External facade curtain wall capable of saving energy consumption
Through the integrated light-guided glass curtain wall, it uses optical fibers to conduct sunlight and focuses on the semiconductor refrigeration sheet to generate temperature difference, generate electrical energy for auxiliary power supply, and provides auxiliary heating through heat conduction connection mechanisms, which solves the energy consumption problem of curtain walls in high and low temperature seasons and improves the energy utilization efficiency of buildings.
Patent Information
- Application Number
- CN202510164550.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-05-13
AI Technical Summary
When the existing curtain walls are in high temperatures in summer, the buildings require a lot of energy to refrigerate, which consumes a lot of energy.
An integrated light-guided glass curtain wall is adopted to conduct sunlight through optical fibers, focusing on the semiconductor refrigeration sheet to generate temperature difference, thereby generating electrical energy for auxiliary power supply, and providing auxiliary heating when the indoor temperature is low through the heat conduction connection mechanism.
It has achieved the reduction of energy consumption of buildings through power generation in high temperature seasons, and reduced energy consumption through auxiliary heating in low temperature seasons, comprehensively improving the energy utilization efficiency of buildings.
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Figure CN119981339A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of facade curtain walls, and more particularly to an energy-saving facade curtain wall. Background Art
[0002] Curtain wall is the outer wall of the building, which is non-load-bearing and is hung like a curtain, so it is also called "curtain wall". It is a lightweight wall with decorative effect commonly used in modern large and high-rise buildings. It is composed of panels and supporting structure systems, and can have a certain displacement ability relative to the main structure or a certain deformation ability itself, and is an external protective structure or decorative structure of the building that does not bear the effects of the main structure.
[0003] In recent years, with the development of social economy and the improvement of living standards, people have higher and higher requirements for the comfort of buildings. The materials of curtain walls have become more and more advanced, and the heat insulation effect has become better and better. However, the energy-saving problem of curtain walls has not been completely solved. In summer, the temperature of curtain walls of many buildings varies greatly, from more than 20 degrees in the morning to more than 35 degrees Celsius at two or three o'clock in the afternoon. At high temperatures, central air conditioning is required for indoor cooling, which consumes a lot of energy. Therefore, the present invention provides an energy-saving facade curtain wall. Summary of the invention
[0004] 1. Technical problems to be solved
[0005] In view of the problems existing in the prior art, the purpose of the present invention is to provide an energy-saving facade curtain wall, which can achieve that when sunlight shines on the integrated optical glass curtain wall, the optical fiber in the integrated optical glass curtain wall can conduct the sunlight, so that the sunlight has a stable output point, and the sunlight will be focused on one side of the semiconductor refrigeration plate after being output through one end of the optical fiber, so that a huge temperature difference is generated on both sides of the semiconductor refrigeration plate, thereby generating electric energy, and the electric energy will be uniformly integrated into the circuit system of the building, so as to provide auxiliary power supply for the building, thereby reducing energy consumption. When the integrated optical glass curtain wall happens to correspond to the indoor room after installation, a heat conduction connection mechanism can be installed on the corresponding temperature difference power generation mechanism. On the one hand, the heat conduction connection mechanism enables it to be used as a guardrail, and on the other hand, the heat insulation packaging frame 2 can be removed when the indoor temperature is low, and the heat on the metal heat conduction frame can be conducted to the indoor room for auxiliary heating, thereby reducing energy consumption.
[0006] 2. Technical solution
[0007] To solve the above problems, the present invention adopts the following technical solutions.
[0008] An energy-saving facade curtain wall comprises a main mounting beam, one side of a pair of the main mounting beams are fixedly connected to a curtain wall mounting frame, an integrated light-conducting glass curtain wall is fixedly connected between the pair of curtain wall mounting frames, one side of the main mounting beam is also fixedly connected to a temperature difference power generation mechanism, one side of the integrated light-conducting glass curtain wall corresponds to the temperature difference power generation mechanism, and a heat conduction connection mechanism is fixedly connected between the temperature difference power generation mechanisms.
