Low-energy-consumption control method for microcrystal furnace
By implementing control methods such as starting initialization, data parameter floating acquisition analysis and energy consumption impact analysis in the microcrystal furnace, the problem of inaccurate energy consumption control of microcrystal furnaces in the prior art is solved, and precise control of energy consumption and effective monitoring of energy consumption floating trends is achieved.
Patent Information
- Application Number
- CN202510161240.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-02-13
AI Technical Summary
The existing microcrystal furnaces cannot effectively start initialization control during energy consumption control, cannot perform floating analysis of initialization data, and cannot accurately regulate energy consumption, and cannot make real-time decision-making and adjustments based on energy consumption impact analysis.
A low-energy consumption control method for microcrystalline furnaces is proposed, including start-up initialization, floating data parameter acquisition analysis and energy consumption impact analysis. By initially detecting the selected furnace head, firepower gear and temperature resistance values of microcrystalline furnace glass, collecting and analyzing the floating trend of data parameters, and parameter regulation is carried out in combination with energy consumption impact analysis to achieve accurate control of energy consumption.
The accuracy of energy consumption control of microcrystal furnaces when starting initialization is realized. Through data analysis and energy consumption impact analysis, parameter control can be carried out in a timely manner, unnecessary energy consumption is reduced, and the accuracy of energy consumption control is improved.
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Figure CN119983335A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of low energy consumption control, and in particular to a low energy consumption control method for a microcrystalline furnace. Background Art
[0002] A microcrystalline stove is a kitchen appliance that uses radiant heat from electric heating elements to act on pots through microcrystalline glass to cook food. With the development of science and technology, many manufacturers are researching and exploring how to improve the energy efficiency of microcrystalline stoves while completing food cooking. There are many ways to improve it. The heating time of food can be shortened by changing the heating method, adjusting the structure of the heating plate, increasing the peripheral structure to reduce the heat radiated outward by the heating plate, etc., thereby reducing the cooking time.
[0003] However, in the prior art, it is impossible to perform startup initialization control when controlling the energy consumption of the microcrystalline furnace, and it is impossible to perform floating analysis on the initialization data, and it is impossible to accurately regulate energy consumption. In addition, it is impossible to combine energy consumption impact analysis to make decision adjustments to real-time energy consumption regulation.
[0004] In view of the above technical defects, a solution is now proposed. Summary of the invention
[0005] The purpose of the present invention is to solve the above-mentioned problems and to provide a low-energy consumption control method for a microcrystalline furnace.
[0006] The purpose of the present invention can be achieved through the following technical solutions: A low energy consumption control method for a microcrystalline furnace, the energy consumption control method process is as follows: Start initialization, according to the selected furnace head, the set firepower level and the temperature resistance value of the microcrystalline furnace glass, the rapid heating time, the limit temperature, the recovery temperature and the insulation temperature are initialized, and the parameters are initialized and tested according to the microcrystalline furnace control, and the microcrystalline furnace is put into use after the test is qualified; Data parameter floating collection and analysis: after the microcrystalline furnace is put into use, data collection is performed on the initialization setting parameters, and the energy consumption prediction analysis of the microcrystalline furnace operation is performed based on the collected data analysis; Energy consumption impact analysis: During the energy consumption detection process of the microcrystalline furnace, the energy consumption of the microcrystalline furnace is analyzed, and the energy consumption impact analysis is performed in combination with the fluctuation of the microcrystalline furnace setting parameters.
[0007] As a preferred implementation of the present invention, the initialization process is started as follows: The floating frequency of the peak temperature of the cooking pot when heated by the current burner power is obtained, and the excess of the rapid heating time provided by the current burner power and the average time consumption for making the cooking pot is obtained. If the floating frequency of the peak temperature of the cooking pot when heated by the current burner power exceeds the peak floating frequency threshold, or the excess of the rapid heating time provided by the current burner power and the average time consumption for making the cooking pot exceeds the time consumption excess threshold, the parameters are adjusted; If the floating frequency of the peak internal temperature of the corresponding cooking pot when heated by the current burner power does not exceed the peak floating frequency threshold, and the excess of the rapid heating time provided by the current burner power and the average time consumed for cooking pot production does not exceed the time excess threshold, the corresponding parameter value is set to the initialization value of the corresponding parameter.
