Connector, connector system, and photovoltaic system

WO2026175366A1PCT designated stage Publication Date: 2026-08-27SHANGHAI MOOREWATT ENERGY TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
PCT/CN2026/079335
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2025-02-24
Filing Date
2026-02-13
Publication Date
2026-08-27

Smart Images

  • Figure CN2026079335_27082026_PF_FP_ABST
    Figure CN2026079335_27082026_PF_FP_ABST
Patent Text Reader

Abstract

The present application provides a connector, a connector system, and a photovoltaic system. The connector (100) comprises a wiring terminal (1000), a plurality of wiring members (1100) are disposed inside the wiring terminal (1000), the wiring members (1100) each have a load end and a photovoltaic end, the load end is configured to connect a plurality of core wires of a load-end cable (200), and the photovoltaic end is configured to be electrically connected directly or indirectly to a power converter (500).
Need to check novelty before this filing date? Find Prior Art

Description

Connectors, connector systems and photovoltaic systems Related applications This application claims priority to four patent applications filed on February 24, 2025, with patent application numbers 2025102092699, 2025203048133, 2025102093437 and 2025203050523, the disclosures of which are incorporated herein by reference. Technical Field This application relates to the field of photovoltaic technology, and in particular to connectors, connector systems, and photovoltaic systems. Background Technology Power converters are electrical conversion devices used to transform electrical energy from one form to another, enabling energy transmission and control under different power requirements. For example, they convert direct current (DC) generated by solar panels into alternating current (AC). Typically connected to one or more solar panels, they are installed on or near the back of the panels, providing power conversion and control functions for each panel or group of panels. In rooftop solar power projects such as residential buildings, commercial buildings, and industrial plants, power converters can provide optimized power conversion for each solar panel, facilitating the installation and management of solar power plants. In practical applications, multiple power converters need to be connected to one place for centralized management and control, and then connected to the power grid or loads within the grid. Currently, most manufacturers complete the connection by stripping wires in the junction box, which is cumbersome, inconvenient, and inefficient. Alternatively, they connect by plugging in terminals at both ends, which is more expensive and complicated to operate. Summary of the Invention According to various embodiments of this application, this application provides a connector, a connector system, and a photovoltaic system. This application provides a connector, the connector comprising: The terminal block has several connectors inside, each connector having a load end and a photovoltaic end. The load end is configured to connect several core wires to a load end cable, and the photovoltaic end is configured to be electrically connected directly or indirectly to a power converter. In one embodiment, the terminal block has a terminal chamber inside, and a plurality of the wiring components are disposed in the terminal chamber. In one embodiment, the photovoltaic terminals of a plurality of the connectors are configured to be connected to a power converter via photovoltaic terminal cables. In one embodiment, at least two of the connectors are disposed inside the terminal block, and the load-side cable has several core wires including a load-side L wire, a load-side N wire, and a load-side ground wire. The load ends of the several connectors are configured to be electrically connected to at least the load-side L wire and the load-side N wire. In one embodiment, the terminal block has a male connector, and a plurality of the photovoltaic terminals of the connectors are disposed on the male connector, the male connector being configured to be plugged into a female connector of a photovoltaic terminal cable or a power converter. In one embodiment, the terminal block is provided with a grounding interface, which is configured to connect the photovoltaic grounding wire and the load-side grounding wire of the load-side cable. In one embodiment, the photovoltaic terminal cable includes a plurality of core wires including a photovoltaic terminal L wire and a photovoltaic terminal N wire, or includes a photovoltaic terminal L wire, a photovoltaic terminal N wire and a photovoltaic terminal ground wire; wherein, at least two of the terminal blocks are provided inside the terminal block, and the photovoltaic terminals of the plurality of terminal blocks are configured to be electrically connected to at least the photovoltaic terminal L wire and the photovoltaic terminal N wire. In one embodiment, the connector includes a conductive core disposed at the ground interface of the terminal block, the conductive core being configured for electrically connecting the photovoltaic ground wire and the load ground wire of the load cable. In one embodiment, the connector includes a conductive core disposed at the ground interface of the terminal block, and the conductive core has at least one internal channel configured to pass through at least one of the load-side ground wire and the photovoltaic-side ground wire, thereby electrically connecting the photovoltaic-side ground wire and the load-side ground wire of the load-side cable. In one embodiment, the grounding interface includes a grounding chamber located inside the terminal block. The grounding chamber has a first grounding cavity opening and a second grounding cavity opening that pass through the terminal block. The conductive core is disposed in the grounding chamber. The first grounding cavity opening is configured to carry the load-end grounding wire of the load-end cable, and the second grounding cavity opening is configured to carry the photovoltaic-end grounding wire. In one embodiment, the conductive core is sealed and assembled into the grounding chamber by at least one seal. In one embodiment, at least one limiting member is provided inside the grounding chamber, and the conductive core is limited and assembled in the grounding chamber by at least one of the limiting members. In one embodiment, the grounding chamber has at least one locking port through the terminal block, the core channel has at least one connecting port through the conductive core, the connecting port is configured to communicate with the locking port, the locking port and the connecting port are configured to pass through a locking member, the locking member is configured to lock at least one of the load terminal ground wire and the photovoltaic terminal ground wire relative to the conductive core. In one embodiment, the sealing element is disposed between the outside of the conductive core and the inner wall of the grounding chamber, and the first grounding cavity opening and the second grounding cavity opening of the grounding chamber are sealed and isolated by the sealing element. In one embodiment, at least one limiting member is provided inside the grounding cavity. The limiting member is configured as a limiting buckle. The limiting buckle is located at the first grounding cavity opening or the second grounding cavity opening of the grounding cavity. One end of the conductive core is configured to abut against the inner wall of the grounding cavity, and the other end of the conductive core is configured to engage with the limiting buckle for limiting. In one embodiment, the seal is configured as a sealing ring, which is fitted over the outside of the conductive core, and the conductive core is sealed to the inner wall of the grounding chamber through the sealing ring. In one embodiment, the grounding chamber has a first locking port through the terminal block, the conductive core has a first internal channel, the first internal channel has a first pair of interfaces through the conductive core, the first pair of interfaces is configured to communicate with the first locking port, the first locking port and the first pair of interfaces are configured to pass through a locking member, and the locking member is configured to lock the load terminal ground wire relative to the conductive core; The grounding chamber has a second locking port that passes through the terminal block. The conductive core has a second internal channel inside. The first internal channel and the second internal channel are two independent internal channels that are not connected. The second internal channel has a second pair of interfaces that pass through the conductive core. The second pair of interfaces is