The present invention relates to a heat insulation (thermal insulation) structure of a door frame in which a moving window (sliding window) constituting a sliding window system is installed. More specifically, it relates to a heat insulation structure in the side section of a door frame into which the side of a sliding window is moved and inserted in a pocket type when closing the sliding window of a two-side supporting frame window type supporting both sides of the glass window constituting the sliding window.
In general, when a sliding window (moving window) and a fixed window of four-side supporting frame window type that support the four sides of the glass window with thick supporting frames as a movable window (sliding window) and a fixed window constituting a sliding window system are used (
Recently, however, in the case of pair glasses produced for construction and supplied to the market, its rigidity has improved to such an extent that there is no need to place a separate aluminum window chassis member on the lower or upper part, and the demand for a window system with a slimmer window chassis frame is increasing under the influence of modern architectural design that emphasizes the wide openness of windows. To reflect this trend and provide good heating and cooling energy efficiency, the use of a sliding window of a two-side support frame window type (see
As shown as an example of the Swiss Sky-frame company product in
However, when the sliding window 2 is closed, even if the window chassis 2b made of aluminum (AL), the side of which is inserted into an insertion pocket 1v on the door frame 1 side, is separated by the heat insulating member 2b2, a lot of heat is lost from the in-side portion of the aluminum metal side cap 2b1 to the out-side portion of the door frame 1 and the aluminum metal side cap 2b1 in contact with low-temperature outdoor air due to convection of air existing in the insertion pocket 1v. As a result, the temperature of the in-side portion of the aluminum metal side cap 2b1 is lowered, and consequently, energy efficiency is lowered. Furthermore, despite the high indoor temperature, the side cap 2b1 of the window chassis 2b made of an aluminum (AL) material has a low surface temperature, thereby exhibiting a problem in that dew condensation occurs.
On the other hand, as a means for avoiding such a problem, when the sliding window 2 is closed, the use of an aluminum material is avoided in the side part inserted into the insertion pocket 1v on the door frame 1 side, and the aluminum metal side cap 2b1 part is removed. A new side cap 2b1 may have the same configuration as in the example of Schueco's product in Germany in which the portion of the synthetic resin (PL; Plastic) or carbon fiber (CF; Carbon Fiber) insulating material is formed as the side cap 2b1. Nevertheless, it also cannot prevent heat loss due to convection of air present in the insertion pocket 1v, as well as the synthetic resin or carbon fiber side cap 2b1 alone, in an environment where strong wind acts on the glass, it is difficult to properly control the excessive deformation occurring in the glass support insulation bracket 2gb, there is a problem of exposing structural weaknesses.
The present invention is to solve the common problems of the prior art described above. In a sliding window system having a two-side supporting frame window sash that supports only both sides of a glass window constituting a sliding window, it is a technical problem of the present invention to provide a specially improved structure not only for securing a better glass panel fixing function by constructing a narrow window chassis 2b that exists only on both sides of the glass 2g with using an aluminum material having sufficient rigidity and durability, but also for achieving a better insulation function by blocking heat transfer due to convection or conduction in the insertion pocket formed on the side section of the door frame in the side section where the two-side supporting frame window chassis and the door frame are overlapping on each other, as much as possible.
In order to solve the above-described technical problem, the present invention provides an insulating structure in which a side chassis part of a two-side supporting frame window chassis and a door frame in a side section are overlapping on each other, when a sliding window is closed in a two-side supporting frame window type sliding window system that supports only both sides of the glass window constituting the sliding window,
wherein the insulating structure provide a supporting structure in which a roller is directly coupled to a lower glass supporting insulation bracket made of a flexible material without an aluminum chassis under the glass panel so that the roller slides along a guide rail on the door frame, and
wherein the insulating structure provide a foamed insert member for blocking thermal bridge in an insertion pocket of the door frame into which the side cap made of aluminum of the side chassis portion of the sliding window is inserted when a sliding window comprising a glass support insulation bracket attached to the side of the glass panel; and a side chassis portion having a side cap made of an aluminum material provided to support the glass support insulation bracket from the inner and outer surfaces, is sliding and is closing into a door frame,
wherein the foamed insert member for blocking thermal bridge is fixedly installed in a longitudinal direction on an inner part of the door frame with filling a gap space between the inner part of the door frame and the side cap made of an aluminum material of the side chassis portion of the sliding window, and
wherein a rubber gasket is installed in a longitudinal direction on an outer surface of the foamed insert member for blocking thermal bridge in order to provide airtightness between the side caps made of aluminum and the foamed insert member for blocking thermal bridge.
Here, in the insulating structure in which a side chassis part of a two-side supporting frame window chassis and a door frame in a side section are overlapping on each other, when a sliding window is closed in a two-side supporting frame window type sliding window system that supports only both sides of the glass window constituting the sliding window, the foamed insert member for blocking thermal bridge is formed to have a ‘⊂’ shape (a channel shape with one inner side open) so that can fill all of a front surface, a side surface, and a back surface of the insertion pocket of the door frame.
