ventilation device for fire fighting
The ventilation device with dual modules and opposite rotating propellers addresses the challenge of covering rectangular entrances efficiently and compactly, achieving superior airflow with reduced power and enhanced mobility.
Patent Information
- Application Number
- FR2024000728
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-25
- Publication Date
- 2025-08-01
AI Technical Summary
Existing ventilation devices struggle to effectively cover rectangular-shaped entrances while maintaining a compact size and efficient power usage, as increasing propeller size is necessary to cover the entire entrance, which affects mobility and power requirements.
A ventilation device comprising two ventilation modules with a deployment mechanism that allows it to switch between a storage position for compact transport and a deployed position for extended air flow coverage, utilizing a base module and wheels for mobility, with opposite rotating propellers to minimize airflow conflicts.
The device achieves enhanced air flow coverage of rectangular-shaped inlets with reduced power consumption and improved mobility, demonstrating that two identical fans with power P provide greater airflow than a single fan with power 2P.
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Abstract
Description
Title of the invention: ventilation device for fire fighting FIELD OF THE INVENTION
[0001] The present invention relates to the field of firefighting. In particular, the present invention relates to a ventilation device intended to be used for the evacuation of smoke formed when a fire breaks out. TECHNOLOGICAL BACKGROUND OF THE INVENTION
[0002] Entering a building damaged by a fire generally requires evacuating the smoke resulting from said fire. Indeed, this smoke generally includes gases and hot particles that may be toxic, explosive and / or opaque.
[0003] The evacuation of fumes can in particular be carried out by the use of a ventilation device. Such a ventilation device comprises a propeller mounted coaxially in a tubular casing. The ventilation device further comprises an air flow guiding means provided in the casing to obtain a concentrated air jet with a substantially oval cross-section.
[0004] In practice, the installation of the fan is associated with the creation of the inlet and an outlet. In particular, the inlet, for example the opening of a door, is intended to allow access to the building, while the outlet allows the fumes to be evacuated to the outside. The ventilation device, for its part, is arranged outside the building, so as to generate an air flow towards the inlet. This air flow, by entering the building through the inlet, imposes an overpressure in said building, and thus allows the fumes to be evacuated through the outlet.
[0005] The evacuation of fumes thus makes it possible to limit the risks of generalized fire ("Flash-over" according to Anglo-Saxon terminology), to improve the visibility of people likely to intervene in the building, but also to limit the risks of poisoning of the latter.
[0006] Thus, a ventilation device known from the state of the art is described in patent application FR 2 890 569 AL
[0007] In particular, this application discloses a ventilation device, and in particular a propeller fan which comprises a means for guiding the air flow produced by said propeller. The guiding means is, in this respect, in the form of a tubular casing mounted coaxially with the axis of rotation of the propeller. The ventilation device further comprises deflectors arranged in the tubular casing to straighten and concentrate the air flow produced by the propeller of the fan.
[0008] Generally, this type of fan (1) as shown in [Fig.8], comprises a propeller (2) and a tubular casing (3) for channeling and axially guiding the truncated cone-shaped air flow (4) produced by it, shown in [Fig.l].
[0009] Nevertheless, such a ventilation device placed in front of a rectangular-shaped entrance, and in particular a door, cannot effectively cover the entire extent of said entrance unless the propeller size is increased. This latter aspect is not without consequences, on the one hand, on the size of the ventilation device, the mobile and transportable nature of which remains a selection criterion, and on the other hand, on the power required to drive a larger propeller.
[0010] Thus, in order to overcome this problem, it was possible to propose, in patent application FR 3 033 501 A1, a fan for firefighting comprising a propeller mounted coaxially in a tubular casing to produce an axial air flow, characterized in that it comprises an air flow guide device provided in the casing to obtain a concentrated air flow with a substantially oval cross-section.
[0011] However, ovalization of the air flow alone only partially addresses the above-mentioned problem.
[0012] Thus, an aim of the present invention is to propose a ventilation device capable of producing an air flow capable of covering a rectangular-shaped inlet while limiting the power necessary for the operation of said device.
