Low-carbon building matching equipment
By designing low-carbon building equipment, using closed panels and insulation panels to reduce heat conduction, and combining reflectors to regulate light, the problem of poor thermal insulation performance of building glass is solved, achieving energy-saving and environmentally friendly indoor environmental regulation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU JINSHANG DECORATION DESIGN ENG CO LTD
- Filing Date
- 2024-04-07
- Publication Date
- 2026-05-29
AI Technical Summary
Large-area building glass has poor thermal insulation performance, which leads to the need to use a lot of coal for heating or air conditioning to regulate indoor temperature, resulting in energy waste.
Design a low-carbon building accessory device that uses control components to drive the unfolding or folding of enclosed panels, combined with insulation panels and baffles to reduce heat conduction, and uses reflectors to adjust light and improve indoor illumination.
It effectively reduces heat conduction to the outside, reduces air conditioning use, increases indoor lighting, reduces energy consumption, avoids glare, and reduces the number of lights.
Smart Images

Figure CN118257486B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of low-carbon building technology, specifically to a low-carbon building supporting equipment. Background Technology
[0002] Since the energy crisis of the 1970s, energy and environmental issues have attracted worldwide attention. Since building energy consumption accounts for more than one-third of total social energy consumption, among the four major building maintenance components affecting building energy consumption—doors and windows, walls, roofs, and floors—doors and windows have the worst thermal insulation performance, making them one of the important factors affecting indoor thermal comfort and building energy consumption.
[0003] The proportion of glass in a window varies depending on the window frame material, but with the widespread use of glass curtain walls in public buildings and large floor-to-ceiling windows in residential buildings, the area of glass in windows is becoming increasingly larger.
[0004] When the outdoor temperature is low and the indoor temperature is high, the infrared light from inside the room passes through the glass to the outside, and the heat is conducted outward, lowering the indoor temperature. When the outdoor temperature is high and the indoor temperature is low, the infrared light from outside passes through the glass to the inside, increasing the indoor temperature. This wastes a lot of energy by using a large amount of coal for heating and air conditioning to regulate the indoor temperature. Summary of the Invention
[0005] To address the shortcomings of existing technologies, this invention provides a low-carbon building equipment that solves the problem of poor thermal insulation performance of large-area building glass, which requires a large amount of coal for heating and air conditioning to regulate indoor temperature, resulting in a significant waste of energy.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a low-carbon building supporting equipment, comprising a wall with an opening on one side, wherein a plurality of upper window frames are fixedly arranged in an array at the opening position of the wall, and a glass plate for closing the upper window frame is fixedly fixed on each upper window frame, and a lower window frame is fixedly fixed on the lower surface of each upper window frame, wherein a sliding groove is provided on the top and bottom of the groove of each lower window frame, and a glass sash for closing the lower window frame is slidably connected in the sliding groove, wherein the upper window frame, glass plate, lower window frame and glass sash close the opening of the wall, and three sealing plates located outside the glass sash and closing the lower window frame are also provided on each lower window frame, wherein an insulation board is fixed on each sealing plate, and a control component for controlling the folding and unfolding of the three sealing plates is provided on each lower window frame.
[0007] The above technical solution provides power through control components, which drive several enclosed panels to unfold or fold. When the enclosed panels are unfolded, they collide with each other and close the lower window frame. The insulation board, which is fixedly connected to the enclosed panels, provides insulation for the openings in the wall, effectively reducing heat conduction to the outside. There is no need to turn on the air conditioning for insulation. When the enclosed panels are open, it does not affect the lighting or indoor illumination, and there is no need to use a lot of artificial lighting, which would lead to excessive energy consumption. It also does not affect indoor ventilation.
