Power utilization terminal load acquisition monitoring equipment for hybrid regulation and control architecture
By presetting the frequency threshold of the variable frequency temperature control load cluster under the hybrid control architecture, its virtual inertia support and primary frequency regulation capabilities are realized, solving the problem of high-level operation of the power grid load and effectively supporting the stability of the power grid frequency.
Patent Information
- Application Number
- CN202510341104.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2025-06-13
AI Technical Summary
In extreme weather events, the proportion of variable frequency temperature control loads has surged, resulting in high-level operation of the power grid. There is no effective solution to achieve the virtual inertia support and primary frequency regulation capabilities of variable frequency temperature control load clusters without the need for complex inertia control, real-time computing and wide-area real-time communication.
The frequency threshold preset strategy under the hybrid control architecture is adopted to orderly preset the frequency response threshold for the dispersed variable frequency temperature control load cluster, so that its overall power dynamically presents virtual inertia characteristics and sagging characteristics under the excitation of the grid frequency deviation.
The virtual inertia support and primary frequency regulation capability of variable frequency temperature control load cluster is realized, effectively supporting the stability of the power grid frequency.
Smart Images

Figure CN120149953A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power equipment, and particularly to a power consumption terminal load acquisition and monitoring device for a hybrid control architecture. Background Art
[0002] Under extreme weather events, the proportion of variable-frequency temperature-controlled loads surges, and the power grid operates at a high load. Under the trend of continuous reduction of the rotational reserve capacity and the continuous decline of the inertia level in the power system, exploring the frequency modulation potential of a large number of variable-frequency temperature-controlled loads is of great significance for supporting the frequency stability of the power grid. How to achieve the virtual inertia support ability and primary frequency modulation ability of a large-scale distributed variable-frequency temperature-controlled load cluster without complex inertia control, centralized real-time calculation, and wide-area instant communication requirements is currently without an effective solution. To address this problem, under the hybrid control architecture, a frequency threshold preset strategy is used to orderly preset the frequency response threshold of the distributed variable-frequency temperature-controlled load cluster, so that the overall power dynamics of the load cluster exhibit virtual inertia characteristics under the excitation of the power grid frequency change rate and droop characteristics under the excitation of the power grid frequency deviation. Theoretical derivation and simulation example studies have both confirmed the effectiveness of the above frequency threshold preset strategy in enabling virtual inertia support and primary frequency modulation support for the variable-frequency temperature-controlled load cluster.
[0003] However, it should be noted that the acquisition and monitoring of the load of the power consumption terminal under the hybrid control architecture is the basis for providing data for the hybrid control architecture. When acquiring and monitoring the load of the power consumption terminal, an intelligent electricity meter is required for acquisition. However, when the intelligent electricity meter is installed, generally the wires are directly installed in the terminal block below the electricity meter, and the terminal block is connected to the electricity meter. Therefore, when the electricity meter is damaged, the entire electricity meter can only be scrapped as a whole. At the same time, when operating at overload, the wires will heat up quickly. At this time, since the wires are bolt-connected to the electricity meter, if the electricity meter does not malfunction or there is no other reason to cut off the power in time, it is extremely easy to cause problems such as sparking and even fire due to overheating of the wires. And when there is a fire, it will directly burn the intelligent electricity meter. Since both the electricity meter and the wires have considerable economic value, the burning of the wire box and the electricity meter will cause serious economic losses. Summary of the Invention
[0004] The purpose of the present invention is to provide a power consumption terminal load acquisition and monitoring device for a hybrid control architecture to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solutions:
[0006] An electrical terminal load acquisition and monitoring device for a hybrid control architecture, which includes an intelligent meter main body and a wiring seat. One side of the intelligent meter main body is equipped with a display screen and a plurality of operation buttons. The wiring seat is connected to the back of the intelligent meter main body, and a plurality of tightening bolts are threadedly installed on the wiring seat;
[0007] It further includes a transfer protection device, which is installed on the back of the intelligent meter main body, and the transfer protection device mounts the wiring seat on the intelligent meter main body; the transfer protection device includes a transfer frame, which is installed on the intelligent meter main body. A plurality of conductive slots are opened on one side of the intelligent meter main body. A plurality of conductive columns are installed on one side of the wiring seat, and the plurality of conductive columns are respectively inserted into the plurality of conductive slots. A ceramic isolation protection plate is slidably installed on the transfer frame;
[0008] An auxiliary covering device is installed on the transfer protection device, and the auxiliary covering device is used to cover and extinguish fire for the wiring seat; the auxiliary covering device includes two rotating frames, which are respectively rotatably installed on both sides of the transfer frame. A storage box is installed on the two rotating frames, and fire extinguishing sand is filled in the storage box. A sealing plate for sealing is installed on one side of the storage box;
[0009] An active protection device is also installed on the transfer protection device, and the active protection device is used to actively protect the display screen; the active protection device includes a mounting frame, which is installed on one side of the intelligent meter main body. The display screen is located within the mounting frame. Two protection rotating plates are rotatably installed on one side of the mounting frame, and the two protection rotating plates rotate and close to protect the display screen.