configured to connect with the second locking port. The second locking port and the second pair of interfaces are configured to allow a locking member to pass through. The locking member is configured to lock the photovoltaic ground wire relative to the conductive core. In one embodiment, the connector includes: The device housing has a housing cavity with two through-holes inside. The device housing is assembled to the outside of the terminal block. At least a portion of the terminal block is located in the housing cavity of the device housing. In one embodiment, the device housing is provided with a locking mechanism, the locking mechanism including a deformation cylinder and a locking sleeve, the deformation cylinder being located in the device housing and the cavity of the deformation cylinder communicating with the housing cavity of the device housing, the locking sleeve being movably sleeved on the outside of the deformation cylinder, the locking sleeve being configured to change the radial dimension of at least a portion of the cavity of the deformation cylinder. In one embodiment, the deformation cylinder has a plurality of linear slits, each of which extends linearly along the axial direction of the deformation cylinder. The plurality of linear slits are distributed along the circumference of the deformation cylinder. A portion of the deformation cylinder is divided into deformation arms based on adjacent linear slits. The plurality of linear slits form a plurality of deformation arms along the circumference of the deformation cylinder. The plurality of deformation arms are configured to come closer to each other based on the locking force of the locking sleeve, thereby changing the radial dimension of at least a portion of the cavity of the deformation cylinder. In one embodiment, a first mounting member is provided on the outside of the device housing, and the device housing is assembled with the outside of the wiring terminal through the first mounting member. In one embodiment, a second mounting member is provided in the housing cavity of the device housing, and the device housing is snapped together with the terminal block via the second mounting member. In one embodiment, the first mounting component includes a mounting arm and a mounting cover connected to each other. The mounting arm is rotatably mounted on the outside of the device housing. The mounting cover is provided with a snap-fit ​​groove. The outside of the terminal block is provided with a snap-fit ​​post. The snap-fit ​​groove of the mounting cover is configured to snap-fit ​​with the snap-fit ​​post of the terminal block. The mounting cover is configured to cover at least a portion of the outer wall area of ​​the terminal block. In one embodiment, the connector includes: The number of flying wire terminals is configured to be at least two, and each flying wire terminal is provided with at least two flying wire adapters inside. The flying wire adapters are configured to be electrically connected directly or indirectly to a power converter. The photovoltaic end of each of the terminals is configured to be electrically connected to at least one of the flying wire adapters in at least one of the flying wire terminals. In one embodiment, each of the flying wire terminals is provided with two flying wire adapters inside, and the two flying wire adapters of each flying wire terminal are an L-line adapter and an N-line adapter, respectively; the photovoltaic end of one of the terminals is configured to be electrically connected to at least one L-line adapter in the flying wire terminal, and the photovoltaic end of one of the terminals is configured to be electrically connected to at least one N-line adapter in the flying wire terminal. In one embodiment, at least one of the flying wire terminals is electrically connected to the terminal block of the wiring terminal via at least one flying wire cable. In one embodiment, the L-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminals of a plurality of different terminals of the terminal block, and the N-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block. In one embodiment, the N-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminals of a plurality of different terminals of the terminal block, and the L-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block. In one embodiment, the L-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminals of a plurality of different terminals of the terminal block, and the N-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminals of a plurality of different terminals of the terminal block. In one embodiment, the L-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals, and the N-line adapters of a plurality of flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals. In one embodiment, the terminal block has a terminal chamber inside, and a plurality of the wiring components are disposed in the terminal chamber. In one embodiment, the flying wire terminal has a terminal cavity inside, and a plurality of flying wire adapters are disposed in the terminal cavity. In one embodiment, the flying wire adapter is configured to connect to a power converter via a photovoltaic terminal cable. In one embodiment, the flying wire terminal has a male connector, and a plurality of flying wire adapters are disposed on the male connector, the male connector being configured to be plugged into a female connector of a photovoltaic terminal cable or a power converter. This application provides a connector system, the connector system including the connector, wherein the photovoltaic terminals of a plurality of the connector's terminals are directly or indirectly connected to a power converter, and the load terminals of the plurality of the connector's terminals are connected to a load via load terminal cables. In one embodiment, the connector system includes: A female plug is provided on at least one of the power converter or photovoltaic terminal cable, and the female plug is configured to be mated with the male plug of the connector's wiring terminal. This application provides a connector system, the connector system including the connector, the fly wire adapter of a plurality of the fly wire terminals of the connector being directly or indirectly connected to a power converter, and the load terminals of a plurality of the connector terminals being connected to a load via load terminal cables. In one embodiment, the connector system includes: A female plug is provided on at least one of the power converter or photovoltaic terminal cable, and the female plug is configured to mate with the male plug of the flying wire terminal of the connector. This application provides a photovoltaic system, the photovoltaic system comprising: At least one of a power converter and a load, wherein the number of the power converter or the load is configured to be at least two; The connector system is connected to at least one of the power converter and the load. Details of one or more embodiments of this application are set forth in the following drawings and description, and other features, objects and advantages of this application will become apparent from the specification, drawings and claims. Attached Figure Description To more clearly illustrate the technical solutions in the embodiments of this application or the conventional technology, the drawings used in the description of the embodiments or the conventional technology will be briefly introduced below. Obviously, the drawings described below are only embodiments of this application. For those skilled in the art, other drawings can be obtained based on the disclosed drawings without creative effort. Figure 1 is an exploded view of a connector provided in some embodiments of this application. Figure 2 is a perspective view of the wiring terminals shown in Figure 1. Figure 3 is a first cross-sectional view of the terminal block shown in Figure 2. Figure 4 is a first-view perspective view of a three-phase connector provided in some embodiments of this application. Figure 5 is a second-view perspective perspective view of the three-phase connector shown in Figure 4. Figure 6 is a cross-sectional view of the three-phase connector shown in Figure 4. Figure 7 is a cross-sectional view of the terminal block without the conductive core, as shown in Figure 2. Figure 8 is a cross-sectional view of the terminal block containing the conductive core, as shown in Figure 2. Figure 9 is a cross-sectional view of the terminals of the three-phase connector shown in Figure 4. Figure 10 is a perspective view of the conductive core and locking element provided in some embodiments of this application. Figure 11 is a first-view perspective view of the device housing shown in Figure 1. Figure 12 is a second-view perspective perspective view of the device housing