The present invention relates to an air conditioning system diagnosis apparatus and an air conditioning system diagnosis result display apparatus that perform a diagnosis on an air conditioning system in which a plurality of air conditioners are connected by a refrigerant pipeline and a general-purpose network and that display a result of the diagnosis.
An air conditioner installation work support apparatus that detects a failure by comparing information on a refrigerant structure or a type of an air conditioning system with information at design or installation time and represents the failure using a diagram illustrating a device configuration of the air conditioning system (hereinafter referred to as system structure diagram) is proposed (see, for example, Patent Literature 1).
As for this system structure diagram, a centralized control apparatus for an air conditioning system that automatically acquires a device configuration and generates the system structure diagram by inquiring of an outdoor unit connected to each indoor unit or a remote controller is proposed (see, for example, Patent Literature 2).
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2007-46822 (pp. 20-21, FIG. 20)
Patent Literature 2: Japanese Unexamined Patent Application Publication No. 2002-122345 (pp. 1-2, FIG. 1)
However, a diagnosis apparatus that comprehensively handles failures of an air conditioning system is required to represent various failures, including a failure relating to a network connecting devices and a failure relating to a refrigeration cycle produced in an air conditioner. Thus it is necessary to depict various kinds of information, including a device configuration, a communication relation, and a refrigerant structure, in a system structure diagram, and the complexity of the system structure diagram raises an issue in that visibility of the failure decreases.
The present invention is made to solve the above-described problems, and it is an object thereof to provide an air conditioning system diagnosis apparatus and an air conditioning system diagnosis result display apparatus capable of representing various failures with high visibility by generating a system structure diagram that illustrates an air conditioning system in a different form depending on a detected failure and illustrating the failure using this system structure diagram.
An air conditioning system diagnosis apparatus according to the present invention includes communication means for, in an air conditioning system in which a plurality of devices are connected by a network and the related devices transmit and receive a control signal or like to and from each other over the network, performing communication between the devices over the network, device type identifying means for indentifying a device type that indicates a type of each device, communication list generating means for generating a communication list that includes a combination of the devices being a communication source and a communication destination of the control signal or the like, system structure analyzing means for deriving system structure information that indicates a device configuration of the air conditioning system from the device type and the communication list, system diagnosis means for performing a diagnosis on the air conditioning system using information acquired through the communication means and deriving a diagnosis result, diagnosis result superimposed diagram generating means for generating a system structure diagram on the basis of the system structure information acquired from the system structure analyzing means and superimposing an highlighted content of the diagnosis result in the system structure diagram, and a display unit that acquires the system structure diagram in which the content of the diagnosis result is superimposed from the diagnosis result superimposed diagram generating means and displaying the system structure diagram.
With the air conditioning system diagnosis apparatus according to the present invention, because it displays a system structure diagram that illustrates an air conditioning system such that a diagnosis result for the air conditioning system is superimposed therein, correspondence between that diagnosis result and the air conditioning system can be easily identified visually and thus action against a failure can be promptly carried out, so the failure can be overcome early,
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As illustrated in
The air conditioning system diagnosis apparatus 100 includes at least component groups (1) to (4) described below.
(1) A component group that acquires data flowing in the network 20
(2) A component group that performs a diagnosis of a state of an air conditioning system
(3) A component group that analyzes a system structure of an air conditioning system
(4) A component group that displays both a diagnosis result in (2) and a system structure in (3)
The above component groups (1) to (4) include component groups described below.
(1) A component group that acquires data, flowing in the network 20
This includes communication means 110 connected to the network 20 and being for transmitting and receiving data through the network 20.
(2) A component group that performs a diagnosis of a state of an air conditioning system
The component group (2) includes drive information acquiring means 120 for acquiring drive information 31a (described below in the description of
The system diagnosis means 130 includes refrigeration cycle analyzing means 131 for performing a diagnosis of a state of a refrigeration cycle in an air conditioning system on the basis of the acquired drive information 31 a and deriving a refrigeration cycle diagnosis result (described below in the description of
(3) A component group that analyzes a system structure of an air conditioning system
The component group (3) includes device type indentifying means 140 for acquiring a device type 32 (described below in the description of
The system structure analyzing means 160 retains a system structure analysis rule 160a for use in deriving the system structure information.
(4) A component group that displays both a diagnosis result in (2) and a system structure in (3)
The component group (4) includes diagnosis result superimposed diagram generating means 170 for generating a system structure diagram (described below in the description of
The diagnosis result superimposed diagram generating means 170 retains an inter-device main connection determining rule 170a and a diagnosis result handling system structure diagram generating rule 170b for use in generating a system structure diagram.
As illustrated in
The communication means 30 sends the drive information 31a generated by the drive information generating means 31, the device type 32, and the communication destination device list 33 to the network 20.
The outdoor unit 10a and indoor unit 10b have been described as having the configuration illustrated in
A configuration in which the drive information acquiring means 120, system diagnosis means 130, device type indentifying means 140, communication list generating means 150, system structure analyzing means 160, or diagnosis result superimposed diagram generating means 170 is achieved by hardware, such as a circuit device, may be used, or alternatively, a configuration in which it is achieved as software executed by an arithmetic unit, such as a microcomputer or a central processing unit (CPU), may be used.
Additionally, a configuration in which the refrigeration cycle analysis rule 131a, system structure analysis rule 160a, inter-device main connection determining rule 170a, or diagnosis result handling system structure diagram generating rule 170b is achieved by logic on software may be used, or alternatively, a configuration in which it is achieved by a circuit device equivalent thereto or the like may be used.
Processing performed by the air conditioning system diagnosis apparatus 100 according to the present embodiment can be broadly classified into step S1 to step 83 described below.
The drive information acquiring means 120 acquires the drive information 31a from the air conditioner 10 through the network 20 and the communication means 110. The refrigeration cycle analyzing means 131 of the system diagnosis means 130 performs a diagnosis of a refrigeration cycle in the air conditioning system on the basis of that drive information 31a and derives a refrigeration cycle diagnosis result that indicates the presence or absence of a failure or the like.
The device type indentifying means 140 acquires the device type 32 from the air conditioner 10 or the like through the network 20 and the communication means 110. The communication list generating means 150 acquires the communication destination device list 33 from the air conditioner 10 or the like through the network 20 and the communication means 110 and generates a communication list on the basis of that communication destination device list 33. The system structure analyzing means 160 derives system structure information containing a refrigerant structure and an interlocking relation of the air conditioning system and the like on the basis of the device type 32 and the communication list.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram on the basis of the system structure information derived by the system structure analyzing means 160, superimposes the content of the refrigeration cycle diagnosis result derived by the refrigeration cycle analyzing means 131 in the vicinity of an icon of a related device in the system structure diagram, and outputs that system structure diagram in which the content of the refrigeration cycle diagnosis result is superimposed to the display unit 180.
