Multifunctional emergency guarantee vehicle of integrated water supply and heat supply system
By integrating water and heating systems into a multi-functional emergency support vehicle, the problem of single-function emergency vehicles has been solved. It enables automatic adjustment of water supply pressure and temperature, improving emergency response efficiency and user experience.
Patent Information
- Application Number
- CN202510906723.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-02
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2045-07-02
AI Technical Summary
Existing emergency response vehicles have limited functionality and cannot simultaneously meet the needs for clean water and suitable heat sources in emergency situations, resulting in low rescue efficiency.
Design a multi-functional emergency support vehicle integrating water and heating systems, including water supply equipment, heating equipment, and intelligent control devices. Through data acquisition and judgment adjustment units, it automatically adjusts the water supply pressure and temperature to meet the needs of different emergency scenarios.
It improves the efficiency and comfort of emergency response, ensures water supply stability and temperature suitability, simplifies operation, and enhances the user experience.
Smart Images

Figure CN120735696B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of emergency support vehicle technology, and more specifically, to a multi-functional emergency support vehicle integrating a water supply and heating system. Background Technology
[0002] Existing emergency support vehicle technologies typically only provide water or heating, failing to meet the complex and ever-changing emergency needs. Especially in natural disasters, emergencies, or emergency rescue scenarios, it is often necessary to simultaneously provide clean water and a heat source at a suitable temperature to support rescue operations and provide essential living support. However, traditional emergency support vehicles, due to their limited functionality, often cannot meet these needs simultaneously, leading to low rescue efficiency and uneven resource allocation.
[0003] Therefore, it is necessary to design a multi-functional emergency support vehicle that integrates water and heating systems to solve the problems existing in the current technology. Summary of the Invention
[0004] In view of this, the present invention proposes a multi-functional emergency support vehicle integrating water supply and heating systems, which aims to address the problem that existing emergency support vehicles have limited functions and cannot meet complex emergency needs.
[0005] This invention proposes a multi-functional emergency support vehicle integrating a water supply and heating system, comprising:
[0006] Emergency support vehicle body and water and heating supply control device;
[0007] The emergency support vehicle includes a body, a water supply device, a heating device, and several shower heads. The water supply device and the heating device are both located inside the body and are connected to the shower heads.
[0008] The water supply and heating control device is installed inside the carriage body and is connected to the water supply equipment and the heating equipment.
[0009] Furthermore, the water supply equipment includes a water tank, a water pump, and a filter; the water tank is used to store water, the water pump is used to draw water from the water tank and deliver it to the shower head, and the filter is disposed between the water pump and the shower head to filter out impurities in the water.
[0010] Furthermore, the heating equipment includes a heat exchanger, a heating element, and a temperature sensor; the heat exchanger is used to convert a heat source into heat energy and deliver it to the shower head, the heating element is used to provide a heat source, and the temperature sensor is disposed between the heat exchanger and the shower head to monitor the temperature of the heat energy in real time.
[0011] Furthermore, the water supply and heating control device includes a data acquisition unit and a judgment and adjustment unit;
[0012] The acquisition unit is configured to acquire the height difference between the water tank and the shower head and the number of shower heads used, and to determine the initial water supply pressure of the water supply equipment and the initial water supply temperature of the heating equipment based on the height difference and the number of shower heads used.
[0013] The judgment and adjustment unit is configured to collect the actual water pressure and actual water temperature corresponding to each shower head, judge and adjust the initial water supply pressure based on the actual water pressure, judge and adjust the initial water supply temperature based on the actual water temperature, and obtain the adjusted water supply pressure and water supply temperature.
[0014] Further, when determining the initial water supply pressure of the water supply equipment and the initial water supply temperature of the heating equipment based on the height difference and the quantity used, the following steps are included:
[0015] A water supply vector group is constructed based on the height difference and the number of uses. The water supply vector group is compared with historical data, and the initial water supply pressure and initial water supply temperature are determined based on the comparison results.
[0016] When there is a historical water supply vector group in the historical data that is the same as the water supply vector group, the historical water supply pressure and historical water supply temperature corresponding to the historical water supply vector group are respectively used as the initial water supply pressure and initial water supply temperature.
