HEATING/COOLING WALLS AND CEILINGS
20230304675 · 2023-09-28
Inventors
Cpc classification
F24D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A radiant heat transfer system for heating or cooling a room, has at least one heat exchange element in the form of a panel formed by a first plate and a second plate, the first and second plates being symmetrically profiled to form a flow channel arranged in a serpentine manner between the first and second plates for passage of a heat transfer fluid, wherein the first and second plates are pressed steel plates and are connected to each other by welding over the entire surface of the contact areas between the first and second plates, wherein the connection between the plates is made by laser welding, and wherein a surface texture obtained by laser treatment is present on the surface in contact with the heat transfer liquid of at least one of the first and second plates to increase the heat transfer.
Claims
1. A radiant heat transfer system for heating or cooling a room, comprising: at least one heat exchange element in the form of a panel formed by a first plate and a second plate connected to said first plate, said first plate and said second plate being symmetrically profiled so as to form, outside contact areas of said first plate and said second plate, a flow channel arranged in a serpentine manner between said first plate and said second plate for the passage of a heat transfer fluid, wherein said first plate and said second plate are pressed steel plates and are connected to each other by welding over the entire surface of the contact areas between said first plate and said second plate, wherein said connection between said plates is made by laser welding, and wherein a surface texture obtained by laser treatment is present on the surface in contact with the heat transfer liquid of at least one of said first plate and said second plate to increase said heat transfer.
2. The radiant heat transfer system according to claim 1, wherein said first plate and said second plate each have a thickness in the range of 2 to 5 mm.
3. The radiant heat transfer system according to any claim 2, wherein said flow channel has a width in the range of 3 to 10 cm and a height in the range of 2 to 4 mm.
4. The radiant heat transfer system according to claim 3, wherein one of the said first plate or said second plate comprises at one end of said flow channel a fluid inlet and at the other end of said flow channel a fluid outlet so as to connect said heat exchange element to a system for circulating said energy transferring heat transfer fluid.
5. The radiant heat transfer system according to claim 4, wherein several heat exchange elements may be interconnected.
6. The radiant heat transfer system according to claim 5, wherein said heat transfer fluid is water.
7. The radiant heat transfer system according to claim 6, wherein fastening means are arranged at the edge of said panel to mount it on structural support elements.
8. A ceiling of a room, comprising a structural ceiling support element and a radiant heat transfer system, wherein the radiant heat transfer system is for heating or cooling a room, and comprises: at least one heat exchange element in the form of a panel formed by a first plate and a second plate connected to said first plate, said first plate and said second plate being symmetrically profiled so as to form, outside contact areas of said first plate and said second plate, a flow channel arranged in a serpentine manner between said first plate and said second plate for the passage of a heat transfer fluid, wherein said first plate and said second plate are pressed steel plates and are connected to each other by welding over the entire surface of the contact areas between said first plate and said second plate, wherein said connection between said plates is made by laser welding, and wherein a surface texture obtained by laser treatment is present on the surface in contact with the heat transfer liquid of at least one of said first plate and said second plate to increase said heat transfer, and wherein each panel of said heat transfer system being suspended from said structural ceiling support element so that each of said panels defines a surface substantially parallel to the ceiling of the room, means being provided to supply an energy transferring heat transfer fluid to each panel.
9. A wall of a room, comprising a structural wall support element and a radiant heat transfer system, wherein the radiant heat transfer system is for heating or cooling a room, and comprises: at least one heat exchange element in the form of a panel formed by a first plate and a second plate connected to said first plate, said first plate and said second plate being symmetrically profiled so as to form, outside contact areas of said first plate and said second plate, a flow channel arranged in a serpentine manner between said first plate and said second plate for the passage of a heat transfer fluid, wherein said first plate and said second plate are pressed steel plates and are connected to each other by welding over the entire surface of the contact areas between said first plate and said second plate, wherein said connection between said plates is made by laser welding, and wherein a surface texture obtained by laser treatment is present on the surface in contact with the heat transfer liquid of at least one of said first plate and said second plate to increase said heat transfer, and wherein each panel of the heat transfer system being suspended from said structural wall support element so that each of said panels defines a surface substantially parallel to the wall of the room, means being provided to supply an energy transferring heat transfer fluid to each panel.
