WO2022037116A1 - 光模块 - Google Patents

光模块 Download PDF

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Publication number
WO2022037116A1
WO2022037116A1 PCT/CN2021/090669 CN2021090669W WO2022037116A1 WO 2022037116 A1 WO2022037116 A1 WO 2022037116A1 CN 2021090669 W CN2021090669 W CN 2021090669W WO 2022037116 A1 WO2022037116 A1 WO 2022037116A1
Authority
WO
WIPO (PCT)
Prior art keywords
optical
optical module
electrical connector
connector
conductive portion
Prior art date
Application number
PCT/CN2021/090669
Other languages
English (en)
French (fr)
Inventor
高士民
曹璐
尹雪
谭健思
刘大大
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to EP21857217.0A priority Critical patent/EP4191302A4/en
Priority to BR112023002906A priority patent/BR112023002906A2/pt
Priority to JP2023510462A priority patent/JP2023538021A/ja
Priority to CN202180005369.XA priority patent/CN114600020B/zh
Publication of WO2022037116A1 publication Critical patent/WO2022037116A1/zh
Priority to US18/111,338 priority patent/US20230204883A1/en

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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4292Coupling light guides with opto-electronic elements the light guide being disconnectable from the opto-electronic element, e.g. mutually self aligning arrangements
    • G02B6/4293Coupling light guides with opto-electronic elements the light guide being disconnectable from the opto-electronic element, e.g. mutually self aligning arrangements hybrid electrical and optical connections for transmitting electrical and optical signals
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/36Mechanical coupling means
    • G02B6/38Mechanical coupling means having fibre to fibre mating means
    • G02B6/3807Dismountable connectors, i.e. comprising plugs
    • G02B6/381Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres
    • G02B6/3817Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres containing optical and electrical conductors
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4201Packages, e.g. shape, construction, internal or external details
    • G02B6/4246Bidirectionally operating package structures
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4201Packages, e.g. shape, construction, internal or external details
    • G02B6/4274Electrical aspects
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4201Packages, e.g. shape, construction, internal or external details
    • G02B6/4274Electrical aspects
    • G02B6/4278Electrical aspects related to pluggable or demountable opto-electronic or electronic elements
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4201Packages, e.g. shape, construction, internal or external details
    • G02B6/4274Electrical aspects
    • G02B6/428Electrical aspects containing printed circuit boards [PCB]
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4201Packages, e.g. shape, construction, internal or external details
    • G02B6/4274Electrical aspects
    • G02B6/4284Electrical aspects of optical modules with disconnectable electrical connectors
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/42Coupling light guides with opto-electronic elements
    • G02B6/4292Coupling light guides with opto-electronic elements the light guide being disconnectable from the opto-electronic element, e.g. mutually self aligning arrangements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/04Pins or blades for co-operation with sockets
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/04Pins or blades for co-operation with sockets
    • H01R13/05Resilient pins or blades
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/04Pins or blades for co-operation with sockets
    • H01R13/08Resiliently-mounted rigid pins or blades
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/10Sockets for co-operation with pins or blades
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/22Contacts for co-operating by abutting
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/22Contacts for co-operating by abutting
    • H01R13/24Contacts for co-operating by abutting resilient; resiliently-mounted
    • H01R13/2464Contacts for co-operating by abutting resilient; resiliently-mounted characterized by the contact point
    • H01R13/2471Contacts for co-operating by abutting resilient; resiliently-mounted characterized by the contact point pin shaped
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/02Contact members
    • H01R13/26Pin or blade contacts for sliding co-operation on one side only
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/46Bases; Cases
    • H01R13/516Means for holding or embracing insulating body, e.g. casing, hoods
    • H01R13/518Means for holding or embracing insulating body, e.g. casing, hoods for holding or embracing several coupling parts, e.g. frames
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R24/00Two-part coupling devices, or either of their cooperating parts, characterised by their overall structure
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R31/00Coupling parts supported only by co-operation with counterpart
    • H01R31/06Intermediate parts for linking two coupling parts, e.g. adapter
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R43/00Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors
    • H01R43/20Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors for assembling or disassembling contact members with insulating base, case or sleeve
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/80Optical aspects relating to the use of optical transmission for specific applications, not provided for in groups H04B10/03 - H04B10/70, e.g. optical power feeding or optical transmission through water
    • H04B10/801Optical aspects relating to the use of optical transmission for specific applications, not provided for in groups H04B10/03 - H04B10/70, e.g. optical power feeding or optical transmission through water using optical interconnects, e.g. light coupled isolators, circuit board interconnections
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/80Optical aspects relating to the use of optical transmission for specific applications, not provided for in groups H04B10/03 - H04B10/70, e.g. optical power feeding or optical transmission through water
    • H04B10/806Arrangements for feeding power
    • H04B10/808Electrical power feeding of an optical transmission system
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/62Means for facilitating engagement or disengagement of coupling parts or for holding them in engagement
    • H01R13/629Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances
    • H01R13/631Additional means for facilitating engagement or disengagement of coupling parts, e.g. aligning or guiding means, levers, gas pressure electrical locking indicators, manufacturing tolerances for engagement only
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R2103/00Two poles
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R24/00Two-part coupling devices, or either of their cooperating parts, characterised by their overall structure
    • H01R24/60Contacts spaced along planar side wall transverse to longitudinal axis of engagement
    • H01R24/62Sliding engagements with one side only, e.g. modular jack coupling devices
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/40Transceivers
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

Definitions

  • the present application relates to the technical field of optical communication, and in particular, to an optical module.
  • Power over Ethernet is a method of transmitting data signals for some devices (such as Internet Protocol (IP) telephones, access points (APs) and network cameras, etc.) The technology that powers the cables that carry the data signals.
  • IP Internet Protocol
  • APs access points
  • network cameras etc.
  • the switch and the AP can be connected by a composite cable covered with optical fibers and copper wires.
  • an optical module is inserted on the panel of the switch, which can be recorded as the first optical module, and an optical module is inserted on the panel of the AP. , which can be recorded as the second optical module, and then, the first optical module and the second optical module are connected through a composite cable, thereby realizing the connection between the switch and the AP.
  • each end of the composite cable has an optical fiber connector and a power supply connector respectively, and the panels of the switch and AP have optical ports and electrical ports respectively, and the optical ports are used for connecting with the optical fiber connector.
  • the optical interface has an electrical interface for connecting with a power connector in the electrical port.
  • the first optical module is inserted into the optical port of the switch
  • the second optical module is inserted into the optical port of the AP
  • the optical fiber connector at one end of the composite cable is inserted into the first optical module
  • the power connector is inserted into the electrical port of the switch
  • the optical fiber connector at the other end of the composite cable is inserted into the second optical module
  • the power connector is inserted into the electrical port of the AP
  • the switch and the AP are connected through the composite cable and two optical modules.
  • the present application provides an optical module that can overcome the problems in the related art, and the technical solutions are as follows:
  • an optical module in a first aspect, includes a housing, an optical device and a power supply device;
  • the second end of the casing has a second socket, and the second end of the casing is an end for being inserted into an optical communication device;
  • the optical device includes a second optical connector, and the power supply device includes a second electrical connector;
  • Both the optical device and the power supply device are located in the housing, and the second optical connector and the second electrical connector are both located in the second socket, and the second optical connector and the The positions of the second electrical contacts are independent of each other.
  • the optical module not only has a photoelectric conversion function, but also has a power supply device for realizing PoE power supply, and the power supply device does not change the original structural features of the optical module, and does not affect the size of the optical module.
  • the power connector of the composite cable is electrically connected to the optical communication device through the optical module, and the power connector of the composite cable does not need to be inserted into the optical communication device, thereby saving the panel space of the optical communication device, which is beneficial to the miniaturization of the optical communication device developing.
  • the second electrical connector includes a conductive portion of the second electrical connector
  • the conductive part of the second electrical connector is fixed to a plug-in guide block of the optical module located in the second socket;
  • the second end of the housing is adapted to be inserted into an optical communication device matching a standard optical module package type.
  • the second end of the casing is used to be inserted into an optical communication device that matches the packaging type of the standard optical module, and it can also be understood that the second end of the casing is used to be inserted into an optical communication device that matches the optical module.
  • the optical module is any optical module in the standard optical module package type.
  • the second socket of the optical module can also be inserted into the optical module.
  • the second socket of the optical module has compatibility, which can expand the scope of application of the optical module and enhance the Wide application, improve flexibility of use.
  • the conductive portion of the second electrical connector is a strip-shaped metal sheet
  • the strip-shaped metal sheet is located on the surface of the plug-in guide block opposite to the second optical connector, and the strip-shaped direction of the strip-shaped metal sheet is parallel to the plug-in direction of the optical module.
  • the conductive part of the second electrical connector is a strip-shaped metal sheet
  • the strip-shaped metal sheet is located on the surface of the plug-in guide block facing the second optical connector, for example, the surface of the strip-shaped metal sheet and the plug-in guide block the surfaces are in the same plane.
  • the conductive part of the second electrical connector which is a strip-shaped metal sheet, can make the second end of the optical module compatible.
  • the conductive portion of the second electrical connector is a bar-shaped spring, including a straight portion and a bent portion;
  • the surface of the plug-in guide block opposite to the second optical connector has an installation groove, the straight part of the strip spring is located in the plug-in guide block, and the bent part of the strip spring is located in the plug-in guide block. in the installation groove, and the bending part of the bending part protrudes from the notch of the installation groove.
  • the conductive part of the second electrical connector is a bar-shaped spring
  • the straight part of the bar-shaped spring is fixed in the plug-in guide block
  • the bent part of the bar-shaped spring is suspended in the installation groove, so that the bending The part can move in the vertical direction perpendicular to the insertion and extraction direction in the installation groove.
  • the conductive portion of the second electrical connector is a pogo pin
  • the pogo pin is located in the plugging guide block, and the end of the pogo pin protrudes from the plugging guide block.
  • the conductive part of the second electrical connector is a pogo pin
  • the needle tube of the pogo pin is fixed in the plugging guide block
  • the needle shaft of the pogo pin protrudes from the outer end face of the plugging guide block, but the needle shaft can be in the needle tube Therefore, even if the second end of the optical module is inserted into the optical cage that does not include the power interface, the needle shaft of the pogo pin can be retracted into the needle tube without affecting the direction of the second end of the optical module to the optical cage. insert. Therefore, the conductive portion of the second electrical connector, which is a pogo pin, can make the second end of the optical module compatible.
  • the plug-in guide block includes a body and a protector
  • the protector is fixedly connected to the body, and the protector is configured to:
  • the protection member can make the pin shaft of the pogo pin closely contact with the contact point of the optical communication device, and when the optical module is not inserted into the optical communication device At the time, the protector can protect the needle shaft of the pogo pin.
  • the protector encloses the needle shaft therein. In this way, even if the optical module falls to the ground, the needle shaft will not be damaged due to the existence of the protector, thereby protecting the needle shaft.
  • the protection member includes a slider and a first elastic member, and the elastic force of the first elastic member is smaller than the elastic force of the pogo pin;
  • the end of the main body has a chute, the slider and the first elastic member are both located in the chute, and the first elastic member is connected to the bottom of the chute and the slider between;
  • a part of the pogo pin is located in the body, and the other part is located in the slider, the slider can slide relative to the body and the pogo pin, and the sliding direction is the same as the insertion and removal direction of the optical module parallel;
  • the slider When the optical module is inserted into the optical communication device, the slider is retracted in the sliding slot, so that the pin shaft of the pogo pin is in close contact with the contact point of the optical communication device.
  • the sliding block protrudes from the sliding slot to protect the needle shaft of the pogo pin.
  • the elasticity of the first elastic member is smaller than that of the pogo pin, and when the second end of the optical module is inserted into the optical cage, the optical cage pushes the slider to slide into the chute, urging the needle shaft of the pogo pin and the optical cage The power connector in the connector is tightly connected to ensure good contact.
  • the first elastic member when the second end of the optical module is not inserted into the optical cage, the first elastic member may be in a natural state or a compressed state, the slider protrudes from the sliding groove, and the slider surrounds the needle shaft of the pogo pin in the natural state or in the compressed state. Among them, even if the second end of the optical module falls to the ground, but the slider touches the ground first, the needle shaft will not be damaged, and the needle shaft will be protected.
  • the protection member includes a pressing member, a second elastic member and an L-shaped rod;
  • the needle shaft of the pogo pin has a groove
  • the tube wall of the needle tube of the pogo pin has a through hole, and when the position of the groove of the needle shaft and the through hole of the needle tube are opposite, the needle shaft is accommodated in the seat. into the needle tube;
  • a part of the pressing member is located outside the body, and the other part is located in the body, the pogo pin, the second elastic member and the L-shaped rod are all located in the body, and the pressing member, the The second elastic member is connected to the first rod of the L-shaped rod in sequence, and the position of the second rod of the L-shaped rod is opposite to the position of the through hole of the needle tube;
  • the pressing member When the optical module is inserted into the optical communication device, the pressing member is in a pressed state, and the end of the second rod of the L-shaped rod is located outside the needle tube, so that the needle shaft and the The contacts of the optical communication equipment are in close contact;
  • the end of the second rod of the L-shaped rod is located in the groove of the needle shaft, to keep the needle shaft retracted in the needle tube.
  • the needle shaft of the pogo pin is located in the needle tube, and the end of the L-shaped rod passes through the needle tube and is stuck in the groove of the needle shaft, so that the needle The shaft remains in the needle tube. In this way, even if the second end of the optical module falls, because the needle shaft is located in the needle tube, the needle shaft will not be damaged, thereby forming protection for the needle shaft.
  • the side wall of the optical cage presses the pressing member, which urges the pressing member to extend into the body of the plug-in guide block, thereby urging the L-shaped rod Leave the groove of the needle shaft, then, under the action of the inner spring, the needle shaft has a force towards the light cage, so that the needle shaft of the pogo pin and the power interface in the light cage are closely connected to ensure good contact.
  • the protection member includes a pressing member and a U-shaped member
  • the needle tube of the pogo pin has an axial strip hole, the needle shaft of the pogo pin has a protrusion, and the protrusion is located in the axial strip hole;
  • a part of the pressing piece is located outside the body, and the other part is located in the body, the pogo pin and the U-shaped piece are both located in the body, and the first end of the U-shaped piece is located in the pressing piece At the part, the second end of the U-shaped part is located at the protrusion of the needle shaft;
  • the pressing member When the optical module is inserted into the optical communication device, the pressing member is in a pressed state, and the needle shaft protrudes from the needle tube under the push of the U-shaped rod, so as to communicate with the optical communication device.
  • the contacts are in close contact, and when the optical module is not inserted into the optical communication device, the pressing member is in an unpressed state, and the needle shaft is retracted into the needle tube.
  • the pressing member protrudes from the outer end face of the body, and the U-shaped member no longer pushes the needle shaft of the pogo pin, so that the needle shaft is located in the needle tube, so that even if The second end of the optical module falls to the ground, but since the needle shaft is located in the needle tube, the needle shaft will not be damaged, thereby protecting the needle shaft.
  • the optical cage pushes the pressing member so that the pressing member enters the body of the plug-in guide block, and the U-shaped member applies a thrust to the needle shaft in the direction protruding from the needle tube, urging the spring
  • the needle shaft of the needle and the power connector in the optical cage are tightly connected to ensure good contact.
  • the power supply device further includes a second rigid circuit board
  • One end of the second rigid circuit board is located in the second socket, and the conductive portion of the second electrical connector of the second electrical connector is a gold finger located on the surface of the second rigid circuit board.
  • the power supply line of the power supply device includes a second rigid circuit board, so that the surface of the part of the second rigid circuit board extending into the second socket may have gold fingers on the surface, and the gold fingers may serve as second electrical contacts the conductive part.
  • the second rigid circuit board not only has a cable for realizing the electrical connection between the first electrical connector and the second electrical connector, but also can install some components to reduce the damage of the components on the first rigid circuit board of the optical device. quantity.
  • a processing chip may be mounted on the surface of the second rigid circuit board to speed up the processing speed of the optical module.
  • the second rigid circuit board and the first rigid circuit board of the optical device are located in the casing in parallel up and down.
  • an optical communication device in another aspect, includes a chassis, a main board and a photoelectric conversion assembly;
  • the panel of the machine frame has an optical cable socket, and the photoelectric conversion assembly includes an optical device and a power supply device;
  • the mainboard, the optical device and the power supply device are all located in the frame, and the optical device and the power supply device are all located on the surface of the mainboard, the optical connector of the optical device and the power supply
  • the electrical connectors of the device are all located in the fiber optic cable sockets.
  • the optical communication device is integrated with a photoelectric conversion component, then when the optical communication device is connected with other devices, only an optical cable or a composite cable needs to be plugged, and an additional optical module is not required.
  • the connection operation is simple and can avoid The loss of the optical module can also avoid the failure of successful connection due to the mismatch between the optical module and the optical communication equipment.
  • both the optical connector of the optical device and the electrical connector of the power supply device are located in the optical cable socket, and the positions of the optical connector of the optical device and the electrical connector of the power supply device are They are independent of each other, so that the optical cable socket is used for inserting a cable, and the cable can be either a composite cable or an optical cable.
  • the optical cable socket of the optical communication device has compatibility, so that an optical cable that does not include a power connector can also be inserted into the optical cable socket and docked with the optical connector in the optical cable socket to realize optical signal transmission, thereby enhancing the
  • the wide application of optical communication equipment improves the flexibility of use.
  • a communication device in a second aspect, includes a chassis, a main board and a photoelectric conversion component;
  • the panel of the machine frame has an optical cable socket, and the photoelectric conversion assembly includes an optical device and a power supply device;
  • the mainboard, the optical device and the power supply device are all located in the frame, and the optical device and the power supply device are all located on the surface of the mainboard, the optical connector of the optical device and the power supply
  • the position of the electrical connector of the device corresponds to the position of the optical cable socket.
  • the optical connector of the optical device is located in the optical cable socket
  • the electrical connector of the power supply device is also located in the optical cable socket and is independent of any position of the optical connector of the optical device. .
  • the communication device is integrated with a photoelectric conversion component, so when connecting the communication device with other devices, only an optical cable or a composite cable needs to be plugged, and an additional optical module does not need to be plugged in.
  • the connection operation is simple, and the optical module can be avoided. It can also avoid the failure of successful connection due to the mismatch between the optical module and the communication device.
  • both the optical connector of the optical device and the electrical connector of the power supply device are located in the optical cable socket, and the positions of the optical connector of the optical device and the electrical connector of the power supply device are They are independent of each other, so that the optical cable socket is used for inserting a cable, and the cable can be either a composite cable or an optical cable.
  • the optical cable socket of the communication device has compatibility, so that an optical cable that does not include a power connector can also be inserted into the optical cable socket and docked with an optical connector in the optical cable socket to realize optical signal transmission, thereby enhancing the communication.
  • the wide application of the equipment improves the flexibility of use.
  • a PoE device in a third aspect, includes the optical module in the above-mentioned first aspect and each of the embodiments.
  • FIG. 1 is a schematic structural diagram of an optical module provided by the present application.
  • FIG. 2 is a schematic structural diagram of an optical module provided by the present application.
  • FIG. 3 is a schematic structural diagram of an optical module provided by the present application.
  • FIG. 4 is a schematic structural diagram of an optical module provided by the present application.
  • FIG. 5 is a schematic diagram of an exploded structure of an optical module provided by the present application.
  • FIG. 6 is a schematic structural diagram of a casing of an optical module provided by the present application.
  • FIG. 7 is a schematic structural diagram of an optical device of an optical module provided by the present application.
  • FIG. 8 is a schematic structural diagram of an optical device of an optical module provided in the present application in a housing
  • FIG. 9 is a schematic structural diagram of a power supply device of an optical module provided in the present application in a housing;
  • FIG. 10 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • FIG. 11 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • FIG. 12 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • FIG. 13 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • FIG. 14 is a schematic structural diagram of a power supply device of an optical module provided in the present application in a housing;
  • 15 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • 16 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • FIG. 17 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application.
  • 18 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application;
  • 19 is a schematic diagram of the position and structure of the conductive portion of the first electrical connector of an optical module provided by the present application.
  • 20 is a schematic structural diagram of a central column of an optical module provided by the present application.
  • 21 is a schematic structural diagram of a first end of an optical module provided by the present application.
  • FIG. 22 is a schematic structural diagram of a first electrical connector conductive portion in a central column provided by the present application.
  • FIG. 23 is a schematic structural diagram of the conductive portion of the first electrical connector of an optical module provided by the present application.
  • FIG. 24 is a schematic structural diagram of a first electrical connector conductive portion in a central column provided by the present application.
  • FIG. 25 is a schematic structural diagram of a first electrical connector conducting portion in a central column provided by the present application.
  • FIG. 26 is a schematic structural diagram of a first electrical connector conductive portion in a central column provided by the present application.
  • Fig. 27 is the structural representation of a kind of center column provided by the application.
  • 29 is a schematic structural diagram of a bar-shaped guide block and a bar-shaped guide groove provided by the present application.
  • FIG. 30 is a schematic structural diagram of a first electrical connector conductive portion in a central column provided by the present application.
  • FIG. 31 is a schematic structural diagram of a first electrical connector conductive portion in a central column provided by the present application.
  • 32 is a schematic structural diagram of the connection between the conductive part of the first electrical connector and the power supply line provided by the present application;
  • FIG. 33 is a schematic structural diagram of a flexible circuit board as a power supply circuit of an optical module provided by the present application.
  • 34 is a schematic structural diagram of a power supply line of an optical module provided by the present application as a cable;
  • 35 is a schematic structural diagram of a power supply line provided by the present application including a cable and a second rigid circuit board;
  • 36 is a schematic structural diagram of a power supply circuit provided by the present application including a flexible circuit board and a second rigid circuit board;
  • 38 is a schematic structural diagram of an optical module provided by the present application in which the conductive portion of the second electrical connector is a metal sheet;
  • 39 is a schematic structural diagram of an optical module provided by the present application in which the conductive portion of the second electrical connector is a strip spring;
  • Figure 40 is a schematic structural diagram of a bar spring provided by the present application.
  • 41 is a schematic structural diagram of an optical module provided by the present application in which the conductive portion of the second electrical connector is a conductive column;
  • FIG. 42 is a schematic structural diagram of an optical module provided by the present application in which the conductive portion of the second electrical connector is a pogo pin;
  • 43 is a schematic structural diagram of a second electrical connector conductive portion provided in the present application in a plug-in guide block;
  • 44 is a schematic structural diagram of a second electrical connector conductive portion provided in the present application in a plug-in guide block;
  • 45 is a schematic structural diagram of a second electrical connector conductive portion provided in the present application in a plug-in guide block;
  • Figure 46 is a schematic structural diagram of a pogo pin provided by the application.
  • Figure 47 is a schematic structural diagram of a second electrical connector conductive portion provided in the present application in a plug-in guide block;
  • Figure 48 is a schematic structural diagram of a pogo pin provided by the present application.
  • 49 is a schematic structural diagram of an optical module provided by the present application whose power supply line includes a second rigid circuit board;
  • FIG. 50 is a schematic structural diagram of an optical module with a power supply line including a second rigid circuit board provided by the present application;
  • 51 is a schematic structural diagram of an optical communication device provided by the present application.
  • FIG. 52 is a schematic structural diagram of a mainboard of an optical communication device provided by the present application.
  • Optical device 21. First optical connector; 22. Photoelectric conversion device; 23. Second optical connector;
  • 3111 the first bending strip; 3111a, the first segment; 3111b, the second segment; 3111c, the third segment;
  • Plug-in guide block 40, body; 41, installation slot; 42, slider; 43, first elastic part; 44, pressing part; 45, second elastic part; 46, L-shaped rod; 47, U-shaped piece;
  • communication equipment such as switches and APs
  • at least two ports need to be set on the panel, one as an optical port is connected to the optical fiber in the optoelectronic composite cable through an optical module, and the other
  • each optoelectronic composite cable occupies a large panel size, which is not conducive to the miniaturization of communication equipment such as switches and APs.
  • optoelectronic composite cable also referred to as composite cable
  • composite cable is a cable covered with optical fibers and copper wires.
  • Optical fibers are used to transmit optical signals
  • copper wires are used to transmit electrical energy. For power transmission and power transmission.
  • the embodiment of the present application provides an optical module
  • the optical module includes an optical device for realizing photoelectric conversion and a power supply device for realizing power transmission, so the optical module can also be called a photoelectric composite module, or simply a composite module . Therefore, the optical module can be used to convert optical signals and electrical signals on the one hand, and can be used to realize PoE on the other hand.
  • the optical module can be used in the connection between the switch and the AP.
  • An optical module is inserted on the panel of the switch and the AP respectively.
  • the optical module inserted in the switch and the optical module inserted in the AP are connected through a composite cable to realize the switch. connection to the AP.
  • the first end of the optical module is used for inserting the composite cable
  • the second end of the optical module is used for inserting into a communication device (for example, a switch, an AP, etc.).
  • the panel of the communication device has a port for inserting the optical module (the port can also be called a socket, that is, the socket of the optical cage of the communication device), and the port has an electrical connector with the optical device of the optical module (That is, the electrical interface connected to the second optical connector mentioned below), and the port also has an electrical interface connected to the electrical connector of the power supply device of the optical module (that is, the second electrical connector mentioned below).
  • a communication device may be referred to as an updated communication device.