[0008] Preferably, the control component includes slide rails fixed to both sides of the lower window frame groove wall. Each slide rail is provided with a support, a first slider, a second slider, and a third slider in sequence from top to bottom. The support is fixedly connected to the slide rail, and the first slider, the second slider, and the third slider are all slidably connected to the slide rail. A first main support rod, a second main support rod, and a third main support rod are rotatably connected to the support, the first slider, and the second slider, respectively, via a short shaft. The three sealing plates are fixedly connected to the first main support rod, the second main support rod, and the third main support rod, respectively. The first main support rod, the second main support rod, and the third main support rod are connected by a support component. The lower window frame is provided with a drive component that drives the first main support rod to rotate, thereby driving the second main support rod and the third main support rod to rotate.
[0009] Through the above technical solution, the driving component provides power to drive the first main support rod to rotate. The first main support rod, the second main support rod, and the third main support rod are connected by the support component. The rotation of the first main support rod will drive the second and third main support rods to rotate, thereby causing the three enclosed panels to fold or unfold.
[0010] Preferably, the support assembly includes a first secondary support rod hinged to the middle position of the first main support rod, the end of the first secondary support rod away from the first main support rod being rotatably connected to the first slider via a short shaft, a second secondary support rod hinged to the end of the first main support rod away from the support, the end of the second secondary support rod away from the first main support rod being rotatably connected to the second slider via a short shaft, the second secondary support rod being rotatably connected to the middle position of the second main support rod, and a third secondary support rod hinged to the end of the second main support rod away from the second slider, the end of the third secondary support rod away from the second main support rod being rotatably connected to the third slider via a short shaft, the third secondary support rod being rotatably connected to the middle position of the third main support rod.
[0011] Through the above technical solution, the second main support rod and the second auxiliary support rod cooperate in a scissor-like structure, and the third main support rod and the third auxiliary support rod cooperate in a scissor-like structure. The first main support rod rotates around the short axis on the support, which will drive the first auxiliary support rod, the second main support rod, the second auxiliary support rod, the third main support rod, and the third auxiliary support rod to rotate, thereby causing the closed plate fixed on the first main support rod, the second main support rod, and the third main support rod to fold or unfold.
[0012] Preferably, the drive assembly includes a support frame fixed to the outer wall of the slide rail, an ear seat fixed to the upper surface of the support frame, a cylinder hinged to the ear seat, a pull rod hinged to the extended end of the cylinder, and the end of the pull rod away from the cylinder being fixed to the first main support rod.
[0013] The above technical solution uses a cylinder to provide power, which drives the pull rod to move. The movement of the pull rod also drives the first main support rod, which is fixed to the pull rod, to rotate, thereby controlling the unfolding and folding of the enclosure plate.
[0014] Preferably, the two sides of the sealing plate bend downwards, and the three downwardly bent portions of the sealing plate are respectively fixedly connected to the first main support rod, the second main support rod, and the third main support rod by screws. The insulation board is located on the lower surface of the sealing plate and abuts against the two sides of the sealing plate. The insulation board is fixed to the sealing plate by screws.
[0015] Through the above technical solution, the downwardly bent extensions on both sides of the sealing plate are fixedly connected to the first main support rod, the second main support rod, and the third main support rod with screws, which facilitates the installation of the insulation board and improves the stability of the connection between the sealing plate and the first main support rod, the second main support rod, and the third main support rod.
[0016] Preferably, the upper window frame is provided with a baffle to close the upper window frame, and an insulation block adapted to the upper window frame is fixed on the baffle. The upper window frame is provided with a drive control component to control the rotation of the baffle to close or expose the glass plate.
[0017] The above technical solution provides power through the drive and control components to rotate the baffle. When the baffle rotates to block the glass panel, it closes the glass panel. At the same time, the insulation block is adapted to the upper window frame, which not only closes the upper window frame but also provides insulation to the upper window frame, reducing heat loss. When the baffle rotates to not block the glass panel, it does not affect the lighting and improves the indoor lighting.
