle body or the average water temperature corresponding to the water storage temperature.
[0076] In the embodiment of the present invention, the glass kettle can specifically be a kettle made of all glass. Correspondingly, the all-glass kettle can be used as a health pot, a teapot, a kettle, etc. according to its purpose, and the embodiment of the present invention does not limit this.
[0077] 102. For first temperature data and second temperature data in the same collection period, calculate a temperature difference between the first temperature data and the second temperature data.
[0078] In the embodiment of the present invention, since real-time temperature data is collected for the first area and the second area on the glass kettle, multiple continuous temperature data will be recorded. Then, based on the principle of controlling variables, in order to improve the accuracy of subsequent temperature control, when calculating the temperature difference, the two sets of temperature data (the first and second temperature data) calculated must use data from the same collection period.
[0079] 103. Determine whether the temperature difference is greater than a set first standard temperature value.
[0080] In an embodiment of the present invention, the first standard temperature value is generally a temperature value selected within a preset temperature range, and the temperature range may be 140°C-200°C; further, the selection of the first standard temperature value may also be adjusted according to the equipment model of the glass kettle, for example, the first standard temperature value may be selected to be set to 150°C.
[0081] In the embodiment of the present invention, as mentioned above, the selection of the first standard temperature value can be adjusted according to the equipment model of the glass kettle, and the equipment model is used to characterize the temperature resistance data of the glass kettle. For example, the glass material A used by the equipment model A can adapt to higher temperatures than the glass material B used by the equipment model B. Therefore, the first standard temperature value corresponding to the equipment model A can be set to 160°C or even 170°C; while the first standard temperature value corresponding to the equipment model B may only be set to 150°C or even 145°C. The embodiment of the present invention does not limit the specific equipment model, the manufacturing material used by the glass kettle and the first standard temperature value corresponding to it.
[0082] 104. When it is determined that the temperature difference is greater than the first standard temperature value, perform first temperature control on the glass kettle to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
[0083] It can be seen that implementation Figure 1 The described intelligent temperature control method for a glass kettle can monitor the temperature distribution of different areas in the glass kettle in real time through the collaborative work of dual temperature sensors, and perform precise control based on the temperature difference. Different from the traditional temperature monitoring solution of a single temperature sensor, this method can improve the monitoring accuracy of the actual temperature distribution in the glass kettle, thereby avoiding problems due to local overheating or uneven temperature; and, by real-time monitoring of the temperature difference and dynamically adjusting the heating power, it can effectively prevent the glass kettle from being broken or damaged due to local overheating, especially in a glass kettle, where uneven temperature distribution may lead to thermal stress concentration, thereby causing safety hazards. That is, this method can reduce the temperature difference hazards existing when the glass kettle is used by intelligently adjusting the heating power, thereby improving the safety of the product.
[0084] In an optional embodiment, before executing step 101, the method further includes:
[0085] Obtaining a device heating parameter corresponding to the glass kettle, and determining a current heating process of the glass kettle; wherein the device heating parameter includes a current heating power for the glass kettle; and the current heating process includes at least a heating time of the glass kettle;
[0086] According to the heating parameters of the device and the current heating process, a plurality of continuous monitoring periods for the glass kettle are determined; each monitoring period corresponds to a monitoring duration;
[0087] Furthermore, the above step 101 controls the first temperature sensor to collect the first temperature data corresponding to the first area on the glass kettle in real time, and controls the second temperature sensor to collect the second temperature data corresponding to the second area on the glass kettle in real time, specifically including:
[0088] Controlling the first temperature sensor to collect temperature data according to all monitoring periods, and obtaining a first data set corresponding to all monitoring periods as first temperature data; at the same time, controlling the second temperature sensor to collect temperature data according to all monitoring periods, and obtaining a second data set corresponding to all monitoring periods as second temperature data;
[0089] The first data set includes first sub-data corresponding to each monitoring period; the second data set includes second sub-data corresponding to each monitoring period;
[0090] Further, the first sub-data corresponding to each monitoring period may include first-time collected data corresponding to a plurality of consecutive monitoring moments within the monitoring period; the first sub-data corresponding to each monitoring period may also include first average data, and the first average data is preferably used as the first sub-data corresponding to the monitoring period, and the first average data corresponding to each monitoring period is obtained by calculating the average value of all first-time collected data within the monitoring period;
[0091] Similarly, the second sub-data corresponding to each monitoring period may include the second-time collected data corresponding to a plurality of consecutive monitoring moments within the monitoring period; the second sub-data corresponding to each monitoring period may also include second average data, and the second average data is preferably used as the second sub-data corresponding to the monitoring period, and the second average data corresponding to each monitoring period is obtained by calculating the average value of all the first-time collected data within the monitoring period;
[0092] In this optional embodiment, by selecting the first and second average data as the first and second sub-data corresponding to the monitoring period, the advantage is that the amount of data can be reduced and the subsequent data calculation efficiency can be improved.
