Refrigerant leakage diagnosis system and program
The refrigerant leak diagnostic system addresses invalid results by displaying combined leak and sensor abnormality indicators, enabling accurate leak determination.
Patent Information
- Application Number
- JP2024048087
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-25
- Publication Date
- 2025-10-07
AI Technical Summary
Conventional refrigerant leak diagnosis systems may produce invalid results if sensor detection values are abnormal, leading to uncertainty in determining whether a refrigerant leak has occurred.
A refrigerant leak diagnostic system and program that display first and second information on the same screen when the refrigerant leak probability exceeds a threshold and sensor detection values are abnormal, respectively, allowing technicians to validate the diagnosis result.
Enables technicians to accurately determine the presence of refrigerant leaks by examining the validity of diagnosis results, ensuring proper identification of leaks and abnormalities.
Smart Images

Figure 2025147703000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a refrigerant leak diagnosis system and program. [Background technology]
[0002] Patent Document 1 discloses a refrigerant leakage management system that determines whether or not a refrigerant leaks from a refrigerant circuit based on the detection result of a refrigerant leakage state detected by a detection unit. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2022-179215 Summary of the Invention [Problem to be solved by the invention]
[0004] The present disclosure provides a refrigerant leak diagnosis system and program that enable a subject to properly determine whether or not a refrigerant leak exists. [Means for solving the problem]
[0005] The refrigerant leak diagnostic system of the present disclosure is a refrigerant leak diagnostic system that diagnoses refrigerant leaks in a refrigeration cycle device, and is equipped with a display unit that displays first information indicating that a refrigerant leak has occurred when the probability of refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold, and displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal, and the display unit displays the first information and the second information on the same first screen.
[0006] In addition, the refrigerant leak diagnosis system of the present disclosure is a refrigerant leak diagnosis system that diagnoses refrigerant leaks in a refrigeration cycle device, and is equipped with a display unit that displays first information indicating that a refrigerant leak has occurred when the probability of refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold, and when the detection value of the sensor is abnormal, the display unit displays on the same screen as the first information that the refrigerant leak diagnosis result lacks validity.
[0007] In addition, the program of the present disclosure causes the processor to function as a display unit that displays first information indicating that a refrigerant is leaking as a diagnostic result of a refrigerant leak in the refrigeration cycle device when the probability of a refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold, and that displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal, and the display unit displays the first information and the second information on the same first screen.
[0008] In addition, the program disclosed herein causes the processor to function as a display unit that displays first information indicating that a refrigerant leak is occurring as a diagnostic result of a refrigerant leak in the refrigeration cycle device when the probability of a refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold value, and when the detection value of the sensor is abnormal, the display unit displays on the same screen as the first information that the diagnostic result of a refrigerant leak is not valid. [Effects of the Invention]
[0009] The refrigerant leak diagnosis system and program disclosed herein can examine the validity of a refrigerant leak diagnosis result that indicates the occurrence of a refrigerant leak. This allows a subject to determine whether or not a refrigerant leak exists based on the validity of the refrigerant leak diagnosis result, thereby enabling the subject to properly determine whether or not a refrigerant leak exists. [Brief explanation of the drawings]
[0010] [Figure 1]FIG. 1 is a diagram showing the configuration of a refrigerant leakage diagnosis system according to a first embodiment. [Figure 2] FIG. 1 shows the configuration of a server device and a terminal device according to a first embodiment. [Figure 3] FIG. 1 shows an example of a first management DB and a second management DB according to the first embodiment; [Figure 4] FIG. 10 shows an example of a first screen in the first embodiment. [Figure 5] FIG. 10 shows an example of a second screen in the first embodiment. [Figure 6] 1 is a flowchart showing the operation of a terminal device and a server device according to the first embodiment. [Figure 7] FIG. 10 shows an example of a third screen in the second embodiment. [Figure 8] FIG. 13 shows an example of a first screen in the third embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0011] (Findings that formed the basis of this disclosure) At the time the inventors came up with the idea for the present disclosure, there were technologies for diagnosing whether a refrigerant leak had occurred, such as that described in Patent Document 1. However, with the conventional technology, if the detection value of the sensor that detects the state of refrigerant leakage is abnormal, the refrigerant leakage diagnosis results may lack validity, and the inventors discovered a problem in that there was a risk that a subject such as a service technician would not be able to properly determine whether a refrigerant leak had occurred, and the subject of the present disclosure was formed to solve this problem. Therefore, the present disclosure provides a refrigerant leak diagnosis system and program that allow a subject to properly determine whether or not a refrigerant leak has occurred.
[0012] Hereinafter, embodiments will be described in detail with reference to the drawings. However, in some cases, more detailed explanation than necessary may be omitted. For example, detailed explanation of already well-known matters or redundant explanation of substantially the same configuration may be omitted. The accompanying drawings and the following description are provided to enable those skilled in the art to fully understand the present disclosure, and are not intended to limit the subject matter described in the claims.
[0013] (Embodiment 1) [1-1.Configuration] [1-1-1. Refrigerant Leak Diagnostic System Configuration] FIG. 1 is a diagram showing the configuration of a refrigerant leakage diagnosis system 1000 according to the first embodiment. The refrigerant leakage diagnostic system 1000 is a system that diagnoses a refrigerant leakage in the air conditioning apparatus 1. In this embodiment, diagnosing a refrigerant leakage includes diagnosing whether or not a refrigerant leakage has occurred, that is, diagnosing the presence or absence of a refrigerant leakage. The air conditioner 1 is an example of a "refrigeration cycle device."
[0014] The refrigerant leak diagnosis system 1000 includes an air conditioner 1 connected to a network NW. The network NW is a communication network made up of a public line network, a dedicated line, other communication circuits, etc. FIG. 1 illustrates a case in which the refrigerant leak diagnosis system 1000 includes three or more air conditioners 1. The number of air conditioners 1 included in the refrigerant leak diagnosis system 1000 is not limited to three or more, and may be less than three. The air conditioner 1 performs air conditioning operation using an indoor unit 2 and an outdoor unit 3 included therein, and the indoor unit 2 air-conditions the conditioned space of the facility in which the indoor unit 2 is installed.
[0015] The air conditioner 1 of this embodiment comprises an indoor unit 2 and an outdoor unit 3. The indoor unit 2 and the outdoor unit 3 are connected by refrigerant piping and control wiring, thereby forming a refrigeration cycle in the air conditioner 1. Note that in FIG. 1, the air conditioner 1 is configured to comprise one indoor unit 2 and one outdoor unit 3, but the number of indoor units 2 and the number of outdoor units 3 comprised by the air conditioner 1 are not limited to one each; there may be one outdoor unit 3 and multiple indoor units 2, or there may be multiple outdoor units 3 and multiple indoor units 2.
