Temperature regulation system and method based on geothermal energy
By designing a geothermal energy-based temperature regulation system, utilizing geothermal energy modules, storage modules, and temperature control modules, the problems of low geothermal resource utilization and poor user experience were solved, achieving stable satisfaction of heating and cooling needs and improving system stability and user experience.
Patent Information
- Application Number
- CN202411334044.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2044-09-24
AI Technical Summary
Geothermal resources have low utilization rates and poor user experience. Ground equipment cannot guarantee full-load heating when used for heating, and is affected by a variety of factors.
Design a temperature regulation system based on geothermal energy, including a geothermal energy module, a storage module, an energy storage and power supply module, a temperature control module, a heating module, and a cooling module. By extracting and processing geothermal energy, storing water vapor and electrical energy, and regulating the temperature according to user needs, it can achieve heating or cooling.
It improves the utilization rate of geothermal resources and the user experience, ensures the stable satisfaction of heating and cooling needs, and enhances the stability and safety of the system.
Smart Images

Figure CN119123659B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of geothermal geology, and in particular to a temperature regulation system and method based on geothermal energy. Background Technology
[0002] Geothermal energy is natural heat extracted from the Earth's crust. This energy originates from the Earth's internal lava and exists in the form of heat. It is the energy that causes volcanic eruptions and earthquakes. The temperature inside the Earth can reach 7000°C, while at a depth of 80 to 100 kilometers, the temperature drops to 650 to 1200°C. Through the flow of groundwater and lava flows to the Earth's crust 1 to 5 kilometers below the surface, heat is transferred to areas closer to the surface. The high-temperature lava heats the nearby groundwater, which eventually seeps to the surface. The simplest and most cost-effective way to utilize geothermal energy is to directly extract the heat from these heat sources. However, due to the complex underground geological structure of geothermal wells and the many factors affecting the temperature and volume of geothermal water, there are many uncertainties in the production process, resulting in low utilization rates of geothermal resources. Furthermore, during winter heating applications, surface equipment is also affected by various factors and cannot absolutely guarantee full-load heating throughout the entire heating season, impacting the user experience.
[0003] The above content is only used to help understand the technical solution of the present invention and does not represent an admission that the above content is related technology. Summary of the Invention
[0004] The main objective of this invention is to provide a temperature regulation system and method based on geothermal energy, which aims to solve the technical problems of low utilization rate of geothermal resources and poor user experience in the prior art.
[0005] To achieve the above objectives, the present invention provides a temperature regulation system based on geothermal energy, the geothermal energy-based temperature regulation system comprising a geothermal energy module, a steam turbine module, a storage module, an energy storage power supply module, a temperature control module, a heating module, and a cooling module;
[0006] The geothermal energy module is used to extract geothermal energy and process the geothermal energy to obtain geothermal energy that meets preset requirements.
[0007] The storage module is used to store the water vapor generated by the geothermal energy, and when the water vapor storage exceeds the water vapor storage threshold, the excess water vapor is converted into water for storage to ensure the user's water supply.
[0008] The energy storage power supply module is used to supply power using the electrical energy generated by the turbine module, and to store the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold.
[0009] The temperature control module is used to adjust the temperature of the heating module or the cooling module based on the electrical energy and the water vapor, according to the user's needs, so as to meet the user's heating or cooling needs.
[0010] Optionally, the system further includes a monitoring module, which includes a device information monitoring submodule and a user information monitoring submodule;
[0011] The device information monitoring submodule is used to monitor the device status within all modules of the system to ensure that the status of each device is controllable and to issue an early warning when the device status is abnormal.
[0012] The user information monitoring submodule is used to monitor the user's needs and expenses, and adjust the user's needs information according to the user's geographical location and the user's needs and expenses.
[0013] Optionally, the storage module includes a heating storage submodule and a water storage submodule;
[0014] The heating storage submodule is used to store the water vapor generated by the geothermal energy;
[0015] The water storage submodule is used to convert excess water vapor into water for storage when the water vapor storage is sufficient, so as to ensure the supply of hot and cold water to the user.
[0016] Optionally, the system further includes a control center module, which is connected to the monitoring module and the geothermal energy module;
[0017] The control center module is used to acquire monitoring information from the monitoring module and control all modules in the system based on the monitoring information.
[0018] The control center module is also used to acquire geothermal energy processing requirements and control the geothermal energy module according to the geothermal energy processing requirements.
