Locally-managed PoE switch and management system
11500716 · 2022-11-15
Assignee
Inventors
Cpc classification
G06F11/3055
PHYSICS
H04L12/40045
ELECTRICITY
H04Q9/00
ELECTRICITY
H04Q2209/823
ELECTRICITY
G06F11/3058
PHYSICS
Y02D30/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H04L49/50
ELECTRICITY
H04L49/40
ELECTRICITY
International classification
Abstract
A local management-based Power Over Ethernet (PoE) switch and a management system. The PoE switch includes a casing, a Liquid Crystal Display (LCD) screen, a monitoring Micro Control Unit (MCU) module, a power system module, a display module, a PoE system module, a switch system module, a key group arranged on the casing, and a key module. The key module transmits information to the MCU module through the display module, and the MCU module connected with the display module, the PoE system module, the switch system module and the key module respectively through a bus performs corresponding operation according to the information. By adoption of the technical solution, working states of the PoE and switch system modules are visually displayed on the screen, and then are correspondingly processed according to the information and displayed on the screen.
Claims
1. An implementation method of a management system of a local management-based Power Over Ethernet (PoE) switch, the switch comprises a casing, a Liquid Crystal Display (LCD) screen, a monitoring Micro Control Unit (MCU) module, a power system module, a display module, a PoE system module and a switch system module, wherein the monitoring MCU module is connected with the display module, the PoE system module and the switch system module respectively through a bus; the monitoring MCU module monitors working states of the PoE system module and the switch system module in real time, and displays relevant information through the display module; the local management-based PoE switch further comprises a key group and a key module; the key group is arranged on the casing, and the monitoring MCU module is connected with the key module through the bus; the key module transmits information to the monitoring MCU module through the display module, and the monitoring MCU module performs corresponding operation according to received information, the implementation method comprising the following steps: at step A, after the power system module supplies a power to all modules, enabling the monitoring MCU module to start to work, initializing all functional modules, and displaying information of a port; at step B, detecting, by the monitoring MCU module, whether feedback information of the key module is received, and processing the feedback information when YES; at step C, reading, by the monitoring MCU module, information of the PoE system module, acquiring a state of the port, initializing the PoE system module, simultaneously detecting a power voltage, a temperature of a control chip, and whether the port is connected with a PD, eliminating an abnormality through resetting when the power voltage and the temperature of the control chip have the abnormality, and commanding, by the monitoring MCU module, the display module to display the information of the port after the abnormality is eliminated; at step D, detecting, by the monitoring MCU module, the switch system module, detecting whether a broadband of each port has the abnormality, eliminating the abnormality through resetting when the abnormality exists, or directly cutting off the power to the port when the abnormality is not eliminated; commanding, by the monitoring MCU module, the display module to display the information of the each port when no abnormality exists; at step E, in a plurality of processes of the steps C and D, detecting in real time, by the monitoring MCU module, whether the feedback information of the key module is received, and correspondingly processing the feedback information.
2. The management system of the local management-based PoE switch according to claim 1, wherein information of the key module is fed back to the monitoring MCU module, wherein the monitoring MCU module comprises a switch mode, a bandwidth prewarning, a PD type, a Power Sourcing Equipment (PSE) power fine adjustment, a PSE port priority level, a PSE port ON/OFF, a LCD ON/OFF, and a fan control.
3. The management system of the local management-based PoE switch according to claim 1, wherein the information of the key module is selected and information data are confirmed through the key module, and the monitoring MCU module reads the information data through the bus and correspondingly processes the information data.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(17) The technical solution of a local management-based Power Over Ethernet (PoE) switch of the present disclosure is further described in detail below with reference to the accompanying drawings.
(18) As shown in
(19) A working process of an implementation method of a management system of a local management-based PoE switch is as shown in
(20) The implementation method of the human-machine interaction function management system of the local management-based PoE switch involves a monitoring Micro Control Unit (MCU), a display module and a key module.
(21) After the power system module supplies power to all the modules, the monitoring MCU module starts to work, and initializes all the functional modules. After the initialization is completed, the display module sends an instruction to a Liquid Crystal Display (LCD) screen to display a company Logo for five seconds and then display information of a port. The monitoring MCU module accesses the key module in real time through an Input/Output (I/O) bus, monitors in real time whether a key instruction is received, processes the key instruction if the key instruction is received, and commands the display module to display an information state of the port after the processing is completed.