[0016] The air conditioning apparatus 1 generates operating data D1 at a predetermined cycle and transmits the generated operating data D1 to a server device 5 connected to the network NW. The server device 5 will be described later. The operating data D1 includes an air conditioning apparatus ID (Identification), information indicating the upload date and time, air conditioning type information indicating the type of air conditioning, set temperature information indicating the set temperature, and detection values of various sensors equipped in the air conditioning apparatus 1. The air conditioner ID is identification information that uniquely identifies the air conditioner 1. The upload date and time is the date and time when the driving data D1 is uploaded. Types of air conditioning include cooling, heating, dehumidification, ventilation, and the like.
[0017] Examples of sensors that the air conditioning device 1 is equipped with include an outside air temperature sensor, a discharge temperature sensor, a first superheat sensor, a compressor rotation speed sensor, an intake temperature sensor, a second superheat sensor, an expansion valve opening sensor, and a saturation temperature sensor. The outside air temperature sensor is a sensor that detects the outside air temperature of the facility in which the air conditioner 1 is installed. The discharge temperature sensor is a sensor that detects the discharge temperature of the compressor (the temperature of the refrigerant being discharged). The first superheat sensor is a sensor that detects the superheat of the discharge temperature of the compressor. The compressor rotation speed sensor is a sensor that detects the rotation speed of the compressor. The intake temperature sensor is a sensor that detects the intake temperature of the compressor (the temperature of the refrigerant being drawn in). The second superheat sensor is a sensor that detects the superheat of the intake temperature of the compressor. The expansion valve opening sensor is a sensor that detects the opening of an expansion valve that adjusts the flow rate of refrigerant. The saturation temperature sensor is a sensor that detects the saturation temperature of the refrigerant discharged from the compressor.
[0018] The refrigerant leak diagnosis system 1000 includes a terminal device 4. The terminal device 4 is used by a serviceman P who diagnoses refrigerant leaks. The terminal device 4 shown in FIG. 1 is a laptop computer, but it may also be a tablet computer, a desktop computer, or a smartphone. The terminal device 4 is connected to a network NW and communicates with a server device 5.
[0019] The refrigerant leak diagnosis system 1000 includes a server device 5. The server device 5 is connected to a network NW and performs information processing with the air conditioning device 1 and the terminal device 4 as clients. Note that in each figure, the server device 5 is represented by a single block, but this does not necessarily mean that the server device 5 is composed of a single device. For example, the server device 5 may be composed of multiple server devices with different processing contents.
[0020] [1-1-2. Server configuration] Next, the configuration of the server device 5 will be described. FIG. 2 is a diagram showing the configuration of the server device 5 and the terminal device 4. As shown in FIG. The server device 5 includes a server control device 50 and a server communication device 51.
[0021] Before describing the server control device 50, the server communication device 51 will be described. The server communication device 51 comprises hardware such as a communication circuit that complies with a predetermined communication standard, and communicates with the air conditioning device 1 and the terminal device 4 under the control of the server control device 50.
[0022] The server control device 50 includes a server processor 500 such as a CPU (Central Processing Unit) or an MPU (Micro Processor Unit), a server memory 510, and an interface circuit for connecting other devices and sensors.
[0023] The server memory 510 is a storage device that stores programs and data. The server memory 510 stores a control program 511, a first management DB (database) 512, and data to be processed by the server processor 500. The server memory 510 has a non-volatile storage area. The server memory 510 also has a volatile storage area and constitutes a work area of the server processor 500. The server memory 510 is constituted by, for example, a ROM (Read Only Memory) or a RAM (Random Access Memory). The control program 511 is a program that causes the server processor 500 to function as a functional unit, which will be described later.
[0024] FIG. 3 is a diagram showing an example of the first management DB 512. As shown in FIG. 3, the first management DB 512 is a database that manages operating data D1. The first management DB 512 has one record R1 for each air conditioning apparatus 1.
[0025] Record R1 has an air conditioning apparatus ID. Record R1 also has an operating data field. The operating data field has multiple pieces of operating data D1, including the operating data D1 most recently transmitted by the air conditioning apparatus 1. The operating data field also has operating data D1 for a predetermined period (e.g., one day). In the operating data field, multiple pieces of operating data D1 are arranged in chronological order, with the upload dates and times indicated by the operating data D1.
[0026] Record R1 also includes set temperature information, outside temperature information, air conditioning type information, model information, years in operation information, years since filling information, and time since startup information. The set temperature information is information that indicates the set temperature of the air conditioner 1. The outside temperature information is information that indicates the outside temperature of the facility in which the air conditioner 1 is installed. The air conditioning type information is information that indicates the type of air conditioning that the air conditioner 1 is performing. The model information is information that indicates the model of the air conditioner 1. The operating years information is information indicating the number of years of operation of the air conditioning apparatus 1. The number of years of operation indicated by the operating years information is updated appropriately. The information on the number of years since filling indicates the number of years that have passed since the last refrigerant filling. The number of years that is indicated by the information on the number of years since filling is updated appropriately. The time since startup information is information indicating the time that has elapsed since startup of the air conditioning apparatus 1. The elapsed time indicated by the time since startup information is updated appropriately.
[0027] The server processor 500 reads and executes a control program 511 stored in a server memory 510, thereby functioning as a server communication unit 501, an update unit 502, an acquisition unit 503, a detection value determination unit 504, and a screen generation unit 505.
[0028] [1-1-2-1. Server Communication Section] The server communication unit 501 communicates with the air conditioning apparatus 1 and the terminal device 4 via the server communication device 51.
[0029] [1-1-2-2. Update section] The update unit 502 updates the contents of record R1 held in the first management DB 512. When the server communication unit 501 receives operating data D1 from the air conditioning apparatus 1, the update unit 502 identifies record R1 of the air conditioning apparatus ID included in the operating data D1 from the first management DB 512. Next, the update unit 502 stores the operating data D1 received by the server communication unit 501 in the operating data field of the identified record R1. When storing the operating data D1, the update unit 502 ensures that the operating data D1 is arranged in the operating data field in the order described above.
[0030] Furthermore, when the server communication unit 501 receives operating data D1 from the air conditioner 1, the update unit 502 identifies record R1 of the air conditioner ID included in the operating data D1 from the first management DB 512. Next, the update unit 502 updates the set temperature information and air conditioning type information of the identified record R1 to the set temperature information and air conditioning type information of the operating data D1 received by the server communication unit 501. Furthermore, the update unit 502 updates the outside temperature information of the identified record R1 to the outside temperature indicated by the detected value of the outside temperature sensor included in the operating data D1 received by the server communication unit 501.
[0031] [1-1-2-3. Acquisition section] The acquisition unit 503 acquires the refrigerant leakage probability of the air conditioning device 1 based on the operating data D1. The acquisition unit 503 processes one record R1, reads out the operating data D1 indicating the most recent upload date and time from the record R1 to be processed, and acquires the refrigerant leakage probability based on the read operating data D1. The refrigerant leakage probability indicates the probability that a refrigerant leak occurs, and in this embodiment, the larger the value, the higher the probability that a refrigerant leak occurs.
