The invention relates to a corrugated product, comprising at least one first plane sheet and at least one second sheet arranged in wave shape. The first sheet is joined with the second sheet in joining areas, forming a framework shape having the joining areas arranged at tops of the second sheet.
The industrialization of the world has led to, and continuously leads to, increased transports and increased handling of products. This together with a focus on decreased cassation increases the demands on load carriers as well as on product protection intended to manage an increased handling and longer transport distances. The solution to this problem is often to use more rigid and more sophisticated packages and packing to protect the products. To accomplish this, the material content in the packages is increased or exchanged to a more durable packaging material. This leads to increased packing costs and environmental influence. One example of a common packing material of today is corrugated fibreboard.
It is also known that sheets of plastic material can be formed to wave shape and that such wave shaped sheets can be connected with plane sheets of similar material. One example of this is shown and described in U.S. Pat. No. 4,897,146. The corrugated material described in U.S. Pat. No. 4,897,146 is suitable to be used as roof or wall panels, but is less suitable for other purposes, such as for packing and similar.
Another material, showing good properties in connection with packing and transport, is disclosed in WO0108878. WO0108878 discloses a corrugated material comprising a plurality of material sheets, wherein at least a first plane sheet and a second wave shaped sheet of plastic material are connected to each other. For example, the corrugated material comprises three layers, wherein one corrugated layer is arranged between two plane layers. Alternatively, the corrugated material comprises two interconnected and opposite corrugated layers, which can be arranged between two plane layers. WO0108878 also discloses different material compositions in the different sheets. For example, an aluminium foil or similar material can be used in some sheet or an intermediate layer can comprise extensive amounts of filler and the outer layers can comprise less filler, wherein a plate material is provided that can resist higher loads in the direction of the channels. Further the corrugated sheet can be formed in a considerably thicker and stronger material than other layers to obtain more favourable characteristics concerning durability and impact resistance.
One drawback with this type of corrugated material of prior art is that the resistance, or strength of the material, not is satisfying. This can result in that packages and other packing as well as the products to be protected are damaged when transported or handled in another way. Also a smaller increase of the resistance leads to a substantial increase in consumption of material, which is a problem if increased demands on the material are to be met.
One object of the present invention is to reduce the problems and drawbacks of prior art packing materials. The corrugated product according to the invention makes it possible to, inter alia, obtain reduced consumption of material while maintaining the strength and resistance of the product, or increased strength and resistance while maintaining the consumption of material. This results in reduced costs and reduced environmental influence. Except increase in strength in relation to the consumption of material improved shock absorption, improved printability and improved piling stability can be obtained by some embodiments.
According to the invention a corrugated product is provided that comprises a plurality of cooperating material sheets. A first plane sheet is joined to at least one wave shaped second sheet. The plane form of the first sheet renders it suitable as a delimiting wall in packing and packages. The wave shape of the second sheet shows marked tops and has, in cooperation with the first sheet, a favourable ability to absorb forces acting upon the tops.
In the area around the tops the second sheet is joined with the first sheet in joining areas. Together, the first sheet and the second sheet form a framework shape having favourable resistance characteristics. By forming the second sheet with thinner portions in connection with the joining areas savings of material and costs are obtained.
By that the joining areas simultaneously include substantially the whole of the thinned portions of the second sheet this savings in material and costs are obtained without having a substantial effect on the strength of the corrugated material.
According to one embodiment of the invention a third sheet can also be joined with the second sheet, so that the first sheet and the third sheet are arranged on opposite sides of the second wave shaped sheet. The third sheet can be joined with the second sheet in joining areas, which consist of non-thinned or thinned portions of the second sheet. In additional embodiments one additional wave shaped sheet is included, which suitably is arranged with its wave tops against the wave tops of the second sheet, with or without thinned portions.
The material sheets used can comprise different kinds of material. Examples of suitable base materials are fibre, plastic, plastic composite and chalk. For some applications and applications with specific demands concerning tightness, heat insulation capacity or durability against moisture, one or more of the material sheets can be arranged in a plurality of layers, wherein layers of plastic materials as polypropylene and polyethylene, for example, can be combined with layers of fibre, aluminium and other materials having suitable properties.
A corrugated product according to the invention provides, inter alia, increased strength in relation to the consumption of material in a load direction across as well as along the channels of the corrugated material. This is obtained through that the framework formed by the first plane sheet and the second corrugated sheet provide a corrugated product having extensive rigidity and strength. This in combination with the thinned portions of the second corrugated sheet simultaneously results in reduced consumption of material of the second sheet. By that the first plane sheet of the product simultaneously has been joined with substantially the whole of the thinned portions of the second sheet the strength and rigidity of the product is substantially maintained. As a result the material thereby and in accordance with the invention is provided with a reduced flexibility in and around the thinned portion when this portion of the corrugated sheet has been joined with the outer sheet.
The invention will now be described more in detail by embodiment examples, reference being made to the accompanying drawings, in which
The first sheet 11 and the third sheet 13 are connected to the wave shaped second sheet 12 in joining areas 15, wherein the wave shaped second sheet 12 is arranged between the first sheet 11 and the third sheet 13. Thus, the first sheet 11 and the third sheet 13 are joined with the second sheet 12 in joining areas 15 forming a framework shape having the joining areas 15 arranged at the wave tops 14 of the second sheet 12.
The first substantially plane sheet 11 and the third substantially plane sheet 13 are arranged with a regular elevation 16 between adjacent joining areas 15, wherein a strong corrugated material having favourable resistance properties and shock absorbing properties is obtained. Hence, the first sheet 11 and the third sheet 13 project from the wave shaped second sheet 12 between the joining areas 15. According to this embodiment of the invention the elevations 16 are arranged with a height that is substantially lower than the height of a wave of the second sheet 12. For example, the elevation is formed as an arc of a sector of a circle or similar.