[0010] Further, in a preferred embodiment of the present invention, the transfer protection device further includes two pushing frames, and both of the two pushing frames are movably installed on one side of the wiring seat;
[0011] Two insertion slots are opened on one side of the transfer frame, and the two pushing frames are respectively inserted into the two insertion slots.
[0012] Further, in a preferred embodiment of the present invention, two pushing grooves are opened on one side of the wiring seat, and the two pushing frames are respectively movably installed in the two pushing grooves. A pushing spring is installed on the inner wall of one side of the pushing groove, and the other end of the pushing spring is installed on the pushing frame;
[0013] Two lifting grooves are opened on the top side of the wiring seat, and positioning lifting rods are movably installed in both of the two lifting grooves. Two locking grooves are opened on the bottom side of the transfer frame, and the top ends of the two positioning lifting rods are respectively inserted into the two locking grooves.
[0014] Further, in a preferred embodiment of the present invention, a connecting strip is provided on the top side of the adapter frame, and two adsorption magnets are installed on the connecting strip. The two adsorption magnets are used to adsorb and lift the two positioning lifting rods;
[0015] Two positioning grooves are formed on the top side of the adapter frame, and the two adsorption magnets are respectively inserted into the two positioning grooves.
[0016] Further, in a preferred embodiment of the present invention, a plurality of positioning sliding grooves are formed on the back surface of the smart meter main body, and the conductive posts move into the conductive slots along the positioning sliding grooves.
[0017] Further, in a preferred embodiment of the present invention, the auxiliary covering device further includes two mounting shafts, the two mounting shafts are respectively rotatably mounted on both sides of the adapter frame, and two rotating frames are respectively mounted on the two mounting shafts;
[0018] Driven gears are sleeved on the two mounting shafts, and rack frames are meshed with the two driven gears;
[0019] Pressing blocks are installed on both sides of the ceramic isolation guard plate, and the ceramic isolation guard plate descends to squeeze the two rack frames to move through the two pressing blocks.
[0020] Further, in a preferred embodiment of the present invention, pressing rods are installed on the bottom sides of the two rack frames, and two pressing grooves are formed on the top side of the adapter frame. The two pressing rods are respectively movably installed in the two pressing grooves;
[0021] A return spring is installed at the bottom end of the pressing rod, and the bottom end of the return spring is installed on the inner wall of the bottom side of the pressing groove.
[0022] Further, in a preferred embodiment of the present invention, connecting seats are rotatably installed on the top side and the bottom side of the protection rotating plate, and the two connecting seats are both installed on the installation frame;
[0023] A connecting shaft is rotatably installed in the connecting seat, the connecting shaft is installed on the protection rotating plate, and a rotating plate is installed on one of the connecting shafts located below the smart meter main body.
[0024] Further, in a preferred embodiment of the present invention, a torsion groove is formed in the connecting seat, and the connecting shaft is rotatably installed in the torsion groove;
[0025] A torsion spring is installed on the connecting shaft, and the other end of the torsion spring is installed on the inner wall of the torsion groove.
[0026] Furthermore, in a preferred embodiment of the present invention, a transverse movement frame is movably installed on the bottom side of the adapter frame. A driving frame is installed on the transverse movement frame. The driving frame is used to squeeze the rotating plate, and the wiring base squeezes the driving frame to move;
[0027] Two transverse movement grooves are formed on the bottom side of the adapter frame. The two transverse movement frames are respectively slidably installed in the two transverse movement grooves.