[0019] Optionally, the system further includes a user module and a control requirements module;
[0020] The user module is used to upload the user's demand information to the control demand module, and the demand information includes heating demand information or cooling demand information.
[0021] The control demand module is used to collect the demand information and send the demand information to the control center module, so that the control center module generates control commands based on the demand information;
[0022] Accordingly,
[0023] The temperature control module is also used to acquire the control command and adjust the temperature of the heating module or the cooling module based on the electrical energy and the water vapor to meet the user's heating or cooling needs.
[0024] Optionally, the system further includes a pipeline delivery module;
[0025] The pipeline transportation module is used to lay and transport pipelines according to the requirements of the user module, and to monitor the transportation status of the pipelines in real time to obtain pipeline monitoring information.
[0026] The pipeline delivery module is also used to send the pipeline monitoring information to the monitoring module.
[0027] Optionally, the heating module is used to adjust the temperature using water vapor in the storage module and the temperature control module if the demand information is heating demand information, so as to meet the user's heating demand.
[0028] The heating module is also used to adjust the temperature using the electrical energy stored in the power storage module and the temperature control module if the demand information is heating demand information, so as to meet the user's heating demand.
[0029] Optionally, the refrigeration module includes a compressor, a condenser, a throttling device, and an evaporator;
[0030] The refrigeration module is used to control the compressor, the condenser, the throttling device, and the evaporator using the electrical energy stored in the power storage module if the demand information is refrigeration demand information, and to adjust the temperature using the temperature control module to meet the user's refrigeration needs.
[0031] Optionally, the turbine module is used to convert the thermal energy of the steam into the mechanical energy of the turbine rotor rotation;
[0032] The turbine module is also used to convert the mechanical energy into electrical energy.
[0033] Furthermore, to achieve the above objectives, the present invention also proposes a temperature regulation method based on geothermal energy, the method comprising the following steps:
[0034] Geothermal energy is extracted and processed to obtain geothermal energy that meets preset requirements;
[0035] The water vapor generated by the geothermal energy is stored, and when the water vapor storage exceeds the water vapor storage threshold, the excess water vapor is converted into water for storage to ensure the water supply for users.
[0036] The power supply is provided by the electrical energy generated by the turbine module, and when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold, the electrical energy exceeding the electrical energy storage threshold is stored.
[0037] Based on the electrical energy and water vapor, the temperature of the heating module or cooling module is controlled and adjusted according to the user's needs to meet the user's heating or cooling requirements.
[0038] This invention comprises a geothermal energy module that extracts and processes geothermal energy to obtain geothermal energy that meets preset requirements; a storage module that stores water vapor generated by geothermal energy and stores water vapor from the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply; an energy storage and power supply module that uses the electrical energy generated by the turbine module to supply power, and that stores the excess electrical energy when the electrical energy storage capacity of the turbine module exceeds the electrical energy storage threshold; and a temperature control module that, based on electrical energy and water vapor, adjusts the temperature of the heating or cooling module according to the user's needs to meet the user's heating or cooling requirements. Because this invention utilizes a storage module to preserve the water vapor generated by geothermal energy, storing the hot water source and water vapor exceeding the water vapor storage threshold as reserve water resources, and uses an energy storage module to supply and store electricity, and finally, a temperature control module adjusts the temperature of the heating or cooling module based on the electrical energy and water vapor, according to the user's needs, to meet the user's heating or cooling requirements, compared with the prior art, this invention not only improves the utilization rate of geothermal resources, but also enhances the user experience. Attached Figure Description
[0039] Figure 1 This is a structural block diagram of the first embodiment of the temperature regulation system based on geothermal energy of the present invention;
[0040] Figure 2 This is a structural block diagram of a second embodiment of the geothermal energy-based temperature regulation system of the present invention;
[0041] Figure 3 This is a structural block diagram of the third embodiment of the temperature regulation system based on geothermal energy of the present invention;
[0042] Figure 4 This is a schematic flowchart of the first embodiment of the temperature regulation method based on geothermal energy of the present invention.
[0043] Explanation of icon numbers:
[0044]
[0045] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0046] It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of the invention.
[0047] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0048] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.
[0049] Furthermore, the use of terms such as "first" and "second" in this invention is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this invention.
[0050] Reference Figure 1 , Figure 1 This is a structural block diagram of the first embodiment of the temperature regulation system based on geothermal energy of the present invention.