[0093] It can be seen that in this optional embodiment, when controlling the first temperature sensor and the second temperature sensor to perform temperature acquisition, it is possible to preferentially determine multiple continuous monitoring time periods in combination with the equipment heating parameters of the glass kettle and the current heating process, and then control the first and second temperature sensors to perform temperature acquisition based on the subdivided monitoring time periods, thereby improving the temperature data acquisition accuracy of the first and second temperature sensors.
[0094] Embodiment 2
[0095] See also Figure 2 , Figure 21 is a flow chart of another intelligent temperature control method for a glass kettle disclosed in an embodiment of the present invention. Figure 2 The described intelligent temperature control method for a glass kettle can be applied to an intelligent temperature control device for a glass kettle, and the embodiments of the present invention are not limited thereto. Figure 2 As shown, the intelligent temperature control method of the glass kettle may include the following operations:
[0096] 201. After determining that the glass kettle starts heating, control the first temperature sensor to collect first temperature data corresponding to a first area on the glass kettle in real time, and control the second temperature sensor to collect second temperature data corresponding to a second area on the glass kettle in real time.
[0097] 202. For first temperature data and second temperature data in the same collection period, calculate a temperature difference between the first temperature data and the second temperature data.
[0098] 203. Determine whether the temperature difference is greater than a set first standard temperature value.
[0099] In the embodiment of the present invention, when the judgment result of step 203 is yes, step 204 is triggered to be executed; when the judgment result of step 203 is no, step 205 is triggered to be executed.
[0100] 204. When it is determined that the temperature difference is greater than the first standard temperature value, perform first temperature control on the glass kettle to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
[0101] In the embodiment of the present invention, for other descriptions of step 201 to step 204, please refer to other specific descriptions of step 101 to step 104 in embodiment 1, and the embodiment of the present invention will not be repeated here.
[0102] 205. When it is determined that the temperature difference is less than or equal to the first standard temperature value, determine whether there is a first abnormal temperature greater than the second standard temperature value in the first temperature data.
[0103] In the embodiment of the present invention, the selection of the second standard temperature value is similar to the selection of the above-mentioned first standard temperature value, both of which are selected from a preset temperature value range, and the temperature value range corresponding to the second standard temperature value is generally set to 200°C-250°C; correspondingly, similar to the above, the selection of the second standard temperature value is related to the equipment model of the glass kettle. For example, the second standard temperature value can generally be selected as 230 degrees Celsius.
[0104] 206. When it is determined that the first temperature data contains a first abnormal temperature greater than a second standard temperature value, perform second temperature control on the glass kettle.
[0105] In the embodiment of the present invention, the second temperature control includes reducing the heating power based on the first abnormal temperature and the second standard temperature.
[0106] It can be seen that implementation Figure 2 The described intelligent temperature control method for the glass kettle sets up another temperature monitoring scheme for processing temperature differences that are less than or equal to the first standard temperature value. Specifically, the first temperature data is used as an analysis point and compared with the second standard temperature value, and the second temperature control is performed accordingly in response to the presence of the first abnormal temperature in the first temperature data. The temperature monitoring scheme for the glass kettle is expanded, and based on this more comprehensive temperature monitoring scheme, it is helpful to increase the speed of discovering overtemperature conditions in the glass kettle and reduce the probability of glass breakage due to local excessive temperature, thereby helping to improve the safety of use of the glass kettle.