The details of the operations in step S1 to step S3 in
The details of an operation of step S1 are described below with reference to
The drive information generating means 31 in the outdoor unit 10a or indoor unit 10b included in the air conditioner 10 generates the drive information 31a at regular intervals and sends that drive information 31a to the network 20 through the communication means 30. The drive information acquiring means 120 in the air conditioning system diagnosis apparatus 100 acquires that drive information 31a through the communication means 110 and informs the system diagnosis means 130 of the drive information 31a. An interval for sending of the drive information 31a generated by the drive information generating means 31 to the network 20 described above can be 30 seconds, for example.
The drive information 31 a may be accumulated by the outdoor unit 10a or indoor unit 10b at regular intervals, and the accumulated drive information 31a may be collectively transmitted to the drive information acquiring means 120. Alternatively, the outdoor unit 10a or indoor unit 10b may hold only momentary drive information 31a, and the drive information acquiring means 120 may acquire and accumulate the drive information 31a at regular intervals.
In the foregoing, an operation of sending the drive information 31a by the drive information generating means 31 to the network 20 at regular intervals is used. However, the present embodiment is not limited to this operation. An operation of transmitting a signal for instructing the drive information generating means 31 to send the drive information 31a at regular intervals, causing the drive information generating means 31 to send the drive information 31a to the network 20, and acquiring that drive information 31a by the drive information acquiring means 120 may be used.
The refrigeration cycle analyzing means 131 in the system diagnosis means 130 sequentially derives, from the drive information 31a informed by the drive information acquiring means 120, refrigeration cycle diagnosis results containing information that indicates the presence or absence of a failure in a state of a refrigeration cycle in the air conditioner 10, such as anomalous of a refrigerant temperature, anomalous of refrigerant pressure, excess or deficiency of the amount of refrigerant, or a breakdown of a refrigerant control valve, under the refrigeration cycle analysis rule 131a.
Here, the refrigeration cycle analysis rule 131a is a rule for determining whether there is a failure in a refrigeration cycle that establishes a refrigerant structure in an air conditioning system. For example, when the drive information 31a contains a refrigerant temperature value, a refrigerant pressure value, or the like and the refrigeration cycle analysis rule 131a has an abnormal threshold, if that refrigerant temperature value, refrigerant pressure value, or the like exceeds the abnormal threshold, it may be determined that the refrigeration cycle diagnosis result is “abnormal.” For example, in the case of a configuration in which the air conditioning system diagnosis apparatus 100 includes previous drive information storage means (not illustrated) for storing drive information at past inspection or the like of a specified refrigeration cycle in an air conditioning system being a diagnosis target (hereinafter referred to as previous drive information), when the refrigeration cycle analyzing means 131 compares the drive information 31a with the previous drive information, if the increase and decrease pattern of the refrigerant temperature value, or refrigerant pressure value, or the like is the same as or similar to the increase and decrease pattern occurring when the refrigerant reduces possessed in the refrigeration cycle analysis rule 131a, it may be determined that the refrigeration cycle diagnosis result is “abnormal.”
The system diagnosis means 130 informs the diagnosis result superimposed diagram generating means 170 of the refrigeration cycle diagnosis result derived by the refrigeration cycle analyzing means 131.
The details of an operation of step S2 are described below with reference to
The device type indentifying means 140 acquires the device type 32 retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), remote controller (not illustrated), or the like through the communication means 110 and informs the system structure analyzing means 160 of the device type 32.
Here, the device type 32 is information that indicates a role of each of the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, remote controller, and the like in the air conditioning system.
The communication list generating means 150 acquires the communication destination device list 33 retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), or remote controller (not illustrated) through the communication means 110, generates a communication list on the basis of that communication destination device list 33, and informs the system structure analyzing means 160 of the communication list.
Here, the communication list can be a list of combinations of source devices and destination devices, for example.
The system structure analyzing means 160 derives system structure information containing a refrigerant structure that indicates the indoor units 10b and the like connected from the same outdoor unit 10a by a refrigerant pipeline, an interlocking relation that indicates the indoor units 10b and the like operating in conjunction with each other at remote control, and the like from the device type 32 acquired from the device type indentifying means 140 and the communication list acquired from the communication list generating means 150 under the system structure analysis rule 160a.
Here, the system structure analysis rule 160a is a rule for identifying a relation between devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, remote controller, and the like, included in an air conditioning system. For example, if an air conditioning system includes a plurality of outdoor units 10a and a plurality of indoor units 10b and the communication list has a combination of the outdoor units 10a and indoor units 10b, an outdoor unit 10a and an indoor unit 10b in combination may be identified as belonging to the same refrigerant structure. If the communication list has a plurality of combinations with different indoor units 10b for a single remote controller, these indoor units 10b may be identified as being in an interlocking relation.
The system structure analyzing means 160 informs the diagnosis result superimposed diagram generating means 170 of the derived system structure information.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram that includes icons of devices and lines linking them from the system structure information under the inter-device main connection determining rule 170a. For example, as illustrated in
The diagnosis result superimposed diagram generating means 170 superimposes the content of the refrigeration cycle diagnosis result informed by the system diagnosis means 130 in the vicinity of a device or a group of devices related with the refrigeration cycle diagnosis result in the generated system structure diagram under the diagnosis result handling system structure diagram generating rule 170b. For example, if the refrigeration cycle diagnosis result contains information indicating detection of a failure in the refrigeration cycle, as illustrated in
For example, in
In the foregoing, an operation of highlighting and illustrating a connection line or a device in which a failure occurs is used. However, the present embodiment is not limited to this operation. An operation of highlighting and illustrating all of the devices and connection lines existing in a target air conditioning system may also be used.
Then the diagnosis result superimposed diagram generating means 170 outputs the system structure diagram generated from the system structure information in step S301 and in which the content of the refrigeration cycle diagnosis result is superimposed in step S302 to the display unit 180. When receiving the system structure diagram, the display unit 180 displays that system structure diagram on the display panel 181.
With the above-described configuration and operations, because a system structure diagram illustrating an air conditioning system in which a refrigeration cycle diagnosis result is superimposed is displayed, correspondence between the refrigeration cycle diagnosis result and the air conditioning system can he easily identified visually. This facilitates a user to promptly deaf with a failure and to early eliminate the failure.
In the air conditioning system in which each of the devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, and remote controller, retains the device type 32, the device type indentifying means 140 of the air conditioning system diagnosis apparatus 100 sequentially asks these devices their respective device types and identifies them, thus enabling system structure information to be promptly and fully generated and a refrigeration cycle diagnosis result to be displayed.