[0032] The acquisition unit 503 acquires the refrigerant leakage probability as follows. For example, the acquisition unit 503 acquires the refrigerant leakage probability by inputting the detection values of various sensors included in the read operating data D1 into a predetermined model and outputting the refrigerant leakage probability from the predetermined model. An example of this predetermined model is a trained model that has been machine-learned to determine the refrigerant leakage probability from the detection values of various sensors included in the operating data D1. Note that this predetermined model is stored in a storage area (for example, the server memory 510) that can be read by the server processor 500. Furthermore, for example, the acquisition unit 503 acquires the refrigerant leakage probability using a predetermined algorithm that calculates the refrigerant leakage probability using, as parameters, detection values of various sensors equipped in the air conditioning apparatus 1. In this case, the acquisition unit 503 acquires the refrigerant leakage probability by inputting the detection values of the various sensors included in the read operating data D1 into the algorithm and performing calculations to calculate the refrigerant leakage probability.
[0033] [1-1-2-4.Detection value judgment section] The detection value determination unit 504 determines whether the detection values of the sensors included in the air conditioning apparatus 1 are normal or abnormal. The detection value determination unit 504 processes the operating data D1 that was processed by the acquisition unit 503, and determines whether each of the various detection values included in the operating data D1 is normal or abnormal.
[0034] The detection value determination unit 504 determines whether the detection value is normal or abnormal as follows. For example, the detection value determination unit 504 determines, for each of the various detection values included in the operation data D1, whether the detection value is within a range considered to be normal or outside the range considered to be normal. This range considered to be normal is determined for each type of sensor. The detection value determination unit 504 determines that the detection value of a sensor determined to be within the range considered to be normal is normal, and determines that the detection value of a sensor determined to be outside the range considered to be normal is abnormal.
[0035] Furthermore, for example, the detected value determination unit 504 determines whether the difference between each of the detected values included in the operation data D1 and a predetermined value is equal to or greater than a predetermined value. The value to be compared with the detected value is determined for each type of sensor. Furthermore, this predetermined value is determined for each type of sensor. The detected value determination unit 504 determines that the detected value of a sensor whose difference is determined to be below the predetermined value is normal, and determines that the detected value of a sensor whose difference is determined to be equal to or greater than the predetermined value is abnormal.
[0036] The above-described determination method of the detected value determination unit 504 is merely an example, and any method based on the sensor detected values included in the driving data D1 can be used. For example, the detected value determination unit 504 may read multiple driving data D1 from the record R1 processed by the acquisition unit 503, identify changes over time in the sensor detected values, and determine that the sensor detected values are abnormal if the identified changes over time show an unusual trend. In this configuration, non-anomalous trends are stored for each type of sensor in the server memory 510 or the like, and the detected value determination unit 504 compares the identified changes over time in the detected values with the stored non-anomalous trends. Then, the detected value determination unit 504 determines that the sensor detected values are abnormal if the degree of deviation between the identified changes over time in the detected values and the non-anomalous trend is equal to or greater than a predetermined value.
[0037] [1-1-2-5.Screen generation section] The screen generation unit 505 generates a first screen G1 to be displayed by the terminal device 4. The screen generation unit 505 generates a second screen G2 to be displayed by the terminal device 4 as necessary.
[0038] Here, the first screen G1 and the second screen G2 will be described with reference to FIGS.
[0039] FIG. 4 is a diagram showing an example of the first screen G1. The first screen G1 has air conditioning-related information AJ, which is information relating to the air conditioning apparatus 1, for each air conditioning apparatus 1. As will be made clear later, the first screen G1 has air conditioning-related information AJ for each air conditioning apparatus 1 selected by the service technician P or for each air conditioning apparatus 1 that the service technician P is responsible for.
[0040] The air conditioning related information AJ has a first area A1 and a second area A2. The first area A1 is an area in which the air conditioner ID of the corresponding air conditioner 1 is displayed.
[0041] The second area A2 displays first information J1 indicating that a refrigerant leak has occurred when the probability of a refrigerant leak for the corresponding air conditioning device 1 is equal to or greater than the first threshold. The first information J1 is, for example, information such as "Error" or "Refrigerant leak has occurred!" If the refrigerant leakage probability of the corresponding air conditioner 1 is equal to or greater than the first threshold and the detected value of the sensor of the air conditioner 1 is abnormal, the second area A2 displays second information J2 indicating that the detected value of the sensor of the air conditioner 1 is abnormal together with the first information J1. The second information J2 is, for example, information such as "sensor abnormality." Note that the second area A2 does not display the second information J2 if the refrigerant leakage probability of the corresponding air conditioner 1 is equal to or greater than the first threshold value and the detected value of the sensor of the air conditioner 1 is not abnormal.
[0042] The second area A2 displays second information J2 when the detection value of the sensor of the air conditioning device 1 is abnormal when the refrigerant leakage probability of the corresponding air conditioning device 1 is less than the first threshold and equal to or greater than the second threshold. The second threshold is a threshold smaller than the first threshold. The second area A2 does not display the second information J2 if the refrigerant leakage probability of the corresponding air conditioning apparatus 1 is less than the first threshold value and greater than or equal to the second threshold value, and the detected value of the sensor of the air conditioning apparatus 1 is not abnormal. In this case, the second area A2 displays the third information J3. The third information J3 is information indicating that there is no problem with the air conditioning apparatus 1, such as information such as "-" or "normal."
[0043] The second area A2 displays third information J3 when the refrigerant leakage probability of the corresponding air conditioner 1 is less than the second threshold value.
[0044] 4, the air conditioning-related information AJ1 is information relating to the air conditioning apparatus 1 to which the air conditioning apparatus ID of "001" has been assigned. The air conditioning-related information AJ displays first information J1 and second information J2. On the first screen G1 shown in Fig. 4, the air conditioning-related information AJ2 is information relating to the air conditioning apparatus 1 to which the air conditioning apparatus ID "002" has been assigned. In Fig. 4, the refrigerant leakage probability of this air conditioning apparatus 1 is illustrated as being less than the first threshold and equal to or greater than the second threshold. The air conditioning-related information AJ2 displays third information J3. On the first screen G1 shown in Fig. 4, the air conditioning-related information AJ3 is information relating to the air conditioning apparatus 1 to which the air conditioning apparatus ID "003" has been assigned. In Fig. 4, the refrigerant leakage probability of this air conditioning apparatus 1 is illustrated as being less than the first threshold and equal to or greater than the second threshold. The air conditioning-related information AJ3 displays the second information J2. On the first screen G1 shown in Fig. 4, the air conditioning-related information AJ4 is information relating to the air conditioning apparatus 1 to which the air conditioning apparatus ID "004" has been assigned. Fig. 4 illustrates an example in which the refrigerant leakage probability of this air conditioning apparatus 1 is less than the second threshold. The air conditioning-related information AJ4 displays the third information J3.
[0045] The first screen G1 displays the air conditioning-related information AJ displaying the second information J2 in a selectable manner. In the example of Fig. 4, the air conditioning-related information AJ1 and AJ3 are displayed in a selectable manner. When the air conditioning-related information AJ displaying the second information J2 is selected, the terminal device 4 displays the second screen G2.
