Season-based ground temperature energy heat compensation method, system, terminal and storage medium
Patent Information
- Application Number
- CN202311430587.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-31
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2043-10-31
AI Technical Summary
[0004]为了改善土壤温度过低地源热泵机组无法开机使用的问题,本申请提供了一种基于季节的地温能热补偿方法、系统、终端及存储介质
[0017]本申请的上述申请目的四是通过以下技术方案得以实现的:
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Figure CN117190541B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of shallow geothermal energy application technology, and in particular to a seasonal geothermal energy heat compensation method, system, terminal and storage medium. Background Technology
[0002] Shallow geothermal energy, as a clean and renewable energy source, is widely used in cooling and heating of residential and public buildings. Ground source heat pumps transfer low-temperature heat energy to high-temperature heat energy by inputting a small amount of high-grade energy. In winter, the ground energy serves as the heat source for heat pump heating, and in summer, it serves as the cold source for air conditioning. Specifically, in winter, heat is extracted from the ground, raised in temperature, and supplied for indoor heating; in summer, heat is extracted from the indoor environment and released back into the ground energy system.
[0003] However, some projects currently experience an imbalance between heat extraction and heat release after operating for a period of time, leading to a decrease in soil temperature and poor system efficiency. This is particularly true for residential buildings in cold regions, where the ground source heat pump system absorbs far more heat from the soil for heating in winter than for cooling in summer, causing a significant drop in soil temperature and a decrease in the heating capacity of the ground source heat pump unit during winter. Over time, the soil temperature will continue to drop, potentially rendering the ground source heat pump unit unusable. Summary of the Invention
[0004] To address the issue of ground source heat pump units failing to start due to excessively low soil temperatures, this application provides a seasonal ground temperature energy thermal compensation method, system, terminal, and storage medium.
[0005] In a first aspect of this application, a seasonal geothermal energy compensation method is provided, comprising: The heat extracted and released by the ground source heat pump system on the soil side within a preset cycle; the preset cycle includes a continuous heating season and cooling season. Determine that the heat extracted by the ground source heat pump system is greater than the heat discharged within a preset cycle; Based on the amount of heat to be replenished, the soil side is heated after the preset cycle; the amount of heat to be replenished is determined based on the difference between the amount of heat taken out and the amount of heat released.
[0006] By adopting the above technical solution, the heat extraction and heat dissipation of the thermal energy system within a preset cycle are first determined. When the heat extraction is greater than the heat dissipation, it is necessary to supplement the soil side with heat. Therefore, the soil side is supplemented with heat in the supplementary heating quarter after the preset cycle. The supplementary heat is determined by the difference between the heat extraction and heat dissipation, thereby achieving the supplementary heating of the soil side and improving the stability of the ground source heat pump system.
[0007] In one possible implementation, based on the amount of heat to be replenished, the soil side is heated after the preset period, including: Obtain the ambient temperature, soil temperature, and cumulative heat compensation from the thermal compensator; The heating cycle and the start-up time of the thermal compensator are determined based on the ambient temperature, soil temperature, and the cumulative heat compensation of the thermal compensator.
[0008] In one possible implementation, the heating cycle is determined based on the ambient temperature, soil temperature, and the cumulative heating capacity of the thermal compensator, including: Retrieve temperature information from the previous heating season prior to the preset cycle and generate a preset temperature curve; The remaining heat to be replenished and the daily heat replenishment of the heat compensator are determined based on the cumulative heat replenishment of the heat compensator. Based on the daily heat replenishment, the start-up time of the thermal compensator, the ambient temperature, and the soil temperature for the corresponding date, determine the first relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and thermal compensator start-up time. And the second relationship coefficient between daily heat replenishment and soil temperature. ; According to the first relationship coefficient Second Relationship Coefficient Based on the preset temperature curve and soil temperature, the heating cycle is calculated.
[0009] In one possible implementation, a first relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and thermal compensator startup time is determined based on the daily heat replenishment for the corresponding date, the startup time of the thermal compensator, the ambient temperature, and the soil temperature. ,include: The formula for calculating the total heat transported by the thermal compensator is: ;in This refers to the start-up time of the thermal compensator. This refers to the shut-off time of the thermal compensator. in, ; For ambient temperature, Soil temperature; Determine the first relation coefficient The To replenish calories for the day.