[0009] Furthermore, the integrated optical glass curtain wall includes a packaging frame, a tempered glass plate, an optical fiber, an insulating shading tube and a focusing convex mirror. The inner wall of the packaging frame is fixedly connected to a pair of tempered glass plates, and an optical fiber is arranged between the pair of tempered glass plates. One end of the optical fiber is distributed in a dot matrix on the outer tempered glass plate, and the other end of the optical fiber passes through the inner tempered glass plate and extends into the insulating shading tube. The insulating shading tube is fixedly connected to the inner tempered glass plate, and the inner wall is fixedly connected to the focusing convex mirror.
[0010] Furthermore, there is a chamber between the pair of tempered glass plates, and the chamber is filled with argon gas.
[0011] Furthermore, a through hole is provided on the inner tempered glass plate, the through hole corresponds to the heat-insulating light-shielding tube, the optical fiber passes through the inner tempered glass plate through the through hole, and the optical fiber and the through hole are sealed with epoxy resin.
[0012] Furthermore, the temperature difference power generation mechanism includes a heat insulation cover, a semiconductor refrigeration sheet, a heat conduction plate and heat conduction fins. The inner wall of the heat insulation cover is fixedly connected with a semiconductor refrigeration sheet, the side of the semiconductor refrigeration sheet close to the integrated light-conducting glass curtain wall is fixedly connected with a heat conduction plate, and the side of the heat conduction plate away from the integrated light-conducting glass curtain wall is fixedly connected with a heat conduction fin. A total of eight temperature difference power generation mechanisms are fixedly installed on a pair of the main mounting beams, and the eight temperature difference power generation mechanisms are connected by a heat conduction connection mechanism.
[0013] Furthermore, one side of the heat insulation cover is open, and one side of the heat conductive fin passes through the heat insulation cover and extends outward.
[0014] Furthermore, the heat conduction connection mechanism includes a heat insulation packaging frame 1, a metal heat conduction frame and a heat insulation packaging frame 2. The eight ports of the heat insulation packaging frame 1 are respectively fixed to the outer wall of the heat insulation cover, and the eight ports of the metal heat conduction pipe are respectively fixed to the heat conduction plate. The heat insulation packaging frame 1 is fixedly connected to one side of the heat insulation packaging frame 1. The heat insulation packaging frame 2 cooperates with the heat insulation packaging frame 1 to fully wrap the metal heat conduction frame.
[0015] Furthermore, screws are provided at the port of the second heat-insulating packaging frame, and the second heat-insulating packaging frame is fixedly connected to one side of the first heat-insulating packaging frame by means of the screws.
[0016] Furthermore, a hard metal fence is fixedly connected to one side of the second heat-insulating packaging frame.
[0017] 3. Beneficial effects
[0018] Compared with the prior art, the advantages of the present invention are:
[0019] (1) In this scheme, when sunlight shines on the integrated optical glass curtain wall, the optical fiber inside the integrated optical glass curtain wall can conduct the sunlight, so that the sunlight has a stable output point. After being output through one end of the optical fiber, the sunlight will be focused on one side of the semiconductor refrigeration plate, thereby causing a huge temperature difference on both sides of the semiconductor refrigeration plate, thereby generating electrical energy. The electrical energy will be uniformly integrated into the building's circuit system, thereby providing auxiliary power supply for the building and reducing energy consumption.
[0020] (2) In this scheme, when the integrated light-conducting glass curtain wall is installed and corresponds to the indoor space, a heat conduction connection mechanism can be installed on the corresponding temperature difference power generation mechanism. On the one hand, the heat conduction connection mechanism can be used as a guardrail to protect indoor personnel and reduce the cost of guardrail installation. On the other hand, the heat insulation packaging frame 2 can be removed when the indoor temperature is low. Since the sunlight is specifically focused on the heat conduction plate on one side of the semiconductor refrigeration plate, and the heat conduction plate is connected to the metal heat conduction frame, part of the heat generated by its focusing will be conducted to the metal heat conduction frame. When the heat insulation packaging frame 2 is removed, the metal heat conduction frame will be the same as the indoor space, thereby providing auxiliary heating for the indoor space and reducing energy consumption.
[0021] (3) In this scheme, when the weather is hot and there is no need for indoor heating, the first and second heat insulation packaging frames can block the heat conduction from the metal heat conductive frame to the indoor room. The metal heat conductive frame can serve as a heat conduction medium between the temperature difference power generation mechanisms. When the integrated optical glass curtain wall only receives part of the sunlight, the part that does not receive the sunlight cannot focus the sunlight to generate high temperature, but can receive the heat in other temperature difference power generation mechanisms through the metal heat conductive frame, thereby improving the temperature difference power generation effect.