[0013] Another object of the present invention is to make the ventilation device easily transportable. BRIEF DESCRIPTION OF THE INVENTION
[0014] The aims of the present invention are, at least in part, achieved by a ventilation device for fighting fires, the device comprising two ventilation modules called, respectively, first ventilation module and second ventilation module, each ventilation module comprising two main faces opposite one another, and is configured to generate an air flow in a direction going from one of its main faces, called rear face, towards the other of its main faces, called its front face;
[0015] the device further comprises a deployment mechanism configured to allow the ventilation device to adopt one or the other of a storage position and a deployed position, the storage position being a position for which the ventilation modules are stacked in a direction perpendicular to their main faces, while the deployed position is a position for which the first ventilation module has one of its main faces in the extension of one of the main faces of the second ventilation module, advantageously the ventilation device also comprises wheels intended to allow its movement.
[0016] According to one embodiment, the deployment mechanism comprises a first hinge connecting, in a pivot connection, the first ventilation module with the second ventilation module.
[0017] According to one embodiment, the deployment mechanism comprises a single pivot connection, substantially perpendicular to the main faces between the two ventilation modules, said pivot connection being arranged to allow the pivoting of the first ventilation module around the single pivot connection when passing between the storage position and the deployed position.
[0018] According to one embodiment, the deployment mechanism comprises a sliding connection, arranged to allow the deployment by translation of the first ventilation module around when passing between the storage position and the deployed position.
[0019] According to one embodiment, said ventilation device also comprises a base module provided with two main faces opposite one another, said base module being arranged so that when the ventilation device is in its storage position, the first ventilation module is interposed between the second ventilation module and the base module, the base module having one of these main faces opposite one of the main faces of the first ventilation module.
[0020] According to one embodiment, the deployment mechanism also comprises a second hinge connecting, in a pivot connection, the first ventilation module and the base module, advantageously, the ventilation device further comprises a module of angular adjustment means configured to adjust the angle between the ventilation modules and the base module between 10° and 180° as soon as the ventilation device is in its deployed position.
[0021] According to one embodiment, the base module is also linked to the first and second ventilation modules by means of the single pivot connection.
[0022] According to one embodiment, the base module is also linked to the first ventilation module by means of another sliding connection, the deployment of the ventilation device involving an extraction of the first ventilation module from between the second module and the base module.
[0023] According to one embodiment, each ventilation module comprises a tubular casing and a propeller mounted coaxially to the tubular casing, and in which the propeller of the first ventilation module is configured to rotate in a direction opposite to the direction of rotation of the propeller of the second ventilation module, each ventilation module is provided with a motor intended to drive in rotation the propeller carried by the ventilation module in question.
[0024] According to one embodiment, said ventilation device comprises one or more batteries intended to power the motors. Brief description of the drawings
[0025] Other characteristics and advantages of the invention will emerge from the detailed description which follows with reference to the appended figures in which:
[0026] [Fig-1] [Fig.l] is a schematic representation of a ventilation device in accordance with the general principles of the present invention, in particular, in [Fig.l] the ventilation device is arranged, in its deployed position, outside a building B and opposite an entrance E of said building B;
[0027] [Fig.2] [Fig.2] is a schematic representation of the ventilation device according to a first embodiment of the present invention, in particular, [Fig.2] represents the ventilation device in its deployed position;
[0028] [Fig.3] [Fig.3] is a schematic representation of the ventilation device of [Fig.2], said device being deployed;
[0029] [Fig.4] [Fig.4] is a schematic representation of the ventilation device of [Fig.2], said device being in its storage position;
[0030] [Fig.5] [Fig.5] is a schematic representation of the ventilation device of [Fig.2] and provided with wheels;
[0031] [Fig.6] [Fig.6] is a schematic representation of the ventilation device according to a first variant of another embodiment of the present invention;
[0032] [Fig.7] [Fig.7] is a schematic representation of the ventilation device according to a second variant of another embodiment of the present invention;
[0033] [Fig.8] [Fig.8] represents the ventilation device according to a third variant of another embodiment of the present invention and in the storage position;
[0034] [Fig.9] [Fig.9] represents the ventilation device according to the third variant of the other embodiment of the present invention and in an intermediate position;
[0035] [Fig. 10] [Fig. 10] shows the ventilation device according to the third variant of the other embodiment of the present invention and in the deployed position. DETAILED DESCRIPTION OF THE INVENTION
[0036] The present invention relates to a ventilation device provided with three modules, including a base module and two ventilation modules, respectively called the first ventilation module and the second ventilation module.
