The present disclosure relates to an indoor system and an indoor unit of the air-conditioning apparatus that adjusts an air environment of an air-conditioned space.
Indoor units of existing air-conditioning apparatuses have a basic function of sucking air through an air inlet to cause the air to pass through a heat exchanger and blowing through an air outlet, the air that has passed through the heat exchanger. Furthermore, indoor units of some recent air-conditioning apparatuses have additional functions along with the basic function. In an indoor unit described in Patent Literature 1, a main board and a plurality of drive boards are provided in a housing of a main body. On the main board, electrical components for the basic function are mounted, and on the drive boards, electrical components for the additional functions are mounted.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2004-251545
In the indoor unit described in Patent Literature 1, the drive boards are connected to the main board by respective signal lines. The main board thus needs to have a plurality of connection terminals that allow the drive boards to be connected to the main board. Therefore, the main board is made larger. In the case where the indoor unit of Patent Literature 1 is configured such that the additional functions are controlled by a microcomputer on the main board, the main board needs to have a plurality of connection terminals for use in giving instructions to the respective drive boards. Inevitably, the main board is made larger.
The present disclosure is applied to solve the above problem, and relates to an indoor system and an indoor unit of an air-conditioning apparatus in which a main board is prevented from being made larger.
An indoor unit of an air-conditioning apparatus according to an embodiment of the present disclosure includes a main body including a main board that is provided with a control terminal compatible with a plurality of expansion units. The main board is connected to an expansion board provided with at least one expansion terminal that is a connection terminal compliant with the same standard as the control terminal, and is connected to at least one of the plurality of expansion units via the expansion board.
An indoor system according to the embodiment of the present disclosure includes the above indoor unit of the air-conditioning apparatus and a board unit including a board case. The expansion board is housed in the board case.
According to the embodiment of the present disclosure, the main board can be connected to the expansion units via the expansion board. The main board does not need to have a plurality of connection terminals for connection to the respective expansion units. Therefore, the main board is prevented from being made larger.
An indoor system 100 according to Embodiment 1 includes an indoor unit 10 of an air-conditioning apparatus, an expansion unit 40, and an expansion unit 50. That is, the indoor system 100 and an outdoor unit including a compressor (not illustrated) form the air-conditioning apparatus. In Embodiment 1, the indoor unit 10 is installed in such a manner as to be concealed in a ceiling in an air-conditioned space such as the ceiling of a room, or to be suspended from the ceiling in the air-conditioned space. The indoor unit 10 includes a main body 20 and a decorative panel 30.
The decorative panel 30 has an air inlet 1 and air outlets 2 in its lower surface. The air inlet 1 is located in central part of the lower surface of the decorative panel 30. At the air inlet 1, an air inlet grille 31 is provided. At the air inlet grille 31, a filter 31a that collects dust floating in air is provided.
The main body 20 includes a casing 25, which is a hollow cuboid box and serves as a shell. In the casing 25 of the main body 20, a fan 26 is provided. The fan 26 is a centrifugal fan such as a turbo fan. The fan 26 is located to face the air inlet 1. The fan 26 causes air in the air-conditioned space to be sucked into the casing 25 through the air inlet 1 and to be blown through the air outlets 2. The main body 20 further includes a bell mouth 28 that guides the air sucked through the air inlet 1 to the fan 26, and that is located under the fan 26.
The main body 20 further includes a heat exchanger 27, which is a fin-and-tube heat exchanger, for example. The heat exchanger 27 is connected to the above compressor by a refrigerant pipe, whereby a refrigerant circuit is provided. In the casing 25, the heat exchanger 27 is provided in such a manner as to surround the fan 26. That is, the heat exchanger 27 is located outward of the air inlet 1 and inward of the air outlets 2 as viewed in plan view. The heat exchanger 27 causes heat exchange to be performed between refrigerant that flows in the heat exchanger 27 and air that is sucked into the casing 25 by the fan 26. Under the heat exchanger 27, a drain pan is provided to receive condensation water that is generated from a surface of the heat exchanger 27.