[0107] In an optional embodiment, the method further comprises:
[0108] Detecting whether there is a second abnormal temperature greater than a third standard temperature value in the first temperature data;
[0109] When a second abnormal temperature greater than a third standard temperature value is detected in the first temperature data, a third temperature control is performed on the glass kettle;
[0110] Among them, the third temperature control includes a stop heating control and a dry-burning alarm for the glass kettle. The stop heating control is used to terminate the heating power output to the glass kettle; the dry-burning alarm is used to remind the user that there is a heating abnormality in the glass kettle.
[0111] In this optional embodiment, it should be noted that the heating program corresponding to the glass kettle includes at least a first temperature monitoring interval, a second temperature monitoring interval and a third temperature monitoring interval;
[0112] Wherein, the first temperature monitoring interval includes the first standard temperature value; the second temperature monitoring interval includes the second standard temperature value; the third temperature monitoring interval includes the third standard temperature value;
[0113] Furthermore, the maximum interval temperature of the first temperature monitoring interval is lower than the minimum interval temperature of the second temperature monitoring interval; and the maximum interval temperature of the second temperature monitoring interval is lower than the minimum interval temperature of the third temperature monitoring interval.
[0114] In this optional embodiment, the selection of the third standard temperature value and the selection type of the first and second standard temperature values mentioned above are not described in detail. Here, the temperature range corresponding to the third standard temperature value is explained. The temperature range corresponding to the third standard temperature value can be 250℃-300℃; it can also be 240℃-300℃; further, the selection of the third standard temperature value can generally be 240℃.
[0115] It can be seen that in this optional embodiment, on the basis of the above-mentioned setting of the first standard temperature value and the second standard temperature value, a third standard temperature value is further set, and in response to the presence of a second abnormal temperature in the first temperature data, a third temperature control (specifically, heating stop control and dry burning alarm) that is different from the first and second temperature controls is set accordingly, so that the temperature control of the glass kettle is more flexible. It is not a single heating stop control, but a hierarchical output power reduction (at this time, the normal heating function of the glass kettle can be guaranteed), or a precise heating stop control under special circumstances (there is a second abnormal temperature); the temperature control fineness, accuracy and product safety of the smart kettle are greatly improved.
[0116] In another optional embodiment, the method of performing the first temperature control on the glass kettle in step 204 specifically includes:
[0117] According to the temperature difference and the first standard temperature value, combined with the set power ratio calculation formula, the target reduction ratio for the glass kettle is determined; the target reduction ratio is used to indicate the reduction percentage corresponding to the power reduction for the current heating power of the glass kettle;
[0118] The current heating power is updated to the first heating power according to the target reduction ratio, and the first value change of the temperature difference within the preset monitoring time is collected in real time;
[0119] When the first value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed.
[0120] In this optional embodiment, further, the power ratio calculation formula is specifically:
[0121]
[0122] Among them, ΔT is the temperature difference, T0 is the first standard temperature value; k is the proportionality coefficient, which is predetermined by the heating characteristics of the glass kettle.
[0123] It can be seen that in this optional embodiment, a power adjustment scheme based on real-time temperature data is set up, so that while maintaining the basic heating function of the glass kettle, the temperature difference can be accurately and stably reduced, that is, the uneven temperature distribution of the glass kettle is gradually eliminated, while improving the adjustment accuracy of the heating power of the glass kettle, it can also help to reduce the adverse effects caused by uneven temperature distribution on the glass kettle, and improve the safety of using the glass kettle.