[0010] In one possible implementation, a second relationship coefficient between the daily heat replenishment and soil temperature is determined based on the daily heat replenishment and soil temperature for the corresponding date. ,include: The formula for calculating the second relationship coefficient is: The This refers to the soil temperature when the daily thermal compensator is turned off.
[0011] In one possible implementation, based on the first relation coefficient Second Relationship Coefficient Based on the preset temperature curve and soil temperature, the heating cycle is calculated, including: Based on the preset temperature curve, soil temperature, and the first relationship coefficient Calculate the theoretical daily calorie supplement; Based on the theoretical daily heat replenishment and the second relationship coefficient, determine the soil temperature when the daily thermal compensator is turned off. ; The total number of days when the cumulative heat replenishment reaches a level greater than the theoretical heat replenishment is then calculated as the heat replenishment cycle.
[0012] In one possible implementation, the start-up time of the thermal compensator is determined based on the ambient temperature, soil temperature, and the cumulative heat compensation of the thermal compensator, including: The starting temperature of the thermal compensator is determined based on the soil temperature and the pre-stored temperature difference. The thermal compensator starts when the ambient temperature exceeds the start-up temperature.
[0013] In a second aspect of this application, a seasonal geothermal energy compensation system is provided, comprising: The acquisition module is used to acquire the heat taken and released by the ground source heat pump system on the soil side within a preset cycle; the preset cycle includes a continuous heating season and cooling season. The judgment module determines that the heat taken out by the ground source heat pump system is greater than the heat released within a preset cycle; An adjustment module is used to replenish the soil heat after a preset cycle based on the amount of heat to be replenished; the amount of heat to be replenished is determined based on the difference between the amount of heat taken out and the amount of heat released.
[0014] In a third aspect of this application, a terminal is provided that can perform a seasonal geothermal energy compensation method.
[0015] The aforementioned objective three of this application is achieved through the following technical solution: A terminal includes a memory and a processor, wherein the memory stores a computer program that can be loaded by the processor and executed the above-described seasonal geothermal energy thermal compensation method.
[0016] In a fourth aspect of this application, a computer storage medium is provided that can store a corresponding program, which is characterized by facilitating the implementation of a seasonal geothermal energy compensation method.
[0017] The fourth objective of this application is achieved through the following technical solution: A computer-readable storage medium storing a computer program that can be loaded by a processor and executed any of the above-described seasonal geothermal energy thermal compensation methods.
[0018] In summary, this application includes at least one of the following beneficial technical effects: First, the heat taken out and the heat discharged by the thermal energy system within a preset cycle are determined. When the heat taken out is greater than the heat discharged, it is necessary to supplement the soil side with heat. Therefore, the soil side is supplemented with heat in the supplementary heating quarter after the preset cycle. The supplementary heat is determined by the difference between the heat taken out and the heat discharged, thereby realizing the supplementary heating of the soil side and improving the stability of the ground source heat pump system. Attached Figure Description
[0019] Figure 1 This is a flowchart illustrating a seasonal geothermal energy compensation method according to one embodiment of this application.
[0020] Figure 2 This is a schematic diagram of a seasonal geothermal energy compensation system according to one embodiment of this application.
[0021] Figure 3 This is a structural diagram of the thermal compensator in this application.
[0022] Figure 4 This is a schematic diagram of the structure of a terminal according to an embodiment of this application.
[0023] Explanation of reference numerals in the attached drawings: 201, Acquisition module; 202, Judgment module; 203, Adjustment module; 204, Thermal compensator; 2041, Fan; 2042, Spray water distributor; 2043, Water collector; 2044, Spiral finned heat exchanger; 2045, Coarse filter; 2046, Water collection tray; 2047, Spray pump; 301, CPU; 302, ROM; 303, RAM; 304, Bus; 305, I / O interface; 306, Input section; 307, Output section; 308, Storage section; 309, Communication section; 310, Driver; 311, Removable media. Detailed Implementation
[0024] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0025] Furthermore, the term "and / or" in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. Additionally, the character " / " in this article generally indicates that the preceding and following related objects have an "or" relationship.