In the indoor system 100, an air inlet passage and air outlet passages are provided. Through the air inlet, the air inlet 1 communicates with the heat exchanger 27, and through the air outlet passages, the heat exchanger 27 communicates with the air outlets 2. As illustrated in
At the air outlets 2 in the decorative panel 30, respective vertical air-flow-direction adjusting vanes 36 are provided swingable to adjust in a vertical direction, the angle of air that is blown from the air outlet 2. Each of the vertical air-flow-direction adjusting vanes 36 is a plate-like element that extends in a longitudinal direction of an associated one of the air outlet passages. Each vertical air-flow-direction adjusting vane 36 is driven by a vertical drive motor 37, which will be described later, and is swung about an axis of rotation that extends in the longitudinal direction of the associated air outlet passage.
At the decorative panel 30 in Embodiment 1, a Move-Eye sensor 71 including an infrared sensor is provided. The infrared sensor detects radiation temperatures in the air-conditioned space. In the Move-Eye sensor 71, the infrared sensor can be rotated in a circumferential direction by a drive unit (not illustrated). The drive unit for the Move-Eye sensor 71 is controlled by a controller 24, which will be described later. When making one full turn in the circumferential direction, the infrared sensor of the Move-Eye sensor 71 detects radiation temperatures in the entire air-conditioned space. The main body 20 in Embodiment 1 further includes a temperature sensor 72 (see
In Embodiment 1, a blowing unit is provided as an example of the expansion unit 40. The blowing unit is located between the casing 25 of the main body 20 and the decorative panel 30. The expansion unit 40 includes four lateral air-flow-direction adjusting members 46, and the number of the lateral air-flow-direction adjusting members 46 is equal to that of the air outlets 2.
The four lateral air-flow-direction adjusting members 46 are provided in the respective air outlet passages in the expansion unit 40 such that the lateral air-flow-direction adjusting members 46 are swingable and associated with respective air outlets, that is, the four air outlets 2. Each of the lateral air-flow-direction adjusting members 46 adjusts in a lateral direction, the angle of air that is blown from the air outlet 2. Each lateral air flow direction adjusting member 46 includes a plurality of plate-like vanes arranged at regular intervals and coupled by a coupling member. In the lateral air-flow-direction adjusting member 46, when a driving force from a lateral driving motor 47, which will be described later, is transmitted to the coupling member, the plate-like vanes are reciprocated in the lateral direction.
In Embodiment 1, a lifting unit that is attached to the decorative panel 30 and automatically moves the air inlet grille 31 up and down is provided as an example of the expansion unit 50. The expansion unit 50 will be described in detail later.
As illustrated in
Therefore, four connection patterns in the indoor unit 100 are illustrated in
Outlines of components and a connection relationship between boards, etc., will be described with reference to
The outdoor unit, which is included together with the indoor unit 10 in the air-conditioning apparatus, includes an outdoor control unit that controls various actuators in the outdoor unit. The controller 24 transmits a control signal to and receives a control signal from the outdoor control unit. That is, the air-conditioning apparatus is controlled by the controller 24 and the outdoor control unit that operates in cooperation with each other. The control terminal 23a is a connection terminal compatible with the expansion unit 40 and the expansion unit 50. That is, the expansion units 40 and 50 are devices compliant with a standard of the control terminal 23a.
The power supply circuit 22 is a direct current (DC) power supply circuit that is connected to, for example, a commercial power source, and converts an alternating current power supply supplied from the commercial power source to a DC power supply. The power supply circuit 22 supplies power to an expansion unit connected to the main board 21. To be more specific, the power supply circuit 22 generates not only power required to drive the main body 20 and the decorative panel 30, but power required to drive the expansion unit 40 and the expansion unit 50. In Embodiment 1, power generated in the power supply circuit 22 is supplied to an expansion board 80 in the expansion unit 40 and a standard board 51 in the expansion unit 50.