[0124] In yet another optional embodiment, the method of collecting the first value change of the temperature difference in real time within a preset monitoring time period specifically includes:
[0125] In the process of performing the first temperature control on the glass kettle in step 204, the first area change information corresponding to the first area and the second area change information corresponding to the second area within the preset monitoring time are collected in real time;
[0126] Analyze the first region change information and the second region change information to obtain a first temperature drop rate corresponding to the first region and a second temperature drop rate corresponding to the second region;
[0127] According to the first temperature drop rate and the second temperature drop rate, in combination with the first heating power, a predictive calculation of a numerical adjustment is performed on the temperature difference to obtain a predictive calculation result corresponding to the temperature difference as the first numerical change.
[0128] In this optional embodiment, the changes in the glass kettle after adjusting the current heating power can be visually viewed through the changes in the first numerical value, for example, whether there is an undesirable situation in which the temperature in the first area drops too quickly while the temperature in the second area drops more slowly, resulting in an increase in the temperature difference.
[0129] It can be seen that in this optional embodiment, while the heating power of the glass kettle is reduced, the temperature changes in the first area and the second area can be monitored in real time and the temperature difference can be predicted and calculated, so as to determine the precise quantitative and numerical change information corresponding to the temperature difference, which is beneficial to improve the calculation precision and accuracy of the first numerical value change.
[0130] In another optional embodiment, the method of performing the first temperature control on the glass kettle in step 204 specifically further includes:
[0131] When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the end time of the preset monitoring time is reached, the target reduction ratio is updated to the preset minimum reduction ratio, and the first heating power is updated to the second heating power according to the minimum reduction ratio, and the second value change of the temperature difference within the preset monitoring time is collected in real time;
[0132] When the second value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the end time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed;
[0133] When the second value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, the heating power output to the glass kettle is suspended.
[0134] In this optional embodiment, after the current heating power is updated to the first heating power, the first numerical change of the temperature difference can continue to be monitored, and if the first numerical change indicates that the temperature difference has not dropped to the expected level (less than or equal to the first standard temperature value), the first heating power is further reduced, updated, and the temperature is continuously monitored. If it is still monitored that the temperature difference is not less than or equal to the first standard temperature value, the heating process of the glass kettle is directly stopped.
[0135] In this optional embodiment, in combination with the relevant instructions of step 204, multiple reduction stages are set for reducing the heating power of the glass kettle, wherein the first stage is when ΔT>T0, the heating power of the glass kettle is reduced to the first heating power, for example, it can be reduced to 80% of the original heating power; the second stage: if the temperature difference has not dropped to less than or equal to T0, the first heating power is further updated to the second heating power, for example, it can be reduced to 60% of the original heating power; the third stage: if the temperature difference is still too high, the heating of the glass kettle is suspended.
[0136] It can be seen that in this optional embodiment, a further multi-stage temperature control scheme is set for the temperature control of the glass kettle, so that when the temperature of the glass kettle needs to be controlled (the above-mentioned cooling treatment) the heating power of the glass kettle can be flexibly and intelligently adjusted, and the large temperature difference in the glass kettle can be gradually eliminated on the basis of meeting the basic heating function of the glass kettle. At the same time, for special temperature conditions (the temperature difference is still not reduced to less than or equal to the first standard temperature value under the second heating power), the heating treatment can be stopped promptly and quickly, thereby improving the safety of the glass kettle.
[0137] In another optional embodiment, optionally, a plurality of heating elements may be provided on the glass kettle, wherein the heating element corresponding to the first area is recorded as the first heating element, and the heating element corresponding to the second area is recorded as the second heating element;
[0138] The above step 204 performs the first temperature control on the glass kettle in a manner that specifically includes:
[0139] When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the cutoff time of the preset monitoring time is reached, the first allocated power for the first area and the second allocated power for the second area are determined according to the first value change, the first temperature drop rate, and the second temperature drop rate;
[0140] Heating control is performed on the first heating element according to the first distributed power, and heating control is performed on the second heating element according to the second distributed power.