[0051] like Figure 1 As shown, the geothermal energy-based temperature control system includes: a geothermal energy module 100, a storage module 200, a steam turbine module 300, an energy storage power supply module 400, a temperature control module 500, a refrigeration module 600, and a heating module 700.
[0052] It should be noted that the system provided in this embodiment can be applied in scenarios where temperature regulation is based on geothermal energy, or in other scenarios where geothermal energy needs to be extracted and used for heating or cooling. This embodiment and the following embodiments will be specifically described using the aforementioned geothermal energy-based temperature regulation system (hereinafter referred to as the system).
[0053] In this embodiment, the geothermal energy module 100 is used to extract geothermal energy and process the geothermal energy to obtain geothermal energy that meets preset requirements.
[0054] It should be understood that geothermal energy is natural heat extracted from the Earth's crust. This energy mainly comes from the magma inside the Earth and exists in the form of heat. The temperature inside the Earth can reach 7,000°C, while at a depth of 80 to 100 kilometers, the temperature drops to 650 to 1,200°C. Geothermal energy is the energy that causes volcanic eruptions and earthquakes.
[0055] Understandably, geothermal energy utilization is mainly divided into two categories: geothermal power generation and direct utilization. Geothermal power generation: This involves using underground hot water and steam as a power source to convert geothermal energy into mechanical energy, and then into electrical energy. Direct utilization: Direct utilization of geothermal energy includes hot spring bathing, medical treatment, underground hot water heating, building agricultural greenhouses, aquaculture, and grain drying. This method of utilization has lower technical requirements and requires relatively simple equipment.
[0056] However, due to the complex underground geological structure of geothermal wells, there are many factors affecting the temperature and volume of geothermal water, resulting in numerous uncertainties during the production process. Therefore, geothermal energy can be processed to obtain geothermal energy that meets the preset requirements.
[0057] It should be noted that the above-mentioned preset requirements can be customized by geothermal developers to ensure that geothermal energy reaches a usable range, and this embodiment does not impose any restrictions on this.
[0058] The storage module 200 is used to store the water vapor generated by the geothermal energy, and to store the water source for heat exchange and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the water supply for users.
[0059] It should be noted that, in order to improve the utilization rate of geothermal resources, storing the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources can effectively guarantee the supply of cold and hot water to users.
[0060] It should be noted that the stored water vapor can be used when geothermal energy supply is insufficient, effectively improving the user experience.
[0061] It is understood that the aforementioned water vapor storage threshold can be user-defined, and this embodiment does not impose any restrictions on it.
[0062] The energy storage power supply module 400 is used to supply power using the electrical energy generated by the turbine module 300, and to store the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage capacity of the turbine module exceeds the electrical energy storage threshold.
[0063] It should be explained that the aforementioned turbine module 300 is used to convert the thermal energy of the steam into the mechanical energy of the turbine rotor rotation; and then convert the mechanical energy into electrical energy.
[0064] It should be noted that the aforementioned energy storage threshold can be set by the user, and this embodiment does not impose any restrictions on it.
[0065] Understandably, when insufficient local heating leads to power shortages, excess stored electrical energy can be put into use, effectively improving the user experience.
[0066] The temperature control module 500 is used to adjust the temperature of the heating module 700 or the cooling module 600 based on the electrical energy and the water vapor, according to the user's needs, so as to meet the user's heating or cooling needs.
[0067] It should be noted that the heating module 700 is used to adjust the temperature using the water vapor in the storage module and the temperature control module 500 if the demand information is heating demand information, so as to meet the user's heating demand.
[0068] The heating module 700 is also used to, if the demand information is heating demand information, utilize the electrical energy stored in the power storage module 400 and the temperature control module 500 to perform temperature control adjustment in order to meet the user's heating demand.
[0069] The refrigeration module 600 includes a compressor, a condenser, a throttling device, and an evaporator. If the demand information is a refrigeration demand, the refrigeration module is used to control the compressor, the condenser, the throttling device, and the evaporator using the electrical energy stored in the power storage module 400, and to adjust the temperature using the temperature control module 500 to meet the user's refrigeration needs.
