Water resource self-adaptive distribution method and device applied to water dispenser and coffee machine integrated machine
By acquiring water resource demand information and current status through an adaptive allocation method, and generating allocation parameters, the problem of inflexible water resource allocation in water dispenser and coffee machine combos is solved, achieving more efficient and accurate water resource management and improving user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGDONG LIZI TECH CO LTD
- Filing Date
- 2026-05-22
- Publication Date
- 2026-07-17
AI Technical Summary
Existing water dispenser and coffee machine combos lack flexibility in water resource allocation and cannot be adjusted flexibly according to the different needs of different users, which affects the user experience.
By acquiring information from each water resource demand instruction and the current water resource information of the all-in-one machine, corresponding water resource allocation parameters are generated, including temperature, quantity, and time parameters. The all-in-one machine is then controlled to perform matching water resource allocation operations, thereby achieving adaptive allocation of water resources.
It improves the flexibility and accuracy of water resource allocation in water dispenser and coffee machine combos, enhancing the user experience.
Smart Images

Figure CN122398094A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of intelligent beverage machine technology, and in particular to a method and device for adaptive water resource allocation applied to a water dispenser and coffee machine combo. Background Technology
[0002] As living standards improve, people's demand for diverse and convenient beverages is growing, leading to the emergence of all-in-one water dispenser and coffee maker machines. These machines combine the functions of a water dispenser and a coffee maker, providing both hot water and coffee making, saving space and improving efficiency. They are widely used in homes, offices, and other locations.
[0003] In the operation of a water dispenser / coffee machine combo, the rational allocation and scheduling of water resources is a crucial aspect. Combo machines typically contain multiple functional modules, such as heating and grinding modules, each with different water resource requirements in terms of temperature, volume, and usage time. However, current combo machines mostly employ a simple and fixed model for water allocation, generally distributing water according to a preset order or the sequence of user operations, lacking comprehensive consideration of the differences in needs. For example, when multiple users simultaneously make different water resource requests, the combo machine often can only process them sequentially according to a fixed process, unable to flexibly adjust according to the characteristics of various needs, thus affecting the user experience. Therefore, proposing a technical solution that can improve the efficiency of water resource allocation in combo machines is particularly important. Summary of the Invention
[0004] This invention provides a water resource adaptive allocation method and device for a water dispenser / coffee machine combo, which improves the flexibility of water resource allocation in the combo, thereby improving the accuracy and efficiency of water resource allocation and thus enhancing the user experience.
[0005] To address the aforementioned technical problems, the first aspect of this invention discloses an adaptive water resource allocation method for a water dispenser / coffee machine combo, the method comprising: When multiple water resource demand instructions are received, the water resource demand information corresponding to each water resource demand instruction is obtained; the water resource demand information corresponding to each water resource demand instruction includes the water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction. Obtain the current water resource information of the all-in-one machine; the current water resource information includes current water resource quantity information and current water resource temperature information; Based on all the water resource demand information and the current water resource information, water resource allocation parameters are generated for each water resource demand instruction. Based on all the water resource allocation parameters, the all-in-one machine is controlled to perform water resource allocation operations that match all the water resource demand instructions. The water resource allocation parameters for each water resource demand instruction include the water resource allocation temperature parameter, water resource allocation quantity parameter, and water resource allocation time parameter corresponding to the water resource demand instruction.
[0006] As an optional implementation, in the first aspect of the present invention, generating water resource allocation parameters corresponding to each water resource demand instruction based on all the water resource demand information and the current water resource information includes: Obtain the beverage preparation step parameters corresponding to each of the water resource demand instructions; Based on the beverage preparation step parameters, water resource demand information, and current water resource information corresponding to each water resource demand instruction, the target response time parameter of the all-in-one machine for each water resource demand instruction is determined; Based on the target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters corresponding to each water resource demand command.
[0007] As an optional implementation, in the first aspect of the present invention, determining the target response time parameter of the all-in-one machine for each water resource demand instruction based on the beverage preparation step parameters, water resource demand information, and the current water resource information corresponding to each water resource demand instruction includes: Obtain the water treatment mode parameters of the all-in-one machine; the water treatment mode parameters include at least one of water filtration mode parameters, water temperature regulation mode parameters, water flow rate processing parameters, and water pressure processing parameters. Based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information, the target response time parameters of the all-in-one machine for each water resource demand instruction are determined.
[0008] As an optional implementation, in the first aspect of the present invention, the target response time parameter includes a response start time parameter and a response end time parameter; The step of generating water resource allocation time parameters corresponding to each water resource demand instruction based on the target response time parameters corresponding to each water resource demand instruction from the all-in-one machine includes: Based on the target response time parameters corresponding to each water resource demand command, the overlap of response times of the integrated machine for each water resource demand command is determined; The system obtains the emergency situation of the drinker corresponding to each water resource demand instruction, and determines the water resource allocation priority of the all-in-one machine for each water resource demand instruction based on the response start time parameter corresponding to each water resource demand instruction and the emergency situation of the drinker. Based on the water resource allocation priority, response time overlap, and target response time parameters corresponding to each water resource demand instruction, the all-in-one machine generates water resource allocation time parameters for each water resource demand instruction.
[0009] As an optional implementation, in the first aspect of the present invention, determining the target response time parameter of the all-in-one machine for each water resource demand instruction based on the water treatment method parameters, beverage preparation step parameters corresponding to each water resource demand instruction, water resource demand information, and the current water resource information includes: Based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand instruction, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment demand parameters corresponding to each water resource demand instruction; the water resource replenishment demand parameters include water resource replenishment quantity demand parameters and / or water resource replenishment duration demand parameters; Based on the beverage preparation step parameters and water usage time information corresponding to each water resource demand instruction, the basic water supply time parameters of the all-in-one machine for each water resource demand instruction are determined. Based on the basic water supply time parameters and water replenishment demand parameters corresponding to each water demand command, the target response time parameters of the integrated machine for each water demand command are determined.