[0046] FIG. 5 is a diagram showing an example of the second screen G2. The second screen G2 displays detailed information about the sensor whose detected value indicates an abnormality, among the sensors of the air conditioner 1 corresponding to the selected air conditioning-related information AJ. Hereinafter, a sensor whose detected value indicates an abnormality will be referred to as an "abnormal sensor" as appropriate.
[0047] The second screen G2 shows a graph of the change over time in the detected value of the abnormal sensor. Furthermore, the second screen G2 uses a graph to show the time change in the detected values of sensors of the same type as the abnormal sensor among sensors possessed by air conditioners 1 other than the air conditioner 1 having the abnormal sensor. In this embodiment, the second screen G2 uses a graph to show the time change in the detected values of sensors of the same type as the abnormal sensor among sensors possessed by air conditioners 1 similar to the air conditioner 1 having the abnormal sensor (hereinafter referred to as "similar air conditioners"). The vertical axis of these graphs is set to the detected value and the horizontal axis is set to time.
[0048] In the second screen G2 shown in FIG. 5, a graph GF1 is a graph showing the change over time in the detected value of the abnormal sensor. Furthermore, on the second screen G2 shown in FIG. 5, graphs GF2, GF3, and GF4 are graphs showing the time changes in the detected values of sensors of the same type as the abnormal sensor, among the sensors possessed by the similar air conditioner.
[0049] The second screen G2 displays each graph in association with detailed information DJ of the corresponding air conditioning apparatus 1. The detailed information DJ includes the air conditioning apparatus ID, model information, years in operation information, years since filling information, air conditioning type information, time since startup information, and outside temperature information.
[0050] On the second screen G2 shown in FIG. 5, the detailed information DJ associated with the graph GF1 is the detailed information DJ of the air conditioner 1 that has an abnormality sensor. Furthermore, on the second screen G2 shown in FIG. 5, the detailed information DJ associated with the graphs GF2, GF3, and GF4 is detailed information DJ of similar air conditioners.
[0051] Returning to the explanation of the screen generator 505, the screen generator 505 generates the second screen G2 when the second information J2 is to be displayed on the first screen G2. In other words, the screen generator 505 does not generate the second screen G2 when the second information J2 is not to be displayed on the first screen G1. The generation of the first screen G1 and the second screen G2 will be described later.
[0052] [1-1-3. Terminal device configuration] The configuration of the terminal device 4 will be described with reference to FIG. The terminal device 4 includes a terminal control device 40 , a terminal communication device 41 , a display 42 , and an input interface 43 .
[0053] Before describing the terminal control device 40, the terminal communication device 41, the display 42, and the input interface 43 will be described.
[0054] The terminal communication device 41 includes hardware such as a communication circuit that complies with a predetermined communication standard, and communicates with the server device 5. The display 42 is configured by an LED (Light Emitting Diode), an OLED (Organic LED), etc. The display 42 may be an external device connected to the terminal device 4. The input interface 43 is connected to devices such as an operation switch, a touch input panel, a mouse, and a keyboard, detects an input operation by the user P, and outputs the detection result to the terminal control device 40.
[0055] The terminal control device 40 includes a terminal processor 400 such as a CPU or MPU, a terminal memory 410, and an interface circuit for connecting other devices and sensors. Terminal processor 400 is an example of a "processor."
[0056] The terminal memory 410 is a storage device that stores programs and data. The terminal memory 410 stores a control program 411 and data to be processed by the terminal processor 400. The terminal memory 410 has a non-volatile storage area. The terminal memory 410 also has a volatile storage area and constitutes a work area for the terminal processor 400. The terminal memory 410 is constituted by, for example, a ROM or a RAM. The control program 411 is an example of a "program."
[0057] The terminal processor 400 reads and executes a control program 411 stored in the terminal memory 410, thereby functioning as a terminal communication unit 401, a display unit 402, and a reception unit 403.
[0058] The terminal communication unit 401 communicates with the server device 5 via the terminal communication device 41 . The display unit 402 displays information on the display 42. In this embodiment, the display unit 402 displays a screen on the display 42. The reception unit 403 receives various inputs from the user P via the input interface 43 .
[0059] [1-2. Operation] Next, the operation of each part of the refrigerant leakage diagnostic system 1000 in this embodiment will be described. 6 is a flowchart showing the operations of the terminal device 4 and the server device 5. In FIG. 6, a flowchart FA shows the operations of the terminal device 4, and a flowchart FB shows the operations of the server device 5.
[0060] As shown in the flowchart FA, the terminal communication unit 401 determines whether or not the terminal device 4 requests a screen to be displayed (step SA1). For example, when the reception unit 403 receives an instruction to start displaying the first screen G1, the terminal communication unit 401 makes a positive determination in step SA1.
[0061] When it is determined that the terminal device 4 is requesting a screen to be displayed (step SA1: YES), the terminal communication unit 401 transmits request information to the server device 5 (step SA2). The request information is information requesting a screen to be displayed by the terminal device 4, and includes the air conditioning device ID of the air conditioning device 1 selected by the service person P, or the air conditioning device ID of the air conditioning device 1 that the service person P is responsible for. The air conditioning device ID included in this request information is input into the terminal device 4 by the service person P or the like before the request information is transmitted.
[0062] As shown in the flowchart FB, the server communication unit 501 receives request information from the terminal device 4 (step SB1).
[0063] Next, the acquisition unit 503 identifies, for each air conditioning apparatus ID included in the request information received in step SB1, a record R1 having the air conditioning apparatus ID from the first management DB 512 (step SB2).
[0064] Next, the obtaining unit 503 obtains the refrigerant leakage probability for each record R1 identified in step SB2 (step SB3).
[0065] Next, the detection value determination unit 504 determines whether the detection value of the sensor included in the air conditioner 1 is normal or abnormal for each record R1 identified in step SB2 (step SB4).
[0066] Next, the screen generation unit 505 generates a screen to be displayed on the terminal device 4 (step SB5).
[0067] Step SB5 will now be described in detail. The screen generator 505 generates air conditioning-related information AJ for each record R1 identified in step SB2. If the refrigerant leakage probability obtained in step SB3 is equal to or greater than the first threshold and the judgment result in step SB4 indicates normal, the screen generation unit 505 displays the air conditioning device ID of record R1 in the first area A1 and generates air conditioning-related information AJ that displays first information J1 in the second area A2. In addition, if the refrigerant leakage probability obtained in step SB3 is equal to or greater than the first threshold and the judgment result in step SB4 indicates an abnormality, the screen generation unit 505 displays the air conditioning device ID of record R1 in the first area A1 and generates air conditioning-related information AJ that displays the first information J1 and the second information J2 in the second area A2. In addition, if the refrigerant leakage probability obtained in step SB3 is less than the first threshold and greater than or equal to the second threshold, and the judgment result in step SB4 indicates normal, the screen generation unit 505 generates air conditioning-related information AJ that displays the air conditioning device ID of record R1 in the first area A1 and the third information J3 in the second area A2. In addition, if the refrigerant leakage probability obtained in step SB3 is less than the first threshold and greater than or equal to the second threshold, and the judgment result in step SB4 indicates an abnormality, the screen generation unit 505 generates air conditioning-related information AJ that displays the air conditioning device ID of record R1 in the first area A1 and displays second information J2 in the second area A2. In addition, if the refrigerant leakage probability obtained in step SB3 is less than the second threshold, the screen generation unit 505 generates air conditioning-related information AJ that displays the air conditioning device ID of record R1 in the first area A1 and the third information J3 in the second area A2. The screen generator 505 then generates the first screen G1 on which the generated air conditioning-related information AJ is arranged.
