The present invention relates to a detection module, device and system for detecting fan's connection and disconnection states; and more particularly, to a detection module, device and system for detecting whether a fan is connected to a control circuit board.
Generally, a computer room has a large number of computers housed therein. These computers produce a high amount of heat during operation thereof. For the computers to operate in an environment having a constant temperature condition, fans are mounted in the computer room to remove the computer produced heat from the computer room. Usually, a control circuit board and a plurality of fans connected thereto together constitute a fan module.
Since the computer room is generally staffless and adopts closed-off management, the control circuit board of the fan module is connected to a remote server apparatus, so that the connection state and the operation state of the fans can be monitored and determined from the remote server apparatus.
Most of the currently available fans are provided with four external connection terminals.
Therefore, the fan 17 used with the control circuit board 10 has total five external connection terminals, namely, a positive power terminal 171, a negative power terminal 172, a connection signal terminal 173, a rotation speed control input terminal 174 and a fan rotation speed feedback terminal 175. The positive and the negative power terminal 171, 172 are respectively connected to a positive and a negative power output terminal of the power supply unit 11 for receiving power supply from the power supply unit 11. The connection signal terminal 173 is connected to the connection state detection unit 13 of the control circuit board 10. The rotation speed control signal generated by the processor unit 12 of the control circuit board 10 is transmitted to the fan 17 via the rotation speed control input terminal 174. When being driven by the rotation speed control signal to operate, the fan 17 correspondingly generates the fan rotation speed signal (FG) during operation thereof for feeding back to the processor unit 12 of the control circuit board 10 via the fan rotation speed feedback terminal 175.
The connection state detection unit 13 of the control circuit board 10 can be, for example, a pull-up resistor or an optically coupled isolation circuit; and the connection signal terminal 173 electrically connected to the connection state detection unit 13 is grounded or connected to a high-level signal. In
Please refer to
According to the high level or the low level of the connection signal received at the pin of the processor unit 12 that is connected to the connection state detection unit 13, the remote server apparatus determines whether the fan 17 is connected to the control circuit board 10 or not.
The above-described conventional fan module is disadvantageous because the processor unit 12 requires an additional pin for receiving the connection signal, the control circuit board 10 must include an additional detection unit, and the fan 17 also has to increase an additional external connection terminal, namely, the connection signal terminal 173. For the control circuit board 10, it must have increased wiring space in response to the additional pin of the processor unit 12 and the additional detection unit. Further, the increased pin and detection unit inevitably results in complicated manufacturing process and expanded area of the control circuit board. Similarly, the additional external connection terminal on the fan also results in more complicated manufacturing process of the fan. All these factors in turn result in increased cost and product volume of the fan module.
A primary object of the present invention is to provide a fan detection design that utilizes two existing external connection terminals of a fan, i.e. a rotation speed control terminal and a rotation speed feedback terminal, to detect the fan's connection signal. This design is applicable to a conventional fan but saves one external connection terminal from the fan.
Another object of the present invention is to provide a fan detection design that omits the connection state detection unit from a detection module, so that the required wiring spaces in the detection module and the fan connected thereto are reduced to enable simplified manufacturing process and decreased volume of the detection module and of the fan.
To achieve the above and other objects, in one aspect of the present invention, a detection module for detecting at least one fan's connection and disconnection states is provided. The fan has a positive power terminal, a negative power terminal, a rotation speed control terminal and a rotation speed feedback terminal, and generates a fan rotation speed signal during operation thereof. The detection module includes a power supply unit and a processor unit. The power supply unit is connected to the positive and the negative power terminal of the fan, so as to provide an external power supply to the fan via the positive and the negative power terminal. The processor unit is connected to the power supply unit and generates a detection signal and a rotation speed control signal to the fan via the rotation speed control terminal. The rotation speed control signal drives the fan to operate and accordingly generate the fan rotation speed signal to the processor unit via the rotation speed feedback terminal. The detection signal is also fed back from the fan to the processor unit via the rotation speed feedback terminal. With these arrangements, the detection module determines whether the fan is connected thereto according to whether or not a fed back detection signal is received by the processor unit from the fan.
In another aspect of the present invention, a detection device for detecting fan's connection and disconnection states is provided. The detection device includes a fan having a positive power terminal, a negative power terminal, a rotation speed control terminal and a rotation speed feedback terminal; and a detection module including a power supply unit and a processor unit. The power supply unit is connected to the positive and the negative power terminal of the fan, so as to provide an external power supply to the fan via the positive and the negative power terminal. The processor unit is connected to the power supply unit and generates a detection signal and a rotation speed control signal to the fan via the rotation speed control terminal. The rotation speed control signal drives the fan to operate and accordingly generate a fan rotation speed signal to the processor unit via the rotation speed feedback terminal. The detection signal is also fed back from the fan to the processor unit via the rotation speed feedback terminal. With these arrangements, the detection device determines whether the fan is connected to the detection module according to whether or not a fed back detection signal is received by the processor unit from the fan.
