The invention relates to a structural component in the form of a heat shield, consisting of at least two interconnected structural layers, of which one structural layer has a first type of depressions, which is oriented in the direction of the other structural layer, and of which the other structural layer has a second type of depressions, which is oriented in the direction of the first structural layer, and which is provided at least partially with a perforation or forms the perforation itself.
Structural components made as heat shields are known in various embodiments and are widely used in particular in automotive engineering. As a heat shield these structural components are designed to keep the heat released via radiation and/or convection from exhaust-carrying parts of internal combustion engines, turbochargers, and especially catalytic converters, away from adjacent components or body parts. Since the pertinent parts to be shielded are not only heat sources, but also noise sources, in addition to heat insulation, favorable acoustic shielding behavior is also extremely important.
DE-A-40 35 177 discloses a heat shield for shielding of exhaust-carrying parts on a motor vehicle, which has a reflector sheet which forms the front of the shield. In the reflector sheet there are several openings arranged in a grid, behind each opening there being a noise-absorbing chamber on the rear of the shield. The chambers themselves are formed by depressions of the chamber sheet metal which is attached to the reflector sheet metal. The indicated chambers are used in the known solution for sound absorption and they increase heat insulation. To enable recycling, all parts of the heat shield are preferably produced from a uniform material. The reflector sheet metal is furthermore securely joined to the so-called chamber sheet metal by way of a plurality of welds.
DE-A-199 25 492 discloses a thermal shielding sheet with two macrostructured, shaped sheet metal parts as individual structural layers. The two macrostructured, shaped sheet metal parts are interconnected via weld spots and via folds in the edge regions. The individual directions in which the macrostructured, shaped sheet metal parts run deviate from one another such that the depressions which form the macrostructure have different distances or widths to one another. In one especially preferred embodiment of the known solution, it is provided that between the macrostructured, shaped sheet metal parts there is another layer consisting of several aluminum foils in order in this way to improve the heat shielding function. In order to prevent heat from accumulating between the first and second macrostructured, shaped sheet metal parts, it is furthermore provided that passages in the manner of a perforation be formed in the surface regions of the first shaped sheet metal part, which regions run flat and to the outside on the side facing away from the heat and noise source.
EP-A-0 806 555 discloses a heat shield, especially for shielding of exhaust-carrying parts in motor vehicles, with at least one metallic insulating layer located between two cover layers, at least one insulating layer being formed by a sheet metal part which has been structured by means of a plurality of piercings, or a foil, and the burr of the piercings being slotted, jagged, or tongue-shaped. These burr parts in the known solution merely cause spot thermal contacts to adjacent layers or to the cover layers which preferably consist likewise of metal. If the burrs are advantageously bent to the outside, they cause spot doubling of the material thickness of the sheet metal part or the foil.
DE-C-197 23 943 likewise discloses a heat shield with an insulating layer located in the middle between two sheet metal cover layers in the form of a jagged sheet with openings in the manner of a perforation in both directions, that is, oriented toward the respective cover layer. In a continuation of the above described solution, some of the jagged burrs which are formed by the perforation are used to join the two sheet metal cover layers to one another, conversely the other burr parts or jagged parts extend with a distance provided between the two cover layers toward the latter without engaging them. In this way, within a shielding part smaller regions form with the indicated jagged connection and larger shielding regions form without this engagement.
DE-U-203 193 910 discloses a generic, acoustically active heat shield consisting of at least two metal foils, preferably of aluminum, which each have a plurality of nap-like embossed points, at least one of the metal foils being perforated. The perforated metal foil has a plurality of holes with an average hole diameter in the range from 0.05 to 0.9 mm, the holes being arranged in a density of at least 15 holes per cm2 in the metal foil, and the perforated metal foil on one side, preferably over the entire surface, being provided with an adhesive layer which can be thermally activated above 120° C. and which has a corresponding perforation. In the known structural component solution, the nap-like embossed points of the two structural layers in the form of metal foils abut one another, and viewed in cross section the respective metal foil forms a corrugated shape, the individual corrugations passing into one another in direct succession.
With respect to this prior art, the object of the invention is to devise a structural component which requires less installation space and in a simple construction enables economical production, is reliable in use, and in addition to good heat-insulating action also enables very effective noise insulation.
According to the invention this object is achieved by a structural component which has the features of claim 1 in its entirety.
The structural component according to the invention in the form of a heat shield according to the characterizing part of claim 1 is characterized in that the two structural layers are located on top of one another such that the second type of depressions fits at least partially between the first type of depressions and that the respective structural layer on its side facing away from the depressions has surface regions with a closed surface.
