This application claims the priority benefit of Taiwan application serial no. 111111821, filed on Mar. 29, 2022. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a multi-fan system and a driving method thereof, and particularly to a multi-fan system and a driving method thereof capable of driving multiple fans of the multi-fan system and multiple light emitting elements.
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Therefore, how to effectively reduce the number of input terminals to reduce the volume of the electronic device and save wire costs is one of the research focuses of persons skilled in the art.
The disclosure provides a multi-fan system and a driving method thereof capable of driving multiple fans of the multi-fan system and multiple light emitting elements. In addition, the multi-fan system and the driving method thereof of the disclosure can effectively reduce the number of input terminals to reduce the volume of the electronic device and save wire costs.
The multi-fan system of the disclosure includes a control source circuit and multiple electronic devices. The control source circuit includes a driving signal output terminal. The control source circuit outputs a device driving signal string through the driving signal output terminal. The device driving signal string includes multiple device driving signals with different identification codes. The electronic devices are commonly coupled to the driving signal output terminal. Each of the electronic devices includes a driving signal input terminal, a fan, a light emitting element group, and a controller. The driving signal input terminal is electrically connected to the driving signal output terminal. The controller is coupled to the fan, the light emitting element group, and the driving signal input terminal. The controller receives a corresponding device driving signal in the device driving signal string through the driving signal input terminal. The corresponding device driving signal has a corresponding identification code corresponding to a corresponding electronic device among the electronic devices. The controller controls an operation of at least one of the fan and the light emitting element group based on the corresponding device driving signal.
The driving method of the disclosure is used for a multi-fan system. The multi-fan system includes a control source circuit and multiple electronic devices. The control source circuit is electrically connected to the electronic devices. The control source circuit includes a driving signal output terminal. Each of the electronic devices includes a driving signal input terminal, a fan, and a light emitting element group. The driving method includes the following steps. A device driving signal string is output by the control source circuit through the driving signal output terminal of the control source circuit. The device driving signal string includes multiple device driving signals with different identification codes. A corresponding device driving signal in the device driving signal string is received by each of the electronic devices through the driving signal input terminal. The corresponding device driving signal has a corresponding identification code corresponding to a corresponding electronic device among the electronic devices. An operation of at least one of the fan and the light emitting element group is controlled by each of the electronic devices based on the corresponding device driving signal.
Based on the above, each of the electronic devices is connected to the driving signal output terminal of the control source circuit through the driving signal input terminal to receive the corresponding device driving signal. The electronic devices respectively control the operation of at least one of the fan and the light emitting element group based on the corresponding device driving signal. Therefore, the disclosure can enable the electronic device to drive at least one of the fan and the light emitting element group by using a signal received by the driving signal input terminal. In this way, the disclosure can reduce the number of input terminals of the electronic device and the number of output terminals of the control source circuit, thereby reducing the volumes of the control source circuit and the electronic device and saving wire costs.
In order for the features and advantages of the disclosure to be more comprehensible, the following specific embodiments are described in detail in conjunction with the drawings.
A part of the embodiments of the disclosure will be described in detail with reference to the drawings. The reference numerals in the following description will be regarded as referring to the same or similar elements when the same reference numerals appear in different drawings. The embodiments are only a part of the disclosure and do not disclose all possible implementations of the disclosure. Specifically, the embodiments are only examples within the protection scope of the disclosure.
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In the embodiment, the controller 130 is coupled to the fan 110 and the light emitting element group 120. In Step S110, the controller 130 may receive a device driving signal SD1 via the driving signal input terminal TI, and drive the fan 110 by using the device driving signal SD1. In other words, in Step S110, the controller 130 drives the fan 110 by using the device driving signal SD1 received via the driving signal input terminal TI.
In Step S120, when the device driving signal SD1 is converted into a device driving signal SD2 and a control signal SC is received via the signal transmission terminal TT, the controller 130 provides the fan driving signal SD_FAN based on the control signal SC to control the operation of the fan 110 and provide the light emitting driving signal string SD_LG. In other words, when the device driving signal SD1 is converted into the device driving signal SD2, the controller 130 provides the fan driving signal SD_FAN and the light emitting driving signal string SD_LG based on the control signal SC received via the signal transmission terminal TT. In the embodiment, the controller 130 drives the fan 110 by using the fan driving signal SD_FAN, and drives the light emitting element group 120 by using the light emitting driving signal string SD_LG.
