METHOD AND DEVICE FOR REDUCING A FLOW OF SOIL AIR TO INDOOR AIR IN A BUILDING
20180339259 · 2018-11-29
Inventors
Cpc classification
F24F7/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D53/02
PERFORMING OPERATIONS; TRANSPORTING
G21F1/00
PHYSICS
E04F13/007
FIXED CONSTRUCTIONS
F24F11/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02D31/00
FIXED CONSTRUCTIONS
F24F2007/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F8/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a method for reducing a flow of soil air to the indoor air in a building (1), wherein the building comprises at least one wall (2), which wall comprises a permeable channel (23) connected with soil air, wherein the method comprises achieving a flow stop (24) for the soil air in the permeable channel (23). The invention also pertains to a device to reduce the flow of soil air to indoor air in a building (1).
Claims
1. Method for reducing a flow of soil air to indoor air in a building (1), wherein the building comprises at least one wall (2), which wall comprises a permeable channel (23) connected with soil air, and the method comprises achieving a flow stop (24) for the soil air in the permeable channel (23).
2. Method according to claim 1, wherein said at least one wall (2) comprises an Inner part (21) and a faade (22) fitted on the Inner part, said faade comprises said permeable channel (23) and the permeable channel contains an air volume, and said flow stop (24) Is achieved by achieving a separation of at least a part of the wall's faade, so that the air volume is divided into a first air volume (25) and a second air volume (26).
3. Method according to claim 2, wherein the flow stop comprises a recess in the faade all the way into the permeable channel (23), so that a distance (d) is achieved between a first part of the faade (22), which includes the first air volume (25), and a second part of the faade, which includes the second air volume (26).
4. Method according to claim 1, wherein said flow stop (24) is obtained by Inserting an object, achieving a separation of the permeable channel (23).
5. Method according to claim 1, wherein said at least one wall (2) comprises an Inner part (21) and a faade (22) fitted on the inner part, and said flow stop (24) is obtained by removing a part of the faade, which is connected with the ground.
6. Method according to claim 1, wherein the flow stop runs along the wall from a first end to a second end.
7. Method according to claim 1, wherein the flow stop runs essentially horizontally on the building (1).
8. Method according to claim 1, wherein the building comprises four walls and the flow stop runs over all the four walls.
9. Method according to claim 2, wherein the flow stop comprises a drip strip (27), which is fitted in the wall and arranged to protect the faade below the flow stop from rain and snow.
10. Method according to claim 1, wherein the flow stop comprises a seal between the wall and a baseplate of the building.
11. Method according to claim 1, wherein the flow stop (24) Is arranged level with or lower than a floor on the ground floor of the building.
12. Device for reducing a flow of soil air to indoor air in a building (1), wherein the building (1) comprises at least one wall (2), which wall comprises a permeable channel (23) connected with soil air, and a flow stop (24) for the soil air in the permeable channel (23) to reduce the flow of soil air.
13. Device according to claim 12, wherein said at least one wall (2) comprises an Inner part (21) and a faade (22) fitted on the inner part, and wherein said faade comprises said permeable channel and said permeable channel contains an air volume, and the flow stop (23) comprises a separation of at least a part of the wall's faade, so that the air volume is divided into a first air volume (25) and a second air volume (26).
14. Device according to claim 12, wherein the flow stop comprises a recess in the faade (21), through the permeable channel (23), so that a distance is achieved between a first part of the permeable channel, which includes the first air volume (25), and a second part of the permeable channel, which includes the second air volume (26).
15. Device according to claim 12, wherein said flow stop (24) is obtained by inserting an object, achieving a separation of the permeable channel (23).
16. Device according to claim 12, wherein said at least one wall (2) comprises an Inner part (21) and a faade (22) fitted on the inner part, and said flow stop is obtained by removing a part of the faade, which is connected with the ground.
17. Device according to claim 12, wherein the flow stop comprises a drip strip (27), which is fitted in the wall and arranged to protect the faade below the flow stop from rain and snow.
18. Device according to claim 17, wherein the drip strip is designed with a drip protection part, which is Integrated with the drip strip or which is moveable in relation to the drip strip and may be attached to it.
19. Device according to claim 12, wherein the flow stop is integrated with the faade.
20. Device according to claim 12, wherein the flow stop comprises a seal between the wall and a baseplate of the building.
21. Device according to claim 12, wherein the flow stop (24) is arranged level with or lower than a floor on the ground floor of the building.
22. Building comprising at least one wall with a device according to claim 12.
23. Method for reducing a flow of soil air to Indoor air in a building (1), wherein the building comprises at least one wall (2) with an Inner part (21), which comprises a permeable area (23) where an air volume may move, and the method comprises creating a hole (41) from one side of the wall and into the permeable area (23), and operative connection of an extraction device (42) to said wall, so that an under-pressure is created in the wall.
24. Device for reducing a flow of soil air to Indoor air in a building (1), comprising at least one wall (2) with an Inner part (21), which comprises a permeable area (23) where an air volume may move, wherein a hole (41) runs from one surface of the wall and into the permeable area, and also comprising an extraction device (42) connected to said hole, so that an under-pressure is created in the wall.
Description
DRAWINGS
[0018] The invention is described in detail below with reference to the enclosed drawings, wherein
[0019]
[0020]
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[0022]
[0023]
[0024]
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DETAILED DESCRIPTION
[0027]
[0028] Please note that the use of terms such as up, down, top or bottom herein relate to the directions that are normally up and down on a building, i.e. up towards a roof and down toward the ground on which the building stands. Please also note that radon is specified here as an example of harmful substances in soil air, and that the invention is also advantageously used to reduce the level of other substances (humidity).
[0029] The figure also illustrates the second and hitherto unknown manner in which radon penetrates into the building. Inside the wall 2 there is generally an inner part 21, which is load bearing in at least some part of the wall, and a faade 22, which is attached to the inner part 21 and designed to provide insulation and a water-proof surface layer to prevent water from penetrating into the wall 2. Often, the faade 22 runs along the inner part 21 all the way down to the ground, to achieve a uniform appearance. In the faade 22 there is also a permeable channel 23 in which an air volume may move, often in the form of a pre-cast or plaster surface. Radon may penetrate into a wall from the surrounding ground and merge with the air volume, rising through thermal movement and penetrating into the building via leaks or penetrations in the inner part 21 of the wall 2, so that it merges with the indoor air. A permeable channel is thus an elongated area in the wall, which may be penetrated by air, in this case soil air containing radon gas.
[0030]
[0031] In
[0032] The flow stop 24 may thus be designed in many different ways, and in its simplest form it is a distance between the first air volume 25 and the second air volume 26, sufficiently large to allow circulation of outdoor air in the recess, which distance is within the interval 2 to 15 cm.
[0033] In
[0034] In
[0035] When the flow stop 24 is in the form of a recess as in
[0036] If the flow stop 24 is a recess, the recess is preferably approximately 2-15 cm high, depending on the load bearing capacity of the wall and its construction at a given building, but it is obvious that other height measurements or depth measurements may be suitable at certain buildings, depending on their specific characteristics.
[0037] Since the flow stop 24 is arranged at the same level or lower than a floor on the ground floor of the house, the soil air is efficiently prevented from penetrating into the ground floor and thus also into higher floors. It is thus very advantageous for the flow stop to be placed level with or lower than the floor, even if other placements may also be considered, depending on the design and characteristics of the wall, in particular the placement of the permeable channel.
[0038]
[0039]
[0040] Please note that the above description referring to one embodiment may also be freely combined with other embodiments, as a person skilled in the art will realise.