[0141] In this optional embodiment, it should be noted that the determination of the first allocated power and the second allocated power mentioned in this optional embodiment is a parallel scheme corresponding to the above-mentioned updating of the first heating power to the second heating power or pausing heating of the glass kettle;
[0142] After the current heating power is updated to the first heating power, the temperature difference can be adjusted by adjusting the power distribution of the heating element according to the change of the first value;
[0143] Among them, when the first numerical value change indicates that the first temperature drop rate corresponding to the first area is higher than the second temperature drop rate of the second area, and under the first heating power, the heating power distribution ratio for the first heating element and the second heating element is 1:1; at this time, the heating power distribution ratio can be adjusted from 1:1 to 1.5:1, or 2:1 according to the first numerical value change, so as to achieve the adjustment of the temperature difference.
[0144] It can be seen that in this optional embodiment, another adjustment scheme for the temperature difference is provided. By adjusting the power distribution of the heating elements in different areas of the glass kettle, the temperature difference can be flexibly adjusted, which broadens the temperature control function of the glass kettle and is beneficial to improving the temperature control flexibility, intelligence and temperature control accuracy of the glass kettle.
[0145] Embodiment 3
[0146] See also Figure 3 , Figure 3 : is a schematic diagram of the structure of an intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention. The intelligent temperature control device for a glass kettle can be an intelligent temperature control terminal, device, system or server for a glass kettle. The server can be a local server, a remote server, or a cloud server (also known as a cloud server). When the server is a non-cloud server, the non-cloud server can communicate with the cloud server, which is not limited in the embodiment of the present invention. Figure 3As shown, the intelligent temperature control device for the glass kettle may include a temperature acquisition module 301, a temperature difference calculation module 302, a judgment module 303 and a temperature control module 304, wherein:
[0147] The temperature acquisition module 301 is used to control the first temperature sensor to collect first temperature data corresponding to the first area on the glass kettle in real time, and control the second temperature sensor to collect second temperature data corresponding to the second area on the glass kettle in real time after determining that the glass kettle starts heating;
[0148] The temperature difference calculation module 302 calculates the temperature difference between the first temperature data and the second temperature data in the same acquisition period;
[0149] A judging module 303 is used to judge whether the temperature difference is greater than a set first standard temperature value;
[0150] The temperature control module 304 is used to perform a first temperature control on the glass kettle when the judgment module 303 determines that the temperature difference is greater than the first standard temperature value, so as to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
[0151] In the embodiment of the present invention, it should be noted that the first area is the bottom area of the kettle body of the glass kettle; the first temperature data at least includes the average temperature of the first area corresponding to the bottom area of the kettle body;
[0152] The second area includes the side wall area of the glass kettle or the water storage temperature corresponding to the current water storage in the glass kettle; the second temperature data includes the average temperature of the second area corresponding to the side wall area of the kettle body or the average water temperature corresponding to the water storage temperature.
[0153] It can be seen that implementation Figure 3 The described intelligent temperature control device for the glass kettle can monitor the temperature distribution of different areas in the glass kettle in real time through the collaborative work of dual temperature sensors, and perform precise control according to the temperature difference. Different from the temperature monitoring scheme of the traditional single temperature sensor, this method can improve the monitoring accuracy of the actual temperature distribution in the glass kettle, thereby avoiding the problem of local overheating or uneven temperature; and, by real-time monitoring of the temperature difference and dynamically adjusting the heating power, it can effectively prevent the glass kettle from being broken or damaged due to local overheating, especially in a glass kettle, where uneven temperature distribution may lead to thermal stress concentration, thereby causing safety hazards. That is, the method can reduce the temperature difference hidden dangers existing when the glass kettle is used by intelligently adjusting the heating power, thereby improving the safety of the product.
[0154] In an optional embodiment, the judgment module 303 is further configured to judge whether there is a first abnormal temperature greater than a second standard temperature value in the first temperature data when the judgment module 303 judges that the temperature difference value is less than or equal to the first standard temperature value;
[0155] The temperature control module 304 is further configured to perform a second temperature control on the glass kettle when the judgment module 303 judges that there is a first abnormal temperature greater than a second standard temperature value in the first temperature data;
[0156] The second temperature control includes reducing the heating power based on the first abnormal temperature and the second standard temperature.