[0037] This ventilation device is notably configured to adopt one or the other of a storage position and a deployed position.
[0038] The storage position is in particular a position which makes it possible to limit the size of the device, and in particular allows storage in a reduced space, such as an emergency vehicle, in particular a fire intervention vehicle, intended to intervene at the scene of a disaster. This storage position also allows operators, for example firefighters, to move the ventilation device more easily.
[0039] The deployed position is a position for which the two ventilation modules are arranged so that the air flows generated by each of said two modules are superimposed in a vertical direction.
[0040] Such a configuration makes it possible to obtain an extended air flow compared to that formed by a single ventilation device. Furthermore, the inventors were able to observe that the air flow obtained by two fans each having a given power P was greater than the air flow imposed by a single fan with a power equal to twice P.
[0041] Thus, the present invention relates to a ventilation device for fighting fires, the device comprising three modules among which there is a base module, and two ventilation modules called, respectively, first ventilation module and second ventilation module, each module comprising two main faces opposite one another, each ventilation module being configured to generate an air flow in a direction going from one of its main faces, called rear face, towards the other of its main faces, called its front face;
[0042] The device further comprises a deployment mechanism configured to allow the ventilation device to adopt either a storage position or a deployed position, the storage position being a position for which the modules are stacked in a direction perpendicular to their main faces, the first ventilation module being interposed between the second ventilation module and the base module, while the deployed position is a position for which one of the two ventilation modules has one of its main faces in the extension of one of the main faces of the other of the two ventilation modules.
[0043] The present description refers to a basic module. However, it is understood that this basic module as described does not form an essential characteristic of the present invention. More particularly, those skilled in the art may consider a ventilation device without the basic module, or replace the latter with a frame, and in particular a tubular frame.
[0044] [Fig. 1] is a schematic representation of a ventilation device 1 in accordance with the general principles of the present invention. In particular, in [Fig. 1] the ventilation device 1 is arranged, in its deployed position, outside a building B and opposite an entrance E of said building B.
[0045] The arrows A1 and A2 represent the respective flows of two ventilation modules called, respectively, first ventilation module 2 and second ventilation module 3 of the ventilation device. These two flows A1 and A2 are in particular su perposed along a direction Z and add up to form a resulting flow A covering the surface of the incoming E.
[0046] [Fig.2], [Fig.3] and [Fig.4] are schematic representations of the ventilation device 1 according to a first embodiment of the present invention. In particular, [Fig.2] represents the ventilation device in its deployed position, [Fig.4] represents the ventilation device in its stowed position, and [Fig.3] represents the ventilation device 1 being deployed.
[0047] In particular, as illustrated in [Fig.2], [Fig.3] and [Fig.4], the ventilation device may comprise three modules, among which there is a basic module 4 (non-essential), and two ventilation modules called, respectively, first ventilation module 2 and second ventilation module 3.
[0048] In particular, each module 2, 3 and 4 comprises two main faces opposite one another. More particularly, each ventilation module 2 and 3 is configured to generate an air flow in a direction going from one of its main faces, called the rear face, towards the other of its main faces, called its front face.
[0049] More particularly, the first ventilation module 2 is configured to generate an air flow in a direction going from one of its main faces, called the rear face 2b, towards the other of its main faces, called its front face 2a.
[0050] Equivalently, the second ventilation module 3 is configured to generate an air flow in a direction going from one of its main faces, called the rear face 3b, towards the other of its main faces, called its front face 3a.
[0051] According to the embodiment illustrated in [Fig.2], [Fig.3] and [Fig.4], the ventilation device 1 further comprises a deployment mechanism configured to allow the ventilation device 1 to adopt one or the other of a storage position and a deployed position.