In the air conditioning system in which each of the devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, and remote controller, retains the communication destination device list 33, the communication list generating means 150 of the air conditioning system diagnosis apparatus 100 sequentially asks these devices and generates a communication list, thus enabling system structure information to be promptly and fully generated and a refrigeration cycle diagnosis result to be displayed.
Displaying a system structure diagram that illustrates all the devices and only main connection relations can reduce complexity of the system structure diagram and allows the device configuration of the air conditioning system to be easily visible.
In the air conditioning system in which each of the devices, such as the outdoor unit 10a, indoor unit 10b, and refrigerant shunt apparatus retains the drive information 31a, the drive information acquiring means of the air conditioning system diagnosis apparatus 100 sequentially asks these devices and acquires the drive information 31a, and the system diagnosis means 130 analyzes a refrigeration cycle on the basis of that drive information 31a, thus enabling a failure relating to the refrigeration cycle to be detected and displayed in a refrigeration cycle diagnosis result.
If the air conditioning system diagnosis apparatus 100 retains previous drive information, analyzing a refrigeration cycle using the acquired drive information 31a and previous drive information can detect a failure relating to the refrigeration cycle caused by deterioration over time in the air conditioning system, such as refrigerant leakage, and display it in a refrigeration cycle diagnosis result.
If a failure of a refrigeration cycle is found in a refrigeration cycle diagnosis result, generating a diagram in which the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, or the like and their connection lines are highlighted as a system structure diagram allows the relation between the devices forming the refrigeration cycle in the system structure diagram and their connection relations and refrigeration cycle diagnosis result to be easily visible.
For the present embodiment, the communication list generating means 150 acquires the communication destination device lists 33 retained in the devices included in the air conditioning system through the communication means 110 and generates a communication list in which they are integrated. However, the present embodiment is not limited to this operation. As illustrated in
For the present embodiment, the device type indentifying means 140 acquires the device type 32 retained in each of the device included in the air conditioning system through the communication means 110. However, the present embodiment is not limited to this operation. The device type indentifying means 140 may also acquire a communication list from the communication list generating means 150 and estimate the device type 32 on the basis of that communication list and a combination of frequencies of communications indicated in that communication list. For example, in the case of a device group that performs one-to-many communications, a side of “one” is assumed as the outdoor unit 10a, a side of “many” is assumed as the indoor units 10b, and a device that frequently performs one-to-one communications with any one of the indoor units 10b is assumed as the remote controller. With such an operation, communications for acquiring the device type 32 retained in each device are not necessary, so the device type indentifying means 140 can estimate the device type 32 without imposing heavy load on the network 20 and each device, and even if the network 20 or each device is under heavy load, the system structure analyzing means 160 can generate system structure information.
For the present embodiment, the device type indentifying means 140 acquires the device type 32 retained in each of the devices included in the air conditioning system through the communication means 110. However, the present embodiment is not limited to this operation. The device type indentifying means 140 may acquire a communication list from the communication list generating means 150 and estimate the device type 32 from the communication list and the content of a communication message acquired from the network 20 through the communication means 110. For example, the source of communication of a drive stop command is assumed as the remote controller, its destination is assumed as the indoor unit, and the place to which communication of a drive-mode switching command has been sent from the indoor unit is assumed as the outdoor unit. With such an operation, communications for acquiring the device type 32 retained in each device are not necessary, so the device type indentifying means 140 can estimate the device type 32 without imposing heavy load on the network 20 and each device, and even if the network 20 or each device is under heavy load, the system structure analyzing means 160 can generate system structure information.
For the present embodiment, operations of acquiring the drive information 31a of each device by the drive information acquiring means 120 through the communication means 110, acquiring the device type 32 of each device by the device type indentifying means 140 through the communication means 110, and acquiring the communication destination device list 33 of each device by the communication list generating means 150 through the communication means 110 are used. However, the present embodiment is not limited to these operations, For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus and the storage apparatus stores in advance the drive information 31a, device type 32, and communication destination device list 33 supplied from each device through the communication means 110. Then, from that storage apparatus, the drive information acquiring means 120 acquires the drive information 31a of each device, the device type indentifying means 140 acquires the device type 32 of each device, and the communication list generating means 150 acquires the communication destination device list 33 of each device. The configuration in which the drive information 31a, device type 32, and communication destination device list 33 are directly acquired through the communication means 110 and stored in the storage apparatus is used. However, the present embodiment is not limited to this configuration. A configuration in which the drive information 31a, device type 32, and communication destination device list 33 are stored in advance in the storage apparatus using another method and the air conditioning system diagnosis apparatus 100 does not include the communication means 110 may also be used. The information stored in the storage apparatus may be a portion of the drive information 31a, device type 32, and communication destination device list 33. The configuration in which the storage apparatus stores the communication destination device list 33 is used. However, the present embodiment is not limited to this configuration. A configuration in which a communication list is stored instead of the communication destination device list 33 and the communication list generating means 150 acquires the communication list from the storage apparatus may also be used. With the above-described operations, even when the air conditioning system diagnosis apparatus 100 is not connected to a target air conditioning system, a diagnosis can be performed on the air conditioning system,
For the present embodiment, an operation of outputting a system structure diagram in which the content of a refrigeration cycle diagnosis result derived by the system diagnosis means 130 using the refrigeration cycle analyzing means 131 is superimposed to the display unit 180 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. For example, operations described below may also be used, First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a refrigeration cycle diagnosis result derived by the system diagnosis means 130 using the refrigeration cycle analyzing means 131. Then, the diagnosis result superimposed diagram generating means 170 acquires the refrigeration cycle diagnosis result from that storage apparatus and outputs a system structure diagram in which that refrigeration cycle diagnosis result is superimposed to the display unit 180. The configuration in which the storage means acquires and stores in advance a refrigeration cycle diagnosis result derived by the system diagnosis means 130 using the refrigeration cycle analyzing means 131 is used. However, a configuration in which a refrigeration cycle diagnosis result is stored in advance in the storage apparatus using another method and the system diagnosis means 130 is not included may also be used. As described in the above operations, because a refrigeration cycle diagnosis result is stored in the storage apparatus in advance, for an air conditioning system, the refrigeration cycle diagnosis result associated with the configuration of the air conditioning system can be promptly displayed.