[0017] When there is no historical water supply vector group in the historical data that is the same as the water supply vector group, the similarity between the water supply vector group and each of the historical water supply vector groups is calculated one by one, and the maximum similarity is extracted. The initial water supply pressure and the initial water supply temperature are determined based on the maximum similarity.
[0018] Further, when determining the initial water supply pressure and initial water supply temperature based on the maximum similarity, the process includes:
[0019] When the maximum similarity is unique, the historical water supply vector group corresponding to the maximum similarity is determined, and the historical water supply pressure and historical water supply temperature corresponding to the historical water supply vector group are respectively used as the initial water supply pressure and initial water supply temperature.
[0020] When the maximum similarity is not unique, all historical water supply vector groups corresponding to the maximum similarity are determined, and the average historical water supply pressure and historical water supply temperature of all historical water supply vector groups corresponding to the maximum similarity are calculated. The average values are used as the initial water supply pressure and initial water supply temperature, respectively.
[0021] Furthermore, when determining and adjusting the initial water supply pressure based on the actual outlet water pressure, the following steps are included:
[0022] The water pressure error is calculated based on the initial water supply pressure and the actual water outlet pressure. The water pressure error is compared with the water pressure error threshold. Based on the comparison result, it is determined whether to adjust the initial water supply pressure.
[0023] When the outlet water pressure error is greater than the outlet water pressure error threshold, it is determined that the initial water supply pressure should be adjusted.
[0024] Otherwise, it is determined that the initial water supply pressure will not be adjusted.
[0025] Furthermore, when determining and adjusting the initial water supply pressure based on the actual outlet water pressure, the method further includes:
[0026] When it is determined that the initial water supply pressure needs to be adjusted, the actual load data of the water supply equipment is collected, and the actual load data is analyzed to obtain real-time load characteristic values.
[0027] Calculate the pressure influence factor based on the outlet pressure error and real-time load characteristic value;
[0028] The pressure influence factor is compared with the first pressure influence factor and the second pressure influence factor, and the pressure adjustment coefficient of the initial water supply pressure is determined based on the comparison result; wherein, the first pressure influence factor is smaller than the second pressure influence factor.
[0029] When the pressure influence factor is less than or equal to the first pressure influence factor, the pressure adjustment coefficient is determined to be the first pressure adjustment coefficient;
[0030] When the pressure influence factor is greater than the first pressure influence factor and less than or equal to the second pressure influence factor, the pressure adjustment coefficient is determined to be the second pressure adjustment coefficient.
[0031] When the pressure influence factor is greater than the second pressure influence factor, the pressure adjustment coefficient is determined to be the third pressure adjustment coefficient;
[0032] The initial water supply pressure is adjusted according to the pressure adjustment coefficient to obtain the adjusted water supply pressure.
[0033] Furthermore, when determining and adjusting the initial water supply temperature based on the actual outlet water temperature, the following steps are included:
[0034] The outlet water temperature error is calculated based on the initial water supply temperature and the actual outlet water temperature. The outlet water temperature error is compared with the outlet water temperature error threshold. Based on the comparison result, it is determined whether the initial water supply temperature should be adjusted.
[0035] When the outlet water temperature error is greater than the outlet water temperature error threshold, it is determined that the initial water supply temperature should be adjusted.
[0036] Otherwise, it is determined that the initial water supply temperature will not be adjusted.
[0037] Furthermore, when it is determined that the initial water supply temperature needs to be adjusted, the actual operating power of the heating equipment is collected, and the heating efficiency is calculated based on the actual operating power.
[0038] Calculate the temperature influence factor based on the outlet water temperature error and heating efficiency;
[0039] The temperature influence factor is compared with the first temperature influence factor and the second temperature influence factor, and the temperature adjustment coefficient of the initial water supply temperature is determined based on the comparison result; wherein, the first temperature influence factor is smaller than the second temperature influence factor.
[0040] When the temperature influence factor is less than or equal to the first temperature influence factor, the temperature adjustment coefficient is determined to be the first temperature adjustment coefficient.
[0041] When the temperature influence factor is greater than the first temperature influence factor and less than or equal to the second temperature influence factor, the temperature adjustment coefficient is determined to be the second temperature adjustment coefficient.