[0070] In this embodiment, the geothermal energy module 100 extracts and processes geothermal energy to obtain geothermal energy that meets preset requirements; the storage module 200 stores the water vapor generated by the geothermal energy, and stores the hot water source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply; the power supply module 400 uses the electrical energy generated by the turbine module 300 to supply power, and stores the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold; the temperature control module 500, based on electrical energy and water vapor, adjusts the temperature of the heating module 700 or the cooling module 600 according to the user's demand information to meet the user's heating or cooling needs. This embodiment utilizes a storage module to preserve the water vapor generated by geothermal energy, storing the hot water source and water vapor exceeding the storage threshold as reserve water resources. An energy storage module provides power and energy storage. Finally, a temperature control module, based on the electrical energy and water vapor, adjusts the temperature of the heating or cooling module according to the user's needs to meet those needs. Compared to existing technologies, this embodiment not only improves the utilization rate of geothermal resources but also enhances the user experience.
[0071] Reference Figure 2 , Figure 2 This is a structural block diagram of the second embodiment of the temperature regulation system based on geothermal energy of the present invention.
[0072] Furthermore, the system described in this embodiment also includes a monitoring module 900, which includes a device information monitoring submodule 901 and a user information monitoring submodule 902.
[0073] In this embodiment, the device information monitoring submodule 901 is used to monitor the device status inside all modules in the system to ensure that the status of each device is controllable and to issue an early warning when the device status is abnormal.
[0074] It should be understood that if the equipment is operating normally, it indicates that the equipment is in a controllable state; if the equipment is in an abnormal state, it indicates that the equipment is in an uncontrollable state, and an alert will be issued. The alert can be sent to system users via social media platforms, SMS messages, etc., reminding them to take appropriate safety measures.
[0075] In this embodiment, the user information monitoring submodule 902 is used to monitor the user's needs and expenses, and adjust the user's needs information according to the user's geographical location and the user's needs and expenses.
[0076] It should be understood that the aforementioned user's geographical location can be the user's specific location information, and the local climate and environmental characteristics can be determined based on this specific location information. The user's required expenditure can be calculated by acquiring and analyzing the user's historical expenditure information.
[0077] Furthermore, in order to ensure stable operation of the system, optimize performance, and improve security, the system in this embodiment also includes a control center module 800, which is connected to the monitoring module 900 and the geothermal energy module 100.
[0078] The control center module 800 is used to acquire the monitoring information of the monitoring module 900 and control all modules in the system according to the monitoring information.
[0079] The control center module 800 is also used to acquire geothermal energy processing requirements and control the geothermal energy module 100 according to the geothermal energy processing requirements.
[0080] Furthermore, in order to provide users with more reliable and efficient services, the system in this embodiment also includes a user module 102 and a control requirement module 103.
[0081] The user module 102 is used to upload the user's demand information to the control demand module 103, and the demand information includes heating demand information or cooling demand information.
[0082] The control demand module 103 is used to collect the demand information and send the demand information to the control center module 800, so that the control center module generates control commands based on the demand information;
[0083] Accordingly, the temperature control module 500 is also used to acquire the control command and adjust the temperature of the heating module 700 or the cooling module 600 based on the electrical energy and the water vapor, so as to meet the user's heating or cooling needs.
[0084] Furthermore, in order to improve the safety of the system and to monitor the heating and cooling supply in real time, the system in this embodiment also includes a pipeline delivery module 101.
[0085] The pipeline transportation module 101 is used to lay and transport pipelines according to the requirements of the user module 102, and to monitor the transportation status of the pipeline in real time to obtain pipeline monitoring information.
[0086] The pipeline delivery module 101 is also used to send the pipeline monitoring information to the monitoring module 900.
[0087] The geothermal energy-based temperature regulation system described in this embodiment further includes a monitoring module 900, a control center module 800, a user module 102, a control demand module 103, and a pipeline transportation module 101. The monitoring module includes an equipment information monitoring submodule and a user information monitoring submodule. The equipment information monitoring submodule monitors the equipment status within all modules of the system and issues an early warning when the equipment status is abnormal. The user information monitoring submodule monitors user demand and adjusts user demand information based on the user's geographical location and demand. The control center module controls all modules in the system. The user module uploads user demand information to the control demand module. The control demand module collects demand information and sends it to the control center module so that the control center module can generate control commands based on the demand information. The pipeline transportation module lays and transports pipelines according to the demand information from the user modules, monitors the pipeline transportation status in real time, obtains pipeline monitoring information, and sends the pipeline monitoring information to the monitoring module. Because this embodiment monitors the equipment status and user demand within all modules of the system through a monitoring module, controls all modules in the system through a control center module, and lays and transports pipelines according to the user module's demand information through a pipeline delivery module, and monitors the pipeline transportation status in real time, this embodiment ensures stable system operation and improves system security compared to existing technologies.