The expansion unit 40 includes the expansion board 80 provided with at least one expansion terminal 83 that is a connection terminal compliant with the same standard as the control terminal 23a. That is, the expansion units 40 and 50 are also compliant with the standard of the expansion terminal 83. The expansion board 80 as illustrated in
Furthermore, the expansion board 80 has a relay function of transferring an operation instruction from the controller 24 to an expansion unit. To be more specific, the drive processing unit 44 has a function of determining whether the operation instruction from the controller 24 is an operation instruction for the expansion unit 40 or an operation instruction for the expansion unit 50, and transferring the operation instruction for the expansion unit 50 to the expansion unit 50.
The expansion unit 50 includes the standard board 51 that includes a drive processing unit 54 and an input terminal 55, and that fulfills a standard function of the expansion unit 50. In Embodiment 1, the standard function of the expansion unit 50 is a function of moving the air inlet grille 31 up and down. Furthermore, the expansion unit 50 includes a lifting mechanism 56, which is driven by the drive processing unit 54.
The lifting mechanism 56 includes wires, spools, and lifting drive motors, which are not illustrated. The wires are connected to, for example, the air inlet grille 31 at respective positions, the spools are wound with the wires, and the lifting drive motors rotate the spools. The lifting drive motors operate to unwind the wires wound on the spools or wind the wires around the spools. The drive processing unit 54 drives the lifting mechanism 56 in response to an operation instruction from the operation instruction unit 24b, thereby moving the air inlet grille 31 up or down.
In the case illustrated in
That is, the main board 21 is connected to the expansion unit 50 via the expansion board 80 by the following connections: the wiring line 11 that extends from the expansion board 80 is connected to the control terminal 23a; and the wiring line 12 that extends from the expansion unit 50 including no expansion board 80 is connected to the expansion terminal 83. In this case, the power supply circuit 22 supplies power to the expansion unit 40 through the wiring line 11, and supplies power to the expansion unit 50 through the wiring lines 11 and 12.
The controller 24 has a function of detecting where or not the main body 20 is connected to each of the expansion unit 40 and the expansion unit 50. As illustrated in
As illustrated in
As illustrated in
In the case of adopting each of the configurations as illustrated in
In the configuration as illustrated in
The communication unit 24c communicates with a control device 170, and transfers an operation signal transmitted from the control device 170 to the operation instruction unit 24b. It should be noted that the control device 170 is, for example, a remote control unit for use in operating and managing the indoor system 100 or a central controller that manages the air-conditioning apparatus including the indoor system 100 in a centralized manner. The control device 170 is connected to the communication unit 24c by a wiring line or wirelessly. Using the control device 170, a user can set operating conditions of the air-conditioning apparatus, and change settings of the air-conditioning apparatus. More specifically, the control device 170 receives an instruction regarding an operation of setting or changing an air flow direction, an air flow rate, a target temperature, etc., and transmits an operation signal indicating details of the operation to the communication unit 24c.
The arithmetic unit 24d acquires detection data from various sensors, for example, the Move-Eye sensor 71, the temperature sensor 72, and the humidity sensor 73, and performs arithmetic operations for air-conditioning control on the basis of the acquired detection data. For example, the arithmetic unit 24d acquires, as detection data from the Move-Eye sensor 71, information indicating radiation temperatures in the air-conditioned space, and performs, for example, processing of detecting, from the entire air-conditioned space, an area having a radiation temperature higher than a reference temperature, thereby detecting the position of a human body in the air-conditioned space. The arithmetic unit 24d outputs position information indicating the detected position of the human body to the operation instruction unit 24b.
Furthermore, the arithmetic unit 24d acquires, as detection data from the temperature sensor 72, information indicating the temperature of air, compares the temperature indicated by the detection data with a reference temperature set in advance, and outputs temperature comparison information indicating the result of the above comparison to the operation instruction unit 24b. The reference temperature is, for example, a target temperature set by using, for example, the control device 170. The set value can be changed as appropriate. The arithmetic unit 24d acquires, as detection data from the humidity sensor 73, information indicating the humidity of the air, compares the humidity indicated by the detection data with a reference humidity set in advance, and outputs humidity comparison information indicating the result of the comparison to the operation instruction unit 24b. The reference humidity is set in advance in consideration of, for example, comfort. The set value can be changed as appropriate.