[0008] As a preferred embodiment of the present invention, according to the initialization value of the burner firepower, experiments are carried out with the current load circuit to collect aging impact data and constant temperature impact data. If the aging impact data exceeds the aging speed increase span threshold, the temperature deviation value between the current recovery temperature and the limit temperature needs to be lowered; if the constant temperature impact data does not exceed the constant time decrease span threshold, the temperature deviation value between the current recovery temperature and the limit temperature needs to be raised; if the aging impact data does not exceed the aging speed increase span threshold and the constant temperature impact data exceeds the constant time decrease span threshold, the temperature deviation value between the current recovery temperature and the limit temperature is set as the initialization data.
[0009] As a preferred embodiment of the present invention, the data parameter floating collection and analysis process is as follows: The rapid heating time, limit temperature, recovery temperature and insulation temperature are uniformly marked as initialization parameters, and floating trend data and floating influence data are collected. The floating trend data and floating influence data are respectively the maximum overlapping time of the floating period of high consumption trend of initialization parameters and the period of increased energy consumption of the microcrystalline furnace during the stage when the microcrystalline furnace is put into use, and the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption under the floating proportion of the corresponding time of high consumption trend and low consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use.
[0010] As a preferred embodiment of the present invention, if the floating trend data exceeds the maximum overlap time threshold, or the floating influence data exceeds the momentary total amount increase speed threshold, the microcrystalline furnace initialization parameters are adjusted; if the floating trend data does not exceed the maximum overlap time threshold, and the floating influence data does not exceed the momentary total amount increase speed threshold, the microcrystalline furnace initialization parameters continue to be monitored.
[0011] As a preferred embodiment of the present invention, the energy consumption impact analysis process is as follows: When the energy consumption monitoring of the microcrystalline furnace is abnormal, an impact analysis is performed on the initialization parameter control, and the control effect information and control impact information are collected. If the control effect information exceeds the span value ratio threshold, or the control impact information exceeds the cycle shortening span threshold, the microcrystalline furnace energy consumption inspection is carried out; if the control effect information does not exceed the span value ratio threshold, and the control impact information does not exceed the cycle shortening span threshold, the microcrystalline furnace initialization parameters continue to be controlled.
[0012] As a preferred embodiment of the present invention, the control effect information and the control impact information are respectively the maximum overlapping duration of the floating period of high consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use and the period of increased energy consumption of the microcrystalline furnace, and the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption under the floating proportion of the corresponding time of high consumption trend and low consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use.
[0013] Compared with the prior art, the present invention has the following beneficial effects: 1. In the present invention, the parameters are initialized and tested according to the microcrystalline furnace control, and the microcrystalline furnace is put into use after the test is qualified; the operation performance of the microcrystalline furnace is controlled by data initialization to ensure that the actual energy consumption of the microcrystalline furnace is consistent with the set energy consumption when it is put into use, which is convenient for energy consumption control of the microcrystalline furnace and reduces the workload of energy consumption control during later use; it also avoids detection errors in the energy consumption detection of the microcrystalline furnace operation, resulting in inaccurate energy consumption detection.
[0014] 2. In the present invention, the energy consumption of the microcrystalline furnace operation is predicted and analyzed based on the collected data analysis, the energy consumption is predicted by the floating detection of the microcrystalline furnace setting parameters, the energy consumption floating state of the microcrystalline furnace is effectively monitored, and the parameters are adjusted in time to reduce unnecessary energy consumption; in the process of microcrystalline furnace energy consumption detection, the energy consumption of the microcrystalline furnace is analyzed, and the energy consumption impact analysis is performed in combination with the floating of the microcrystalline furnace setting parameters. The energy consumption floating trend is analyzed through parameter control, and it is detected whether the energy consumption control efficiency of the current microcrystalline furnace meets the actual control requirements, thereby improving the accuracy of the microcrystalline furnace energy consumption control. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to facilitate understanding by those skilled in the art, the present invention is further described below with reference to the accompanying drawings.
[0016] Figure 1 A flow chart of the overall method of the present invention; Figure 2 This is a flow chart of the method for starting initialization of the present invention. DETAILED DESCRIPTION
[0017] 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.
[0018] 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.