[0068] Step SB5 will now be described in detail. When generating the first screen G1 that displays the second information J2, the screen generation unit 505 also generates the second screen G2. The screen generation unit 505 generates the second screen G2 for each piece of air conditioning-related information AJ that displays the second information J2.
[0069] The generation of the second screen G2 will be described in detail below. The screen generation unit 505 references the first management DB 512 and identifies the record R1 of the similar air conditioner. For example, for each record R1 stored in the first management DB 512, a cosine similarity is calculated based on the record R1 corresponding to the air conditioning-related information AJ that displays the second information J2. In calculating the cosine similarity, at least one of the set temperature information, outside temperature information, air conditioning type information, model information, years in operation information, years since filling information, and time since startup information contained in the record R1 is used as a parameter. The screen generation unit 505 then identifies from the first management DB 512 the record R1 for which the calculated cosine similarity is equal to or greater than a predetermined value as the record R1 of a similar air conditioning device. Furthermore, for example, an overall value of record R1 is calculated for each record R1 stored in the first management DB 512. In calculating this value, at least one of the set temperature information, outside temperature information, air conditioning type information, model information, years in operation information, years since filling information, and time since startup information contained in record R1 is substituted as a parameter into a predetermined algorithm. The screen generation unit 505 calculates the difference between the overall value calculated from record R1 of the air conditioning-related information AJ displaying the second information J2 and the overall value calculated from record R1 in the first management DB 512, and identifies from the first management DB 512, as record R1 of a similar air conditioner, record R1 of the air conditioner 1 for which the calculated difference is less than a predetermined value.
[0070] Next, the screen generator 505 generates detailed information DJ using various information contained in record R1 of the air conditioning-related information AJ that displays the second information J2. Next, the screen generator 505 generates a graph showing changes over time in the detected value of the abnormal sensor from the operating data D1 of record R1 of the air conditioning-related information AJ that displays the second information J2.
[0071] The screen generator 505 also generates detailed information DJ using various information contained in the record R1 of the similar air conditioning device. Next, the screen generator 505 generates a graph showing changes over time in the detection values of the same type of sensor as the abnormal sensor, from the operating data D1 of the record R1 of the similar air conditioning device.
[0072] After generating the graph and detailed information DJ, the screen generating unit 505 generates a second screen G2 that displays the generated graph and detailed information DJ.
[0073] Returning to the explanation of the flowchart FB, when the screen generation unit 505 generates the screen, the server communication unit 501 transmits response information to the request information received in step SB1 to the terminal device 4 (step SB6). The response information transmitted in step SB6 includes screen data of the screen generated in step SB5.
[0074] As shown in the flowchart FA, the terminal communication unit 401 receives response information from the server device 5 (step SA3).
[0075] Next, the display unit 402 displays, on the display 42, a screen indicated by the screen data included in the response information received in step SA3 (step SA4).
[0076] Step SA4 will now be described in detail. At the start of display in step SA4, the display unit 402 displays the first screen G1 on the display 42. When the reception unit 403 receives an operation to select the air conditioning-related information AJ that displays the second information J2 on the first screen G1, the display unit 402 displays the second screen G2 on the display 42 in a screen switching manner. The operation of selecting the air conditioning-related information AJ that displays the second information J2 is an example of a "predetermined operation."
[0077] [1-3. Effects, etc.] As described above, the refrigerant leak diagnostic system 1000 that diagnoses a refrigerant leak in the air conditioning apparatus 1 includes a display unit 402 that displays first information J1 indicating that a refrigerant leak has occurred when the refrigerant leak probability based on operating data D1 including detection values of sensors possessed by the air conditioning apparatus 1 is equal to or greater than a first threshold, and that displays second information J2 indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal. The display unit 402 displays the first information J1 and the second information J2 on the same first screen G1.
[0078] This allows the service technician P to examine the validity of the refrigerant leakage diagnosis result that indicates a refrigerant leakage. Therefore, the service technician P can determine whether or not a refrigerant leakage exists based on the validity of the refrigerant leakage diagnosis result, allowing the service technician P to properly determine whether or not a refrigerant leakage exists.
[0079] The display unit 402 displays second information J2 on the first screen G1 when the probability of refrigerant leakage is less than the first threshold and greater than or equal to a second threshold that is lower than the first threshold, or when the sensor detection value is abnormal, and does not display second information J2 on the first screen G1 when the sensor detection value is not abnormal.
[0080] This allows the service technician P to determine whether or not there is a sensor abnormality even in a situation where it can be determined that there is no refrigerant leakage. Therefore, even in a situation where it can be determined that there is no refrigerant leakage, the validity of the refrigerant leakage diagnosis result can be examined. Therefore, the service technician P can more accurately determine whether or not there is a refrigerant leakage.
[0081] The refrigerant leak diagnosis system 1000 includes a reception unit 403 that receives an operation to select air conditioning-related information AJ that displays second information J2 on the first screen G1. When the reception unit 403 receives the selection operation, the display unit 404 displays a second screen G2 that displays detailed information about the abnormal sensor.
[0082] This allows the service technician P to access a screen that displays detailed information about the abnormal sensor, allowing the service technician P to examine the validity of the refrigerant leakage diagnosis results based on the detailed information about the abnormal sensor, thereby enabling the service technician P to more accurately determine whether or not there is a refrigerant leakage.
[0083] The second screen G2 displays the detected value of the abnormal sensor and the detected value of a sensor of the same type as the abnormal sensor that is possessed by an air conditioner 1 other than the air conditioner 1 that has the abnormal sensor.
[0084] This allows the service technician P to check how the detection value of the abnormal sensor compares with the detection values of the sensors of the other air conditioning devices 1, and therefore allows the validity of the refrigerant leakage diagnosis results to be accurately examined. This allows the service technician P to more appropriately determine whether or not there is a refrigerant leakage.
[0085] The second screen G2 displays the detected value of the abnormal sensor and the detected value of the same type of sensor as the abnormal sensor that the similar air conditioner has.
[0086] This allows the service technician P to check how the detected value of the abnormal sensor compares with the detected values of sensors in other similar air conditioners 1, and therefore allows the validity of the refrigerant leakage diagnosis results to be examined more accurately, allowing the service technician P to more appropriately determine whether or not there is a refrigerant leakage.