[0010] As an optional implementation, in the first aspect of the present invention, determining the water replenishment requirement parameters of the all-in-one machine for each water resource demand instruction based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand instruction, and the water resource usage temperature information includes: Obtain the current water quality parameters of the all-in-one machine; the current water quality parameters include at least one of the current water pH parameter, current water hardness parameter, and current water biological content parameter; Based on the beverage type parameter corresponding to each water resource demand instruction, the water quality demand parameter corresponding to each water resource demand instruction is determined; the water quality demand parameter includes at least one of the following: water pH requirement parameter, water hardness requirement parameter, and aquatic organism content requirement parameter; Based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource demand instruction, the water resource usage information, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment requirement parameters corresponding to each water resource demand instruction.
[0011] As an optional implementation, in the first aspect of the present invention, determining the water replenishment requirement parameters of the all-in-one machine for each water resource demand instruction based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource demand instruction, the water resource usage information, and the water resource usage temperature information includes: For each water resource demand instruction, based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand instruction, it is determined whether the current water quality parameters match the water quality demand parameters; When a match is determined, the water replenishment requirement parameters of the all-in-one machine for the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to the water resource demand command, and the water resource usage temperature information. When a mismatch is detected, the water quality difference parameters corresponding to the water resource demand command are determined based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand command. Furthermore, the water replenishment demand parameters corresponding to the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality difference parameters corresponding to the water resource demand command, the water resource usage information, and the water resource usage temperature information.
[0012] A second aspect of this invention discloses a water resource adaptive allocation device for a water dispenser / coffee machine combo, the device comprising: The acquisition module is used to acquire water resource demand information corresponding to each water resource demand instruction when multiple water resource demand instructions are received; the water resource demand information corresponding to each water resource demand instruction includes water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction; and to acquire the current water resource information of the all-in-one machine; the current water resource information includes current water resource quantity information and current water resource temperature information. The generation module is used to generate water resource allocation parameters corresponding to each water resource demand instruction based on all the water resource demand information and the current water resource information. The control module is used to control the all-in-one machine to perform water resource allocation operations that match all the water resource demand commands according to all the water resource allocation parameters; the water resource allocation parameters corresponding to each water resource demand command include the water resource allocation temperature parameter, water resource allocation quantity parameter, and water resource allocation time parameter corresponding to the water resource demand command.
[0013] As an optional implementation, in the second aspect of the present invention, the method by which the generation module generates water resource allocation parameters corresponding to each water resource demand instruction based on all the water resource demand information and the current water resource information specifically includes: Obtain the beverage preparation step parameters corresponding to each of the water resource demand instructions; Based on the beverage preparation step parameters, water resource demand information, and current water resource information corresponding to each water resource demand instruction, the target response time parameter of the all-in-one machine for each water resource demand instruction is determined; Based on the target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters corresponding to each water resource demand command.
[0014] As an optional implementation, in a second aspect of the present invention, the method by which the generation module determines the target response time parameter of the all-in-one machine for each water resource demand instruction based on the beverage preparation step parameters, water resource demand information, and the current water resource information corresponding to each water resource demand instruction specifically includes: Obtain the water treatment mode parameters of the all-in-one machine; the water treatment mode parameters include at least one of water filtration mode parameters, water temperature regulation mode parameters, water flow rate processing parameters, and water pressure processing parameters. Based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information, the target response time parameters of the all-in-one machine for each water resource demand instruction are determined.
[0015] As an optional implementation, in a second aspect of the present invention, the target response time parameter includes a response start time parameter and a response end time parameter; Specifically, the generation module generates water resource allocation time parameters corresponding to each water resource demand instruction based on the target response time parameters corresponding to each water resource demand instruction from the all-in-one machine, including the following methods: Based on the target response time parameters corresponding to each water resource demand command, the overlap of response times of the integrated machine for each water resource demand command is determined; The system obtains the emergency situation of the drinker corresponding to each water resource demand instruction, and determines the water resource allocation priority of the all-in-one machine for each water resource demand instruction based on the response start time parameter corresponding to each water resource demand instruction and the emergency situation of the drinker. Based on the water resource allocation priority, response time overlap, and target response time parameters corresponding to each water resource demand instruction, the all-in-one machine generates water resource allocation time parameters for each water resource demand instruction.
[0016] As an optional implementation, in a second aspect of the present invention, the method by which the generation module determines the target response time parameter of the all-in-one machine for each water resource demand instruction based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information specifically includes: Based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand instruction, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment demand parameters corresponding to each water resource demand instruction; the water resource replenishment demand parameters include water resource replenishment quantity demand parameters and / or water resource replenishment duration demand parameters; Based on the beverage preparation step parameters and water usage time information corresponding to each water resource demand instruction, the basic water supply time parameters of the all-in-one machine for each water resource demand instruction are determined. Based on the basic water supply time parameters and water replenishment demand parameters corresponding to each water demand command, the target response time parameters of the integrated machine for each water demand command are determined.