In reference to
For example, the distance between each top 14 of the second sheet 12 is substantially the same. It can also be suitable that the second sheet 12 is corrugated so that the angle between each bar 17 is about sixty degrees. However, it is obvious for a person skilled in the art that dimensions and angles can be modified according to the application.
By forming the wave shaped second sheet 12, or the corrugated intermediary sheet, with thinner portions 18 in the sections in which the wave shaped sheet 12 is joined to the other sheets, such as external outer sheets, a saving in material is obtained in the intermediary sheet. According to one embodiment the thinner portions 18, together with the angle and shape of the bars 17 of the wave shaped second sheet 12, can form a wave shaped second sheet 12 that has the same consumption of material at the same width, i.e. cross section area, as a corresponding plane and non-corrugated intermediary sheet would have without the thinner portions 18. According to one additional embodiment the thinner portions 18 of the wave shaped second sheet 12 is joined to the outer sheets across the entire width of the thinner portion 18 and, also, with the ends or adjacent portions of the wider bars 17.
The bars 17 of the wave shaped second sheet 12 can be straight, which results in a higher strength of the wave shaped second sheet 12 than arched bars or a sinusoidal corrugation.
The corrugated material 10 and/or the different material sheets used can comprise different types of materials. Examples of suitable base materials are fibre, plastic, plastic composites, chalk, cellulose, paper or starchbased materials. Examples of plastic materials are polypropylene, polyethylene, polystyrene, PVC and similar. For applications with specific demands concerning tightness, heat insulation capacity or resistance to moisture one or more of the material sheets can be formed in a plurality of layers, wherein layers of plastic materials, such as polypropylene and polyethylene, can be combined with layers of fibre, aluminium and other materials or mixtures thereof having suitable properties.
At least the second sheet is, for example, formed in a thermoplastic material or a material comprising a thermoplastic or a compound thereof. The material in the sheets can then, for example, comprise a filler of chalk or a filler of fibre in addition to the thermoplastic. It is however obvious for a layman that mixture of materials and structure can be modified as desired.
In reference to
In reference to
Thermoplastic is a generic term for polyolefines, such as polypropylene and polyethylene. Chalk is a mineral sediment consisting of, for example, calcium carbonate, dolomite and/or talc. Chalk is a generic term for calcium carbonate, dolomite and/or talc. By choosing the composition of the material sheets in a suitable manner, different properties of the corrugated material are obtained. According to one embodiment the corrugated material can consist of only one optional material, such as for example plastic, fibre, aluminium or any other suitable material. In further one embodiment the material sheets can have different compositions to obtain specific properties. In yet another embodiment each of the material sheets can have different layers, each consisting of different materials, such as fibre, plastic, plastic/fibre, plastic/chalk.
The sheets of the corrugated material can be glued together in a conventional manner. Sheets of materials such as plastic or plastic compound can advantageously be melted or welded together without adding any adhesive in the form of glue or similar. By providing those of the outer layers 21 and/or 23 of the sheets 11, 12, 13 that are in contact with another of the sheets 11, 12, 13 with a material having lower melting point a welding can be obtained without melting other layers 21, 22, 23 of the material sheets 11, 12, 13.
The elements of part A can all be arranged according to prior art. It is however important to note that different sheet materials, both thickness and material as such, can be arranged on the different rolls, as described above.
Before a second sheet 12, that is to be corrugated or formed in a wave shape, is brought together with the other sheets, it is suitably corrugated by means of a corrugation device. According to the illustrated embodiment the corrugation device comprises an upper corrugation roll 28 and a lower corrugation roll 29, which are described in more detail in reference to
After the corrugation device the corrugated sheet 12 is brought in between at least one set of upper core bars 30 and one set of lower core bars 31. An upper sheet 11 from the first roll 24 and a lower sheet 13 from the third roll 26 are brought together with the corrugated sheet 12 at the core bars 30 and 31. The core bars 30 and 31 extend in the mutual long direction V of the sheets, which is indicated by the corresponding arrow in
The sheets are heated by the core bars 30 and 31 and are joined to a corrugated plate material by cooperation with an upper pressure roll 32 and a lower pressure roll 33, which also force the sheets forward. After joining the ready-formed plate material can be brought forward in the direction of arrow V in a conventional manner by a propelling upper driving roll 34 and a propelling lower driving roll 36. The driving rolls 34 and 36 are included in a third part C, which, in a conventional manner, can comprise at least one laterally adjustable cutting mechanism 37 for cutting the plate material to desired width and one cutting mechanism for cutting the plate material to desired length. In the embodiment shown the cutting mechanism for length cutting comprises an upper cutter 38 and a lower cutter 39 cooperating with the upper cutter 38. Suitably, the cutters move up and down and cut the plate material into plates of suitable length. The size of the plates is highly dependent on the application they are intended for. The third part C as such is not part of the invention and can be arranged according to the current application.
In reference to
Preferably the tops 41 are rounded to suitably stretch the sheet at and around the portion of the sheet contacting the tops 41. The tops 41 are narrower than the recesses 40 to obtain a more favourable corrugation of the sheet to be corrugated and to improve the properties of the corrugated sheet. Consequently, the corrugated sheet is provided with linear portions having a thicker profile and more stretched, and thus thinner, folds. The sheet also runs freely in the space between the tops 41 and the recesses 40.
It should be noted that material thicknesses, relative distances between different components and other geometric relationships in the drawings are not in scale.
Number | Date | Country | Kind |
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023353-8 | Nov 2002 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE03/01733 | 11/11/2003 | WO | 12/2/2005 |