The operation instruction unit 24b determines the system configuration on the basis of the connection-state data, which is output from the connection determining unit 24a at turn-on. Then, the operation instruction unit 24b controls, based on the determined system configuration, at least one of the fan 26, the expansion unit 40, the expansion unit 50, and the vertical drive motor 37 on the basis of basic settings. It should be noted that the basic settings are settings at the time when, for example, the indoor system 100 was last turned off. The basic settings are not limited to the latest settings, and may be default settings at shipment, for example.
In the system configuration as illustrated in
The operation instruction unit 24b controls the fan 26, the expansion unit 40, the expansion unit 50, and the vertical drive motor 37 on the basis of an operation signal output from the communication unit 24c, or on the basis of position information, temperature comparison information, or humidity comparison information that is output from the arithmetic unit 24d. Upon receipt of detection data indicating the position of the human body from the Move-Eye sensor 71, the operation instruction unit 24b operates at least one of the fan 26, the vertical air-flow-direction adjusting vanes 36, and the lateral air-flow-direction adjusting members 46 such that, for example, air blown from the air outlets 2 is made to flow toward a region covering the position of the human body.
More specifically, the operation instruction unit 24b transmits a control signal to the vertical drive motor 37 to cause the vertical drive motor 37 to be driven, thereby operating the vertical air-flow-direction adjusting vanes 36. To operate the lateral air-flow-direction adjusting members 46, the operation instruction unit 24b transmits, as an operation instruction, a lateral drive signal for driving the lateral driving motor 47 to the drive processing unit 44 on the expansion board 80 via the control terminal 23a. The drive processing unit 44 drives the lateral driving motor 47 in response to the lateral drive signal from the operation instruction unit 24b, thereby operating the lateral air-flow-direction adjusting members 46.
Upon receipt of an operation signal indicating an instruction for moving the air inlet grille 31 down or up, from the control device 170, the operation instruction unit 24b transmits, as an operation instruction, a lifting drive signal for driving the lifting mechanism 56 to the drive processing unit 44 on the expansion board 80 via the control terminal 23a. The drive processing unit 44 transmits the lifting drive signal transmitted from the operation instruction unit 24b, to the drive processing unit 54 via the expansion terminal 83. The drive processing unit 54 drives the lifting mechanism 56 in response to the lifting drive signal transmitted from the operation instruction unit 24b via the expansion board 80, thereby moving the air inlet grille 31 down or up.
The storage unit 24e stores, for example, data indicating the reference temperature and the reference humidity and an operation program for the controller 24. Furthermore, the operation instruction unit 24b stores connection-state data indicating the result of determination by the connection determining unit 24a, into the storage unit 24e. The connection-state data may be stored into the storage unit 24e by the connection determining unit 24a. In this case, the operation instruction unit 24b reads the connection-state data from the storage unit 24e to determine a system configuration.
Although it is described above by way of example that two expansion units are provided in the indoor unit 10, it is not limitative. Three or more expansion units may be provided into the indoor unit 10.
In the above example, it is assumed that the expansion unit 60 is not compliant with the standard of the control terminal 23a and the expansion terminal 83. The main board 21 includes a control terminal 23c, which is included in the terminal unit 23. A wiring line 14 extending from the input terminal 65 is connected to the control terminal 23c. The power supply circuit 22 further generates power required to drive the expansion unit 60 and supplies the power to the expansion unit 60 through the wiring line 14.
To operate the expansion unit 60, the operation instruction unit 24b transmits, as an operation instruction, a humidification drive signal for driving the humidifying mechanism 66 to the drive processing unit 64 via the control terminal 23c. In response to the humidification drive signal from the operation instruction unit 24b, the drive processing unit 64 drives the humidifying mechanism 66, thereby adjusting the humidity of air to be blown into the room.