In the embodiment, the device driving signal SD1, the device driving signal SD2, and the fan driving signal SD_FAN are respectively a pulse width modulation (PWM) signal. The fan 110 may provide a fan speed corresponding to a duty cycle based on the duty cycle of one of the device driving signal SD1 and the fan driving signal SD_FAN.
In the embodiment, the device driving signal SD1 and the device driving signal SD2 may be provided by, for example, a driving signal generating circuit.
It is worth mentioning here that the electronic device 100 receives the device driving signal SD1 via the driving signal input terminal TI. When the control signal SC is received via the signal transmission terminal TT during the period of converting the device driving signal SD1 into the device driving signal SD2, the electronic device 100 provides the fan driving signal SD_FAN to drive the fan 110, and provides the light emitting driving signal string SD_LG to drive the light emitting element group 120. The electronic device 100 may drive the fan 110 and the light emitting element group 120 only by using the signals received by the driving signal input terminal TI and the signal transmission terminal TT. Therefore, the electronic device 100 and the driving method S100 of the embodiment can effectively reduce the number of input terminals of the electronic device 100, thereby reducing the volume of the electronic device 100.
In the embodiment, the controller 130 is, for example, a central processing unit (CPU), other programmable general-purpose or specific-purpose microprocessors, digital signal processors (DSPs), programmable controllers, application specific integrated circuits (ASIC), programmable logic devices (PLDs), other similar devices, or a combination of the devices, which may load and execute a computer program.
In the embodiment, the driving signal input terminal TI and the signal transmission terminal TT are disposed outside the controller 130 (for example, disposed on the housing of the electronic device 100). In some embodiments, the driving signal input terminal TI and the signal transmission terminal TT are disposed on the controller 130.
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On the other hand, if the controller 130 judges that the device driving signal SD1 is converted into the device driving signal SD2 at a time point t1 in Step S220, the controller 130 judges in Step S230 whether a default instruction DI of the control signal SC is received. In Step S230, the controller 130 identifies the waveform of the control signal SC after the time point t1. When the controller 130 identifies that a part of the waveform of the control signal SC conforms to the waveform of the default instruction DI at a time point t2, the controller 130 separates the fan driving signal SD_FAN and the light emitting driving signal string SD_LG from the device driving signal SD2 in Step 5240. In other words, the controller 130 separates the fan driving signal SD_FAN and the light emitting driving signal string SD_LG from the device driving signal SD2 at the time point t2.
In the embodiment, the device driving signal SD2 is a driving signal combined by multiple driving signals with different frequencies. For example, the light emitting driving signal strings SD_LG and the fan driving signal SD_FAN are encoded as the device driving signal SD2. In the embodiment, the frequency of the light emitting driving signal string SD_LG is significantly greater than or equal to the frequency of the fan driving signal SD_FAN. Specifically, the frequency (about several megahertz (MHz)) of the light emitting driving signal string SD_LG is greater than or equal to 10 times the frequency (about several kilohertz (kHz) to hundred kilohertz) of the fan driving signal SD_FAN. Therefore, the controller 130 can separate the fan driving signal SD_FAN and the light emitting driving signal string SD_LG from the device driving signal SD2 based on the obvious frequency difference. For another example, the light emitting driving signal string SD_LG and the fan driving signal SD_FAN are encoded as the device driving signal SD2 based on an encoding protocol (also referred to as an encoding rule). Therefore, the controller 130 can separate the fan driving signal SD_FAN and the light emitting driving signal string SD_LG from the device driving signal SD2 based on the encoding protocol (or the encoding rule).
In Step S250, the controller 130 drives the fan 110 by using the fan driving signal SD_FAN, and drives the light emitting element group 120 by using the light emitting driving signal string SD_LG. Therefore, after the time point t2, the fan 110 is driven by the fan driving signal SD_FAN. The light emitting element group 120 is driven by the light emitting driving signal string SD_LG.
In the embodiment, after the time point t2, the light emitting driving signal string SD_LG is continuously separated. For example, the light emitting driving signal string SD_LG is temporally divided into multiple segments. Each segment includes header data HD, driving data D1 to Dn, and footer data BD. In the embodiment, the light emitting element LD1 identifies the light emitting driving signal string SD_LG by the header data HD, and provides a light signal in response to the driving data D1. The light emitting element LD2 identifies the light emitting driving signal string SD_LG by the header data HD, and provides a light signal in response to the driving data D2, and so on. The footer data BD indicates an end message of each segment.