shown in Figure 1. Figure 13 is a connection frame diagram of a photovoltaic system provided in some embodiments of this application. Icon labels: 100. Connector; 200. Load-side cable; 300. Photovoltaic-side cable; 400. Load; 500. Power converter; 1000, Terminal blocks; 2000, Device housing; 1010, Flying wire terminal; 1011, Flying wire adapter; 1012, Flying wire cable; 1100, Connector; 1200, Grounding connector; 1300, Conductive core; 1400, Seal; 1500, Limiting component; 1600, Male connector; 1210 Grounding chamber; 1220 Locking port; 1230 Locking element; 1310, In-core channel; 1320, Interface; 2100 Locking mechanism; 2200 First locking component; 2300 Second locking component; 2210, clamping swing arm; 2220, clamping cover plate; 2221, clamping groove; 2222, clamping column. Detailed Implementation The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application. Referring to Figure 1, this application provides a connector 100, which mainly includes a terminal block 1000. In addition, the connector 100 may also include a device housing 2000 as shown in Figure 1, allowing the terminal block 1000 to be assembled with the device housing 2000. Regarding the terminal block 1000, as shown in Figures 2 and 3, a plurality of wiring components 1100 may be disposed inside the terminal block 1000. For example, in one embodiment, a terminal chamber may be provided inside the terminal block 1000, thus allowing the wiring components 1100 to be disposed within the terminal chamber and assembled inside the terminal block 1000. Alternatively, the wiring components 1100 may also be assembled inside the terminal block 1000 using other components or other structures, which is not limited here. It should be noted that the several connectors 1100 inside the aforementioned terminal block 1000 are an integrated conductive structure. When connecting the core wires of cables (e.g., load-end cable 200 or photovoltaic-end cable 300), the core wires are connected to the connectors 1100 by a mating (plugging) method. This plugging method can be based on the structural design of the connectors 1100 or the structural design of the terminal block 1000, rather than the independent terminals in the existing junction box. Depending on the number of core wires in the load-side cable 200 or the photovoltaic-side cable 300, the number of connectors 1100 can be adapted to match, without limitation. Therefore, by limiting connector 1100 to have both a load end and a photovoltaic end, the load end can be used to connect several core wires of the load-side cable 200, while the photovoltaic end can be configured for direct or indirect electrical connection to the power converter 500. For example, in the case of indirect connection, several photovoltaic ends of connectors 1100 can be configured for connection to the power converter 500 via the photovoltaic-side cable 300. For example, in the case of connection, referring to Figures 4 to 6, the connector may also include a flying wire terminal 1010, a photovoltaic terminal cable 300, a flying wire cable 1012, etc. The photovoltaic terminals of several connectors 1100 may be configured to be electrically connected to the power converter 500 through the flying wire terminal 1010, or the photovoltaic terminals of several connectors 1100 may be configured to be connected to the photovoltaic terminal cable 500 through the flying wire terminal 1010, or connected to the photovoltaic terminal cable 500 through the flying wire terminal 1010 and the photovoltaic terminal cable 300, or connected to the photovoltaic terminal cable 500 through the flying wire cable 1012, the flying wire terminal 1010, and the photovoltaic terminal cable 300. The 1012 flying wire cable can be modified in length to address the need for reconfiguration of extension cables at customer sites. Those skilled in the art can choose different direct or indirect connection methods according to actual needs to meet various practical requirements; no limitations are imposed here. Furthermore, when the connector described above is equipped with flying wire terminals 1010 to indirectly connect the connector 1100 to the photovoltaic cable 500, the number of flying wire terminals 1010 can be configured to be several, such as two, three, or other numbers. Each flying wire terminal 1010 has at least two flying wire adapters 1011 inside. The flying wire adapters 1011 are configured to be directly electrically connected to the photovoltaic cable 500, or electrically connected to the photovoltaic cable 500 via the photovoltaic cable 300. The flying wire terminal 1010 has a terminal cavity inside, and several flying wire adapters 1011 are disposed in the terminal cavity. Therefore, by adding the flying wire terminal 1010, the connection of the terminal block can be improved from a single-phase electrical connection to a multi-phase electrical connection. A single-phase electrical connection means that one terminal block can be connected to one photovoltaic cable 500, while a multi-phase electrical connection is achieved by increasing the number of flying wire terminals 1010, allowing one terminal block to be connected to a matching photovoltaic cable 500 via one flying wire terminal 1010. This further enables one terminal block to be electrically connected to two or more photovoltaic cables 500 via two or more flying wire terminals 1010, and multiple photovoltaic cables 500 to be electrically connected in parallel to the same terminal block via a matching flying wire terminal 1010. In the aforementioned electrically connected state, the photovoltaic terminal of each of the terminal blocks 1100 is configured to electrically connect to at least one of the flying wire adapters 1011 in the flying wire terminals 1010. That is, the flying wire adapter 1011 in each of the flying wire terminals 1010 can be electrically connected to one terminal block 1100, or it can be connected to two, three or more terminal blocks 1100. For example, when there are three L lines, they can be integrated into one connector 1100, or they can be connected to three different connectors 1100. Similarly, when there are three N lines, they can be integrated into one connector 1100, or they can be connected to three different connectors 1100. Therefore, as shown in Figures 1 to 3, the three L-wires are integrated and connected to one connector 1100, and the three N-wires are integrated and connected to one connector 1100. Thus, each flying wire terminal 1010 only needs to have at least two flying wire adapters 1011 inside. Alternatively, as shown in Figures 4 to 6, the three L-wires are integrated and connected to one connector 1100, and the three N-wires are connected to three different connectors 1100, or the three N-wires are integrated and connected to one connector 1100, and the three L-wires are connected to three different connectors 1100. In this case, each connector 1000 needs to have at least four or more connectors 1100 inside. Those skilled in the art can select the number of wiring components 1100, the number of flying wire terminals 1010, and the number of flying wire adapters 1011 in the flying wire terminals 1010 according to actual wiring requirements, thereby forming a variety of different electrical connection methods, which are not limited here. In one embodiment, each of the flying wire terminals 1010 is provided with two flying wire adapters 1011 inside, and the two flying wire adapters 1011 of each of the flying wire terminals 1010 are an L-line adapter and an N-line adapter, wherein the photovoltaic end of one of the connectors 1100 of the terminal is configured for electrically connecting at least one L-line adapter in the flying wire terminal 1010, and the photovoltaic end of one of the connectors 1100 of the terminal is configured for electrically connecting at least one N-line adapter in the flying wire terminal 1010. Therefore, for example, when a terminal block is connected in parallel with three flying wire terminals 1010, each flying wire terminal 1010 internally has two flying wire adapters 1011 (L-line adapter and N-line adapter), and the three flying wire terminals 1010 have a total of six flying wire adapters 1011 (three L-line adapters and three N-line adapters). In addition, a terminal block can also be connected in parallel with other numbers of flying wire terminals 1010, each of which internally has two flying wire adapters 1011 (L-line adapter and N-line adapter), without limitation here. At this time, the three L-line adapters of the three flying wire terminals 1010 can be either integrated and electrically connected to one connector 1100 within the terminal block, or they can be electrically connected to different connectors 1100 within the terminal block. Similarly, the three N-line adapters of the three flying wire terminals 1010 can either be integrated and