[0017] As an optional implementation, in a second aspect of the present invention, the method by which the generation module determines the water resource replenishment demand parameters corresponding to each water resource demand command by the all-in-one machine based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand command, and the water resource usage temperature information specifically includes: Obtain the current water quality parameters of the all-in-one machine; the current water quality parameters include at least one of the current water pH parameter, current water hardness parameter, and current water biological content parameter; Based on the beverage type parameter corresponding to each water resource demand instruction, the water quality demand parameter corresponding to each water resource demand instruction is determined; the water quality demand parameter includes at least one of the following: water pH requirement parameter, water hardness requirement parameter, and aquatic organism content requirement parameter; Based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource demand instruction, the water resource usage information, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment requirement parameters corresponding to each water resource demand instruction.
[0018] As an optional implementation, in a second aspect of the present invention, the generation module determines the method by which the all-in-one machine determines the water resource replenishment requirement parameters corresponding to each water resource requirement instruction based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource requirement instruction, the water resource usage information, and the water resource usage temperature information. Specifically, this includes: For each water resource demand instruction, based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand instruction, it is determined whether the current water quality parameters match the water quality demand parameters; When a match is determined, the water replenishment requirement parameters of the all-in-one machine for the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to the water resource demand command, and the water resource usage temperature information. When a mismatch is detected, the water quality difference parameters corresponding to the water resource demand command are determined based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand command. Furthermore, the water replenishment demand parameters corresponding to the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality difference parameters corresponding to the water resource demand command, the water resource usage information, and the water resource usage temperature information.
[0019] A third aspect of the present invention discloses another adaptive water resource allocation device for a water dispenser / coffee machine combo, the device comprising: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the water resource adaptive allocation method for a water dispenser / coffee machine all-in-one machine disclosed in the first aspect of the present invention.
[0020] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the adaptive water resource allocation method for a water dispenser / coffee machine combo disclosed in the first aspect of the present invention.
[0021] Compared with the prior art, the embodiments of the present invention have the following beneficial effects: In this embodiment of the invention, when multiple water resource demand commands are received, the water resource demand information corresponding to each water resource demand command and the current water resource information of the all-in-one machine are obtained. Based on all the water resource demand information and the current water resource information, water resource allocation parameters corresponding to each water resource demand command are generated to control the all-in-one machine to perform water resource allocation operations that match all water resource demand commands. In this way, water resource allocation parameters corresponding to each water resource demand command can be generated based on the differences in water resource needs among different drinkers, thereby realizing the water resource allocation operation of the all-in-one machine, improving the flexibility of water resource allocation, and thus improving the accuracy and efficiency of water resource allocation, which is conducive to improving the user experience. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1This is a schematic diagram of a scenario for adaptive water resource allocation applied to an all-in-one water dispenser and coffee machine, as disclosed in an embodiment of the present invention. Figure 2 This is a schematic flowchart of a water resource adaptive allocation method for a water dispenser and coffee machine combo disclosed in an embodiment of the present invention; Figure 3 This is a flowchart illustrating another adaptive water resource allocation method for a water dispenser / coffee machine combo disclosed in an embodiment of the present invention. Figure 4 This is a schematic diagram of the structure of a water resource adaptive allocation device for a water dispenser and coffee machine all-in-one machine disclosed in an embodiment of the present invention; Figure 5 This is a schematic diagram of another water resource adaptive allocation device for a water dispenser and coffee machine combo disclosed in an embodiment of the present invention. Detailed Implementation
[0024] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0025] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.
[0026] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0027] This invention discloses an adaptive water resource allocation method and device for a water dispenser and coffee machine combo, which improves the flexibility of water resource allocation in the combo, thereby improving the accuracy and efficiency of water resource allocation and thus enhancing the user experience.
[0028] Example 1 Please see Figure 2 , Figure 2 This is a schematic flowchart illustrating a water resource adaptive allocation method applied to a water dispenser / coffee machine combo, as disclosed in an embodiment of the present invention. Optionally, this method can be implemented by a water resource allocation system, which can be integrated into the water dispenser / coffee machine combo, or it can be a local server or cloud server used to process the water resource adaptive allocation process of the water dispenser / coffee machine combo, etc. The embodiments of the present invention do not impose limitations. Figure 2 As shown, the adaptive water resource allocation method applied to a water dispenser / coffee machine combo may include the following operations: 101. When multiple water resource demand instructions are received, obtain the water resource demand information corresponding to each water resource demand instruction.
[0029] In this embodiment of the invention, the water resource demand information corresponding to each water resource demand instruction includes water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction.
[0030] Optionally, the all-in-one machine can receive instructions from the central control system via a wired network interface (such as an Ethernet interface), or it can receive instructions from mobile terminals or sensors via a wireless communication module (such as Wi-Fi, Bluetooth, ZigBee, etc.).
[0031] Furthermore, after obtaining the relevant water resource demand information, data verification should be performed to ensure that the extracted information meets the predetermined scope and format requirements. For example, water resource usage cannot be negative, usage time should be within a reasonable future timeframe, and usage temperature should be within the temperature range provided by the all-in-one machine. Data that does not meet the requirements should be processed accordingly, such as discarding the instruction, returning an error message, or requesting resending.
[0032] 102. Obtain the current water resource information of the all-in-one machine.
[0033] In this embodiment of the invention, the current water resource information further includes current water resource quantity information and current water resource temperature information. The current water resource quantity information can be obtained using a water level sensor installed in the water tank, which can be of different types such as float type, pressure type, or ultrasonic type. The current water resource temperature information can be obtained using a temperature sensor, such as a thermocouple, thermistor, or digital temperature sensor.
[0034] 103. Based on all water resource demand information and current water resource information, generate water resource allocation parameters corresponding to each water resource demand command, and control the integrated machine to perform water resource allocation operations that match all water resource demand commands based on all water resource allocation parameters.