On the other hand, when the controller 130 does not identify the waveform conforming to the default instruction DI in Step S230, the driving method S200 returns to Step S210. In some embodiments, the device driving signal SD2 is maintained for a default maintaining time length. When the maintaining time of the device driving signal SD2 reaches the default maintaining time length, the device driving signal SD2 is converted into the device driving signal SD1. Therefore, the controller 130 drives the fan 110 by using the device driving signal SD1 in Step S210.
In some embodiments, between the time points t1 and t2, the controller 130 may drive the fan 110 by using the device driving signal SD2.
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On the other hand, if the controller 230 judges that the device driving signal SD1 is converted into the device driving signal SD2 at a time point t1 in Step S320, the controller 230 outputs a feedback signal SFB in Step S330. In other words, the controller 230 outputs the feedback signal SFB via the signal transmission terminal TT during a time interval of receiving the device driving signal SD2. The feedback signal SFB may include operating parameters, such as an operating time length, a rotational speed, and other parameters, of the fan 210. In addition, after outputting the feedback signal SFB, the controller 230 waits for a control signal SC. Therefore, the controller 230 outputs the feedback signal SFB via the signal transmission terminal TT and receives the control signal SC via the signal transmission terminal TT. The signal transmission terminal TT of the embodiment is a bidirectional transmission terminal.
For example, the control signal SC may be provided by a signal generator (not shown). The signal generator may be connected to the controller 230 via the signal transmission terminal TT. Therefore, the signal generator may receive the feedback signal SFB and provide the control signal SC in response to the feedback signal SFB. In the embodiment, the signal generator may be disposed outside the electronic device 200. In the embodiment, the signal generator is, for example, a central processing unit, other programmable general-purpose or specific-purpose microprocessors, digital signal processors, programmable controllers, application specific integrated circuits, programmable logic devices, other similar devices, or a combination of the devices, which may load and execute a computer program.
In the embodiment, the duty cycle of the device driving signal SD1 is controlled within a first duty cycle range. The first duty cycle range is, for example, a default duty cycle range of the fan 210 under normal operation. Similarly, the duty cycle of the fan driving signal SD_FAN is also controlled within the first duty cycle range. The duty cycle of the device driving signal SD2 is controlled within a second duty cycle range. In addition, the second duty cycle range does not overlap with the first duty cycle range at all. For example, the first duty cycle range may be set to 20 to 80%. The second duty cycle range may be set to 81 to 100%. For another example, the first duty cycle range may be set to 20 to 80%. The second duty cycle range may be set to 5 to 15%. Therefore, the controller 230 can judge whether the device driving signal SD1 is converted into the device driving signal SD2 by changes in the range of the duty cycle. In the embodiment, the duty cycle of the device driving signal SD2 is, for example, 10% (but the disclosure is not limited thereto).
In Step S340, the controller 230 judges whether a default instruction DI of the control signal SC is received in Step S340. The controller 230 starts to receive the control signal SC at a time point t2, and identifies the waveform of the control signal SC after the time point t2. When the controller 130 identifies that a part of the waveform of the control signal SC conforms to the waveform of the default instruction DI at a time point t3, the controller 230 provides the fan driving signal SD_FAN and the light emitting driving signal string SD_LG in Step S350. In Step S360, the controller 230 drives the fan 210 by using the fan driving signal SD_FAN, and drives the light emitting element group 220 by using the light emitting driving signal string SD_LG. Therefore, at the time point t3, the fan 210 is driven by the fan driving signal SD_FAN. The light emitting element group 220 is driven by the light emitting driving signal string SD_LG. In the embodiment, the fan driving signal SD_FAN is provided at the time point t3 or after the time point t3.
In some embodiments, based on the data structure of the default instruction DI, the controller 230 may provide the fan driving signal SD_FAN when a part of the default instruction DI (for example, header data of the default instruction DI) of the control signal SC is received. In other words, in some embodiments, the fan driving signal SD_FAN may be provided between the time point t2 and the time point t3.
In the embodiment, the electronic device 200 further includes a memory 240. The memory may be used to store the light emitting driving signal string SD_LG and the fan driving signal SD_FAN corresponding to the default instruction DI. Therefore, in Step S350, the controller 230 provides the light emitting driving signal string SD_LG and the fan driving signal SD_FAN stored in the memory 240 based on the default instruction DI. In the embodiment, the memory 240 is disposed outside the controller 230. In some embodiments, the memory 240 may be disposed inside the controller 230. The configuration manner of the memory 240 of the disclosure is not limited to the embodiment.