[0028] The beneficial effects of an electricity consumption terminal load acquisition and monitoring device for a hybrid control architecture proposed by the present invention are:
[0029] In the present invention, through the arrangement of the wiring base and the adapter protection device, when installing the intelligent meter main body, the electric wire is installed on the back of the intelligent meter main body through the wiring base, and is locked by the adsorption magnet, so that the electric wire can be hidden. At the same time, it can prevent unfamiliar people from removing the intelligent meter main body, playing an effective anti-theft role. In addition, when the electricity consumption load is too high and the electric wire overheats, the whole wiring base gets hot, which causes the adsorption magnet to lose its adsorption force. At this time, the positioning lifting rod falls under the action of gravity and disengages from the adapter frame. At this time, under the resilience of the two push springs, the two push frames are pushed to move, and the intelligent meter main body is pushed out. At the same time, the conductive column disengages from the conductive socket. At this time, under the weight of the ceramic isolation guard plate, it falls and isolates and insulates the conductive column, playing a role of emergency separation protection and avoiding the problem of fire caused by continuous high heat.
[0030] Furthermore, in the present invention, through the arrangement of the auxiliary covering device, if a fire occurs, first the intelligent meter main body is pushed out, and the ceramic isolation guard plate is used for insulation and fire separation. At the same time, when the intelligent meter main body is pushed out of the ceramic isolation guard plate, the ceramic isolation guard plate squeezes the two rack frames to move through the two pressing blocks. The rack frame moves vertically in the pressing groove through the pressing rod, and drives the return spring to be stressed. The movement of the rack frame drives the driven gear to rotate. The driven gear drives the rotating frame to rotate through the installation shaft, so that the rotating frame drives the storage box to rotate above the wiring base, and the closing plate is burned by the fire, so that the fire extinguishing sand in the storage box flows out to cover the wiring base for fire extinguishing, realizing the function of automatic fire extinguishing. When there is no fire, the closing plate remains intact and will not flow out, avoiding the waste of fire extinguishing sand.
[0031] Even further, in the present invention, through the arrangement of the active protection device, when the intelligent meter is not installed or is pushed out, the driving frame is not squeezed by the wiring base. At this time, under the resilience of the torsion spring, the connecting shaft is driven to rotate, so that the connecting shaft drives the protection rotating plate to rotate, and the protection rotating plate closes and protects the display screen, avoiding the problem that the display screen is damaged by collision or high-temperature fire when not installed, and ensuring the safety of the intelligent meter main body. Description of the Drawings
[0032] Figure 1 Schematic three - dimensional structure diagram of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0033] Figure 2 Schematic back - side structure diagram of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0034] Figure 3 For an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention Figure 2 Schematic structure diagram of part A;
[0035] Figure 4 Schematic structure diagram of the connection between the adapter frame and the rotating frame and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0036] Figure 5 Schematic cross - sectional structure diagram of the connection between the wiring base and the push - out frame and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0037] Figure 6 Schematic partial structure diagram of the connection between the adapter frame and the installation shaft and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0038] Figure 7 Schematic partial cross - sectional structure diagram of the connection between the adapter frame and the positioning lifting rod and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0039] Figure 8 Schematic cross - sectional structure diagram of the connection between the adapter frame and the pressing rod and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0040] Figure 9 Schematic structure diagram of the connection between the installation frame and the protection rotating plate and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention;
[0041] Figure 10 Schematic partial cross - sectional structure diagram of the connection between the connection seat and the rotating plate and other structures of an electricity consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by an embodiment of the present invention.
[0042] In the figure: 1-smart meter body; 2-display screen; 3-operation button; 4-terminal block; 5-tightening bolt; 6-transfer protection device; 601-transfer frame; 602-conductive slot; 603-positioning slide slot; 604-conductive column; 605-ceramic isolation guard plate; 606-plug slot; 607-ejection frame; 608-ejection slot; 609-ejection spring; 610-lifting slot; 611-positioning lifting rod; 612-locking slot; 613-connecting strip; 614-positioning slot; 615-adsorption magnet; 7- Auxiliary covering device; 701-rotating frame; 702-storage box; 703-closing plate; 704-installing shaft; 705-driven gear; 706-rack frame; 707-down pressure block; 708-down pressure rod; 709-down pressure groove; 710-rebound spring; 8-active protection device; 801-installing frame; 802-protection rotating plate; 803-transverse frame; 804-driving frame; 805-connecting seat; 806-rotating plate; 807-connecting shaft; 808-torsion groove; 809-torsion spring; 810-transverse groove. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings here can be arranged and designed in various different configurations.