[0018] Preferably, the drive control component includes a groove formed in the upper window frame, the groove extending into the lower window frame, a transmission rod rotatably connected in the groove, the center line of the transmission rod being parallel to the long side of the upper window frame, several cylindrical blocks coaxially fixed on the transmission rod, each cylindrical block having an insertion hole adapted to a baffle, the baffle being inserted into the cylindrical block through the insertion hole and fixedly connected to the cylindrical block by screws, and a motor for driving the transmission rod to rotate fixed on the upper window frame.
[0019] Through the above technical solution, the motor provides power to drive the transmission rod, which is fixed coaxially with the output shaft of the motor, to rotate. The rotation of the transmission rod will drive the cylindrical block, which is fixed coaxially with the transmission rod, to rotate. This will cause the baffle, which is fixedly connected to the cylindrical block, to rotate around the transmission rod, thereby closing or exposing the glass panel. Since the groove extends into the lower window frame, the baffle rotates into the lower window frame when it does not cover the glass panel.
[0020] Preferably, the enclosure and baffle are provided with adjustment components that collect light to increase indoor lighting.
[0021] The above technical solution uses adjustment components to regulate light by utilizing the physical properties of light refraction, thus refracting light and avoiding glaring direct sunlight.
[0022] Preferably, the adjustment assembly includes an outer reflector fixed to the top sealing plate, the upper surface of the outer reflector being arranged horizontally when the sealing plate is folded, and an inner reflector being fixed to the side of the baffle facing the glass plate.
[0023] With the above technical solution, the outer and inner reflectors work together. When several closed panels are folded and the baffles are rotated 90 degrees to a horizontal position, the long sides of the outer and inner reflectors coincide. Sunlight from the outside of the wall passes through the glass plate and is refracted to the ceiling at the top of the wall by the action of the inner reflector. Then it is reflected into the room for deep lighting, which increases the brightness of the room while reducing the number of lights. At the same time, the combination of the outer and inner reflectors avoids glaring light refraction.
[0024] Preferably, the bottom of the lower window frame is inclined, and a guide groove is provided at the bottom of the lower window frame groove.
[0025] The above technical solution involves tilting the bottom of the lower window frame to reduce the possibility of rainwater accumulating on the lower window frame and damaging the insulation board.
[0026] This invention provides a low-carbon building equipment. It has the following beneficial effects:
[0027] (1) The low-carbon building equipment is powered by a cylinder to move the pull rod, thereby rotating the first main support rod, the first secondary support rod, the second main support rod, the second secondary support rod, the third main support rod and the third secondary support rod. This causes the sealing plate fixed on the first main support rod, the second main support rod and the third main support rod to unfold. When the three sealing plates unfold, they collide with each other. The sealing plates and the insulation plates fixed on the sealing plates close the lower window frame. Power is provided by a motor to drive the transmission rod, the column block and the baffle to rotate. The baffle rotates to block the glass plate of the upper window frame. At the same time, the insulation block fixed on the baffle also closes the upper window frame. Through the cooperation of the insulation plate and the insulation block, the opening part of the wall is insulated, effectively reducing the heat conduction to the outside, and there is no need to turn on the air conditioner for insulation.