Please return to Step S340. On the other hand, when the controller 230 does not identify the waveform conforming to the default instruction DI in Step S340, the driving method S300 returns to Step S310. In the embodiment, the cycle amount of the device driving signal SD2 is controlled at a default cycle amount. When the cycle of the device driving signal SD2 reaches the default cycle amount (for example, the default cycle amount is equal to 8, but the disclosure is not limited thereto), the device driving signal SD2 is stopped being provided. In the embodiment, the device driving signal SD2 may be converted into the device driving signal SD1 or a signal with other waveforms.
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In the embodiment, the device driving signals SD_1 to SD_4 may respectively be one of the device driving signals SD1 and SD2 shown in
In the embodiment, the controller 130_1 is coupled to the fan 110_1, the light emitting element group 120_1, and the driving signal input terminal TI_1. The controller 130_1 receives the device driving signal SD_1 in the device driving signal string SS through the driving signal input terminal TI_1. The device driving signal SD_1 has the identification code CID_1 corresponding to the electronic device 100_1. The controller 130_1 controls the operation of at least one of the fan 110_1 and the light emitting element group 120_1 based on the device driving signal SD_1. The operating manner of the controllers 130_2 to 130_4 is similar to the operating manner of the controller 130_1. The controller 130_2 controls the operation of at least one of the fan 110_2 and the light emitting element group 120_2 based on the device driving signal SD_2, and so on.
It is worth mentioning here that each of the electronic devices 100_1 to 100_4 is connected to the driving signal output terminal TOUT of the control source circuit CSC through the driving signal input terminals TI_1 to TI_4 to receive the corresponding device driving signals SD_1 to SD_4. The electronic device 100_1 controls the operation of at least one of the fan 110_1 and the light emitting driving signal string 120_1 based on the device driving signal SD_1. The electronic device 100_2 controls the operation of at least one of the fan 110_2 and the light emitting driving signal string 120_2 based on the device driving signal SD_2, and so on. Therefore, the multi-fan system 300 can enable the electronic devices 100_1 to 100_4 to drive the fans 110_1 to 110_4 and the light emitting element groups 120_1 to 120_4 by using signals received by the driving signal input terminals TI_1 to TI_4. In this way, the multi-fan system 300 can reduce the number of input terminals of the electronic devices 100_1 to 100_4 and the number of output terminals of the control source circuit CSC. Compared with the multi-fan system 30 of
Taking the electronic device 100_1 as an example, the controller 130_1 detects the identification codes CID_1 to CID_4 of the device driving signals SD_1 to SD_4 through the driving signal input terminal TI_1 of the electronic device 100_1. When the identification code CID_1 among the identification codes CID_1 to CID_4 corresponds to a device code of the electronic device 100_1, the controller 130_1 judges that the identification code CID_1 is a corresponding identification code of a device driving signal for driving the fan 110_1 and the light emitting element group 120_1. For example, the device code of the electronic device 100_1 may be a product identifier (PID), a unique identifier (UID), or a user-defined digital code of the electronic device 100_1. For example, the identification code CID_1 is equal to at least a part of the device code of the electronic device 100_1. For another example, the identification code CID_1 is equal to the device code of the electronic device 100_1. Therefore, the controller 130_1 receives the device driving signal SD_1 with the identification code CID_1 through the driving signal input terminal TI_1, and stops receiving the device driving signals SD_2 to SD_4.
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The device driving signal string SS2 includes the device driving signals SD_1 to SD_4. The device driving signal SD_1 includes the identification code CID_1 and a fan driving signal SD_FAN_1. The device driving signal SD_2 includes the identification code CID_2 and a fan driving signal SD_FAN_2. The device driving signal SD_3 includes the identification code CID_3 and a fan driving signal SD_FAN_3. The device driving signal SD_4 includes the identification code CID_4 and a fan driving signal SD_FAN_4.
The device driving signal string SS3 includes the device driving signals SD_1 to SD_4. The device driving signal SD_1 includes the identification code CID_1, the fan driving signal SD_FAN_1, and the light emitting driving signal string SD_LG_1. The device driving signal SD_2 includes the identification code CID_2, the fan driving signal SD_FAN_2, and the light emitting driving signal string SD_LG_2. The device driving signal SD_3 includes the identification code CID_3, the fan driving signal SD_FAN_3, and the light emitting driving signal string SD_LG_3. The device driving signal SD_4 includes the identification code CID_4, the fan driving signal SD_FAN_4, and the light emitting driving signal string SD_LG_4.