[0088] Reference Figure 3 , Figure 3 This is a structural block diagram of the third embodiment of the temperature regulation system based on geothermal energy of the present invention.
[0089] Furthermore, in this embodiment, the storage module 200 includes a heating storage submodule 201 and a water source storage submodule 202.
[0090] The heating storage submodule 201 is used to store the water vapor generated by the geothermal energy.
[0091] The water storage submodule 202 is used to store the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply.
[0092] It should be noted that this embodiment implements modular storage of water vapor and water resources. This allows the system to intelligently adjust the operating status of each module according to actual needs. For example, when less water vapor is required, the system can activate only some modules, achieving on-demand energy supply and avoiding energy waste. Furthermore, since each module operates under actual demand load when activated, it maintains a highly efficient and energy-saving operating state.
[0093] Furthermore, modular storage of steam and water resources allows for flexible layout and installation near the user's location, based on varying user needs. This significantly reduces heat loss during steam pipeline transmission and lowers pipeline investment and maintenance costs.
[0094] In this embodiment, the geothermal energy module 100 extracts and processes geothermal energy to obtain geothermal energy that meets preset requirements. The storage module 200 includes a heating storage submodule 201 and a water storage submodule 202. The heating storage submodule 201 is used to store water vapor generated by geothermal energy. The water storage submodule 202 is used to store the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply. The power supply module 400 uses the electrical energy generated by the turbine module 300 to supply power, and stores the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold. The temperature control module 500 adjusts the temperature of the heating module 700 or the cooling module 600 based on electrical energy and water vapor, according to the user's demand information, to meet the user's heating or cooling needs. Because this embodiment stores the water vapor generated by geothermal energy through the heating storage submodule and stores the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources through the water source storage submodule, it realizes the modular storage of water vapor and water resources, which not only avoids energy waste, but also helps to save heat loss during steam pipeline transmission and pipeline investment and maintenance costs.
[0095] In addition, refer to Figure 4 , Figure 4 This is a schematic flowchart of the first embodiment of the temperature regulation method based on geothermal energy of the present invention. The temperature regulation method based on geothermal energy includes the following steps:
[0096] Step S10: Extract geothermal energy and process the geothermal energy to obtain geothermal energy that meets preset requirements.
[0097] Step S20: Store the water vapor generated by the geothermal energy, and store the water source for heat exchange and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the water supply for users.
[0098] Step S30: Use the electrical energy generated by the turbine module to supply power, and when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold, store the electrical energy exceeding the electrical energy storage threshold.
[0099] Step S40: Based on the electrical energy and the water vapor, adjust the temperature of the heating module or cooling module according to the user's needs to meet the user's heating or cooling requirements.
[0100] This method discloses a process for extracting and processing geothermal energy to obtain geothermal energy that meets preset requirements; storing the water vapor generated by the geothermal energy, and storing the hot water source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply; using the electrical energy generated by the turbine module for power supply, and storing the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold; and based on the electrical energy and the water vapor, adjusting the temperature of the heating module or cooling module according to the user's demand information to meet the user's heating or cooling needs. Since this embodiment preserves the water vapor generated by geothermal energy, it stores the hot water source and water vapor exceeding the water vapor storage threshold as reserve water resources, and uses a steam turbine module for power supply and energy storage. Finally, based on the electrical energy and water vapor, the temperature of the heating module or cooling module is controlled and adjusted according to the user's demand information to meet the user's heating or cooling needs. Compared with the prior art, this method embodiment not only improves the utilization rate of geothermal resources, but also improves the user experience.
[0101] Other embodiments or specific implementations of the temperature regulation method based on geothermal energy of the present invention can be referred to the above system embodiments, and will not be repeated here.
[0102] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or system that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or system. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or system that includes that element.
[0103] The sequence numbers of the above embodiments of the present invention are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.
[0104] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as read-only memory / random access memory, magnetic disk, optical disk) and includes several instructions to cause a terminal device (which may be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in the various embodiments of the present invention.
[0105] The above are merely preferred embodiments of the present invention and do not limit the scope of the patent. Any equivalent structural or procedural transformations made based on the description and drawings of the present invention, or direct or indirect applications in other related technical fields, are similarly included within the scope of patent protection of the present invention.