[0087] The control program 411 causes the terminal processor 400 to function as a display unit 402 that displays first information J1 indicating that a refrigerant leak is occurring as a diagnosis result of a refrigerant leak in the air conditioning apparatus 1 when the refrigerant leakage probability based on operating data D1 including detection values of sensors possessed by the air conditioning apparatus 1 is equal to or greater than a first threshold, and that displays second information J2 indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal. The display unit 402 displays the first information J1 and the second information J2 on the same first screen G1.
[0088] This provides the same effects as those of the refrigerant leakage diagnostic system 1000 described above.
[0089] (Embodiment 2) Next, a second embodiment will be described. [2-1.Configuration] Regarding the configuration of each part of the refrigerant leakage diagnosis system 1000 in the second embodiment, detailed description of the configuration similar to the configuration of each part of the refrigerant leakage diagnosis system 1000 in the first embodiment will be omitted as appropriate.
[0090] In the second embodiment, the terminal device 4 displays the third screen G3 instead of the second screen G2. FIG. 7 is a diagram showing an example of the third screen G3.
[0091] The third screen G3 displays detailed information about the abnormal sensor, similar to the second screen G2.
[0092] The third screen G3 shows a graph of the change over time in the detected value of the abnormal sensor. Furthermore, the third screen G3 shows, in the form of a graph, the change over time in the detected value of a sensor that has a correlation with the abnormality sensor, out of the sensors that the air conditioner 1 has that have an abnormality sensor.
[0093] In the third screen G3 shown in Fig. 7, graph GF4 is a graph showing the change over time in the detected value of the abnormal sensor, and shows the change over time in the detected value of the discharge temperature sensor. In the third screen G3 shown in Fig. 7, graph GF5 is a graph showing the change over time in the detected value of a sensor correlated with the abnormal sensor, and shows the change over time in the detected value of the compressor rotation speed sensor.
[0094] [2-2. Operation] Next, the operation of each part of the refrigerant leakage diagnostic system 1000 in the second embodiment will be described. In the second embodiment, the operation of the screen generator 505 is different from that in the first embodiment.
[0095] In this embodiment, the screen generation unit 505 generates the third screen G3 when the second information J2 is displayed on the first screen G2. In other words, the screen generation unit 505 does not generate the third screen G3 when the second information J2 is not displayed on the first screen G1.
[0096] The screen generator 505 generates the third screen G3 as follows. When generating the first screen G1 that displays the second information J2, the screen generation unit 505 also generates the third screen G3. The screen generation unit 505 generates the third screen G3 for each piece of air conditioning-related information AJ that displays the second information J2.
[0097] The screen generation unit 505 reads information indicating the upload date and time, the detected value of the abnormal sensor, and the detected value of the sensor correlated with the abnormal sensor from the operating data D1 of the record R1 used to generate the air-conditioning-related information AJ that displays the second information J2. Note that the sensor correlated with the abnormal sensor is predetermined for each sensor. Next, the screen generation unit 505 generates a graph showing the change over time in the detected value of the abnormal sensor based on the detected value of the abnormal sensor and the information indicating the upload date and time. The screen generation unit 505 also generates a graph showing the change over time in the detected value of the sensor correlated with the abnormal sensor based on the detected value of the sensor correlated with the abnormal sensor and the information indicating the upload date and time. The screen generation unit 505 then generates a third screen G3 that displays these graphs together.
[0098] In Embodiment 2, the operation related to screen display is different from that in Embodiment 1. More specifically, when an operation is performed on the first screen G1 to select air conditioning-related information AJ that displays second information J2, the display unit 402 displays the third screen G3.
[0099] [2-3. Effects, etc.] As described above, the refrigerant leak diagnosis system 1000 includes a reception unit 403 that receives an operation to select air conditioning-related information AJ that displays second information J2 on the first screen G1. When the reception unit 403 receives the selection operation, the display unit 404 displays a third screen G3 that displays detailed information about the abnormal sensor. The third screen G3 displays the detection value of the abnormal sensor and the detection value of a sensor that has a correlation with the abnormal sensor among the sensors included in the air conditioning apparatus 1 that has the abnormal sensor.
[0100] According to this, by displaying the detection value of the abnormal sensor and the detection value of the sensor correlated with the abnormal sensor, if the detection value of the abnormal sensor does not correlate with the detection value of the correlated sensor, the service person P can know that the abnormal sensor is broken, and if the detection value of the abnormal sensor correlates with the detection value of the correlated sensor, the service person P can know that there is a factor other than the abnormal sensor. Therefore, the validity of the refrigerant leak diagnosis result can be examined, including whether the abnormal sensor is actually abnormal. This allows the service person P to more accurately determine whether or not there is a refrigerant leak.
[0101] (Embodiment 3) Next, a third embodiment will be described. [3-1.Configuration] Regarding the configuration of each part of the refrigerant leakage diagnosis system 1000 in the third embodiment, detailed description of the configuration similar to the configuration of each part of the refrigerant leakage diagnosis system 1000 in the first embodiment will be omitted as appropriate.
[0102] In the third embodiment, the display content of the air conditioning-related information AJ differs from that in the first embodiment, which will be described in detail with reference to FIG.
[0103] FIG. 8 is a diagram showing an example of the first screen G1. If the probability of refrigerant leakage for the corresponding air conditioner 1 is equal to or greater than the first threshold, and the detected value of the sensor for the air conditioner 1 is abnormal, the second area A2 of the air conditioning-related information AJ displays fourth information J4 indicating that the refrigerant leakage diagnosis result is invalid together with the first information J1. The fourth information J4 is, for example, information such as "The diagnosis result is invalid." If the refrigerant leakage probability is other than the above, the second area A2 displays the same information as in the first embodiment.
[0104] [3-2. Operation] The operation of the third embodiment is the same as that of the first embodiment, except that the screen generator 505 generates the first screen G1 capable of displaying the fourth information J4.
[0105] [3-3. Effects, etc.] As described above, the refrigerant leak diagnostic system 1000 that diagnoses a refrigerant leak in the air conditioning apparatus 1 includes a display unit 402 that displays first information J1 indicating that a refrigerant leak has occurred when the probability of a refrigerant leak based on operating data D1 including detection values of sensors possessed by the air conditioning apparatus 1 is equal to or greater than a first threshold. When the detection value of the sensor is abnormal, the display unit 402 displays on the same screen as the first information J1 that the refrigerant leak diagnosis result lacks validity.
[0106] Furthermore, the control program 411 causes the terminal processor 400 to function as a display unit 402 that displays first information J1 indicating that a refrigerant leak has occurred, as a diagnostic result for a refrigerant leak in the air conditioning apparatus 1, when the probability of a refrigerant leak based on operating data D1 including detection values of sensors possessed by the air conditioning apparatus 1 is equal to or greater than a first threshold. When the detection value of the sensor is abnormal, the display unit 402 displays, on the same screen as the first information J1, that the diagnostic result for a refrigerant leak lacks validity.
[0107] This provides the same effects as those of the first embodiment.