[0035] In this embodiment of the invention, the water resource allocation parameters corresponding to each water resource demand instruction include the water resource allocation temperature parameter, the water resource allocation quantity parameter, and the water resource allocation time parameter corresponding to the water resource demand instruction. That is, during the allocation process, factors such as the remaining amount of water resources and whether the temperature can meet the instruction requirements need to be considered in order to make reasonable adjustments to the allocation parameters.
[0036] For example, such as Figure 1 As shown, when the water distribution system of the all-in-one machine receives three consecutive orders: Customer A orders a cup of water at 30℃, 120mL in volume, to be picked up in 5 minutes; Customer B orders a hot latte, requiring 250mL of hot water at 90℃, to be picked up in 20 minutes; Customer C orders an iced Americano, requesting 250mL of water below 0℃, to be picked up in 10 minutes. The water distribution system then quickly obtains the current water status of the all-in-one machine: the water tank contains 6L of water at a temperature of 30℃. Then, considering that Customer A's order was urgent and only needed 5 minutes, and that the required water temperature was consistent with the current water temperature, the water resource allocation system decided to prioritize and precisely control the machine to output 120mL of 30℃ water to the designated container at the 5-minute mark to meet Customer A's needs. For Customer C's iced Americano order, since the current water temperature was much higher than the required below 0℃, the system planned to allocate 200mL of 90℃ hot water at the 8-minute mark, and then coordinate with the ice maker to add an appropriate amount of ice to quickly lower the water temperature below 0℃, ensuring that Customer C could obtain the required ice water at the 10-minute mark. As for Customer B's hot latte order, since the order time was later, the system planned to control the machine to heat and output 250mL of 90℃ hot water at the 18-minute mark, 20 minutes later, to ensure that the hot water was at a suitable temperature when the customer took it. Thus, under the precise command of the water resource allocation system, the all-in-one machine executes various water resource allocation tasks in an orderly manner. The coordinated operation of various components, such as water pumps, heaters, and refrigeration modules (if any), ensures that every customer can obtain water resources with just the right temperature and volume at the scheduled time.
[0037] As can be seen, implementing the embodiments of the present invention can generate water resource allocation parameters corresponding to each water resource demand command based on the differences in water resource demand among different drinkers, thereby realizing the water resource allocation operation of the all-in-one machine, improving the flexibility of water resource allocation of the all-in-one machine, and thus improving the accuracy and efficiency of water resource allocation of the all-in-one machine, which is conducive to improving the user experience.
[0038] Example 2 Please see Figure 3 , Figure 3 This is a schematic flowchart illustrating another adaptive water resource allocation method for a water dispenser / coffee machine combo, as disclosed in an embodiment of the present invention. Optionally, this method can be implemented by a water resource allocation system, which can be integrated into the water dispenser / coffee machine combo, or it can be a local server or cloud server, etc., used to process the adaptive water resource allocation process of the water dispenser / coffee machine combo. The embodiments of the present invention do not impose limitations. Figure 3 As shown, the adaptive water resource allocation method applied to a water dispenser / coffee machine combo may include the following operations: 201. When multiple water resource demand instructions are received, obtain the water resource demand information corresponding to each water resource demand instruction.
[0039] 202. Obtain the current water resource information of the all-in-one machine.
[0040] 203. Obtain the beverage preparation step parameters corresponding to each water resource demand instruction.
[0041] In this embodiment of the invention, furthermore, for each water resource demand instruction, the beverage preparation step parameters may include a detailed description of each step, the execution order, the estimated duration, and the required coordination of other equipment. Taking Americano as an example, the step parameters might be: Step 1, prepare the coffee cup (estimated time 10 seconds); Step 2, extract espresso (estimated time 25 seconds, requires the coffee machine to be in operation); Step 3, add hot water (related to the current water resource demand, it needs to be specified when to add hot water after the espresso extraction is completed, and the amount added should be determined according to different cup types, etc.). These detailed parameters will provide a key basis for subsequently determining the reasonable time for water resource allocation.
[0042] 204. Based on the beverage preparation step parameters, water resource demand information, and current water resource information corresponding to each water resource demand instruction, determine the target response time parameters for each water resource demand instruction for the all-in-one machine.
[0043] In this embodiment of the invention, the target response time parameter includes a response start time parameter and a response end time parameter. It should be noted that this target response time parameter can be understood as: determining the intervention point of water resources in the beverage preparation process based on the beverage preparation step parameters. For example, for the aforementioned Americano coffee, hot water needs to be added only after the espresso extraction is completed, so the response start time of hot water needs to be determined based on the expected completion time of the espresso extraction. Secondly, combining the water volume and temperature requirements in the water resource demand information, as well as the current water volume and temperature status in the water resource information, the time required to meet this demand is assessed. If the current water temperature is lower than the required water temperature, the time required to heat to the target water temperature needs to be further calculated; if the current water volume is insufficient, the time cost of replenishing water also needs to be considered.
[0044] 205. Based on the target response time parameters corresponding to each water resource demand command, generate water resource allocation time parameters corresponding to each water resource demand command, and control the all-in-one machine to perform water resource allocation operations that match all water resource demand commands based on all water resource allocation parameters.
[0045] In this embodiment of the invention, the water resource allocation time parameter for each water resource demand instruction is a further refinement of the target response time parameter. It not only specifies the start and end times of water resource allocation but also analyzes buffer times and equipment preparation times during the allocation process. For example, a certain amount of equipment preheating time is reserved before the target response start time. For water resource allocation requiring heating, the heater is started in advance to ensure that water meeting the temperature requirements can be allocated immediately at the target response start time. Simultaneously, factors such as pump start-up and water flow stabilization are considered to make the generated water resource allocation time parameter more accurate and feasible.