[0028] (2) The low-carbon building equipment is powered by a cylinder, which drives the pull rod to move in the opposite direction, causing the first main support rod, the first auxiliary support rod, the second main support rod, the second auxiliary support rod, the third main support rod and the third auxiliary support rod to rotate in the opposite direction, thereby causing the closed plate fixed on the first main support rod, the second main support rod and the third main support rod to fold. Power is provided by a motor, which drives the transmission rod, the column block, the baffle and the inner reflector to rotate in a horizontal state. The outer reflector and the inner reflector cooperate, and the sunlight on the outside of the wall passes through the glass plate and is refracted to the top of the wall ceiling by the action of the inner reflector, and then reflected into the room for deep lighting, which increases the brightness of the room while reducing the number of lights. At the same time, the cooperation of the outer reflector and the inner reflector avoids the glare of light refraction. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0030] Figure 2 This is a schematic diagram illustrating the structure of the external reflector in this invention;
[0031] Figure 3 This is a schematic diagram illustrating the structure of the inner reflector in this invention;
[0032] Figure 4 This is a structural schematic diagram illustrating the first auxiliary support rod of the present invention;
[0033] Figure 5 This is a schematic diagram illustrating the structure of the transmission rod in this invention;
[0034] Figure 6 For the present invention Figure 5 Enlarged structural diagram at point A in the middle;
[0035] Figure 7 This is a schematic diagram illustrating the structure of the slide rail in this invention;
[0036] Figure 8 For the present invention Figure 7 Enlarged structural diagram at point B;
[0037] Figure 9 For the present invention Figure 7 Enlarged structural diagram at point C;
[0038] Figure 10 This is a schematic diagram of the light refraction structure of the present invention;
[0039] In the diagram: 1. Wall; 101. Upper window frame; 102. Glass panel; 103. Lower window frame; 104. Glass window sash; 2. Sealing panel; 3. Insulation panel; 4. Control assembly; 401. Slide rail; 402. Support; 403. First slider; 404. Second slider; 405. Third slider; 406. First main support rod; 407. Second main support rod; 408. Third main support rod; 409. First auxiliary support rod; 410. Second auxiliary support rod; 411. Third auxiliary support rod; 412. Support frame; 413. Ear seat; 414. Cylinder; 415. Pull rod; 5. Baffle; 6. Insulation block; 7. Drive control assembly; 701. Groove; 702. Transmission rod; 703. Columnar block; 704. Insertion hole; 8. Adjustment assembly; 801. Outer reflector; 802. Inner reflector. Detailed Implementation
[0040] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0041] like Figure 1-10 As shown, the present invention provides a technical solution: a low-carbon building supporting equipment, including a wall 1 with an opening on one side of the interior, a plurality of upper window frames 101 arranged in an array fixed at the opening position of the wall 1, a glass plate 102 fixed on each upper window frame 101 to close the upper window frame 101, a lower window frame 103 fixed on the lower surface of each upper window frame 101, and a sliding groove provided on the top and bottom of the groove of the lower window frame 103, and a glass sash 104 that closes the lower window frame 103 is slidably connected in the sliding groove, and the indoor ventilation is controlled by opening and closing the glass sash 104. The upper window frame 101, glass plate 102, lower window frame 103 and glass sash 104 close the opening part of the wall 1, and the upper window frame 101 and lower window frame 103 are fixedly connected to the wall 1.
[0042] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 5 Each lower window frame 103 is also provided with three sealing plates 2 located outside the glass window sash 104 and enclosing the lower window frame 103. Each sealing plate 2 is fixed with an insulation board 3. Each lower window frame 103 is provided with a control component 4 for controlling the folding and unfolding of the three sealing plates 2.
[0043] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 5 and Figure 7 Power is provided by the control component 4 to drive several closed panels 2 to unfold or fold. When the several closed panels 2 are unfolded, they abut against each other and close the lower window frame 103. The insulation board 3, which is fixedly connected to the closed panel 2, provides insulation for the opening part of the wall 1, effectively reducing the outward conduction of heat. There is no need to turn on the air conditioner for insulation. When the several closed panels 2 are open, it does not affect the lighting and indoor illumination. It does not require a large amount of artificial lighting, which would lead to excessive energy consumption, and it does not affect indoor ventilation.