The controller 24, the drive processing unit 44, and the drive processing unit 54 are hardware such as circuit devices that fulfill the functions described above, or an arithmetic device such as a microcomputer, and software that fulfills the above functions in cooperation with the arithmetic device. The storage unit 24e is, for example, a random access memory (RAM), a read only memory (ROM), a programmable ROM (PROM) such as a flash memory, or a hard disk drive (HDD).
When the indoor system 100 is turned on, the connection determining unit 24a determines a connection state between the main body 20 and each of the expansion unit 40 and the expansion unit 50, and outputs connection-state data indicating the result of the above determination to the operation instruction unit 24b (step S101).
Upon of receipt of connection-state data indicating that only the expansion unit 40 is connected (see
Upon of receipt of connection-state data indicating that only the expansion unit 50 is connected (see
Upon receipt of connection-state data indicating that both the expansion unit 40 and the expansion unit 50 are connected (see
In response to the operation instruction for the expansion unit 40 that is transmitted from the operation instruction unit 24b, the drive processing unit 44 outputs a drive signal to the lateral driving motor 47 (step S103), thereby operating the lateral air-flow-direction adjusting members 46 (step S104). Furthermore, the drive processing unit 44 transfers the operation instruction for the expansion unit 50 that is transmitted from the operation instruction unit 24b, to the drive processing unit 54 in the expansion unit 50 (step S109). In response to the operation instruction transferred from the drive processing unit 44, the drive processing unit 54 outputs a drive signal for starting the initial operation to the lifting mechanism 56 (step S106), thereby operating the lifting mechanism 56 (step S107).
In Embodiment 1, since the lifting unit is an example of the expansion unit 50, it is also assumed that the expansion unit 50 are not operated at turn-on. Therefore, if the initial operation of the expansion unit 50 is not included in the basic settings, the operation instruction unit 24b will not generate an operation instruction for the expansion unit 50.
The connection determining unit 24a or the operation instruction unit 24b stores connection-state data into the storage unit 24e as a step in processing which is performed at turn-on, as illustrated in
As described above, in the indoor unit 10 in Embodiment 1, the main board 21 is connected to the expansion unit 50 via the expansion board 80. Therefore, the main board 21 does not need to have a plurality of connection terminals for connection to the expansion units. Therefore, the main board 21 is not made larger. In other words, in the indoor unit 10, even in the case of adding thereto various functions other than the basic function, it is not necessary to change the size of the main board 21. It is therefore possible to improve cost effectiveness. Furthermore, since the main board 21 is compact in size, a sufficient air passage can be secured in the casing 25. Therefore, it is possible to improve the performance of the indoor unit 10 and the quality of air-conditioning control.
To be more specific, in the indoor unit 10 in Embodiment 1, the expansion board 80 is provided in the expansion unit 40, which is one of the plurality of expansion units compatible with the control terminal 23a. The main board 21 is connected to the expansion unit 50 by the following connections: the wiring line 11 extending from the expansion unit 40 is connected to the control terminal 23a; and the wiring line 12 extending from the expansion unit 50 is connected to the expansion terminal 83 of the expansion board 80. Therefore, the main board 21 does not need to have a connection terminal for connection to the expansion unit 50. The main board 21 can be thus made compact in size. Therefore, even in the case where a plurality of expansion units are added to the indoor unit 10, the casing 25 that is a shell of the main body 20 can be made smaller, thus reducing constraints on the place where the indoor unit 10 is installed.
In the case where the wiring line 11 extending from the expansion board 80 is connected to the control terminal 23a and the wiring line 12 extending from the expansion unit 50 is connected to the expansion terminal 83, the controller 24 transmits an operation instruction for the expansion unit 40 and an operation instruction for the expansion unit 50 to the expansion unit 40. That is, in the indoor unit 10, in the case where the main board 21, the expansion board 80, and the standard board 51 are connected in series by the wiring lines, control signals can be transmitted from the controller 24 not only to the expansion unit 40 but to the expansion unit 50. In addition, in the case where only the expansion unit 40 is connected to the main board 21, the controller 24 transmits an operation instruction to the expansion unit 40 only. In the case where the wiring line 12 extending from the expansion unit 50 is connected to the control terminal 23a, the controller 24 directly transmits an operation instruction to the expansion unit 50. Therefore, the main board 21 can be made compact in size, and the expansion units can be smoothly controlled.