[0042] When the temperature influence factor is greater than the second temperature influence factor, the temperature adjustment coefficient is determined to be the third temperature adjustment coefficient;
[0043] The initial water supply temperature is adjusted according to the temperature adjustment coefficient to obtain the adjusted water supply temperature.
[0044] Compared with existing technologies, the advantages of this invention are as follows: The multi-functional emergency support vehicle with integrated water and heating system provided by this invention can automatically adjust the water supply pressure and temperature according to actual usage to meet the needs of different emergency scenarios. Through the integrated water and heating system, this emergency support vehicle not only provides bathing functionality in emergencies but also ensures the stability of the water supply and the suitability of the temperature, greatly improving the efficiency and comfort of emergency response. Furthermore, its intelligent control system makes operation simpler, reduces the tediousness of manual adjustments, and enhances the overall user experience. Attached Figure Description
[0045] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the invention. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings:
[0046] Figure 1 This is a structural block diagram of the water supply and heating control device of a multi-functional emergency support vehicle with an integrated water supply and heating system provided in an embodiment of the present invention. Detailed Implementation
[0047] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the disclosure to those skilled in the art. It should be noted that, unless otherwise specified, embodiments and features in the embodiments of the present invention can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0048] See Figure 1 As shown in some embodiments of this application, this embodiment provides a multi-functional emergency support vehicle integrating a water supply and heating system, including:
[0049] Emergency support vehicle body and water and heating supply control device;
[0050] The emergency support vehicle includes a body, a water supply device, a heating device, and several shower heads. The water supply device and the heating device are both located inside the body and are connected to the shower heads.
[0051] The water supply and heating control device is installed inside the carriage body and is connected to the water supply equipment and the heating equipment.
[0052] It is understood that the multi-functional emergency support vehicle with integrated water and heating system provided in this embodiment can automatically adjust the water supply pressure and temperature according to actual usage to meet the needs of different emergency scenarios. Through the integrated water and heating system, this emergency support vehicle not only provides bathing functionality in emergencies but also ensures the stability of the water supply and the suitability of the temperature, greatly improving the efficiency and comfort of emergency response. Furthermore, its intelligent control system makes operation simpler, reduces the tediousness of manual adjustments, and enhances the overall user experience.
[0053] Specifically, the water supply equipment includes a water tank, a water pump, and a filter; the water tank is used to store water, the water pump is used to draw water from the water tank and deliver it to the shower head, and the filter is disposed between the water pump and the shower head to filter out impurities in the water.
[0054] Understandably, by installing a filter, impurities in the water source can be effectively prevented from clogging the shower head, ensuring smooth water supply and normal operation of the shower head. Meanwhile, the heating equipment includes a heater and a temperature control device. The heater heats the water source, and the temperature control device monitors and adjusts the heater's temperature to ensure a suitable water temperature. This allows the emergency response vehicle to provide a comfortable bathing experience under various climatic conditions.
[0055] Specifically, the heating equipment includes a heat exchanger, a heating element, and a temperature sensor; the heat exchanger is used to convert a heat source into heat energy and deliver it to the shower head, the heating element is used to provide the heat source, and the temperature sensor is located between the heat exchanger and the shower head to monitor the temperature of the heat energy in real time.
[0056] Understandably, by installing temperature sensors, the temperature of the heat energy can be monitored in real time, ensuring that the water supply temperature remains within a suitable range and avoiding discomfort to users caused by excessively high or low water temperatures. Simultaneously, the combined use of the heat exchanger and heating element not only improves heat conversion efficiency but also ensures the stability and durability of the heating equipment. This allows the emergency response vehicle to maintain stable heating performance even during extended use, providing users with a continuous and comfortable bathing experience.
[0057] Specifically, the water supply and heating control device includes a data acquisition unit and a judgment and adjustment unit;
[0058] The acquisition unit is configured to acquire the height difference between the water tank and the shower head and the number of shower heads used, and to determine the initial water supply pressure of the water supply equipment and the initial water supply temperature of the heating equipment based on the height difference and the number of shower heads used.
[0059] The judgment and adjustment unit is configured to collect the actual water pressure and actual water temperature corresponding to each shower head, judge and adjust the initial water supply pressure based on the actual water pressure, judge and adjust the initial water supply temperature based on the actual water temperature, and obtain the adjusted water supply pressure and water supply temperature.