[0022] In summary, when the outdoor temperature is high, the present invention mainly uses power generation. When sunlight shines on the integrated light-conducting glass curtain wall, it can focus the sunlight and use the temperature difference to generate electricity, thereby providing auxiliary power supply for the building, thereby reducing energy consumption. When the outdoor temperature is low, the present invention mainly uses auxiliary heating and uses power generation as a supplement. A part of the heat generated by the focus will be conducted to the room, thereby providing auxiliary heating for the room, thereby reducing energy consumption. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 It is a schematic diagram of the overall back structure of the present invention;
[0025] Figure 3 This is a schematic diagram of the structure of the integrated light-guiding glass curtain wall of the present invention in a disassembled state;
[0026] Figure 4 It is a schematic diagram of the heat conduction connection mechanism of the present invention in a disassembled state;
[0027] Figure 5 For the present invention Figure 4 The enlarged structural diagram at A in the middle;
[0028] Figure 6 It is a schematic diagram of the cross-sectional structure of the integrated light-guiding glass curtain wall of the present invention;
[0029] Figure 7 It is a schematic cross-sectional view of the temperature difference power generation mechanism of the present invention.
[0030] Description of the numbers in the figure:
[0031] 1. Main mounting beam; 2. Curtain wall mounting frame; 3. Integrated optical glass curtain wall; 31. Packaging frame; 32. Tempered glass plate; 321. Chamber; 322. Through hole; 33. Optical fiber; 34. Heat-insulating shading tube; 35. Focusing convex mirror; 4. Temperature difference power generation mechanism; 41. Heat-insulating cover; 42. Semiconductor cooling sheet; 43. Heat-conducting plate; 44. Heat-conducting fins; 5. Heat-conducting connection mechanism; 51. Heat-insulating packaging frame 1; 52. Metal heat-conducting frame; 53. Heat-insulating packaging frame 2; 531. Screws; 532. Hard metal fence. DETAILED DESCRIPTION
[0032] 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; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments, and all other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making creative work are within the scope of protection of the present invention.
[0033] In the description of the present invention, it should be noted that the terms "upper", "lower", "inner", "outer", "top / bottom" and the like indicate positions or positional relationships based on the positions or positional relationships shown in the drawings, and are 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 position, be constructed and operated in a specific position, and therefore cannot be understood as limiting the present invention. In addition, the terms "first" and "second" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance.
[0034] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "provided with", "mounted / connected", "connected", etc. should be understood in a broad sense. For example, "connected" 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 a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0035] Example:
[0036] See also Figure 1-6 A facade curtain wall that saves energy consumption comprises a main mounting beam 1, characterized in that: one side of a pair of main mounting beams 1 is fixedly connected to a curtain wall mounting frame 2, an integrated optical glass curtain wall 3 is fixedly connected between the pair of curtain wall mounting frames 2, one side of the main mounting beam 1 is also fixedly connected to a temperature difference power generation mechanism 4, one side of the integrated optical glass curtain wall 3 corresponds to the temperature difference power generation mechanism 4, and a heat conduction connection mechanism 5 is fixedly connected between the temperature difference power generation mechanisms 4.
[0037] During use of this solution, when the outdoor temperature is high, power generation is the main method. When sunlight shines on the integrated light-conducting glass curtain wall 3, the sunlight can be focused and electricity can be generated by utilizing the temperature difference, thereby providing auxiliary power supply for the building, thereby reducing energy consumption. When the outdoor temperature is low, auxiliary heating is the main method, with power generation as a supplement. A part of the heat generated by focusing will be conducted to the room by the heat conduction connection mechanism 5, thereby providing auxiliary heating for the room, thereby reducing energy consumption.