In Step S520, based on the identification codes CID_1 to CID_4, the controllers 130_1 to 130_4 respectively receive the corresponding device driving signal of one of the device driving signal strings SS1, SS2, and SS3. In Step S530, the controllers 130_1 to 130_4 judge a content of each corresponding device driving signal. The controllers 130_1 to 130_4 judge that each of the device driving signals SD_1 to SD_4 includes the light emitting driving signal string. In other words, the device driving signal SD_1 includes the light emitting driving signal string SD_LG_1. The device driving signal SD_2 includes the light emitting driving signal string SD_LG_2, and so on. Therefore, in Step S540, the controller 130_1 controls the light emitting element group 120_1 in response to the light emitting driving signal string SD_LG_1. The controller 130_2 controls the light emitting element group 120_2 in response to the light emitting driving signal string SD_LG_2, and so on. In other words, during the period when the control source circuit CSC provides the device driving signal string SS1, the controllers 130_1 to 130_4 individually control the light emitting element groups 120_1 to 120_4 in response to the received light emitting driving signal string of the corresponding device driving signal.
If the controllers 130_1 to 130_4 judge that each of the device driving signals SD_1 to SD_4 includes the fan driving signal in Step S530. In other words, the device driving signal SD_1 includes the fan driving signal SD_FAN_1. The device driving signal SD_2 includes the fan driving signal SD_FAN_2, and so on. Therefore, in Step S550, the controller 130_1 controls the fan 110_1 in response to the fan driving signal SD_FAN_1. The controller 130_2 controls the fan 110_2 in response to the fan driving signal SD_FAN_2, and so on. In other words, during the period when the control source circuit CSC provides the device driving signal string SS2, the controllers 130_1 to 130_4 individually control the fans 110_1 to 110_4 in response to the received fan driving signal of the corresponding device driving signal.
If the controllers 130_1 to 130_4 judge that each of the device driving signals SD_1 to SD_4 includes the fan driving signal and the light emitting driving signal string in Step S530. In other words, the device driving signal SD_1 includes the fan driving signal SD_FAN_1 and the light emitting driving signal string SD_LG_1. The device driving signal SD_2 includes the fan driving signal SD_FAN_2 and the light emitting driving signal string SD_LG_2, and so on.
Therefore, in Step S560, the controller 130_1 controls the fan 110_1 in response to the fan driving signal SD_FAN_1, and controls the light emitting element group 120_1 in response to the light emitting driving signal string SD_LG_1. The controller 130_2 controls the fan 110_2 in response to the fan driving signal SD_FAN_2, and controls the light emitting element group 120_2 in response to the light emitting driving signal string SD_LG_2, and so on. In other words, during the period when the control source circuit CSC provides the device driving signal string SS3, the controllers 130_1 to 130_4 individually control the fans 110_1 to 110_4 and the light emitting element groups 120_1 to 120_4 in response to the received fan driving signal of the corresponding device driving signal.
Therefore, the controllers 130_1 to 130_4 may provide independent control or synchronous control based on different contents of the device driving signal strings SS1, SS2, and SS3.
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In the embodiment, the control source circuit CSC also provides a power source VH to the electronic devices 100_1 to 100_4 through a connection line L3 and provides a power source VL to the electronic devices 100_1 to 100_4 through a connection line L4. In the embodiment, the power source VH is a power source for driving the electronic devices 100_1 to 100_4. The power source VL is a ground voltage.
In some embodiments, during the period when the control source circuit CSC provides a device driving signal string SS and the control signal SC, controllers 130_1 to 130_4 respectively separate at least one of the light emitting driving signal string (the light emitting driving signal string SD_LG shown in
In some embodiments, during the period when the control source circuit CSC provides the device driving signal string SS, the controllers 130_1 to 130_4 respectively output the feedback signal (the feedback signal SFB shown in
In summary, each of the electronic devices of the disclosure is connected to the driving signal output terminal of the control source circuit through the driving signal input terminal to receive the corresponding device driving signal. The electronic devices respectively control the operation of at least one of the fan and the light emitting element group based on the corresponding device driving signal. Therefore, the disclosure can enable the electronic device to drive at least one of the fan and the light emitting element group by using the signal received by the driving signal input terminal. In this way, the disclosure can reduce the number of input terminals of the electronic device and the number of output terminals of the control source circuit, thereby reducing the volumes of the control source circuit and the electronic device and saving wire costs.
Although the disclosure has been disclosed in the above embodiments, the embodiments are not intended to limit the disclosure. Persons skilled in the art may make some changes and modifications without departing from the spirit and scope of the disclosure. Therefore, the protection scope of the disclosure shall be defined by the appended claims.
Number | Date | Country | Kind |
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111111821 | Mar 2022 | TW | national |