[0108] (Other embodiments) As described above, the above-mentioned first, second, and third embodiments have been described as examples disclosed in the present application. However, the technology in the present disclosure is not limited to these, and can be applied to embodiments in which modifications, substitutions, additions, omissions, etc. are made. Furthermore, it is also possible to combine the components described in the above-mentioned first, second, and third embodiments to create new embodiments. Therefore, other embodiments will be described below as examples.
[0109] In the above-described first, second, and third embodiments, the air conditioner 1 is exemplified as the "refrigeration cycle device." However, the "refrigeration cycle device" is not limited to the air conditioner 1, and may be any device that employs a refrigeration cycle, such as a refrigerator or a showcase.
[0110] In another embodiment, the display unit 402 may generate at least one of the first screen G1, the second screen G2, and the third screen G3. In this case, the terminal device 4 receives information necessary for generating the screen (information contained in the record R1) from the server device 5.
[0111] In the above-described embodiment, the second screen G2 is displayed by switching the screen. In other embodiments, the second screen G2 may be displayed in other ways, such as side-by-side with the first screen G1. In other embodiments, the third screen G3 may be displayed in other ways, such as side-by-side with the first screen G1.
[0112] In the above-described embodiment, a configuration in which the third screen G3 is displayed instead of the second screen G2 has been exemplified, but in other embodiments, the third screen G3 may be displayed together with the second screen G2.
[0113] In the above-described embodiment, the example was given of the case where the person displaying the first screen G1, the second screen G2, and the third screen G3 is a serviceman P, but in other embodiments, the person may be a manager who manages the air conditioning device 1, or the owner or manager of the facility where the air conditioning device 1 is installed.
[0114] In the above-described embodiment, the second screen G2 or the third screen G3 is displayed when the reception unit 403 receives an operation to select the air conditioning-related information AJ that displays the second information J2. In other embodiments, the second screen G2 or the third screen G3 may be displayed by another operation. For example, in other embodiments, a software button that displays the second screen G2 or the third screen G3 may be provided on the first screen G1, and the second screen G2 or the third screen G3 may be displayed when the reception unit 403 receives an operation to select the software button.
[0115] In the above-described second embodiment, a discharge temperature sensor is exemplified as an abnormality sensor, and a compressor rotation speed sensor is exemplified as a sensor correlated with the abnormality sensor. In other embodiments, the combination of the abnormality sensor and the sensor correlated with the abnormality sensor is not limited to the combination of these two types of sensors. For example, a combination of a sensor that detects the intake superheat of the compressor and a sensor that detects the discharge superheat of the compressor may also be used.
[0116] The terminal processor 400 and the server processor 500 may be configured with a single processor or multiple processors. These processors may be hardware programmed to realize the corresponding functional units. That is, these processors may be configured with, for example, an ASIC (Application Specific Integrated Circuit) or an FPGA (Field Programmable Gate Array).
[0117] The configurations of the terminal device 4 and the server device 5 shown in Fig. 2 are merely examples, and the specific implementation form is not particularly limited. In other words, it is not necessary to implement hardware corresponding to each unit individually, and it is also possible to implement a configuration in which a single processor executes a program to realize the functions of each unit. Furthermore, some of the functions realized by software in the above-described embodiments may be implemented by hardware, or some of the functions realized by hardware may be implemented by software.
[0118] The step units of the operation shown in Figure 6 are divided according to the main processing content to make the operation easier to understand, and the operation is not limited by the way the processing units are divided or the names of the processing units. The operation may be divided into more step units depending on the processing content. Furthermore, one step unit may be divided so that it includes more processing. Furthermore, the order of the steps may be changed as appropriate within the scope that does not interfere with the purpose of this disclosure.
[0119] It should be noted that the above-described embodiments are intended to illustrate the technology of the present disclosure, and various modifications, substitutions, additions, omissions, etc. may be made within the scope of the claims or their equivalents.
[0120] (Addendum) The above description of the embodiments discloses the following techniques.
[0121] (Technology 1) A refrigerant leakage diagnosis system for diagnosing refrigerant leakage in a refrigeration cycle device, comprising a display unit that displays first information indicating that a refrigerant leakage has occurred when the probability of refrigerant leakage based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold, and that displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal, and the display unit displays the first information and the second information on the same first screen. This allows the validity of the refrigerant leak diagnosis result that indicates a refrigerant leak to be examined, allowing the subject to determine whether or not a refrigerant leak exists based on the validity of the refrigerant leak diagnosis result, thereby enabling the subject to properly determine whether or not a refrigerant leak exists.
[0122] (Technology 2) The refrigerant leakage diagnosis system described in Technology 1, wherein the display unit displays the second information on the first screen when the refrigerant leakage probability is less than the first threshold and equal to or greater than a second threshold lower than the first threshold, and when the detection value of the sensor is abnormal, and does not display the second information on the first screen when the detection value of the sensor is not abnormal. This allows the subject to determine whether or not there is a sensor abnormality even in a situation where it can be determined that there is no refrigerant leak. Therefore, even in a situation where it can be determined that there is no refrigerant leak, the validity of the refrigerant leak diagnosis result can be examined. Therefore, the subject can more accurately determine whether or not there is a refrigerant leak.
[0123] (Technology 3) The refrigerant leakage diagnosis system according to Technology 1 or Technology 2, further comprising a reception unit that receives a predetermined operation on the first screen, and when the reception unit receives the predetermined operation, the display unit displays a second screen that displays detailed information about the abnormal sensor, which is the sensor that indicates an abnormality detection value. This allows the subject to access a screen that displays detailed information about the abnormal sensor, allowing the subject to consider the validity of the refrigerant leak diagnosis results based on the detailed information about the abnormal sensor, thereby enabling the subject to more accurately determine whether or not there is a refrigerant leak.
[0124] (Technology 4) The refrigerant leakage diagnosis system described in Technology 3, wherein the second screen displays the detection value of the abnormal sensor and the detection value of the same type of sensor as the abnormal sensor possessed by the refrigeration cycle device other than the refrigeration cycle device having the abnormal sensor. This allows the subject to check how the detected value of the abnormal sensor compares with the detected values of sensors in other refrigeration cycle devices, allowing the subject to accurately examine the validity of the refrigerant leak diagnosis result, thereby enabling the subject to more appropriately determine whether or not there is a refrigerant leak.
[0125] (Technology 5) The refrigerant leakage diagnosis system described in Technology 4, wherein the second screen displays the detection value of the abnormal sensor and the detection value of the sensor of the same type as the abnormal sensor possessed by the refrigeration cycle device similar to the refrigeration cycle device having the abnormal sensor. This allows the subject to check how the abnormal sensor's detection value compares with the detection values of sensors in other similar refrigeration cycle devices, allowing the subject to more accurately assess the validity of the refrigerant leak diagnosis results, thereby enabling the subject to more appropriately determine whether or not a refrigerant leak exists.