[0046] In this embodiment of the invention, for other descriptions of steps 201 and 202, please refer to the detailed description of steps 101 and 102 in Embodiment 1. These descriptions will not be repeated in this embodiment of the invention.
[0047] As can be seen, implementing this embodiment of the invention can intelligently analyze the target response time parameters of each water resource demand command by using the water resource demand information of each water resource demand command, the beverage preparation step parameters, and the current water resource information of the all-in-one machine. This generates water resource allocation time parameters for each water resource demand command, allowing for reasonable time planning and preparation time, reducing equipment waiting time, and improving the efficiency of water resource allocation and beverage preparation in the all-in-one machine. At the same time, it also enhances the system's ability to cope with fluctuations, ensuring the stable operation of water resource allocation, thereby improving the consumer experience.
[0048] In an optional embodiment, step 204 above, which involves determining the target response time parameter for each water resource demand instruction based on the beverage preparation step parameters, water resource demand information, and current water resource information, includes: Obtain the water treatment parameters of the all-in-one machine; Based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information, determine the target response time parameters for each water resource demand instruction for the all-in-one machine.
[0049] In this optional embodiment, the water treatment parameters may include at least one of the following: water filtration parameters, water temperature regulation parameters, water flow rate parameters, and water pressure parameters.
[0050] Furthermore, based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand command, the water resource demand information, and the current water resource information, the target response time parameters for each water resource demand command of the all-in-one machine are determined, including: Based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to each water resource demand command, and water resource usage temperature information, determine the water resource replenishment demand parameters corresponding to each water resource demand command for the all-in-one machine. Based on the beverage preparation steps and water usage time information corresponding to each water demand command, determine the basic water supply time parameters for each water demand command for the all-in-one machine. Based on the basic water supply time parameters and water replenishment demand parameters corresponding to each water demand command from the integrated machine, the target response time parameters corresponding to each water demand command from the integrated machine are determined.
[0051] In this optional embodiment, the water resource replenishment demand parameters may include water resource replenishment quantity demand parameters and / or water resource replenishment duration demand parameters.
[0052] Furthermore, based on water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to each water resource demand command, and water resource usage temperature information, the integrated machine determines the water resource replenishment demand parameters corresponding to each water resource demand command, including: Obtain the current water quality parameters of the integrated machine; Based on the beverage type parameter corresponding to each water resource demand instruction, determine the water quality demand parameter corresponding to each water resource demand instruction; Based on the current water quality parameters, water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality requirement parameters corresponding to each water resource demand command, water resource usage information, and water resource usage temperature information, the integrated machine determines the water resource replenishment requirement parameters corresponding to each water resource demand command.
[0053] In this optional embodiment, the current water quality parameters may include at least one of the current water pH parameter, the current water hardness parameter, and the current aquatic organism content parameter, and the water quality requirement parameters may include at least one of the water pH requirement parameter, the water hardness requirement parameter, and the aquatic organism content requirement parameter.
[0054] Furthermore, based on current water quality parameters, water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality requirement parameters corresponding to each water resource demand command, water resource usage information, and water resource usage temperature information, the integrated machine determines the water resource replenishment requirement parameters corresponding to each water resource demand command, including: For each water resource demand instruction, determine whether the current water quality parameters match the water quality demand parameters based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand instruction. When a match is determined, the water replenishment parameters of the all-in-one machine are determined based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to the water resource demand command, and water resource usage temperature information. When a mismatch is detected, the water quality difference parameters corresponding to the water resource demand command are determined based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand command. Furthermore, the water replenishment demand parameters corresponding to the water resource demand command are determined based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality difference parameters corresponding to the water resource demand command, water resource usage information, and water resource usage temperature information.
[0055] In this optional embodiment, for example, the water treatment parameters of the all-in-one machine are first obtained, including filtration and heating temperature adjustment methods. Simultaneously, it is analyzed that the current water supply of the all-in-one machine is sufficient, the temperature is 25℃, and current water quality parameters such as pH and hardness are also recorded. For a latte in one instruction, the beverage preparation steps are to first extract coffee, then combine milk foam and hot water, using 200mL of water at a temperature of 90℃; for a green tea drink in another instruction, 250mL of water at 80℃ is required.
[0056] Next, the water quality was assessed, revealing a mismatch between the current water quality and the pH and other water quality requirements of green tea. The parameters determining this water quality difference were then analyzed. Based on the water treatment method, current water volume and temperature, water quality differences, and the water resource requirements of green tea, it was determined that the water needed to be filtered and adjusted first, followed by the addition of a certain amount of water and heating. This led to the calculation of the required water replenishment volume and duration. For lattes, since the water quality was compatible, the replenishment requirements could be directly calculated based on the relevant parameters.
[0057] Finally, based on the beverage preparation steps of the corresponding instructions, the basic supply time parameters are determined. Combined with the supplementary demand parameters, the target response time parameters for the all-in-one machine to allocate water resources for lattes and green tea drinks are analyzed to ensure that water of suitable quality, quantity and temperature can be supplied on time and accurately.
[0058] As can be seen, this optional embodiment can further acquire the current water quality parameters of the all-in-one machine and determine its water quality requirement parameters according to the beverage type of each instruction, and compare the two to determine whether the water quality matches. If they match, the water replenishment requirement parameters are determined based on the water treatment method, current water volume and temperature, and the water resource requirement of the instruction; if they do not match, the water quality difference parameters are determined first, and then the water replenishment requirement parameters are analyzed in combination with other parameters. In this way, the reliability and accuracy of determining the water replenishment requirement information of the all-in-one machine can be improved, reducing over-replenishment or waste of water resources; at the same time, it can also improve the reliability and accuracy of determining the target response time of the all-in-one machine, reduce equipment waiting time, speed up beverage preparation, and improve service efficiency.