[0026] A ground source heat pump is a highly efficient and energy-saving air conditioning system that utilizes shallow geothermal resources for both heating and cooling. It transfers low-temperature heat energy to a higher-temperature environment by inputting a small amount of high-grade energy. The geothermal energy serves as both the heat source for heating in winter and the cooling source for air conditioning in summer. Specifically, in winter, heat is extracted from the geothermal energy, raised to a higher temperature, and then supplied for indoor heating; in summer, heat is extracted from the indoor environment and released back into the geothermal energy system.
[0027] Shallow geothermal energy, as a clean and renewable energy source, is widely used for cooling and heating in residential and public buildings. However, some projects currently experience an imbalance between heat extraction and heat release after a period of operation, leading to a decrease in soil temperature and poor system efficiency. This is particularly true for residential buildings in cold regions, where the heat extracted from the soil for heating in winter far exceeds the heat released into the soil for cooling in summer. This results in a significant drop in soil temperature, reduced heating capacity of the ground source heat pump units during winter, increased power consumption, and higher overall system energy consumption in winter. Over time, the soil temperature will continue to decrease, potentially rendering the ground source heat pump units unusable.
[0028] The following is in conjunction with the appendix Figures 1 to 4 This application will be described in further detail.
[0029] To improve the operational stability of ground source heat pump systems, this application provides a seasonal geothermal energy compensation method.
[0030] Reference Figure 1 A seasonal geothermal energy heat compensation method includes the following steps: S101: Obtain the heat taken and released by the ground source heat pump system on the soil side within a preset cycle.
[0031] The preset cycle includes a continuous heating season and a cooling season. For example, a winter is considered a heating season, and the summer following that winter is considered a continuous cooling season. Specifically, this is achieved by using a heat and cold metering device in the ground source heat pump system to measure the heat taken and released from the soil.
[0032] S102: Determine that the heat taken out by the ground source heat pump system is greater than the heat discharged within a preset cycle.
[0033] After obtaining the cumulative heat taken up and discharged from the soil during the heating season and cooling season within a preset period, it is necessary to determine the magnitude of these two values. If the cumulative heat taken up during the heating season exceeds the cumulative heat discharged during the cooling season, it indicates a decrease in the soil temperature field, which is detrimental to heat extraction in subsequent heating seasons. Therefore, soil reheating is required, and the amount of reheating needed is the difference between the cumulative heat taken up and discharged during the heating and cooling seasons.
[0034] S103: Based on the amount of heat to be replenished, replenish the soil heat after a preset cycle.
[0035] First, it is necessary to know the efficiency of thermal compensation under different ambient temperatures, soil temperatures, and operating durations. Therefore, it is necessary to analyze the historical operating data of the thermal compensator 204. This involves obtaining the ambient temperature and soil temperature collected by the climate compensator, and retrieving from the database the daily and cumulative heat compensation provided by the thermal compensator 204 to the soil side, as well as the corresponding ambient and soil temperatures, and the start-up temperature, start-up time, and shutdown time of the thermal compensator 204 on the corresponding dates.
[0036] Specifically, the daily heat replenishment is first determined based on the cumulative heat replenishment to the soil side by the thermal compensator 204 in historical data. The daily heat replenishment, ambient temperature, soil temperature, start-up time, and shut-down time are used to analyze the relationship between the daily heat replenishment and the ambient temperature, soil temperature, and the start-up time of the thermal compensator 204. Therefore, based on the daily heat replenishment and the start-up time of the thermal compensator 204 on the corresponding date, a first relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and start-up time of the thermal compensator 204, and a second relationship coefficient between the daily heat replenishment and the soil temperature are determined. The formula for calculating the total heat transported by the thermal compensator 204 is as follows: ,in The start-up time of thermal compensator 204. This refers to the shut-off time of the thermal compensator 204. And f It is a function related to ambient temperature and soil temperature. ; For ambient temperature, For soil temperature. The calculation includes calculating parameters such as heat compensation thermal efficiency and heat compensation water consumption, which can also be obtained through curve fitting, a well-known technique in the field, and will not be elaborated further here. Further, the first relationship coefficient is determined. , To determine the daily heat replenishment, the ratio of the total heat transported to the daily heat replenishment can be used to establish the primary relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and the start-up time of the thermal compensator 204. .calculate When considering the changes in daily heat emissions, it is necessary to obtain the second relationship coefficient between daily heat emissions and soil temperature from historical data. The formula for calculating the second relationship coefficient is: , The soil temperature when the daily thermal compensator 204 stops working.