[0060] Understandably, through the intelligent adjustment of the water supply and heating control device, the emergency support vehicle in this embodiment can automatically optimize the water supply pressure and temperature based on actual usage conditions, such as the height and number of shower heads, as well as the actual water pressure and temperature of each shower head. This intelligent adaptive adjustment mechanism not only improves the efficiency of water resource utilization but also ensures that users can enjoy a stable and comfortable bathing experience in different emergency scenarios. Furthermore, the control device also has a fault self-diagnosis function, which can promptly detect and report potential problems in the water supply and heating system, greatly reducing maintenance costs and the failure rate.
[0061] Specifically, determining the initial water supply pressure of the water supply equipment and the initial water supply temperature of the heating equipment based on the height difference and the number of units used includes:
[0062] A water supply vector group is constructed based on the height difference and the number of uses. The water supply vector group is compared with historical data, and the initial water supply pressure and initial water supply temperature are determined based on the comparison results.
[0063] When there is a historical water supply vector group in the historical data that is the same as the water supply vector group, the historical water supply pressure and historical water supply temperature corresponding to the historical water supply vector group are respectively used as the initial water supply pressure and initial water supply temperature.
[0064] When there is no historical water supply vector group in the historical data that is the same as the water supply vector group, the similarity between the water supply vector group and each of the historical water supply vector groups is calculated one by one, and the maximum similarity is extracted. The initial water supply pressure and the initial water supply temperature are determined based on the maximum similarity.
[0065] Understandably, by constructing a water supply vector group and comparing it with historical data, the emergency support vehicle in this embodiment can more accurately determine the initial water supply pressure and temperature. When a historical record identical to the current water supply vector group exists in the historical data, the water supply pressure and temperature from the historical data are directly adopted. This not only improves adjustment efficiency but also ensures the accuracy and reliability of the water supply parameters. When no completely matching historical record exists in the historical data, the initial water supply pressure and temperature are determined by calculating the similarity and extracting the maximum similarity. This method can, to some extent, compensate for the deficiencies of historical data, providing initial parameters that are closer to reality and providing strong support for subsequent judgment and adjustment. This intelligent parameter determination mechanism enables the emergency support vehicle to quickly adapt to different emergency scenarios and provide stable water and heating services, greatly improving the efficiency of emergency response and user satisfaction.
[0066] Specifically, determining the initial water supply pressure and initial water supply temperature based on the maximum similarity includes:
[0067] When the maximum similarity is unique, the historical water supply vector group corresponding to the maximum similarity is determined, and the historical water supply pressure and historical water supply temperature corresponding to the historical water supply vector group are respectively used as the initial water supply pressure and initial water supply temperature.
[0068] When the maximum similarity is not unique, all historical water supply vector groups corresponding to the maximum similarity are determined, and the average historical water supply pressure and historical water supply temperature of all historical water supply vector groups corresponding to the maximum similarity are calculated. The average values are used as the initial water supply pressure and initial water supply temperature, respectively.
[0069] In this embodiment, the similarity is calculated based on the height difference in the water supply vector group, the number of uses, and the corresponding records in the historical data.
[0070] Understandably, similarity calculation methods can employ cosine similarity, Euclidean distance, or other suitable metrics to ensure the accuracy and reliability of the results. When the maximum similarity is unique, meaning there exists a historical record closest to the current water supply vector group, the water pressure and temperature from that historical record are directly used as initial parameters. This maximizes the accuracy and adaptability of the water supply parameters. However, when the maximum similarity is not unique, meaning there are multiple water supply vector groups with high similarity to historical records, the average of the historical water pressure and temperature from these historical water supply vector groups is calculated to obtain more stable and reliable initial water supply pressure and temperature.
[0071] Specifically, determining and adjusting the initial water supply pressure based on the actual water outlet pressure includes:
[0072] The water pressure error is calculated based on the initial water supply pressure and the actual water outlet pressure. The water pressure error is compared with the water pressure error threshold. Based on the comparison result, it is determined whether to adjust the initial water supply pressure.
[0073] When the outlet water pressure error is greater than the outlet water pressure error threshold, it is determined that the initial water supply pressure should be adjusted.
[0074] Otherwise, it is determined that the initial water supply pressure will not be adjusted.
