This application claims the benefit of the European patent application No. 16382622.5 filed on Dec. 20, 2016, the entire disclosures of which are incorporated herein by way of reference.
The present invention relates to structures capable of absorbing energy from energy sources such as a mechanical or an acoustic impact or a mechanical or an acoustic vibration.
In the aerospace industry there is a need for structures able to withstand mechanical impacts and several proposals thereof are known. For example, the document ES 2 398 287 A1 describes an impact resistant and damage tolerant fuselage part comprising a skin, a plurality of frames arranged perpendicular to the longitudinal axis of the fuselage and also an upper longitudinal box, with or without internal divisions, and a bottom longitudinal box, with or without internal divisions, that are configured to form together with the skin a multi-cell structure, belonging, in each cell, the outer side to the skin and the inner sides to the longitudinal boxes. The part also comprises a plurality of lateral beams which are interconnected with the frames to form a structural unit with the skin. The components are dimensioned so that the aircraft can cope with, for example, mechanical impacts from detached parts of aircraft engines to maintain a sufficient number of closed cells.
Regarding noise impacts, ES 2 221 586 A1 discloses the use of micro-perforated panels (MPP's) for skins in transportation means such as cars, trains, boats and planes. They are panels of thickness tin the range 0.2≤t≤5 mm, perforation diameter d in the range 0.05≤d≤2 mm, and perforation percentages in the range p 0.2≤p≤4%. The air cavity, in this case, may be filled with foam or wadding.
Thus, the solutions proposed in the prior art to address mechanical and acoustic impacts are very different. However structurally similar solutions for different energy sources are desirable.
The invention provides an energy absorbing structure for attenuating the energy received from an energy source comprising a deformable structure formed by an ensemble of one or more first layers of a material having a positive Poisson's ratio, one or more second layers of a material having a negative Poisson's ratio and one or more third layers of an elastomeric material placed between a first layer and a second layer. The ensemble must be arranged with one or more third layers joined to first and second layers for absorbing at least part of the energy through the shear forces or the combinations of traction and compression forces applied by the first and second layers as a consequence of their differential deformation after being submitted to an energy source.
The energy received by the energy absorbing structure can be the energy transmitted by a mechanical or an acoustic impact applied normal to the surface of the energy absorbing structure or mechanical or acoustic vibrations transmitted whether directly or by means of transmission elements to the energy absorbing structure.
In an embodiment the first and second layers are formed by a plurality of interconnected elements defining therebetween first and second hollow cells having, respectively, the form of regular hexagonal prisms and re-entrant hexagonal prisms.
In a group of embodiments the deformable structure is arranged in a rod-type manner between first and second load transmission elements.
In a group of embodiments the deformable structure is arranged in a membrane-type manner supported by first and second supporting elements.
In a group of embodiments the deformable structure is arranged in a plate-type manner supported by supporting elements.
In another embodiment the energy absorbing structure is arranged in a sandwich-type with two deformable structures and an inner core between them.
Other characteristics and advantages of the present invention will be clear from the following detailed description of embodiments illustrative of its object in relation to the attached drawings.
The Cells of the Deformable Structure
A typical cell 17 of the deformable structures used in the energy absorbing structures of the invention is formed by an ensemble of a layer 21 of a material having a positive Poisson's ratio (hereinafter a first layer 21), a layer 23 of a material having a negative Poisson's ratio (hereinafter a second layer 23) and a layer of an elastomeric material 25 (hereinafter a third layer 25) in between, being the third layer 25 joined to the first and second layers 21, 23.
In an embodiment, the first layer 21 has a honeycomb configuration in which their hollow cells 13 (see
Moreover the second layer 23 has a honeycomb configuration in which their hollow cells 14 (see
Poisson's ratio magnitude (positive or negative) of these layers 21, 23 depends on the angle α shown in
When it is submitted to a force F produced by an energy source, the cell 17 changes to a deformed cell 17′ (see
In the embodiment shown in
Rod-Type Energy Absorbing Structures
Within the meaning of this invention a rod-type energy absorbing structure is a deformable structure joined to first and second load transmission elements, one of them transmitting a force from an energy source, the other providing a reaction force.
In an embodiment (see
In another embodiment (see
In another embodiment (see
In another embodiment (see
The embodiments illustrated in
In the embodiments illustrated in
In another embodiment (see
In another embodiment (see
In another embodiment (see
In another embodiment (see
As an industrial example of the above mentioned structures,
The above-mentioned deformable structure 31 (and similarly other deformable structures) can therefore be used as a passive vibration dumping device for a system such as aircraft exposed to vibrations. In that case, the stiffness and the mass of the three layers of the deformable structure 31 can be tuned in order that the ensemble off such layers resonates for one or more target frequencies, so that when the system is excited by such frequencies, the deformation of the three layers will be increased and the elastomeric material will absorb a big part of the energy associated with those target frequencies. The deformable structure 31 acts, therefore, as a sink of energy that is removed from the aircraft to be protected, avoiding the undesirable effects that such vibrations could make to the aircraft.