In a further aspect of the present invention, a detection system for detecting fan's connection and disconnection states is provided. The detection system includes a fan having a positive power terminal, a negative power terminal, a rotation speed control terminal and a rotation speed feedback terminal; a detection module including a power supply unit and a processor unit; and a host connected to the detection module via a communication connection unit. The power supply unit is connected to the positive and the negative power terminal of the fan, so as to provide an external power supply to the fan via the positive and the negative power terminal. The processor unit is connected to the power supply unit and generates a detection signal and a rotation speed control signal to the fan via the rotation speed control terminal. The rotation speed control signal drives the fan to operate and accordingly generate a fan rotation speed signal to the processor unit via the rotation speed feedback terminal. The detection signal is also fed back from the fan to the processor unit via the rotation speed feedback terminal. With these arrangements, the host of the detection system determines whether the fan is connected to the detection module according to whether or not a fed back detection signal is received by the processor unit from the fan and then transmitted to the host via the communication connection unit.
The power supply unit is connected to an external power supply. The detection device further includes a connection interface, to which the positive power terminal, the negative power terminal, the rotation speed control terminal and the rotation speed feedback terminal of the fan are connected. The processor unit first transmits the detection signal to the fan before the power supply unit provides the external power supply to the fan. Then, the processor unit also transmits the detection signal to the fan when the fan rotation speed signal generated by the fan to the processor unit has a value of zero. In the present invention, the detection signal has a frequency and a mark-space ratio different from those of the rotation speed control signal.
According to the present invention, the host of the detection system determines whether the fan is connected to the detection module according to whether or not a fed back detection signal is received by the processor unit from the fan and then transmitted to the host via the communication connection unit.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and with reference to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
Please refer to
The detection module 20 includes a power supply unit 21 and a processor unit 22, and can be, for example, a control circuit board. The power supply unit 21 receives an external power supply, and is connected via a positive power circuit 23 and a negative power circuit 24 to the positive power terminal 31 and the negative power terminal 32 of the fan 30, respectively, such that the received external power supply is supplied to the fan 30 via the positive and the negative power terminal 31, 32. Generally, the fan used with a heat-producing electronic product has a power supply of 12V. The processor unit 22 is connected with the power supply unit 21, and is used to generate a detection signal and the above-mentioned rotation speed control signal to the fan 30 via the rotation speed control terminal 33. On the other hand, the above-mentioned fan rotation speed signal and the detection signal are returned from the fan 30 to the processor unit 22 via the rotation speed feedback terminal 34.
More specifically, the processor unit 22 is connected via a driving circuit 25 to the rotation speed control terminal 33 of the fan 30, and is connected via a rotation speed detection circuit 26 to the rotation speed feedback terminal 34 of the fan 30. Therefore, the rotation speed control signal and the detection signal are sent to the fan 30 via the driving circuit 25 and the rotation speed control terminal 33; and the fan rotation speed signal and the fed back detection signal are sent from the rotation speed feedback terminal 34 to the processor unit 22 via the rotation speed detection circuit 26. According to an embodiment of the present invention, the processor unit 22 can be, for example, a microcontroller unit (MCU).
Particularly, the detection signal is sent by the processor unit 22 to the fan 30 either before the fan 30 receives the power supply from the power supply unit 21 or when a value of the fan rotation speed signal received by the processor unit 22 is zero, i.e. when the processor unit 22 does not receive the fan rotation speed signal from the fan 30, so as to detect whether the fan 30 is connected to the detection module 20 or not. The detection signal generated by the processor unit 22 would not be fed back from the rotation speed feedback terminal 34 of the fan 30 to the processor unit 22 when the fan 30 is not connected to the detection module 20 or any one of the positive power terminal 31, the negative power terminal 32, the rotation speed control terminal 33 and the rotation speed feedback terminal 34 of the fan 30 is not connected to the detection module 20.
In the present invention, the rotation speed control signal is a pulse width modulation (PWM) signal, and the detection signal is a signal having a frequency and a mark-space ratio different from those of the PWM signal of the rotation speed control signal.
How the connection state between the detection module 20 and the fan 30 can be determined is now described with reference to
As shown in
As shown in
Please refer to
Please refer to
As can be found from the above description, in the present invention, two existing external connection terminals of the fan, i.e. the rotation speed control terminal and the rotation speed feedback terminal, are directly used to detect the fan's connection signal. This design is applicable to a conventional fan but saves one external connection terminal from the fan and omits the connection state detection unit from the control circuit board. With the present invention, the required wiring spaces in the control circuit board and the fan are reduced to enable simplified manufacturing process and decreased volume of the control circuit board and of the fan.
The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.