  • the end of the composite cable has an optical fiber connector that is butted with the optical connector of the optical device of the optical module (ie, the first optical connector mentioned below), and the end of the composite cable also has an electrical connector connected to the optical module. power connector.
  • both optical signal transmission and power transmission can be performed between the composite cable and the optical module, and both electrical signal transmission and power transmission can be performed between the optical module and the communication device.
  • the optical module includes a device that realizes the photoelectric conversion function (that is, the optical device mentioned below) and a device that realizes the PoE function (that is, the power supply device mentioned below), so that the panel of the communication device that cooperates with the optical module only has It is enough to have a port for inserting the optical module.
  • the port has an interface for electrical signal transmission with the optical device and an interface for power transmission with the power supply device, which can save the panel size of the communication equipment, which is beneficial to the communication equipment. development of miniaturization.
  • the optical module can be used with the composite cable including the power connector, and can also be used with the traditional optical cable that does not include the power connector For use with. That is, the first end of the optical module can not only be inserted into the composite cable, but also can be inserted into the optical cable.
  • the optical cage of the communication device may only have electrical connections with the optical device of the optical module (ie the second optical device mentioned below).
  • the electrical interface connected to the power supply device of the optical module (that is, the second electrical connector mentioned below) of the optical module does not have an electrical interface.
  • This communication device can be referred to as the communication device before the update.
  • the optical modules of the embodiments can also be used with such pre-update communication devices. Therefore, the second end of the optical module can be inserted into a communication device including a power connector in the optical cage, and can also be inserted into a communication device without a power connector in the optical cage.
  • the optical module described in this embodiment may be any one of a light-receiving optical module, an optical-transmitting optical module, an integrated optical transceiver and an optical-to-light-emitting module, and the like;
  • the optical module described in this embodiment may be any one of a hot-plug optical module and a non-hot-plug optical module;
  • the optical module described in this embodiment may be any of the standard package types, for example, may be a small form pluggable (SFP) optical module, a dual-density four-channel small pluggable (quad small form) optical module factor pluggable-double density, QSFP-DD) optical module, C-form factor pluggable (CFP) optical module, gigabit interface converter (gigabit interface converter, GBIC) optical module, 10G small hot-pluggable Plug (10gigabit small form pluggable, XFP) optical module and so on.
  • SFP small form pluggable
  • QSFP-DD quad small form optical module factor pluggable-double density
  • CFP C-form factor pluggable
  • gigabit interface converter gigabit interface converter
  • 10G small hot-pluggable Plug (10gigabit small form pluggable, XFP) optical module and so on.
  • the optical module may be an optical module as shown in FIG. 1 , and the optical module is an SFP optical module.
  • the optical module may also be an optical module as shown in FIG. 2 , and the optical module is an SFP optical module.
  • the difference between the SFP optical module shown in FIG. 1 and the SFP optical module shown in FIG. 2 lies in the structural form of the handle bar.
  • the optical module may also be an optical module as shown in FIG. 3 , and the optical module is a QSFP-DD optical module.
  • the optical module may also be an optical module as shown in FIG. 4 , and the optical module is a CFP2 optical module, wherein the CFP2 optical module is an optical module whose size is half that of the CFP optical module.
  • optical module in this embodiment may be an optical module packaged according to any standard packaging format.
  • the optical module with the package type of SFP shown in FIG. 1 may be used as an example, and other forms of optical modules are similar to them, and will not be described in detail.
  • the specific structure of the device implementing the photoelectric conversion function and the device implementing the PoE power supply function of the optical module will be described in detail below.
  • FIG. 5 is a schematic diagram of an exploded structure of the optical module.
  • the optical module includes a housing 1 , an optical device 2 and a power supply device 3 .
  • the casing 1 is used as a protective casing of the optical module to protect the components inside the optical module, and plays the role of protection, dustproof and waterproof.
  • the optical device 2 is a device for realizing a photoelectric conversion function.
  • the power supply device 3 is a device for realizing the PoE power supply function.
  • the main structure and relative positional relationship of the housing 1 , the optical device 2 and the power supply device 3 are briefly introduced below.
  • the outline shape of the optical module can be a box-like structure of a cuboid
  • the shape of the housing 1 can also be a box-like structure of a cuboid.
  • the casing 1 may be a box-shaped structure of a rectangular parallelepiped with two open ends along the length direction, one of the two open ends is used as the first socket 11 and the other is used as the second socket 12 .
  • the housing 1 may include an upper cover and a base, and the upper cover and the base are fixed to form the housing 1.
  • the upper cover may have a cover-like structure and cover the base.
  • the upper cover may have a plate shape
  • the base has a box shape without a cover, and the upper cover is closed on the base.
  • the specific structure of the upper cover and the base is not limited in this embodiment. A box-like structure is sufficient.
  • the first socket 11 of the housing 1 (located at the first end of the housing 1 ) is used for inserting the composite cable, so as to realize the optical fiber connection between the optical module and the composite cable.
  • the second socket 12 of the housing 1 (located at the second end of the housing 1 ) is used to be inserted into the optical cage of the communication device, so as to realize the electrical connection between the optical module and the communication device.
  • the optical device 2 may also be called an optoelectronic device. As shown in FIG. 7 , the optical device 2 may include a first optical connector 21 , a photoelectric conversion device 22 and a second optical connector 23 . One end of the photoelectric conversion device 22 is connected to the first optical connector 21 . The other end is connected to the second optical connector 23, wherein the connection between the first optical connector 21 or the second optical connector 23 and the photoelectric conversion device 22 may include physical connection and electrical connection.
  • the first optical connector 21 is an optical fiber connector, which is used for docking with the optical fiber connector of the composite cable to realize optical signal transmission
  • the second optical connector 23 is an electrical connector, which is used for connecting with the optical cage of the communication equipment.
  • the electrical interface realizes electrical connection to realize electrical signal transmission.
  • the electrical connector at the second end of the optical module is referred to as the second optical connector 23 in the text, but the second optical connector 23 is actually an electrical connector, not an optical fiber connector.
  • the photoelectric conversion device 22 includes a first rigid circuit board 221 and a conversion device 222 , wherein the conversion device 222 includes components required for realizing the photoelectric conversion function, for example, may include lasers, detectors, amplifiers , clock data recovery, driver chips and signal processors and other components.
  • One end of the first rigid circuit board 221 is connected to the conversion device 222 , and the surface of the other end of the first rigid circuit board 221 has gold fingers, and the gold fingers form the conductive parts of the second optical connector 23 .
  • One end of the conversion device 222 away from the first rigid circuit board 221 is connected to the first optical connector 21 , so as to transmit the converted optical signal to the composite cable through the first optical connector 21 .
  • the assembly relationship between the optical device 2 and the housing 1 can be as shown in FIG. 8 .
  • the first rigid circuit board 221 and the conversion device 222 of the photoelectric conversion device 22 are both located in the housing 1, and the first rigid circuit board 221 is far away from the conversion device.
  • One end of 222 is located in the second socket 12 , so that the gold finger on the surface of one end of the first rigid circuit board 221 away from the conversion device 222 is located in the second socket 12 , so that the second optical connector 23 is located in the second socket 12 .
  • the first optical connector 21 connected to the conversion device 222 is located in the first socket 11 of the housing 1 , as shown in FIG. 1 .
  • the optical module may be a dual-fiber bidirectional optical module.
  • the number of the first optical connectors 21 is two, one is used as the transmitting end and the other is used as the receiving end, wherein the optical device 2 in FIG. 7
  • the connection structure with the circuit board is not shown.
  • the optical module may also be a single-fiber bidirectional optical module.
  • the number of the first optical connectors 21 is one, which is used as both a sending end and a receiving end.
  • this embodiment does not limit whether the optical module is a dual-fiber bidirectional module or a single-fiber bidirectional module, and a dual-fiber bidirectional module is used as an example in the example of the drawings.
  • the power supply device 3 is used to realize power transmission in Power over Ethernet. As shown in FIG. 5 , the power supply device 3 includes a first electrical connector 31 , a power supply line 32 and a second electrical connector 33 .
  • the first electrical connector 31 and the second electrical connector 33 are both electrical connectors, the first electrical connector 31 is electrically connected to the power connector of the composite cable, and the second electrical connector 33 is electrically connected to the power connector in the optical cage of the communication device. connect.
  • the assembly relationship between the power supply device 3 and the housing 1 may be, as shown in FIG. 9 , the power supply circuit 32 is located in the housing 1 , the first electrical connector 31 is located at the first socket 11 , and the second electrical connector 33 is located at the second socket 12.
  • the first electrical connector 31 may be located at the first socket 11, for example, as shown in FIG. 1, the first electrical connector 31 may be located in the first socket 11, and for example, the first electrical connector 31 may also be located in the first socket 11, which will be explained in detail below.
  • the first electrical connector 31 may not affect the structural characteristics of the first socket 11 at the first end of the optical module. In this way, although the power supply device 3 is newly added to the optical module, However, the first socket 11 at the first end of the housing 1 can still be inserted into the optical cable.
  • the second electrical connector 33 may not affect the structural features of the second socket 12 at the second end of the optical module, so that the second socket 12 at the second end of the housing 1 can still be inserted into the optical cage excluding the power connector.
  • both ends of the optical module are compatible, so that even an optical cable that does not include a power connector can still be inserted into the first socket 11 of the optical module to connect with the first optical connector in the first socket 11 21 is docked, even if the optical cage does not include a power connector, the second socket 12 of the optical module can still be inserted into the optical cage and electrically connected with the electrical connector in the optical cage.
  • the power supply device 3 is integrated in the optical module. Then, after the optical module is inserted into the communication equipment, it can realize both optical fiber docking and power transmission. Then, the panel of the communication equipment into which the optical module is inserted is only It is only necessary to have a port matching the optical module, and there is no need to additionally provide a power port for realizing power transmission, thereby saving the panel size of the communication device, which is beneficial to the miniaturization development of the communication device.
  • the composite cable or optical cable and its optical fiber connectors are all optical fiber connectors that match the first optical connector 21 of the optical module, so as to facilitate the composite cable or optical fiber cable.
  • the optical fiber connector of the cable or the optical fiber cable can be butted with the first optical connector 21 .
  • the electrical interfaces of the optical cage of the communication equipment are all electrical interfaces that match the second optical connector 23 of the optical module (the second optical connector 23 is a kind of electrical connector), so that the first optical connector 21 can It is inserted into the electrical interface of the optical cage to realize the transmission of electrical signals.
  • the present application adds a power supply device 3 on the basis of a conventional optical module (also referred to as a traditional optical module), the following will introduce the first electrical connector 31 , the power supply line 32 and the second electrical connector 33 of the power supply device 3 in turn. structure, and their respective positions in the housing 1.
  • a conventional optical module also referred to as a traditional optical module
  • the positions of the first electrical connector 31 and the first optical connector 21 are independent of each other, so that the first electrical connector 31 does not affect the first optical connector 21 .
  • the location distribution of the first electrical contacts 31 may be as follows.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 is exposed on the housing 1 and is located at any position at the first end of the housing 1 , and the positions of the first optical connector 21 and the first electrical connector 31 are independent of each other, so that Make the first socket 11 compatible.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 is fixed to the center column 5 of the optical module.
  • Both the central column 5 and the first optical connector 21 are located in the first socket 11.
  • the number of the first optical connectors 21 is two, and the optical module is a dual-optical connector optical module.
  • the central column 5 and the two first optical connectors 21 are located in the first socket 11 , the central column 5 is located between the two first optical connectors 21 , and the central column 5 divides the first socket 11 into two sub-sockets.
  • the solution in which the conductive portion 311 of the first electrical connector is fixed to the central column 5 may include the following possible situations:
  • the end of the conductive portion 311 of the first electrical connector is located on the outer end surface of the center column 5 .
  • the end of the first electrical connector conductive portion 311 is flush with the outer end surface of the center column 5 .
  • the outer end surface of the central column 5 has a groove, the first electrical connector conductive portion 311 is located in the groove, and the outer end surface of the first electrical connector conductive portion 311 is lower than the central column 5 . the outer end face.
  • the length of the central column 5 is smaller than the standard length.
  • the conductive portion 311 of the first electrical connector is a columnar structure, the end of which protrudes from the outer end surface of the central column 5 , and the first electrical connector 311 has a columnar structure.
  • the sum of the length of the part of the connector conductive portion 311 protruding from the center pillar 5 and the length of the center pillar 5 is less than or equal to the standard length, wherein the standard length is the length of the center pillar 5 when the optical module is packaged according to the standard package type, It is also the length of the central column of a conventional optical module that does not include the power supply device 3 .
  • the conductive portion 311 of the first electrical connector protrudes from the outer end surface of the center column 5
  • the conductive portion 311 of the first electrical connector will not block the insertion of the optical cable excluding the power connector into the first socket 11, so that the When the optical fiber connector of the optical cable is inserted, the optical fiber connector will not be unable to connect with the first optical connector 21 because it touches the conductive portion 311 of the first electrical connector first, thereby making the first socket 11 compatible.
  • the conductive portion 311 of the first electrical connector is located on the inner wall surface of the center pillar 5 .
  • the two conductive parts 311 of the first electrical connectors are located on the same inner wall surface of the central pillar 5 .
  • one The first electrical connector conductive portion 311 is located on one inner wall surface of the center pillar 5
  • the other first electrical connector conductive portion 311 is located on the other inner wall surface of the center pillar 5 .
  • the outer surface of the first electrical connector conductive portion 311 may be higher than the inner wall surface of the center column 5, and the outer surface of the first electrical connector conductive portion 311 may also be lower than the inner wall surface of the center column 5, for example, as shown in FIG.
  • the inner wall of the central column 5 has a groove, and the conductive portion 311 of the first electrical connector is located in the groove, so that the outer surface of the conductive portion 311 of the first electrical connector is lower than the inner wall surface of the central column 5, and the first electrical connector
  • the outer surface of the conductive portion 311 can also be flush with the inner wall surface of the central column 5 , which is not limited in this application, as long as the optical cable excluding the power connector can be inserted into the first socket 11 to be docked with the first optical connector 21 That's it.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 is fixed to the end face of the first end of the housing 1 .
  • the outer surface of the conductive portion 311 of the first electrical connector may be flush with the outer end surface of the first end of the housing 1. As shown in FIG. 12, the outer surface of the conductive portion 311 of the first electrical connector may also protrude from the housing. As shown in FIG. 13 , the outer end surface of the first end of 1 , the outer surface of the conductive portion 311 of the first electrical connector can also be recessed in the outer end surface of the first end of the housing 1 .
  • the outer end surface of the first electrical connector conductive portion 311 is recessed in the outer end surface of the first end of the housing 1
  • the outer end surface of the first end of the housing 1 has a groove
  • the first electrical connector conductive portion 311 is located in the groove
  • the end of the conductive portion 311 of the first electrical connector is lower than the notch of the groove.
  • the shape of the conductive portion 311 of the first electrical connector may be a cylindrical shape, or a rectangular column shape, etc., which is not limited in this application.
  • the solution in which the conductive portion 311 of the first electrical connector is fixed on the end face of the first end of the housing 1 may include the following possible situations:
  • the two first electrical connector conductive parts 311 may be located on the outer end surface of the same side wall of the first socket 11 .
  • the two first electrical connector conductive parts 311 are located on the first The outer end surface of the left side wall or the outer end surface of the right side wall of a socket 11 , or the two first electrical connector conductive parts 311 are located on the outer end surface of the top wall or the outer end surface of the bottom wall of the first socket 11 .
  • two first electrical connector conductive parts 311 may be located on the outer end surfaces of different side walls of the first socket 11 , for example, one first electrical connector conductive part 311 is located on the left side On the outer end surface of the side wall, another first electrical connector conductive portion 311 is located on the outer end surface of the right side wall.
  • the conductive portion 311 of the first electrical connector is located at the outer edge of the first end of the housing 1 , and the outer edge of the first end of the housing 1 has a boss structure, the boss structure and the housing The connection of the outer edge of the first end of 1 has a groove, and the first electrical connector conductive portion 311 is located in the groove.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 is located on the inner wall of the first socket 11 .
  • the conductive parts 311 of the two first electrical connectors are located on the same inner wall of the first socket 11 , as shown in FIG. 15 (d)
  • one first electrical connector conductive portion 311 is located on one inner wall of the first socket 11
  • another first electrical connector conductive portion 311 is located on the other inner wall of the first socket 11
  • the center column 5 is located in the first socket 11
  • the first socket 11 is divided into two left and right sub-sockets, as shown in FIG. 15(d)
  • one first electrical connector conductive portion 311 is located on the inner wall of one sub-socket
  • the other first electrical connector conductive portion 311 is located in the other The inner wall of the sub-socket.
  • the outer surface of the conductive portion 311 of the first electrical connector may be higher than the inner wall of the first socket 11 .
  • the outer surface of the conductive portion 311 of the first electrical connector can also be lower than the inner wall of the first socket 11.
  • the outer surface of the conductive portion 311 of the first electrical connector is lower than the inner wall surface of the first socket 11 .
  • the outer surface of the conductive portion 311 of the first electrical connector can also be flush with the inner wall of the first socket 11, which is not limited in this application, and can satisfy that the optical cable not including the power connector can be inserted into the first socket 11 and the first socket 11.
  • the optical connector 21 can be docked.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 is located on the outer wall of the housing 1 close to the first socket 11 , wherein the outer wall may be the outer surface of the top wall, the bottom wall The outer surface or the outer surface of the side wall.
  • the outer wall of the housing 1 close to the first socket 11 may have a groove, and the first electrical connector conductive part 311 may be located in the groove.
  • the conductive parts 311 of the two first electrical connectors are located on the same outer wall, for example, as shown in FIG. 16 .
  • one first electrical connector conductive portion 311 is located on one outer wall, and the other first electrical connector conductive portion 311 is located on the other outer wall.
  • the above-mentioned position setting of the conductive portion 311 of the first electrical connector can be applied to an optical module with dual optical connectors or an optical module with a single optical connector. As a limitation, it can also be applied to an optical module with a single optical connector.
  • the positions of the first electrical connectors 31 can also be distributed as follows: as shown in FIG. 18 and FIG. 19 , the number of the first optical connectors 21 is one; the first optical connector 21 is located at On the first side of the central column 5 of the optical module, the first electrical connector 31 is located on the second side of the central column 5 , and the positions of the first and second sides of the central column 5 are opposite.
  • the first electrical connector 31 may have a columnar structure and is located on the second side of the central column 5 .
  • the first electrical connector 31 includes a column body and a first electrical connector conductive portion 311 .
  • the electrical connector conductive portion 311 is located on the surface of the cylinder.
  • the conductive portion 311 of the first electrical connector may be on the second side of the center column 5 and on the outer end surface of the first end of the housing 1 .
  • the conductive portion 311 of the first electrical connector protrudes from the outer end surface of the first end of the housing 1 .
  • the conductive portion 311 of the first electrical connector is recessed on the outer end surface of the first end of the housing 1 .
  • the shape of the conductive portion 311 of the first electrical connector may be a rectangular column shape or a column shape or the like.
  • the two first electrical connector conductive parts 311 are arranged in an arrangement, which can be arranged up and down, and can also be arranged left and right.
  • the above is about the location distribution of the first electrical connector conductive portion 311 and the specific shape of the first electrical connector conductive portion 311, no matter how the first electrical connector conductive portion 311 is distributed, and regardless of the specific shape of the first electrical connector conductive portion 311 After the first electrical connector conductive portion 311 is arranged in the first socket 11 or around the first socket 11, it can satisfy the position of the first electrical connector conductive portion 311 and the first optical connector 21 independent of each other, and the first electrical connector The conductive portion 311 will not affect the connection between the optical fiber connector of the optical cable and the first optical connector 21 .
  • the optical fiber connector of the composite cable is docked with the first optical connector 21 in the first socket 11 , so as to realize the transmission of the optical signal, and the power connector of the composite cable is electrically connected with the conductive part 311 of the first electrical connector to realize the power transmission.
  • the optical fiber connector of the optical cable can be docked with the first optical connector 21 to realize the connection of optical signals. transmission.
  • the first end of the optical module has both the first optical connector 21 and the first electrical connector 31, so there is no need to set up a composite cable on the panel of the communication equipment (such as switches and APs) into which the optical module is inserted.
  • the power interface into which the power supply connector is inserted can save the panel size of the communication device, which is beneficial to the miniaturization development of the communication device.
  • the first socket 11 at the first end of the optical module can be inserted into both a composite cable including a power connector matching the conductive portion 311 of the first electrical connector, and an optical cable not including a power connector, so that
  • the first socket 11 of the optical module has compatibility, which expands the application scenarios of the optical module, improves the use flexibility of the optical module, and facilitates on-site wiring.
  • the above is the location distribution of the first electrical connector 31 , and several structural forms of the first electrical connector 31 will be introduced below.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 includes a bent strip, for example, includes two bent strips.
  • a bent strip for example, includes two bent strips.
  • the first electrical connector 31 and the first optical connector 21 are located in the first socket 11 independently of each other, so that the first socket 11 has compatibility and can be inserted into any cable matching the package type of the optical module.
  • the composite cable including the power connector can be inserted into the first socket 11 , and the optical cable not including the power connector can also be inserted into the first socket 11 .
  • the composite cable including the power connector has a power connector matched with the first electrical connector 31 at its end; the optical cable not including the power connector is that its end does not include the power connector, but only includes the optical fiber connection. device.
  • the optical module includes the central column 5, as shown in FIG. 20, which is a schematic diagram of the central column 5, as shown in FIG. 21, the central column 5 is located in the first socket 11, on the one hand, is used to support the first optical connector 21, on the other hand, plays the role of guiding and limiting, so that the optical fiber connector of the composite cable is accurately inserted into the first socket 11 and docked with the first optical connector 21 in the first socket 11 to realize the transmission of optical signals.
  • the central column 5 is a structure included in all optical modules of the standard package type. Then, for an optical module that does not include the power supply device 3 , the central column 5 is also installed in the first socket 11 .
  • the center column 5 includes a support plate 51 and a guide limit plate 52 , and the end of the guide limit plate 52 along the length direction is connected to the surface of the support plate 51 .
  • the center column 5 is located in the casing 1 near the first end, the support plate 51 is close to the inside of the casing 1 , and the guide limiting plate 52 is close to the outside of the casing 1 . In this way, the support plate 51 and the side wall of the housing 1 enclose the first socket 11 , and the guide limiting plate 52 divides the first socket 11 into two sub-sockets.
  • the number of the first optical connectors 21 is two, one of the first optical connectors 21 is located on one side of the guide limit plate 52 , and the other first optical connector 21 is located on the other side of the guide limit plate 52 .
  • the two first optical connectors 21 are located on the support plate 51 , and the support plate 51 supports the two first optical connectors 21 in the first socket 11 .
  • the support plate 51 is horizontal in the casing 1, and can also be called a beam.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 can be fixed to the center column 5 without affecting the first socket 11 , for example, The size and position of the first socket 11 are not affected, thereby making the first socket 11 compatible.
  • a part of the conductive portion 311 of the first electrical connector is fixed to the guide limiting plate 52 , and the other part is fixed to the support plate 51 .
  • the first end of the conductive portion 311 of the first electrical connector may be located on the surface of the guide limiting plate 52 , or may protrude from the outer end surface of the guide limiting plate 52 .
  • the second end of the conductive portion 311 of the first electrical connector may be located in the support plate 51 , or may protrude from the support plate 51 .
  • the first end of the conductive portion 311 of the first electrical connector is the end for electrical connection with the power connector of the composite cable, and the second end of the conductive portion of the first electrical connector 311 is used for electrical connection with the power supply line 32 . Ends.
  • the conductive portion 311 of the first electrical connector installed in the center column 5 can satisfy the passing current greater than or equal to the target current value, and can satisfy the safety regulation range under the target voltage.
  • the target current value can be set according to the actual situation, for example, the target current value can be 2A, or a current value above 2A, etc., This embodiment does not limit this.
  • the target voltage can also be set according to the actual situation, for example, the target voltage can be 48V.
  • Each voltage usually corresponds to a safety regulation range, for example, the safety regulation range corresponding to 48V can be 2 mm.
  • the resistance of the conductive portion 311 of the first electrical connector is related to It is related to the cross-sectional area of the conductive portion of the first electrical connector, so that the cross-sectional area of the conductive portion 311 of the first electrical connector can be adjusted under the condition of a known power supply voltage (eg, 48V). Able to pass greater than or equal to the target current value.
  • a known power supply voltage eg, 48V
  • the conductive portion 311 of the first electrical connector includes two bending strips, which are denoted as the first bending strip 3111 and the second bending strip 3112 respectively, and the first bending strip 3111 and the second bending strip 3112 The distance between them, under the target voltage, meets the range of safety regulations. For example, if the voltage supplied to the first bending strip 3111 and the second bending strip 3112 is 48V, then the minimum distance between them is greater than or equal to 2 mm.
  • one of the first bending strip 3111 and the second bending strip 3112 is used to connect to the positive pole of the power supply, and the other is used to connect to the negative pole of the power supply.
  • the first bent bar 3111 is used to connect +48V
  • the second bent bar 3112 is used to connect to -48V.
  • a part of the first bending strip 3111 and a part of the second bending strip 3112 can be arranged up and down, and are located in the same vertical plane, and a part of the first bending strip 3111 and the second bending strip A part of 3112 can be arranged left and right, and lie in the same horizontal plane.
  • the first bending bar 3111 includes a first segment 3111a, a second segment 3111b and a third segment 3111c connected in sequence
  • the second bending bar 3112 includes a fourth segment 3112a, a fifth segment 3112a, a fifth segment connected in sequence segment 3112b and sixth segment 3112c.