electrically connected to one connector 1100 within the terminal block, or they can be electrically connected to different connectors 1100 within the terminal block. Furthermore, the flying wire adapter 1011 of each flying wire terminal 1010 can be directly electrically connected to the connector 1100, or electrically connected to the connector 1100 of the terminal block via a flying wire cable 1012. Regarding the different connection schemes mentioned above, the following examples can be referenced: In one embodiment, the L-line adapters of several flying wire terminals 1010 are electrically connected to the photovoltaic terminals of several different connectors 1100 of the terminal block, and the N-line adapters of several flying wire terminals 1010 are all electrically connected to the photovoltaic terminal of one connector 1100 of the terminal block. Alternatively, the N-line adapters of several flying wire terminals 1010 are electrically connected to the photovoltaic terminals of several different connectors 1100 of the terminal block, and the L-line adapters of several flying wire terminals 1010 are all electrically connected to the photovoltaic terminal of one connector 1100 of the terminal block. Alternatively, the L-line adapters of several flying wire terminals 1010 are electrically connected to the photovoltaic terminals of several different terminals 1100 of the terminal block, and the N-line adapters of several flying wire terminals 1010 are electrically connected to the photovoltaic terminals of several different terminals 1100 of the terminal block. Alternatively, the L-line adapters of several flying wire terminals 1010 are all electrically connected to the photovoltaic terminal of one terminal 1100 of the terminal block, and the N-line adapters of several flying wire terminals 1010 are all electrically connected to the photovoltaic terminal of one terminal 1100 of the terminal block. Currently, when setting up junction boxes on construction sites, operators need to strip cables to complete the wiring process. This is cumbersome, inconvenient, and inefficient. For example, a conventional wire stripping and wiring process requires using tools such as wire strippers, utility knives, scissors, or needle-nose pliers to precisely remove the cable's insulation. The core wire can be placed into the appropriate blade of the wire stripper, and the pliers can be gently pressed down to ensure the blade cuts into the insulation without damaging the core wire. The wire stripper can then be rotated or pulled to remove the insulation. Alternatively, a utility knife or scissors can be used to make a circumferential cut around the insulation, avoiding damage to the core wire, and then the insulation can be gently stripped away. Then, the stripping length is determined according to the wiring requirements, and the stripped core wire is clamped in the cable with wire strippers or needle-nose pliers to ensure a secure connection. Proper wire stripping ensures a secure connection and good conductivity. Compared to existing wiring methods, the connector 100 provided in this application allows for direct mating between the photovoltaic terminal, the flying wire terminal 1010, and the plug (located on the photovoltaic inverter and photovoltaic terminal cables) during connection, eliminating the need for extensive wire stripping and resulting in faster connection. Furthermore, each flying wire terminal 1010 contains at least two flying wire adapters 1011, which naturally distinguishes different types of cables during mating, preventing incorrect connection of the neutral and live wires. In junction boxes, the live and neutral wires are stripped separately and connected to the terminals, making reverse connection easy. Moreover, the connector in this application is smaller and lighter, allowing for a higher protection level through its structure. It can also be installed entirely under the photovoltaic panel, avoiding exposure and providing sun, dust, and water protection. This protective advantage is particularly pronounced in residential rooftop applications. Furthermore, the number of connector 100 terminals 1100 matches the number of core wires in the connected load cable 200 or photovoltaic cable 300, and the terminal 1100 is limited to having a load end and a photovoltaic end. The load end and the photovoltaic end can be electrically connected by direct plugging, so that the connector 100 can quickly electrically connect several core wires of the load cable 200 and several core wires of the photovoltaic cable 300 based on the appropriate terminal 1100, and is not limited by specifications, thereby improving wiring efficiency and wiring adaptability in different scenarios. Regarding the connection method between the terminal block 1000 and the power converter 500, in the case of direct connection, the power converter 500 may be defined as having a female plug, and the terminal block 1000 may have a male plug 1600. The photovoltaic ends of several connectors 1100 are disposed on the male plug 1600, and the male plug 1600 is configured for mating with the female plug of the power converter 500. Alternatively, in the case of indirect connection, the photovoltaic cable 300 may be defined as having a female plug, and the terminal block 1000 may have a male plug 1600. The photovoltaic ends of several connectors 1100 are disposed on the male plug 1600, and the male plug 1600 is configured for mating with the female plug of the photovoltaic cable 300. Alternatively, the flying wire terminal 1010 may have a male connector 1600, with a plurality of flying wire adapters 1011 disposed on the male connector 1600, the male connector 1600 being configured for mating with the female connector of the power converter 500. Alternatively, in the case of indirect connection, the photovoltaic terminal cable 300 may be defined to have a female connector, the flying wire terminal 1010 may have a male connector 1600, with a plurality of flying wire adapters 1011 disposed on the male connector 1600, the male connector 1600 being configured for mating with the female connector of the photovoltaic terminal cable 300. Regarding the number of connectors 1100 mentioned above, in one embodiment, at least two connectors 1100 may be provided inside the terminal block 1000. In this case, the core wires of the load cable 200 may respectively include the load L wire, the load N wire and the load ground wire. Therefore, the load ends of at least two connectors 1100 may be configured to be electrically connected to at least the load L wire and the load N wire. That is, the load end of one connector 1100 is independently connected to the load L wire, and the load end of one connector 1100 is also independently connected to the load N wire. The load-side cable 200 may also include a load-side ground wire. Therefore, regarding the electrical connection of the load-side ground wire, in one embodiment, a ground wire interface 1200 may be provided at the terminal block 1000. In this case, the added ground wire interface 1200 may be configured to connect the photovoltaic terminal ground wire and the load-side ground wire of the load-side cable 200, thereby realizing the electrical connection between the load-side ground wire and the photovoltaic terminal ground wire. It should be noted that the photovoltaic terminal cable 300 may include a photovoltaic terminal L wire and a photovoltaic terminal N wire, i.e., it may not include a photovoltaic terminal ground wire, or the photovoltaic terminal cable 300 may include a photovoltaic terminal L wire, a photovoltaic terminal N wire, and a photovoltaic terminal ground wire, i.e., it may include a photovoltaic terminal ground wire. In this state, for the design of the photovoltaic terminal cable 300, the terminal block 1000 can also be equipped with at least two connectors 1100. The photovoltaic terminals of several connectors 1100 are configured to be electrically connected to at least the photovoltaic terminal L line and the photovoltaic terminal N line. That is, the photovoltaic terminal of one connector 1100 is used to independently connect to the photovoltaic terminal L line, and at the same time, the photovoltaic terminal of one connector 1100 is used to independently connect to the photovoltaic terminal N line. Regarding the connection of the ground interface 1200 to the photovoltaic terminal ground and the load terminal ground, in one embodiment, the connector 100 includes a conductive core 1300. The conductive core 1300 is disposed at the ground interface 1200 of the terminal 1000. The conductive core 1300 may be made of a conductive material, and therefore, based on its conductivity, the conductive core 1300 can be configured to electrically connect the photovoltaic terminal ground and the load terminal ground of the load cable 200. Alternatively, in