[0044] like Figure 2 and Figure 4 and Figure 7 The control component 4 includes slide rails 401 fixed to both sides of the groove wall of the lower window frame 103. The slide rails 401 are axially arranged, and each slide rail 401 has a support 402, a first slider 403, a second slider 404, and a third slider 405 arranged sequentially from top to bottom. The support 402 is fixedly connected to the slide rail 401, and the first slider 403, the second slider 404, and the third slider 405 are all slidably connected to the slide rail 401. The support 402, the first slider 403, and the second slider 404 are respectively... The first main support rod 406, the second main support rod 407, and the third main support rod 408 are rotatably connected via a short shaft. The three closed plates 2 are fixedly connected to the first main support rod 406, the second main support rod 407, and the third main support rod 408 respectively. The first main support rod 406, the second main support rod 407, and the third main support rod 408 are connected by a support assembly. The lower window frame 103 is provided with a drive assembly that drives the first main support rod 406 to rotate, thereby driving the second main support rod 407 and the third main support rod 408 to rotate.
[0045] like Figure 2 and Figure 4 and Figure 7 The drive assembly provides power to rotate the first main support rod 406. The first main support rod 406, the second main support rod 407, and the third main support rod 408 are connected by a support assembly. The rotation of the first main support rod 406 will drive the second main support rod 407 and the third main support rod 408 to rotate, thereby causing the three closed plates 2 to fold or unfold.
[0046] like Figure 2 and Figure 4 and Figure 7The support assembly includes a first secondary support rod 409 hinged to the middle position of the first main support rod 406. The end of the first secondary support rod 409 away from the first main support rod 406 is rotatably connected to the first slider 403 via a short shaft. The end of the first main support rod 406 away from the support 402 is hinged to a second secondary support rod 410. The end of the second secondary support rod 410 away from the first main support rod 406 is rotatably connected to the second slider 404 via a short shaft. The second secondary support rod 410 is rotatably connected to the second main support rod 407 at the middle position. The end of the second main support rod 407 away from the second slider 404 is hinged to a third secondary support rod 411. The end of the third secondary support rod 411 away from the second main support rod 407 is rotatably connected to the third slider 405 via a short shaft. The third secondary support rod 411 is rotatably connected to the third main support rod 408 at the middle position.
[0047] like Figure 2 and Figure 4 and Figure 7 The second main support rod 407 and the second auxiliary support rod 410 cooperate to form a scissor-like structure, and the third main support rod 408 and the third auxiliary support rod 411 cooperate to form a scissor-like structure. The first main support rod 406 rotates around the short axis on the support 402, which will drive the first auxiliary support rod 409, the second main support rod 407, the second auxiliary support rod 410, the third main support rod 408 and the third auxiliary support rod 411 to rotate, thereby driving the closed plate 2 fixed on the first main support rod 406, the second main support rod 407 and the third main support rod 408 to fold or unfold.
[0048] like Figure 2 and Figure 4 and Figure 7 and Figure 8 and Figure 9 The drive assembly includes a support frame 412 fixed to the outer wall of the slide rail 401. An ear seat 413 is fixed on the upper surface of the support frame 412. A cylinder 414 is hinged to the ear seat 413. A pull rod 415 is hinged to the extended end of the cylinder 414. The end of the pull rod 415 away from the cylinder 414 is fixed to the first main support rod 406.
[0049] like Figure 2 and Figure 4 and Figure 7 and Figure 8 and Figure 9 Power is provided by cylinder 414 to drive pull rod 415 to move. The movement of pull rod 415 will drive the first main support rod 406 fixed to pull rod 415 to rotate, thereby controlling the unfolding and folding of the closing plate 2.
[0050] like Figure 7The two sides of the sealing plate 2 bend downwards and extend downwards. The three sides of the sealing plate 2 bend downwards and extend downwards and are respectively fixedly connected to the first main support rod 406, the second main support rod 407 and the third main support rod 408 by screws. The insulation plate 3 is located on the lower surface of the sealing plate 2 and abuts against the two sides of the sealing plate 2. The insulation plate 3 is fixed to the sealing plate 2 by screws.