  • the arrangement of the first bending strip 3111 and the second bending strip 3112 in the center column 5 can be that the first section 3111 a of the first bending strip 3111 and the second bending strip 3112
  • the four sections 3112a are arranged up and down and are located in the same vertical plane.
  • the third section 3111c of the first bending strip 3111 and the sixth section 3112c of the second bending strip 3112 are arranged left and right and are located in the same horizontal plane.
  • the up-down arrangement is shown in FIG. 23 , which is arranged up and down along the z-axis direction
  • the left-right arrangement is also shown in FIG. 23 , which is arranged along the y-axis direction left and right.
  • first bending bar 3111 The structural features of the first bending bar 3111 and the structural features of the second bending bar 3112 will be described below.
  • first bending strip 3111 As shown in Figure 23, one end of the second segment 3111b is connected to the side of the first segment 3111a, and the other end of the second segment 3111b is connected to the side of the third segment 3111c, And the first segment 3111a and the third segment 3111c are located on opposite sides of the second segment 3111b, and there is a height difference between the first segment 3111a and the third segment 3111c.
  • first section 3111a, the second section 3111b and the third section 3111c are integrally formed, and are formed by bending a metal strip (such as a copper strip).
  • one end of the second segment 3111b is connected to the side of the first segment 3111a, and the connection between the two is a one-time bending, and the bending at this place is to push the first bending strip 3111 downward (such as z-axis negative direction), so that a height difference is formed between the first section 3111a and the third section 3111c, after this bending, the first section 3111a and the second section 3111b are not in the same vertical plane, this bending It can be called a bend that changes direction.
  • the other end of the second segment 3111b is connected to the side of the third segment 3111c, and the connection between the two is a one-time bending, and the bending at this place is to urge the first bending strip 3111 to move toward the y-axis.
  • the second segment 3111b and the third segment 3111c extends in the negative direction so that the first segment 3111a and the third segment 3111c are located on opposite sides of the second segment 3111b, for example, the first segment 3111a is located at the first surface of the second segment 3111b, and the third segment 3111c is located at the second segment 3111b At the second surface of the , after this bending, the second segment 3111b and the third segment 3111c are not in the same vertical plane, and this bending may be referred to as a direction-changing bending.
  • the first bending strip 3111 includes at least two bends that change direction.
  • the shape of the first section 3111a may be a bending structure as shown in FIG. 23 .
  • the shape of the first section 3111a may also be a horizontal structure, which is not limited in this application, and the first bending strip can be 3111 can be installed in the center column 5.
  • connection between the first segment 3111a and the second segment 3111b may be a rounded connection, and the connection between the second segment 3111b and the third segment 3111c may also be a rounded connection.
  • the bending of the second bending strip 3112 is mainly to match the bending of the first bending strip 3111, so as to open the distance between the two, so that the minimum distance between the two meets the safety regulations. Scope (also referred to as safety regulations).
  • one end of the fifth segment 3112b is connected to one end of the fourth segment 3112a
  • the other end of the fifth segment 3112b is connected to the end of the sixth segment 3112c
  • the fourth segment 3112a and the sixth segment 3112c are located at the end of the fifth segment 3112b
  • the fourth section 3112a, the fifth section 3112b and the sixth section 3112c are integrally formed, and are formed by bending a metal strip (such as a copper strip).
  • One end of the fifth segment 3112b is one end along the length direction of the fifth segment 3112b, and similarly, one end of the fourth segment 3112a is also one end along the length direction of the fourth segment 3112a.
  • the first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are used for electrical connection with the power connector of the composite cable.
  • the third section 3111c of the first bending strip 3111 and the sixth section 3112c of the second bending strip 3112 are used for electrical connection with the power supply line 32 .
  • the third section 3111c of the first bending strip 3111 and the sixth section 3112c of the second bending strip 3112 are both the connecting parts of the conductive part 311 of the first electrical connector close to the power supply line 32 .
  • the shapes of the third section 3111c of the first bending strip 3111 and the sixth section 3112c of the second bending strip 3112 are matched with the power supply lines 32 .
  • the third section 3111c of the first bending strip 3111 and the sixth section 3112c of the second bending strip 3112 may both have a sheet-like structure as shown in FIG. 23 . Both the third segment 3111c and the sixth segment 3112c are welded on the surface of the flexible circuit board.
  • the third section 3111c of the first bending bar 3111 and the sixth section 3112c of the second bending bar 3112 may both have annular structures, so as to facilitate the power supply line 32 The ends are fixed in the annular structure.
  • the installation relationship of the first electrical connector conductive portion 311 in the central column 5 may be, as described above, the central column 5 includes a support plate 51 and a guide limit plate 52. As shown in FIG. 22 , the first electrical connector conductive portion 311 A part is fixed in the guide limit plate 52, and a part is fixed in the support plate 51, and the conductive part 311 of the first electrical connector is exposed from the guide limit plate 52, so as to be connected with the power connector of the composite cable, the first electrical connector The connector conductive portion 311 is exposed from the support plate 51 so as to be connected to the power supply line 32 .
  • first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are both exposed from the guide limiting plate 52, and the third section 3111c of the first bending strip 3111 and the second bending strip 3111
  • the sixth segments 3112c of the folding strips 3112 are all exposed from the support plate 51 .
  • first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are exposed from the guide limiting plate 52 .
  • the guide limiting plate 52 includes a first plate body 521 and a second plate body 522 .
  • the height of the first plate body 521 is smaller than the height of the second plate body 522 .
  • the plate body 521 is located at one end of the second plate body 522, and the end of the second plate body 522 away from the first plate body 521 is located on the surface of the support plate 51; The other part of the upper surface of the plate body 521 is located in the second plate body 522 .
  • the first board body 521 is used for matching with the socket of the power connector of the composite cable, so the first board body 521 can also be called the first electrical connector connecting part, and its material can be an insulating material such as a plastic part.
  • the second plate body 522 is mainly used to fix the first electrical connector conductive portion 311 , so the second plate body 522 can also be called the first electrical connector mounting portion, and its material can be an insulating material such as a plastic part.
  • connection between the first plate body 521 and the second plate body 522 has various ways.
  • the connection between the first plate body 521 and the second plate body 522 can also be realized by gluing or screwing. Glue or screw to achieve fixed connection.
  • the first plate body 521 and the second plate body 522 are integrally formed. As shown in FIG.
  • the first plate body 521 and the second plate body 522 are two parts of a plate body, and the height of the first plate body 521 is less than
  • the height of the second board body 522 is because the top and bottom of the second board body 522 are used to be fixedly connected to the top and top of the first socket 11 respectively, and its height is adapted to the height of the first socket 11, while the A board 521 is used for plugging with the power connector of the composite cable, and its height matches the power connector of the composite cable, so the heights of the first board 521 and the second board 522 may not be equal.
  • the heights of the first plate body 521 and the second plate body 522 are not limited in this embodiment, and the technicians can flexibly choose according to the actual situation. For example, as shown in FIG.
  • one of the two first horizontal portions 3111 is located on the upper surface of the first plate body 521 and the other is located on the lower surface of the first plate body 521 .
  • one of the two first horizontal portions 3111 is located on one side surface of the first plate body 521 , and the other is located on the other side surface of the first plate body 521 .
  • the two first horizontal portions 3111 are located side by side on the same surface of the first plate body 521. This embodiment does not limit how the two first horizontal portions 3111 are arranged on the surface of the first plate body 521. The actual situation is flexible.
  • the composite cable is inserted into the first socket 11, and the first board body 521 can enter the socket of the power connector of the composite cable, so that the first bending strip 3111 on the upper surface of the first board body 521 can enter the socket of the power connector.
  • the section 3111a and the fourth section 3112a of the second bending strip 3112 on the lower surface of the first board body 521 are all electrically connected to the conductive portion in the socket of the power connector. If the optical cable inserted into the first socket 11 does not include a power connector, since the outer end of the first plate body 521 is actually the outer end of the center column 5 , it will not affect the direction of the optical cable to the first socket 11 . insertion. Furthermore, although the first electrical connector conductive portion 311 is installed in the center column 5 , the insertion of the optical cable into the first socket 11 will not be affected, so that the first socket 11 has compatibility.
  • first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are both exposed from the guide limiting plate 52 may be, as shown in FIG.
  • the end of the limiting plate 52 away from the support plate 51 has a groove 523; the first section 3111a of the first bending strip 3111 is located on the upper groove wall of the groove 523, and the fourth section 3112a of the second bending strip 3112 is located in the concave The lower groove wall of groove 523.
  • the groove 523 may also be referred to as a hollow structure.
  • the shape of the groove 523 can be a columnar through hole as shown in FIG. 24 , or it can be a cylindrical through hole, or it can also be a cross-shaped through hole, etc.
  • the specific structure of the groove 523 in this embodiment is different. Do limit.
  • the plug of the power connector of the composite cable inserted into the first socket 11 can enter the groove 523, so that the first bending strip 3111 of the upper groove wall of the groove 523 and the second bending strip 3111 of the lower groove wall of the groove 523
  • the bent strips 3112 are all electrically connected to the conductive parts of the plug surface of the power connector of the composite cable.
  • the optical cable inserted into the first socket 11 does not include a power connector. Since the end of the notch of the groove 523 is actually the outer end of the center column 5 , the insertion of the optical cable into the first socket 11 will not be affected. . Furthermore, although the first bending strip 3111 and the second bending strip 3112 of the conductive part 311 of the first electrical connector are installed in the center column 5, the insertion of the optical cable into the first socket 11 will not be affected, so that the first socket 11 is compatible.
  • FIG. 25 another way in which both the first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are exposed from the guide limiting plate 52 may be:
  • the ends of the first section 3111a of a bending strip 3111 and the fourth section 3112a of the second bending strip 3112 both form contacts on the outer end surface of the guide limiting plate 52 .
  • first section 3111a of the first bending strip 3111 and the fourth section 3112a of the second bending strip 3112 are exposed from the guide limiting plate 52 .
  • the ends of the first section 3111a of a bending strip 3111 and the fourth section 3112a of the second bending strip 3112 both protrude from the outer end surface of the guide limiting plate 52 .
  • the sum of the length of the portion of the first segment 3111a of the first bending strip 3111 protruding from the outer end surface of the guide limiting plate 52 and the length of the center column 5 is less than or is equal to the standard length of the central column 5, and similarly, the sum of the length of the part of the fourth segment 3112a of the second bending strip 3112 protruding from the outer end surface of the guide limit plate 52 and the length of the central column 5 is less than or equal to Standard length of center column 5.
  • the standard length of the central column 5 refers to the length of the central column 5 when the optical module is packaged with a standard package type.
  • the end of the central column 5 along the height direction has a bar-shaped guide block 53
  • the inner wall of the first socket 11 has a bar-shaped guide groove 111 ; the bar-shaped guide block 53 matches the bar-shaped guide groove 111 , and the bar-shaped guide block 53 is located in the bar-shaped guide groove 111 .
  • the top and bottom of the guide limiting plate 52 of the center pillar 5 are provided with bar-shaped guide blocks 53 on the opposite top and bottom.
  • the walls all have strip guide grooves 111 ; as shown in FIG. 1 , the strip guide block 53 on the top of the guide limit plate 52 is located in the strip guide groove 111 on the top wall of the housing 1 and guides the bottom of the limit plate 52
  • the bar-shaped guide block 53 is located in the bar-shaped guide groove 111 of the bottom wall of the housing 1 .
  • the bar-shaped guide block 53 may be a bar-shaped convex structure.
  • the bar-shaped guide groove 111 may be a bar-shaped groove structure.
  • the size of the bar-shaped guide block 53 matches the size of the bar-shaped guide groove 111
  • the position of the bar-shaped guide block 53 corresponds to the position of the bar-shaped guide groove 111 .
  • the width of the bar-shaped guide block 53 is from the first end a to the second The two ends b are gradually widened.
  • the first end a of the bar-shaped guide block 53 is the end facing the outside of the housing 1
  • the second end b of the bar-shaped guiding block 53 is the end facing the interior of the housing 1 .
  • the groove width of the bar-shaped guide groove 111 is adapted to the width of the bar-shaped guide block 53.
  • the groove width of the bar-shaped guide groove 111 It gradually widens from the first end a to the second end b.
  • the first end a of the bar-shaped guide groove 111 is the end facing the outside of the housing 1, and the second end b of the bar-shaped guide groove 111 is facing the interior of the housing 1. end of .
  • the groove width of the bar-shaped guide groove 111 may be greater than the minimum width of the bar-shaped guide block 53 and smaller than the maximum width of the bar-shaped guide block 53 , that is, the width of the bar-shaped guide groove 111
  • the width of the groove is larger than the width of the first end a of the bar-shaped guide block 53 and smaller than the width of the second end b of the bar-shaped guide block 53 . In this way, when the bar-shaped guide block 53 slides in the bar-shaped guide groove 111, the bar-shaped guide block 53 will not slide out from the bar-shaped guide groove 111, and the bar-shaped guide block 53 can be limited in the bar-shaped guide groove. 111. Therefore, the center column 5 can be stably installed in the housing 1 .
  • the conductive portion 311 of the first electrical connector includes a bent strip, and the conductive portion 311 of the first electrical connector may also be a pogo pin or a conductive column, and for details, please refer to the following introduction.
  • the conductive portion 311 of the first electrical connector may be a pogo pin or a pogopin, and the conductive portion 311 of the first electrical connector may also be a conductive column.
  • the structure is not limited. In the following, the conductive portion 311 of the first electrical connector is used as a pogo pin, and the conductive portion 311 of the first electrical connector is used as a conductive column for illustration.
  • the conductive part 311 of the first electrical connector is a pogo pin.
  • the pogo pin mainly includes a needle shaft, a needle tube, and an inner spring.
  • the needle shaft can telescopically slide in the needle tube under the action of the spring.
  • the pogo pin is fixed to the center column 5.
  • a part of the pogo pin is fixed to the guide limiting plate 52 of the center column 5, and the other part is fixed to the support plate 51.
  • the needle shaft of the pogo pin protrudes from the The outer end face of the guide limiter plate 52 is used for electrical connection with the power connector of the composite cable inserted in the first socket 11.
  • the power supply line 32 is electrically connected.
  • the positional relationship between the end of the needle shaft of the pogo pin and the outer end surface of the central column 5 is related to the length of the central column 5.
  • the length of the central column 5 is the standard length. Under the standard length of the central column 5, when the optical fiber connector of the optical cable is inserted into the first socket 11, the central column 5 will not block the docking of the optical fiber connector of the optical cable and the first optical connector 21, so that the first socket 11 has compatibility. If the length of the central column 5 is less than the standard length, when the optical fiber connector of the optical cable is inserted into the first socket 11 , the central column 5 will not block the docking between the optical fiber connector of the optical cable and the first optical connector 21 .
  • the central column 5 when the optical fiber connector of the optical cable is inserted into the first socket 11, the central column 5 will block the connection between the optical fiber connector of the optical cable and the first optical connector 21. The optical fiber connector cannot be docked with the first optical connector 21 in the first socket 11 .
  • the needle tube of the pogo pin since the length of the central column 5 is a standard length, and the needle tube has no flexibility, the needle tube of the pogo pin is located in the central column 5 .
  • the end of the needle tube of the pogo pin is flush with the outer end surface of the guide limiting plate 52 of the central column 5 .
  • the needle shaft of the pogo pin since the needle shaft has elasticity, it only needs to satisfy the requirement that when the composite cable is inserted into the first socket 11, the end of the needle shaft of the pogo pin is flush with the guide limit plate of the central column 5
  • the outer end face of 52 is sufficient.
  • the pin shaft of the pogo pin can protrude from the outer end surface of the guide limit plate 52 of the center column 5 , or can be flush with the guide limit plate of the center column 5 . the outer end face of the plate 52 .
  • the conductive part of the power connector of the composite cable can be tightly combined with the pin shaft of the pogo pin to ensure good conductivity.
  • the needle shaft of the pogo pin can protrude from the outer end surface of the guide limit plate 52 of the center column 5, and when the composite cable is inserted into the first socket 11, the needle shaft of the pogo The end is flush with the outer end surface of the guide limiting plate 52 of the center column 5 .
  • the needle tube of the pogo pin since the length of the central column 5 is smaller than the standard length, the needle tube of the pogo pin is completely located in the guide limit plate 52 of the central column 5, or the end of the needle tube of the pogo pin is flush with the central column 5.
  • the outer end surface of the guide limit plate 52 can also be that the end of the needle tube of the pogo pin slightly protrudes from the outer end surface of the guide limit plate 52 of the center column 5 .
  • the sum of the length of the protruding part of the needle tube and the length of the central column 5 is less than or equal to the standard length, In order to avoid blocking the connection between the optical fiber connector of the optical cable and the first optical connector.
  • the end of the needle shaft of the pogo pin protrudes from the outer end face of the central column 5, and the length of the protruding part of the needle shaft is the same as that of the central column.
  • the sum of the lengths of 5 is greater than the standard length; when the composite cable is inserted into the first socket 11, the end of the needle shaft of the pogo pin protrudes from the outer end face of the central column 5, and the length of the protruding part of the needle shaft is the same as
  • the sum of the lengths of the central pillars 5 is less than or equal to the standard length.
  • the needle shaft when the composite cable is inserted into the first socket 11, not only can the needle shaft not block the connection between the optical fiber connector of the optical cable and the first optical connector, but also the power connector of the composite cable can be in close contact with the needle shaft, ensuring that Good electrical conductivity.
  • the end of the needle shaft of the pogo pin protrudes from the outer end surface of the central column 5, and the length of the protruding part of the needle shaft is the same as that of the central column 5.
  • the sum of the lengths is less than or equal to the standard length; when the composite cable is inserted into the first socket 11, the end of the needle shaft of the pogo pin protrudes from the outer end face of the central column 5, and the length of the protruding part of the needle shaft is The sum of the length of the central column 5 is also less than or equal to the standard length.
  • first electrical connector conductive portion 311 is specifically a pogo pin, and the specific structure of the first electrical connector conductive portion 311 may also be a conductive column.
  • the conductive column may be a cylindrical structure, a square column structure, or a columnar structure of other shapes, which is not limited in this embodiment.
  • the end of the conductive column is flush with the outer end surface of the central column 5 , for example, the end of the conductive column is flush with the outer end surface of the guide limiting plate 52 of the central column 5 .
  • conductive contacts are formed on the outer end surface of the guide limiting plate 52 .
  • the conductive portion of the power connector of the composite cable is in contact with the contact on the outer end surface of the guide limiting plate 52.
  • the optical cable excluding the power connector is inserted into the first socket 11.
  • the conductive portion 311 of the first electrical connector which is a conductive column
  • the end of the conductive column is It is flush with the outer end face of the central column 5, so the conductive portion 311 of the first electrical connector, which is a conductive column, does not affect the position of the central column 5 and the space occupied in the housing 1. Therefore, the optical cable of the power connector is not included. It can still be inserted into the first socket 11 of the optical module and docked with the first optical connector 21 in the first socket 11 .
  • the ends of the conductive pillars protrude from the outer end surface of the central pillar 5 , and the sum of the length of the protruding portion of the conductive pillars and the length of the central pillar 5 is less than or equal to the standard length. In this way, when the composite cable is inserted into the first socket 11, the conductive portion of the power connector of the composite cable is in contact with the end portion of the conductive column.
  • the optical cable excluding the power connector is inserted into the first socket 11 since the sum of the length of the protruding part of the conductive column and the length of the central column 5 is less than or equal to the standard length, the conductive part protrudes out of the middle The part of the column 5 will not block the docking of the optical fiber connector of the optical cable and the first optical connector. Therefore, the optical cable excluding the power connector can still be inserted into the first socket 11 of the optical module. The first optical connector 21 is docked.
  • the above-mentioned specific structures of the first electrical connector conductive portion 311 of the first electrical connector 31 are the introduction of the pogo pin and the conductive column, wherein the specific structure of the first electrical connector conductive portion 311 is not limited in this embodiment, and the first electrical connector can be realized. After an electrical connector conductive portion 311 is fixed in the central column 5 of the optical module, the optical cable excluding the power connector can still be inserted into the first socket 11, so that the first socket 11 has compatibility.
  • the end of the first electrical connector conductive portion 311 of the first electrical connector 31 located inside the housing 1 is electrically connected to the power supply line 32 .
  • the end of the conductive portion of the first electrical connector 311 located inside the housing 1 can protrude from the central column 5 to electrically connect with the power supply line 32 . connect. For example, as shown in FIG.
  • the pin of the pogo pin that is far away from the needle shaft protrudes from the central column 5 and passes through the flexible circuit
  • the pads of the board and the pins of the pogo pins away from the pin shaft are welded on the flexible circuit board, so as to realize the electrical connection between the pogo pins and the flexible circuit board.
  • the conductive part 311 of the first electrical connector is a pogo pin and the power supply line 32 is a cable
  • the cable can be wound around the pin of the pogo pin that is far away from the needle shaft to realize the electrical connection between the pogo pin and the cable .
  • the end of the center column 5 along the height direction may also have a bar-shaped guide block 53, and the first socket 11
  • the inner wall has a strip guide groove 111; the strip guide block 53 matches the strip guide groove 111, and the strip guide block 53 is located in the strip guide groove 111.
  • the specific structures of the bar-shaped guide blocks 53 and the bar-shaped guide grooves 111 can be referred to as described above, and will not be repeated here.
  • the power supply line 32 may be a flexible circuit board (ie, a flexible printed circuit board), and one end of the flexible circuit board is connected to the conductive portion of the first electrical connector of the first electrical connector 31 . 311 is electrically connected, and the other end of the flexible circuit board is electrically connected to the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the power supply line 32 may be a cable (that is, a cable covered with copper wires), and one end of the cable is conductive with the first electrical connector of the first electrical connector 31
  • the second electrical connector 311 is electrically connected, and the other end of the cable is electrically connected to the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the power supply line 32 may be a second rigid circuit board, one end of the second rigid circuit board is electrically connected to the first electrical connector conductive portion 311 of the first electrical connector 31 , and the other end of the second rigid circuit board is electrically connected It is electrically connected to the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the second electrical contact conductive portion 331 of the second electrical contact 33 may be located on the surface of the second rigid circuit board.
  • the power supply line 32 may be a second rigid circuit board, one end of the second rigid circuit board is electrically connected to the first electrical connector conductive portion 311 of the first electrical connector 31 , and the other end of the second rigid circuit board extends into the second rigid circuit board.
  • the surface of the part of the second rigid circuit board located in the second socket 12 may have gold fingers, and the gold fingers form the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the power supply line 32 may include a second rigid circuit board 321 and a cable 322 .
  • One end of the second rigid circuit board 321 is electrically connected to the cable 322
  • the other end of the second rigid circuit board 321 is electrically connected to the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the second electrical connector conductive portion 331 of the second electrical connector 33 is integrated on the surface of the second rigid circuit board 321, for example, one end of the second rigid circuit board 321 is electrically connected to the cable 322, and the second rigid circuit board 321 The other end extends into the second socket 12 , and the surface of the part of the second rigid circuit board 321 located in the second socket 12 may have gold fingers, and these gold fingers form the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the end of the cable 322 away from the second rigid circuit board 321 is electrically connected to the first electrical connector conductive portion 311 of the first electrical connector 31 .
  • the power supply line 32 includes a second rigid circuit board 321 and a flexible circuit board 323 .
  • One end of the second rigid circuit board 321 is electrically connected to the flexible circuit board 323
  • the other end of the second rigid circuit board 321 is electrically connected to the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the second electrical connector conductive portion 331 of the second electrical connector 33 is integrated on the surface of the second rigid circuit board 321, for example, one end of the second rigid circuit board 321 is electrically connected to the flexible circuit board 323, and the second rigid circuit board 321
  • the other end of the second rigid circuit board 321 extends into the second socket 12 , and the surface of the part of the second rigid circuit board 321 located in the second socket 12 may have gold fingers, and these gold fingers form the second electrical connector conductive portion of the second electrical connector 33 331.
  • the end of the flexible circuit board 323 away from the second rigid circuit board 321 is electrically connected to the first electrical connector conductive portion 311 of the first electrical connector 31 .
  • the power supply line 32 may also include a cable 322 and a flexible circuit board 323 .
  • the first electrical connector conductive portion 311 of the first electrical connector 31 , the cable 322 , the flexible circuit board 323 and the second electrical connector conductive portion 331 of the second electrical connector 33 are electrically connected in sequence.
  • the first electrical connector conductive portion 311 of the first electrical connector 31 , the flexible circuit board 323 , the cable 322 and the second electrical connector conductive portion 331 of the second electrical connector 33 are electrically connected in sequence.
  • the power supply line 32 may also be integrated on the first rigid circuit board 221 of the optical device 2 , for example, the power supply line 32 may also be a cable printed on the surface of the first rigid circuit board 221 of the optical device 2 .
  • the first electrical connector conductive portion 331 of the first electrical connector 31 and the second electrical connector conductive portion 331 of the second electrical connector 33 can be electrically connected through the first rigid circuit board 221.
  • the first electrical connector conducts electricity.
  • the portion 331 is connected to one end of the first rigid circuit board 221
  • the conductive portion 331 of the second electrical connector is connected to the other end of the first rigid circuit board 221 .
  • the conductive portion 331 of the second electrical connector can also be integrated in the first rigid circuit board 221 .