[0038] See also Figure 1-7 The integrated optical glass curtain wall 3 includes a packaging frame 31, a tempered glass plate 32, an optical fiber 33, a heat-insulating shading tube 34 and a focusing convex mirror 35. The inner wall of the packaging frame 31 is fixedly connected with a pair of tempered glass plates 32, and an optical fiber 33 is arranged between the pair of tempered glass plates 32. One end of the optical fiber 33 is distributed in a dot matrix on the outer tempered glass plate 32, and the other end of the optical fiber 33 passes through the inner tempered glass plate 32 and extends into the heat-insulating shading tube 34. The heat-insulating shading tube 34 is fixedly connected to the inner tempered glass plate 32, and the inner wall is fixedly connected with the focusing convex mirror 35.
[0039] The temperature difference power generation mechanism 4 includes a heat insulation cover 41, a semiconductor cooling sheet 42, a heat conduction plate 43 and a heat conduction fin 44. The inner wall of the heat insulation cover 41 is fixedly connected with the semiconductor cooling sheet 42, the side of the semiconductor cooling sheet 42 close to the integrated light-conducting glass curtain wall 3 is fixedly connected with the heat conduction plate 43, and the side of the heat conduction plate 43 away from the integrated light-conducting glass curtain wall 3 is fixedly connected with the heat conduction fin 44. A total of eight temperature difference power generation mechanisms 4 are fixedly installed on a pair of main mounting beams 1, and the eight temperature difference power generation mechanisms 4 are connected by a heat conduction connection mechanism 5.
[0040] During use of this solution, when sunlight irradiates the integrated light-conducting glass curtain wall 3, the optical fiber 33 in the integrated light-conducting glass curtain wall 3 can conduct the sunlight. After being output through one end of the optical fiber 33, the sunlight will be focused by the focusing convex mirror 35 on the heat-conducting plate 43 on one side of the semiconductor cooling plate 42, thereby generating a huge temperature difference on both sides of the semiconductor cooling plate 42, thereby generating electric energy, which will be uniformly integrated into the circuit system of the building, thereby providing auxiliary power supply for the building, thereby reducing energy consumption;
[0041] The sunlight is conducted through the optical fiber 33 so that the sunlight has a stable output point. The rising and setting of the sun and the angle of the sun will not affect the focusing.
[0042] See also Figure 6 There is a chamber 321 between the pair of tempered glass plates 32, and the chamber 321 is filled with argon gas.
[0043] During use of this solution, due to the characteristics of argon as an inert gas, the heat convection in the integrated light-guiding glass curtain wall 3 can be slowed down, and the sound insulation and noise reduction effect can also be greatly improved.
[0044] See also Figure 6 A through hole 322 is provided on the inner tempered glass plate 32 , and the through hole 322 corresponds to the heat-insulating light-shielding tube 34 . The optical fiber 33 passes through the inner tempered glass plate 32 through the through hole 322 , and the optical fiber 33 and the through hole 322 are sealed with epoxy resin.
[0045] During use of this solution, the epoxy resin sealant is a sealant based on epoxy resin, has excellent sealing properties and high bonding strength, and is widely used in the sealing and bonding of high vacuum and high airtightness parts in the fields of aerospace, electronics, machinery, etc., and can ensure the sealing of the integrated light-guiding glass curtain wall 3 to prevent internal gas leakage.
[0046] See also Figure 5 and 7 One side of the heat insulation cover 41 is open, and one side of the heat conducting fin 44 penetrates the heat insulation cover 41 and extends outward.
[0047] During use of this solution, the heat conducting fins 44 can dissipate heat from the semiconductor cooling plate 42, thereby further increasing the temperature difference between the two sides of the semiconductor cooling plate 42, thereby improving the power generation effect.
[0048] See also Figure 1-7 The heat conduction connection mechanism 5 includes a heat insulation packaging frame 1 51, a metal heat conduction frame 52 and a heat insulation packaging frame 2 53. The eight ports of the heat insulation packaging frame 1 51 are respectively fixed to the outer wall of the heat insulation cover 41, and the eight ports of the metal heat conduction pipe 52 are respectively fixed to the heat conduction plate 43. One side of the heat insulation packaging frame 1 51 is fixedly connected to the heat insulation packaging frame 2 53. The heat insulation packaging frame 2 53 cooperates with the heat insulation packaging frame 1 51 to fully wrap the metal heat conduction frame 52.