(22) If the key instruction is not received, the monitoring MCU module reads information of a PoE system module, acquires a state of the port, detects whether the PoE system module is normal at first, resets the PoE system module if the PoE system module is abnormal, and then continuously detects the PoE system module. If the PoE system module is normal, the monitoring MCU module initializes the PoE system module, then detects whether a power voltage is normal, sounds an alarm if the power voltage is abnormal, and detects and controls the power voltage in real time. If the power voltage is normal, the monitoring MCU module detects whether a temperature of a control chip is normal, sounds an alarm if the temperature of the control chip is abnormal, and detects and controls the temperature of the control chip in real time. After the above work is done, the monitoring MCU module detects whether the port is connected with a PD, detects whether the port has an underload, overload or short circuit phenomenon if the port is connected with the PD, reads output power of the port if the port does not have the underload, overload or short circuit, and displays the output power on the LCD screen and detects in real time the port. If the port has the underload, overload or short circuit phenomenon, the monitoring MCU module sounds an alarm and detects the port, eliminates the abnormality of the PoE system module through a series of operations such as resetting, and displays the information of the port on the LCD screen if the abnormality is eliminated, or continuously operates an abnormality elimination instruction if the abnormality is not eliminated. If the port is not connected with the PD, the monitoring MCU module detects the power voltage of the port and the temperature of the control chip in real time.
(23) After the underload, overload or short circuit of the port is eliminated, the monitoring MCU module starts to detect the switch system module. The switch system module detects in real time whether the broadband of each port has an abnormality, powers off and resets the PD of the corresponding port if the abnormality exists, detects whether the abnormality is eliminated after the resetting, continuously resets the PD if there is still the abnormality and detects the number of times of resetting. If the number does not exceed 10, the resetting is continued. If the number exceeds 10, the voltage of the port is directly cut off. If the broadband of each port does not have the abnormality, the monitoring MCU module accesses the switch system module through the bus, respectively acquires uploaded and downloaded data volumes of the port, calculates uploaded and downloaded data bandwidths of the port, and displays the bandwidths on the LCD screen.
(24) Embodiment I: referring to
(25) The fifth column: the port number;
(26) The sixth column: PoE information of the corresponding port;
(27) 16.5 W: It denotes the power being output by the port of the PoE switch;
(28) OLP: It denotes that the port corresponding to the PSE has an overload, and is powered off;
(29) ULP: It denotes that the port corresponding to the PSE has an underload, and is powered off; (*when a current on a network wire is less than 7.5 mA, the PSE considers that the PD has been unplugged, and the port is powered off)
(30) SCP: It denotes that the port corresponding to the PSE has a short circuit, and is powered off;
(31) OFF: The OFF in white and green denotes that the port is disabled through a menu command; the OFF in red denotes that a data rate of this port exceeds a set value, and appears for 10 times within 1 hour; in order to protect the normal work of the system, the port is powered off;
(32) ----W: It denotes that the port is not connected to PD equipment.
(33) The third and seventh columns: data rates when corresponding ports enter the switch;
(34) The fourth and eighth columns: data rates when corresponding ports leaves the switch;
(35) ---M: It denotes that this port does not have data transmission;
(36) <1M: It denotes that the data transmission rate of this port is less than 1M;
(37) 856M: Characters in white and green denote rates when data are being transmitted; characters in red denote that the data transmission rate of this port is greater than a set bandwidth value of the switch, which may restart the power to this port by the PSE; if this phenomenon still exists after 10 times of restart within 1 hour, this port will be powered off;
(38) PB: It denotes the maximum power supply power output by the PoE switch to the outside;
(39) TP: It denotes the power supply power that has been output by the PoE switch through the port; (the value of TP is less than the value of PB).
(40) Embodiment II: referring to
(41) Embodiment III: referring to
(42) Embodiment IV: referring to
(43) Embodiment V: referring to
(44) Embodiment VI: referring to
(45) In the main menu, “04—PSE power fine adjustment” is selected through the up key and the down key; a submenu of the “04—PSE power fine adjustment” is opened by pressing the confirm key; an item corresponding to the symbol “<” in the figure denotes settings of the current switch; different options are selected through the up key and the down key; after an option is clicked, the confirm key is pressed to select this option; and the symbol “<” moves to the right of this option. The back key is pressed to return to the main menu.
(46) Embodiment VII: referring to
(47) Embodiment VIII: referring to
(48) Embodiment IX: referring to
(49) Embodiment X: referring to
(50) Embodiment XI: referring to
(51) Embodiment XII: referring to
(52) The preferred specific implementation modes or embodiments of the present disclosure are described in detail above with reference to the accompanying drawings, but the present disclosure is not limited to the above-mentioned implementation modes and embodiments. Various changes can further be made within the knowledge scope of those skilled in the art and without departing from the concept of the present disclosure.