  • the conductive portion 331 of the second electrical connector is a metal sheet located on the surface of the first rigid circuit board 221 .
  • the conductive part 331 of the second electrical connector is a metal sheet located on the surface of the first rigid circuit board 221, as shown in FIG. 51, the second optical connector 23 of the optical device 2 is located on the surface of the first rigid circuit board 221.
  • Gold finger then, as shown in FIG. 51 , the conductive portion 331 of the second electrical connector can be an undefined metal sheet in the golden finger, and the undefined metal sheet is an unused metal sheet in the golden finger.
  • the conductive part 331 of the second electrical connector is a newly added metal sheet around the gold finger, wherein, those indicated by 23-33 in FIG. 52 and FIG. A composite electrical connector of the two optical connectors 23 and the second electrical connector 33 .
  • the second electrical connector conductive portion 331 may be a newly added metal sheet around the gold finger, as shown in FIG. 52 .
  • the second electrical connector conductive portion 331 is located at the end of the gold finger along the length direction.
  • the conductive portion 331 of the second electrical connector is located on the side of the gold finger along the length direction.
  • the present embodiment does not limit the positional arrangement of the second electrical connector conductive portion 331 of the second electrical connector 33 relative to the conductive portion of the second optical connector 23 .
  • first electrical connector conductive portion 331 of the first electrical connector 31 , the power supply line 32 and the second electrical connector conductive portion 331 of the second electrical connector 33 are integrally formed.
  • the first electrical connector conductive portion 331, the power supply line 32 and the second electrical connector conductive portion 331 may be formed by processing metal conductors, and the portion of the metal conductor near the first end may form the first electrical connector conductive portion 311. The part close to the second end can form the second electrical connector conductive part 331, and the other parts of the metal conductor can form the power supply line 32.
  • the first electrical connector conductive part 311, the power supply line 32 and the second electrical connector conductive part 331 are composed of three parts. Metal conductors are processed and shaped.
  • the specific implementation manner of the power supply line 32 is not limited in this embodiment, and can be flexibly selected according to the actual situation in the actual processing of the optical module.
  • the power supply line 32 can be laid on the inner surface of the casing 1 .
  • the power supply line 32 is a flexible circuit board, and the flexible circuit board can be laid on the inner surface of the housing 1 .
  • the power supply line 32 is a cable, and the cable can be laid on the inner surface of the housing 1 .
  • the power supply line 32 includes a cable and a flexible circuit board, and both the cable and the flexible circuit board may be located on the inner surface of the housing 1 .
  • the power supply line 32 includes a cable and a second rigid circuit board, or, the power supply line 32 includes a flexible circuit board and a second rigid circuit board, then the cable or the flexible circuit board can be laid on the inner surface of the housing 1,
  • the second rigid circuit board can be suspended in the housing 1, so that some components can be installed on the surface of the second rigid circuit board, for example, the power supply line 32 can be installed for data signal transmission components, and some components can be installed
  • These components may be the components of the optical module for receiving feedback information and judging the feedback information. The content of this part will be described in detail when the function of the power supply device 32 is introduced below.
  • the second rigid circuit board may be located in the housing 1 side by side with the first rigid circuit board 221 of the optical device 2 up and down.
  • the above is the specific form of the power supply line 32, and the position of the power supply line 32 inside the housing 1, no matter how the power supply line 32 is arranged inside the housing 1, and what position is arranged, the power supply line 32 will not affect it.
  • the layout space of the optical device 2 in the housing 1 is the specific form of the power supply line 32, and the position of the power supply line 32 inside the housing 1, no matter how the power supply line 32 is arranged inside the housing 1, and what position is arranged, the power supply line 32 will not affect it.
  • the positions of the second optical connector 23 and the second electrical connector 33 in the second socket 12 of the housing 1 are independent of each other, so that the second end of the optical module has compatibility. Wherein, the second end of the optical module has compatibility, it can also be said that the second socket 12 of the optical module has compatibility.
  • the second end of the optical module has compatibility, that is, the second end of the optical module can be inserted into an optical cage including a power interface or into an optical cage without a power interface.
  • the optical module includes a plug-in guide block 4, and the plug-in guide block 4 is located in the second socket 12; the second electrical connector 33 includes a second electrical connector conductive portion 331, as shown in FIG. 38, the second electrical connector
  • the connector conductive portion 331 is fixed on the plug-in guide block 4; the second end of the housing 1 can be inserted into an optical communication device matched with an optical module, which is any optical module in the standard optical module package type.
  • the plug-in guide block 4 is a structure included in all optical modules of standard packaging type, then for the optical module that does not include the power supply device 3 , the plug-in guide block 4 is also included.
  • the plug-in guide block 4 of the optical module first contacts the optical cage 600, the optical module continues to be inserted into the optical cage 600, and the second optical connector 23 enters into the electrical interface of the optical cage 600 under the guidance of the plug-in guide block 4 , and 23 ′ in FIG. 37 indicates the electrical interface corresponding to the second optical connector 23 .
  • the plug-in guide block 4 can also bear a certain force, so as to reduce the force on the second optical connector 23, and the first rigid circuit board where the second optical connector 23 is located can be affected.
  • 221 forms a protective effect to reduce the force of the optical cage on the first rigid circuit board 221 .
  • the conductive portion of the second electrical connector 33 that is, the conductive portion 331 of the second electrical connector 33 , is fixed to the plug-in guide block 4 , so that the second end of the housing 1 can be inserted into the connection with the optical module.
  • the second end of the optical module has compatibility.
  • the plug guide block 4 is used as the installation part of the second electrical connector 33 and is the carrier of the conductive part 331 of the second electrical connector, which can also be referred to as the second electrical connector installation part.
  • the plug guide block 4 can be made of material. Plastic parts and other insulating materials.
  • the plug-in guide block 4 has a plate-like structure and is mounted on the inner wall of the second socket 12 at the top (or bottom), for example, it can be fixed on the top of the second socket 12 by snap-fitting. On the inner wall of the second socket 12, for example, it can also be fixed on the inner wall of the second socket 12 at the top by means of gluing.
  • the plug guide block 4 is used as a carrier of the second electrical connector conductive portion 331 , the second electrical connector conductive portion 331 can be fixed on the plug guide block 4 , and the second electrical connector conductive portion 331 is also electrically connected to the power supply line 32 .
  • the fixing position of the second electrical connector conductive portion 331 in the plug-in guide block 4 there are various types.
  • a fixed position may be, as shown in FIG. 38 , the conductive part 331 of the second electrical connector is a strip-shaped metal sheet; the conductive part 331 of the second electrical connector is fixed at the position of the plug guide block 4 and the second optical connector 23
  • the opposite outer surface, the outer surface of the insertion guide block 4 is a surface parallel to the insertion and extraction direction of the optical module, and the strip direction of the conductive portion 331 of the second electrical connector is parallel to the insertion and extraction direction of the optical module.
  • the conductive portion 331 of the second electrical connector may be attached to the outer surface of the plug guide block 4 facing the second optical connector 23 .
  • the conductive portion 331 of the second electrical connector may also be attached to the outer surface of the side wall of the plug guide block 4 .
  • the conductive portion 331 of the second electrical connector can also be attached to the second side of the plug-in guide block 4 facing away from the second socket 12. The outer surfaces of the two optical connectors 23 .
  • the conductive portion 331 of the second electrical connector is a strip-shaped metal dome, wherein the strip-shaped metal dome can also be called a strip-shaped spring, and its structure can be referred to as shown in FIG. 40 .
  • the second electrical connector conductive portion 331 of the shaped spring includes a straight portion 3311 and a bent portion 3312 .
  • the plug-in guide block 4 has an installation slot 41 , the installation groove 41 has a notch on the outer surface of the plug-in guide block 4 , and the outer surface of the plug-in guide block 4 is parallel to the insertion and removal direction of the optical module. any surface.
  • the surface parallel to the plugging direction of the optical module may be the outer surface of the plugging guide block 4 facing the second optical connector 23, the outer surface of the side wall of the plugging guide block 4, or the plugging guide block 4.
  • the outer surface of the guide block 4 facing away from the second optical connector 23 and so on. This embodiment does not limit this, and an example may be given by facing the outer surface of the second optical connector 23 .
  • the straight portion 3311 of the second electrical connector conductive portion 331 of the bar-shaped spring is located in the plug-in guide block 4, and the bent portion 3312 of the bar-shaped spring is located in the installation groove 41,
  • the bent portion 3312 is suspended in the installation slot 41, and the bent portion 3312a of the bent portion 3312 protrudes from the notch of the installation slot 41, wherein the bent portion 3312a of the bent portion 3312 is used for and The contacts of the device are electrically connected.
  • the bent portion 3312a can be in contact with the conductive portion in the inserted device to achieve electrical connection.
  • the conductive part 331 of the second electrical connector is a metal rod; the conductive part 331 of the second electrical connector is fixed inside the plug guide block 4 and protrudes from the plug guide block 4 away from the power supply line 32 end face.
  • the conductive portion 331 of the second electrical connector penetrates through the inside of the plug-in guide block 4, one end protrudes from the end face of the plug-in guide block 4 close to the power supply line 32 and is electrically connected to the power supply line 32, and the other end protrudes from the plug-in guide block 4.
  • the end face of the pulling guide block 4 away from the power supply line 32 is used for electrical connection with the inserted device.
  • the pin axis of the pogo pin can be extended and retracted along the insertion and removal direction of the optical module.
  • the plug-in guide block 4 includes a main body 40 and a protective piece; the protective piece is fixedly connected with the main body 40, and the protective piece is configured such that when the optical module is inserted into the optical communication device, the protective piece can make the pin shaft of the pogo pin connect to the optical
  • the contacts of the communication device are in close contact, and when the optical module is not inserted into the optical communication device, the protector can protect the pin shaft of the pogo pin.
  • the specific implementation structure of the protector includes various structures.
  • one structure of the protector is shown in FIG. 43.
  • the protector includes a slider 42 and a first elastic member 43, and the elastic force of the first elastic member 43 is smaller than that of the pogo pin.
  • the end of the body 40 has a chute 401, the slider 42 and the first elastic piece 43 are located in the chute 401, and the first elastic piece 43 is connected between the bottom of the chute 401 and the slider 42; the spring pin One part is fixedly located in the body 40, and the other part is located in the slider 42.
  • the slider 42 can slide relative to the body 41 and the pogo pin, and the sliding direction is parallel to the insertion and removal direction of the optical module. See Fig. 44 (a) and (b).
  • the first elastic member 43 can be any component with telescopic elasticity, such as a spring, so that the slider 42 can protrude from the chute 401 under the elasticity of the first elastic member 43 without leaving the chute 401 , and can also be retracted in the chute 401.
  • the slider 42 is pushed into the chute 401 by the optical communication device. Elasticity, so that the needle shaft of the pogo pin is in close contact with the contact point of the optical communication device.
  • the slider 42 protrudes from the chute 401 under the elastic force of the first elastic member 43 to surround the pogo pin and protect the pin shaft of the pogo pin.
  • the protection piece includes a pressing piece 44 , a second elastic piece 45 and an L-shaped rod 46 .
  • the needle shaft 3313 of the pogo pin has a groove 3313a
  • the tube wall of the needle tube 3314 of the pogo pin has a through hole 3314a
  • the groove 3313a of the needle shaft 3313 and the When the positions of the through holes 3314a are opposite, the needle shaft 3313 is accommodated in the needle tube 3314 .
  • a part of the pressing member 44 is located outside the main body 40 and the other part is located in the main body 40 , the pogo pin, the second elastic member 45 and the L-shaped rod 46 are all located in the main body 40 , and the pressing member 44 , the second elastic member 45 and the first rod 461 of the L-shaped rod 46 are connected in sequence, and the position of the second rod 462 of the L-shaped rod 46 is opposite to the position of the through hole 3314 a of the needle tube 3314 .
  • the pressing member 44 can expand and contract relative to the body 40 , and the stretching direction is perpendicular to the insertion and removal direction of the optical module.
  • the pressing member 44 is located on the side of the body 40 .
  • the inner wall of the socket of the optical cage exerts a force on the pressing member 44, so that the pressing member 44 is in a pressing state.
  • the inner wall of the socket of the optical cage no longer exerts any force on the pressing member 44, and the pressing member 44 returns to its natural state under the action of the second elastic member 45, and is no longer in the pressed state.
  • the structure of the pressing member 44 can be any structure that is convenient for entering the optical cage.
  • the pressing member 44 has a wedge-shaped structure including a slope.
  • the pressing member 44 has a The inclined plane enters the light cage first.
  • the pressing member 44 may also have a spherical structure, and the portion of the pressing member 44 protruding from the body 40 has a spherical structure.
  • the specific implementation structure of the pressing member 44 is not limited in this embodiment.
  • the pressing member 44 is in a pressed state, and the end of the second rod 462 of the L-shaped rod 46 is located outside the needle tube 3314, so that the needle shaft 3313 is in contact with the optical communication device.
  • the end of the second rod 462 of the L-shaped rod 46 is located in the groove 3313a of the needle shaft 3313, so that the The needle shaft 3313 remains retracted in the needle tube 3314.
  • the protection piece includes a pressing piece 44 and a U-shaped piece 47 .
  • the needle tube 3314 of the pogo pin has an axial strip hole 3314b
  • the needle shaft 3313 of the pogo pin has a protrusion 3313b
  • the protrusion 3313b is located in the axial strip hole 3314b .
  • a part of the pressing member 44 is located outside the body 40 , and the other part is located in the body 40 , the pogo pin and the U-shaped member 47 are both located in the body 40 , and the first end of the U-shaped member 47 is located at the pressing member 44 , The second end of the U-shaped piece 47 is located at the protrusion 3321b of the needle shaft 3313 .
  • the pressing member 44 can expand and contract relative to the body 40 , and the stretching direction is parallel to the insertion and removal direction of the optical module. Correspondingly, as shown in FIG. 47 , the pressing member 44 is located at the end of the body 40 .
  • the optical cage exerts a force on the pressing member 44, so that the pressing member 44 is in the pressing state, and when the pressing member 44 is in the pressing state, the U-shaped member 47 can push the spring
  • the needle shaft 3313 of the needle urges the needle shaft 3313 to make close contact with the connector in the optical cage.
  • the pressing member 44 when the optical module is inserted into the optical communication device, the pressing member 44 is in a pressed state, and the needle shaft 3313 protrudes from the needle tube 3314 under the push of the U-shaped rod 47 to be in close contact with the contacts of the optical communication device.
  • the pressing member 44 When the module is not inserted into the optical communication device, the pressing member 44 is in an unpressed state, and the needle shaft 3313 is retracted into the needle tube 3314 .
  • the positions of the second electrical connector 32 and the second optical connector 23 are independent of each other, and the optical module includes a rigid circuit board, that is, the first rigid circuit board 221 of the optical device 2, and the optical module includes two rigid circuit boards.
  • the positions of the second electrical connector 32 and the second optical connector 23 can also be independent of each other, wherein one of the two rigid circuit boards is the rigid circuit board of the optical device 2, which is denoted as the first rigid circuit board. 221 , and the other is the rigid circuit board of the power supply device 3 , denoted as the second rigid circuit board 321 .
  • the specific plan is as follows.
  • the power supply device 3 further includes a second rigid circuit board 321 , for example, the power supply circuit 32 of the power supply device 3 includes a second rigid circuit board 321 , and the first end of the second rigid circuit board 321 Located in the second socket 12 , the second electrical connector conductive portion 331 of the second electrical connector 33 is a gold finger located on the surface of the second rigid circuit board 321 .
  • the second rigid circuit board 321 and the first rigid circuit board 221 of the optical device 2 are located in the casing 1 in parallel up and down, and the first end of the second rigid circuit board 321 extends into the second socket 12 .
  • the surface of the part of the two rigid circuit boards 321 located in the second socket 12 has a gold finger, and the gold finger can be used as the second electrical connector conductive portion 331 of the second electrical connector 33 .
  • the second rigid circuit board not only has a cable for realizing the electrical connection between the first electrical connector 31 and the second electrical connector 33 , but also can install some components to reduce the first electrical connection of the optical device 2 .
  • a processing chip may be mounted on the surface of the second rigid circuit board 321 to speed up the processing speed of the optical module.
  • the power supply line 32 not only includes the second rigid circuit board 321, as shown in FIG. 49, but also includes the flexible circuit board 323.
  • the connector 31 , the flexible circuit board 323 and the second rigid circuit board 321 are electrically connected in sequence.
  • the flexible circuit board 323 can also be replaced by a cable.
  • the distance between the second rigid circuit board 321 and the inner wall of the housing 1 is relatively close, so the second socket 12 at the second end of the optical module is compatible and can be inserted into an optical cage that does not include a power connector middle.
  • the power supply device 3 is mainly used to transmit electrical energy, and is used as a power channel to perform power transmission.
  • the optical module not only has an optical device for realizing optical signal and electrical signal conversion, but also has a power supply device for realizing PoE power supply.
  • a power supply device for realizing PoE power supply only the interface for inserting the optical module can be set on the panel of the device into which the optical module is inserted, such as switches and APs, and there is no need to set an additional interface for PoE power supply, thereby saving the size of the panel on the device.
  • the optical module has a power supply device 3 for realizing PoE power supply.
  • the optical module can be used to determine the power consumption level of the optical communication device when it is detected that the inserted optical communication device is a powered device , delivering power to the optical communication device according to the power consumption level of the optical communication device.
  • the PoE power supply includes a power supply device (Power Sourcing Equipment, PSE) and a powered device (Power Device, PD).
  • the power supply device can be a PoE switch, etc.
  • the powered device can be a PoE network camera and AP.
  • the optical module is inserted into the interface of the switch, the optical module is inserted into the interface of the AP, and the optical module on the switch and the optical module on the AP are connected through a composite cable.
  • the switch is the power supply device, and the AP is the power receiving device.
  • the switch outputs a small voltage to the AP through the port.
  • the processor in the optical module plugged into the switch detects that the AP is the power receiving device and supports PoE power supply.
  • the inserted switch reports that the AP is a powered device, and then the switch increases the voltage delivered to the AP, so that the processor of the optical module inserted in the switch detects the power consumption level of the AP, and then the processor of the optical module inserted in the switch detects the power consumption level of the AP.
  • the processor of the optical module inserted in the switch detects the power consumption level of the AP.
  • determine the power supply voltage corresponding to the power consumption level of the AP and feed back the power supply voltage required by the AP to the inserted switch, so that the switch supplies the AP with the above power supply voltage. Stable power delivery.
  • the power supply device 3 in the optical module can not only be used to transmit electric energy, but also can be used to transmit some data signals.
  • the data signal transmitted in the power supply device 3 may include a signal for adjusting the optical power of the optical device, a signal for adjusting the signal-to-noise ratio of the fiber channel, a signal for adjusting the S-parameter of the fiber channel, and at least one of the abnormal signals of the optical module.
  • the power supply device 3 can transmit data signals
  • the power supply device 3 can be used as a return channel, that is, a channel through which the receiving end can return some information to the transmitting end after receiving the signal.
  • the power supply device 3 is used as a return channel. Then, for the optical module at the receiving end, when receiving the optical signal sent by the optical module at the transmitting end, the first feedback information can be generated according to the optical signal, and the first feedback information can be modulated to the power supply device. 3.
  • the first feedback information is used to instruct the optical module at the transmitting end to adjust the parameters of the optical device 2 .
  • the first feedback information includes at least one of information for adjusting the optical power of the optical device 2, information for adjusting the signal-to-noise ratio of the fiber channel, and information for adjusting the S parameter of the fiber channel, wherein S-parameters, also known as scattering parameters, are an important parameter in microwave transmission.
  • the parameters of the optical device 2 are adjusted according to the second feedback information.
  • the second feedback information also includes at least one of information for adjusting the optical power of the optical device 2 , information for adjusting the signal-to-noise ratio of the fiber channel, and information for adjusting the S parameter of the fiber channel.
  • the optical module at the transmitting end and the optical module at the receiving end are a pair of interactive optical modules, the contents carried by the first feedback information and the second feedback information are equal.
  • a pair of interactive optical modules may be used as an example for description.
  • the optical module inserted on the switch panel is the transmitting end
  • the optical module inserted in the AP panel is the receiving end.
  • the optical module at the transmitting end sends an optical signal to the optical module at the receiving end through the fiber channel.
  • the optical module at the receiving end receives the optical signal sent by the optical module at the transmitting end, it will generate feedback information (that is, the above-mentioned first feedback information) according to the optical signal, and modulate the feedback information to the power supply device 3, and the power supply device 3 passes the first feedback information.
  • An electrical connector 31 is routed into the copper wire of the composite cable.
  • the feedback information is transmitted to the optical module of the transmitting end through the copper wire, and is transmitted to the power supply device 3 of the optical module of the transmitting end through the first electrical connector 31 of the optical module of the transmitting end, and the power supply device 3 of the optical module of the transmitting end sends the feedback information to the processor.
  • the processor analyzes and obtains the feedback information (that is, the above-mentioned second feedback information), and then the processor in the optical module at the transmitting end performs equalization adjustment on the parameters of the optical device 2 according to the received feedback information.
  • the above feedback information includes a power value. Then, after the optical module at the transmitting end parses and obtains the power value received by the optical module at the receiving end, it is compared with the pre-stored power threshold required by the optical module at the receiving end, if the received power value is greater than the power threshold. Then, the power value of the optical signal sent to the optical module at the receiving end can be reduced, and when the received power value is relatively close to the pre-stored power threshold, the adjustment of the power value of the optical signal sent to the optical module at the receiving end is stopped. In this way, the optical module at the transmitting end can dynamically adjust the power value of the transmitted optical signal according to the feedback information carrying the power value sent by the optical module at the receiving end, so as to reduce power consumption and save energy.
  • the above feedback information includes a signal-to-noise ratio or an S parameter. Then, after the optical module at the transmitting end analyzes and obtains the signal-to-noise ratio of the fiber channel sent by the optical module at the receiving end, if the signal-to-noise ratio is relatively high, then the optical module at the transmitting end does not need to adjust parameters, and if the signal-to-noise ratio is relatively low, then the transmission
  • the optical module at the end can improve the signal-to-noise ratio by increasing the transmit power, and can also improve the signal-to-noise ratio by adjusting the number of taps and the coefficient of the number of taps.
  • the power supply device 3 is used as a return channel, so that the optical module at the transmitting end can obtain some data in the optical fiber channel, so as to provide a basis for transmitting the optimal optical signal.
  • the optical module will also be protected to a certain extent, which is beneficial to prolong the service life of the optical module.
  • the optical module fails, if the power of the transmitted optical signal is too low, or when photoelectric conversion cannot be performed, an abnormal signal can be sent to the inserted device through the power supply device 3, so that the technician can know the optical signal through the device.
  • the module is faulty and the optical module needs to be replaced.
  • the power of the transmitted data signal is much smaller, so it is equivalent to being submerged in the power signal in the frequency spectrum. In this way, even if it is intercepted by an eavesdropper, the eavesdropper is likely to regard it as a noise signal. Therefore, when the data signal is transmitted through the power supply device 3, the data signal is difficult to be intercepted, and the security of the data transmission can be improved.
  • the optical module has a power supply device for realizing PoE power supply, and the power supply device can not only realize power transmission, but also realize some data signal transmission.
  • the optical module has at least the following effects:
  • the optical module not only has the function of photoelectric conversion, but also has a power supply device that realizes PoE power supply.
  • the optical port for plugging the optical module and the electrical port for plugging the power connector are also located in the same port.
  • the first electrical connector 31 at the first end of the optical module does not change the original structural characteristics of the optical module, so that the first end of the optical module has compatibility, which can not only be inserted into the composite cable after the update, but also used before the update.
  • the optical module has a wide range of application scenarios, and the updated composite cable is also a composite cable that matches the package type of the optical module and includes a power connector matching the first electrical connector.
  • the updated composite cable is also a composite cable that matches the package type of the optical module, but does not include the power connector that matches the first electrical connector.
  • the second electrical connector 33 at the second end of the optical module does not change the original structural features of the optical module, so that the second end of the optical module has compatibility, which can be inserted into the updated optical cage, and can also be inserted into the optical module.
  • the optical module has a wide range of application scenarios.
  • the updated optical cage is also an optical cage that matches the package type of the optical module and includes a power connector that matches the second electrical connector, and the updated optical cage is also the same as the package type of the optical module.
  • the optical cage is the interface part of the optical communication device.
  • Embodiments of the present application also provide an optical communication device, where the optical communication device may be any device in the field of optical communication, for example, a switch or an AP.
  • the optical communication device includes a chassis 100, a main board 200 and a photoelectric conversion component 300; as shown in FIG.
  • the conversion component 300 includes the above-mentioned optical device 2 and the above-mentioned power supply device 3; On the surface, the positions of the optical connector of the optical device 2 and the electrical connector of the power supply device 3 are opposite to the position of the optical cable socket 101 .
  • the optical connector of the optical device 2 is used for docking with the optical fiber connector of the composite cable to realize optical signal transmission.
  • the electrical connector of the power supply device 3 is used for electrical connection with the power connector of the composite cable, so as to realize the power transmission of PoE.
  • the photoelectric conversion component 300 implements the photoelectric conversion function through the optical device 2 , and realizes the PoE power supply function through the power supply device 3 .
