INFLATABLE CELLULAR STRUCTURE AND ARTICLE EQUIPPED THEREWITH
20220290731 · 2022-09-15
Assignee
Inventors
Cpc classification
F16F2224/0225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/0472
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/049
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2226/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates, inter alia, to an inflatable shock-absorbing cellular structure (1) which consists of two sealed sheets (10, 11) welded together along weld lines (100) that define inflatable cells (2), said inflatable cells (2) being arranged according to at least one two-dimensional matrix (MA) of n rows (L1-L6) and m columns (C1-C6) of cells (2), n and m being the same or different integers, each greater than or equal to 2, a peripheral cell (2) of the matrix (MA) being connected to an inflation nozzle (4). Said structure is characterised in particular in that: —the cells (2) are not contiguous; —the cells (2) of the row and/or column to which the peripheral cell (2) connected to the inflation nozzle (4) belongs communicate with one another through a channel (3) forming a constriction, while each remaining cell (2) of the matrix (MA) is also connected to at least one of the neighbouring cells (2) of the same row and/or the same column through a communication channel (3) forming a constriction.
Claims
1. An inflatable shock-absorbing cellular structure which comprises two sealed sheets welded to each other along weld lines which delimit inflatable cells, said inflatable cells being arranged in at least one two-dimensional matrix of n rows and m columns of cells, n and m being equal or different integers, each greater than or equal to 2; a peripheral cell of said matrix is connected to an inflation nozzle; wherein: said cells are not contiguous; the cells of the row and/or of the column to which said peripheral cell connected to said inflation nozzle belongs, communicate step by step via a channel forming a constriction, while each remaining cell from said matrix is also connected to at least one of the neighboring cells of the same row and/or of the same column by a communication channel forming a constriction, each of said channels is shaped to slow down the flow of an inflation fluid passing therethrough, or said structure incorporates means shaped to slow down the flow of a fluid for inflating said cells through said channels forming a constriction.
2. The structure according to claim 1, wherein each cell of said matrix communicates with each of the neighboring cells of the same row and of the same column by a channel forming a constriction.
3. The structure according to claim 1, wherein, with the exception of the cells of the peripheral row and/or column connected to said inflation nozzle, the remaining cells communicate only with two of the neighboring cells of the same row and/or of the same column by a channel forming a constriction.
4. The structure according to claim 1, wherein it is provided with an overpressure exhaust valve.
5. The structure according to claim 1, wherein said sealed sheets are made of/based on thermoplastic polyurethane.
6. The structure according to any of the preceding claims claim 1, wherein, in the inflated state, the ratio between the largest dimension of the cross section of one of said cells and the largest dimension of the cross section of one of said channels is at least equal to 10, preferably at least equal to 14.
7. The structure according to claim 1, wherein said channels have a sinuous shape.
8. The structure according to claim 1, wherein at least some of said cells contain, at one end of said channel, a tilting flap which disappears that is to say retracts during the passage of said inflation fluid in a flow direction, respectively presses against said end of said channel in the opposite direction, thus impeding the passage of the fluid in said channel.
9. The structure according to claim 1. wherein a porous intermediate layer is interposed between said two sealed sheets.
10. The structure according to claim 9, wherein said intermediate layer is made abased on thermoplastic polyurethane.
11. An item, in particular a clothing item, for protection against shocks, wherein it is provided with at least one structure according to claim 1.
12. The clothing item according to claim 11, wherein it is chosen from the following group: bulletproof vest, breastplate, jacket, waistcoat, coat, body protective element.
Description
DESCRIPTION OF THE FIGURES
[0053] Other characteristics and advantages of the invention will appear from the description which will now be made with reference to the appended drawings, which represent, by way of indication but without limitation, various possible embodiments.
[0054] In these drawings:
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DETAILED DESCRIPTION OF THE INVENTION
[0066] The appended
[0067] This figure and the other figures are simply intended to illustrate the invention. This means that they do not reflect reality, in particular in terms of dimensions, shapes and proportions.