[0044] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention claimed for protection, but merely represents selected embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0045] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, further definition and explanation thereof is not required in subsequent drawings.
[0046] In addition, in the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the inventive product is customarily placed during use. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In addition, the terms "first", "second", "third", etc. are only used for distinguishing descriptions and should not be construed as indicating or implying relative importance.
[0047] In addition, terms such as "horizontal", "vertical", "perpendicular", etc. do not mean that the component is required to be absolutely vertical, but can be slightly inclined. For example, "vertical" only means that its direction is more vertical relative to "horizontal", and does not mean that the structure must be completely vertical, but can be slightly inclined.
[0048] In the description of the present invention, it should also be noted that unless otherwise clearly specified and defined, the terms "set", "installed", "connected", "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0049] Please refer to the accompanying specification Figures 1-10 As shown in the figure, the power consumption terminal load acquisition and monitoring device for a hybrid control architecture provided by an embodiment of the present invention includes an intelligent meter main body 1 and a wiring seat 4. A display screen 2 and a plurality of operation buttons 3 are installed on one side of the intelligent meter main body 1. The wiring seat 4 is connected to the back of the intelligent meter main body 1, and a plurality of tightening bolts 5 are threadedly installed on the wiring seat 4.
[0050] Further, please refer to the accompanying specification Figures 3-7An embodiment of the present invention provides a power terminal load collection and monitoring device for a hybrid control architecture, which also includes a transfer protection device 6, which is installed on the back of the smart meter body 1, and the transfer protection device 6 installs the terminal block 4 on the smart meter body 1; the transfer protection device 6 includes a transfer frame 601, which is installed on the smart meter body 1, and a plurality of conductive slots 602 are provided on one side of the smart meter body 1, and a plurality of conductive columns 604 are installed on one side of the terminal block 4, and the plurality of conductive columns 604 are respectively inserted into the plurality of conductive slots 602, and a ceramic isolation guard plate 605 is slidably installed on the transfer frame 601. It should be noted that in the embodiment of the present invention, when the power load is too high and the wires overheat, the terminal block 4 heats up as a whole, causing the adsorption magnet 615 to lose its adsorption force, so that the smart meter body 1 is pushed out, and at the same time, the conductive column 604 is separated from the conductive slot 602. At this time, it falls under the weight of the ceramic isolation guard plate 605, and the conductive column 604 is isolated and insulated, which plays a role of emergency separation protection and avoids the problem of fire caused by continuous high heat.
[0051] More specifically, in the embodiment of the present invention, an auxiliary covering device 7 is installed on the transfer protection device 6, and the auxiliary covering device 7 is used to cover and extinguish the wiring seat 4; the auxiliary covering device 7 includes two rotating frames 701, and the two rotating frames 701 are respectively rotatably installed on both sides of the transfer frame 601, and the two rotating frames 701 are installed with storage boxes 702, and the storage boxes 702 are filled with fire extinguishing sand, and a sealing plate 703 for sealing is installed on one side of the storage box 702. It should be noted that in the embodiment of the present invention, when a fire occurs, the smart meter body 1 is pushed out, and the two rotating frames 701 drive the storage box 702 to rotate to the top of the wiring seat 4, at this time, the sealing plate 703 is burned by the fire, so that the fire extinguishing sand in the storage box 702 flows out to cover the wiring seat 4 to extinguish the fire, and the function of automatic fire extinguishing is realized. When there is no fire, the sealing plate 703 remains intact and will not flow out, thereby avoiding the waste of fire extinguishing sand.