10. A heat transfer slab of a room, comprising a radiant heat transfer system, wherein the radiant heat transfer system is for heating or cooling a room, and comprises; at least one heat exchange element in the form of a panel formed by a first plate and a second plate connected to said first plate, said first plate and said second plate being symmetrically profiled so as to form, outside contact areas of said first plate and said second plate, a flow channel arranged in a serpentine manner between said first plate and said second plate for the passage of a heat transfer fluid, wherein said first plate and said second plate are pressed steel plates and are connected to each other by welding over the entire surface of the contact areas between said first plate and said second plate, wherein said connection between said plates is made by laser welding, wherein a surface texture obtained by laser treatment is present on the surface in contact with the heat transfer liquid of at least one of said first plate and said second plate to increase said heat transfer, and wherein each panel is arranged in said slab, means being provided to supply an energy transferring heat transfer fluid to each panel.
11. (canceled)
12. The radiant heat transfer system according to claim 1, wherein said flow channel has a width in the range of 3 to 10 cm and a height in the range of 2 to 4 mm.
13. The radiant heat transfer system according to claim 1, wherein one of the said first plate or said second plate comprises at one end of said flow channel a fluid inlet and at the other end of said flow channel a fluid outlet so as to connect said heat exchange element to a system for circulating said energy transferring heat transfer fluid.
14. The radiant heat transfer system according to claim 1, wherein several heat exchange elements may be interconnected.
15. The radiant heat transfer system according to claim 1, wherein said heat transfer fluid is water.
16. The radiant heat transfer system according to claim 1, wherein fastening means are arranged at the edge of said panel to mount it on structural support elements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The present invention will be better understood, and other features and advantages will become apparent, upon reading the detailed description of the embodiments taken as non-limiting examples and illustrated by the appended drawings, in which:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DESCRIPTION OF THE EMBODIMENTS
[0034] The present invention relates to the field of space heating and cooling, for example, of one or more rooms in a house, by means of radiant heat transfer systems installed in the ceiling, walls, or in a slab under a floor, through the circulation of a heat transfer fluid, the fluid circulating in one or more fluidly connected panels, the panels being said to be heating or cooling.
[0035] According to the invention, to heat or cool, for example, a room, the heat transfer system comprises at least one heat exchange element in the form of a panel 1 of the type illustrated in
[0036] For reasons of clarity, but without presenting any limitation to the present invention, the first plate A will be called lower, i.e. when the panel is installed, the one facing the empty volume of the room to be heated or cooled, and the second plate B will be called upper, i.e. the one facing the ceiling, the wall, the floor of the room to be heated or cooled.
[0037] The first A and the second plate B are made of steel, preferably stainless steel. These plates A, B are profiled and may be obtained by stamping so as to form a relief on one of the faces of the first plate A and of the second plate B. The first plate A and the second plate B are pressed symmetrically so that when the first plate A and the second plate B are superimposed on each other to form the panel 1, contact areas are created between them by which the first plate A and the second plate B will be connected, and non-contact areas are created between them, these non-contact areas forming a kind of channel 3 for the passage of the heat transfer fluid.
[0038] According to the invention, in order to connect the first plate A and the second plate B in an airtight manner and thus forming a closed volume for the circulation of the heat transfer fluid in the panel 1 between an inlet E and an outlet S, preferably arranged on the upper second plate B, the first plate A and the second plate B are subjected to laser welding on the contact areas. The laser welding is carried out on the edges of the first plate A and the second plate B and between the stamped areas forming the relief which is oriented towards the outside of the first plate A and the second plate B.
[0039] As seen in
[0040] The shape of the panel 1 described above will be better understood from the sectional views along AA, BB and CC of
[0041] According to the invention, in order to optimize the exchange of calories between the heat transfer fluid and the panel 1, the first plate A and the second plate B each have a chosen thickness in the range of 2 to 5 mm, making it possible to create the serpentine flow channel 3 extending longitudinally and having, for example, a chosen width in the range of 3 to 10 cm and a chosen height in the range from 2 to 4 mm.