[0068] The aforementioned structure 1 essentially consists of two sealed sheets 10 and 11. Advantageously, these sheets are made of high-resistance plastic material. Thus, a preferred material within the framework of the invention is a “TPU”, that is to say a thermoplastic polyurethane.
[0069] In addition to its qualities of resistance even at reduced thickness, such a material is particularly suitable for a welding, in particular high-frequency welding, which is a well known technique for its high resistance.
[0070] In the embodiment presented here, the structure 1 is substantially inscribed within a square. However, this is a non-limiting shape so that the contour of the structure can have a different, for example rectangular, layout. In practice, this layout is adapted to the area of the body that this structure is required to protect. The two sheets 10 and 11 are welded to each other along weld lines 100 which delimit individual inflatable cells 2. The way in which this structure is manufactured will be considered later in the description.
[0071] According to the invention, the cells 2 are arranged within the structure 1 according to a two-dimensional matrix MA which consists of n rows and m columns of cells 2.
[0072] In the example shown here, n and m are equal to 6. However, this is an example so that these values can be different from six. In any case, according to the invention, these n and m are integers greater than or equal to 2. It is of course possible to envisage that the number of cells in at least one row and/or column is different from the rest of the rows and columns.
[0073] In the appended
[0074] In
[0075] Still according to the invention, a peripheral cell 2 of the matrix MA is connected to an inflation nozzle 4. This nozzle 4 is here integrated within an appendage 40 which is in one piece with the structure 1. In other words, this appendage 40 consists of the welded joining of the sheets 10 and 11. The nozzle 4 is for example of the type that can be connected to a hand pump.
[0076] The expression “peripheral cell” means one of the cells closest to one of the edges of the structure 1. It is the cell 2(L1/C1), but it could be, in another embodiment, the cell 2(L1/C3) for example.
[0077] According to the invention, the cells of the line L1 to which the cell 2 connected to the inflation nozzle 4 belongs communicate step by step that is to say from a cell 2 to the neighboring cell 2, by a channel 3 forming a constriction.
[0078] Throughout the present text, the term “channel” means a small duct that extends between two cells, without being part of them. Due to the presence of these channels, the cells are not contiguous because they are separated by channels, so that the weld lines which delimit a given cell are different from those that delimit a neighboring cell.
[0079] In practice, the channel 3 is delimited, like the cells 2, by the weld lines 100 mentioned above. The term “constriction” means that the width dimensioning of this channel is very much lower than that of the cells 2 with which it communicates.
[0080] Reference can be made to
[0081] According to the embodiment of
[0082] Under these conditions, once an inflation fluid such as air is introduced into the structure 1, it can spread into all the cells along random paths.
[0083] Referring now to
[0084] Due to the shape of the cells 2 and their non-contiguous organization (indeed, they are distant from each other due to the presence of the channels 3), there are at the crossroads of the non-peripheral cells “pads” 6 in general shape of a cross, in which the sheets 10 and 11 are not secured to each other. It will be noted here, in the center of these pads 6, the existence of orifices 60 which act as ventilation holes (“breathing” nature of the structure) and some of which authorize the structure 1 to be fixed to a support.
[0085] The presence of these pads 6 at the intersection of the rows and columns of cells 2 also authorize a certain deformation of the structure 1 along perpendicular directions, for example with a view to fixing it to a non-planar support.
[0086] Finally,
[0087] The example of
[0088] These have substantially the same “architecture” as the matrix M of
[0089] Thus, considering the matrix M1 and assuming that the inflation nozzle (not represented) is connected to the cell 2(L6/C6), the cells communicate step by step in the line L6. On the other hand, only the cell 2(L6, C1) communicates with the neighboring cell of the line L5 and it is noted step by step that the channels 3 are present only to ensure a communication between the cells 2 according to a spiral or substantially spiral organization.