[0075] Understandably, by monitoring the outlet water pressure in real time and comparing it with the initial supply water pressure, the outlet water pressure error is calculated, and a reasonable outlet water pressure error threshold is set. When the outlet water pressure error exceeds the threshold, it indicates that there is a significant deviation between the actual outlet water pressure and the expected pressure. At this point, the initial supply water pressure needs to be adjusted accordingly to ensure the stability of the water supply and the user experience. This error-based adjustment mechanism can promptly detect and correct deviations in the water supply process, making the water supply service of emergency response vehicles more accurate and reliable.
[0076] Specifically, when determining and adjusting the initial water supply pressure based on the actual water outlet pressure, the method further includes:
[0077] When it is determined that the initial water supply pressure needs to be adjusted, the actual load data of the water supply equipment is collected, and the actual load data is analyzed to obtain real-time load characteristic values.
[0078] Calculate the pressure influence factor based on the outlet pressure error and real-time load characteristic value;
[0079] The pressure influence factor is compared with the first pressure influence factor and the second pressure influence factor, and the pressure adjustment coefficient of the initial water supply pressure is determined based on the comparison result; wherein, the first pressure influence factor is smaller than the second pressure influence factor.
[0080] When the pressure influence factor is less than or equal to the first pressure influence factor, the pressure adjustment coefficient is determined to be the first pressure adjustment coefficient;
[0081] When the pressure influence factor is greater than the first pressure influence factor and less than or equal to the second pressure influence factor, the pressure adjustment coefficient is determined to be the second pressure adjustment coefficient.
[0082] When the pressure influence factor is greater than the second pressure influence factor, the pressure adjustment coefficient is determined to be the third pressure adjustment coefficient;
[0083] The initial water supply pressure is adjusted according to the pressure adjustment coefficient to obtain the adjusted water supply pressure.
[0084] In this embodiment, the pressure influence factor is obtained by normalizing the outlet pressure error and the real-time load characteristic value, and then performing a weighted summation.
[0085] It is understood that the first pressure adjustment coefficient is preferably between 0.9 and 1.1, the second pressure adjustment coefficient is preferably between 0.7 and 0.9, and the third pressure adjustment coefficient is preferably between 0.5 and 0.7. Of course, the specific range of these adjustment coefficients can be adjusted according to actual needs to ensure that the adjusted water supply pressure can meet the needs of different emergency scenarios.
[0086] Specifically, determining and adjusting the initial water supply temperature based on the actual outlet water temperature includes:
[0087] The outlet water temperature error is calculated based on the initial water supply temperature and the actual outlet water temperature. The outlet water temperature error is compared with the outlet water temperature error threshold. Based on the comparison result, it is determined whether the initial water supply temperature should be adjusted.
[0088] When the outlet water temperature error is greater than the outlet water temperature error threshold, it is determined that the initial water supply temperature should be adjusted.
[0089] Otherwise, it is determined that the initial water supply temperature will not be adjusted.
[0090] Understandably, by monitoring the outlet water temperature in real time and comparing it with the initial supply water temperature, the outlet water temperature error is calculated, and a reasonable outlet water temperature error threshold is set. When the outlet water temperature error exceeds the threshold, it indicates that the actual outlet water temperature deviates significantly from the expected temperature. At this point, the initial supply water temperature needs to be adjusted accordingly to ensure the suitability of the water supply and the user experience. This error-based adjustment mechanism can promptly detect and correct deviations in the heating process, making the heating service provided by emergency support vehicles more accurate and reliable.
[0091] Specifically, when it is determined that the initial water supply temperature needs to be adjusted, the actual operating power of the heating equipment is collected, and the heating efficiency is calculated based on the actual operating power.
[0092] Calculate the temperature influence factor based on the outlet water temperature error and heating efficiency;
[0093] The temperature influence factor is compared with the first temperature influence factor and the second temperature influence factor, and the temperature adjustment coefficient of the initial water supply temperature is determined based on the comparison result; wherein, the first temperature influence factor is smaller than the second temperature influence factor.
[0094] When the temperature influence factor is less than or equal to the first temperature influence factor, the temperature adjustment coefficient is determined to be the first temperature adjustment coefficient.
[0095] When the temperature influence factor is greater than the first temperature influence factor and less than or equal to the second temperature influence factor, the temperature adjustment coefficient is determined to be the second temperature adjustment coefficient.