[0019] See also Figure 1 As shown, a low energy consumption control method for a microcrystalline furnace is described, and the specific energy consumption control method process is as follows: Start initialization, such as Figure 2 As shown, the rapid heating time, limit temperature, recovery temperature and insulation temperature are initialized according to the selected furnace head, the set firepower level and the temperature resistance value of the microcrystalline furnace glass, and the parameters are initialized and tested according to the microcrystalline furnace control, and the microcrystalline furnace is put into use after the test is qualified; the operation performance of the microcrystalline furnace is controlled by data initialization to ensure that the actual energy consumption of the microcrystalline furnace is consistent with the set energy consumption when it is put into use, which is convenient for energy consumption control of the microcrystalline furnace and reduces the workload of energy consumption control in the later use process; it also avoids detection errors in the energy consumption detection of the microcrystalline furnace operation, resulting in inaccurate energy consumption detection; Data parameter floating collection and analysis: After the microcrystalline furnace is put into use, data is collected for the initial setting parameters, and the energy consumption of the microcrystalline furnace is predicted and analyzed based on the collected data. Energy consumption is predicted through the floating detection of the microcrystalline furnace setting parameters, effectively monitoring the energy consumption floating state of the microcrystalline furnace, and timely adjusting parameters to reduce unnecessary energy consumption; Energy consumption impact analysis: During the energy consumption detection process of the microcrystalline furnace, the energy consumption of the microcrystalline furnace is analyzed. The energy consumption impact analysis is combined with the fluctuation of the microcrystalline furnace setting parameters. The energy consumption fluctuation trend is analyzed through parameter control to detect whether the energy consumption control efficiency of the current microcrystalline furnace meets the actual control requirements, thereby improving the accuracy of the energy consumption control of the microcrystalline furnace. The startup initialization process is as follows: The greater the burner power you choose, the shorter the rapid heating time. The electric control board program needs to match the burner power and rapid heating time based on the actual cooking effect and the impact on the temperature rise of the whole machine. If you need to reduce the temperature rise of the whole machine while meeting the cooking effect, you need to appropriately reduce the rapid heating time when increasing the burner power, otherwise increase the rapid heating time; The floating frequency corresponding to the peak temperature of the cooking pot when heated by the current burner power is obtained, and the excess of the rapid heating time provided by the current burner power and the average time consumption for cooking pot production is obtained. The floating frequency corresponding to the peak temperature of the cooking pot when heated by the current burner power and the excess of the rapid heating time provided by the current burner power and the average time consumption for cooking pot production are compared with the peak floating frequency threshold and the time consumption excess threshold respectively: If the floating frequency of the peak value of the internal temperature of the corresponding cooking pot when heated by the current burner power exceeds the peak floating frequency threshold, or the excess of the rapid heating time provided by the current burner power and the average time consumption for cooking pot production exceeds the time consumption excess threshold, it is inferred that the current burner power and the corresponding rapid heating time need to be adjusted, and the parameters thereof are adjusted; If the floating frequency of the peak value of the internal temperature of the corresponding cooking pot when heated by the current burner power does not exceed the peak floating frequency threshold, and the excess of the rapid heating time provided by the current burner power and the average time consumption for cooking pot production does not exceed the time consumption excess threshold, it is inferred that the current burner power and the corresponding rapid heating time do not need to be adjusted, and the corresponding parameter value is set to the initialization value of the corresponding parameter; The selection of the limit temperature and the recovery temperature needs to be set in combination with the temperature resistance value of the microcrystalline glass and the effect of the operation of the stove heating plate on the temperature rise of the whole machine. The limit temperature cannot exceed the temperature resistance of the microcrystalline glass, and the temperature rise of the whole machine cannot exceed the standard or the microcrystalline glass cannot overheat and burst due to the limit temperature being too high. In addition, the recovery temperature must be lower than the limit temperature. The difference between the two temperatures cannot be too small or too large. If it is too small, it will cause the driving load circuit to switch frequently and accelerate the aging of the load circuit components. If it is too large, it will cause the pot food to be heated at a poor constant temperature and affect the cooking effect. The choice of the specific difference depends on the size of the stove fire, and actual testing is required to find the best difference. According to the initialization value of the stove firepower, the experiment is carried out with the current load circuit, and the wear and aging speed increase span of the internal components of the load circuit when the temperature deviation value between the current recovery temperature and the limit temperature increases during the experiment is obtained. At the same time, the decrease span of the constant heating time of the internal heating temperature