[0037] Then, based on the soil temperature and the pre-stored temperature difference, the start-up temperature of the thermal compensator 204 is determined. The start-up temperature varies with soil temperature and is also affected by changes in the pre-stored temperature difference. Temperature information from the previous supplementary heating season prior to the preset cycle is retrieved to generate a preset temperature curve, where the ambient temperature at a specific point in time is considered the corresponding date for the current supplementary heating season. Finally, the supplementary heating cycle is calculated based on the first relationship coefficient, the second relationship coefficient, the preset temperature curve, and the soil temperature.
[0038] The process of calculating the heat replenishment cycle includes: First, calculating the theoretical daily heat replenishment based on the preset temperature curve, soil temperature, and the first relationship coefficient. Then, determining the soil temperature T0' when the heat compensator 204 is closed each day based on the theoretical daily heat replenishment and the second relationship coefficient. Next, considering soil temperature variations, obtaining a curve showing the temperature difference over time based on the soil temperature and the preset temperature curve, and then using this curve to calculate the theoretical daily heat replenishment, i.e., substituting the temperature difference curve into the formula for calculating the total heat transported by the heat compensator 204, and then using the first relationship coefficient to obtain the theoretical daily heat replenishment. Finally, calculating the total number of days when the accumulated heat replenishment exceeds the theoretical heat replenishment is taken as the heat replenishment cycle.
[0039] After calculating the reheating cycle, it is also necessary to redetermine the reheating parameters of the subsequent thermal compensator 204 based on the actual cumulative reheating amount.
[0040] Here, subsequent heat compensation parameters can be determined in two ways: one is to adjust them within the current heat compensation season, and the other is to adjust them in the next heat compensation season. When compensating in the next heat compensation season, the heat deficit from the current heat compensation season needs to be accumulated into the heat to be compensated in the next heat compensation season. This method can make more efficient use of the higher temperature periods of the heat compensation season. When compensating in the current heat compensation season, the heat deficit needs to be calculated based on the actual accumulated heat compensation and the heat to be compensated, and then the heat compensation period is extended.
[0041] This application provides a seasonal geothermal energy compensation system, which adopts the following technical solution: Reference Figure 2 and Figure 3 A seasonal geothermal energy compensation system includes: The acquisition module 201 is used to acquire the heat taken and released by the ground source heat pump system on the soil side within a preset cycle, wherein the preset cycle includes a continuous heating season and a cooling season.
[0042] The judgment module 202 determines that the heat taken out by the ground source heat pump system is greater than the heat discharged within a preset cycle.
[0043] The adjustment module 203 is used to replenish the soil heat after a preset cycle based on the amount of heat to be replenished. The amount of heat to be replenished is determined by the difference between the heat taken out and the heat released.
[0044] The ground source heat pump system includes: ground source heat pump unit, ground source side circulation pump, outdoor ground source heat exchange system, thermal compensator 204, cold and heat meter, outdoor climate compensator, and related electric valves. The thermal compensator 204 is an integrated device composed of components such as fan 2041, spray water distributor 2042, water collector 2043, spiral finned heat exchanger 2044, coarse filter 2045, water collection tray 2046, and spray pump 2047.
[0045] Figure 4 A schematic diagram of a terminal suitable for implementing embodiments of this application is shown.