one embodiment, the conductive core 1300 is disposed at the ground interface 1200 of the terminal 1000, and the conductive core 1300 may be defined to have at least one internal channel 1310. The internal channel 1310 is configured to pass through at least one of the load terminal ground and the photovoltaic terminal ground, thereby electrically connecting the photovoltaic terminal ground and the load terminal ground of the load cable 200 within the internal channel 1310. Referring to Figure 4, in one embodiment, the grounding interface 1200 includes a grounding chamber 1210 formed inside the terminal block 1000. The grounding chamber 1210 is in a state of being open at both ends, that is, the grounding chamber 1210 has a first grounding cavity opening and a second grounding cavity opening that are open through the terminal block 1000. The conductive core 1300 is disposed in the grounding chamber 1210. At this time, the first grounding cavity opening can be configured for passing through the load end ground wire of the load end cable 200, and the second grounding cavity opening can be configured for passing through the photovoltaic end ground wire. Thus, the load end ground wire and the photovoltaic end ground wire can be electrically connected to the conductive core 1300 in the grounding chamber 1210, thereby realizing the electrical connection between the load end ground wire and the photovoltaic end ground wire. Referring again to Figure 5, in one embodiment, the grounding chamber 1210 may have at least one locking port 1220 through the terminal block 1000, and the core channel 1310 has at least one interface 1320 through the conductive core 1300. The interface 1320 is configured to connect with the locking port 1220, that is, as shown in Figure 5, after the conductive core 1300 is assembled into the grounding chamber 1210, the locking port 1220 can correspond one-to-one with the interface 1320, thereby forming a connection. At this time, the locking port 1220 and the mating port 1320 can be configured to simultaneously insert the locking member 1230. When the locking member 1230 is inserted into the locking port 1220 and the mating port 1320, the locking member 1230 can make contact with at least one of the internal load terminal ground wire and photovoltaic terminal ground wire, so that the locking member 1230 can be configured to lock at least one of the load terminal ground wire and photovoltaic terminal ground wire relative to the conductive core 1300. The end of the locking member 1230 can be provided as an internal hexagonal slot or a cross slot to solve the problems of tool simplicity and universality. It should be noted that the structural design of the grounding chamber 1210 is the same in both the single-phase connector embodiment shown in Figure 8 and the three-phase connector embodiment shown in Figure 9. Therefore, the internal structural design of the grounding chamber 1210 can be referenced to the single-phase connector or the three-phase connector. For example, referring to the grounding chamber 1210 in the single-phase connector in Figure 8, the grounding chamber 1210 has a first locking port 1220 that passes through the terminal 1000. In the embodiment shown in Figure 10, the conductive core 1300 has a first internal channel 1310 inside, and the first internal channel 1310 has a first pair of interfaces 1320 that pass through the conductive core 1300. The first pair of interfaces 1320 is configured to connect with the first locking port 1220. The first locking port 1220 and the first pair of interfaces 1320 are configured to allow the locking member 1230 to pass through. The locking member 1230 is configured to lock the load terminal ground wire relative to the conductive core 1300. Meanwhile, the grounding chamber 1210 has a second locking port 1220 that passes through the terminal block 1000, and the interior of the conductive core 1300 has a second core channel 1310. The first core channel 1310 and the second core channel 1310 are two independent core channels 1310 that are not connected. The second core channel 1310 has a second pair of interfaces 1320 that pass through the conductive core 1300. The second pair of interfaces 1320 is configured to connect with the second locking port 1220. The second locking port 1220 and the second pair of interfaces 1320 are configured to allow the installation of a locking member 1230. The locking member 1230 is configured to lock the photovoltaic ground wire relative to the conductive core 1300. As can be seen from the above, when the first inner core channel 1310 and the second inner core channel 1310 are two independent inner core channels 1310 that are not connected, the load end ground wire and the photovoltaic end ground wire can be respectively passed through the first inner core channel 1310 and the second inner core channel 1310, and then formed an electrical connection based on the conductive core 1300. At this time, the load end ground wire and the photovoltaic end ground wire are located in the independent first inner core channel 1310 and the second inner core channel 1310, respectively, and can form a waterproof isolation at the level of the conductive core 1300, thereby ensuring the sealing and waterproof performance between the load end ground wire and the photovoltaic end ground wire to a certain extent. Regarding the sealed assembly between the load-side ground wire and the photovoltaic-side ground wire, in one embodiment, continuing to refer to Figure 5, the conductive core 1300 can be sealed and assembled into the grounding chamber 1210 by at least one sealing element 1400, thereby achieving a waterproof seal between the load-side ground wire and the photovoltaic-side ground wire through the sealing element 1400. For example, the sealing element 1400 can be disposed between the outside of the conductive core 1300 and the inner wall of the grounding chamber 1210, thereby isolating the grounding chamber 1210 in segments between the conductive core 1300 and the grounding chamber 1210, so that the first grounding cavity opening and the second grounding cavity opening of the grounding chamber 1210 are sealed and isolated by the sealing element 1400, forming a sealed and isolated waterproof state between the load end and the photovoltaic end. The seal 1400 can adopt various structures, such as a sealing ring, sealing putty, or sealing sleeve, and is not limited thereto. In one embodiment, the seal 1400 can be configured as a sealing ring, which is fitted over the conductive core 1300 and located approximately at the center of the conductive core 1300. This allows the conductive core 1300 to seal against the inner wall of the grounding chamber 1210 through the sealing ring, and to waterproofly seal and isolate the first and second grounding chamber openings of the grounding chamber 1210 at approximately the center of the conductive core 1300. The compression dimension of the sealing ring relative to the inner wall of the grounding chamber 1210 can be designed to be 0.5 mm, and the compression dimension of the sealing ring relative to the conductive core 1300 can be designed to be 0.3 mm, with a dimensional tolerance of ±0.1 mm. Referring again to Figure 5, at least one limiting member 1500 is provided inside the grounding chamber 1210. The conductive core 1300 is limited and assembled in the grounding chamber 1210 by at least one limiting member 1500. Based on the limiting function of the limiting member 1500, the conductive core 1300 can be confined within the grounding chamber 1210 after being assembled, preventing the conductive core 1300 from detaching or misaligning or moving unexpectedly within the grounding chamber 1210. In one embodiment, at least one limiting member 1500 is provided inside the grounding chamber 1210. The limiting member 1500 is configured as a limiting buckle, which can be located at the first grounding cavity opening or the second grounding cavity opening of the grounding chamber 1210, so that the limiting member 1500 has a buckle limiting and anti-loosening function, realizing a quick assembly function. Therefore, when the conductive core 1300 is inserted into the grounding chamber 1210 from the first grounding cavity port or the second grounding cavity port, one end of the conductive core 1300 can be configured to abut against the inner wall of the grounding chamber 1210, while the other end of the conductive core 1300 is configured to engage with the limiting buckle for limiting, so that the conductive core 1300 can be restricted in the grounding chamber 1210 based on the limiting buckle. Regarding the device housing 2000 of connector 100, as shown in Figures 7 and 8, in one embodiment, the device housing 2000 may have a housing cavity with both ends extending through it, forming a cavity structure with both ends extending