  • the photoelectric conversion assembly 300 is packaged in the frame 100 according to the standard optical module package type. Since the optical communication device needs to be connected with a composite cable, the panel of the chassis 100 has an optical cable socket 101, and the position of the optical connector of the optical device 2 and the position of the electrical connector of the power supply device 3 are opposite to the position of the optical cable socket 101, for example, The optical connector of the optical device 2 is located in the optical cable socket 101 , and the electrical connector of the power supply device 3 is also located in the optical cable socket 101 .
  • the optical communication device can be used with an updated composite cable, wherein the updated composite cable, that is, the connector at the end of the composite cable includes not only optical fiber connectors, but also power connectors, and The optical fiber connector is matched with the optical connector of the optical device 2 , and the power connector is matched with the electrical connector of the power supply device 3 .
  • the optical communication device can also be used with a composite cable before the update, wherein the composite cable before the update, that is, the connector at the end of the composite cable includes an optical fiber connector, but does not include a power connector, And the optical fiber connector is matched with the optical connector of the optical device 2 .
  • the optical communication equipment that can match both the updated composite cable and the composite cable before the update is compatible, has a wide range of application scenarios, and is highly flexible.
  • the structural features of the optical communication device to achieve compatibility may be as follows:
  • Both the optical connector of the optical device 2 and the electrical connector of the power supply device 3 are located in the optical cable socket 101, and the positions of the optical connector of the optical device 2 and the electrical connector of the power supply device 3 are independent of each other, so that the optical cable socket 101 is used for supplying with the standard packaging type.
  • the photoelectric conversion assembly 300 is inserted into the matching composite cable.
  • the optical device 2 is located on the surface of the main board 200 , and the optical connector of the optical device 2 is usually supported by the central column 5 , and the plugging guide and limit are also realized by the central column 5 .
  • the conductive portion of the electrical connector of the power supply device 3 can be fixed in the central column 5 without affecting the structural features of the optical connector of the optical device 2 .
  • compatibility of optical communication devices can be achieved.
  • the fixed relationship between the conductive portion of the electrical connector of the power supply device 3 and the central column 5, and the specific structural form of the conductive portion of the electrical connector please refer to the first electrical connector conductive portion 311 of the power supply device 3 and the central column. 5 and the specific structural form of the conductive portion 311 of the first electrical connector, which will not be repeated here.
  • the optical cable socket 101 of the optical communication device has compatibility, so that the composite cable before the update can be inserted into the optical cable socket 101 and docked with the optical connector in the optical cable socket 101 to realize optical signal transmission, and the updated composite cable can be inserted into the optical cable.
  • the sockets 101 are respectively docked with the optical connectors in the optical cable socket 101 and electrically connected with the electrical connectors in the optical cable socket 101 to realize optical signal transmission and power transmission.
  • the optical communication device is integrated with the photoelectric conversion component 300, so when the optical communication device is connected with other devices, only the optical cable or the composite cable needs to be plugged, and there is no need to plug the optical module additionally.
  • the connection operation is simple, and the loss of the optical module can be avoided. It can also avoid the situation that the connection cannot be successfully connected due to the mismatch between the optical module and the optical communication device.
  • This embodiment also provides a power over Ethernet PoE device, the PoE device includes the above-mentioned optical module, and the optical module of the PoE device, as described above, not only has a photoelectric conversion function, but also has a power supply for realizing PoE power supply.
  • the power supply device does not change the original structural features of the optical module, and does not affect the size of the optical module.
  • the power connector of the composite cable is electrically connected to the PoE device through the optical module, and the power connector of the composite cable does not need to be inserted into the PoE device, thereby saving the panel space of the PoE device, making the structure of the PoE device more compact, which is beneficial to PoE The development of miniaturization of equipment.

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Abstract

一种光模块,包括壳体(1)、光器件(2)和供电器件(3),壳体(1)的第二端具有第二插口(12),壳体的第二端为用于插入于光通信设备的端部;光器件(2)包括第二光接头(23),供电器件(3)包括第二电接头(33);光器件(2)和供电器件(3)均位于壳体(1)中,第二光接头(23)和第二电接头(33)均位于第二插口(12)中,第二光接头(23)和第二电接头(33)的位置相互独立。复合缆的电源连接器通过光模块与光通信设备电连接,复合缆的电源连接器无需插到光通信设备中,进而可以节省光通信设备的面板空间,有利于光通信设备的小型化发展。

Description

光模块
本申请要求于2020年08月18日提交的申请号为202010831724.6、发明名称为“光模块及光口供电方法”的中国专利申请的优先权,以及于2020年09月22日提交的申请号为202011004279.2、发明名称为“复合模块及其制造方法”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及光通信技术领域,特别涉及一种光模块。
背景技术
以太网供电(Power over Ethernet,PoE)是一种为一些设备(如互联网协议(Internet Protocol,IP)电话机、接入点(access point,AP)和网络摄像机等)传输数据信号的同时,用传输数据信号的线缆为其供电的技术。
例如,交换机和AP之间可以通过包覆有光纤和铜线的复合缆连接,示例性地,交换机的面板上插一个光模块,可以记为第一光模块,AP的面板上插一个光模块,可以记为第二光模块,然后,第一光模块和第二光模块之间通过复合缆连接,进而实现交换机和AP之间的连接。
为了实现上述连接,相应的,复合缆的每端都分别具有光纤连接器和电源连接器,交换机和AP的面板上都分别具有光端口和电端口,光端口中具有用于与光纤连接器相连的光接口,电端口中具有用于与电源连接器相连的电接口。
这样,交换机的光端口中插第一光模块,AP的光端口中插第二光模块,复合缆的一端处的光纤连接器插在第一光模块上,电源连接器插在交换机的电端口中,复合缆的另一端处的光纤连接器插在第二光模块上,电源连接器插在AP的电端口中,进而交换机和AP之间通过复合缆和两个光模块实现连接。
上述方案不利于光通信设备如交换机和AP等的小型化发展。
发明内容
本申请提供了一种光模块,能够克服相关技术中的问题,所述技术方案如下:
第一方面,提供了一种光模块,所述光模块包括壳体、光器件和供电器件;
所述壳体的第二端具有第二插口,所述壳体的第二端为用于插入于光通信设备的端部;
所述光器件包括第二光接头,所述供电器件包括第二电接头;
所述光器件和所述供电器件均位于所述壳体中,且所述第二光接头和所述第二电接头均位于所述第二插口中,且所述第二光接头和所述第二电接头的位置相互独立。
在一种示例中,该光模块不仅具有光电转换功能,还具有实现PoE供电的供电器件,且 供电器件未改变光模块原有的结构特征,不影响光模块的尺寸。这样,复合缆的电源连接器通过光模块与光通信设备电连接,复合缆的电源连接器无需插到光通信设备中,进而可以节省光通信设备的面板空间,有利于光通信设备的小型化发展。
在一种可能的实施方式中,所述第二电接头包括第二电接头导电部;
所述第二电接头导电部固定于所述光模块的位于所述第二插口中的插拔导向块;
所述壳体的第二端用于插入于与标准的光模块封装类型相匹配的光通信设备中。
其中,壳体的第二端用于插入于与标准的光模块封装类型相匹配的光通信设备中,也可以理解为,壳体的第二端用于插入于与光模块相匹配的光通信设备中,该光模块为标准光模块封装类型中的任一光模块。
在一种示例中,由于第二光接头和第二电接头的位置相互独立,而且,第二电接头导电部固定在光模块的中柱,那么,该光模块的第二插口也能插入到不包括电源连接器的光笼子中,以实现光模块的第二光接头与光笼子中的电接口电连接,该光模块的第二插口具备兼容性,能够扩大该光模块的适用范围,增强应用广泛性,提高使用灵活性。
在一种可能的实施方式中,所述第二电接头导电部为条形金属片;
所述条形金属片位于所述插拔导向块的与所述第二光接头相对的表面,且所述条形金属片的条形方向和所述光模块的插拔方向平行。
在一种示例中,第二电接头导电部为条形金属片,条形金属片位于插拔导向块的面对第二光接头的表面,例如,条形金属片的表面和插拔导向块的表面位于同一平面。这样,虽然光模块的插拔导向块中新增了条形金属片,但是由于条形金属片位于插拔导向块的表面,并不会影响光模块的第二端向光笼子中的插入。所以,为条形金属片的第二电接头导电部能够使光模块的第二端具备兼容性。
在一种可能的实施方式中,所述第二电接头导电部为条形簧片,包括直线部和弯折部;
所述插拔导向块的与所述第二光接头相对的表面具有安装槽,所述条形簧片的直线部位于所述插拔导向块中,所述条形簧片的弯折部位于所述安装槽中,且所述弯折部的弯折处伸出于所述安装槽的槽口。
在一种示例中,第二电接头导电部为条形簧片,条形簧片的直线部固定在插拔导向块中,条形簧片的弯折部悬空在安装槽中,这样弯折部能够在安装槽中沿着垂直于插拔方向的上下方向移动。进而,即使该光模块的第二端插入到不包括电源接口的光笼子中,由于条形簧片的弯折部能够压入至安装槽中,而不影响光模块的第二端向光笼子中的插入。所以,为条形簧片的第二电接头导电部能够使光模块的第二端具备兼容性。
在一种可能的实施方式中,所述第二电接头导电部为弹簧针;
所述弹簧针位于所述插拔导向块中,且所述弹簧针的端部伸出于所述插拔导向块。
在一种示例中,第二电接头导电部为弹簧针,弹簧针的针管固定在插拔导向块中,弹簧针的针轴伸出于插拔导向块的外端面,但是针轴能够在针管中伸缩,所以,即使该光模块的第二端插入到不包括电源接口的光笼子中,由于弹簧针的针轴能够收缩至针管中,而不影响光模块的第二端向光笼子中的插入。所以,为弹簧针的第二电接头导电部能够使光模块的第二端具备兼容性。
在一种可能的实施方式中,所述插拔导向块包括本体和保护件;
所述保护件和所述本体固定连接,所述保护件被配置为:
当所述光模块插入于光通信设备中时,所述保护件能使所述弹簧针的针轴与所述光通信设备的触点紧密接触,当所述光模块未插入于光通信设备中时,所述保护件能保护所述弹簧针的针轴。
在一种示例中,当光模块未插入到光通信设备中时,由于弹簧针的针轴位于保护件中,保护件将针轴包围在其中。这样,即使光模块跌落在地,由于保护件的存在,也不会损坏到针轴,进而对针轴形成保护。
在一种可能的实施方式中,所述保护件包括滑块和第一弹性件,所述第一弹性件的弹力小于所述弹簧针的弹力;
所述本体的端部具有滑槽,所述滑块和所述第一弹性件均位于所述滑槽中,且所述第一弹性件连接在所述滑槽的槽底和所述滑块之间;
所述弹簧针的一部分位于所述本体中,另一部分位于所述滑块中,所述滑块能相对于所述本体和所述弹簧针滑行,且滑行方向与所述光模块的插拔方向平行;
当所述光模块插入于所述光通信设备中时,所述滑块收缩于所述滑槽中,以使所述弹簧针的针轴与所述光通信设备的触点紧密接触,当所述光模块未插入于所述光通信设备中时,所述滑块伸出于所述滑槽,以保护所述弹簧针的针轴。
在一种示例中,第一弹性件的弹性小于弹簧针的弹性,光模块的第二端插入到光笼子中时,光笼子推动滑块滑行至滑槽中,促使弹簧针的针轴和光笼子中的电源接口紧密连接,以确保接触良好。
在一种示例中,该光模块的第二端未插入到光笼子时,第一弹性件可以处于自然状态或者压缩状态,滑块伸出于滑槽且滑块将弹簧针的针轴包围在其中,即使光模块的第二端落地,但是滑块先触地,不会损坏到针轴,对针轴形成保护。
在一种可能的实施方式中,所述保护件包括按压件、第二弹性件和L型杆;
所述弹簧针的针轴具有凹槽,所述弹簧针的针管的管壁具有通孔,所述针轴的凹槽和所述针管的通孔的位置相对时,所述针轴收容于所述针管中;
所述按压件一部分位于所述本体外,另一部分位于所述本体中,所述弹簧针、所述第二弹性件和所述L型杆均位于所述本体中,且所述按压件、所述第二弹性件和所述L型杆的第一杆依次相连,所述L型杆的第二杆的位置和所述针管的通孔的位置相对;
当所述光模块插入于所述光通信设备中时,所述按压件处于按压状态,所述L型杆的第二杆的端部位于所述针管的外,以使所述针轴与所述光通信设备的触点紧密接触;
当所述光模块未插入于所述光通信设备中,且所述针轴收缩于所述针管中时,所述L型杆的第二杆的端部位于所述针轴的凹槽中,以使所述针轴保持收缩于所述针管中。
在一种示例中,该光模块的第二端未插入到光笼子时,弹簧针的针轴位于针管中,且L型杆的端部穿过针管卡在针轴的凹槽中,使得针轴保持在针管中。这样,即使光模块的第二端落地,但是由于针轴位于针管中,那么不会损坏到针轴,进而对针轴形成保护。
在一种示例中,而当光模块的第二端插入到光笼子中时,光笼子的侧壁按动按压件,促使按压件伸入至插拔导向块的本体中,进而促使L型杆离开针轴的凹槽,那么,针轴在内部弹簧的作用下,具有朝向光笼子的作用力,从而促使弹簧针的针轴和光笼子中的电源接口紧密连接,以确保接触良好。
在一种可能的实施方式中,所述保护件包括按压件和U型件;
所述弹簧针的针管具有轴向条形孔,所述弹簧针的针轴具有凸块,所述凸块位于所述轴向条形孔中;
所述按压件一部分位于所述本体外,另一部分位于所述本体中,所述弹簧针和所述U型件均位于所述本体中,且所述U型件的第一端位于所述按压件处,所述U型件的第二端位于所述针轴的凸块处;
当所述光模块插入于所述光通信设备中时,所述按压件处于按压状态,所述针轴在所述U型杆的推动下伸出于所述针管,以与所述光通信设备的触点紧密接触,当所述光模块未插入于所述光通信设备中时,所述按压件处于未按压状态,所述针轴收缩于所述针管中。
在一种示例中,当该光模块未插入到光笼子中时,按压件伸出于本体的外端面,U型件不再推动弹簧针的针轴,使得针轴位于针管中,这样,即使光模块的第二端落地,但是由于针轴位于针管中,那么不会损坏到针轴,进而对针轴形成保护。
而当该光模块插入到光笼子中时,光笼子推动按压件,使得按压件进入到插拔导向块的本体中,U型件向针轴施加朝伸出于针管的方向的推力,促使弹簧针的针轴和光笼子中的电源接口紧密连接,以确保接触良好。
在一种可能的实施方式中,所述供电器件还包括第二刚性线路板;
所述第二刚性线路板一端位于所述第二插口中,所述第二电接头的第二电接头导电部为位于所述第二刚性线路板表面的金手指。
在一种示例中,供电器件的供电线路包括第二刚性线路板,这样第二刚性线路板的伸入至第二插口的部分的表面上可以具有金手指,这些金手指可以作为第二电接头的导电部。而第二刚性线路板上不仅具有用于实现第一电接头和第二电接头实现电连接的排线,还可以安装一些元器件,以减少光器件的第一刚性线路板上的元器件的数量。又例如,第二刚性线路板的表面可以安装处理芯片,以加快光模块的处理速度。
在一种可能的实施方式中,所述第二刚性线路板和所述光器件的第一刚性线路板上下平行位于所述壳体中。
另一方面,提供了一种光通信设备,所述光通信设备包括机框、主板和光电转换组件;
所述机框的面板具有光缆插口,所述光电转换组件包括光器件和供电器件;
所述主板、所述光器件和所述供电器件均位于所述机框中,且所述光器件和所述供电器件均位于所述主板的表面,所述光器件的光接头和所述供电器件的电接头均位于所述光缆插口中。
在一种示例中,该光通信设备集成有光电转换组件,那么该光通信设备与其它设备进行连接中,只需插接光缆或者复合缆,无需额外插接光模块,连接操作简单,能避免光模块的遗失,还能避免因光模块与光通信设备的不匹配而出现无法成功连接的情况。
在一种可能的实施方式中,所述光器件的光接头和所述供电器件的电接头均位于所述光缆插口中,且所述光器件的光接头和所述供电器件的电接头的位置相互独立,以使所述光缆插口用于供线缆插入,线缆既可以是复合缆,又可以是光缆。
在一种示例中,该光通信设备的光缆插口具备兼容性,使得不包括电源连接器的光缆也能够插入到光缆插口中与光缆插口中的光接头对接,实现光信号传输,从而能够增强该光通信设备的应用广泛性,提高使用灵活性。
第二方面,提供了一种通信设备,所述通信设备包括机框、主板和光电转换组件;
所述机框的面板具有光缆插口,所述光电转换组件包括光器件和供电器件;
所述主板、所述光器件和所述供电器件均位于所述机框中,且所述光器件和所述供电器件均位于所述主板的表面,所述光器件的光接头和所述供电器件的电接头的位置均与所述光缆插口的位置相对应,例如,光器件的光接头位于光缆插口中,供电器件的电接头也位于光缆插口中且独立于光器件的光接头的任意位置。
在一种示例中,该通信设备集成有光电转换组件,那么该通信设备与其它设备进行连接中,只需插接光缆或者复合缆,无需额外插接光模块,连接操作简单,能避免光模块的遗失,还能避免因光模块与通信设备的不匹配而出现无法成功连接的情况。
在一种可能的实施方式中,所述光器件的光接头和所述供电器件的电接头均位于所述光缆插口中,且所述光器件的光接头和所述供电器件的电接头的位置相互独立,以使所述光缆插口用于供线缆插入,线缆既可以是复合缆,又可以是光缆。
在一种示例中,该通信设备的光缆插口具备兼容性,使得不包括电源连接器的光缆也能够插入到光缆插口中与光缆插口中的光接头对接,实现光信号传输,从而能够增强该通信设备的应用广泛性,提高使用灵活性。
第三方面,提供了一种PoE设备,所述PoE设备包括上述第一方面及各实施方式中的光模块。
附图说明
图1是本申请提供的一种光模块的结构示意图;
图2是本申请提供的一种光模块的结构示意图;
图3是本申请提供的一种光模块的结构示意图;
图4是本申请提供的一种光模块的结构示意图;
图5是本申请提供的一种光模块的爆炸结构示意图;
图6是本申请提供的一种光模块的壳体的结构示意图;
图7是本申请提供的一种光模块的光器件的结构示意图;
图8是本申请提供的一种光模块的光器件在壳体中的结构示意图;
图9是本申请提供的一种光模块的供电器件在壳体中的结构示意图;
图10是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图11是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图12是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图13是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图14是本申请提供的一种光模块的供电器件在壳体中的结构示意图;
图15是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图16是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图17是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图18是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图19是本申请提供的一种光模块的第一电接头导电部的位置结构示意图;
图20是本申请提供的一种光模块的中柱的结构示意图;
图21是本申请提供的一种光模块的第一端处的结构示意图;