[0059] In another optional embodiment, step 205 above, which generates water resource allocation time parameters corresponding to each water resource demand command based on the target response time parameters corresponding to each water resource demand command from the integrated machine, includes: Based on the target response time parameters corresponding to each water resource demand command from the integrated machine, determine the overlap of response times for each water resource demand command from the integrated machine. The system obtains the emergency situation of the drinker corresponding to each water resource demand command, and determines the water resource allocation priority of the all-in-one machine for each water resource demand command based on the response start time parameter corresponding to each water resource demand command and the emergency situation of the drinker. Based on the water resource allocation priority, response time overlap, and target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters for each water resource demand command.
[0060] In this optional embodiment, if the response times of drinkers A and B partially overlap, drinker A will have a higher priority for water resource allocation than drinker B if drinker A has an urgent meeting scheduled afterward, in order to coordinate the order and timing of water resource allocation.
[0061] As can be seen, this optional embodiment first determines the overlap of target response times between water resource demand commands based on the target response time parameter of each command. Then, it acquires the user's water resource urgency and, combined with the response start time parameter, determines the water resource allocation priority for each command. Finally, it integrates the water resource allocation priority, response time overlap, and target response time parameter to generate the corresponding water resource allocation time parameter for each command. This allows the water resource allocation of the all-in-one machine to better meet actual needs, reducing waste or untimely supply caused by unreasonable resource allocation, thereby reducing overall user waiting time, improving the machine's operational stability and efficiency, and enhancing the user experience.
[0062] Example 3 Please see Figure 4 , Figure 4 This is a schematic diagram of the structure of a water resource adaptive allocation device for a water dispenser / coffee machine combo, as disclosed in an embodiment of the present invention. Figure 4 As shown, the adaptive water resource allocation device applied to the water dispenser / coffee machine combo may include: The acquisition module 301 is used to acquire water resource demand information corresponding to each water resource demand instruction when multiple water resource demand instructions are received; and to acquire the current water resource information of the all-in-one machine. The generation module 302 is used to generate water resource allocation parameters corresponding to each water resource demand instruction based on all water resource demand information and current water resource information. The control module 303 is used to control the integrated machine to perform water resource allocation operations that match all water resource demand commands based on all water resource allocation parameters.
[0063] In this embodiment of the invention, the water resource demand information corresponding to each water resource demand instruction includes water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction; the current water resource information includes current water resource quantity information and current water resource temperature information; the water resource allocation parameters corresponding to each water resource demand instruction include water resource allocation temperature parameters, water resource allocation quantity parameters, and water resource allocation time parameters corresponding to the water resource demand instruction.
[0064] It is evident that implementation Figure 4The described adaptive water allocation device for water dispensers and coffee makers can generate water allocation parameters corresponding to various water demand commands based on the differences in water demand among different drinkers, thereby realizing the water allocation operation of the all-in-one machine. This improves the flexibility of water allocation, and further enhances the accuracy and efficiency of water allocation, thus improving the user experience.
[0065] In an optional embodiment, the generation module 302 generates water resource allocation parameters corresponding to each water resource demand instruction based on all water resource demand information and current water resource information, specifically including: Obtain the beverage preparation step parameters corresponding to each water resource demand instruction; Based on the beverage preparation step parameters, water resource demand information, and current water resource information corresponding to each water resource demand command, determine the target response time parameters of the all-in-one machine for each water resource demand command; Based on the target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters corresponding to each water resource demand command.
[0066] It is evident that implementation Figure 4 The described adaptive water resource allocation device for water dispensers and coffee machines can intelligently analyze the target response time parameters of each water resource demand command based on the water resource demand information, beverage preparation step parameters, and the current water resource information of the machine. This generates water resource allocation time parameters for each command, allowing for reasonable time planning and preparation time, reducing equipment waiting time, and improving the efficiency of water resource allocation and beverage preparation. Simultaneously, it enhances the system's ability to cope with fluctuations, ensuring stable water resource allocation operations and ultimately improving the consumer experience.
[0067] In another optional embodiment, the generation module 302 determines the target response time parameter for each water resource demand instruction based on the beverage preparation step parameters, water resource demand information, and current water resource information. Specifically, this includes: Obtain the water treatment parameters of the all-in-one machine; Based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information, determine the target response time parameters for each water resource demand instruction for the all-in-one machine.
[0068] In this optional embodiment, the water treatment parameters include at least one of the following: water filtration parameters, water temperature regulation parameters, water flow rate parameters, and water pressure parameters.
[0069] Furthermore, the generation module 302 determines the target response time parameters for each water resource demand instruction based on water treatment method parameters, beverage preparation step parameters corresponding to each water resource demand instruction, water resource demand information, and current water resource information. The specific methods include: Based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to each water resource demand command, and water resource usage temperature information, determine the water resource replenishment demand parameters corresponding to each water resource demand command for the all-in-one machine. Based on the beverage preparation steps and water usage time information corresponding to each water demand command, determine the basic water supply time parameters for each water demand command for the all-in-one machine. Based on the basic water supply time parameters and water replenishment demand parameters corresponding to each water demand command from the integrated machine, the target response time parameters corresponding to each water demand command from the integrated machine are determined.
[0070] In this optional embodiment, the water replenishment demand parameters include water replenishment quantity demand parameters and / or water replenishment duration demand parameters.