[0126] (Technology 6) A refrigerant leakage diagnosis system according to any one of Technology 1 to Technology 5, further comprising a reception unit that receives a predetermined operation on the first screen, and when the reception unit receives the predetermined operation, the display unit displays a third screen that displays detailed information about the abnormal sensor, which is the sensor that indicates an abnormality detection value, and the third screen displays the detection value of the abnormal sensor and the detection value of a sensor that has a correlation with the abnormal sensor among the sensors of the refrigeration cycle device that has the abnormal sensor. According to this, by displaying the detection value of the abnormal sensor and the detection value of the sensor correlated with the abnormal sensor, if the detection value of the abnormal sensor does not correlate with the detection value of the correlated sensor, the subject can understand that the abnormal sensor is malfunctioning, and if the detection value of the abnormal sensor correlates with the detection value of the correlated sensor, the subject can understand that there is a factor other than the abnormal sensor. Therefore, the validity of the refrigerant leak diagnosis result can be examined, including whether the abnormal sensor is actually abnormal. Therefore, the subject can more accurately determine whether or not there is a refrigerant leak.
[0127] (Technology 7) A refrigerant leakage diagnosis system for diagnosing refrigerant leakage in a refrigeration cycle device, comprising: a display unit that displays first information indicating that a refrigerant leakage has occurred when a probability of refrigerant leakage based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold value; and when the detection value of the sensor is abnormal, the display unit displays, on the same screen as the first information, a message indicating that the refrigerant leakage diagnosis result lacks validity. This provides the same effects as the refrigerant leakage system described in Technique 1.
[0128] (Technology 8) A program that causes a processor to function as a display unit that displays first information indicating that a refrigerant is leaking as a diagnosis result of a refrigerant leak in a refrigeration cycle device when the probability of a refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold, and that displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal, and that displays the first information and the second information on the same first screen. This provides the same effects as the refrigerant leakage system described in Technique 1.
[0129] (Technology 9) A program that causes a processor to function as a display unit that displays first information indicating that a refrigerant leak is occurring as a diagnostic result of a refrigerant leak in a refrigeration cycle device when the probability of a refrigerant leak based on operating data including a detection value of a sensor possessed by the refrigeration cycle device is equal to or greater than a first threshold value, and when the detection value of the sensor is abnormal, the display unit displays on the same screen as the first information that the diagnostic result of a refrigerant leak is not valid. This provides the same effects as the refrigerant leakage system described in Technique 1. [Industrial Applicability]
[0130] As described above, the refrigerant leakage diagnosis system and program according to the present invention can be used to diagnose refrigerant leakage in a refrigeration cycle device. [Explanation of symbols]
[0131] 1. Air conditioning equipment (refrigeration cycle equipment) 2 Indoor unit 3 Outdoor unit 4 Terminal Devices 5. Server equipment 40 Terminal control device 41 Terminal communication device 42 Display 43 Input Interface 50 Server control device 51 Server communication device 400 Terminal Processor (Processor) 401 Terminal communication unit 402 Display section 403 Reception 410 Terminal Memory 411 Control Program (Program) 500 server processors 501 Server Communication Department 502 Update Department 503 Acquisition Department 504 Detection value judgment unit 505 Screen generation section 510 Server Memory 511 Control Program 512 1st management DB 1000 Refrigerant Leak Diagnostic System A1 1st area A2 2nd area AJ Air Conditioning Related Information AJ1 Air Conditioning Information AJ2 Air Conditioning Information AJ3 Air Conditioning Information AJ4 Air Conditioning Information D1 Operation data DJ detailed information G1 1st screen G2 2nd screen G3 3rd screen J1 First Information J2 Second Information J3 Third Information J4 4th information P Serviceman
Claims
1. A refrigerant leakage diagnosis system for diagnosing a refrigerant leakage in a refrigeration cycle device, comprising: a display unit that displays first information indicating that a refrigerant leakage has occurred when a refrigerant leakage probability based on operation data including a detection value of a sensor provided in the refrigeration cycle device is equal to or greater than a first threshold, and that displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal; the display unit displays the first information and the second information on the same first screen. Refrigerant leak diagnostic system.
2. The display unit When the refrigerant leakage probability is less than the first threshold and is equal to or greater than a second threshold that is lower than the first threshold, When the detected value of the sensor is abnormal, the second information is displayed on the first screen; When the detected value of the sensor is not abnormal, the second information is not displayed on the first screen. The refrigerant leak diagnostic system according to claim 1 .
3. a reception unit that receives a predetermined operation on the first screen, The display unit When the reception unit receives the predetermined operation, a second screen is displayed that displays detailed information about the abnormal sensor, which is the sensor that indicates the abnormality detection value. The refrigerant leakage diagnosis system according to claim 1 or 2.
4. the second screen displays the detection value of the abnormal sensor and the detection value of the sensor of the same type as the abnormal sensor included in the refrigeration cycle device other than the refrigeration cycle device including the abnormal sensor. The refrigerant leakage diagnosis system according to claim 3.
5. the second screen displays the detection value of the abnormal sensor and the detection value of the sensor of the same type as the abnormal sensor included in the refrigeration cycle device similar to the refrigeration cycle device including the abnormal sensor. The refrigerant leakage diagnosis system according to claim 4.
6. a reception unit that receives a predetermined operation on the first screen, when the receiving unit receives the predetermined operation, the display unit displays a third screen that displays detailed information about the abnormal sensor that is the sensor that indicates a detection value of an abnormality; the third screen displays the detected value of the abnormal sensor and the detected value of the sensor correlated with the abnormal sensor among the sensors included in the refrigeration cycle apparatus having the abnormal sensor. The refrigerant leakage diagnosis system according to claim 1 or 2.
7. A refrigerant leakage diagnosis system for diagnosing a refrigerant leakage in a refrigeration cycle device, comprising: a display unit that displays first information indicating that a refrigerant is leaking when a probability of refrigerant leakage based on operation data including a detection value of a sensor included in the refrigeration cycle device is equal to or greater than a first threshold; When the detected value of the sensor is abnormal, the display unit displays, on the same screen as the first information, a message indicating that the refrigerant leakage diagnosis result is invalid. Refrigerant leak diagnostic system.
8. The processor, a display unit that displays first information indicating that a refrigerant is leaking as a diagnosis result of a refrigerant leak in the refrigeration cycle device when a refrigerant leakage probability based on operation data including a detection value of a sensor provided in the refrigeration cycle device is equal to or greater than a first threshold value, and that displays second information indicating that the detection value of the sensor is abnormal when the detection value of the sensor is abnormal; the display unit displays the first information and the second information on the same first screen. program.
9. The processor, when a refrigerant leakage probability based on operation data including detection values of sensors provided in the refrigeration cycle device is equal to or greater than a first threshold, the display unit functions as a display unit that displays first information indicating that a refrigerant leakage has occurred as a diagnosis result of the refrigeration cycle device; When the detected value of the sensor is abnormal, the display unit displays, on the same screen as the first information, a message indicating that the refrigerant leakage diagnosis result is invalid. program.
Citation Information
Patent Citations
Refrigerant leakage management system
JP2022179215A