图22是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图23是本申请提供的一种光模块的第一电接头导电部的结构示意图;
图24是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图25是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图26是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图27是本申请提供的一种中柱的结构示意图;
图28是本申请提供的一种光模块的第一插口的结构示意图;
图29是本申请提供的一种条形导向块和条形导向槽的结构示意图;
图30是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图31是本申请提供的一种第一电接头导电部在中柱中的结构示意图;
图32是本申请提供的一种第一电接头导电部和供电线路连接的结构示意图;
图33是本申请提供的一种光模块的供电线路为柔性线路板的结构示意图;
图34是本申请提供的一种光模块的供电线路为线缆的结构示意图;
图35是本申请提供的一种供电线路包括线缆和第二刚性线路板的结构示意图;
图36是本申请提供的一种供电线路包括柔性线路板和第二刚性线路板的结构示意图;
图37是本申请提供的一种光模块和光笼子配合的结构示意图;
图38是本申请提供的一种第二电接头导电部为金属片的光模块的结构示意图;
图39是本申请提供的一种第二电接头导电部为条形簧片的光模块的结构示意图;
图40是本申请提供的一种条形簧片的结构示意图;
图41是本申请提供的一种第二电接头导电部为导电柱的光模块的结构示意图;
图42是本申请提供的一种第二电接头导电部为弹簧针的光模块的结构示意图;
图43是本申请提供的一种第二电接头导电部在插拔导向块中的结构示意图;
图44是本申请提供的一种第二电接头导电部在插拔导向块中的结构示意图;
图45是本申请提供的一种第二电接头导电部在插拔导向块中的结构示意图;
图46是本申请提供的一种弹簧针的结构示意图;
图47是本申请提供的一种第二电接头导电部在插拔导向块中的结构示意图;
图48是本申请提供的一种弹簧针的结构示意图;
图49是本申请提供的一种供电线路包括第二刚性线路板的光模块的结构示意图;
图50是本申请提供的一种供电线路包括第二刚性线路板的光模块的结构示意图;
图51是本申请提供的一种光通信设备的结构示意图;
图52是本申请提供的一种光通信设备的主板的结构示意图。
图例说明
1、壳体;11、第一插口;12、第二插口;111、条形导向槽;
2、光器件;21、第一光接头;22、光电转换器件;23、第二光接头;
221、第一刚性线路板;222、转换器件;
3、光器件;31、第一电接头;32、供电线路;33、第二电接头;
311、第一电接头导电部;321、第二刚性线路板;322、线缆;323、柔性线路板;331、第二电接头导电部;
3111、第一弯折条;3111a、第一段;3111b、第二段;3111c、第三段;
3112、第二弯折条;3112a、第四段;3112b、第五段;3112c、第六段;
3311、直线部;3312、弯折部;3312a、弯折处;3313、针轴;3313a、凹槽;3313b、凸块;3314、针管;3314a、通孔;3314b、轴向条形孔;
4、插拔导向块;40、本体;41、安装槽;42、滑块;43、第一弹性件;44、按压件;45、第二弹性件;46、L型杆;47、U型件;
401、滑槽;461、第一杆;462、第二杆;
5、中柱;51、支撑板;52、导向限位板;53、条形导向块;
521、第一板体;522、第二板体;523、凹槽;
100、机框;200、主板;300、光电转换组件;600、光笼子。
具体实施方式
一些相关方案中,通信设备,如交换机和AP等,针对每根光电复合缆,其面板上都需要至少设置两个端口,一个作为光端口通过光模块与光电复合缆中的光纤连接,另一个作为电端口用来插光电复合缆的电源连接器,每根光电复合缆占据较多的面板尺寸,不利于交换机和AP等通信设备的小型化发展。
其中,光电复合缆,也可以简称复合缆,是一种包覆有光纤和铜线的线缆,光纤用于实现光信号的传输,铜线用于实现电能的传输,电能的传输也可以称为电能传输和电力传输。
本申请实施例提供了一种光模块,该光模块包括用于实现光电转换的光器件和用于实现电力传输的供电器件,所以该光模块也可以称为光电复合模块,或者,简称复合模块。因此,该光模块一方面可以用来进行光信号和电信号的转换,另一方面可以用来实现PoE。
该光模块可以应用在交换机和AP的连接中,交换机和AP的面板上分别插有一个光模块,插在交换机上的光模块和插在AP上的光模块之间通过复合缆连接,实现交换机和AP的连接。
其中,光模块的第一端用来供复合缆插入,光模块的第二端用来插入通信设备(例如,交换机和AP等)中。
那么,通信设备的面板上具有用来插该光模块的端口(端口也可以称为插口,也即是通信设备的光笼子的插口),端口中具有与该光模块的光器件的电接头(即下文提及的第二光接头)相连的电接口,该端口中还具有与该光模块的供电器件的电接头(即下文提及的第二电接头)相连的电接口。这种通信设备可以称为更新后的通信设备。
同样,复合缆的端部具有与该光模块的光器件的光接头(即下文提及的第一光接头)对接的光纤连接器,复合缆的端部还具有与该光模块的电接头相连的电源连接器。
这样,复合缆和光模块之间既可以进行光信号的传输,又可以进行电力传输,光模块和通信设备之间既可以进行电信号传输,又可以进行电力传输。
可见,该光模块包括实现光电转换功能的器件(即下文提及的光器件)和实现PoE功能的器件(即下文提及的供电器件),使得与该光模块配合的通信设备的面板上只需要有用来插该光模块的端口即可,该端口中具有与光器件进行电信号传输的接口,也具有与供电器件进行电力传输的接口,进而可以节省通信设备的面板尺寸,有利于通信设备的小型化发展。
当然,由于该光模块的用于供复合缆插入的第一端具有兼容性,那么,该光模块可以与包括电源连接器的复合缆搭配使用,也可以与传统的不包括电源连接器的光缆搭配使用。也 即是,该光模块的第一端不仅能供复合缆插入,也能供光缆插入。
同样,由于该光模块的用于插入通信设备的第二端具备兼容性,那么,通信设备的光笼子中也可以只具有与光模块的光器件的电接头(即下文提及的第二光接头)相连的电接口,而不具有与该光模块的供电器件的电接头(即下文提及的第二电接头)相连的电接口,这种通信设备可以称为更新前的通信设备,本实施例中的光模块也可以与这种更新前的通信设备搭配使用。所以,该光模块的第二端既能插入到光笼子中包括电源连接器的通信设备中,又能插入到光笼子中不包括电源连接器的通信设备中。
以下需要指出:
本实施例所述的光模块,可以是光接收光模块,光发送光模块,光收发一体光模块和光转发光模块等中的任意一种;
本实施例所述的光模块,可以是热插拔光模块和非热插拔光模块中的任意一种;
本实施例所述的光模块,可以是标准封装类型中的任一种,例如,可以是小型可插拔(small form pluggable,SFP)光模块、双密度四通道小型可插拔(quad small form factor pluggable-double density,QSFP-DD)光模块、C型可插拔(C form factor pluggable,CFP)光模块、千兆位接口转换器(gigabit interface converter,GBIC)光模块、10G小型可热插拔(10gigabit small form pluggable,XFP)光模块等等。
例如,该光模块可以是如图1所示的一种光模块,该光模块为SFP光模块。又例如,该光模块也可以是如图2所示的一种光模块,该光模块为SFP光模块。其中,图1所示的SFP光模块和图2所示的SFP光模块的区别在于拉手条的结构形式。又例如,该光模块也可以是如图3所示的一种光模块,该光模块为QSFP-DD光模块。又例如,该光模块也可以是如图4所示的一种光模块,该光模块为CFP2光模块,其中CFP2光模块是尺寸为CFP光模块的二分之一的光模块。
其中,本实施例对该光模块所属的具体类型不做具体限定,本实施例中光模块可以是按照任意标准封装格式封装的光模块。为便于介绍可以以图1所示的封装类型为SFP的光模块进行示例,其它形式的光模块与之类似,便不再一一赘述。下面将详细介绍该光模块的实现光电转换功能的器件和实现PoE供电功能的器件的具体结构。
如图5所示为该光模块的爆炸结构示意图,该光模块包括壳体1、光器件2和供电器件3。
其中,壳体1作为该光模块的保护壳体,用于保护光模块内部的元器件,起到保护和防尘防水的作用。光器件2为用于实现光电转换功能的器件。供电器件3为用于实现PoE供电功能的器件。
为了更好了解该光模块,下面简单介绍壳体1、光器件2和供电器件3的主要结构以及相对位置关系。
(1)对于该光模块的壳体1。
如图6所示,该光模块的轮廓形状,可以为长方体的盒状结构,相应的,壳体1的形状也可以为长方体的盒状结构。作为一种示例,壳体1可以是沿着长度方向两端敞口的长方体的盒状结构,两端的敞口中一个作为第一插口11,另一个作为第二插口12。另一种示例中,壳体1可以包括上盖和底座,上盖和底座固定形成壳体1,例如,上盖可以具有罩状结构,罩在底座上,又例如,上盖具有板状,底座具有无盖的盒状,上盖盖合在底座上,其中,本 实施例对上盖和底座的具体结构不做限定,能够实现上盖和底座相固定之后,能够形成两端敞口的盒状结构即可。
其中,壳体1的第一插口11(位于壳体1的第一端),用于供复合缆插入,以实现该光模块和复合缆的光纤对接。壳体1的第二插口12(位于壳体1的第二端),用于插入于通信设备的光笼子中,以实现该光模块和通信设备的电连接。
(2)对于光器件2。
光器件2也可以称为光电子器件,如图7所示,光器件2可以包括第一光接头21、光电转换器件22和第二光接头23,光电转换器件22的一端与第一光接头21相连,另一端与第二光接头23相连,其中,第一光接头21或第二光接头23和光电转换器件22的相连可以包括物理上的相连和电学上的相连。
其中,第一光接头21是一种光纤接头,用于与复合缆的光纤连接器对接,以实现光信号传输,第二光接头23是一种电接头,用于与通信设备的光笼子中的电接口实现电连接,以实现电信号传输。
为了区别于供电器件3的两个电接头,光模块第二端的电接头在文中称为第二光接头23,但其实第二光接头23是一种电接头,并非是一种光纤接头。
如图7所示,光电转换器件22包括第一刚性线路板221和转换器件222,其中,转换器件222包括用来实现光电转换功能所需的元器件,例如,可以包括激光器、探测器、放大器、时钟数据恢复、驱动芯片和信号处理器等元器件。第一刚性线路板221的一端与转换器件222相连,第一刚性线路板221的另一端的表面具有金手指,该金手指形成第二光接头23的导电部。转换器件222的远离第一刚性线路板221的一端与第一光接头21相连,以将转换的光信号通过第一光接头21向外传输给复合缆。
光器件2和壳体1的组装关系可以如图8所示,光电转换器件22的第一刚性线路板221和转换器件222均位于壳体1中,且第一刚性线路板221的远离转换器件222的一端位于第二插口12中,使得第一刚性线路板221的远离转换器件222的一端表面上的金手指位于第二插口12中,这样,第二光接头23位于第二插口12中。而与转换器件222相连的第一光接头21位于壳体1的第一插口11中,可以参见图1所示。
其中,光模块可以是双纤双向光模块,相应的,如图7所示,第一光接头21的数量为两个,一个作为发送端,另一个作为接收端,其中图7中光器件2与线路板之间的连接结构未示出。光模块也可以是单纤双向光模块,相应的,第一光接头21的数量为一个,既作为发送端又作为接收端。其中,本实施例对该光模块具体为双纤双向模块还是单纤双向模块不做限定,附图示例中以双纤双向模块进行示例。
(3)对于供电器件3。
供电器件3用于实现以太网供电中的电力传输。见图5所示,供电器件3包括第一电接头31、供电线路32和第二电接头33,供电线路32的一端和第一电接头31相连,另一端和第二电接头33相连。
其中,第一电接头31和第二电接头33均是电接头,第一电接头31与复合缆的电源连接器电连接,第二电接头33与通信设备的光笼子中的电源连接器电连接。
供电器件3和壳体1的组装关系可以是,如图9所示,供电线路32位于壳体1中,且第一电接头31位于第一插口11处,第二电接头33位于第二插口12中。其中,对于第一电接 头31位于第一插口11处,例如,见图1所示,第一电接头31可以位于第一插口11中,又例如,第一电接头31也可以位于第一插口11的周围位置处,下文将会详解介绍。
其中,供电器件3安装在壳体1中以后,第一电接头31可以不影响光模块的第一端的第一插口11的结构特征,这样,虽然该光模块中新增了供电器件3,但是壳体1第一端的第一插口11依然能够供光缆插入。第二电接头33也可以不影响光模块的第二端的第二插口12的结构特征,这样,壳体1的第二端的第二插口12依然能插入不包括电源连接器的光笼子中。
这样,该光模块的两端都具备兼容性,从而,即使是不包括电源连接器的光缆,依然能够插入到该光模块的第一插口11中,与第一插口11中的第一光接头21对接,即使光笼子不包括电源连接器,该光模块的第二插口12依然能够插入到光笼子中,与光笼子中的电接头电连接。
由上述可见,该光模块中集成有供电器件3,那么,该光模块插入到通信设备中以后,既能实现光纤对接,又能实现电力传输,那么,光模块所插的通信设备的面板只需要具有与光模块相匹配的端口即可,无需额外设置用于实现电力传输的电源端口,进而可以节省通信设备的面板尺寸,有利于通信设备的小型化发展。
其中,需要指出的是,下文在未特别指明的情况下,所述的复合缆或者光缆,其光纤连接器,均是与光模块的第一光接头21相匹配的光纤连接器,以便于复合缆或者光缆的光纤连接器能够与第一光接头21对接。同样,所述的通信设备的光笼子的电接口,均与光模块的第二光接头23(第二光接头23是一种电接头)相匹配的电接口,以便于第一光接头21能够插入于光笼子的电接口中,实现电信号的传输。
由于本申请是在常规光模块(也可以称为传统光模块)的基础上新增供电器件3,下面将依次介绍供电器件3的第一电接头31、供电线路32和第二电接头33的结构,以及分别在壳体1中的位置。
(一)对于供电器件3的第一电接头31。
为了实现第一插口11的兼容性,第一电接头31和第一光接头21的位置相互独立,以使第一电接头31不会影响到第一光接头21。
那么,第一电接头31的位置分布可以如下。
其中,第一电接头31的第一电接头导电部311露出于壳体1且位于壳体1第一端处的任意位置,第一光接头21和第一电接头31的位置相互独立,以使第一插口11具备兼容性。
(1)如图10和图11所示,第一电接头31的第一电接头导电部311固定于光模块的中柱5。
其中,有关中柱5的特征,在下文介绍第一电接头31的第一电接头导电部311中时会详细介绍。中柱5和第一光接头21均位于第一插口11中,例如,如图10所示,第一光接头21的数量为两个,该光模块为双光接头光模块,那么,中柱5和两个第一光接头21均位于第一插口11中,中柱5位于两个第一光接头21之间,中柱5将第一插口11划分为两个子插口。
第一电接头导电部311固定于中柱5的方案,又可以包括以下几种可能的情况:
如图10所示,第一电接头导电部311的端部位于中柱5的外端面。例如,第一电接头导电部311,第一电接头导电部311的端部齐平于中柱5的外端面。又例如,如图10中(b) 所示,中柱5的外端面具有凹槽,第一电接头导电部311位于凹槽中,第一电接头导电部311的外端面低于中柱5的外端面。
又例如,中柱5的长度小于标准长度,如图10中(a)所示,第一电接头导电部311为柱状结构,其端部伸出于中柱5的外端面,且第一电接头导电部311的伸出于中柱5的部分的长度和中柱5的长度之和,小于或等于标准长度,其中,标准长度为光模块按照标准封装类型封装时,中柱5的长度,也是常规的不包括供电器件3的光模块的中柱的长度。
这样,虽然第一电接头导电部311伸出于中柱5的外端面,但第一电接头导电部311也不会阻挡到不包括电源连接器的光缆在第一插口11中的插入,使得光缆的光纤连接器插入时,光纤连接器不会因为先碰触到第一电接头导电部311而出现无法与第一光接头21对接的情况,进而使得第一插口11具备兼容性。
如图11所示,第一电接头导电部311位于中柱5的内壁表面。例如,如图11中(a)和(b)所示,两个第一电接头导电部311均位于中柱5的同一个内壁表面,又例如,如图11中(c)所示,一个第一电接头导电部311位于中柱5的一个内壁表面,另一个第一电接头导电部311位于中柱5的另一个内壁表面。
其中,第一电接头导电部311的外表面可以高于中柱5的内壁表面,第一电接头导电部311的外表面也可以低于中柱5的内壁表面,例如,如图11中(c)所示,中柱5的内壁具有凹槽,第一电接头导电部311位于凹槽中,使得第一电接头导电部311的外表面低于中柱5的内壁表面,第一电接头导电部311的外表面也可以齐平于中柱5的内壁表面,本申请对此不做限定,能够满足不包括电源连接器的光缆能够插入到第一插口11中与第一光接头21对接即可。
(2)如图12至图14及图17所示,第一电接头31的第一电接头导电部311固定于壳体1的第一端的端面。
其中,第一电接头导电部311的外表面可以齐平于壳体1的第一端的外端面,如图12所示,第一电接头导电部311的外表面也可以凸出于壳体1的第一端的外端面,如图13所示,第一电接头导电部311的外表面也可以凹陷于壳体1的第一端的外端面。对于第一电接头导电部311的外表面凹陷于壳体1的第一端的外端面的情况,壳体1的第一端的外端面具有凹槽,第一电接头导电部311位于凹槽中,例如,第一电接头导电部311的端部低于凹槽的槽口。
其中,第一电接头导电部311的形状可以是圆柱状,也可以是矩形柱状等,本申请对此不做限定。
在一种示例中,第一电接头导电部311固定于壳体1的第一端的端面的方案中,又可以包括以下几种可能的情况:
例如,如图12和图13所示,两个第一电接头导电部311可以位于第一插口11的同一个侧壁的外端面,示例性地,两个第一电接头导电部311位于第一插口11的左侧壁的外端面或者右侧壁的外端面,或者,两个第一电接头导电部311位于第一插口11的顶壁外端面或者底壁的外端面。又例如,如图12和图13所示,两个第一电接头导电部311可以位于第一插口11的不同的侧壁的外端面,示例性地,一个第一电接头导电部311位于左侧壁的外端面,另一个第一电接头导电部311位于右侧壁的外端面。
又例如,如图14所示,第一电接头导电部311位于壳体1的第一端的外边缘处,壳体1 的第一端的外边缘具有凸台结构,凸台结构和壳体1的第一端的外边缘的连接处具有凹槽,第一电接头导电部311位于该凹槽中。
(3)如图15所示,第一电接头31的第一电接头导电部311位于第一插口11的内壁。
例如,如图15中(a)、(b)和(c)所示,两个第一电接头导电部311均位于第一插口11的同一个内壁,又例如,如图15中(d)所示,一个第一电接头导电部311位于第一插口11的一个内壁,另一个第一电接头导电部311位于第一插口11的另一个内壁,例如,中柱5位于第一插口11中,将第一插口11划分为左右两个子插口,如图15中(d)所示,一个第一电接头导电部311位于一个子插口的内壁,另一个第一电接头导电部311位于另一个子插口的内壁。
其中,第一电接头导电部311的外表面可以高于第一插口11的内壁。第一电接头导电部311的外表面也可以低于第一插口11的内壁,例如,如图15中(c)所示,中柱5的内壁具有凹槽,第一电接头导电部311位于凹槽中,使得第一电接头导电部311的外表面低于第一插口11的内壁表面。第一电接头导电部311的外表面也可以齐平于第一插口11的内壁,本申请对此不做限定,能够满足不包括电源连接器的光缆能够插入到第一插口11中与第一光接头21对接即可。
(4)如图16和图17所示,第一电接头31的第一电接头导电部311位于壳体1的靠近第一插口11的外壁,其中,外壁可以是顶壁外表面、底壁外表面或者侧壁外表面。
如图16所示,壳体1的靠近第一插口11的外壁可以具有凹槽,第一电接头导电部311可以位于该凹槽中。
示例性地,如图16中(a)、(b)和(c)所示,以及图17所示,两个第一电接头导电部311均位于同一个外壁,又例如,如图16中(d)所示,一个第一电接头导电部311位于一个外壁,另一个第一电接头导电部311位于另一个外壁。
上述第一电接头导电部311的位置设置,可以应用于双光接头的光模块,也可以应用于单光接头的光模块,虽然图例中是以双光接头的光模块进行示例,但并不作为限定,也可以应用于单光接头的光模块。
另外,对于单光接头的光模块,其第一电接头31的位置还可以按照如下方式分布:如图18和图19所示,第一光接头21的数量为一个;第一光接头21位于光模块的中柱5的第一侧,第一电接头31位于中柱5的第二侧,中柱5的第一侧和第二侧的位置相对。
在一种示例中,如图18所示,第一电接头31可以呈柱状结构,位于中柱5的第二侧,第一电接头31包括柱体和第一电接头导电部311,第一电接头导电部311位于柱体的表面。
在另一种示例中,如图19所示,第一电接头导电部311可以在中柱5的第二侧且位于壳体1的第一端的外端面。例如,第一电接头导电部311为凸出于壳体1的第一端的外端面。又例如,第一电接头导电部311凹陷于壳体1的第一端的外端面。其中,第一电接头导电部311的形状可以是矩形柱状,也可以是圆柱状等。其中,两个第一电接头导电部311在排布上,可以上下排布,也可以左右排布。
以上是关于第一电接头导电部311的位置分布以及第一电接头导电部311的具体形状,无论第一电接头导电部311如何分布,以及无论第一电接头导电部311的是何种具体形状,第一电接头导电部311设置于第一插口11中或者第一插口11的周围以后,均能满足第一电接头导电部311与第一光接头21的位置相互独立,第一电接头导电部311不会影响到光缆的 光纤连接器与第一光接头21的对接。
这样,对于包括与第一电接头导电部311相匹配的电源连接器的复合缆,插入到第一插口11中后,复合缆的光纤连接器与第一插口11中的第一光接头21对接,以实现光信号的传输,复合缆的电源连接器与第一电接头导电部311电气连接,以实现电力传输。
而对于不包括电源连接器的光缆,由于第一电接头导电部311并不会阻挡光缆的光纤连接器的插入,使得光缆的光纤连接器能够与第一光接头21的对接,实现光信号的传输。
可见,该光模块的第一端处既有第一光接头21,又有第一电接头31,那么就无须在光模块所插的通信设备(如交换机和AP)的面板上设置供复合缆的电源连接器插入的电源接口,从而能够节省通信设备的面板尺寸,有利于通信设备的小型化发展。
而且,该光模块的第一端的第一插口11既能供包括与第一电接头导电部311相匹配的电源连接器的复合缆插入,又能供不包括电源连接器的光缆插入,使得该光模块的第一插口11具备兼容性,扩大了该光模块的应用场景,提高光模块的使用灵活性,易于现场做线。
上述是第一电接头31的位置分布,下面将介绍几种第一电接头31的结构形式。
一种是,第一电接头31的第一电接头导电部311包括弯折条,例如,包括两个弯折条,具体的可以参见如下。
第一电接头31和第一光接头21的位置相互独立位于第一插口11中,以实现第一插口11具备兼容性,能够供与光模块的封装类型相匹配的任一线缆插入。这样,包括电源连接器的复合缆能够插入到第一插口11中,而且不包括电源连接器的光缆也能够插入第一插口11中。其中,包括电源连接器的复合缆是,其端部包括与第一电接头31相匹配的电源连接器;不包括电源连接器的光缆是,其端部不包括电源连接器,只包括光纤连接器。
如上述所述,光模块包括中柱5,如图20所示,为中柱5的示意图,如图21所示,中柱5位于第一插口11中,一方面用来支撑第一光接头21,另一方面起到导向和限位作用,让复合缆的光纤连接器准确插入到第一插口11中,与第一插口11中的第一光接头21对接,以实现光信号的传输。
其中,中柱5是标准封装类型的光模块均包括的结构,那么对于不包括供电器件3的光模块,其第一插口11中也安装有中柱5。
如图20所示,中柱5包括支撑板51和导向限位板52,导向限位板52的沿着长度方向的端部连接在支撑板51的表面。如图21所示,中柱5位于壳体1中且靠近第一端的位置,支撑板51靠近壳体1的内部,导向限位板52靠近壳体1的外部。这样,支撑板51和壳体1的侧壁围成第一插口11,而导向限位板52将第一插口11划分为两个子插口。对于双光接头的光模块,第一光接头21的数量为两个,一个第一光接头21位于导向限位板52的一侧,另一个第一光接头21位于导向限位板52的另一侧,两个第一光接头21都位于支撑板51上,支撑板51将两个第一光接头21支撑在第一插口11中。
其中,支撑板51是横在壳体1中,也可以称为横梁。
为了实现第一插口11的兼容性,相应的,如图22所示,第一电接头31的第一电接头导电部311可以固定于中柱5,而不对第一插口11造成影响,例如,不影响第一插口11的尺寸和位置,进而使得第一插口11具备兼容性。
例如,第一电接头导电部311的一部分固定于导向限位板52,另一部分固定于支撑板51。 第一电接头导电部311的第一端可以位于导向限位板52的表面,也可以伸出于导向限位板52的外端面。第一电接头导电部311的第二端可以位于支撑板51中,也可以伸出于支撑板51。其中,第一电接头导电部311的第一端为用于与复合缆的电源连接器电气连接的端部,第一电接头导电部311的第二端为用于与供电线路32电气连接的端部。
在一种示例中,安装在中柱5中的第一电接头导电部311能够满足通过的电流大于或等于目标电流值,在目标电压下能够满足安全规定范围。
为了在中柱5的有限的空间中安装第一电接头导电部311,其中,目标电流值可以根据实际情况设定,例如,目标电流值可以是2A,也可以是2A以上的电流值等,本实施例对此不做限定。
其中,目标电压也可以根据实际情况设定,例如,目标电压可以是48V。每个电压下通常对应一个安全规定范围,例如,48V对应的安全规定范围可以为2毫米。
由于第一电接头导电部311所通过的电流大小,与在第一电接头导电部311上加的电压,以及第一电接头导电部311的电阻相关,而第一电接头导电部311的电阻与第一电接头导电部的横截面积相关,那么可以在已知供电电压(如48V)的情况下,通过调整第一电接头导电部311的横截面积,使第一电接头导电部311能够通过大于或等于目标电流值。
如上述所述,第一电接头导电部311包括两个弯折条,分别记为第一弯折条3111和第二弯折条3112,第一弯折条3111和第二弯折条3112之间的间距,在目标电压下,满足安全规定的范围。例如,向第一弯折条3111和第二弯折条3112提供的电压为48V,那么,两者之间的最小间距大于或等于2毫米。
其中,第一弯折条3111和第二弯折条3112中一个用来与电源正极相连,另一个用来与电源负极相连。例如,第一弯折条3111用来接入+48V,第二弯折条3112用来接入-48V。
如图23所示,第一弯折条3111的一部分和第二弯折条3112的一部分可以上下排布,且位于同一竖直平面内,第一弯折条3111的一部分和第二弯折条3112的一部分可以左右排布,且位于同一水平平面内。
例如,如图23所示,第一弯折条3111包括依次相连的第一段3111a、第二段3111b和第三段3111c,第二弯折条3112包括依次相连的第四段3112a、第五段3112b和第六段3112c。如图23所示,第一弯折条3111和第二弯折条3112在中柱5中的排布可以是,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a上下排布,且位于同一竖直平面内,第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c左右排布,且位于同一水平平面内。其中,上下排布也即是如图23所示,沿着z轴方向上下排布,左右排布也即是如图23所示,沿着y轴方向左右排布。