[0042] According to the invention, a surface texturing by laser may be performed on the surface in contact with the heat transfer fluid of at least one of the first plate A and the second plate B to increase the heat transfer, both in hot and cold mode. An example of surface texturing by laser is illustrated by waves in
[0043] To connect the heat exchange element in the form of a panel 1 to a circulation system of the energy transferring heat transfer fluid, pipes may be crimped to the fluid inlet E and the fluid outlet S, at each end of the flow channel 3.
[0044] Depending on the size and volume of the room to be heated or cooled, several heat exchange elements may be required, in such a way that they may be connected to each other. For example, a fluid inlet E of a first panel 1 may be connected to an outlet of a heat generator by a connecting pipe, the fluid outlet S of the first panel 1 being able to be directly connected in series by another connecting pipe to the fluid inlet E of a second panel 1, the fluid outlet S of which being able to be connected by another connecting pipe to the fluid inlet E of a third panel 1, etc. until the fluid outlet S of the last panel 1 is connected by a last connecting pipe to an inlet of the heat generator.
[0045] The panels 1 do not have any particular direction of fluid flow, so the outlet S and the inlet E may be reversed. The assembly of the panels 1 is thus facilitated.
[0046] Advantageously, the conductive material of the panel 1 of a radiant heat transfer system, such as stainless steel, allows the use of any heat transfer fluid to heat or cool a room. The heat transfer fluid may be water or any other antifreeze liquid such as glycol, or refrigerant. In the case where the heat transfer fluid is water, the maintenance procedures for the installation may advantageously be limited to, for example, a simple backwashing of the flow channel 3 of the panel 1. Moreover, the panel 1 being airtight and the material of the panel 1 being made of stainless steel, there is no risk of oxygenation of the water or of the fluid circulating therein.
[0047] Lastly, as the radiant heat transfer system according to the invention puts the heat transfer fluid directly in contact with the internal surface of the panel 1, it is a low temperature system. To heat a room, the circulation of heat transfer fluid in the panels 1, for example at between 23 and 25° C., makes it possible to heat the room to a comfort temperature between 19 and 21° C., and has the advantage of providing a uniform temperature in the room, without air mixing, without noise, and quickly because it has low inertia.
[0048] To heat the heat transfer fluid between 23 and 25° C., any type of heat generator in heating mode may be used, such as a gas, fuel oil, or electric boiler, a heat pump, or even solar panels, which would be the most economical and efficient.
[0049] To cool a room with the radiant heat transfer system according to the invention, the panels 1 may be connected with, for example, a reversible heat pump or even be supplied with water cooled by a geothermal system.
[0050] It will be understood that for the installation of the radiant heat transfer system according to the invention, as illustrated in
[0051] In view of the good efficiency, it is not necessary for the radiant heat transfer system according to the invention to cover the entire surface of ceilings and walls. For example, in
[0052] A heat-reflecting insulator 5 is installed beforehand between the ceiling or the wall and the ceiling or wall structural support elements, an empty space being provided between the panel 1 and the insulator 5.
[0053] It will be understood that the radiant heat transfer system according to the invention has high energy performance and great comfort. Installation is also very easy and quick.
[0054] According to the invention, to improve the appearance, the panels 1 may be covered with plasterboard covering plates, or directly with a canvas stretch ceiling, for example. In addition, the panel 1 may for example support any type of decorations on the first lower plate A on the room side.
[0055] The radiant heat transfer system according to the invention may also concern a heat transfer slab of a room, with panels 1 arranged in the slab, means being provided for supplying a heat transfer fluid to each panel 1.
[0056] The radiant heat transfer system according to the invention may advantageously be integrated into existing buildings, in lining or in partition.
[0057] It goes without saying that the present invention is not to be limited to the above-mentioned embodiment, which may be modified without going beyond the scope of the invention.