[0052] More specifically, the transfer protection device 6 is also equipped with an active protection device 8, which is used to actively protect the display screen 2; the active protection device 8 includes a mounting frame 801, which is mounted on one side of the smart meter body 1, and the display screen 2 is located in the mounting frame 801. Two protective rotating plates 802 are rotatably mounted on one side of the mounting frame 801, and the two protective rotating plates 802 are rotated and closed to provide closed protection for the display screen 2. It should be noted that in the embodiment of the present invention, when the smart meter body 1 is not installed or pushed out, the two protective rotating plates 802 rotate to provide closed protection for the display screen 2, so as to avoid the display screen 2 from being damaged by collision or high temperature fire when it is not installed, thereby ensuring the safety of the smart meter body 1.
[0053] Please continue to refer to the attached drawings of the specification Figures 3-7 Furthermore, for the power consumption terminal load acquisition and monitoring device used in the hybrid regulation architecture provided by the embodiments of the present invention, the transfer protection device 6 further includes two push-out frames 607, and both of the two push-out frames 607 are movably installed on one side of the wiring base 4;
[0054] In addition, two insertion slots 606 are formed on one side of the transfer frame 601, and the two push-out frames 607 are respectively inserted into the two insertion slots 606. It should be noted that in the embodiments of the present invention, when the smart meter main body 1 is separated from the wiring base 4, under the resilience of the two push-out springs 609, the two push-out frames 607 are pushed to move, thereby achieving the purpose of automatically pushing out the smart meter main body 1.
[0055] More specifically, in the embodiments of the present invention, two push-out slots 608 are formed on one side of the wiring base 4, and the two push-out frames 607 are respectively movably installed in the two push-out slots 608. A push-out spring 609 is installed on the inner wall of one side of the push-out slot 608, and the other end of the push-out spring 609 is installed on the push-out frame 607;
[0056] In addition, two lifting slots 610 are formed on the top side of the wiring base 4, and positioning lifting rods 611 are movably installed in both of the two lifting slots 610. Two locking slots 612 are formed on the bottom side of the transfer frame 601, and the top ends of the two positioning lifting rods 611 are respectively inserted into the two locking slots 612. It should be noted that in the embodiments of the present invention, when the power consumption load is too high and the wire gets overheated, the whole wiring base 4 gets heated, thus causing the adsorption magnet 615 to lose its adsorption force. At this time, the positioning lifting rod 611 falls under the action of gravity and disengages from the transfer frame 601. At this time, under the resilience of the two push-out springs 609, the two push-out frames 607 are pushed to move, and the smart meter main body 1 is pushed out. At the same time, the conductive column 604 is disengaged from the conductive insertion slot 602. At this time, under the weight of the ceramic isolation guard plate 605, it falls and isolates and insulates the conductive column 604, playing a role of emergency separation protection and avoiding the problem of fire caused by continuous high heat.
[0057] Even more specifically, in the embodiments of the present invention, a connecting strip 613 is provided on the top side of the transfer frame 601, and two adsorption magnets 615 are installed on the connecting strip 613. The two adsorption magnets 615 are used to adsorb and lift the two positioning lifting rods 611; in addition, two positioning slots 614 are formed on the top side of the transfer frame 601, and the two adsorption magnets 615 are respectively inserted into the two positioning slots 614. It should be noted that in the embodiments of the present invention, when installing the smart meter main body 1, the two positioning lifting rods 611 are adsorbed and lifted by the two adsorption magnets 615, so that the two positioning lifting rods 611 are respectively inserted into the two locking slots 612, and then the transfer frame 601 is installed on the wiring base 4, and thus the smart meter main body 1 can be automatically fixed on the wiring base 4.
[0058] Please continue to refer to the attached instructions Figures 3-7 Specifically, in the embodiment of the present invention, a plurality of positioning chutes 603 are formed on the back of the smart meter main body 1, and the conductive columns 604 move into the conductive slots 602 along the positioning chutes 603. It should be noted that in the embodiment of the present invention, when installing the smart meter main body 1, the smart meter main body 1 moves on the conductive columns 604 through the positioning chutes 603, so that the smart meter main body 1 can be conveniently positioned during installation, facilitating the installation of the smart meter main body 1.