下面将介绍第一弯折条3111的结构特征,以及第二弯折条3112的结构特征。
(1)对于第一弯折条3111,如图23所示,第二段3111b的一端和第一段3111a的侧部相连,第二段3111b的另一端和第三段3111c的侧部相连,且第一段3111a和第三段3111c位于第二段3111b的异侧,第一段3111a和第三段3111c之间具有高度差。
其中,第一段3111a、第二段3111b和第三段3111c一体成型,由金属条(如铜条)通过弯折而形成。
如图23所示,第二段3111b的一端和第一段3111a的侧部相连,两者的连接处为一次弯折,该处的弯折是为了促使第一弯折条3111向下方(如z轴负方向)延伸,以使第一段3111a 和第三段3111c之间形成高度差,该次弯折后,第一段3111a和第二段3111b不在同一竖直平面内,该次弯折可以称为改变方向的弯折。
如图23所示,第二段3111b的另一端和第三段3111c的侧部相连,两者的连接处为一次弯折,该处的弯折是为了促使第一弯折条3111向y轴的负方向延伸,使第一段3111a和第三段3111c位于第二段3111b的异侧,例如,第一段3111a位于第二段3111b的第一表面处,第三段3111c位于第二段3111b的第二表面处,该次弯折后,第二段3111b和第三段3111c不在同一竖直平面内,该次弯折可以称为改变方向的弯折。
可见,第一弯折条3111包括至少两次改变方向的弯折。
其中,第一段3111a的形状可以是如图23所示的弯折结构,当然,第一段3111a的形状也可以是水平结构,本申请对此不做限定,能够实现将第一弯折条3111安装在中柱5中即可。
其中,第一段3111a和第二段3111b之间的连接可以为圆角连接,第二段3111b和第三段3111c之间的连接也可以为圆角连接。
(2)对于第二弯折条3112,如图23所示,第二弯折条3112的弯折和第一弯折条3111的弯折相匹配。
其中,第二弯折条3112的弯折主要是为了与第一弯折条3111的弯折相适配,以拉开两者之间的间距,使两者之间的最小间距满足安全规定的范围(也可以简称安规)。
例如,第五段3112b的一端和第四段3112a的一端相连,第五段3112b的另一端和第六段3112c的端部相连,且第四段3112a和第六段3112c位于第五段3112b的异侧,第四段3112a和第六段3112c之间具有高度差。
其中,第四段3112a、第五段3112b和第六段3112c一体成型,由金属条(如铜条)通过弯折而形成。
其中,第五段3112b的一端即是沿着第五段3112b长度方向的一端,同样,第四段3112a的一端也是沿着第四段3112a长度方向的一端。
如图23所示,第四段3112a和第六段3112c之间具有高度差,第五段3112b的一端和第四段3112a的一端相连,第五段3112b的另一端和第六段3112c的端部相连,那么,第四段3112a和第五段3112b的连接处虽然有弯折,但是第四段3112a和第五段3112b位于同一竖直平面内,所以该次弯折为未改变方向的弯折。同样,第五段3112b和第六段3112c的连接处虽然有弯折,但是第五段3112b和第六段3112c位于同一竖直平面内,所以该次弯折为未改变方向的弯折。可见,第二弯折条3112的第四段3112a、第五段3112b和第六段3112c均位于同一竖直平面内。
在一种示例中,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a用于与复合缆的电源连接器进行电气连接。第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c用于与供电线路32进行电气连接。
其中,第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c,均是第一电接头导电部311的靠近供电线路32的连接部。
第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c的形状均与供电线路32相匹配。
例如,如果供电线路32为柔性线路板,那么,第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c可以均是如图23所示具有片状结构,第三段3111c和第六段3112c 均焊接在柔性线路板的表面。
又例如,如果供电线路32为线缆,那么,第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c可以均具有圆环状结构,以便于供电线路32的端部固定位于圆环状结构中。
第一电接头导电部311的第一弯折条3111和第二弯折条3112的结构特征,下面将介绍第一电接头导电部311在中柱5中的安装关系。
第一电接头导电部311在中柱5中的安装关系可以是,如上述所述,中柱5包括支撑板51和导向限位板52,如图22所示,第一电接头导电部311的一部分固定在导向限位板52中,一部分固定在支撑板51中,且第一电接头导电部311从导向限位板52中露出,以便于与复合缆的电源连接器相连,第一电接头导电部311从支撑板51中露出,以便于与供电线路32相连。例如,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a均从导向限位板52中露出,第一弯折条3111的第三段3111c和第二弯折条3112的第六段3112c均从支撑板51中露出。
其中,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a均从导向限位板52中露出的方式具有多种。
例如,一种方式可以是,如图22所示,导向限位板52包括第一板体521和第二板体522,第一板体521的高度小于第二板体522的高度,第一板体521位于第二板体522的一端,第二板体522的远离第一板体521的端部位于支撑板51的表面;第一弯折条3111的第一段3111a的一部分位于第一板体521的上表面,另一部分位于第二板体522中,第二弯折条3112的第四段3112a的一部分位于第一板体521的下表面,另一部分位于第二板体522中。
其中,第一板体521用于和复合缆的电源连接器的插口相配合,故第一板体521也可以称为第一电接头连接部,其在材质上可以是塑胶件等绝缘材料。第二板体522主要用于固定第一电接头导电部311,故第二板体522也可以称为第一电接头安装部,其在材质上可以是塑胶件等绝缘材料。
在一种示例中,第一板体521和第二板体522之间的连接具有多种方式。例如,第一板体521和第二板体522之间的连接也可以胶粘或者螺钉等方式实现连接,又例如,第一板体521的端部和第二板体522的端部通过胶粘或者螺钉等实现固定连接。又例如,第一板体521和第二板体522一体成型,如图22所示,第一板体521和第二板体522是一块板体的两部分,第一板体521的高度小于第二板体522的高度,这是因为第二板体522的顶部和底部用来与第一插口11的顶部和顶部分别固定连接,其高度和第一插口11的高度相适配,而第一板体521用来与复合缆的电源连接器插接,其高度和复合缆的电源连接器相适配,故第一板体521和第二板体522的高度可以不相等。其中,本实施例对第一板体521和第二板体522的高度不做限定,技术人员可以根据实际情况,灵活选择。例如,如图22所示,两个第一水平部3111,一个位于第一板体521的上表面,另一个位于第一板体521的下表面。又例如,两个第一水平部3111,一个位于第一板体521的一个侧表面,另一个位于第一板体521的另一个侧表面。又例如,两个第一水平部3111并排位于第一板体521的同一个表面,本实施例对两个第一水平部3111在第一板体521表面上如何排布不做限定,可以根据实际情况灵活选择。
这样,插入于第一插口11中的是复合缆,则第一板体521可以进入到复合缆的电源连接器的插口中,使得第一板体521上表面的第一弯折条3111的第一段3111a,第一板体521下 表面的第二弯折条3112的第四段3112a,均与电源连接器的插口中的导电部电气连接。而插入于第一插口11中的如果是不包括电源连接器的光缆,那么由于第一板体521的外端部其实是中柱5的外端部,不会影响光缆向第一插口11中的插入。进而,虽然在中柱5中安装了第一电接头导电部311,但是也不会影响光缆插入到第一插口11中,使得第一插口11具备兼容性。
又例如,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a均从导向限位板52中露出的另一种方式可以是,如图24所示,导向限位板52的远离支撑板51的端部具有凹槽523;第一弯折条3111的第一段3111a位于凹槽523的上槽壁,第二弯折条3112的第四段3112a位于凹槽523的下槽壁。
其中,凹槽523也可以称为中空结构。凹槽523在形状上可以是如图24所示的柱状通孔,或者,也可以是圆柱状通孔,或者,还可以是十字型通孔等,本实施例对凹槽523的具体结构不做限定。
这样,插入于第一插口11中的复合缆的电源连接器的插头可以进入到凹槽523中,使得凹槽523上槽壁的第一弯折条3111和凹槽523下槽壁的第二弯折条3112均与复合缆的电源连接器的插头表面的导电部电气连接。而插入于第一插口11中的光缆,其不包括电源连接器,由于凹槽523槽口处的端部其实是中柱5的外端部,不会影响光缆向第一插口11中的插入。进而,虽然在中柱5中安装了第一电接头导电部311的第一弯折条3111和第二弯折条3112,但是也不会影响光缆插入到第一插口11中,使得第一插口11具备兼容性。
又例如,如图25所示,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a均从导向限位板52中露出的另一种方式可以是,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a的端部均在导向限位板52的外端面上形成触点。
又例如,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a均从导向限位板52中露出的另一种方式可以是,如图26所示,第一弯折条3111的第一段3111a和第二弯折条3112的第四段3112a的端部均伸出于导向限位板52的外端面。该方案中为了实现第一插口11的兼容性,第一弯折条3111的第一段3111a的伸出于导向限位板52外端面的部分的长度和中柱5的长度之和,小于或等于为中柱5的标准长度,同样,第二弯折条3112的第四段3112a的伸出于导向限位板52外端面的部分的长度和中柱5的长度之和,小于或等于为中柱5的标准长度。其中,中柱5的标准长度是指光模块安装标准封装类型进行封装时,中柱5的长度。
为了将内部固定有第一电接头导电部311的中柱5装配在壳体1中,相应的,如图27所示,中柱5的沿着高度方向的端部具有条形导向块53,如图28所示,第一插口11的内壁具有条形导向槽111;条形导向块53和条形导向槽111相匹配,条形导向块53位于条形导向槽111中。
例如,如图27所示,中柱5的导向限位板52的位置相对的顶部和底部均具有条形导向块53,如图28所示,第一插口11的位置相对的顶壁和底壁均具有条形导向槽111;回过来见图1所示,导向限位板52顶部的条形导向块53位于壳体1顶壁的条形导向槽111中,导向限位板52的底部的条形导向块53位于壳体1的底壁的条形导向槽111中。
其中,如图27所示,条形导向块53可以是条形凸起结构,相应的,如图28所示,条形 导向槽111可以是条形凹槽结构,条形导向块53和条形导向槽111相适配,例如,条形导向块53的尺寸和条形导向槽111的尺寸相匹配,条形导向块53的位置和条形导向槽111的位置相对应。
这样,固定有第一电接头导电部311的中柱5,在壳体1中安装中,导向限位板52的条形导向块53在对应的条形导向槽111中滑行,直至条形导向块53在条形导向槽111中被限位,不能继续滑行,当条形导向块53在条形导向槽111中停止滑行时,固定有第一电接头导电部311的中柱5,在壳体1中完成安装。
在一种示例中,为了使条形导向块53在条形导向槽111中的滑行,相应的,如图29中(a)所示,条形导向块53的宽度由第一端a向第二端b逐渐加宽,条形导向块53的第一端a是朝向壳体1外部的端部,条形导向块53的第二端b是朝向壳体1内部的端部。
示例性地,条形导向槽111的槽宽与条形导向块53的宽度相适配,例如,一种情况可以是,如图29中(b)所示,条形导向槽111的槽宽由第一端a向第二端b逐渐加宽,条形导向槽111的第一端a是朝向壳体1外部的端部,条形导向槽111的第二端b是朝向壳体1内部的端部。又例如,另一种情况也可以是,条形导向槽111的槽宽大于条形导向块53的最小宽度,且小于条形导向块53的最大宽度,也即是,条形导向槽111的槽宽大于条形导向块53的第一端a的宽度,且小于条形导向块53的第二端b的宽度。这样,条形导向块53在条形导向槽111中滑行的过程中,条形导向块53不会从条形导向槽111中滑出,条形导向块53可以被限位在条形导向槽111中。从而使得中柱5能够稳定安装在壳体1中。
上述是第一电接头导电部311包括弯折条的介绍,第一电接头导电部311还可以是弹簧针或者导电柱,具体的参见如下介绍。
如图30所示,第一电接头导电部311可以是弹簧针,也可以称为pogopin,第一电接头导电部311也可以是导电柱,本实施例对第一电接头导电部311的具体结构不做限定,下面可以以第一电接头导电部311为弹簧针,以及第一电接头导电部311为导电柱进行举例说明。
如图30所示,第一电接头导电部311为弹簧针,弹簧针主要包括针轴、针管以及内部的弹簧,针轴能够在弹簧的作用下,在针管中伸缩滑行。
其中,弹簧针固定于中柱5,例如,弹簧针的一部分固定于中柱5的导向限位板52,另一部分固定于支撑板51,且如图30所示弹簧针的针轴伸出于导向限位板52的外端面,以便于与插在第一插口11中的复合缆的电源连接器电气连接,弹簧针的远离针轴的端部伸出于导向限位板52,以便于与供电线路32电气连接。
关于弹簧针的针轴的端部和中柱5的外端面之间的位置关系,与中柱5的长度相关,该光模块按照标准封装类型进行封装时,中柱5的长度为标准长度。在中柱5的标准长度下,光缆的光纤连接器插入于第一插口11中时,中柱5不会阻挡光缆的光纤连接器与第一光接头21的对接,进而使得第一插口11具备兼容性。如果中柱5的长度小于标准长度,则光缆的光纤连接器插入于第一插口11中时,中柱5也不会阻挡光缆的光纤连接器与第一光接头21的对接。但是如果中柱5的长度大于标准长度,则光缆的光纤连接器插入于第一插口11中时,中柱5会阻挡光缆的光纤连接器与第一光接头21的对接,具体阻挡为,光缆的光纤连接器无法与第一插口11中的第一光接头21对接。
基于中柱5的长度和第一插口11的兼容性的原则,弹簧针的针轴的端部和中柱5的外端 面之间的位置关系如下:
(1)中柱5的长度为标准长度的情况。
对于弹簧针的针管,由于中柱5的长度为标准长度,而针管不具有伸缩性,所以弹簧针的针管位于中柱5中。例如,弹簧针的针管的端部齐平于中柱5的导向限位板52的外端面,又例如,弹簧针的针管完全位于中柱5的导向限位板52中。
对于弹簧针的针轴,由于针轴具有伸缩性,所以,只需满足当第一插口11中插有复合缆时,弹簧针的针轴的端部齐平于中柱5的导向限位板52的外端面即可。而对于当第一插口11中未插有复合缆的情况,弹簧针的针轴可以凸出于中柱5的导向限位板52的外端面,也可以齐平于中柱5的导向限位板52的外端面。而为了使复合缆的接头插入于第一插口11中时,复合缆的电源连接器的导电部能够与弹簧针的针轴紧密结合,以确保导电良好性,相应的,当第一插口11中未插有复合缆的接头时,弹簧针的针轴可以凸出于中柱5的导向限位板52的外端面,且当第一插口11中插有复合缆时,弹簧针的针轴的端部齐平于中柱5的导向限位板52的外端面。
(2)中柱5的长度小于标准长度的情况。
对于弹簧针的针管,由于中柱5的长度小于标准长度,所以弹簧针的针管完全位于中柱5的导向限位板52中,也可以是弹簧针的针管的端部齐平于中柱5的导向限位板52的外端面,还可以是弹簧针的针管的端部稍微凸出于中柱5的导向限位板52的外端面。但是对于弹簧针的针管的端部稍微凸出于中柱5的导向限位板52的外端面的情况,针管的凸出部分的长度与中柱5的长度之和,小于或等于标准长度,以避免阻挡光缆的光纤连接器与第一光接头的对接。
对于弹簧针的针轴,当第一插口11中未插有复合缆时,弹簧针的针轴的端部凸出于中柱5的外端面,且针轴的凸出部分的长度和中柱5的长度之和,大于标准长度;当第一插口11中插有复合缆时,弹簧针的针轴的端部凸出于中柱5的外端面,且针轴的凸出部分的长度和中柱5的长度之和,小于或等于标准长度。这样,当复合缆插入第一插口11中时,既能满足针轴不阻挡光缆的光纤连接器与第一光接头的对接,又能实现复合缆的电源连接器与针轴的紧密接触,确保导电良好性。当然,也可以是,当第一插口11中未插有复合缆时,弹簧针的针轴的端部凸出于中柱5的外端面,且针轴的凸出部分的长度和中柱5的长度之和,小于或等于标准长度;当第一插口11中插有复合缆时,弹簧针的针轴的端部凸出于中柱5的外端面,且针轴的凸出部分的长度和中柱5的长度之和,也小于或等于标准长度。
上述是第一电接头导电部311具体为弹簧针的情况,第一电接头导电部311的具体结构也可以为导电柱。
其中,导电柱可以是圆柱结构,也可以是方柱结构,还可以是其它形状的柱状结构,本实施例对此不做限定。
基于中柱5的长度和第一插口11的兼容性的原则,导电柱的端部和中柱5的外端面之间的位置关系如下:
(1)中柱5的长度为标准长度的情况。
如图31所示,导电柱的端部齐平于中柱5的外端面,例如,导电柱的端部齐平于中柱5的导向限位板52的外端面。这样,导向限位板52的外端面上形成导电的触点。这样,复合缆插入到第一插口11中时,复合缆的电源连接器的导电部与导向限位板52外端面上的触点 相接触。而不包括电源连接器的光缆插入到第一插口11中,由于中柱5的长度为标准长度,为导电柱的第一电接头导电部311是位于中柱5中,且导电柱的端部齐平于中柱5的外端面,所以,为导电柱的第一电接头导电部311未影响到中柱5的位置和在壳体1中的占据空间,因此,不包括电源连接器的光缆依然能够插入到该光模块的第一插口11中,与第一插口11中的第一光接头21进行对接。
(2)中柱5的长度小于标准长度的情况。
在一种示例中,导电柱的端部凸出于中柱5的外端面,且导电柱的凸出部分的长度和中柱5的长度之和,小于或等于标准长度。这样,复合缆插入到第一插口11中时,复合缆的电源连接器的导电部与导电柱的端部相接触。而如果不包括电源连接器的光缆插入到第一插口11中时,由于导电柱的凸出部分的长度和中柱5的长度之和,小于或等于标准长度,所以,导电部凸出于中柱5的部分不会阻挡光缆的光纤连接器与第一光接头的对接,因此,不包括电源连接器的光缆依然能够插入到该光模块的第一插口11中,与第一插口11中的第一光接头21进行对接。
上述为第一电接头31的第一电接头导电部311的具体结构分别为弹簧针和导电柱的介绍,其中本实施例对第一电接头导电部311的具体结构不做限定,能够实现第一电接头导电部311固定于光模块的中柱5中后,能够使不包括电源连接器的光缆依然插在第一插口11中,使第一插口11具备兼容性即可。
如上述所述,第一电接头31的第一电接头导电部311的位于壳体1内部的端部与供电线路32电气连接。为了实现第一电接头导电部311与供电线路32的电气连接,相应的,第一电接头导电部311的位于壳体1内部的端部可以伸出于中柱5,以与供电线路32电气连接。例如,如图32所示,第一电接头导电部311为弹簧针,供电线路32为柔性线路板的方案中,弹簧针的远离针轴的引脚伸出于中柱5并穿过柔性线路板的焊盘,弹簧针的远离针轴的引脚焊接在柔性线路板上,以实现弹簧针与柔性线路板的电气连接。又例如,第一电接头导电部311为弹簧针,供电线路32为线缆的方案中,线缆可以缠绕在弹簧针的远离针轴的引脚上,以实现弹簧针与线缆的电气连接。
为了将内部固定有第一电接头导电部311的中柱5装配在壳体1中,相应的,中柱5的沿着高度方向的端部也可以具有条形导向块53,第一插口11的内壁具有条形导向槽111;条形导向块53和条形导向槽111相匹配,条形导向块53位于条形导向槽111中。条形导向块53和条形导向槽111的具体结构可以参见上述所述,此处不再赘述。
(二)对于供电器件3的供电线路32。
在一种示例中,如图33所示,供电线路32可以为柔性线路板(也即是柔性性的印刷电路板),柔性线路板的一端与第一电接头31的第一电接头导电部311电气连接,柔性电路板的另一端与第二电接头33的第二电接头导电部331电气连接。
在另一种示例中,如图34所示,供电线路32可以为线缆(也即是包覆有铜线的线缆),线缆的一端与第一电接头31的第一电接头导电部311电气连接,线缆的另一端与第二电接头33的第二电接头导电部331电气连接。
在另一种示例中,供电线路32可以为第二刚性线路板,第二刚性线路板的一端与第一电接头31的第一电接头导电部311电气连接,第二刚性线路板的另一端与第二电接头33的第 二电接头导电部331电气连接。
在另一种示例中,在供电线路32为第二刚性线路板的方案中,第二电接头33的第二电接头导电部331可以位于第二刚性线路板的表面。例如,供电线路32可以为第二刚性线路板,第二刚性线路板的一端与第一电接头31的第一电接头导电部311电气连接,第二刚性线路板的另一端伸入至第二插口12中,第二刚性线路板的位于第二插口12中的部分的表面可以具有金手指,这些金手指形成第二电接头33的第二电接头导电部331。
在另一些示例中,如图35所示,供电线路32可以包括第二刚性线路板321和线缆322。第二刚性线路板321的一端与线缆322电气连接,第二刚性线路板321的另一端与第二电接头33的第二电接头导电部331电气连接。或者,第二电接头33的第二电接头导电部331集成在第二刚性线路板321的表面,例如,第二刚性线路板321的一端与线缆322电气连接,第二刚性线路板321的另一端伸入至第二插口12中,第二刚性线路板321的位于第二插口12中的部分的表面可以具有金手指,这些金手指形成第二电接头33的第二电接头导电部331。其中,线缆322的远离第二刚性线路板321的端部与第一电接头31的第一电接头导电部311电气连接。
在另一些示例中,如图36所示,供电线路32包括第二刚性线路板321和柔性线路板323。第二刚性线路板321的一端与柔性线路板323电气连接,第二刚性线路板321的另一端与第二电接头33的第二电接头导电部331电气连接。或者,第二电接头33的第二电接头导电部331集成在第二刚性线路板321的表面,例如,第二刚性线路板321的一端与柔性线路板323电气连接,第二刚性线路板321的另一端伸入至第二插口12中,第二刚性线路板321的位于第二插口12中的部分的表面可以具有金手指,这些金手指形成第二电接头33的第二电接头导电部331。其中,柔性线路板323的远离第二刚性线路板321的端部与第一电接头31的第一电接头导电部311电气连接。
在另一些示例中,供电线路32也可以包括线缆322和柔性线路板323。例如,第一电接头31的第一电接头导电部311、线缆322、柔性线路板323和第二电接头33的第二电接头导电部331依次电气连接。又例如,第一电接头31的第一电接头导电部311、柔性线路板323、线缆322和第二电接头33的第二电接头导电部331依次电气连接。
在另一些示例中,供电线路32也可以集成在光器件2的第一刚性线路板221,例如,供电线路32也可以是印刷在光器件2的第一刚性线路板221表面的排线。那么,第一电接头31的第一电接头导电部331和第二电接头33的第二电接头导电部331之间可以通过第一刚性线路板221实现电气连接,例如,第一电接头导电部331与第一刚性线路板221的一端相连,第二电接头导电部331与第一刚性线路板221的另一端相连。
供电线路32集成在第一刚性线路板221的方案中,第二电接头导电部331也可以集成在第一刚性线路板221。例如,第二电接头导电部331为位于第一刚性线路板221表面上的金属片。
对于第二电接头导电部331是位于第一刚性线路板221表面上的金属片的方案中,如图51所示,光器件2的第二光接头23为位于第一刚性线路板221表面的金手指,那么,如图51所示,第二电接头导电部331可以为金手指中的未定义金属片,未定义金属片也即是金手指中未被使用的金属片。又示例性地,如图52和图53所示,第二电接头导电部331为在金手指的周围新增的金属片,其中,图52和图53中23-33所指示的为包括第二光接头23和第 二电接头33的复合电接头。
对于第二电接头导电部331是位于第一刚性线路板221表面上的金属片的方案中,第二电接头导电部331可以为在金手指的周围新增的金属片,如图52所示,第二电接头导电部331位于金手指的沿着长度方向的端部。或者,如图53所示,第二电接头导电部331位于金手指的沿着长度方向的侧部。其中,本实施例对第二电接头33的第二电接头导电部331相对于第二光接头23的导电部的位置排布不做限定。
在另一种示例中,第一电接头31的第一电接头导电部331、供电线路32和第二电接头33的第二电接头导电部331一体成型。例如,第一电接头导电部331、供电线路32和第二电接头导电部331可以由金属导体加工形成,金属导体的靠近第一端的部分可以形成第一电接头导电部311,金属导体的靠近第二端的部分可以形成第二电接头导电部331,金属导体的其它部分可以形成供电线路32,这样,第一电接头导电部311、供电线路32和第二电接头导电部331三者由金属导体经过加工成型。
其中,本实施例对供电线路32的具体实现方式不做限定,在光模块的实际加工中,可以根据实际情况,灵活选择。
为了不影响光器件2在壳体1中的布局空间,相应的,如图33和图34所示,供电线路32可以铺设于壳体1的内表面。
例如,例如,如图33所示,供电线路32为柔性线路板,柔性线路板可以铺设于壳体1的内表面。又例如,如图34所示,供电线路32为线缆,线缆可以铺设在壳体1的内表面。又例如,供电线路32包括线缆和柔性线路板,线缆和柔性线路板均可以位于壳体1的内表面。又例如,供电线路32包括线缆和第二刚性线路板,或者,供电线路32包括柔性线路板和第二刚性线路板,那么,线缆或者柔性线路板可以铺设于壳体1的内表面,而第二刚性线路板可以悬空位于壳体1中,以便于第二刚性线路板的表面可以安装一些元器件,例如,可以安装供电线路32用于进行数据信号传输的元器件,可以安装一些元器件,这些元器件可以是光模块接收反馈信息和判断反馈信息的元器件,该部分内容,下文在介绍供电器件32的功能时将会详细介绍。
其中,供电线路32为第二刚性线路板的方案中,第二刚性线路板可以与光器件2的第一刚性线路板221上下并排位于壳体1中。
上述为供电线路32的具体形式,以及供电线路32在壳体1内部的位置,无论供电线路32在壳体1内部以何种方式,以及何种位置排布,供电线路32均不会影响到光器件2在壳体1中的布局空间。
(三)对于供电器件3的第二电接头33。
位于壳体1的第二插口12中的第二光接头23和第二电接头33的位置相互独立,以实现光模块的第二端具备兼容性。其中,光模块的第二端具备兼容性,也可以说,光模块的第二插口12具备兼容性。
其中,光模块的第二端具备兼容性,也即是,光模块的第二端既可以插入到包括电源接口的光笼子中,也可以插入到不包括电源接口的光笼子中。
如图37所示,光模块包括插拔导向块4,插拔导向块4位于第二插口12中;第二电接头33包括第二电接头导电部331,如图38所示,第二电接头导电部331固定于插拔导向块4; 壳体1的第二端能插入于与光模块相匹配的光通信设备中,该光模块为标准光模块封装类型中的任一光模块。