[0046] like Figure 4 As shown, the terminal includes a Central Processing Unit (CPU) 301, which can perform various appropriate actions and processes based on programs stored in Read-Only Memory (ROM) 302 or programs loaded from storage into Random Access Memory (RAM) 303. The RAM 303 also stores various programs and data required for system operation. The CPU 301, ROM 302, and RAM 303 are interconnected via a bus 304. An Input / Output (I / O) interface 305 is also connected to the bus 304.
[0047] The following components are connected to I / O interface 305: an input section 306 including a keyboard, mouse, etc.; an output section 307 including a cathode ray tube (CRT), liquid crystal display (LCD), and speakers, etc.; a storage section 308 including a hard disk, etc.; and a communication section 309 including a network interface card such as a LAN card and a modem, etc. The communication section 309 performs communication processing via a network such as the Internet. A drive 310 is also connected to I / O interface 305 as needed. A removable medium 311, such as a disk, optical disk, magneto-optical disk, semiconductor memory, etc., is installed on drive 310 as needed so that computer programs read from it can be installed into storage section 308 as needed.
[0048] Specifically, according to embodiments of this application, the above reference flow Figure 1 The described process can be implemented as a computer software program. For example, embodiments of this application include a computer program product comprising a computer program carried on a machine-readable medium, the computer program containing program code for performing the methods shown in the flowchart. In such embodiments, the computer program can be downloaded and installed from a network via communication section 309, and / or installed from removable medium 311. When the computer program is executed by central processing unit (CPU) 301, it performs the functions defined in the system of this application.
[0049] It should be noted that the computer-readable medium shown in this application can be a computer-readable signal medium or a computer-readable storage medium, or any combination thereof. A computer-readable storage medium can be, for example,—but not limited to—an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination thereof. More specific examples of a computer-readable storage medium may include, but are not limited to: an electrical connection having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disc read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this application, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, apparatus, or device. In this application, a computer-readable signal medium can include a data signal propagated in baseband or as part of a carrier wave, carrying computer-readable program code. The transmitted data signal can take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. The computer-readable signal medium can also be any computer-readable medium other than a computer-readable storage medium, which can send, propagate, or transmit a program for use by or in connection with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium can be transmitted using any suitable medium, including but not limited to: wireless, wire, optical fiber, register file (RF), etc., or any suitable combination thereof.
[0050] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or operation, or using a combination of dedicated hardware and computer instructions.
[0051] The units or modules described in the embodiments of this application can be implemented in software or hardware. The described units or modules can also be housed in a processor; for example, a processor can be described as including an acquisition module 201, a judgment module 202, and an adjustment module 203. The names of these units or modules do not necessarily constitute a limitation on the unit or module itself.
[0052] In another aspect, this application also provides a computer-readable storage medium, which may be included in the terminal described in the above embodiments; or it may exist independently and not assembled into the terminal. The aforementioned computer-readable storage medium stores one or more programs that, when used by one or more processors, execute the seasonal geothermal energy thermal compensation method described in this application.
[0053] The above description is merely a preferred embodiment of this application and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of disclosure in this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the foregoing disclosed concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application.