of the cooking pot when the temperature deviation value between the current recovery temperature and the limit temperature decreases is obtained. The wear and aging speed increase span of the internal components of the load circuit when the temperature deviation value between the current recovery temperature and the limit temperature increases during the experiment and the decrease span of the constant heating time of the internal heating temperature of the cooking pot when the temperature deviation value between the current recovery temperature and the limit temperature decreases are marked as aging influence data and constant temperature influence data, respectively, and compared with the aging speed increase span threshold and the constant time decrease span threshold, respectively: If the temperature deviation between the current recovery temperature and the limit temperature increases during the experiment, and the wear and aging speed increase span of the internal components of the load circuit exceeds the aging speed increase span threshold, the temperature deviation between the current recovery temperature and the limit temperature needs to be lowered; If the temperature deviation between the current recovery temperature and the limit temperature decreases, and the decrease span of the constant time of the internal heating temperature of the cooking pot does not exceed the constant time decrease span threshold, the temperature deviation between the current recovery temperature and the limit temperature needs to be increased; If during the experiment, when the temperature deviation value between the current recovery temperature and the limit temperature increases, the wear aging speed increase span of the internal components of the load circuit does not exceed the aging speed increase span threshold, and when the temperature deviation value between the current recovery temperature and the limit temperature decreases, the decrease span of the constant time of the internal heating temperature of the cooking pot exceeds the constant time decrease span threshold, then the temperature deviation value between the current recovery temperature and the limit temperature is set as the initialization data; The insulation temperature Ti is also called the constant temperature control temperature. When the rapid heating is completed, the heating plate of the stove head reduces the output power or reduces the working time of the heating plate per unit time. After that, the center temperature of the heating plate needs to be kept at a certain value to ensure the cooking effect. Therefore, the insulation temperature Ti needs to be set to determine the fire output, so as to keep the food in the pot at a certain temperature to ensure the cooking effect of the food. The data parameter floating collection and analysis process is as follows: The rapid heating time, limit temperature, recovery temperature, and insulation temperature are uniformly marked as initialization parameters, and the maximum overlapping time of the high consumption trend floating period of the initialization parameters and the energy consumption increase period of the microcrystalline furnace during the stage of the microcrystalline furnace being put into use is obtained, and the maximum overlapping time of the high consumption trend floating period of the initialization parameters and the energy consumption increase period of the microcrystalline furnace during the stage of the microcrystalline furnace being put into use is marked as floating trend data, where the high consumption trend is represented by the value of the parameter in the initialization parameter floating with the trend of increasing energy consumption, such as the energy consumption increases when the rapid heating time decreases, and the energy consumption increases when the insulation temperature increases; Obtain the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption when the corresponding time proportion of the high consumption trend and the low consumption trend of the initialization parameters in the stage of microcrystalline furnace being put into use fluctuates, and mark the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption when the corresponding time proportion of the high consumption trend and the low consumption trend of the initialization parameters in the stage of microcrystalline furnace being put into use fluctuates as floating impact data; And compare the floating trend data and floating impact data with the maximum overlap duration threshold and the total amount increase speed threshold respectively: If the floating trend data exceeds the maximum overlap time threshold, or the floating impact data exceeds the total amount increase speed threshold, it is inferred that the parameter fluctuation in the current initialization parameters has an impact on energy consumption, and the initialization parameters of the microcrystalline furnace are adjusted to control the fluctuation of each parameter in the corresponding initialization parameters without affecting the use of the cookware; If the floating trend data does not exceed the maximum overlap duration threshold, and the floating impact data does not exceed the total amount increase speed threshold, it is inferred that the parameter fluctuation in the current initialization parameters does not have an impact on energy consumption, and the microcrystalline furnace initialization parameters continue to be monitored; The energy consumption impact analysis process is as follows: When the energy consumption monitoring of the microcrystalline furnace is abnormal, the impact analysis of the initialization parameter control is performed to obtain the numerical ratio of the corresponding span of the peak increase span of the excess energy consumption of the microcrystalline furnace and the corresponding span of the reduction span of the continuous duration of the excess energy consumption peak after the microcrystalline furnace initialization parameter control, where the numerical ratio is the numerical ratio of the corresponding two data, only considering the impact of numerical fluctuations, and not considering the unit of the data; and the numerical ratio of the corresponding span