For the present embodiment, the configuration in which the diagnosis result superimposed diagram generating means 170 generates a system structure diagram from system structure information derived by the system structure analyzing means 160 and outputs it to the display unit 180 is used. However, the present embodiment is not limited to this configuration. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus and the storage apparatus stores in advance system structure information derived by the system structure analyzing means 160. Then, the diagnosis result superimposed diagram generating means 170 acquires the system structure information from that storage apparatus, generates a system structure diagram, and outputs the system structure diagram in which the content of a refrigeration cycle diagnosis result is superimposed to the display unit 180. The configuration in which the storage means stores in advance system structure information derived by the system structure analyzing means 160 is used. However, a configuration in which system structure Information is stored in advance in the storage apparatus using another method and the system structure analyzing means 160 is not included may also be used. As described in the above operations, because system structure information is stored in the storage apparatus in advance, for an air conditioning system, a system structure diagram can be promptly generated, and a refrigeration cycle diagnosis result associated with the configuration of the air conditioning system can be displayed.
The air conditioning system diagnosis apparatus 100 according to the present embodiment includes at least the component groups (1) to (4), similar to that in Embodiment 1. However, the component group (2), which performs a diagnosis of a state of an air conditioning system, is different from that in Embodiment 1 in the following respects.
(2) A component group that performs a diagnosis of a state of an air conditioning system
The component group (2) in Embodiment 1 has a configuration in which it includes the drive information acquiring means 120 and the system diagnosis means 130 and the system diagnosis means 130 includes the refrigeration cycle analyzing means 131. In contrast, the component group (2) in Embodiment 2 includes communication message acquiring means 121 for acquiring a communication message from the network 20 through the communication means 110. The system diagnosis means 130 include communication message analyzing means 132 for performing a diagnosis of a communication state of each device on the basis of that communication message and deriving a network diagnosis result described below. The communication message analyzing means 132 retains a communication message analysis rule 132a for use in deriving the above network diagnosis result.
The communication message analysis rule 132a may have a configuration achieved by logic on software, or alternatively, may have a configuration achieved by its equivalent circuit device or the like.
In the processing performed by the air conditioning system diagnosis apparatus 100 according to the present embodiment, step 82 is substantially the same as that in Embodiment 1; however, step S1 and step S3 are operations described below.
The communication message acquiring means 121 in the air conditioning system diagnosis apparatus 100 acquires a communication message that contains source information, destination information of communication and the like in communication performed between devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), and remote controller (not illustrated), from the network 20 through the communication means 110 and informs the system diagnosis means 130 of the communication message.
The communication message analyzing means 132 in the system diagnosis means 130 sequentially derives a network diagnosis result that contains information on the presence or absence of a network failure, such as an invalid packet length, from the communication message informed by the communication message acquiring means 121 under the communication message analysis rule 132a.
Here, the communication message analysis rule 132a is a rule for determining a match between a communication message format and a message format specified by a communication protocol used in communications between the devices or determination by the degree of similarity by using comparison with a specified template.
For example, if a communication message has a configuration different from that message format, a network diagnosis result is determined as “abnormal.”
Alternatively, for example, when the communication message analysis rule 132a includes a normal template and an abnormal template for a communication message and similarity between an acquired communication message and each of that normal template and that abnormal template is derived, if the degree of similarity to the abnormal template is higher, a network diagnosis result may be determined as “abnormal,” This degree of similarity can be derived by the following method, for example. A case is discussed where the communication message analysis rule 132a includes normal templates 400 and 401 as the above normal template and abnormal templates 402 and 403 illustrated in
The above-described templates are merely examples. A configuration of each template and a method of deriving the degree of similarity based on each template are not limited to the above examples.
The system diagnosis means 130 informs the diagnosis result superimposed diagram generating means 170 of a network diagnosis result derived by the communication message analyzing means 132.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram that includes icons of devices and lines connecting them and the like from system structure information under the inter-device main connection determining rule 170a. For example, as illustrated in
The diagnosis result superimposed diagram generating means 170 superimposes, in the generated system structure diagram, the content of a network diagnosis result informed by the system diagnosis means 130 in the vicinity of a device or a group of devices related with the network diagnosis result or in the vicinity of their linking lines under the diagnosis result handling system structure diagram generating rule 170b. For example, if the network diagnosis result contains information that indicates detection of a failure in a communication state of devices, as illustrated in
Then the diagnosis result superimposed diagram generating means 170 outputs the system structure diagram generated from the system structure information in step S301 and in which the content of the network diagnosis result is superimposed in step S302 to the display unit 180. When receiving the system structure diagram, the display unit 180 displays that system structure diagram on the display panel 181.
With the above-described configuration and operations, a communication message on a network in an air conditioning system can be acquired, the communication message can be analyzed, a failure in a communication state can be diagnosed, and thus its diagnosis result can be displayed.
If a failure in a communication state is obtained as a network diagnosis result, generating and displaying a diagram that allows all communications between devices to be individually identified visually as a system structure diagram enables the network failure location in that system structure diagram to be specifically identified visually.
For the present embodiment, operations of acquiring a communication message by the communication message acquiring means 121 through the communication means 110, acquiring the device type 32 of each device by the device type indentifying means 140 through the communication means 110, and acquiring the communication destination device list 33 of each device by the communication list generating means 150 through the communication means 110 are used. However, the present embodiment is not limited to these operations, For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a communication message, device type 32, and communication destination device list 33 supplied from each device through the communication means 110. Then, from that storage apparatus, the communication message acquiring means 121 acquires the communication message, the device type indentifying means 140 acquires the device type 32 of each device, and the communication list generating means 150 acquires the communication destination device list 33 of each device. The configuration in which the communication message, device type 32, and communication destination device list 33 are directly acquired through the communication means 110 and stored in the storage apparatus is used. However, the present embodiment is not limited to this configuration. A configuration in which the communication message, device type 32, and communication destination device list 33 are stored in advance in the storage apparatus using another method and the air conditioning system diagnosis apparatus 100 does not include the communication means 110 may also be used. The information stored in the storage apparatus may be a portion of the communication message, device type 32, and communication destination device list 33. The configuration in which the storage apparatus stores the communication destination device list 33 is used. However, the present embodiment is not limited to this configuration. A configuration in which a communication list is stored instead of the communication destination device list 33 and the communication list generating means 150 acquires the communication list from the storage apparatus may also be used. With the above-described operations, even when the air conditioning system diagnosis apparatus 100 is not connected to a target air conditioning system, a diagnosis can be performed on the air conditioning system.