[0059] Please refer to the attached instructions Figures 4-8 Furthermore, the auxiliary covering device 7 of the power consumption terminal load acquisition and monitoring device for a hybrid regulation architecture provided by the embodiment of the present invention further includes two mounting shafts 704, and the two mounting shafts 704 are respectively rotatably mounted on both sides of the adapter frame 601, and the two rotating frames 701 are respectively mounted on the two mounting shafts 704;
[0060] In addition, pressing blocks 707 are installed on both sides of the ceramic isolation guard plate 605, and the ceramic isolation guard plate 605 descends to squeeze the two rack frames 706 to move through the two pressing blocks 707. It should be noted that in the embodiment of the present invention, when the ceramic isolation guard plate 605 descends, the two rack frames 706 are squeezed to move through the two pressing blocks 707, so that the rack frames 706 drive the driven gears 705 to rotate, and the driven gears 705 drive the rotating frames 701 to rotate through the mounting shafts 704, so that the rotating frames 701 drive the storage box 702 to rotate above the wiring seat 4 for fire extinguishing preparation;
[0061] It should be emphasized that the closing plate 703 can be composed of flammable materials such as cardboard or plastic plates, so that it can flow out in time when a fire breaks out during fire extinguishing, and the specific material selection is the best to meet the actual use requirements.
[0062] Specifically, in the embodiment of the present invention, pressing rods 708 are installed on the bottom sides of the two rack frames 706, and two pressing grooves 709 are formed on the top side of the adapter frame 601, and the two pressing rods 708 are respectively movably installed in the two pressing grooves 709;
[0063] In addition, a return spring 710 is installed at the bottom end of the pressing rod 708, and the bottom end of the return spring 710 is installed on the bottom inner wall of the pressing groove 709. It should be noted that in the embodiment of the present invention, when the rack frame 706 is squeezed and moved downward by the pressing block 707, the pressing rod 708 vertically moves in the pressing groove 709 and squeezes the return spring 710 to be stressed. Therefore, under the resilience of the return spring 710, it can help the rack frame 706 to reset.
[0064] Please refer to the attached drawings of the specification in combination Figure 6 and Figures 9-10 Furthermore, in the embodiment of the present invention, for the power consumption terminal load acquisition and monitoring device used in the hybrid control architecture, connecting seats 805 are rotatably installed on the top side and the bottom side of the protection rotating plate 802, and both of the two connecting seats 805 are installed on the installation frame 801; a connecting shaft 807 is rotatably installed in the connecting seat 805, the connecting shaft 807 is installed on the protection rotating plate 802, and a rotating plate 806 is installed on one of the connecting shafts 807 located below the intelligent electric meter main body 1. It should be noted that in the embodiment of the present invention, when the protection rotating plate 802 rotates, the two connecting shafts 807 rotate in the two connecting seats 805.
[0065] More specifically, in the embodiment of the present invention, a torsion groove 808 is formed in the connecting seat 805, and the connecting shaft 807 is rotatably installed in the torsion groove 808; a torsion spring 809 is installed on the connecting shaft 807, and the other end of the torsion spring 809 is installed on the inner wall of the torsion groove 808. It should be noted that in the embodiment of the present invention, when the rotating plate 806 is pushed, the rotating plate 806 drives the connecting shaft 807 to rotate, the connecting shaft 807 rotates in the torsion groove 808, and then the torsion spring 809 is stressed. Therefore, when the intelligent electric meter main body 1 is separated from the wiring seat 4, under the resilience of the torsion spring 809, it can help the protection rotating plate 802 to reset.
[0066] Please continue to refer to the attached drawings of the specification Figure 6 and Figures 9-10 Furthermore, more specifically, in the embodiment of the present invention, a transverse moving frame 803 is movably installed on the bottom side of the adapter frame 601, a driving frame 804 is installed on the transverse moving frame 803, the driving frame 804 is used to squeeze the rotating plate 806, and the wiring seat 4 squeezes the driving frame 804 to move;
[0067] In addition, two transverse moving grooves 810 are formed on the bottom side of the adapter frame 601, and the two transverse moving frames 803 are respectively slidably installed in the two transverse moving grooves 810. It should be noted that in the embodiment of the present invention, after the intelligent electric meter main body 1 is installed on the wiring seat 4, the driving frame 804 is squeezed and moved by the wiring seat 4, so that the driving frame 804 squeezes the rotating plate 806, and the driving frame 804 horizontally slides in the transverse moving groove 810 through the transverse moving frame 803.