[0051] like Figure 1 and Figure 2 and Figure 4 and Figure 7 The downwardly bent extensions on both sides of the sealing plate 2 are fixedly connected to the first main support rod 406, the second main support rod 407 and the third main support rod 408 by screws, which facilitates the installation of the insulation plate 3 and improves the stability of the connection between the sealing plate 2 and the first main support rod 406, the second main support rod 407 and the third main support rod 408.
[0052] like Figure 3 and Figure 5 A baffle 5 is provided on the upper window frame 101 to close the upper window frame 101. An insulation block 6 adapted to the upper window frame 101 is fixed on the baffle 5. A drive control component 7 is provided on the upper window frame 101 to control the rotation of the baffle 5 to close the glass plate 102 or expose the glass plate 102.
[0053] like Figure 3 and Figure 5 and Figure 6 The drive control component 7 provides power to drive the baffle 5 to rotate. When the baffle 5 rotates to block the glass plate 102, it closes the glass plate 102. At the same time, the heat insulation block 6 is adapted to the upper window frame 101. While closing the upper window frame 101, it also provides heat insulation for the upper window frame 101, reducing heat loss. When the baffle 5 rotates to not block the glass plate 102, it does not affect the lighting and improves the indoor lighting.
[0054] like Figure 6 The drive control component 7 includes a groove 701 formed in the upper window frame 101, the groove 701 extending into the lower window frame 103, a transmission rod 702 rotatably connected in the groove 701, the center line of the transmission rod 702 being parallel to the long side of the upper window frame 101, several cylindrical blocks 703 being coaxially fixed on the transmission rod 702, each cylindrical block 703 having an insertion hole 704 adapted to the baffle 5, the baffle 5 being inserted into the cylindrical block 703 through the insertion hole 704 and fixedly connected to the cylindrical block 703 by screws, and a motor for driving the transmission rod 702 to rotate is fixed on the upper window frame 101.
[0055] like Figure 6Power is provided by the motor, which drives the transmission rod 702, which is coaxially fixed with the output shaft of the motor, to rotate. The rotation of the transmission rod 702 will drive the cylindrical block 703, which is coaxially fixed with the transmission rod 702, to rotate. This will cause the baffle 5, which is fixedly connected to the cylindrical block 703, to rotate around the transmission rod 702, thereby closing or exposing the glass plate 102. Since the groove 701 extends into the lower window frame 103, the baffle 5 rotates into the lower window frame 103 when it does not cover the glass plate 102.
[0056] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 5 and Figure 10 The enclosure 2 and the baffle 5 are equipped with adjustment components 8 that collect light to increase indoor lighting. By setting the adjustment components 8, the light is adjusted by utilizing the physical properties of light refraction, refracting the light and avoiding glaring direct sunlight.
[0057] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 5 and Figure 10 The adjustment component 8 includes an outer reflector 801 fixed on the top closed plate 2. When the closed plate 2 is folded, the upper surface of the outer reflector 801 is horizontally arranged. An inner reflector 802 is fixed on the side of the baffle 5 facing the glass plate 102. The outer reflector 801 and the inner reflector 802 cooperate. When several closed plates 2 are folded and the baffle 5 is rotated ninety degrees to a horizontal state, the long sides of the outer reflector 801 and the inner reflector 802 coincide. Sunlight from the outside of the wall 1 passes through the glass plate 102 and is refracted to the top ceiling of the wall 1 by the action of the inner reflector 802. Then it is reflected into the room for deep lighting, which increases the brightness of the room while reducing the number of lights. At the same time, the cooperation of the outer reflector 801 and the inner reflector 802 avoids glaring light refraction.
[0058] like Figure 1 and Figure 2 and Figure 4 The bottom of the lower window frame 103 is inclined, and a guide channel is provided at the bottom of the lower window frame 103. The inclination of the bottom of the lower window frame 103 reduces the possibility of rainwater accumulating in the lower window frame 103 and damaging the insulation board 3.