One advantage of the rod-type energy absorbing structures of the invention, with regard to conventional elastomeric structures, is that the main loads pass through the first and second layers 21, 23 of the deformable structure and not through the elastomeric layers 25, so that the strength is not limited by the elastomeric material.
Another advantage is that it is possible to define the section and the material and angle of orientation of the first and second layers 21, 23, as well as the section and material of the third layers 25 for each specific rigidity, strength and dumping requirement.
Membrane & Plate-Type Energy Absorbing Structures
Within the meaning of this invention, a membrane-type energy absorbing structure is a deformable structure supported by first supporting elements in the direction of the expected force actuating on it, and second supporting elements in a perpendicular direction arranged in its corners.
In the membrane-type energy absorbing structures shown in
When subjected to a force F(t), due to any of the above-mentioned causes, the structure flexes and absorbs energy due the differential deformation of its layers (see in
In the membrane-type energy absorbing structure shown in
The deformable structure of 53 of the membrane-type energy absorbing structure shown in
Within the meaning of this invention, a plate-type energy absorbing structure is a deformable structure supported by supporting elements in the direction of the expected force actuating on it.
In the plate-type energy absorbing structure shown in
When subjected to a force F(t), due to any of the above-mentioned causes, the structure flexes and absorbs energy due the differential deformation of its layers.
Sandwich-Type Energy Absorbing Structures
Within the meaning of this invention, a sandwich type energy absorbing structure comprises two deformable structures 71, 75 and an intermediate inner core between them, such as a honeycomb or foam core 73 or alternatively formed by intermediate shear webs structure core 74, and supporting elements 79 (see
Any of the above-mentioned planar deformable structures can be used as a deformable structure 71 or 75.
Although the present invention has been described in connection with various embodiments, it will be appreciated from the specification that various combinations of elements, variations or improvements therein may be made, and are within the scope of the invention as defined by the appended claims.
While at least one exemplary embodiment of the present invention(s) is disclosed herein, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of this disclosure. This disclosure is intended to cover any adaptations or variations of the exemplary embodiment(s). In addition, in this disclosure, the terms “comprise” or “comprising” do not exclude other elements or steps, the terms “a” or “one” do not exclude a plural number, and the term “or” means either or both. Furthermore, characteristics or steps which have been described may also be used in combination with other characteristics or steps and in any order unless the disclosure or context suggests otherwise. This disclosure hereby incorporates by reference the complete disclosure of any patent or application from which it claims benefit or priority.
Number | Date | Country | Kind |
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16382622 | Dec 2016 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
5087491 | Barrett | Feb 1992 | A |
6110985 | Wheeler | Aug 2000 | A |
6179086 | Bansemir | Jan 2001 | B1 |
7160621 | Chaudhari et al. | Jan 2007 | B2 |
7896294 | Dittrich | Mar 2011 | B2 |
8127889 | Mathur | Mar 2012 | B1 |
9382962 | Scaroa et al. | Apr 2016 | B2 |
9995359 | Martino Gonzalez | Jun 2018 | B2 |
10066508 | Geiger | Sep 2018 | B2 |
20060208135 | Liguore | Sep 2006 | A1 |
20100040815 | Tiwari et al. | Feb 2010 | A1 |
20110233335 | Vinue et al. | Sep 2011 | A1 |
20120315456 | Scarpa | Dec 2012 | A1 |
20130264757 | Rajasekaran | Oct 2013 | A1 |
20160177567 | Gandhi | Jun 2016 | A1 |
20190202163 | Yeh | Jul 2019 | A1 |
20190271237 | Martin | Sep 2019 | A1 |
Number | Date | Country |
---|---|---|
104763772 | Jul 2015 | CN |
204592130 | Aug 2015 | CN |
103573891 | Apr 2016 | CN |
102013226573 | Jun 2015 | DE |
221586 | Oct 1976 | ES |
2398287 | Mar 2013 | ES |
2971233 | Aug 2012 | FR |
2010019583 | Feb 2010 | WO |
Entry |
---|
European Search Report, dated Jun. 2, 2017, priority document. |
Number | Date | Country | |
---|---|---|---|
20180174565 A1 | Jun 2018 | US |