Furthermore, the main board 21 includes the power supply circuit 22 that supplies power to an expansion unit connected to the main board 21. For example, in the system configuration as illustrated in
In the case where the expansion unit 40, which is the blowing unit, is attached to the indoor unit 10, the flow direction of air to be blown from the air outlets 2 can be adjusted not only in the vertical direction but in the lateral direction. It is therefore possible to further improve the quality of air-conditioning. In the case where the expansion unit 50, which is the lifting unit, is attached to the indoor unit 10, the air inlet grille 31 can be automatically moved up and down. It is therefore possible to improve user convenience. In addition, in the case where the expansion unit 60, which is the humidifier, is attached to the indoor unit 10, the humidity in the air-conditioned space can be finely adjusted. It is therefore possible to improve user comfort.
Although it is described above by way of example that the expansion board 80 including the expansion terminal 83 is provided in the expansion unit 40, it is not limitative. The expansion board 80 may be provided in another expansion unit. In the following, it is assumed that the expansion board 80 is provided in the expansion unit 50. A configuration and an operation different from those described above will be described.
In the above configuration, the wiring line 12 extending from the input terminal 55 of the expansion unit 50 is connected to the control terminal 23a of the main board 21 in the main body 20. Furthermore, the wiring line 11 extending from the input terminal 45 of the expansion unit 40 is connected to the expansion terminal 83 of the expansion board 80 in the expansion unit 50. The power supply circuit 22 supplies power to the expansion unit 50 through the wiring line 12, and supplies power to the expansion unit 40 through the wiring lines 11 and 12.
To move the air inlet grille 31 up or down, the operation instruction unit 24b transmits a lifting drive signal for driving the lifting mechanism 56 to the drive processing unit 54 on the expansion board 80 via the control terminal 23a. The drive processing unit 54 drives the lifting mechanism 56 in response to the lifting drive signal from the operation instruction unit 24b, thereby moving the air inlet grille 31 up or down.
As described above, the expansion board 80 in the indoor unit 10 of modification 1-1 is provided in the expansion unit 50, which is one of the plurality of expansion units compatible with the control terminal 23a. The main board 21 is connected to the expansion unit 40 by the following connections: the wiring line 12 extending from the expansion unit 50 is connected to the control terminal 23a; and the wiring line 11 extending from the expansion unit 40 is connected to the expansion terminal 83 of the expansion board 80. Therefore, the main board 21 does not need to have a connection terminal for connection to the expansion unit 40, and the main board 21 can be made compact in size. Thus, even in the case where a plurality of expansion units are added to the indoor unit 10, the casing 25 that is a shell of the main body 20 can be made smaller, thereby reducing constraints on the place where the indoor unit 10 is installed.
In the case where the wiring line 12 extending from the expansion board 80 is connected to the control terminal 23a and the wiring line 11 extending from the expansion unit 40 is connected to the expansion terminal 83, the controller 24 transmits an operation instruction for the expansion unit 40 and an operation instruction for the expansion unit 50 to the expansion unit 50. That is, in the indoor unit 10, in the case where the main board 21, the expansion board 80, and the standard board 41 are connected in series by the wiring lines, control signals can be transmitted from the controller 24 not only to the expansion unit 50 but to the expansion unit 40. Therefore, the main board 21 can be made compact in size, and the expansion units can be smoothly controlled.
For example, in the system configuration as illustrated in
Although
The connection determining unit 24a of modification 1-2 determines a connection state between the main body 20 and each of the expansion unit 40, the expansion unit 50, and the expansion unit 60 at turn-on, and outputs connection-state data indicating the result of the determination to the operation instruction unit 24b.