[0049] During the use of this solution, when the integrated light-conducting glass curtain wall 3 is just corresponding to the indoor room after installation, a heat conduction connection mechanism 5 can be installed on the corresponding temperature difference power generation mechanism 4. The heat conduction connection mechanism 5 can be used as a guardrail to protect the indoor personnel and reduce the guardrail installation cost. On the other hand, the heat insulation packaging frame 53 can be removed when the indoor temperature is low. Since the sunlight is specifically focused on the heat conduction plate 43 on one side of the semiconductor refrigeration plate 42, and the heat conduction plate 43 is connected to the metal heat conduction frame 52, part of the heat generated by its focusing will be conducted to the metal heat conduction frame 52. When the heat insulation packaging frame 53 is removed, the metal heat conduction frame 52 will be the same as the indoor room, thereby providing auxiliary heating for the indoor room, thereby reducing energy consumption;
[0050] When the weather is hot and no indoor heating is needed, the heat-insulating packaging frame 1 51 and the heat-insulating packaging frame 2 53 can block the heat conduction from the metal heat-conducting frame 52 to the indoor room. The metal heat-conducting frame 52 can serve as a heat conduction medium between the temperature difference power generation mechanisms 4. When the integrated optical glass curtain wall 3 is only partially exposed to sunlight, the part not exposed to sunlight cannot focus the sunlight to generate high temperature, but can receive heat from other temperature difference power generation mechanisms 4 through the metal heat-conducting frame 52, thereby improving the temperature difference power generation effect.
[0051] See also Figure 1-5 A screw 531 is provided at the port of the second heat-insulating packaging frame 53 , and the second heat-insulating packaging frame 53 is fixedly connected to one side of the first heat-insulating packaging frame 51 by the screw 531 .
[0052] During use of this solution, the second heat-insulating packaging frame 53 is installed on one side of the first heat-insulating packaging frame 51 by means of screws 531, which can ensure the stability of the second heat-insulating packaging frame 53 after installation.
[0053] See also Figure 6 A hard metal fence 532 is fixedly connected to one side of the second heat-insulating packaging frame 53 .
[0054] During use of this solution, the hard metal rail 532 can improve the strength of the heat-insulating packaging frame 53, thereby improving the protection effect for indoor personnel.
[0055] In the present invention, when sunlight irradiates the integrated optical glass curtain wall 3, the optical fiber 33 in the integrated optical glass curtain wall 3 can conduct the sunlight, so that the sunlight has a stable output point. After being output through one end of the optical fiber 33, the sunlight will be focused on one side of the semiconductor refrigeration plate 42, so that a huge temperature difference will be generated on both sides of the semiconductor refrigeration plate 42, thereby generating electric energy. The electric energy will be uniformly integrated into the circuit system of the building, thereby providing auxiliary power supply for the building, thereby reducing energy consumption. When the integrated optical glass curtain wall 3 is installed and corresponds to the room, it can be installed in the corresponding A heat conduction connection mechanism 5 is installed on the temperature difference power generation mechanism 4. On the one hand, the heat conduction connection mechanism 5 can be used as a guardrail to protect indoor personnel and reduce the guardrail installation cost. On the other hand, the heat insulation packaging frame 53 can be removed when the indoor temperature is low. Since the sunlight is specifically focused on the heat conduction plate 43 on one side of the semiconductor refrigeration plate 42, and the heat conduction plate 43 is connected to the metal heat conduction frame 52, part of the heat generated by its focusing will be conducted to the metal heat conduction frame 52. When the heat insulation packaging frame 53 is removed, the metal heat conduction frame 52 will be the same as the indoor temperature, thereby providing auxiliary heating for the indoor temperature and reducing energy consumption.
[0056] Among them, when the weather is relatively hot and no indoor heating is needed, the heat insulation packaging frame 1 51 and the heat insulation packaging frame 2 53 can block the heat conduction from the metal heat conductive frame 52 to the indoor, and the metal heat conductive frame 52 can be used as a heat conduction medium between each temperature difference power generation mechanism 4. When the integrated optical glass curtain wall 3 only receives partial sunlight, the part that does not receive sunlight cannot focus the sunlight to generate high temperature, but can receive heat from other temperature difference power generation mechanisms 4 through the metal heat conductive frame 52, thereby improving the temperature difference power generation effect.
[0057] The above is only a preferred specific implementation of the present invention; however, the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solution and its improved conception within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.