of the peak increase span of the excess energy consumption of the microcrystalline furnace and the corresponding span of the reduction span of the continuous duration of the excess energy consumption peak after the microcrystalline furnace initialization parameter control is marked as the control effect information; Obtain the shortened span value of the constant energy consumption period after the energy consumption of the microcrystalline furnace is regulated normally during the microcrystalline furnace initialization parameter regulation stage, and mark the shortened span value of the constant energy consumption period after the energy consumption of the microcrystalline furnace is regulated normally during the microcrystalline furnace initialization parameter regulation stage as regulation impact information, wherein the energy consumption of the microcrystalline furnace is regulated normally after the microcrystalline furnace is regulated normally, indicating that the energy consumption of the microcrystalline furnace is abnormal and is restored to the original set energy consumption after the initialization parameter regulation; Compare the control effect information and control impact information with the span value ratio threshold and the period shortening span threshold respectively: If the control effect information exceeds the span value ratio threshold, or the control impact information exceeds the period shortening span threshold, it is inferred that the energy consumption impact of the initialization parameter control is low, and the energy consumption maintenance of the microcrystalline furnace is carried out, specifically, the equipment component loss maintenance, etc.; If the control effect information does not exceed the span value ratio threshold, and the control impact information does not exceed the cycle shortening span threshold, it is inferred that the energy consumption impact of the initialization parameter control is high, and the initialization parameters of the microcrystalline furnace continue to be controlled.
[0020] There are other processes in the initialization of the microcrystalline furnace, specifically: rapid heating and temperature limit protection. The furnace head heating plate continues to work at the set firepower level according to the initialized rapid heating time. If the current center temperature of the heating plate exceeds the limit temperature, the heating plate stops power output until the center temperature of the heating plate drops below the recovery temperature. The heating plate restarts and works at the initially set firepower level. After that, the heating plate works in this mode in a cycle.
[0021] Constant temperature adjustment: After rapid heating is completed, the power output of the heating plate of the stove head is appropriately reduced or the working time of the heating plate is reduced per unit time. When the center temperature of the heating plate is lower than the insulation temperature for the first time, the system enters the constant temperature control mode. Subsequently, when the center temperature of the heating plate is lower than the insulation temperature, the output power of the heating plate is appropriately increased or the working time of the heating plate per unit time is increased. When the center temperature of the heating plate rises again and exceeds the insulation temperature, the output power of the heating plate is appropriately reduced or the working time of the heating plate per unit time is reduced to cool the heating plate. After that, this mode is used to make the heating plate reach a constant temperature state, so that the temperature of the food in the pot is uniform and the food cooking effect is satisfactory; When the present invention is in use, it starts initialization, and initializes the rapid heating time, limit temperature, recovery temperature, and insulation temperature according to the selected furnace head, the set firepower level, and the temperature resistance value of the microcrystalline furnace glass, and performs initialization detection on the parameters according to the microcrystalline furnace control, and puts the microcrystalline furnace into use after the detection is qualified; data parameter floating collection and analysis, after the microcrystalline furnace is put into use, data collection is performed on the initialized set parameters, and the energy consumption of the microcrystalline furnace operation is predicted and analyzed based on the collected data analysis; energy consumption impact analysis, in the process of microcrystalline furnace energy consumption detection, the energy consumption of the microcrystalline furnace is analyzed, and the energy consumption impact analysis is performed in combination with the floating of the microcrystalline furnace setting parameters.
[0022] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to only specific implementation methods. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A low energy consumption control method for a microcrystalline furnace, characterized in that: The energy consumption control method process is as follows: Start initialization, according to the selected furnace head, the set firepower level and the temperature resistance value of the microcrystalline furnace glass, the rapid heating time, the limit temperature, the recovery temperature and the insulation temperature are initialized, and the parameters are initialized and tested according to the microcrystalline furnace control, and the microcrystalline furnace is put into use after the test is qualified; Data parameter floating collection and analysis: after the microcrystalline furnace is put into use, data collection is performed on the initialization setting parameters, and the energy consumption prediction analysis of the microcrystalline furnace operation is performed based on the collected data analysis; Energy consumption impact analysis: During the energy consumption detection process of the microcrystalline furnace, the energy consumption of the microcrystalline furnace is analyzed, and the energy consumption impact analysis is performed in combination with the fluctuation of the microcrystalline furnace setting parameters.