其中,插拔导向块4是标准封装类型的光模块均包括的结构,那么对于不包括供电器件3的光模块,其也包括插拔导向块4。光模块插入于光通信设备的光笼子中时,如图37所示,光模块的插拔导向块4先与光笼子600相接触,光模块继续向光笼子600中插入中,第二光接头23在插拔导向块4的引导下进入到光笼子600的电接口中,图37中23’指示的为与第二光接头23相对应的电接口。光模块向光笼子中插入的过程中,插拔导向块4还能起到承载一定的作用力,以减少第二光接头23的受力,对第二光接头23所在的第一刚性线路板221形成保护作用,减少光笼子对第一刚性线路板221的作用力。
第二电接头33的导电部,也即是,第二电接头33的第二电接头导电部331,固定于插拔导向块4,使得壳体1的第二端能插入于与光模块的封装类型相匹配的任一光通信设备中,该光模块的第二端具备兼容性。
其中,插拔导向块4作为第二电接头33的安装部,是第二电接头导电部331的载体,也可以称为,第二电接头安装部,插拔导向块4在材质上可以是塑胶件等绝缘材料。
如图37所示,插拔导向块4具有板状结构,安装在第二插口12的位于顶部(或底部)的内壁上,例如,可以通过卡接的方式固定在第二插口12的位于顶部的内壁上,又例如,也可以通过胶粘的方式固定在第二插口12的位于顶部的内壁上。
插拔导向块4作为第二电接头导电部331的载体,第二电接头导电部331可以固定在插拔导向块4上,且第二电接头导电部331还与供电线路32电连接。关于第二电接头导电部331在插拔导向块4的固定位置具有多种。
例如,一种固定位置可以是,如图38所示,第二电接头导电部331为条形金属片;第二电接头导电部331固定于插拔导向块4的与第二光接头23位置相对的外表面,插拔导向块4的外表面为平行于光模块的插拔方向的表面,且第二电接头导电部331的条形方向和光模块的插拔方向平行。
示例性地,如图38所示,第二电接头导电部331可以贴合在插拔导向块4的面对第二光接头23的外表面上。又示例性地,第二电接头导电部331也可以贴合在插拔导向块4的侧壁外表面上。又示例性地,插拔导向块4的侧壁外表面固定在第二插口12的侧壁内表面上时,第二电接头导电部331也可以贴合在插拔导向块4的背对第二光接头23的外表面上。
又例如,如图39所示,第二电接头导电部331为条状的金属弹片,其中,条状的金属弹片也可以称为条形簧片,其结构可以参考图40所示,为条形簧片的第二电接头导电部331包括直线部3311和弯折部3312。
如图39所示,插拔导向块4具有安装槽41,安装槽41在插拔导向块4的外表面具有槽口,插拔导向块4的外表面为平行于光模块的插拔方向的任一表面。其中,平行于光模块的插拔方向的表面可以是插拔导向块4的面对第二光接头23的外表面,也可以是插拔导向块4的侧壁外表面,还可以是插拔导向块4的背对第二光接头23的外表面等。本实施例对此不做限定,可以以面对第二光接头23的外表面进行示例。
如图40并参考图39所示,为条形簧片的第二电接头导电部331的直线部3311位于插拔导向块4中,条形簧片的弯折部3312位于安装槽41中,例如,弯折部3312悬空位于安装槽41中,且弯折部3312的弯折处3312a伸出于安装槽41的槽口,其中,弯折部3312的弯折 处3312a为用于和所插设备的接触部电连接。这样,该光模块插入到设备中时,弯折处3312a可以与所插设备中的导电部相接触实现电连接。
又例如,如图41所示,第二电接头导电部331为金属杆;第二电接头导电部331固定于插拔导向块4的内部,并伸出于插拔导向块4的远离供电线路32的端面。
示例性地,第二电接头导电部331贯穿插拔导向块4的内部,一端伸出于插拔导向块4的靠近供电线路32的端面并与供电线路32电连接,另一端伸出于插拔导向块4的远离供电线路32的端面用于与所插设备电连接。
在一种示例中,为了使得第二电接头导电部331与所插设备的电连接比较稳定,相应的,如图42所示,金属杆可以是弹簧针,其中弹簧针也可以称为pogopin,弹簧针的针轴能够沿着光模块的插拔方向伸缩。
由于弹簧针伸出于插拔导向块4的端部,用于和光通信设备电连接的端部露出于壳体1,为避免光模块跌落时对弹簧针造成损害,相应的,如图43所示,插拔导向块4包括本体40和保护件;保护件和本体40固定连接,保护件被配置为:当光模块插入于光通信设备中时,保护件能使弹簧针的针轴与光通信设备的触点紧密接触,当光模块未插入于光通信设备中时,保护件能保护弹簧针的针轴。
保护件的具体实现结构包括多种,例如,保护件的一种结构是参见图43所示,保护件包括滑块42和第一弹性件43,第一弹性件43的弹力小于弹簧针的弹力;本体40的端部具有滑槽401,滑块42和第一弹性件43均位于滑槽401中,且第一弹性件43连接在滑槽401的槽底和滑块42之间;弹簧针的一部分固定位于本体40中,另一部分位于滑块42中,滑块42能相对于本体41和弹簧针滑行,且滑行方向与光模块的插拔方向平行,可以参见图44中的(a)和(b)所示。
其中,第一弹性件43可以是任意具有伸缩弹性的部件,例如,可以是弹簧,这样,滑块42在第一弹性件43的弹性下,能够伸出于滑槽401而不脱离滑槽401,也能收缩于滑槽401中。
这样,当光模块插入于光通信设备中时,随着光模块的插入,滑块42在光通信设备的推动下,收缩于滑槽401中,由于弹簧针的弹簧大于第一弹性件43的弹性,使得弹簧针的针轴与光通信设备的触点紧密接触。而当光模块未插入于光通信设备中时,滑块42在第一弹性件43的弹力下,伸出于滑槽401,以将弹簧针包围住,保护弹簧针的针轴。
保护件的另一种结构可以参见图45所示,保护件包括按压件44、第二弹性件45和L型杆46。如图46中的(a)和(b)所示,弹簧针的针轴3313具有凹槽3313a,弹簧针的针管3314的管壁具有通孔3314a,针轴3313的凹槽3313a和针管3314的通孔3314a的位置相对时,针轴3313收容于针管3314中。
如图45所示,按压件44一部分位于本体40外,另一部分位于本体40中,弹簧针、第二弹性件45和L型杆46均位于本体40中,且按压件44、第二弹性件45和L型杆46的第一杆461依次相连,L型杆46的第二杆462的位置和针管3314的通孔3314a的位置相对。
其中,按压件44能够相对于本体40伸缩,伸缩方向垂直于光模块的插拔方向,相应的,如图45所示,按压件44位于本体40的侧部。
这样,当光模块插入于光通信设备的光笼子中时,光笼子的插口的内壁对按压件44施加作用力,使按压件44处于按压状态。当光模块拔出光通信设备的光笼子中时,光笼子的插口 的内壁不再对按压件44施加作用力,按压件44在第二弹性件45的作用下,恢复自然状态,不再处于按压状态。
其中,按压件44的结构可以是便于进入到光笼子中的任意结构,例如,如图45所示,按压件44具有楔形结构,包括斜面,光模块插入光通信设备中时,按压件44的斜面先进入到光笼子中。又例如,按压件44也可以具有球面结构,按压件44的伸出于本体40的部分为球面结构。其中,本实施例对按压件44的具体实现结构不做限定。
这样,当光模块插入于光通信设备中时,按压件44处于按压状态,L型杆46的第二杆462的端部位于针管3314的外部,以使针轴3313与光通信设备的触点紧密接触;而当光模块未插入于光通信设备中,且针轴3313收缩于针管3314中时,L型杆46的第二杆462的端部位于针轴3313的凹槽3313a中,以使针轴3313保持收缩于针管3314中。
保护件的另一种结构可以参见图47所示,保护件包括按压件44和U型件47。如图48中的(a)和(b)所示,弹簧针的针管3314具有轴向条形孔3314b,弹簧针的针轴3313具有凸块3313b,凸块3313b位于轴向条形孔3314b中。
如图47所示,按压件44一部分位于本体40外,另一部分位于本体40中,弹簧针和U型件47均位于本体40中,且U型件47的第一端位于按压件44处,U型件47的第二端位于针轴3313的凸块3321b处。
其中,按压件44能够相对于本体40伸缩,伸缩方向平行于光模块的插拔方向,相应的,如图47所示,按压件44位于本体40的端部。
这样,当光模块插入于光通信设备的光笼子中时,光笼子对按压件44施加作用力,使按压件44处于按压状态,而按压件44处于按压状态时,U型件47能够推动弹簧针的针轴3313,促使针轴3313与光笼子中的连接器紧密接触。当光模块拔出光通信设备的光笼子中时,光笼子不再对按压件44施加作用力,弹簧针内部的弹簧拉着针轴3313收回,针轴3313的凸块3321b推动U型件47移动,促使按压件44恢复自然状态,不再处于按压状态。
可见,当光模块插入于光通信设备中时,按压件44处于按压状态,针轴3313在U型杆47的推动下伸出于针管3314,以与光通信设备的触点紧密接触,当光模块未插入于光通信设备中时,按压件44处于未按压状态,针轴3313收缩于针管3314中。
上述方案中,第二电接头32和第二光接头23的位置相互独立,且光模块中包括一个刚性线路板,即光器件2的第一刚性线路板221,而光模块中包括两个刚性线路板的方案中,也能实现第二电接头32和第二光接头23的位置相互独立,其中,两个刚性线路板中一个是光器件2的刚性线路板,记为第一刚性线路板221,另一个是供电器件3的刚性线路板,记为第二刚性线路板321。具体方案参见如下。
例如,如图49和图50所示,供电器件3还包括第二刚性线路板321,例如,供电器件3的供电线路32包括第二刚性线路板321,第二刚性线路板321的第一端位于第二插口12中,第二电接头33的第二电接头导电部331为位于第二刚性线路板321表面的金手指。
如图50所示,第二刚性线路板321和光器件2的第一刚性线路板221上下平行位于壳体1中,第二刚性线路板321的第一端伸入至第二插口12中,第二刚性线路板321的位于第二插口12中的部分的表面具有金手指,该金手指可以作为第二电接头33的第二电接头导电部331。
在一种示例中,第二刚性线路板上不仅具有用于实现第一电接头31和第二电接头33实 现电连接的排线,还可以安装一些元器件,以减少光器件2的第一刚性线路板221上的元器件的数量。在另一些示例中,第二刚性线路板321的表面可以安装处理芯片,以加快光模块的处理速度。
而对于第二电接头33与第一电接头31之间的电连接关系可以是,供电线路32不仅包括第二刚性线路板321,如图49所示,还包括柔性线路板323,第一电接头31、柔性线路板323和第二刚性线路板321依次电连接。其中,柔性线路板323也可以使用线缆替代。
在一种示例中,第二刚性线路板321与壳体1的内壁距离比较近,那么,该光模块的第二端的第二插口12具备兼容性,能够插入到不包括电源连接器的光笼子中。
(四)该光模块的供电器件3在作为电力传输通道时,其应用场景可以如下。
其中,供电器件3主要用于传输电能,作为电力通道,进行电力传输。
因此,该光模块不仅具有用于实现光信号和电信号转换的光器件,还具有用于实现PoE供电的供电器件。这样,光模块插入的设备,如交换机和AP等的面板上可以只设置用来插该光模块的接口,无需再另外设置用来实现PoE供电的接口,进而可以节约设备上的面板尺寸。
如上述所述,该光模块具有实现PoE供电的供电器件3,在应用中,该光模块可以用于在检测到所插入的光通信设备为受电设备时,确定光通信设备的功耗级别,根据光通信设备的功耗级别向光通信设备输送电能。
其中,在PoE供电中包括供电设备(Power Sourcing Equipment,PSE)和受电设备(Power Device,PD),供电设备可以是PoE交换机等,受电设备可以是PoE网络摄像机和AP等。
例如,在一种场景中,交换机的接口中插有该光模块,AP的接口中插有该光模块,交换机上的光模块和AP上的光模块之间通过复合缆连接。交换机是供电设备,AP为受电设备,交换机通过端口向AP输出一个很小的电压,插在交换机上的光模块中的处理器检测到AP为受电设备,支持PoE供电之后,可以向所插的交换机反馈AP为受电设备,然后交换机提高向AP输送的电压,以使插在交换机上的光模块的处理器检测AP的功耗级别,之后,插在交换机上的光模块的处理器根据预先存储的功耗级别和供电电压的对应关系,确定AP的功耗级别所对应的供电电压,并将AP所需的供电电压反馈给所插的交换机,以使交换机按照上述供电电压向AP稳定输送电能。
其中,该光模块中的供电器件3不仅可以用来传输电能,还可以用来传输一些数据信号。
在一些示例中,供电器件3中所传输的数据信号可以包括用于调整光器件的光功率的信号、用于调整光纤信道的信噪比的信号、用于调整光纤信道的S参数的信号,以及光模块出现异常的信号中的至少一种。
既然供电器件3可以传输数据信号,那么,供电器件3可以作为回传通道,回传通道也即是,接收端接收到信号以后,能够向发射端回传一些信息的通道。
供电器件3作为回传通道,那么,对于接收端的光模块,当接收到发射端的光模块发送的光信号时,可以根据光信号,生成第一反馈信息,并将第一反馈信息调制到供电器件3,其中,第一反馈信息用于指示发射端的光模块调整光器件2的参数。例如,第一反馈信息包括用于调整光器件2的光功率的信息、用于调整光纤信道的信噪比的信息,以及用于调整光纤信道的S参数的信息中的至少一种信息,其中S参数也可以称为散射参数,是微波传输中 的一个重要参数。
那么,对于发射端的光模块,当通过供电器件3接收到接收端的光模块发送的第二反馈信息时,根据第二反馈信息,调整光器件2的参数。
其中,第二反馈信息也包括用于调整光器件2的光功率的信息、用于调整光纤信道的信噪比的信息,以及用于调整光纤信道的S参数的信息中的至少一种信息。
如果发射端的光模块和接收端的光模块是一对交互的光模块,那么,第一反馈信息和第二反馈信息所携带的内容相等。下面举例说明中,可以以一对交互的光模块进行示例说明。
例如,交换机向AP发送光信号,那么,插在交换机面板上的光模块为发射端,插在AP面板的光模块为接收端。发射端的光模块通过光纤信道向接收端的光模块发送光信号。接收端的光模块接收到发射端的光模块发送的光信号时,会根据光信号,生成反馈信息(即上述的第一反馈信息),并将反馈信息调制到供电器件3上,供电器件3通过第一电接头31发送至复合缆的铜线中。
反馈信息经由铜线传输至发射端的光模块处,并通过发射端的光模块的第一电接头31传输至发射端的光模块的供电器件3,发射端的光模块供电器件3将反馈信息发送至处理器,处理器解析得到反馈信息(即上述的第二反馈信息),然后发射端的光模块中的处理器根据接收到的反馈信息,对光器件2的参数进行均衡调整。
作为一种示例,上述反馈信息中包括功率值。那么,发射端的光模块解析得到接收端的光模块接收到的功率值后,与预先存储的接收端的光模块所需的功率阈值进行对比,如果接收到的功率值大于功率阈值。那么,可以降低后续向接收端的光模块发送光信号的功率值,直到接收到的功率值与预先存储的功率阈值比较接近时,停止调整向接收端的光模块发送光信号的功率值。这样,发射端的光模块可以根据接收端的光模块发送的携带有功率值的反馈信息,动态调整所发射的光信号的功率值,达到降低功耗,节约能量的效果。
作为另一种示例,上述反馈信息中包括信噪比或者S参数。那么,发射端的光模块解析得到接收端的光模块发送的光纤信道的信噪比后,如果信噪比比较高,那么,发射端的光模块无需调整参数,而如果信噪比比较低,那么,发射端的光模块可以通过提高发射功率,来提高信噪比,也可以通过调整抽头数的个数和抽头数的系数,来提高信噪比。
这样,供电器件3作为回传通道,使得发射端的光模块能够获取光纤信道中的一些数据,为发射最佳光信号提供依据。而一旦发射的光信号的质量较高,那么对光模块也会形成一定的保护,有利于延长光模块的使用寿命。
又例如,光模块出现故障时,如发送的光信号的功率过小,或者,无法进行光电转换时,可以通过供电器件3向所插设备发送异常信号,以使技术人员可以通过设备了解到光模块出现故障,需要更换光模块。
由于相较于电力传输的功率,传输的数据信号的功率要小的多,那么在频谱上相当于淹没在电力信号中,这样,即使被窃听者截取,窃听者很有可能会当做噪声信号。所以,通过供电器件3进行数据信号传输,数据信号难以被截获,能够提高数据传输的安全性。
可见,该光模块具备实现PoE供电的供电器件,该供电器件不仅能够实现电能传输,还能够实现一些数据信号传输。
基于上述所述,该光模块至少具有以下效果:
该光模块不仅具有光电转换功能,还具有实现PoE供电的供电器件,作为被插设备,其 用于插光模块的光端口和用于插电源连接器的电端口也位于同一个端口中,示例性地,如交换机和AP的面板上只需要设置用来插该光模块的端口即可,进而可以节省交换机和AP的面板尺寸,有利于交换机和AP的小型化发展。
该光模块的第一端处的第一电接头31未改变光模块原有的结构特征,使得光模块的第一端具备兼容性,既能供更新后的复合缆插入,又能供更新前的复合缆插入,该光模块的应用场景广泛,更新后的复合缆也即是与光模块的封装类型相匹配,且包括与第一电接头相匹配的电源连接器的复合缆。其中,更新后的复合缆也即是与光模块的封装类型相匹配,但不包括与第一电接头相匹配的电源连接器的复合缆。
该光模块的第二端处的第二电接头33也未改变光模块原有的结构特征,使得光模块的第二端具备兼容性,既能插入于更新后的光笼子中,又能插入于更新前的光笼子中,该光模块的应用场景广泛。其中,更新后的光笼子也即是与光模块的封装类型相匹配,且包括与第二电接头相匹配的电源连接器的光笼子,更新后的光笼子也即是与光模块的封装类型相匹配,但不包括与第二电接头相匹配的电源连接器的光笼子。光笼子是光通信设备的接口部件。
本申请实施例还提供了一种光通信设备,该光通信设备可以是光通信领域中的任意设备,例如,可以是交换机或者AP等。
如图51并参考图52所示,该光通信设备包括机框100、主板200和光电转换组件300;如图51所示,机框100的面板具有光缆插口101,如图52所示的光电转换组件300包括上述所述的光器件2和上述所述的供电器件3;主板200、光器件2和供电器件3均位于机框100中,且光器件2和供电器件3均位于主板200的表面,光器件2的光接头和所述供电器件3的电接头的位置均与光缆插口101的位置相对。
其中,光器件2的光接头用于与复合缆的光纤连接器对接,以实现光信号传输。供电器件3的电接头用于与复合缆的电源连接器电连接,以实现PoE的电力传输。
在一种示例中,光电转换组件300通过光器件2实现光电转换功能,通过供电器件3实现PoE供电功能。其中,光电转换组件300按照标准光模块封装类型,封装在机框100中。由于该光通信设备需要和复合缆连接,故机框100的面板具有光缆插口101,光器件2的光接头的位置和供电器件3的电接头的位置均与光缆插口101的位置相对,例如,光器件2的光接头位于光缆插口101中,供电器件3的电接头也位于光缆插口101中。
在一种示例中,该光通信设备可以与更新后的复合缆匹配使用,其中,更新后的复合缆也即是复合缆端部的连接器不仅包括光纤连接器,还包括电源连接器,且光纤连接器与光器件2的光接头匹配,电源连接器与供电器件3的电接头匹配。
在另一种示例中,该光通信设备还可以与更新前的复合缆匹配使用,其中,更新前的复合缆也即是复合缆端部的连接器包括光纤连接器,不包括电源连接器,且光纤连接器与光器件2的光接头匹配。
既能匹配更新后的复合缆,又能匹配更新前的复合缆的光通信设备,其具备兼容性,应用场景较为广泛,使用灵活性高。
其中,光通信设备实现兼容性的结构特征可以如下:
光器件2的光接头和供电器件3的电接头均位于光缆插口101中,且光器件2的光接头和供电器件3的电接头的位置相互独立,以使光缆插口101用于供与标准封装类型的光电转 换组件300相匹配的复合缆插入。
在一种示例中,光器件2位于主板200的表面,光器件2的光接头通常通过中柱5支撑,也通过中柱5实现插拔导向限位。供电器件3的电接头的导电部可以固定于中柱5中,而不影响光器件2的光接头处的结构特征。从而能够实现光通信设备的兼容性。其中,关于供电器件3的电接头的导电部与中柱5之间的固定关系,以及电接头的导电部的具体结构形式,可以参见上述供电器件3的第一电接头导电部311与中柱5的固定关系,以及第一电接头导电部311的具体结构形式,此处不再赘述。
该光通信设备的光缆插口101具备兼容性,使得更新前的复合缆能够插入到光缆插口101中与光缆插口101中的光接头对接,实现光信号传输,更新后的复合缆更能插入到光缆插口101中,分别与光缆插口101中的光接头对接,与光缆插口101中的电接头电连接,实现光信号传输,以及电力传输。
该光通信设备集成有光电转换组件300,那么该光通信设备与其它设备进行连接中,只需插接光缆或者复合缆,无需额外插接光模块,连接操作简单,能避免光模块的遗失,还能避免因光模块与光通信设备的不匹配而出现无法成功连接的情况。
本实施例还提供了一种以太网供电PoE设备,该PoE设备包括上述所述的光模块,该PoE设备的光模块,如上述所述,不仅具有光电转换功能,还具有实现PoE供电的供电器件,且供电器件未改变光模块原有的结构特征,不影响光模块的尺寸。这样,复合缆的电源连接器通过光模块与PoE设备电连接,复合缆的电源连接器无需插到PoE设备中,进而可以节省PoE设备的面板空间,使得PoE设备的结构更加紧凑,有利于PoE设备的小型化发展。
以上所述仅为本申请一个实施例,并不用以限制本申请,凡在本申请的原则之内,所作的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。

Claims (12)

  1. 一种光模块,其特征在于,所述光模块包括壳体(1)、光器件(2)和供电器件(3);
    所述壳体(1)的第二端具有第二插口(12),所述壳体(1)的第二端为用于插入于光通信设备的端部;
    所述光器件(2)包括第二光接头(23),所述供电器件(3)包括第二电接头(33);
    所述光器件(2)和所述供电器件(3)均位于所述壳体(1)中,且所述第二光接头(23)和所述第二电接头(33)均位于所述第二插口(12)中,且所述第二光接头(23)和所述第二电接头(33)的位置相互独立。
  2. 根据权利要求1所述的光模块,其特征在于,所述壳体(1)的第二端用于插入于与标准的光模块封装类型相匹配的光通信设备中。
  3. 根据权利要求1或2所述的光模块,其特征在于,所述第二电接头(33)包括第二电接头导电部(331);
    所述第二电接头导电部(331)固定于所述光模块的位于所述第二插口(12)中的插拔导向块(4)。
  4. 根据权利要求3所述的光模块,其特征在于,所述第二电接头导电部(331)为条形金属片;
    所述条形金属片位于所述插拔导向块(4)的与所述第二光接头(23)相对的表面,且所述条形金属片的条形方向和所述光模块的插拔方向平行。
  5. 根据权利要求3所述的光模块,其特征在于,所述第二电接头导电部(331)为条形簧片,包括直线部(3311)和弯折部(3312);
    所述插拔导向块(4)的与所述第二光接头(23)相对的表面具有安装槽(41),所述条形簧片的直线部(3311)位于所述插拔导向块(4)中,所述条形簧片的弯折部(3312)位于所述安装槽(41)中,且所述弯折部(3312)的弯折处(3312a)伸出于所述安装槽(41)的槽口。
  6. 根据权利要求3所述的光模块,其特征在于,所述第二电接头导电部(331)为弹簧针;
    所述弹簧针位于所述插拔导向块(4)中,且所述弹簧针的端部伸出于所述插拔导向块(4)。
  7. 根据权利要求6所述的光模块,其特征在于,所述插拔导向块(4)包括本体(40)和保护件;
    所述保护件和所述本体(40)固定连接,所述保护件被配置为:
    当所述光模块插入于光通信设备中时,所述保护件能使所述弹簧针的针轴(3313)与所述光通信设备的触点紧密接触,当所述光模块未插入于光通信设备中时,所述保护件能保护 所述弹簧针的针轴(3313)。
  8. 根据权利要求7所述的光模块,其特征在于,所述保护件包括滑块(42)和第一弹性件(43),所述第一弹性件(43)的弹力小于所述弹簧针的弹力;
    所述本体(40)的端部具有滑槽(401),所述滑块(42)和所述第一弹性件(43)均位于所述滑槽(401)中,且所述第一弹性件(43)连接在所述滑槽(401)的槽底和所述滑块(42)之间;
    所述弹簧针的一部分位于所述本体(40)中,另一部分位于所述滑块(42)中,所述滑块(42)能相对于所述本体(41)和所述弹簧针滑行,且滑行方向与所述光模块的插拔方向平行;
    当所述光模块插入于所述光通信设备中时,所述滑块(42)收缩于所述滑槽(401)中,以使所述弹簧针的针轴(3313)与所述光通信设备的触点紧密接触,当所述光模块未插入于所述光通信设备中时,所述滑块(42)伸出于所述滑槽(401),以保护所述弹簧针的针轴(3313)。
  9. 根据权利要求7所述的光模块,其特征在于,所述保护件包括按压件(44)、第二弹性件(45)和L型杆(46);
    所述弹簧针的针轴(3313)具有凹槽(3313a),所述弹簧针的针管(3314)的管壁具有通孔(3314a),所述针轴(3313)的凹槽(3313a)和所述针管(3314)的通孔(3314a)的位置相对时,所述针轴(3313)收容于所述针管(3314)中;
    所述按压件(44)一部分位于所述本体(40)外,另一部分位于所述本体(40)中,所述弹簧针、所述第二弹性件(45)和所述L型杆(46)均位于所述本体(40)中,且所述按压件(44)、所述第二弹性件(45)和所述L型杆(46)的第一杆(461)依次相连,所述L型杆(46)的第二杆(462)的位置和所述针管(3314)的通孔(3314a)的位置相对;
    当所述光模块插入于所述光通信设备中时,所述按压件(44)处于按压状态,所述L型杆(46)的第二杆(462)的端部位于所述针管(3314)的外,以使所述针轴(3313)与所述光通信设备的触点紧密接触;
    当所述光模块未插入于所述光通信设备中,且所述针轴(3313)收缩于所述针管(3314)中时,所述L型杆(46)的第二杆(462)的端部位于所述针轴(3313)的凹槽(3313a)中,以使所述针轴(3313)保持收缩于所述针管(3314)中。
  10. 根据权利要求7所述的光模块,其特征在于,所述保护件包括按压件(44)和U型件(47);
    所述弹簧针的针管(3313)具有轴向条形孔(3313b),所述弹簧针的针轴(3313)具有凸块(3313b),所述凸块(3313b)位于所述轴向条形孔(3314b)中;
    所述按压件(44)一部分位于所述本体(40)外,另一部分位于所述本体(40)中,所述弹簧针和所述U型件(47)均位于所述本体(40)中,且所述U型件(47)的第一端位于所述按压件(44)处,所述U型件(47)的第二端位于所述针轴(3313)的凸块(3313b)处;
    当所述光模块插入于所述光通信设备中时,所述按压件(44)处于按压状态,所述针轴 (3313)在所述U型杆(47)的推动下伸出于所述针管(3314),以与所述光通信设备的触点紧密接触,当所述光模块未插入于所述光通信设备中时,所述按压件(44)处于未按压状态,所述针轴(3313)收缩于所述针管(3314)中。
  11. 根据权利要求1至10任一所述的光模块,其特征在于,所述供电器件(3)还包括第二刚性线路板(321);
    所述第二刚性线路板(321)一端位于所述第二插口(12)中,所述第二电接头(33)的第二电接头导电部(331)为位于所述第二刚性线路板(321)表面的金手指。
  12. 根据权利要求11所述的光模块,其特征在于,所述第二刚性线路板(321)和所述光器件(2)的第一刚性线路板(221)上下平行位于所述壳体(1)中。
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