In the case of operating the expansion unit 60, the operation instruction unit 24b of modification 1-2 transmits a humidification drive signal to the drive processing unit 44 on the expansion board 80 via the control terminal 23a. The drive processing unit 44 transfers the humidification drive signal transmitted from the operation instruction unit 24b to the drive processing unit 44 in the expansion unit 50 via the expansion terminal 83. The drive processing unit 54 transmits the humidification drive signal transferred from the drive processing unit 54 to the drive processing unit 64 in the expansion unit 60 via the expansion terminal 83. In response to the humidification drive signal transmitted from the operation instruction unit 24b via the drive processing unit 44 and the drive processing unit 54, the drive processing unit 64 drives the humidifying mechanism 66, thereby adjusting the humidity of air that is blown into the room.
The number of expansion units connected in series to the indoor unit 10 is not limited to three. The indoor unit 10 may be connected in series to four or more expansion units. In the case where some of the expansion units include respective expansion boards 80, the main board 21 is connected to the expansion units including the respective expansion boards 80 via the expansion boards 80 by the following connections: a wiring line extending from one of the expansion boards 80 is connected to the control terminal 23a; and the expansion boards 80 are connected in series. In such a configuration, in the case where an expansion unit including no expansion board 80 is attached to the indoor unit 10, the expansion boards 80 and a standard board are connected in series, whereby the main board 21 is connected to the expansion unit including no expansion board 80. In the example as illustrated in
As described above, in the indoor unit 10 according to modification 1-2, in the case where the main board 21 is connected in series to the two expansion boards 80 and the standard board 51 by the wiring lines, control signals can be transmitted from the controller 24 not only to the expansion unit 40 but to the expansion units 50 and 60. Therefore, the main board 21 can be made compact in size, and the expansion units can be smoothly controlled.
The configuration of modification 1-1 as described above can also be applied to the indoor unit 10 and the indoor system 100 in modification 1-2. That is, the main body 20 may be connected to the expansion unit 50, the expansion unit 50 may be connected to the expansion unit 40, and the expansion unit 40 may be connected to the expansion unit 60. Furthermore, if the expansion unit 60 is made to have a relay function by, for example, replacing the standard board 61 by the expansion board 80, it is possible to further obtain another system configuration.
Although
The expansion board 80 of modification 1-3 includes two expansion terminals 83. The wiring line 12 extending from the input terminal 55 of the expansion unit 50 is connected to one of the expansion terminals 83, and the wiring line 14 extending from the input terminal 65 of the expansion unit 60 is connected to the other second expansion terminal 83. The power supply circuit 22, therefore, supplies power to the expansion unit 60 through the wiring lines 11 and 14.
In the case of operating the expansion unit 60, the operation instruction unit 24b transmits a humidification drive signal to the drive processing unit 44 on the expansion board 80 via the control terminal 23a. The drive processing unit 44 transmits the humidification drive signal transmitted from the operation instruction unit 24b to the drive processing unit 64 via the above other expansion terminal 83. In response to the humidification drive signal transmitted from the operation instruction unit 24b via the expansion board 80, the drive processing unit 64 drives the humidifying mechanism 66, thereby adjusting the humidity of air that is blown into the room.
Although
As described above, in the indoor unit 10 according to modification 1-3, the controller 24 generates an operation instruction for each of the expansion units connected to the main body 20 and transmits the operation instruction to each expansion unit via the control terminal 23a. It is therefore unnecessary to provide the control terminal 23c as illustrated in
With respect to Embodiment 1, although it is described above by way of example that the expansion board 80 is provided in the expansion unit, it is not limitative. An indoor system according to Embodiment 2 is featured in that the expansion board 80 is provided in the main body 20. Regarding Embodiment 2, components that are the same as or equivalent to those in Embodiment 1 will be denoted by the same reference signs, and their descriptions will thus be omitted.
The main body 20A has an expansion board 80 including a plurality of expansion terminals 83 compliant with the same standard as the control terminal 23a. In the example as illustrated in
It is assumed that the expansion units 40, 50, and 60 and the Move-Eye sensor 71 are compliant with the standard of the control terminal 23a and the expansion terminals 83. Therefore, the wiring line 11 extending from the expansion unit 40, the wiring line 12 extending from the expansion unit 50, the wiring line 14 extending from the expansion unit 60, and a wiring line 15 extending from the Move-Eye sensor 71 are connected to respective expansion terminals 83.