[0090] Under these conditions and considering for example that the cell 2(L4/C5) undergoes a sufficient impact for it to deform, the air stored therein can only circulate through the channel 3 which connects it to the cell 2(L3/C5). It is easy to understand that its capacity to deform is lower compared to the same cell 2(L4/C5) of the structure 1 of
[0091] Under these conditions, it will be preferred to use a matrix M1 in situations in which the structure undergoes rapid and violent shocks, such as military context situations, for example war, riots, etc. On the other hand, the structure 1 of
[0092] Within the matrix M2 of
[0093] The embodiment of
[0094] It is however observed that the size of the cells 2 of the columns C3 and C4 is greater than that of the other cells.
[0095] This is explained for example by the morphology or by the region of the body that such a structure is intended to protect. Thus, for example, this structure is intended to cover the back of an individual, so that the largest cells 2 of the columns C3 and C4 will cover the vertebral region.
[0096] The situation represented in
[0097] Artificially, it is considered here that the cross section of the cells 2 and of the channels 3 is circular and their diameter was referenced D and d. In reality, these sections are not strictly circular. In figurative language, these sections look more like a rugby ball. Under these conditions, the values D and d correspond to the largest dimension of their section.
[0098] According to one advantageous embodiment of the invention, the ratio D/d is at least equal to 10, preferably at least equal to 14. Thus, the dimensions of the channels 3 are large enough to allow the inflation of the structure 1, but small enough to impede that is to say limit the exhaust of air to the neighboring cells in case of shocks.
[0099] It is also possible to envisage other means for limiting/impeding this exhaust of air.
[0100] Thus, in accordance with the embodiment of
[0101] In the case of the embodiment of
[0102] But as in the previous embodiment, this circulation is relatively impeded.
[0103] Thanks to the invention, the fact that the cells are not contiguous allows giving excellent deformability to the structure. Furthermore, due to the presence of channels between these cells and in accordance with all the embodiments described, it is possible to effectively slow down the displacement of the fluid between the cells, so that the shock wave transmitted by the targeted cells is only partially transmitted to the surrounding region.
[0104] In the alternative embodiment of
[0105] Finally,
[0106] Of course, in a variant not represented, the structure according to the invention can be simply placed inside a garment.
[0107] It will be noted that the organization of the cells 2 according to a two-dimensional matrix allows adapting the design of this matrix according to the clothing item desired to be equipped.
[0108] As an indication, such a structure, depending on the use to be made of it, is suitable for inflation of between 10 and 30 PSI, that is to say approximately 0.7 to 2 bar, which authorizes the use of a hand pump (or even a mini-compressor or an inflation bulb).
[0109] This structure adapts to a light weight impact at very high (ballistic) speed but also to a heavy weight impact at very low speed (fall during the practice of extreme sports) thanks to the wide possibility of adjustment of the pressure due to its resistance.
[0110] The different steps of an example of manufacture of a structure according to the invention can be summarized as follows:
[0111] 1/Definition of the resistance of the air flow rate at the outlet of the cells according to the concerned shock. By way of example, an impact of 200 joules leading to a transmitted force of 12,000 Newton or an impact of 50 Joules leading to a transmitted force of 4,000 Newton can be envisaged. In practice, a shot at 200 joules is for example carried out, a performance “X” is observed with a channel 3 of simple geometry. Then, the same test is carried out with another channel design and it is assumed here that the performance “Y” is acceptable. The best configuration for the envisaged application is then deduced therefrom.
[0112] 2/Calibration of the pressure relief valve 5;
[0113] 3/Drawings of the shape of the channels 3;
[0114] 4/Production of the mold for the HF welding;
[0115] 5/Welding of the TPU sheets according to their thickness;
[0116] 6/Inflation using the hand pump;
[0117] 7/Shock and measurement Validation using a sensor/the modeling clay known as “plastiline”/by the “pig test” (measurement of the cardiac rear effect on a living subject).
[0118] This last test consists of putting the animal in a brain-death situation, probing it and then measuring the heart rate change following the shot during the shot, its heart rate and other reactions can be measured.
[0119] Throughout the foregoing description, it has been envisaged that the fluid used to inflate the cells is air. But it is also possible to use a liquid such as water.