2. A low energy consumption control method for a microcrystalline furnace according to claim 1, characterized in that: The startup initialization process is as follows: The floating frequency of the peak temperature of the cooking pot when heated by the current burner power is obtained, and the excess of the rapid heating time provided by the current burner power and the average time consumption for making the cooking pot is obtained. If the floating frequency of the peak temperature of the cooking pot when heated by the current burner power exceeds the peak floating frequency threshold, or the excess of the rapid heating time provided by the current burner power and the average time consumption for making the cooking pot exceeds the time consumption excess threshold, the parameters are adjusted; If the floating frequency of the peak internal temperature of the corresponding cooking pot when heated by the current burner power does not exceed the peak floating frequency threshold, and the excess of the rapid heating time provided by the current burner power and the average time consumed for cooking pot production does not exceed the time excess threshold, the corresponding parameter value is set to the initialization value of the corresponding parameter.
3. A low energy consumption control method for a microcrystalline furnace according to claim 2, characterized in that: According to the initialization value of the furnace head firepower, the experiment is carried out with the current load circuit to collect aging impact data and constant temperature impact data. If the aging impact data exceeds the aging speed increase span threshold, the temperature deviation value between the current recovery temperature and the limit temperature needs to be lowered; If the constant temperature impact data does not exceed the constant time drop span threshold, the temperature deviation value between the current recovery temperature and the limit temperature needs to be adjusted upward; If the aging impact data does not exceed the aging speed increase span threshold, and the constant temperature impact data exceeds the constant time decrease span threshold, the temperature deviation value between the current recovery temperature and the limit temperature is set as the initialization data.
4. The low energy consumption control method of a microcrystalline furnace according to claim 1, characterized in that: The data parameter floating collection and analysis process is as follows: The rapid heating time, limit temperature, recovery temperature and insulation temperature are uniformly marked as initialization parameters, and floating trend data and floating influence data are collected. The floating trend data and floating influence data are respectively the maximum overlapping time of the floating period of high consumption trend of initialization parameters and the period of increased energy consumption of the microcrystalline furnace during the stage when the microcrystalline furnace is put into use, and the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption under the floating proportion of the corresponding time of high consumption trend and low consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use.
5. A low energy consumption control method for a microcrystalline furnace according to claim 4, characterized in that: If the floating trend data exceeds the maximum overlap time threshold, or the floating influence data exceeds the total amount increase rate threshold, the microcrystalline furnace initialization parameters are adjusted; if the floating trend data does not exceed the maximum overlap time threshold, and the floating influence data does not exceed the total amount increase rate threshold, the microcrystalline furnace initialization parameters continue to be monitored.
6. A low energy consumption control method for a microcrystalline furnace according to claim 1, characterized in that: The energy consumption impact analysis process is as follows: When the energy consumption monitoring of the microcrystalline furnace is abnormal, the initialization parameter control is analyzed, and the control effect information and control impact information are collected. If the control effect information exceeds the span value ratio threshold, or the control impact information exceeds the cycle shortening span threshold, the energy consumption of the microcrystalline furnace is inspected and repaired; If the control effect information does not exceed the span value ratio threshold, and the control impact information does not exceed the cycle shortening span threshold, the microcrystalline furnace initialization parameters continue to be controlled.
7. A low energy consumption control method for a microcrystalline furnace according to claim 6, characterized in that: The control effect information and control impact information are respectively the maximum overlapping duration of the floating period of high consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use and the period of increased energy consumption of the microcrystalline furnace, and the total increase span of the time when the actual energy consumption of the microcrystalline furnace exceeds the preset energy consumption under the floating proportion of the corresponding time of high consumption trend and low consumption trend of initialization parameters during the stage when the microcrystalline furnace is put into use.
Citation Information
Patent Citations
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CN110056916A
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CN117973205A
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CN118640500A
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CN210861222U
Cooking equipment and a method of detecting operating conditions of a cooking equipment
EP2604929A1