The connection determining unit 24a in Embodiment 2 detects, at turn-on, whether or not the main body 20A is connected to each of two or more expansion units. In the configuration as illustrated in
The power supply circuit 22 supplies power to the expansion unit 40, the expansion unit 50, the expansion unit 60, and the Move-Eye sensor 71 through the wiring line 18 and respective wiring lines, that is, to the expansion unit 40, the expansion unit 50, the expansion unit 60, and the Move-Eye sensor 71 through the wiring lines 18 and 11, the wiring lines 18 and 12, the wiring lines 18 and 14, and the wiring lines 18 and 15, respectively.
Although
As described above, in the indoor unit 10A in Embodiment 2, the main board 21 can be connected to a plurality of expansion units via the expansion board 80. Therefore, the main board 21 does not need to have a plurality of control terminals 23a for connection to the respective expansion units. Therefore, the main board 21 is not made larger, and the cost effectiveness can be improved.
The expansion board 80 is removably provided in the main body 20A. To be more specific, even in the case where a plurality of expansion units are attached to the indoor unit 10A, if the expansion board 80 is added to the indoor unit 10A, it is not necessary to change the size of the main board 21. In the case where an expansion unit is not attached to the indoor unit 10A, the expansion board 80 is not added to the indoor unit 10A, whereby an air passage in the casing 25 can be expanded. That is, since the size of the main board 21 is not increased, the cost effectiveness is improved. In addition, since a sufficient air passage can be ensued in the casing 25, the performance of the indoor unit 10A can be improved.
The main board 21 is connected to one or more expansion units via the expansion board 80 by the following connections: the wiring line extending from the expansion board 80 is connected to the control terminal 23a; and a wiring line or wiring lines extending from the one or more expansion units are connected to the expansion terminals 83. Therefore, regarding the control terminal 23a, it suffices that the main board 21 is provided with only one control terminal 23a. Thus, the main board 21 can be made compact in size.
When detecting an expansion unit connected via the expansion board 80, the controller 24 transmits an operation instruction to the detected expansion unit via the expansion board 80. That is, in the indoor unit 10A, a control signal can be transmitted from the controller 24 to one or more expansion units via the expansion board 80. Therefore, the expansion units can be smoothly controlled.
In the example as illustrated in
Although
As described above, also, in the indoor unit 10A according to modification 2-1, the number of control terminals provided in the main board 21 can be reduced to the minimum. Therefore, the main board 21 is not made larger, and the cost effectiveness is improved.
As illustrated in
As described above, in the indoor system 300 according to Embodiment 3, the main board 21 can be connected to a plurality of expansion units via the expansion board 80 provided in the board unit 90 externally attached to the main body 20. Therefore, the main board 21 does not need to have a plurality of control terminals 23a for connection to the respective expansion units. Therefore, the main board 21 is not made larger, and the cost effectiveness is improved. Furthermore, even if the configuration of modification 2-1 is applied to Embodiment 3, the number of terminals provided in the main board 21 can be reduced to the minimum. Thus, the main board 21 is not made larger, and the cost effectiveness can be improved. It should be noted that the board unit 90 may be detachably attached to the decorative panel 30.
The above embodiments are preferred concrete examples of the indoor system and the indoor unit of the air-conditioning apparatus, and are not intended to limit the technical scope of the present disclosure. For example, although
Although the blowing unit, the lifting unit, the direct-contact humidifier, and the Move-Eye sensor 71 are described as examples of the expansion units added to the indoor unit in the above embodiments, the expansion units are not limited to those examples. Various devices, such as an automatic filter cleaning unit, an air outlet shutter plate, a high-powered deodorizing filter, and a wireless light-receiving kit, can be used as expansion units to be added to the indoor unit according to each of the above embodiments.
This application is a U.S. national stage application of International Application No. PCT/JP2018/006776, filed on Feb. 23, 2018, the contents of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/006776 | 2/23/2018 | WO | 00 |