[0157] It can be seen that in this optional embodiment, another temperature monitoring scheme is set up to handle temperature differences that are less than or equal to the first standard temperature value. Specifically, the first temperature data is used as an analysis point and compared with the second standard temperature value, and in response to the presence of the first abnormal temperature in the first temperature data, the second temperature control is performed accordingly, thereby expanding the temperature monitoring scheme for the glass kettle. Based on this more comprehensive temperature monitoring scheme, it is beneficial to increase the speed of discovering overtemperature conditions in the glass kettle, reduce the probability of glass breakage due to local excessive temperature, and thus help improve the safety of use of the glass kettle.
[0158] In another alternative embodiment, see Figure 4 , Figure 4 Schematic diagram of the structure of an intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention. Figure 4 As shown, the device also includes a detection module 305, wherein:
[0159] A detection module 305 is used to detect whether there is a second abnormal temperature greater than a third standard temperature value in the first temperature data;
[0160] The temperature control module 304 is further configured to perform a third temperature control on the glass kettle when a second abnormal temperature greater than a third standard temperature value is detected in the first temperature data;
[0161] Among them, the third temperature control includes a stop heating control and a dry-burning alarm for the glass kettle. The stop heating control is used to terminate the heating power output to the glass kettle; the dry-burning alarm is used to remind the user that there is a heating abnormality in the glass kettle.
[0162] In this alternative embodiment,
[0163] The heating program corresponding to the glass kettle includes at least a first temperature monitoring interval, a second temperature monitoring interval and a third temperature monitoring interval;
[0164] Wherein, the first temperature monitoring interval includes the first standard temperature value; the second temperature monitoring interval includes the second standard temperature value; the third temperature monitoring interval includes the third standard temperature value;
[0165] Furthermore, the maximum interval temperature of the first temperature monitoring interval is lower than the minimum interval temperature of the second temperature monitoring interval; and the maximum interval temperature of the second temperature monitoring interval is lower than the minimum interval temperature of the third temperature monitoring interval.
[0166] It can be seen that in this optional embodiment, on the basis of the above-mentioned setting of the first standard temperature value and the second standard temperature value, a third standard temperature value is further set, and in response to the presence of a second abnormal temperature in the first temperature data, a third temperature control (specifically, heating stop control and dry burning alarm) that is different from the first and second temperature controls is set accordingly, so that the temperature control of the glass kettle is more flexible. It is not a single heating stop control, but a hierarchical output power reduction (at this time, the normal heating function of the glass kettle can be guaranteed), or a precise heating stop control under special circumstances (there is a second abnormal temperature); the temperature control fineness, accuracy and product safety of the smart kettle are greatly improved.
[0167] In yet another optional embodiment, the temperature control module 304 performs the first temperature control on the glass kettle in the following manner:
[0168] According to the temperature difference and the first standard temperature value, combined with the set power ratio calculation formula, the target reduction ratio for the glass kettle is determined; the target reduction ratio is used to indicate the reduction percentage corresponding to the power reduction for the current heating power of the glass kettle;
[0169] The current heating power is updated to the first heating power according to the target reduction ratio, and the first value change of the temperature difference within the preset monitoring time is collected in real time;
[0170] When the first value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed.
[0171] It can be seen that in this optional embodiment, a power adjustment scheme based on real-time temperature data is set up, so that while maintaining the basic heating function of the glass kettle, the temperature difference can be accurately and stably reduced, that is, the uneven temperature distribution of the glass kettle is gradually eliminated, while improving the adjustment accuracy of the heating power of the glass kettle, it can also help to reduce the adverse effects caused by uneven temperature distribution on the glass kettle, and improve the safety of using the glass kettle.
[0172] In another optional embodiment, the temperature control module 304 performs the first temperature control on the glass kettle in a manner that specifically includes:
[0173] When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the end time of the preset monitoring time is reached, the target reduction ratio is updated to the preset minimum reduction ratio, and the first heating power is updated to the second heating power according to the minimum reduction ratio, and the second value change of the temperature difference within the preset monitoring time is collected in real time;
[0174] When the second value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the end time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed;
[0175] When the second value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, the heating power output to the glass kettle is suspended.