For the present embodiment, an operation of outputting a system structure diagram in which the content of a network diagnosis result derived by the system diagnosis means 130 using the communication message analyzing means 132 is superimposed to the display unit 180 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a network diagnosis result derived by the system diagnosis means 130 using the communication message analyzing means 132. Then, the diagnosis result superimposed diagram generating means 170 acquires the network diagnosis result from that storage apparatus and outputs a system structure diagram in which that network diagnosis result is superimposed to the display unit 180. The configuration in which the storage means acquires and stores in advance a network diagnosis result derived by the system diagnosis means 130 using the communication message analyzing means 132 is used. However, a configuration in which a network diagnosis result is stored in advance in the storage apparatus using another method and the system diagnosis means 130 is not included may also be used. As described in the above operations, because a network diagnosis result is stored in the storage apparatus in advance, for an air conditioning system, the network diagnosis result associated with the configuration of the air conditioning system can be promptly displayed.
The air conditioning system diagnosis apparatus 100 according to the present embodiment includes at least the component groups (1) to (4), similar to that in Embodiment 1. However, the component group (2), which performs a diagnosis of a state of an air conditioning system, is different from that in Embodiment 1 in the following respects.
(2) A component group that performs a diagnosis of a state of an air conditioning system
The component group (2) in Embodiment 1 has a configuration in which it includes the drive information acquiring means 120 and the system diagnosis means 130 and the system diagnosis means 130 includes the refrigeration cycle analyzing means 131. In contrast, the component group (2) in the present embodiment includes communication waveform acquiring means 122 for acquiring a communication waveform from the network 20 through the communication means 110. The system diagnosis means 130 include communication waveform analyzing means 133 for performing a diagnosis of a communication state of each device on the basis of that communication waveform and deriving a network diagnosis result described below. The communication waveform analyzing means 133 retains a communication waveform analysis rule 133a for use in deriving the above network diagnosis result.
The communication waveform analysis rule 133a may have a configuration achieved by logic on software, or alternatively, may have a configuration achieved by its equivalent circuit device or the like.
In the processing performed by the air conditioning system diagnosis apparatus 100 according to the present embodiment, step S2 and step S3 are substantially the same as those in Embodiment 1; however, step S1 is an operation described below.
The details of an operation of step S1 are described below with reference to
The communication waveform acquiring means 122 in the air conditioning system diagnosis apparatus 100 acquires a communication waveform in communication performed between devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), and remote controller (not illustrated), from the network 20 through the communication means 110 and informs the system diagnosis means 130 of the communication waveform.
The communication waveform analyzing means 133 in the system diagnosis means 130 sequentially derives a network diagnosis result that contains information on the presence or absence of a network failure, such as a low signal level or a distorted waveform rise, from a communication waveform informed by the communication waveform acquiring means 122 under the communication waveform analysis rule 133a.
Here, the communication waveform analysis rule 133a is a rule for determining a match between a communication waveform and a proper waveform. For example, if the difference between shape characteristics of a proper waveform and those of a communication waveform, for example, the difference between signal widths, amplitudes or the like exceeds a certain threshold, a network diagnosis result is determined as “abnormal.”
The system diagnosis means 130 informs the diagnosis result superimposed diagram generating means 170 of a network diagnosis result derived by the communication waveform analyzing means 133.
With the above-described configuration and operations, a communication waveform of a control signal or the like in an air conditioning system can be acquired, the communication waveform can be analyzed, a failure in a communication state can be diagnosed, and thus its diagnosis result can be displayed.
If a failure in a communication state is found in a network diagnosis result, generating and displaying a diagram that allows all communications between devices to be individually identified visually as a system structure diagram enables the network failure location in the system structure diagram to be specifically identified visually.
For the present embodiment, operations of acquiring a communication waveform by the communication waveform acquiring means 122 through the communication means 110, acquiring the device type 32 of each device by the device type indentifying means 140 through the communication means 110, and acquiring the communication destination device list 33 of each device by the communication list generating means 150 through the communication means 110 are used. However, the present embodiment is not limited to these operations. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a communication waveform, device type 32, and communication destination device list 33 supplied from each device through the communication means 110. Then, from that storage apparatus, the communication waveform acquiring means 122 acquires the communication waveform, the device type indentifying means 140 acquires the device type 32 of each device, and the communication list generating means 150 acquires the communication destination device list 33 of each device. The configuration in which the communication waveform, device type 32, and communication destination device list 33 are directly acquired through the communication means 110 and stored in the storage apparatus is used. However, the present embodiment is not limited to this configuration. A configuration in which the communication waveform, device type 32, and communication destination device list 33 are stored in advance in the storage apparatus using another method and the air conditioning system diagnosis apparatus 100 does not include the communication means 110 may also be used. The information stored in the storage apparatus may be a portion of the communication waveform, device type 32, and communication destination device list 33. The configuration in which the storage apparatus stores the communication destination device list 33 is used. However, the present embodiment is not limited to this configuration. A configuration in which a communication list is stored instead of the communication destination device list 33 and the communication list generating means 150 acquires the communication list from the storage apparatus may also be used. With the above-described operations, even when the air conditioning system diagnosis apparatus 100 is not connected to a target air conditioning system, a diagnosis can be performed on the air conditioning system.
For the present embodiment, an operation of outputting a system structure diagram in which the content of a network diagnosis result derived by the system diagnosis means 130 using the communication waveform analyzing means 133 is superimposed to the display unit 180 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a network diagnosis result derived by the system diagnosis means 130 using the communication waveform analyzing means 133. Then, the diagnosis result superimposed diagram generating means 170 acquires the network diagnosis result from that storage apparatus and outputs a system structure diagram in which that network diagnosis result is superimposed to the display unit 180. The configuration in which the storage means acquires and stores in advance a network diagnosis result derived by the system diagnosis means 130 using the communication waveform analyzing means 133 is used. However, a configuration in which a network diagnosis result is stored in advance in the storage apparatus using another method and the system diagnosis means 130 is not included may also be used. As described in the above operations, because a network diagnosis result is stored in the storage apparatus in advance, for an air conditioning system, the network diagnosis result associated with the configuration of the air conditioning system can be promptly displayed.
The air conditioning system diagnosis apparatus 100 according to the present embodiment includes at least the component groups (1) to (4), similar to that in Embodiment 1. However, the component group (2), which performs a diagnosis of a state of an air conditioning system, and the component group (3), which analyzes a system structure of an air conditioning system, are different from those in Embodiment 1 in the following respects.
(2) A component group that performs a diagnosis of a state of an air conditioning system
The component group (2) in Embodiment 1 has a configuration in which it includes the drive information acquiring means 120 and the system diagnosis means 130 and the system diagnosis means 130 includes the refrigeration cycle analyzing means 131. In contrast, the component group (2) in the present embodiment includes only the system diagnosis means 130. The system diagnosis means 130 include system configuration analyzing means 134 for deriving a system configuration diagnosis result described below on the basis of system information and previous system structure information 190a described below. The system configuration analyzing means 134 retains a system configuration analysis rule 134a for use in deriving the above system configuration diagnosis result.