through it. In this case, the device housing 2000 can be assembled outside the terminal 1000, providing protection for the terminal 1000. Moreover, when the device housing 2000 is assembled outside the terminal 1000, a sealed and waterproof structure can be constructed between the device housing 2000 and the terminal 1000 as needed. For example, a sealing ring can be provided between the device housing 2000 and the terminal 1000, so that after the device housing 2000 is assembled outside the terminal 1000, it can form a sealed assembly for at least a part of the structure of the terminal 1000, achieving waterproof protection. It is possible to limit the assembly of a part or all of the structure of the terminal 1000 into the housing cavity of the device housing 2000 according to actual needs, and no limitation is made here. In one embodiment, the device housing 2000 may be provided with a locking mechanism 2100, which includes a deformation cylinder and a locking sleeve. The deformation cylinder is located in the device housing 2000, and its cavity communicates with the housing cavity of the device housing 2000. The locking sleeve is movably sleeved on the outside of the deformation cylinder and is configured to change the radial dimension of at least a portion of the cavity of the deformation cylinder. Therefore, the radial dimension of at least a portion of the cavity of the deformation cylinder has a certain degree of deformation capability, which allows the radial dimension of at least a portion of the cavity to change, thereby adapting to load-end cables 200 of different diameters when at different radial dimensions. For example, in one embodiment, the deformation cylinder has several linear slits, each extending linearly along the axial direction of the deformation cylinder. These linear slits are distributed circumferentially along the deformation cylinder. A portion of the deformation cylinder is divided into deformation arms based on adjacent linear slits, forming several deformation arms along the circumferential direction of the deformation cylinder. Since these deformation arms are independent structures, they can be brought closer together or separated from each other. Therefore, the radial dimension of a portion of the deformation cylinder can be changed based on the mutual approach or separation of these deformation arms. At this time, the locking sleeve can be fitted onto the deformation cylinder, and several deformation arms can be configured to move closer to each other based on the locking force of the locking sleeve, thereby reducing the radial dimension of that part of the deformation cylinder, or when the locking sleeve is disengaged from the deformation cylinder, the radial dimension of that part of the deformation cylinder automatically recovers and increases, thereby changing the radial dimension of at least a part of the cavity of the deformation cylinder in this way. In addition, part of the deformable cylinder can be made of flexible materials. For example, at least a portion of the deformable cylinder can be made of silicone, making the deformable cylinder a silicone component. Based on the flexible properties of silicone, the radial dimension of the deformable cylinder can be changed, which is not limited here. In some possible implementations, the deformable cylinder can also be provided with an elastic element. The elastic element has a through hole in the middle, through which the load-end cable 200 can pass. When the deformable cylinder deforms, the elastic element undergoes elastic deformation, compressing the load-end cable 200. The entrance of the through hole changes from circular to conform to the outer surface of the load-end cable 200, thereby achieving a seal inside the connector. When the device housing 2000 and the terminal block 1000 are interconnected, in one embodiment, a first latching member 2200 is provided on the outside of the device housing 2000. The device housing 2000 is snapped into the outside of the terminal block 1000 via the first latching member 2200, thereby achieving assembly of the device housing 2000 relative to the terminal block 1000. Alternatively, a second latching member 2300 may be provided in the housing cavity of the device housing 2000. The device housing 2000 is snapped into the terminal block 1000 via the second latching member 2300, thereby achieving assembly of the device housing 2000 relative to the terminal block 1000. The first latching member 2200 and the second latching member 2300 may coexist or only one may be present; this is not limited here. Regarding the first mounting component 2200, in one embodiment, the first mounting component 2200 may include a mounting rotating arm 2210 and a mounting cover plate 2220 connected to each other. The mounting rotating arm 2210 is rotatably mounted on the outside of the device housing 2000. The mounting cover plate 2220 is provided with a mounting groove 2221, and the outside of the terminal 1000 is provided with a mounting post 2222. When the mounting rotating arm 2210 rotates relative to the device housing 2000, the mounting cover plate 2220 will move synchronously relative to the device housing 2000. At this time, when the mounting groove 2221 of the mounting cover plate 2220 is engaged with the mounting post 2222 of the terminal 1000, the device housing 2000 can be assembled with the terminal 1000. When the mounting groove 2221 of the mounting cover plate 2220 is separated from the mounting post 2222 of the terminal 1000, the device housing 2000 can be separated from the terminal 1000. The snap-on cover 2220 is a cover structure. Therefore, when the device housing 2000 is assembled with the terminal block 1000, the snap-on cover 2220 can be configured to cover at least a portion of the outer wall area of ​​the terminal block 1000, thus providing protection to that area. Regarding the material design of the first snap-on component 2200, the first snap-on component 2200 can be made of metal or plastic. When the first snap-on component 2200 is assembled relative to the device housing 2000, the snap-on cover 2220 of the first snap-on component 2200 can be completely fitted onto the device housing 2000, or only half of it can be fitted. Those skilled in the art can choose the assembly method between the snap-on cover 2220 and the device housing 2000 according to actual needs, and no limitation is made here. This application also provides a connector system, which includes a connector 100. The photovoltaic terminals of several terminals 1100 of the connector 100 are directly or indirectly connected to a power converter 500. For example, the photovoltaic terminals of the several terminals 1100 can be indirectly connected to the power converter 500 via photovoltaic terminal cables 300. The load terminals of the several terminals 1100 of the connector 100 are connected to a load 400 via load terminal cables 200. The connector system may include a female plug, which can be disposed on either the power converter 500 or the photovoltaic terminal cables 300, thereby allowing the female plug to be configured for mating with the male plug 1600 of the terminals 1000 of the connector 100 in either a direct or indirect connected state. Alternatively, the flyer adapters 1011 of several flyer terminals 1010 of connector 100 can be directly or indirectly connected to power converter 500. For example, the flyer adapters 1011 of several flyer terminals 1010 can be indirectly connected to power converter 500 via photovoltaic terminal cable 300, and the load terminals of several connectors 1100 of connector 100 are connected to load 400 via load terminal cable 200. The connector system may include a female plug, which can be disposed on either power converter 500 or photovoltaic terminal cable 300, thereby enabling the female plug to be configured for mating with male plugs 1600 of flyer terminals 1010 of connector 100 in a direct or indirect connected state. Referring to Figure 9, this application provides a photovoltaic system including at least one of a power converter 500 and a load 400. The number of power converters 500 or loads 400 can be two or more, for example, three power converters 500 and one load 400 as shown in Figure 13. In this case, the aforementioned connector system can be connected to at least one of the power converters 500 and the load 400. The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0001] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. A connector characterized by comprising: The connector includes: The terminal block has several connectors inside, each connector having a load end and a photovoltaic end. The load end is configured to connect several core wires to a load end cable, and the photovoltaic end is configured to be electrically connected directly or indirectly to a power converter.