[0068] In summary, the working principle of the power consumption terminal load acquisition and monitoring device used in the hybrid control architecture provided by the embodiment of the present invention is:
[0069] When installing the intelligent electricity meter main body 1, first install the wiring seat 4 in the electricity meter box, install the wires in the wiring seat 4, and lock them by tightening the bolts 5. Then move the intelligent electricity meter main body 1 on the plurality of conductive posts 604 through a plurality of positioning chutes 603 until the plurality of conductive posts 604 are respectively inserted into the plurality of conductive slots 602, so that the two push-out frames 607 are respectively inserted into the two plug-in slots 606. At the same time, the two positioning lifting rods 611 are adsorbed and lifted by the two adsorption magnets 615, so that the two positioning lifting rods 611 are respectively inserted into the two locking slots 612, and then the adapter frame 601 is installed on the wiring seat 4, and the installation of the intelligent electricity meter main body 1 can be conveniently completed; in addition, installing the wires on the back of the intelligent electricity meter main body 1 and locking them through the adsorption magnet 615 can hide the wires and prevent unfamiliar people from removing the intelligent electricity meter main body 1, playing an effective anti-theft role; and when installing, the driving frame 804 is squeezed and moved by the wiring seat 4, so that the driving frame 804 squeezes the rotating plate 806. The driving frame 804 horizontally slides in the horizontal movement groove 810 through the horizontal movement frame 803. When the rotating plate 806 rotates, it drives the connecting shaft 807 to rotate. The connecting shaft 807 rotates in the torsion groove 808 and drives the torsion spring 809 to be stressed. At the same time, the rotation of the connecting shaft 807 drives the protection rotating plate 802 to rotate and open, facilitating the observation and use of the display screen 2;
[0070] Furthermore, when the electrical load is too high and the wires overheat, the entire wiring seat 4 heats up, which in turn causes the adsorption magnet 615 to lose its adsorption force. At this time, the positioning lifting rod 611 falls under the action of gravity and disengages from the adapter frame 601. At this time, under the resilience of the two push-out springs 609, the two push-out frames 607 are pushed to move, and the intelligent electricity meter main body 1 is pushed out. At the same time, the conductive post 604 is separated from the conductive slot 602. At this time, the ceramic isolation guard plate 605 falls under its own weight and isolates and insulates the conductive post 604, playing a role of emergency separation protection and avoiding the problem of fire caused by continuous high heat;
[0071] In addition, if a fire breaks out, the main body 1 of the smart meter is first pushed out, and insulated from the fire by the ceramic isolation shield 605. At the same time, when the main body 1 of the smart meter is pushed out of the ceramic isolation shield 605, the ceramic isolation shield 605 squeezes the two rack frames 706 to move through the two pressing blocks 707. The rack frame 706 moves vertically in the pressing groove 709 through the pressing rod 708, and drives the return spring 710 to be stressed. The movement of the rack frame 706 drives the driven gear 705 to rotate. The driven gear 705 drives the rotating frame 701 to rotate through the mounting shaft 704, so that the rotating frame 701 drives the storage box 702 to rotate above the wiring base 4, and the closing plate 703 is burned by the fire, so that the fire extinguishing sand in the storage box 702 flows out to cover the wiring base 4 for fire extinguishing, realizing the function of automatic fire extinguishing. When there is no fire, the closing plate 703 remains intact and will not flow out, avoiding waste of fire extinguishing sand;
[0072] Furthermore, when the main body 1 of the smart meter is not installed or is pushed out, the driving frame 804 is not squeezed by the wiring base 4. At this time, under the resilience of the torsion spring 809, the connecting shaft 807 is driven to rotate, so that the connecting shaft 807 drives the protective rotating plate 802 to rotate. The protective rotating plate 802 closes and protects the display screen 2, avoiding the problem that the display screen 2 is damaged by collision or damaged by high-temperature fire when it is not installed, and ensuring the safety of the main body 1 of the smart meter.