[0052] In particular, the storage position, illustrated in [Fig. 4], is a position for which the modules 2, 3 and 4 are stacked in a direction perpendicular to their main faces, the first ventilation module 2 being interposed between the second ventilation module 3 and the base module 4.
[0053] In other words, in this storage position, the rear face 2b of the first ventilation module 2 is opposite a main face of the support module 4, while the front face 2a of the first storage module 2 is opposite the front face 3a of the second storage module 3.
[0054] As illustrated in [Fig.2], the deployed position is a position for which one of the two ventilation modules has one of its main faces in the extension of one of the main faces of the other of the two ventilation modules.
[0055] More particularly, according to this embodiment, the first ventilation module 2 and the second ventilation module 3 are superimposed, for example according to a essentially vertical direction (or approaching within plus or minus 10° the vertical direction), by their contour surface, the contour surface of a ventilation module being a surface joining the front face and the rear face of the ventilation module considered.
[0056] Still according to this embodiment, the base module 4 rests by one of its main faces, called the contact face, on the ground.
[0057] It is understood, without it being necessary to specify it, that all of the modules remain linked together, whether they are in their storage position ([Fig.4]), in their deployed position ([Fig.2]) or in an intermediate position ([Fig.3]).
[0058] In this regard, and according to this embodiment, the deployment mechanism may comprise a first hinge 6 and a second hinge 7. The first hinge connects, in a pivot connection, the first ventilation module 2 with the second ventilation module 3, the second hinge connects, in a pivot connection, the first ventilation module 2 with the base module 4. Thus, and according to this embodiment, the deployment mechanism is configured so that when the ventilation device 1 is in its deployed position, the front face 2a of the first ventilation module 2 is in the continuity of the front face 3a of the second ventilation module 3.
[0059] As illustrated in [Fig. 5], the ventilation device 1 may be provided with wheels 8, for example integral with one or the other of the first ventilation module 2 or the base module 4, in order to facilitate its transport. In particular, the transport may involve a partially deployed position of said ventilation device, said partially deployed position being a position for which the two ventilation modules have their front face in the extension of one another while the rear face of the first ventilation module remains opposite a main face of the base module 4, opposite the contact face.
[0060] Each ventilation module 2, 3 may comprise a tubular casing 9 and a propeller 10 mounted coaxially to the tubular casing 9 ([Fig.l]).
[0061] Each ventilation module is provided with a motor 11 intended to drive in rotation the propeller carried by the ventilation module in question ([Fig.l]).
[0062] Advantageously, the propeller of the first ventilation module is configured to rotate in a direction opposite to the direction of rotation of the propeller of the second ventilation module. This configuration makes it possible to limit the risks of conflict between the air flows generated, respectively, by the first ventilation module and by the second ventilation module.
[0063] [Fig.6] is a schematic representation of the ventilation device according to a first variant of another embodiment of the present invention.
[0064] This first variant of this other embodiment differs from the embodiment described in relation to [Fig.2] to [Fig.5], in that the deployment mechanism comprises at least one slide.
[0065] According to this first variant, the at least one slide is in particular arranged to allow the deployment by translation of the first ventilation module. More particularly, the at least one slide is arranged to allow the sliding of the first ventilation module relative to the base module and to the second ventilation module. This sliding makes it possible to extract, in a direction of a plane carried by one of the main faces, the first ventilation module from between the second ventilation module and the base module.
[0066] [Fig.7] is a schematic representation of the ventilation device according to a second variant of the other embodiment of the present invention.
[0067] This second variant differs from the first variant in that the deployment mechanism comprises a single pivot connection between the three modules, said pivot connection being arranged to allow the pivoting of the first ventilation module around the single pivot connection when passing between the storage position and the deployed position.
[0068] [Fig. 8], [Fig. 9] and [Fig. 10] are schematic representations of the ventilation device according to a third variant of the other embodiment of the present invention. This third variant differs from the first variant and the second variant in that the deployment means comprise levers 10 allowing deployment by translation of the first ventilation module.
