1. Technical Field
The present disclosure relates to a hazardous condition monitoring system and a server for monitoring hazardous conditions, and particularly to a fire alarm monitoring system and a server for monitoring fire alarms.
2. Description of Related Art
In a conventional fire alarm system with many control panels, the control panels are coupled to a monitor, thereby monitoring the control panels and terminal devices such as thermal sensors or buzzers which are coupled to terminal devices. RS-232 interfaces which commonly used in computer serial ports are usually utilized as the interface for the transmission of the signals between the monitor and the control panels. When utilizing a server as the monitor, an interface adapter is needed.
However, since the signals transferred between the server 1 and the control panels 3 have to be transformed by the deriving unit corresponding to the control panels 3, the interface adapters 2 are specified for the control panels 3 coupled thereto, so that a general interface adapter cannot be used. In addition, the design of the interface adapters 2 is relatively complex, which also increases the cost of the interface adapters 2. Thus, there is room for improvement in the art.
Many aspects of the present disclosure can be better understood with reference to the following drawing(s). The components in the drawing(s) are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawing(s), like reference numerals designate corresponding parts throughout the several views.
The server 10 includes an Ethernet interface 11 and a processing unit 12. In this embodiment, the server 10 is utilized to monitor fire alarms. In other embodiments, the server 10 can be utilized to monitor other types of alarms such as security alarms. The processing unit 12 includes deriving modules 121 for deriving output information Io (not shown) from an Ethernet signal SE (not shown) which is received from the interface adaptor 20, and produces the Ethernet signal SE including input information Ii (not shown) for the hazard processing module 30. The client 200 is connected to the server 10 through an Ethernet network 100, such that the client 200 can obtain the status information of the hazard processing module 30 by receiving the output information Io of the hazard processing module 30 from the server 10 and control the hazard processing module 30 by transmitting the input information Ii for the hazard processing module 30 to the server 10. In this embodiment, the server 10 and the client 200 include a display interface and an input interface for displaying the output information Io received from the hazard processing modules 30 and input the input information Ii for the hazard processing modules 30, respectively. In addition, the client 200 has a hazardous condition monitoring application program for communicating with the server 10, while the server 10 is capable of automatically updating the application program on the client 200. Through the server 10 and the client 200, the hazard processing module 30 can be remotely monitored.
Each of the interface adapters 20 includes an RS-232 interface 21 and an Ethernet interface 22. The Ethernet interface 22 is coupled to the Ethernet interface 11 of the server 10 through the Ethernet network 100. In this embodiment, the interface adapter 20 communicates with the Ethernet interface 11 of the server 10 through the Ethernet interface 22, and communicates with the hazard processing module 30 through the RS-232 interface 21. In other embodiments, the interface adapter 20 can communicate with the server 10 through other types of computer network interfaces such as wireless local area network (WLAN) interface and communicate with the hazard processing module 30 through other types of serial communication interfaces such as RS-485, or other types of data communication interfaces such as parallel communication interface. In addition, in this embodiment, the Ethernet interface 22 and the Ethernet interface 11 of the server 10 are coupled to each other through routers and/or switches to be in individual sub-networks. In other embodiments, the Ethernet interface 22 and the Ethernet interface 11 of the server 10 can be in the same sub-network. When receiving the RS-232 signal SS including the output information Io of the hazard processing module 30 from the hazard processing module 30, the interface adaptor 20 transforms the RS-232 signal SS into the Ethernet signal SE, and transmits the Ethernet signal SE to the server 10 through the Ethernet interface 22. When receiving the Ethernet signal SE including the input information Ii for the hazard processing module 30, the interface adaptor 20 transforms the Ethernet signal SE into the RS-232 signal SS, and transmits the RS-232 signal SS to the hazard processing module 30 through the RS-232 interface 21.