[0176] It can be seen that in this optional embodiment, a further multi-stage temperature control scheme is set for the temperature control of the glass kettle, so that when the temperature of the glass kettle needs to be controlled (the above-mentioned cooling treatment) the heating power of the glass kettle can be flexibly and intelligently adjusted, and the large temperature difference in the glass kettle can be gradually eliminated on the basis of meeting the basic heating function of the glass kettle. At the same time, for special temperature conditions (the temperature difference is still not reduced to less than or equal to the first standard temperature value under the second heating power), the heating treatment can be stopped promptly and quickly, thereby improving the safety of the glass kettle.
[0177] Embodiment 4
[0178] See also Figure 5 , Figure 5 FIG. 1 is a schematic diagram of the structure of another intelligent temperature control device for a glass kettle disclosed in an embodiment of the present invention. Figure 5 As shown, the intelligent temperature control device of the glass kettle may include:
[0179] A memory 401 storing executable program codes;
[0180] a processor 402 coupled to the memory 401;
[0181] The processor 402 calls the executable program code stored in the memory 401 to execute the steps of the intelligent temperature control method for the glass kettle described in the first embodiment of the present invention or the second embodiment of the present invention.
[0182] Embodiment 5
[0183] An embodiment of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the steps in the intelligent temperature control method for a glass kettle described in Embodiment 1 or Embodiment 2 of the present invention.
[0184] Embodiment 6
[0185] An embodiment of the present invention discloses a computer program product, which includes a non-transitory computer storage medium storing a computer program, and the computer program is operable to enable a computer to execute the steps in the intelligent temperature control method for a glass kettle described in Example 1 or Example 2.
[0186] The device embodiments described above are only illustrative, wherein the modules described as separate components may or may not be physically separated, and the components displayed as modules may or may not be physical modules, i.e., they may be located in one place, or they may be distributed on multiple network modules. Some or all of the modules may be selected according to actual needs to achieve the purpose of the scheme of this embodiment. Those of ordinary skill in the art may understand and implement it without creative work.
[0187] Through the specific description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus a necessary general hardware platform, and of course, it can also be implemented by hardware. Based on such an understanding, the above technical solution can be essentially or partly contributed to the prior art in the form of a software product, and the computer software product can be stored in a computer storage medium, and the storage medium includes a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable rewritable read-only memory (EEPROM), a compact disc (CD-ROM) or other optical disc storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0188] Finally, it should be noted that the intelligent temperature control method and device for a glass kettle and the glass kettle disclosed in the embodiments of the present invention are only preferred embodiments of the present invention and 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 aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features thereof may be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. An intelligent temperature control method for a glass kettle, characterized in that: The method comprises: After it is determined that the glass kettle starts heating, the first temperature sensor is controlled to collect first temperature data corresponding to the first area on the glass kettle in real time, and the second temperature sensor is controlled to collect second temperature data corresponding to the second area on the glass kettle in real time; For the first temperature data and the second temperature data in the same acquisition period, calculating the temperature difference between the first temperature data and the second temperature data; Determine whether the temperature difference is greater than a set first standard temperature value. When it is determined that the temperature difference is greater than the first standard temperature value, perform a first temperature control on the glass kettle to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
2. The intelligent temperature control method for a glass kettle according to claim 1, characterized in that: The method further comprises: When it is determined that the temperature difference is less than or equal to the first standard temperature value, determining whether there is a first abnormal temperature greater than a second standard temperature value in the first temperature data; When it is determined that there is a first abnormal temperature greater than the second standard temperature value in the first temperature data, performing a second temperature control on the glass kettle; Wherein, the second temperature control includes reducing the heating power based on the first abnormal temperature and the second standard temperature.