[0073] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. A power terminal load collection and monitoring device for a hybrid control architecture, characterized in that: It includes a smart meter body and a wiring socket, wherein a display screen and a plurality of operation buttons are installed on one side of the smart meter body, the wiring socket is connected to the back of the smart meter body, and a plurality of tightening bolts are threadedly installed on the wiring socket; It also includes a transfer protection device, which is installed on the back of the smart meter body, and the transfer protection device installs the wiring socket on the smart meter body; The transfer protection device comprises a transfer frame, which is mounted on the main body of the smart meter. A plurality of conductive slots are provided on one side of the main body of the smart meter. A plurality of conductive posts are installed on one side of the wiring seat. The plurality of conductive posts are respectively inserted into the plurality of conductive slots. A ceramic isolation guard plate is slidably mounted on the transfer frame. An auxiliary covering device is installed on the transfer protection device, and the auxiliary covering device is used to cover and extinguish the wiring socket; the auxiliary covering device includes two rotating frames, and the two rotating frames are respectively rotatably installed on the two sides of the transfer frame, and storage boxes are installed on the two rotating frames, and the storage boxes are filled with fire extinguishing sand, and a sealing plate for sealing is installed on one side of the storage box; An active protection device is also installed on the switching protection device, and the active protection device is used to actively protect the display screen; the active protection device includes a mounting frame, and the mounting frame is installed on one side of the smart meter body. The display screen is located in the mounting frame, and two protection rotating plates are rotatably installed on one side of the mounting frame. The two protection rotating plates are rotated to close and are used to provide closed protection for the display screen.
2. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 1 is characterized in that: The switching protection device further comprises two ejection racks, both of which are movably mounted on one side of the wiring seat; One side of the adapter frame is provided with two plug-in slots, and the two ejection frames are respectively inserted into the two plug-in slots.
3. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 2 is characterized in that: One side of the wiring seat is provided with two ejection grooves, and the two ejection racks are movably mounted in the two ejection grooves respectively, and an ejection spring is mounted on the inner wall of one side of the ejection groove, and the other end of the ejection spring is mounted on the ejection rack; The top side of the wiring seat is provided with two lifting slots, and positioning lifting rods are movably installed in the two lifting slots. The bottom side of the adapter frame is provided with two locking slots, and the top ends of the two positioning lifting rods are respectively inserted into the two locking slots.
4. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 3 is characterized in that: A connecting strip is provided on the top side of the adapter frame, and two adsorption magnets are installed on the connecting strip. The two adsorption magnets are used to adsorb and lift the two positioning and lifting rods; Two positioning grooves are arranged on the top side of the adapter frame, and the two adsorption magnets are respectively inserted into the two positioning grooves.
5. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 4 is characterized in that: A plurality of positioning slots are provided on the back of the main body of the smart meter, and the conductive column moves into the conductive slot along the positioning slots.
6. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 1 is characterized in that: The auxiliary covering device further comprises two mounting shafts, the two mounting shafts are rotatably mounted on two sides of the adapter frame, and the two rotating frames are respectively mounted on the two mounting shafts; The two installation shafts are sleeved with driven gears, and the two driven gears are meshed with rack racks; Both sides of the ceramic isolation guard plate are installed with downward pressing blocks, and the ceramic isolation guard plate descends and moves by squeezing the two rack frames by the two downward pressing blocks.
7. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 6 is characterized in that: The bottom sides of the two rack frames are both equipped with a pressing rod, the top side of the adapter frame is provided with two pressing grooves, and the two pressing rods are movably installed in the two pressing grooves respectively; A return spring is installed at the bottom end of the pressing rod, and the bottom end of the return spring is installed on the bottom inner wall of the pressing groove.
8. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 1 is characterized in that: The top and bottom sides of the protection rotating plate are both rotatably mounted with connection seats, and the two connection seats are both mounted on the mounting frame; A connecting shaft is rotatably installed in the connecting seat, and the connecting shaft is installed on the protection rotating plate. A rotating plate is installed on one of the connecting shafts located below the main body of the smart meter.
9. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 8 is characterized in that: A torsion groove is provided in the connecting seat, and the connecting shaft is rotatably installed in the torsion groove; A torsion spring is installed on the connecting shaft, and the other end of the torsion spring is installed on the inner wall of the torsion groove.
10. The power terminal load collection and monitoring device for a hybrid control architecture according to claim 9, characterized in that: A transverse frame is movably mounted on the bottom side of the adapter frame, a driving frame is mounted on the transverse frame, the driving frame is used to press the rotating plate, and the wiring seat presses the driving frame to move; Two transverse slots are provided on the bottom side of the adapter frame, and the two transverse slots are slidably mounted in the two transverse slots respectively.