2. The connector of claim 1, wherein The terminal block has a terminal chamber inside, and a plurality of the wiring components are disposed in the terminal chamber.

3. The connector of claim 1, wherein The photovoltaic terminals of several of the aforementioned connectors are configured to be connected to a power converter via photovoltaic terminal cables.

4. The connector of claim 1, wherein The terminal block is internally provided with at least two of the aforementioned connectors. The load-side cable has several core wires, including a load-side L wire, a load-side N wire, and a load-side ground wire. The load ends of the aforementioned connectors are configured to be electrically connected to at least the load-side L wire and the load-side N wire.

5. The connector of claim 1, wherein, The terminal block has a male plug, and a plurality of the photovoltaic terminals of the terminal blocks are disposed on the male plug, which is configured to be plugged into the female plug of the photovoltaic terminal cable or the power converter.

6. The connector of claim 4, wherein, The terminal block is provided with a ground wire interface, which is configured to connect the photovoltaic end ground wire and the load end ground wire of the load end cable.

7. The connector of claim 3 or 5, wherein The photovoltaic terminal cable has several core wires, including a photovoltaic terminal L wire and a photovoltaic terminal N wire, or a photovoltaic terminal L wire, a photovoltaic terminal N wire and a photovoltaic terminal ground wire; wherein, at least two of the terminal blocks are provided inside the terminal block, and the photovoltaic terminals of the terminal blocks are configured to be electrically connected to at least the photovoltaic terminal L wire and the photovoltaic terminal N wire.

8. The connector of claim 6, wherein, The connector includes a conductive core disposed at the ground interface of the terminal block, the conductive core being configured for electrically connecting the photovoltaic ground wire and the load ground wire of the load cable.

9. The connector of claim 6, wherein, The connector includes a conductive core disposed at the ground interface of the terminal block, and the conductive core has at least one internal channel configured to pass through at least one of the load-side ground wire and the photovoltaic-side ground wire, thereby electrically connecting the photovoltaic-side ground wire and the load-side ground wire of the load-side cable.

10. The connector of claim 9, wherein, The grounding interface includes a grounding cavity opened inside the terminal block. The grounding cavity has a first grounding cavity opening and a second grounding cavity opening that pass through the terminal block. The conductive core is disposed in the grounding cavity. The first grounding cavity opening is configured for passing through the load-end grounding wire of the load-end cable, and the second grounding cavity opening is configured for passing through the photovoltaic-end grounding wire.

11. The connector of claim 10, wherein, The conductive core is sealed and assembled into the grounding chamber by at least one sealing element.

12. The connector of claim 10, wherein, The grounding chamber is provided with at least one limiting member, and the conductive core is limited and assembled in the grounding chamber by at least one of the limiting members.

13. The connector of claim 11, wherein, The grounding chamber has at least one locking port through the terminal block, and the core channel has at least one connecting port through the conductive core. The connecting port is configured to communicate with the locking port. The locking port and the connecting port are configured to allow a locking element to pass through. The locking element is configured to lock at least one of the load terminal ground wire and the photovoltaic terminal ground wire relative to the conductive core.

14. The connector of claim 11, wherein, The sealing element is disposed between the outside of the conductive core and the inner wall of the grounding chamber, and the first grounding cavity opening and the second grounding cavity opening of the grounding chamber are sealed and isolated by the sealing element.

15. The connector of claim 12, wherein, At least one limiting member is provided inside the grounding chamber. The limiting member is configured as a limiting buckle. The limiting buckle is located at the first grounding cavity opening or the second grounding cavity opening of the grounding chamber. One end of the conductive core is configured to abut against the inner wall of the grounding chamber, and the other end of the conductive core is configured to engage with the limiting buckle for limiting.

16. The connector of claim 14, wherein, The sealing element is configured as a sealing ring, which is fitted over the outside of the conductive core, and the conductive core is sealed to the inner wall of the grounding chamber through the sealing ring.