[0059] When in use, connect the power supply and turn on the switch. When the room needs to be kept warm, open the cylinder 414. The cylinder 414 provides power to drive the pull rod 415 to move. The movement of the pull rod 415 will also drive the first main support rod 406 fixed to the pull rod 415 to rotate. The rotation of the first main support rod 406 will drive the rotation of the first auxiliary support rod 409, the second main support rod 407, the second auxiliary support rod 410, the third main support rod 408 and the third auxiliary support rod 411, thereby driving the sealing plate 2 fixed on the first main support rod 406, the second main support rod 407 and the third main support rod 408 to unfold. When the three sealing plates 2 unfold, they abut against each other, and the sealing plates 2 and the insulation plate 3 fixed on the sealing plates 2 close the lower window frame 103.
[0060] At the same time, the motor is turned on, and the power provided by the motor drives the transmission rod 702, which is fixed coaxially with the output shaft of the motor, to rotate. The rotation of the transmission rod 702 will drive the cylindrical block 703, which is fixed coaxially with the transmission rod 702, to rotate, thereby driving the baffle 5, which is fixedly connected to the cylindrical block 703, to rotate around the transmission rod 702. The baffle 5 rotates to block the glass plate 102 of the upper window frame 101, and at the same time, the heat insulation block 6 fixed on the baffle 5 also closes the upper window frame 101.
[0061] The insulation board 3 and the insulation block 6 work together to insulate the opening in the wall 1, effectively reducing the outward conduction of heat and eliminating the need to turn on the air conditioner for insulation.
[0062] When indoor lighting is needed, cylinder 414 is activated, providing power to move lever 415 in the opposite direction. This causes the first main support rod 406 to rotate. The rotation of the first main support rod 406 causes the first auxiliary support rod 409, the second main support rod 407, the second auxiliary support rod 410, the third main support rod 408, and the third auxiliary support rod 411 to rotate in the opposite direction. This causes the enclosing plate 2 fixed to the first main support rod 406, the second main support rod 407, and the third main support rod 408 to fold until the upper surface of the outer reflector 801 fixed to the top enclosing plate 2 is horizontal, reducing the possibility of direct sunlight entering the room. Simultaneously, the motor is activated. The motor provides power, driving the transmission rod 702, cylindrical block 703, baffle 5, and inner reflector 802 to rotate horizontally. The outer reflector 801 and inner reflector 802 work together to allow sunlight from the outside of the wall 1 to pass through the glass plate 102 and be refracted by the inner reflector 802 to the ceiling at the top of the wall 1, and then reflected into the room for deep lighting. This increases the brightness of the room while reducing the number of lights. At the same time, the cooperation of the outer reflector 801 and inner reflector 802 avoids glaring light refraction. This is the usage process of the low-carbon building supporting equipment. All contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0063] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0064] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A low-carbon building accessory, comprising a wall (1) with an opening on one side, characterized in that: The wall (1) has several upper window frames (101) arranged in an array at the opening position. Each upper window frame (101) has a glass plate (102) fixed to close the upper window frame (101). Each upper window frame (101) has a lower window frame (103) fixed to its lower surface. The lower window frame (103) has a groove on its top and bottom. A glass sash (104) that closes the lower window frame (103) slides in the groove. The upper window frame (101), glass plate (102), lower window frame (103) and glass sash (104) close the opening of the wall (1). Each of the lower window frames (103) is also provided with three sealing plates (2) located outside the glass window sash (104) and closing the lower window frame (103). Each of the sealing plates (2) is fixed with a heat insulation board (3). Each of the lower window frames (103) is provided with a control component (4) for controlling the folding and unfolding of the three sealing plates (2). The upper window frame (101) is provided with a baffle (5) to close the upper window frame (101), and a heat insulation block (6) adapted to the upper window frame (101) is fixed on the baffle (5). The upper window frame (101) is provided with a drive control component (7) to control the rotation of the baffle (5) to close the glass plate (102) or expose the glass plate (102). The drive control component (7) includes a groove (701) opened in the upper window frame (101), the groove (701) extends into the lower window frame (103), a transmission rod (702) is rotatably connected in the groove (701), the center line of the transmission rod (702) is parallel to the long side of the upper window frame (101), a number of cylindrical blocks (703) are coaxially fixed on the transmission rod (702), each of the cylindrical blocks (703) is provided with a socket (704) adapted to the baffle (5), the baffle (5) is inserted into the cylindrical block (703) through the socket (704) and fixed to the cylindrical block (703) by screws, and a motor for driving the transmission rod (702) to rotate is fixed on the upper window frame (101); The enclosure plate (2) and the baffle plate (5) are provided with adjustment components (8) for collecting light to increase indoor lighting; The adjustment assembly (8) includes an outer reflector (801) fixed on the top sealing plate (2). When the sealing plate (2) is folded, the upper surface of the outer reflector (801) is arranged horizontally. An inner reflector (802) is fixed on the side of the baffle (5) facing the glass plate (102).