[0096] When the temperature influence factor is greater than the second temperature influence factor, the temperature adjustment coefficient is determined to be the third temperature adjustment coefficient;
[0097] The initial water supply temperature is adjusted according to the temperature adjustment coefficient to obtain the adjusted water supply temperature.
[0098] In this embodiment, the temperature influence factor is obtained by normalizing the outlet water temperature error and heating efficiency and then performing a weighted summation.
[0099] It is understood that the first temperature adjustment coefficient is preferably between 0.95 and 1.05, the second temperature adjustment coefficient is preferably between 0.85 and 0.95, and the third temperature adjustment coefficient is preferably between 0.75 and 0.85. The specific ranges of these adjustment coefficients can also be flexibly adjusted according to actual needs to ensure that the adjusted water supply temperature meets the user's comfort requirements while effectively saving energy.
[0100] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program goods. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program goods embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0101] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program goods according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart... Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0102] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0103] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0104] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that modifications or equivalent substitutions can still be made to the specific implementation of the present invention. Any modifications or equivalent substitutions that do not depart from the spirit and scope of the present invention should be covered within the scope of protection of the claims of the present invention.
Claims
1. A multifunctional emergency support vehicle of an integrated water supply and heat supply system, characterized in that The application relates to an emergency guarantee vehicle body and a water supply and heat supply control device. The emergency guarantee vehicle body comprises a vehicle cabin body, a water supply device, a heat supply device and a plurality of shower nozzles, the water supply device and the heat supply device are arranged in the interior of the vehicle cabin body, and the water supply device and the heat supply device are connected with the shower nozzles. The water supply and heat supply control device is arranged in the interior of the vehicle cabin body, and is connected with the water supply device and the heat supply device. The water supply device comprises a water tank, a water pump and a filter; the water tank is used for storing water sources; the water pump is used for pumping the water sources out of the water tank and conveying the water sources to the shower nozzles; and the filter is arranged between the water pump and the shower nozzles and is used for filtering impurities in the water sources. The heat supply device comprises a heat exchanger, a heating element and a temperature sensor; the heat exchanger is used for converting heat sources into heat energy and conveying the heat energy to the shower nozzles; the heating element is used for providing the heat sources; and the temperature sensor is arranged between the heat exchanger and the shower nozzles and is used for monitoring the temperature of the heat energy in real time. The water supply and heat supply control device comprises a collection unit and a judgment and adjustment unit. The collection unit is configured to collect a height difference value between the water tank and the shower nozzles and a use quantity of the shower nozzles, to determine an initial water supply pressure of the water supply device and an initial water supply temperature of the heat supply device according to the height difference value and the use quantity. The judgment and adjustment unit is configured to collect actual water outlet pressures and actual water outlet temperatures corresponding to each shower nozzle, to respectively judge and adjust the initial water supply pressure according to the actual water outlet pressures, to judge and adjust the initial water supply temperature according to the actual water outlet temperatures, and to obtain an adjusted water supply pressure and an adjusted water supply temperature. When the height difference value and the use quantity are used to determine the initial water supply pressure of the water supply device and the initial water supply temperature of the heat supply device, the following steps are included: A water supply vector group is constructed according to the height difference value and the use quantity, the water supply vector group is compared with historical data, and the initial water supply pressure and the initial water supply temperature are determined according to a comparison result. When there is a historical water supply vector group identical with the water supply vector group in the historical data, historical water supply pressures and historical water supply temperatures corresponding to the historical water supply vector group are respectively taken as the initial water supply pressure and the initial water supply temperature. When there is no historical water supply vector group identical with the water supply vector group in the historical data, the similarity of the water supply vector group and each historical water supply vector group is calculated one by one, the maximum similarity is extracted, and the initial water supply pressure and the initial water supply temperature are determined according to the maximum similarity. When the initial water supply pressure and the initial water supply temperature are determined according to the maximum similarity, the following steps are included:
2. The multifunctional emergency support vehicle of the integrated water supply and heat supply system according to claim 1, characterized in that When the maximum similarity is unique, a historical water supply vector group corresponding to the maximum similarity is determined, and historical water supply pressures and historical water supply temperatures corresponding to the historical water supply vector group are respectively taken as the initial water supply pressure and the initial water supply temperature. When the maximum similarity is not unique, all historical water supply vector groups corresponding to the maximum similarity are determined, and average values of historical water supply pressure and historical water supply temperature of the historical water supply vector groups corresponding to all maximum similarities are calculated, and the average values are taken as the initial water supply pressure and initial water supply temperature respectively.