Claims
1. A seasonal geothermal energy heat compensation method, characterized in that, include: The heat extracted and released by the ground source heat pump system on the soil side within a preset cycle; the preset cycle includes a continuous heating season and cooling season. Determine that the heat extracted by the ground source heat pump system is greater than the heat discharged within a preset cycle; Based on the amount of heat to be replenished, the soil side is heated after the preset cycle. The amount of heat to be replenished is determined based on the difference between the amount of heat taken out and the amount of heat released; Based on the amount of heat to be replenished, the soil side is heated after the preset cycle, including: Obtain the ambient temperature, soil temperature, and cumulative heat compensation from the thermal compensator (204); Based on the ambient temperature, soil temperature and the cumulative heat compensation of the thermal compensator (204), the heat compensation cycle and the start-up time of the thermal compensator (204) are determined. The heating cycle is determined based on the ambient temperature, soil temperature, and the cumulative heating capacity of the thermal compensator (204), including: Retrieve temperature information from the previous heating season prior to the preset cycle and generate a preset temperature curve; Based on the cumulative heat compensation of the heat compensator (204), determine the remaining heat to be compensated and the daily heat compensation of the heat compensator (204); Based on the daily heat replenishment, the start-up time of the thermal compensator (204), the ambient temperature, and the soil temperature for the corresponding date, determine the first relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and start-up time of the thermal compensator (204). And the second relationship coefficient between daily heat replenishment and soil temperature. ; According to the first relationship coefficient Second Relationship Coefficient Based on the preset temperature curve and soil temperature, the heating cycle is calculated. Specifically, based on the daily heat replenishment, the start-up time of the thermal compensator (204), the ambient temperature, and the soil temperature for the corresponding date, a first relationship coefficient between the daily heat replenishment and the ambient temperature, soil temperature, and start-up time of the thermal compensator (204) is determined. ,include: The formula for calculating the total heat transported by the thermal compensator (204) is as follows: ;in For the turn-on time of the thermal compensator (204), For the shut-off time of the thermal compensator (204); in, ; For ambient temperature, Soil temperature; Determine the first relation coefficient The To replenish daily calories; Specifically, based on the daily heat replenishment and soil temperature for the corresponding date, a second relationship coefficient between the daily heat replenishment and soil temperature is determined. ,include: The formula for calculating the second relationship coefficient is: The The soil temperature when the daily thermal compensator (204) is closed; Wherein, according to the first relationship coefficient Second Relationship Coefficient Based on the preset temperature curve and soil temperature, the heating cycle is calculated, including: Based on the preset temperature curve, soil temperature, and the first relationship coefficient Calculate the theoretical daily calorie supplement; Based on the theoretical daily caloric supplement and the second relationship coefficient Determine the soil temperature when the daily thermal compensator (204) is closed. ; The total number of days when the cumulative heat replenishment reaches a level greater than the theoretical heat replenishment is then calculated as the heat replenishment cycle; The start-up time of the thermal compensator (204) is determined based on the ambient temperature, soil temperature, and the cumulative heat compensation of the thermal compensator (204), including: The starting temperature of the thermal compensator (204) is determined based on the soil temperature and the pre-stored temperature difference. When the ambient temperature exceeds the start-up temperature, the thermal compensator (204) starts.
2. The seasonal geothermal energy compensation system according to claim 1, characterized in that, include: The acquisition module (201) is used to acquire the heat taken and released by the ground source heat pump system on the soil side within a preset cycle; the preset cycle includes a continuous heating season and cooling season; The judgment module (202) determines that the heat taken by the ground source heat pump system is greater than the heat discharged within a preset cycle; The adjustment module (203) is used to replenish the soil heat after the preset cycle according to the heat to be replenished; the heat to be replenished is determined according to the difference between the heat taken and the heat released. The adjustment module (203) is also used to: obtain the ambient temperature, soil temperature and the cumulative heat compensation of the thermal compensator (204); and determine the heat compensation cycle and the start-up time of the thermal compensator (204) based on the ambient temperature, soil temperature and the cumulative heat compensation of the thermal compensator (204). The adjustment module (203) is specifically used for: retrieving temperature information from the previous heating season prior to the preset cycle and generating a preset temperature curve; determining the remaining heat to be supplemented and the daily heat supplementation of the heat compensator (204) based on the cumulative heat supplementation of the heat compensator (204); and determining the first relationship coefficient between the daily heat supplementation and the ambient temperature, soil temperature, and the start-up time of the heat compensator (204) based on the daily heat supplementation of the corresponding date, the start-up time of the heat compensator (204), the ambient temperature, and the soil temperature. And the second relationship coefficient between daily heat replenishment and soil temperature. According to the first relationship coefficient Second Relationship Coefficient Based on the preset temperature curve and soil temperature, the heating cycle is calculated.
3. A terminal, comprising a memory and a processor, wherein the memory stores a computer program, characterized in that, When the processor executes the program, it implements the seasonal geothermal energy compensation method as described in claim 1.
4. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the program is executed by the processor, it implements the seasonal geothermal energy compensation method as described in claim 1.
Citation Information
Patent Citations
Shallow geothermal energy thermal compensation method and system, terminal and storage medium
CN117091306A