2. The low-carbon building equipment according to claim 1, characterized in that: The control component (4) includes slide rails (401) fixed on both sides of the groove wall of the lower window frame (103). Each slide rail (401) is provided with a support (402), a first slider (403), a second slider (404) and a third slider (405) from top to bottom. The support (402) is fixedly connected to the slide rail (401), and the first slider (403), the second slider (404) and the third slider (405) are all slidably connected to the slide rail (401). The support (402), the first slider (403), and the second slider (404) are respectively rotatably connected to the first main support rod (406), the second main support rod (407), and the third main support rod (408) via short shafts. The three sealing plates (2) are respectively fixedly connected to the first main support rod (406), the second main support rod (407), and the third main support rod (408). The first main support rod (406), the second main support rod (407), and the third main support rod (408) are connected by a support assembly. The lower window frame (103) is provided with a drive assembly that drives the first main support rod (406) to rotate so as to drive the second main support rod (407) and the third main support rod (408) to rotate.
3. The low-carbon building equipment according to claim 2, characterized in that: The support assembly includes a first secondary support rod (409) hinged to the middle position of the first main support rod (406). The end of the first secondary support rod (409) away from the first main support rod (406) is rotatably connected to the first slider (403) via a short shaft. The end of the first main support rod (406) away from the support (402) is hinged to a second secondary support rod (410). The end of the second secondary support rod (410) away from the first main support rod (406) is rotatably connected to the second slider (404) via a short shaft. The second secondary support rod (410) is rotatably connected to the middle position of the second main support rod (407). The end of the second main support rod (407) away from the second slider (404) is hinged to a third secondary support rod (411). The end of the third secondary support rod (411) away from the second main support rod (407) is rotatably connected to the third slider (405) via a short shaft. The third secondary support rod (411) is rotatably connected to the middle position of the third main support rod (408).
4. The low-carbon building equipment according to claim 2, characterized in that: The drive assembly includes a support frame (412) fixed to the outer wall of the slide rail (401), an ear seat (413) fixed on the upper surface of the support frame (412), a cylinder (414) hinged to the ear seat (413), a pull rod (415) hinged to the extended end of the cylinder (414), and the end of the pull rod (415) away from the cylinder (414) fixed to the first main support rod (406).
5. A low-carbon building equipment according to claim 2, characterized in that: The sealing plate (2) bends downward on both sides, and the three portions of the sealing plate (2) bend downward on both sides are respectively fixedly connected to the first main support rod (406), the second main support rod (407) and the third main support rod (408) by screws. The insulation plate (3) is located on the lower surface of the sealing plate (2) and abuts against both sides of the sealing plate (2). The insulation plate (3) is fixed to the sealing plate (2) by screws.
6. The low-carbon building equipment according to claim 1, characterized in that: The bottom of the lower window frame (103) is inclined, and a guide groove is provided at the bottom of the groove of the lower window frame (103).