Claims
1. A temperature control system based on geothermal energy, characterized in that, The system includes a geothermal energy module, a steam turbine module, a storage module, an energy storage power supply module, a temperature control module, a heating module, and a cooling module; The geothermal energy module is used to extract geothermal energy and process the geothermal energy to obtain geothermal energy that meets preset requirements. The storage module is used to store the water vapor generated by the geothermal energy, and to store the water exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply. The energy storage power supply module is used to supply power using the electrical energy generated by the turbine module, and to store the electrical energy exceeding the electrical energy storage threshold when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold. The temperature control module is used to adjust the temperature of the heating module or the cooling module based on the electrical energy and the water vapor, according to the user's needs, so as to meet the user's heating or cooling needs. The storage module includes a heating storage submodule and a water source storage submodule; The heating storage submodule is used to store the water vapor generated by the geothermal energy; The water storage submodule is used to store the heat exchange source and water vapor exceeding the water vapor storage threshold as reserve water resources to ensure the user's water supply.
2. The temperature control system based on geothermal energy as described in claim 1, characterized in that, The system also includes a monitoring module, which comprises a device information monitoring submodule and a user information monitoring submodule. The device information monitoring submodule is used to monitor the device status within all modules of the system to ensure that the status of each device is controllable and to issue an early warning when the device status is abnormal. The user information monitoring submodule is used to monitor the user's needs and expenses, and adjust the user's needs information according to the user's geographical location and the user's needs and expenses.
3. The temperature control system based on geothermal energy as described in claim 2, characterized in that, The system also includes a control center module, which is connected to the monitoring module and the geothermal energy module. The control center module is used to acquire monitoring information from the monitoring module and control all modules in the system based on the monitoring information. The control center module is also used to acquire geothermal energy processing requirements and control the geothermal energy module according to the geothermal energy processing requirements.
4. The temperature regulation system based on geothermal energy as described in claim 3, characterized in that, The system also includes a user module and a control requirements module; The user module is used to upload the user's demand information to the control demand module, and the demand information includes heating demand information or cooling demand information. The control demand module is used to collect the demand information and send the demand information to the control center module, so that the control center module generates control commands based on the demand information; Accordingly, The temperature control module is also used to acquire the control command and adjust the temperature of the heating module or the cooling module based on the electrical energy and the water vapor to meet the user's heating or cooling needs.
5. The geothermal energy-based temperature control system as described in claim 4, characterized in that, The system also includes a pipeline delivery module; The pipeline transportation module is used to lay and transport pipelines according to the requirements of the user module, and to monitor the transportation status of the pipelines in real time to obtain pipeline monitoring information. The pipeline delivery module is also used to send the pipeline monitoring information to the monitoring module.
6. The temperature control system based on geothermal energy as described in claim 4, characterized in that, The heating module is used to adjust the temperature using water vapor in the storage module and the temperature control module if the demand information is heating demand information, so as to meet the user's heating demand. The heating module is also used to adjust the temperature using the electrical energy stored in the power storage module and the temperature control module if the demand information is heating demand information, so as to meet the user's heating demand.
7. The temperature control system based on geothermal energy as described in claim 4, characterized in that, The refrigeration module includes a compressor, a condenser, a throttling component, and an evaporator; The refrigeration module is used to control the compressor, the condenser, the throttling device, and the evaporator using the electrical energy stored in the power storage module if the demand information is refrigeration demand information, and to adjust the temperature using the temperature control module to meet the user's refrigeration needs.
8. The temperature control system based on geothermal energy as described in claim 1, characterized in that, The turbine module is used to convert the thermal energy of the steam into the mechanical energy of the turbine rotor rotation; The turbine module is also used to convert the mechanical energy into electrical energy.
9. A geothermal energy-based temperature regulation method using the geothermal energy-based temperature regulation system as described in claim 1, characterized in that, The method includes the following steps: Geothermal energy is extracted and processed to obtain geothermal energy that meets preset requirements; The water vapor generated by the geothermal energy is stored, and the water vapor from the heat exchange source and the water vapor exceeding the water vapor storage threshold are stored as reserve water resources to ensure the water supply for users. The power supply is provided by the electrical energy generated by the turbine module, and when the electrical energy storage of the turbine module exceeds the electrical energy storage threshold, the electrical energy exceeding the electrical energy storage threshold is stored. Based on the electrical energy and water vapor, the temperature of the heating module or cooling module is controlled and adjusted according to the user's needs to meet the user's heating or cooling requirements.
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