(3) A component group that analyzes a system structure of an air conditioning system
The component group (3) in the present embodiment includes previous system structure storage means 190 in which the previous system structure information 190a is stored, in addition to the elements of the component group (3) in Embodiment 1.
The system configuration analysis rule 134a may have a configuration achieved by logic on software, or alternatively, may have a configuration achieved by its equivalent circuit device or the like.
Processing performed by the air conditioning system diagnosis apparatus 100 according to the present embodiment can be broadly classified into (S1) system diagnosis step, (S2) system structure analyzing step, and (S3) diagnosis result system structure diagram superimposing and displaying step, similar to that in Embodiment 1. The details of the operations in step 81 to step 83 are described below for each step.
The details of an operation of step S1 are described below with reference to
The previous system structure storage means 190 in the air conditioning system diagnosis apparatus 100 has stored system structure information at past inspection or at the design stage of a target air conditioning system (hereinafter referred to as previous system structure information 190a).
The system configuration analyzing means 134 in the system diagnosis means 130 compares system structure information derived by the system structure analyzing means 160 in step S204 described below and the previous system structure information 190a stored in the previous system structure storage means 190 and sequentially derives a system configuration diagnosis result that contains information on the presence or absence of a failure in the system configuration, such as detection of an unexpected device and non-detection of an expected device, under the system configuration analysis rule 134a.
Here, the system configuration analysis rule 134a is a rule for determining a match between system structure information derived by the system structure analyzing means 160 and the previous system structure information 190a stored in the previous system structure storage means 190. For example, if a device existing in the previous system structure information 190a does not exist in the system structure information or if a device that does not exist in the previous system structure information 190a exists in the system structure information, a system configuration diagnosis result is determined as “abnormal.” Alternatively, if a connection relation of devices indicated by the previous system structure information 190a differs from a connection relation of devices indicated by the system structure information, a system configuration diagnosis result may also be determined as “abnormal.”
The system diagnosis means 130 informs the diagnosis result superimposed diagram generating means 170 of the system configuration diagnosis result derived by the system configuration analyzing means 134.
The details of an operation of step S2 are described below with reference to
The device type indentifying means 140 acquires the device type 32 retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), remote controller (not illustrated), or the like through the communication means 110 and informs the system structure analyzing means 160 of the device type 32.
Here, the device type 32 is information that indicates a role of each of the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, remote controller, and the like in the air conditioning system.
The communication list generating means 150 acquires the communication destination device list 33 retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), remote controller (not illustrated), or the like through the communication means 110, generates a communication list on the basis of that communication destination device list 33, and informs the system structure analyzing means 160 of the communication list.
Here, the communication list can be a list of combinations of source devices and destination devices, for example.
The system structure analyzing means 160 derives system structure information containing a refrigerant structure that indicates the indoor units 10b and the like connected from the same outdoor unit 10a by a refrigerant pipeline, an interlocking relation that indicates the indoor units 10b and the like operating in conjunction with each other at remote control, and the like from the device type 32 acquired from the device type indentifying means 140 and the communication list acquired from the communication list generating means 150 under the system structure analysis rule 160a.
Here, the system structure analysis rule 160a is a rule for identifying a relation between devices, such as the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, remote controller, and the like, in an air conditioning system. For example, if an air conditioning system includes a plurality of outdoor units 10a and a plurality of indoor units 10b and the communication list has a combination of the outdoor units 10a and indoor units 10b, an outdoor unit 10a and an indoor unit 10b in combination may be identified as belonging to the same refrigerant structure. If the communication list has a plurality of combinations with different indoor units 10b for a single remote controller, these indoor units 10b may be identified as being in an interlocking relation.
The system structure analyzing means 160 informs the diagnosis result superimposed diagram generating means 170 and the system diagnosis means 130 of the derived system structure information.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram that includes icons of devices and lines connecting them from the system structure information under the inter-device main connection determining rule 170a. For example, as illustrated in
The diagnosis result superimposed diagram generating means 170 superimposes, in the system structure diagram generated from the system structure information and illustrating the current system configuration, a past configuration extracted from the system configuration diagnosis result informed by the system diagnosis means 130 under the diagnosis result handling system structure diagram generating rule 170b. For example, as illustrated in
In the foregoing, in the system structure diagram, simply, a device detected in both the system structure information and the system configuration diagnosis result, a device detected in only the system configuration diagnosis result, and a device detected in only the system structure information are represented as individually distinguishable icons. However, the present embodiment is not limited to this manner. For example, when the past configuration and the current configuration are compared on the basis of the system configuration diagnosis result, if it is determined that abnormality occurs in terms of the system configuration, for example, that an unexpected device is connected or that an expected device is not connected, that device or its connection line may be represented so as to be distinguishable from a device or its connection line determined as normal in terms of the system configuration.
Then the diagnosis result superimposed diagram generating means 170 outputs the system structure diagram generated from the system structure information in step S301 and in which the content of the system configuration diagnosis result is superimposed in step S302 to the display unit 180. When receiving the system structure diagram, the display unit 180 displays that system structure diagram on the display panel 181.
With the above-described configuration and operations, a current system configuration can be analyzed from system structure information and previous system structure information, the current system configuration and a past system configuration can be compared and distinguished, they can be superimposed and displayed, and thus the location of a device insufficiently detected or the location of a device excessively detected in the current system configuration can be specifically identified visually.
Analyzing the current system configuration using the system structure information and the previous system structure information enables detecting and displaying a failure relating to a system configuration, such as a situation where an unexpected device is connected or a situation where an expected device is not connected.
For the present embodiment, an operation of outputting a system structure diagram in which the content of a system configuration diagnosis result derived by the system diagnosis means 130 using the system configuration analyzing means 134 is superimposed to the display unit 180 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a system configuration diagnosis result derived by the system diagnosis means 130 using the system configuration analyzing means 134. Then, the diagnosis result superimposed diagram generating means 170 acquires the system configuration diagnosis result from that storage apparatus and outputs a system structure diagram in which that system configuration diagnosis result is superimposed to the display unit 180. The configuration in which the storage means acquires and stores in advance a system configuration diagnosis result derived by the system diagnosis means 130 using the system configuration analyzing means 134 is used, However, a configuration in which a system configuration diagnosis result is stored in advance in the storage apparatus using another method and the system diagnosis means 130 is not included may also be used. As described in the above operations, because a system configuration diagnosis result is stored in the storage apparatus in advance, for an air conditioning system, the system configuration diagnosis result associated with the configuration of the air conditioning system can be promptly displayed.