[0069] This variant does not consider the implementation of the basic module.
[0070] [Fig.8] shows in particular the ventilation device in the storage position.
[0071] [Fig.9] shows in particular the ventilation device in an intermediate position.
[0072] [Fig. 10] shows in particular the ventilation device in the deployed position.
[0073] Whatever the variant considered, deployment is carried out by leaving the base module and the second ventilation module immobile.
[0074] The various embodiments make it possible to give an elongated shape to the profile of the air flow generated by the ventilation device, so that said flow allows better coverage of a rectangular-shaped inlet.
[0075] Furthermore, the inventors have observed experimentally, and counter-intuitively, that the implementation of two identical fans and a power P, within the framework of the present invention, offered a gain, in terms of air flow, greater than the simple consideration of ventilation with a power P' equal to twice the power P.
[0076] Of course, the invention is not limited to the embodiments described and variant embodiments can be made without departing from the scope of the invention as defined by the claims.
Claims
Claims
1. Ventilation device (1) for fighting fires, the device comprising two ventilation modules called, respectively, first ventilation module (2) and second ventilation module (3), each ventilation module comprising two main faces opposite one another, and is configured to generate an air flow in a direction going from one of its main faces, called rear face, towards the other of its main faces, called its front face;the device further comprises a deployment mechanism configured to allow the ventilation device (1) to adopt one or the other of a storage position and a deployed position, the storage position being a position for which the ventilation modules are stacked in a direction perpendicular to their main faces, while the deployed position is a position for which the first ventilation module (2) has one of its main faces in the extension of one of the main faces of the second ventilation module (3), advantageously the ventilation device (1) also comprises wheels (8) intended to allow its movement.;
2. A ventilation device (1) according to claim 1, wherein the deployment mechanism comprises a first hinge (6) pivotally connecting the first ventilation module (2) with the second ventilation module (3).
3. A ventilation device (1) according to claim 1, wherein the deployment mechanism comprises a single pivot connection, substantially perpendicular to the main faces between the two ventilation modules, said pivot connection being arranged to allow the first ventilation module (2) to pivot around the single pivot connection when passing between the storage position and the deployed position.
4. Ventilation device (1) according to claim 1, in which the deployment mechanism comprises a sliding connection, arranged to allow the deployment by translation of the first ventilation module (2) around when passing between one and the other of the storage position and the deployed position.
5. Ventilation device (1) according to one of claims 1 to 4, wherein said ventilation device (1) also comprises a module base module (4) provided with two main faces opposite one another, said base module (4) being arranged so that when the ventilation device (1) is in its storage position, the first ventilation module (2) is interposed between the second ventilation module (3) and the base module (4), the base module (4) having one of these main faces opposite one of the main faces of the first ventilation module (2).
6. A ventilation device (1) according to claim 5 and claim 2, wherein the deployment mechanism also comprises a second hinge (7) pivotally connecting the first ventilation module (2) and the base module (4), advantageously, the ventilation device (1) further comprises a module of angular adjustment means configured to adjust the angle between the ventilation modules and the base module (4) between 10° and 180° when the ventilation device (1) is in its deployed position.
7. A ventilation device (1) according to claim 5 and claim 3, wherein the base module (4) is also connected to the first and second ventilation modules by means of the single pivot connection.
8. A ventilation device (1) according to claim 5 and claim 4, wherein the base module (4) is also connected to the first ventilation module (2) by means of a further sliding connection, the deployment of the ventilation device (1) involving an extraction of the first ventilation module (2) from between the second module and the base module (4).
9. Ventilation device (1) according to one of claims 1 to 8, wherein each ventilation module comprises a tubular casing (9) and a propeller mounted coaxially to the tubular casing (9), and wherein the propeller of the first ventilation module (2) is configured to rotate in a direction opposite to the direction of rotation of the propeller of the second ventilation module (3), each ventilation module is provided with a motor (11) intended to drive in rotation the propeller carried by the ventilation module in question.
10. A ventilation device (1) according to claim 9, wherein said ventilation device (1) comprises one or more batteries for powering the motors (11).
Citation Information
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