17. The connector of claim 13, wherein, The grounding chamber has a first locking port through the terminal block, the conductive core has a first core channel inside, the first core channel has a first pair of interfaces through the conductive core, the first pair of interfaces is configured to connect with the first locking port, the first locking port and the first pair of interfaces are configured to pass through a locking member, and the locking member is configured to lock the load terminal ground wire relative to the conductive core. The grounding chamber has a second locking port that passes through the terminal block. The conductive core has a second internal channel inside. The first internal channel and the second internal channel are two independent internal channels that are not connected. The second internal channel has a second pair of interfaces that pass through the conductive core. The second pair of interfaces is configured to connect with the second locking port. The second locking port and the second pair of interfaces are configured to allow a locking member to pass through. The locking member is configured to lock the photovoltaic ground wire relative to the conductive core.

18. The connector of claim 1, wherein, The connector includes: The device housing has a housing cavity with two through-holes inside. The device housing is assembled to the outside of the terminal block. At least a portion of the terminal block is located in the housing cavity of the device housing.

19. The connector of claim 18, wherein, The device housing is provided with a locking mechanism, which includes a deformation cylinder and a locking sleeve. The deformation cylinder is located in the device housing, and the cylinder cavity of the deformation cylinder communicates with the housing cavity of the device housing. The locking sleeve is movably sleeved on the outside of the deformation cylinder, and the locking sleeve is configured to change the radial dimension of at least a portion of the cylinder cavity of the deformation cylinder.

20. The connector of claim 19, wherein, The deformation cylinder has a plurality of linear slits, each of which extends linearly along the axial direction of the deformation cylinder. The plurality of linear slits are distributed along the circumference of the deformation cylinder. A portion of the deformation cylinder is divided into deformation arms based on adjacent linear slits. The plurality of linear slits form a plurality of deformation arms along the circumference of the deformation cylinder. The plurality of deformation arms are configured to come closer to each other based on the locking force of the locking sleeve, thereby changing the radial dimension of at least a portion of the cavity of the deformation cylinder.

21. The connector of claim 18, wherein, The device housing is provided with a first mounting component on its exterior, and the device housing is assembled with the external terminal block via the first mounting component.

22. The connector of claim 18, wherein, A second mounting component is provided in the housing cavity of the device housing, and the device housing is assembled with the wiring terminal through the second mounting component.

23. The connector according to claim 21, characterized in that, The first mounting component includes a mounting arm and a mounting cover plate connected to each other. The mounting arm is rotatably mounted on the outside of the device housing. The mounting cover plate is provided with a snap-fit ​​groove. The outside of the terminal block is provided with a snap-fit ​​post. The snap-fit ​​groove of the mounting cover plate is configured to snap-fit ​​with the snap-fit ​​post of the terminal block. The mounting cover plate is configured to cover at least a portion of the outer wall area of ​​the terminal block.

24. The connector according to claim 1, characterized in that, The connector includes: The number of flying wire terminals is configured to be at least two, and each flying wire terminal is provided with at least two flying wire adapters inside. The flying wire adapters are configured to be electrically connected directly or indirectly to a power converter. The photovoltaic end of each of the terminals is configured to be electrically connected to at least one of the flying wire adapters in at least one of the flying wire terminals.

25. The connector according to claim 24, characterized in that, Each of the flying wire terminals is provided with two flying wire adapters inside, and the two flying wire adapters of each flying wire terminal are an L-line adapter and an N-line adapter, respectively; the photovoltaic end of one of the terminals is configured to be electrically connected to at least one L-line adapter in the flying wire terminal, and the photovoltaic end of one of the terminals is configured to be electrically connected to at least one N-line adapter in the flying wire terminal.

26. The connector according to claim 24, characterized in that, At least one of the flying wire terminals is electrically connected to the terminal block of the terminal block via at least one flying wire cable.

27. The connector according to claim 25, characterized in that, The L-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminals of several different terminals of the terminal block, and the N-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block.

28. The connector according to claim 25, characterized in that, The N-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminals of several different terminals of the terminal block, and the L-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block.

29. The connector according to claim 25, characterized in that, The L-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminals of several different terminals of the terminal block, and the N-line adapters of several flying wire terminals are electrically connected to the photovoltaic terminals of several different terminals of the terminal block.

30. The connector according to claim 25, characterized in that, The L-line adapters of several of the flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block, and the N-line adapters of several of the flying wire terminals are electrically connected to the photovoltaic terminal of one of the terminals of the terminal block.

31. The connector according to claim 24, characterized in that, The terminal block has a terminal chamber inside, and a plurality of the wiring components are disposed in the terminal chamber.

32. The connector according to claim 24, characterized in that, The flying wire terminal has an internal cavity, and a plurality of flying wire adapters are disposed in the internal cavity.

33. The connector according to claim 24, characterized in that, The flying wire adapter is configured to connect to the power converter via a photovoltaic terminal cable.

34. The connector according to claim 24, characterized in that, The flying wire terminal has a male plug, and a plurality of flying wire adapters are disposed on the male plug, the male plug being configured to be plugged into a female plug of a photovoltaic terminal cable or a power converter.

35. A connector system, characterized in that, The connector system includes a connector as described in any one of claims 1-23, wherein the photovoltaic terminals of a plurality of the connector's terminals are directly or indirectly connected to a power converter, and the load terminals of a plurality of the connector's terminals are connected to a load via load-end cables.

36. The connector system according to claim 35, characterized in that, The connector system includes: A female plug is provided on at least one of the power converter or photovoltaic terminal cable, and the female plug is configured to be mated with the male plug of the connector's wiring terminal.

37. A connector system, characterized in that, The connector system includes a connector as described in any one of claims 24-34, wherein the fly wire adapters of a plurality of the fly wire terminals of the connector are directly or indirectly connected to the power converter, and the load terminals of a plurality of the connector terminals are connected to the load via load terminal cables.

38. The connector system according to claim 37, characterized in that, The connector system includes: A female plug is provided on at least one of the power converter or photovoltaic terminal cable, and the female plug is configured to mate with the male plug of the flying wire terminal of the connector.

39. A photovoltaic system, characterized in that, The photovoltaic system includes: At least one of a power converter and a load, wherein the number of the power converter or the load is configured to be at least two; The connector system as described in any one of claims 35-38, wherein the connector system is connected to at least one of the power converter and the load.