The air conditioning system diagnosis apparatus 100 according to the present embodiment includes at least the component groups (1) to (4), similar to that in Embodiment 1. However, the component group (2), which performs a diagnosis of a state of an air conditioning system, is different from that in Embodiment 1 in the following respects.
(2) A component group that performs a diagnosis of a state of an air conditioning system
The component group (2) in Embodiment 1 has a configuration in which it includes the drive information acquiring means 120 and the system diagnosis means 130 and the system diagnosis means 130 includes the refrigeration cycle analyzing means 131. In contrast, the component group (2) in the present embodiment includes only the system diagnosis means 130. The system diagnosis means 130 include device setting analyzing means 135 for deriving a device setting diagnosis result described below on the basis of a communication list described below. The device setting analyzing means 135 retains a device setting analysis rule 135a for use in deriving the above device setting diagnosis result.
The device setting analysis rule 135a may have a configuration achieved by logic on software, or alternatively, may have a configuration achieved by its equivalent circuit device or the like.
Processing performed by the air conditioning system diagnosis apparatus 100 according to the present embodiment can be broadly classified into step S1 to step S3 described below.
The device setting analyzing means 135 included in the system diagnosis means 130 derives a device setting diagnosis result that contains detection of an unexpected device and non-detection of an expected device and the like determined using a device ID described below.
The device type indentifying means 140 acquires the device type 32 from the air conditioner 10 or the like through the network 20 and the communication means 110. The communication list generating means 150 acquires the communication destination device list 33 from the air conditioner 10 or the like through the network 20 and the communication means 110 and generates a communication list on the basis of that communication destination device list 33. The system structure analyzing means 160 derives system structure information containing a refrigerant structure, an interlocking relation, and the like in the air conditioning system on the basis of the device type 32 and the communication list.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram on the basis of the system structure information derived by the system structure analyzing means 160, superimposes the content of the device setting diagnosis result derived by the device setting analyzing means 135 in that system structure diagram, and outputs that system structure diagram in which the content of the device setting diagnosis result is superimposed to the display unit 180.
The details of the operations in step S1 to step S3 in
The details of an operation of step S1 are described below with reference to
The system diagnosis means 130 in the air conditioning system diagnosis apparatus 100 acquires a communication list that includes a combination of device IDs described below from the communication list generating means 150.
The device setting analyzing means 135 in the system diagnosis means 130 sequentially derives a device setting diagnosis result that contains information on the presence or absence of a failure in a system configuration, such as detection of an unexpected device, non-detection of an expected device, or double setting of a device ID, from the communication list informed by the communication list generating means 150 under the device setting analysis rule 135a.
Here, the device setting analysis rule 135a is a rule for determining consistency of a combination of device IDs in a communication list. For example, if a device relating to a combination of device IDs on a communication list is not a device that can perform communication, a device setting diagnosis result is determined as “abnormal.” For example, if there is a combination of a single indoor unit 10b and two different outdoor units 10a, a device setting diagnosis result may also be determined as “abnormal.”
The system diagnosis means 130 informs the diagnosis result superimposed diagram generating means 170 of the device setting diagnosis result derived by the device setting analyzing means 135.
The details of an operation of step S2 are described below with reference to
The device type indentifying means 140 acquires the device type 32 retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), remote controller (not illustrated), or the like through the communication means 110 and informs the system structure analyzing means 160 of the device type 32.
Here, the device type 32 is information that indicates a role of each of the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus, and remote controller, and the like in the air conditioning system.
The communication list generating means 150 acquires the communication destination device list 33 containing device IDs and retained in the outdoor unit 10a, indoor unit 10b, refrigerant shunt apparatus (not illustrated), or remote controller (not illustrated) through the communication means 110, generates a communication list on the basis of that communication destination device list 33, and informs the system structure analyzing means 160 and the system diagnosis means 130 of the communication list.
Here, the communication list can be a list of combinations of source devices and destination devices having their respective device IDs, for example.
The system structure analyzing means 160 derives system structure information containing a refrigerant structure that indicates the indoor units 10b and the like connected from the same outdoor unit 10a by a refrigerant pipeline, an interlocking relation that indicates the indoor units 10b and the like operating in conjunction with each other at remote control, and the like from the device type 32 acquired from the device type indentifying means 140 and the communication list acquired from the communication list generating means 150 under the system structure analysis rule 160a.
The system structure analyzing means 160 informs the diagnosis result superimposed diagram generating means 170 of the derived system structure information.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram that includes icons of devices assigned with device IDs and lines connecting them from the system structure information under the inter-device main connection determining rule 170a. For example, as illustrated in
For the above system structure diagram, the icons of the devices assigned with the device IDs may be arranged in the order of the device IDs.
The diagnosis result superimposed diagram generating means 170 superimposes, in the generated system structure diagram, the device setting diagnosis result informed by the system diagnosis means 130 in the vicinity of a device or a group of devices related with the device setting diagnosis result or in the vicinity of their linking line under the diagnosis result handling system structure diagram generating rule 170b. For example, if a failure in device ID setting is detected in a device setting diagnosis result, as illustrated in
Then the diagnosis result superimposed diagram generating means 170 outputs the system structure diagram generated from the system structure information in step S301 and in which the content of the device setting diagnosis result is superimposed in step S302 to the display unit 180. When receiving the system structure diagram, the display unit 180 displays that system structure diagram on the display panel 181.
With the above-described configuration and operations, analyzing a communication list that includes a combination of device IDs by the device setting analyzing means 135 enables detection of a failure in device ID setting and displaying its detection result.
If a failure in device ID setting is found in a diagnosis result, generating a system structure diagram in which devices assigned with their respective device IDs are arranged enables the failure in device ID setting, such as missing of device ID setting, to be specifically identified visually.
For the present embodiment, an operation of outputting a system structure diagram in which the content of a device setting diagnosis result derived by the system diagnosis means 130 using the device setting analyzing means 135 is superimposed to the display unit 180 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. For example, operations described below may also be used. First, the air conditioning system diagnosis apparatus 100 includes a storage apparatus, and the storage apparatus stores in advance a device setting diagnosis result derived by the system diagnosis means 130 using the device setting analyzing means 135. Then, the diagnosis result superimposed diagram generating means 170 acquires the device setting diagnosis result from that storage apparatus and outputs a system structure diagram in which that device setting diagnosis result is superimposed to the display unit 180. The configuration in which the storage means acquires and stores in advance a device setting diagnosis result derived by the system diagnosis means 130 using the device setting analyzing means 135 is used. However, a configuration in which a device setting diagnosis result is stored in advance in the storage apparatus using another method and the system diagnosis means 130 is not included may also be used. As described in the above operations, because a device setting diagnosis result is stored in the storage apparatus in advance, for an air conditioning system, the device setting diagnosis result associated with the configuration of the air conditioning system can be promptly displayed.