Each of the hazard processing modules 30 includes a control panel 31 and terminal devices 32. The deriving modules 121 of the processing unit 12 of the server 10 correspond to the control panel 31 of the hazard processing modules 30, respectively. The control panel 31 is coupled to the RS-232 interface 21 of the interface adapter 20. The terminal devices 32 can be electronic devices such as sensors, alarms, fire extinguishers, and controllers, which are responsive to fire safety related conditions and capable of sending out warnings. In this embodiment, the terminal devices 32 include thermal sensors, smoke sensors, buzzers, or other control panels. In other embodiments, the terminal devices 32 may include photoelectric sensors, acoustic sensors, tactile sensors, vibration sensors, and caution lights. When receiving the report signal SR from the terminal device 32, the control panel 31 transmits the RS-232 signal SS including the output information Io corresponding to the report signal SR to the interface adaptor 20. When receiving the RS-232 signal SS from the interface adaptor 20, the control panel 31 transmits the control signal Sc corresponding to the input information Ii of the RS-232 signal SS to the terminal device 32. In this embodiment, the output information Io includes status information of the control panel 31 and/or the terminal devices 32, such that the server 10 can derive the status, for example, activated/inactivated status or enabled/disabled status, of the control panel 31 and/or the terminal devices 32 in the status information. The input information Ii includes a control instruction for the control panel 31 and/or the terminal devices 32, such that the server 10 and the client 200 can control, for example, activate/inactivate or enable/disable, the control panel 31 and/or the terminal devices 32 through the control instruction. In this embodiment, the server 10 periodically tests the control panel 31 and/or terminal devices 32 by sending the control instruction and receiving the status information corresponding to the control instruction.
In this embodiment, the control panels 31 are different types of control panels, which have individual status information format and individual control instruction format. Since the server 10 has the deriving modules 121 each corresponds to each of the control panels 31, the server 10 can recognize the status of the control panels 31 and/or the terminal devices 32, while the status information of the control panels 31 have different formats. And the server 10 can control the control panels 31 and/or the terminal devices 32, while the control instructions of the control panels 31 have different formats. Operation of the disclosed hazardous condition monitoring system is described through the following example.
When an event such as smoke or a control signal from other control panel is detected by one of the terminal devices 32 of one of the hazard processing modules 30, the terminal devices 32 transmits the report signal SR corresponding to the event to the control panel 31. The control panel 31 transmits the RS-232 signal SS including the output information Io corresponding to the report signal SR to the interface adapter 20 via a cable with D-sub connectors through the RS-232 interface 21. The interface adaptor 20 transforms the RS-232 signal SS into the Ethernet signal SE, and transmits the Ethernet signal SE to the Ethernet network 100 via a Cat 5 cable with RJ45 connectors through the Ethernet interface 22. The server 10 receives the Ethernet signal SE through the Ethernet interface 11 corresponding to the interface adapter 20, and derives the output information Io from the Ethernet signal SE through the deriving modules 121 of the processing unit 12, which correspond to the control panel 31. The status information in the output information Io is displayed through the display interface of the server 10 in a formatted manner, thereby showing the event to the user of the server 10.
In response to the event, the server 10 produces a control instruction for the control panel 31 of the hazard processing module 30 which corresponds to the event automatically or through the input interface of the server 10. The deriving module 121 of the processing unit 12 which corresponding to the control panel 31 produces the Ethernet signal SE including the input information Ii, wherein the input information Ii includes the control instructions for the control panels 31. The Ethernet signal SE is transmitted to the Ethernet network 100 through the Ethernet interface 11. The interface adaptor 20 transforms the Ethernet signal SE into the RS-232 signal SS, and transmits the RS-232 signal SS to the hazard processing module 30. The control panel 31 of the hazard processing module 30 transmits the control signal SC corresponding to the input information Ii of the RS-232 signal SS to the terminal devices 32 near to the event, thereby enabling the terminal devices 32 to warn the people nearby.
The disclosed hazardous condition monitoring system utilizes the server 10 including the deriving modules 121 corresponding to the control panel 31 of the hazard processing modules 30 to achieve the communication between the server 10 and different types of the control panels 31 while using the interface adapter 20 not specified to the control panel 31. Consequently, different types of control panels can be integrated into the hazardous condition monitoring system by simply installing the deriving modules 121 corresponding to the control panels in the server 10, instead of using interface adapters specified for the control panels which have a deriving unit corresponding to the control panel. In addition, since a general interface adapter can be used as the interface adapter 20, the design of the interface adapters 2 is therefore relatively simple, which also decreases the cost of the interface adapters 2.
While the disclosure has been described by way of example and in terms of preferred embodiment, it is to be understood that the disclosure is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements as would be apparent to those skilled in the art. Therefore, the range of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.