One structural layer with the first type of depressions in this case is located on the side facing away from the noise source and/or heat source. The otherwise closed surface which preferably forms a flat surface region with a first type of depressions can then be structured, depending on the respective application, such that both the penetration depth and also the shape of the respective depression as well as the distance between the individual adjacent depressions can be made variable. As a result of the structuring obtained in this way, the sound waves delivered by the individual insulating layers of the structural part which is made as a sandwich on the inside of the first structural layer are not reflected in the same direction, as they strike there, but are reflected refracted and therefore diffusely. This means on the one hand that the respective sound wave being reflected takes a longer route through the absorber which has been formed in this way, and thus more energy can be removed from it, and on the other hand that in the region of the original source of the sound too few overlaps can occur and therefore summation of the emitted and reflected acoustic waves cannot take place.
As a result of the alternating engagement with the spaces formed by the respective type of depressions of the first and second structural layer, the structural component solution according to the invention in terms of its installation height can be designed to be uniform and therefore space-saving, the contributing factor also being that for the effectiveness of shielding no additional components are necessary, such as intermediate foils between the structural layers. Since the use of additional adhesive sites or other connecting sites such as welds for joining the structural layers to one another can be dispensed with, the structural component according to the invention can be produced not only extremely economically, but is also reliable in use for high temperature applications; that is, in temperature ranges in which adhesive sites can detach or weld spots can fail by “oxidizing”.
The surface regions of the respective structural layer which run essentially closed to the outside and which are interrupted only by the depressions and/or by the respective perforation, on the whole lead to a buckling-resistant overall structure, however, the structural layers can be easily adapted on site to the circumstances by corresponding deformation as a result of the continuous surface regions which are kept relatively flexible; this is done by the structural component being matched to the respective heat and noise source by bending of the outside contour, for example, formed by the exhaust manifold of an exhaust-carrying part, the outside contour of a catalytic converter means, etc.
In one preferred embodiment of the structural component according to the invention, it is provided that the first and the second type of depressions are arranged in uniformly distributed groups on the respectively assigned structural layers and that the respective groups to one another and also the depressions of one group among one another have essentially the same distance to one another. It is especially preferably provided that one group of four depressions of the first or second type accommodates a single depression of the second or first type respectively between themselves. The uniform spacing of the groups among one another, with inclusion of the fact that in a top view parts of the depressions of the first and second type overlap in corner regions with a preferably rectangular, in particular square area, in terms of vibration behavior yielded especially good absorption behavior.
It is furthermore preferably provided that as the insulating layer between the individual structural layers, preferably formed from a sheet metal material, there is an acoustically, highly effective, high temperature-resistant insulating layer. The combination of structural layers in a sandwich structure is preferably produced by means of flanging of the unperforated first structural layer as the outside layer.
As a result of the special structuring in which sound admission via the second type of depressions of the second structural layer into the interior of the sandwich structure is ensured, especially in conjunction with acoustically highly effective insulation, a distinctly improved acoustic shielding action over a wide excitation region is effected, the second type of depressions with its free opening entry facing the respective noise source and/or heat source. In spite of the distinctly improved acoustic shielding action, the structural component according to the invention can be used for applications exposed to high thermal loads, for example within motor vehicles.
In one especially preferred embodiment of the structural component according to the invention, the respective first and second type of depressions are made funnel-shaped. The respective bottom of the first type of depressions here is preferably napped, at least for some of the bottoms of the second type of depressions as the perforation, there being one passage at a time which can also be bordered by the funnel-shaped depression itself. As a result of the use of structural funnels, on the one hand the noise which is incident on the structural component can be easily integrated within the sandwich structure and scattered diffusely with the correspondingly long transit times; this leads to very good acoustic insulating values for the structural component. In this connection it has also proven advantageous to choose the penetration depth of the depressions of the first and second type to be essentially identical and the number of depressions of the first type to be larger than the number of depressions of the second type relative to the surface section of the overall structural layers under consideration.
Other advantageous embodiments of the structural component according to the invention are the subject matter of the other dependent claims.
The invention will be detailed below using the drawings.
The structural component according to the invention, in particular made in the manner of a noise-insulating heat shield, consists essentially of two structural layers 10, 12 which can be joined to one another,
As is shown in particular by
For good damping action it has proven effective to make the penetration depth of the depressions of the first and second type 14, 16 more or less identical (cf.
In another embodiment as shown in
Between the depressions 14 and 16 the two structural layers 10, 12 have surface regions 30, 32 with an essentially closed surface. According to the embodiment as shown in
As
Preferably it is furthermore provided that at least one insulating layer 40 be placed between the two structural layers 10, 12, as is shown by way of example in
With the structural component according to the invention, a highly effective noise-insulating damping means is available to the engineer and moreover satisfies without difficulty thermal demands with respect to long-term resistance.
Number | Date | Country | Kind |
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10 2007 024 553.1 | May 2007 | DE | national |