3. The multifunctional emergency support vehicle of the integrated water supply and heat supply system according to claim 2, characterized in that According to the actual outlet water pressure, the initial water supply pressure is adjusted, and the adjustment includes: According to the initial water supply pressure and the actual outlet water pressure, an outlet water pressure error is calculated, the outlet water pressure error is compared with an outlet water pressure error threshold, and whether to adjust the initial water supply pressure is determined according to a comparison result; When the outlet water pressure error is greater than the outlet water pressure error threshold, it is determined to adjust the initial water supply pressure; Otherwise, it is determined not to adjust the initial water supply pressure.
4. The multifunctional emergency support vehicle of the integrated water supply and heat supply system according to claim 3, characterized in that According to the actual outlet water pressure, the initial water supply pressure is adjusted, and the adjustment further includes: When it is determined to adjust the initial water supply pressure, actual load data of the water supply equipment is collected, the actual load data is analyzed, and real-time load characteristic values are obtained; According to the outlet water pressure error and the real-time load characteristic values, a pressure influence factor is calculated; The pressure influence factor is compared with a first pressure influence factor and a second pressure influence factor, and a pressure adjustment coefficient of the initial water supply pressure is determined according to a comparison result; wherein the first pressure influence factor is less than the second pressure influence factor; When the pressure influence factor is less than or equal to the first pressure influence factor, the pressure adjustment coefficient is determined to be a first pressure adjustment coefficient; When the pressure influence factor is greater than the first pressure influence factor and less than or equal to the second pressure influence factor, the pressure adjustment coefficient is determined to be a second pressure adjustment coefficient; When the pressure influence factor is greater than the second pressure influence factor, the pressure adjustment coefficient is determined to be a third pressure adjustment coefficient; According to the pressure adjustment coefficient, the initial water supply pressure is adjusted to obtain an adjusted water supply pressure.
5. The multifunctional emergency support vehicle of the integrated water supply and heat supply system according to claim 4, characterized in that According to the actual outlet water temperature, the initial water supply temperature is adjusted, and the adjustment includes: According to the initial water supply temperature and the actual outlet water temperature, an outlet water temperature error is calculated, the outlet water temperature error is compared with an outlet water temperature error threshold, and whether to adjust the initial water supply temperature is determined according to a comparison result; When the outlet water temperature error is greater than the outlet water temperature error threshold, it is determined to adjust the initial water supply temperature; Otherwise, it is determined not to adjust the initial water supply temperature.
6. The multifunctional emergency support vehicle of the integrated water supply and heat supply system according to claim 5, characterized in that When it is determined to adjust the initial water supply temperature, actual operating power of the heating equipment is collected, and a heating efficiency is calculated according to the actual operating power; According to the outlet water temperature error and the heating efficiency, a temperature influence factor is calculated; The temperature influence factor is compared with a first temperature influence factor and a second temperature influence factor, and a temperature adjustment coefficient of the initial water supply temperature is determined according to a comparison result; wherein the first temperature influence factor is less than the second temperature influence factor; When the temperature influence factor is less than or equal to the first temperature influence factor, the temperature adjustment coefficient is determined to be a first temperature adjustment coefficient; When the temperature influence factor is greater than the first temperature influence factor and less than or equal to the second temperature influence factor, the temperature adjustment coefficient is determined to be a second temperature adjustment coefficient; When the temperature influence factor is greater than the second temperature influence factor, the temperature adjustment coefficient is determined to be a third temperature adjustment coefficient. when the temperature influence factor is greater than the first temperature influence factor and less than or equal to the second temperature influence factor, determining the temperature adjustment coefficient as a second temperature adjustment coefficient; when the temperature influence factor is greater than the second temperature influence factor, determining the temperature adjustment coefficient as a third temperature adjustment coefficient; adjusting the initial water supply temperature according to the temperature adjustment coefficient to obtain an adjusted water supply temperature.
Citation Information
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