Claims
1. An energy-saving facade curtain wall, comprising a main mounting beam (1), characterized in that: One side of a pair of main body mounting beams (1) is fixedly connected to a curtain wall mounting frame (2), an integrated light-conducting glass curtain wall (3) is fixedly connected between the pair of curtain wall mounting frames (2), one side of the main body mounting beam (1) is also fixedly connected to a temperature difference power generation mechanism (4), one side of the integrated light-conducting glass curtain wall (3) corresponds to the temperature difference power generation mechanism (4), and a heat conduction connection mechanism (5) is fixedly connected between the temperature difference power generation mechanisms (4).
2. The energy-saving facade curtain wall according to claim 1, characterized in that: The integrated light-guiding glass curtain wall (3) comprises a packaging frame (31), a tempered glass plate (32), an optical fiber (33), a heat-insulating light-shielding tube (34) and a focusing convex mirror (35); the inner wall of the packaging frame (31) is fixedly connected to a pair of tempered glass plates (32); an optical fiber (33) is arranged between the pair of tempered glass plates (32); one end of the optical fiber (33) is distributed in a dot matrix on the outer tempered glass plate (32); the other end of the optical fiber (33) passes through the inner tempered glass plate (32) and extends into the heat-insulating light-shielding tube (34); the heat-insulating light-shielding tube (34) is fixedly connected to the inner tempered glass plate (32); and the inner wall is fixedly connected to the focusing convex mirror (35).
3. The energy-saving facade curtain wall according to claim 2, characterized in that: There is a chamber (321) between the pair of tempered glass plates (32), and the chamber (321) is filled with argon gas.
4. The energy-saving facade curtain wall according to claim 2, characterized in that: A through hole (322) is provided on the inner tempered glass plate (32), the through hole (322) corresponds to the heat-insulating light-shielding tube (34), the optical fiber (33) passes through the inner tempered glass plate (32) through the through hole (322), and the optical fiber (33) and the through hole (322) are sealed with epoxy resin.
5. The energy-saving facade curtain wall according to claim 1, characterized in that: The temperature difference power generation mechanism (4) comprises a heat insulation cover (41), a semiconductor cooling sheet (42), a heat conduction plate (43) and a heat conduction fin (44); the inner wall of the heat insulation cover (41) is fixedly connected to the semiconductor cooling sheet (42); the side of the semiconductor cooling sheet (42) close to the integrated light-conducting glass curtain wall (3) is fixedly connected to the heat conduction plate (43); the side of the heat conduction plate (43) away from the integrated light-conducting glass curtain wall (3) is fixedly connected to the heat conduction fin (44); a total of eight temperature difference power generation mechanisms (4) are fixedly mounted on a pair of the main body mounting beams (1); and the eight temperature difference power generation mechanisms (4) are connected to each other via a heat conduction connection mechanism (5).
6. The energy-saving facade curtain wall according to claim 5, characterized in that: One side of the heat insulation cover (41) is in an open shape, and one side of the heat conduction fin (44) penetrates the heat insulation cover (41) and extends outward.
7. The energy-saving facade curtain wall according to claim 5, characterized in that: The heat conduction connection mechanism (5) comprises a heat insulation packaging frame 1 (51), a metal heat conduction frame (52) and a heat insulation packaging frame 2 (53); the eight ports of the heat insulation packaging frame 1 (51) are respectively fixed to the outer wall of the heat insulation cover (41); the eight ports of the metal heat conduction pipe (52) are respectively fixed to the heat conduction plate (43); one side of the heat insulation packaging frame 1 (51) is fixedly connected to the heat insulation packaging frame 2 (53); the heat insulation packaging frame 2 (53) cooperates with the heat insulation packaging frame 1 (51) to fully wrap the metal heat conduction frame (52).
8. The energy-saving facade curtain wall according to claim 7, characterized in that: A screw (531) is provided at the port of the second heat-insulating packaging frame (53), and the second heat-insulating packaging frame (53) is fixedly connected to one side of the first heat-insulating packaging frame (51) by means of the screw (531).
9. The energy-saving facade curtain wall according to claim 7, characterized in that: A hard metal fence (532) is fixedly connected to one side of the second heat-insulating packaging frame (53).