In Embodiments 1 to 5, an operation occurring when the system diagnosis means 130 detects one kind of a failure is described. However, when the system diagnosis means 130 detects a plurality of kinds of failures, the diagnosis result superimposed diagram generating means 170 may generate a system structure diagram that illustrates all of the detected failures being superimposed. A description is provided below, concentrating on difference from the air conditioning system diagnosis apparatus 100 according to Embodiment 1.
For the present embodiment, the air conditioning system diagnosis apparatus 100 includes the communication message acquiring means 121 described in Embodiment 2, in addition to the drive information acquiring means 120. The system diagnosis means 130 includes the communication message analyzing means 132 described in Embodiment 2 and the system configuration analyzing means 134 described in Embodiment 4, in addition to the refrigeration cycle analyzing means 131. The air conditioning system diagnosis apparatus 100 further includes the previous system structure storage means 190 described in Embodiment 4.
The refrigeration cycle analyzing means 131 derives a refrigeration cycle diagnosis result, as described in Embodiment 1, the communication message analyzing means 132 derives a network diagnosis result, as described in Embodiment 2, and the system configuration analyzing means 134 derives a system configuration diagnosis result, as described in Embodiment 4. As illustrated in
With the above-described configuration and operations, if a plurality of kinds of failures has been detected in an air conditioning system, generating a system structure diagram that contains an additional drawing element corresponding to each of the failures enables the relation between the plurality of kinds of failures and the system configuration to be easily identified visually.
For the present embodiment, the system diagnosis means 130 includes the refrigeration cycle analyzing means 131, communication message analyzing means 132, and system configuration analyzing means 134. However, the present embodiment is not limited to this configuration. The system diagnosis means 130 may further include the communication waveform acquiring means 122 and communication waveform analyzing means 133 described in Embodiment 3 and the device setting analyzing means 135 described in Embodiment 5, or alternatively, may include a portion of these elements.
For the present embodiment, an operation of generating a system structure diagram that illustrates all of a plurality of kinds of failures detected by the system diagnosis means 130 by the diagnosis result superimposed diagram generating means 170 is used. However, the present embodiment is not limited to this operation. An operation of generating a system structure diagram that illustrates only one or more kinds of failures selected by a user may also be used. With this, although the number of drawing elements in a system structure diagram increases with an increase in the number of kinds of failures, complexity of the system structure diagram can be reduced by restricting displaying to only a failure on which a user places importance, and the relation between the failure and the system configuration can be easily identified visually.
As illustrated in
The system diagnosis result holding means 310 holds a diagnosis result for an air conditioning system being a target of a diagnosis and informs the diagnosis result superimposed diagram generating means 170 of the diagnosis result.
Here, examples of the diagnosis result can include a refrigeration cycle diagnosis result derived by the refrigeration cycle analyzing means 131 described in Embodiment 1, a network diagnosis result derived by each of the communication message analyzing means 132 described in Embodiment 2 and the communication waveform analyzing means 133 disclosed in Embodiment 3, a system configuration diagnosis result derived by the system configuration analyzing means 134 described in Embodiment 4, and a device setting diagnosis result derived by the device setting analyzing means 135 described in Embodiment 5. Any diagnosis result may be used as long as the system diagnosis result holding means 310 can acquire the diagnosis result from any of the above analyzing means and hold it.
The diagnosis result is not limited to the above-described examples. For instance, if each of the devices included in an air conditioning system has the function of diagnosing a failure, a diagnosis result may be acquired through the communication means, or alternatively, may be acquired from a storage apparatus in which the above diagnosis result has been previously stored. Alternatively, a diagnosis result may be acquired from inputting means capable of receiving an entry, such as system installation information, from a user.
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram of an air conditioning system on the basis of a diagnosis result held by the system diagnosis result holding means 310, superimposes information relating to the diagnosis result in that system structure diagram such that the information is highlighted, and outputs the system structure diagram to the display unit 180.
The display unit 180 displays, on the display panel 181, the system structure diagram in which the content of the diagnosis result is superimposed output by the diagnosis result superimposed diagram generating means 170. This system structure diagram may also be a diagram that illustrates the location of each device in a building, as illustrated in
The diagnosis result superimposed diagram generating means 170 generates a system structure diagram illustrated in
With the above-described configuration and operations, generating a system structure diagram of an air conditioning system in response to a diagnosis result for the air conditioning system and superimposing and illustrating the diagnosis result enables the relation between the diagnosis result for the air conditioning system and the system configuration to be easily identified visually.
With this, action, such as a repair, can be speedily performed, and thus a trouble can be solved early.
One example of an application of the present invention can be a device driving abnormality analyzing tool for use in a building equipment management system that includes an air conditioning device and an illumination device. Because a refrigeration cycle of an air conditioning device and a failure in an air conditioning system in a network between devices can be displayed in a readily understandable manner, a failure, for example, aging degradation of the air conditioning device, can be early found, and measures can be carried out.
10 air conditioner, 10a outdoor unit, 10b indoor unit, 20 network, 30 communication means, 31 drive information generating means, 31a drive information, 32 device type, 33 communication destination device list, 100 air conditioning system diagnosis apparatus, 110 communication means, 120 drive information acquiring means, 121 communication message acquiring means, 122 communication waveform acquiring means, 130 system diagnosis means, 131 refrigeration cycle analyzing means, 131a refrigeration cycle analysis rule, 132 communication message analyzing means, 132a communication message analysis rule, 133 communication waveform analyzing means, 133a communication waveform analysis rule, 134 system configuration analyzing means, 134a system configuration analysis rule, 135 device setting analyzing means, 135a device setting analysis rule, 140 device type indentifying means, 150 communication list generating means, 160 system structure analyzing means, 160a system structure analysis rule, 170 diagnosis result superimposed diagram generating means, 170a inter-device main connection determining rule, 170b diagnosis result handling system structure diagram generating rule, 180 display unit, 181 display panel, 190 previous system structure storage means, 190a previous system structure information, 210, 211 outdoor unit icon, 215 insufficient refrigerant displaying section, 220 indoor unit icon, 221 previous system structure information device icon, 222 system structure information device icon, 223 missing ID icon, 230 refrigerant shunt apparatus icon, 240 remote controller icon, 250, 251, 251a connection line, 252 abnormal network line, 260 ID displaying section, 270 building displaying section, 300 air conditioning system diagnosis result display apparatus, 310 system diagnosis result holding means, 400, 401 normal template, 402, 403 abnormal template
Number | Date | Country | Kind |
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2009-141193 | Jun 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/001725 | 3/11/2010 | WO | 00 | 12/6/2011 |