Meanwhile, in the insulating structure, the foamed insert member for blocking thermal bridge is formed by integrally molding a foamed plastic-based heat insulating material that can have both heat insulation properties and shape retention properties.
According to the insulating structure in the sliding window system of the two-side supporting frame window type to which the present invention is applied, in the side section where the two-side supporting frame window chassis and the door frame overlap each other when the sliding window is closed, by minimizing heat transfer due to conduction or convection that may occur inside the insertion pocket by filling the gap space in the insertion pocket between the inner side of the door frame and the aluminum side cap of the side chassis portion of the sliding window with the foamed insert member for blocking thermal bridge with excellent thermal insulation performance, it provides the effect of maximizing energy efficiency and preventing condensation.
In the sliding window system employing the structure according to the present invention, by making it possible to use a side cap made of an aluminum material having relatively high rigidity and durability in the side chassis of the sliding window, the insulation structure has a more stable control force against the displacement or deformation of the glass panel support bracket (glass support insulation bracket made of flexible material) generated by wind pressure.
In addition, it provides the effect of ensuring good thermal insulation performance through the foamed insert member for blocking thermal bridge with excellent thermal insulation performance that fills the gap space in the insertion pocket between the inner side of the door frame and the aluminum side cap of the side chassis portion of the sliding window.
Hereinafter, embodiments that are easily performed by those skilled in the art will be described in detail with reference to the accompanying drawings. However, the embodiments of the present invention may be achieved in several different forms and are not limited to the embodiments described herein.
As described above, in the sliding window improved to increase the openness of the windows, the present invention provides a new thermal insulation structure in a side section in which a door frame and a two-side supporting frame window chassis having a relatively narrow frame width compared to a four-side supporting window chassis are overlapping on each other. According to a preferred embodiment of the present invention illustrated through the drawings shown in the accompanying drawings
wherein the insulating structure, as shown in
wherein the insulating structure provide a foamed insert member for blocking thermal bridge 150 in an insertion pocket 100v of the door frame 100 into which the side cap 21a made of aluminum of the side chassis portion 21 of the sliding window 20 is inserted when a sliding window 20 comprising a glass support insulation bracket 20b attached to the side of the glass panel 20g; and a side chassis portion 21 having a side cap 21a made of an aluminum material provided to support the glass support insulation bracket 20b from the inner and outer surfaces, is sliding and is closing into a door frame 100 (see
wherein the foamed insert member for blocking thermal bridge 150 is fixedly installed in a longitudinal direction on an inner part 110 of the door frame 100 with filling a gap space between the inner part 110 of the door frame 100 and the side cap 21a made of an aluminum material of the side chassis portion 21 of the sliding window 20, and
wherein a rubber gasket 154 is additionally installed in a longitudinal direction on an outer surface of the foamed insert member for blocking thermal bridge 150 in order to provide airtightness between the side caps 21a made of aluminum and the foamed insert member for blocking thermal bridge 150.
Here, it is preferable for the foamed insert member for blocking thermal bridge 150 to be formed to have ‘⊂’ shape (a channel shape with one inner side open) that can fill all of a front surface, a side surface, and a back surface of the insertion pocket 100v of the door frame 100.
In addition, as shown enlarged as [Part-C1] in
On the other hand, according to the second embodiment of the present invention additionally shown in
Preferably, fitting protrusions 110a and 152a or fitting grooves for mutual fitting coupling are provided between the foamed insert member for blocking thermal bridge 150 and the inner side 110 of the door frame 100.
And, the foam rubber 156 (foam rubber) insulator having a closed-cell structure enlarged as [Part-C1] in
In addition, the foamed plastic-based heat insulating material 158 shown in
A numerical analysis model (outside temperature −18° C., room temperature 21° C.: temperature difference ΔT=39° C.) is designed to simulate the temperature of the window system configuration according to the embodiment of the present invention configured as above (that state in which the insertion pocket 110v is filled with the foamed insert member for blocking thermal bridge 150). As a result of the numerical analysis test, as shown in the accompanying drawings
And, s shown in the accompanying drawing
In the above, while describing in detail a preferred embodiment of the present invention is applied to window having a pair of glass in which a plurality of glass panels 20g are formed by overlapping each other by bonding with a predetermined interval and a sealing member there between to realize a vacuum in the gap. However, it should be understood that the terms of glass panels are not to be constructed as limiting the scope of the present invention, and various modifications and improvements by those skilled in the art using the basic concept of the present invention defined in the following claims are also within the scope of the present invention.
Filing Document | Filing Date | Country | Kind |
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PCT/KR2019/010601 | 8/20/2019 | WO |