3. The intelligent temperature control method for a glass kettle according to claim 2, characterized in that: The method further comprises: Detecting whether there is a second abnormal temperature greater than a third standard temperature value in the first temperature data; When a second abnormal temperature greater than the third standard temperature value is detected in the first temperature data, performing a third temperature control on the glass kettle; Among them, the third temperature control includes a stop heating control and a dry-burning alarm for the glass kettle. The stop heating control is used to terminate the heating power output to the glass kettle; the dry-burning alarm is used to prompt the user that there is a heating abnormality in the glass kettle.
4. The intelligent temperature control method for a glass kettle according to claim 1, characterized in that: The first area is the bottom area of the kettle body of the glass kettle; the first temperature data at least includes an average temperature of the first area corresponding to the bottom area of the kettle body; The second area includes the side wall area of the glass kettle body or the water storage temperature corresponding to the current water storage in the glass kettle; the second temperature data includes the average temperature of the second area corresponding to the side wall area of the kettle body or the average water temperature corresponding to the water storage temperature.
5. The intelligent temperature control method for a glass kettle according to claim 1, 2 or 4, characterized in that: The performing a first temperature control on the glass kettle comprises: According to the temperature difference and the first standard temperature value, in combination with a set power ratio calculation formula, a target reduction ratio for the glass kettle is determined; the target reduction ratio is used to indicate a reduction percentage corresponding to the power reduction executed for the current heating power of the glass kettle; The current heating power is updated to the first heating power according to the target downward adjustment ratio, and a first value change of the temperature difference within a preset monitoring time period is collected in real time; When the first value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed.
6. The intelligent temperature control method for a glass kettle according to claim 5, characterized in that: The performing a first temperature control on the glass kettle further includes: When the first value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the end time of the preset monitoring time is reached, the target downward adjustment ratio is updated to a preset minimum downward adjustment ratio, and the first heating power is updated to a second heating power according to the minimum downward adjustment ratio, and the second value change of the temperature difference within the preset monitoring time is collected in real time; When the second value change indicates that the temperature difference has been adjusted to be less than or equal to the first standard temperature value after reaching the cut-off time of the preset monitoring time, it is determined that the power reduction operation for the glass kettle is completed; When the second value change indicates that the temperature difference is not adjusted to be less than or equal to the first standard temperature value after the cut-off time of the preset monitoring time is reached, the heating power output to the glass kettle is suspended.
7. The intelligent temperature control method for a glass kettle according to claim 3, characterized in that: The heating program corresponding to the glass kettle at least includes a first temperature monitoring interval, a second temperature monitoring interval and a third temperature monitoring interval; Wherein, the first temperature monitoring interval includes the first standard temperature value; the second temperature monitoring interval includes the second standard temperature value; the third temperature monitoring interval includes the third standard temperature value; And, the maximum interval temperature of the first temperature monitoring interval is lower than the minimum interval temperature of the second temperature monitoring interval; the maximum interval temperature of the second temperature monitoring interval is lower than the minimum interval temperature of the third temperature monitoring interval.
8. An intelligent temperature control device for a glass kettle, characterized in that: The device comprises: A temperature acquisition module, for controlling the first temperature sensor to acquire first temperature data corresponding to a first area on the glass kettle in real time, and controlling the second temperature sensor to acquire second temperature data corresponding to a second area on the glass kettle in real time after determining that the glass kettle starts heating; a temperature difference calculation module, for the first temperature data and the second temperature data in the same acquisition period, calculating the temperature difference between the first temperature data and the second temperature data; A judging module, used for judging whether the temperature difference is greater than a set first standard temperature value; A temperature control module is used to perform a first temperature control on the glass kettle when the judgment module determines that the temperature difference is greater than the first standard temperature value, so as to reduce the temperature difference to less than or equal to the first standard temperature value; wherein the first temperature control includes reducing the heating power based on the temperature difference.
9. An intelligent temperature control device for a glass kettle, characterized in that: The device comprises: A memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the intelligent temperature control method for the glass kettle as described in any one of claims 1-7.
10. A computer storage medium, characterized in that: The computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the intelligent temperature control method for the glass kettle as described in any one of claims 1-7.