[0071] Furthermore, the generation module 302 determines, based on water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to each water resource demand instruction, and water resource usage temperature information, the specific methods for the all-in-one machine to supplement water resource demand parameters for each water resource demand instruction include: Obtain the current water quality parameters of the integrated machine; Based on the beverage type parameter corresponding to each water resource demand instruction, determine the water quality demand parameter corresponding to each water resource demand instruction; Based on the current water quality parameters, water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality requirement parameters corresponding to each water resource demand command, water resource usage information, and water resource usage temperature information, the integrated machine determines the water resource replenishment requirement parameters corresponding to each water resource demand command.
[0072] In this optional embodiment, the current water quality parameters include at least one of the current water pH parameter, the current water hardness parameter, and the current aquatic organism content parameter; the water quality requirement parameters include at least one of the water pH requirement parameter, the water hardness requirement parameter, and the aquatic organism content requirement parameter.
[0073] Furthermore, the generation module 302, based on the current water quality parameters, water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality requirement parameters corresponding to each water resource demand instruction, water resource usage information, and water resource usage temperature information, determines the specific methods by which the all-in-one machine replenishes the water resource requirement parameters for each water resource demand instruction. For each water resource demand instruction, determine whether the current water quality parameters match the water quality demand parameters based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand instruction. When a match is determined, the water replenishment parameters of the all-in-one machine are determined based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water resource usage information corresponding to the water resource demand command, and water resource usage temperature information. When a mismatch is detected, the water quality difference parameters corresponding to the water resource demand command are determined based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand command. Furthermore, the water replenishment demand parameters corresponding to the water resource demand command are determined based on the water treatment method parameters, current water resource quantity information, current water resource temperature information, water quality difference parameters corresponding to the water resource demand command, water resource usage information, and water resource usage temperature information.
[0074] It is evident that implementation Figure 4 The described adaptive water allocation device for water dispensers and coffee makers can further acquire the current water quality parameters of the machine and determine the water quality requirement parameters based on the beverage type of each instruction. It then compares the water quality of the two to determine if they match. If they match, the water replenishment requirement parameters are determined based on the water treatment method, current water volume and temperature, and the water resource requirement of the instruction. If they do not match, the water quality difference parameters are first determined, and then combined with other parameters to analyze the water replenishment requirement parameters. This improves the reliability and accuracy of determining the water replenishment requirement information of the machine, reducing over-replenishment or waste. Simultaneously, it also improves the reliability and accuracy of determining the target response time of the machine, reducing equipment waiting time, speeding up beverage preparation, and improving service efficiency.
[0075] In yet another optional embodiment, the target response time parameter includes a response start time parameter and a response end time parameter; Specifically, the generation module 302 generates water resource allocation time parameters for each water resource demand command based on the target response time parameters corresponding to each water resource demand command from the all-in-one machine. Based on the target response time parameters corresponding to each water resource demand command from the integrated machine, determine the overlap of response times for each water resource demand command from the integrated machine. The system obtains the emergency situation of the drinker corresponding to each water resource demand command, and determines the water resource allocation priority of the all-in-one machine for each water resource demand command based on the response start time parameter corresponding to each water resource demand command and the emergency situation of the drinker. Based on the water resource allocation priority, response time overlap, and target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters for each water resource demand command.
[0076] It is evident that implementation Figure 4 The described adaptive water allocation device for water dispensers and coffee makers first determines the overlap of target response times between water demand commands based on the target response time parameters of each command. Then, it assesses the user's water availability urgency and, combined with the response start time parameter, determines the water allocation priority for each command. Finally, it integrates the allocation priority, response time overlap, and target response time parameters to generate the corresponding water allocation time parameters for each command. This allows the water allocation to better meet actual needs, reducing waste or delays caused by improper allocation, thus decreasing overall user waiting time, improving the machine's operational stability and efficiency, and enhancing the user experience.
[0077] Example 4 Please see Figure 5 , Figure 5 This is a schematic diagram of another water resource adaptive allocation device for a water dispenser / coffee machine combo disclosed in an embodiment of the present invention. Figure 5 As shown, the adaptive water resource allocation device applied to the water dispenser / coffee machine combo may include: Memory 401 storing executable program code; Processor 402 coupled to memory 401; The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the water resource adaptive allocation method for a water dispenser and coffee machine all-in-one machine as described in Embodiment 1 or Embodiment 2 of the present invention.
[0078] Example 5 This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the adaptive water resource allocation method for a water dispenser / coffee machine combo machine described in Embodiment 1 or Embodiment 2 of this invention.
[0079] Example 6 This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the water resource adaptive allocation method for a water dispenser and coffee machine all-in-one machine described in Embodiment 1 or Embodiment 2.
[0080] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0081] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0082] Finally, it should be noted that the water resource adaptive allocation method and device for an all-in-one water dispenser and coffee machine disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention, and are only used to illustrate the technical solutions of the present invention, not to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A water resource adaptive allocation method applied to a water dispenser / coffee machine combo, characterized in that, The method includes: When multiple water resource demand instructions are received, the water resource demand information corresponding to each water resource demand instruction is obtained; the water resource demand information corresponding to each water resource demand instruction includes the water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction. Obtain the current water resource information of the all-in-one machine; the current water resource information includes current water resource quantity information and current water resource temperature information; Based on all the water resource demand information and the current water resource information, water resource allocation parameters are generated for each water resource demand instruction. Based on all the water resource allocation parameters, the all-in-one machine is controlled to perform water resource allocation operations that match all the water resource demand instructions. The water resource allocation parameters for each water resource demand instruction include the water resource allocation temperature parameter, water resource allocation quantity parameter, and water resource allocation time parameter corresponding to the water resource demand instruction.
2. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 1, characterized in that, The step of generating water resource allocation parameters corresponding to each water resource demand instruction based on all the water resource demand information and the current water resource information includes: Obtain the beverage preparation step parameters corresponding to each of the water resource demand instructions; Based on the beverage preparation step parameters, water resource demand information, and current water resource information corresponding to each water resource demand instruction, the target response time parameter of the all-in-one machine for each water resource demand instruction is determined; Based on the target response time parameters corresponding to each water resource demand command, the all-in-one machine generates water resource allocation time parameters corresponding to each water resource demand command.
3. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 2, characterized in that, The step of determining the target response time parameter of the all-in-one machine for each water resource demand instruction based on the beverage preparation step parameters, water resource demand information, and the current water resource information corresponding to each water resource demand instruction includes: Obtain the water treatment mode parameters of the all-in-one machine; the water treatment mode parameters include at least one of water filtration mode parameters, water temperature regulation mode parameters, water flow rate processing parameters, and water pressure processing parameters. Based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information, the target response time parameters of the all-in-one machine for each water resource demand instruction are determined.
4. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 2, characterized in that, The target response time parameters include response start time parameters and response end time parameters; The step of generating water resource allocation time parameters corresponding to each water resource demand instruction based on the target response time parameters corresponding to each water resource demand instruction from the all-in-one machine includes: Based on the target response time parameters corresponding to each water resource demand command, the overlap of response times of the integrated machine for each water resource demand command is determined; The system obtains the emergency situation of the drinker corresponding to each water resource demand instruction, and determines the water resource allocation priority of the all-in-one machine for each water resource demand instruction based on the response start time parameter corresponding to each water resource demand instruction and the emergency situation of the drinker. Based on the water resource allocation priority, response time overlap, and target response time parameters corresponding to each water resource demand instruction, the all-in-one machine generates water resource allocation time parameters for each water resource demand instruction.
5. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 3 or 4, characterized in that, The step of determining the target response time parameter of the all-in-one machine for each water resource demand instruction based on the water treatment method parameters, the beverage preparation step parameters corresponding to each water resource demand instruction, the water resource demand information, and the current water resource information includes: Based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand instruction, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment demand parameters corresponding to each water resource demand instruction; the water resource replenishment demand parameters include water resource replenishment quantity demand parameters and / or water resource replenishment duration demand parameters; Based on the beverage preparation step parameters and water usage time information corresponding to each water resource demand instruction, the basic water supply time parameters of the all-in-one machine for each water resource demand instruction are determined. Based on the basic water supply time parameters and water replenishment demand parameters corresponding to each water demand command, the target response time parameters of the integrated machine for each water demand command are determined.
6. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 5, characterized in that, The step of determining the water replenishment requirement parameters for each water resource demand instruction by the all-in-one machine based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to each water resource demand instruction, and the water resource usage temperature information includes: Obtain the current water quality parameters of the all-in-one machine; the current water quality parameters include at least one of the current water pH parameter, current water hardness parameter, and current water biological content parameter; Based on the beverage type parameter corresponding to each water resource demand instruction, the water quality demand parameter corresponding to each water resource demand instruction is determined; the water quality demand parameter includes at least one of the following: water pH requirement parameter, water hardness requirement parameter, and aquatic organism content requirement parameter; Based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource demand instruction, the water resource usage information, and the water resource usage temperature information, the all-in-one machine determines the water resource replenishment requirement parameters corresponding to each water resource demand instruction.
7. The adaptive water resource allocation method for a water dispenser / coffee machine combo as described in claim 6, characterized in that, The step of determining the water replenishment requirement parameters for each water resource demand instruction by the all-in-one machine based on the current water quality parameters, the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality requirement parameters corresponding to each water resource demand instruction, the water resource usage information, and the water resource usage temperature information includes: For each water resource demand instruction, based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand instruction, it is determined whether the current water quality parameters match the water quality demand parameters; When a match is determined, the water replenishment requirement parameters of the all-in-one machine for the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water resource usage information corresponding to the water resource demand command, and the water resource usage temperature information. When a mismatch is detected, the water quality difference parameters corresponding to the water resource demand command are determined based on the current water quality parameters and the water quality demand parameters corresponding to the water resource demand command. Furthermore, the water replenishment demand parameters corresponding to the water resource demand command are determined based on the water treatment method parameters, the current water resource quantity information, the current water resource temperature information, the water quality difference parameters corresponding to the water resource demand command, the water resource usage information, and the water resource usage temperature information.
8. A water resource adaptive allocation device for a water dispenser / coffee machine combo, characterized in that, The device includes: The acquisition module is used to acquire water resource demand information corresponding to each water resource demand instruction when multiple water resource demand instructions are received; the water resource demand information corresponding to each water resource demand instruction includes water resource usage information, water resource usage time information, and water resource usage temperature information corresponding to the water resource demand instruction; and to acquire the current water resource information of the all-in-one machine; the current water resource information includes current water resource quantity information and current water resource temperature information. The generation module is used to generate water resource allocation parameters corresponding to each water resource demand instruction based on all the water resource demand information and the current water resource information. The control module is used to control the all-in-one machine to perform water resource allocation operations that match all the water resource demand commands according to all the water resource allocation parameters; the water resource allocation parameters corresponding to each water resource demand command include the water resource allocation temperature parameter, water resource allocation quantity parameter, and water resource allocation time parameter corresponding to the water resource demand command.
9. A water resource adaptive allocation device for a water dispenser / coffee machine combo, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the water resource adaptive allocation method for a water dispenser and coffee machine all-in-one machine as described in any one of claims 1-7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the water resource adaptive allocation method for a water dispenser / coffee machine combo as described in any one of claims 1-7.