The present invention relates to a formed leather trim cover having a 3-dimensional shape. More particularly, the invention relates a process for forming a 3-dimensional leather shape out of milled leather and an automotive seat trim cover formed from milled leather.
Various processes for forming 3-dimensional leather shapes are known in the art. One known process for making a 3-dimensional leather component comprises cutting one or more pieces of finished leather and sewing the pieces together forming one or more seams to achieve a desired 3-dimensional shape. In a second known process, tanned finished leather is softened by humidifying or soaking the leather prior to placing the softened leather into a compression mold to form a 3-dimensional leather shape. Another known process comprises heating the finished leather to between 150° C.-200° C., placing the heated leather on a surface of a vacuum form mold, vacuum forming the heated leather between 350 mmHg to 700 mmHg, and cooling the formed leather.
However, these known processes are complex, requiring preheating and/or prewetting the finished leather prior to the molding or forming step. Also, other known processes requiring cutting and sewing leather pieces together may result in multiple sewing seams. Further, sewn leather shapes may have seams in undesirable locations, may create an undesirable appearance, and may have reduced performance in use due to the multiple seams.
It is desirable, therefore, to form 3-dimensional leather shapes without preheating and/or hydrating the leather prior to a forming process. It is also desirable to have a 3-dimensional leather shape lacking sewing seams. Further, it is desirable to form leather seat trim covers with less seams for use in automotive vehicles. Finally, it is desirable to form seat trim covers with an increase in contour and/or detailed shapes while minimizing the number of seams.
A seat trim cover for an automotive seat formed from milled leather which lacks coatings and/or paint on the milled leather while retaining stored elongation introduced to the leather fiber structure during a milling process. At least one coating and/or paint is applied to an upper surface of the 3-dimensional leather shape after the milled leather is formed into a 3-dimensional leather shape.
Advantages of the present invention will be readily appreciated as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
The retanned split leather hides 84 are dried 90 to remove most of the moisture from the hides 84. The method used to remove most of the moisture from the hides 84 affects the properties of the finished leather 44. The hides 84 can be hung on hooks and the moisture allowed to evaporate naturally. Air drying hides 84 can result in shrinkage of about 25% and produces leather that can stretch in a limited range without tearing. A second known method is oven toggle frame drying in which the hides 84 are clipped to a frame (not shown) to minimize shrinkage during drying and then exposed to elevated temperatures to speed the moisture evaporation. This results in leather that has limited elongation within the fiber structure and less shrinkage when compared to air dried hides 84. Another commonly known drying method is vacuum drying which also results in minimal shrinkage as well as minimal elongation stored within the fiber structure of the hide 84.
Mechanical staking can be added during the drying process 90 and/or as a final staking step 18 after the drying process 90 to increase the hide size. A typically known mechanical staking process is a mechanical beating action provided by a machine to soften and stretch the hide 84. Generally, the hide 84 is staked while the hide 84 has sufficient moisture content to tolerate the stretching that occurs during the staking operation. Typically about 10% increase in hide surface area can be obtained by staking the hide 84 during the drying process 90. An exemplary staking process is described in U.S. Pat. No 7,047,665B2 in which hides 84 having a relative moisture content about 45% to about 65% are passed through a staking machine (not shown) having beating plates (not shown) to impart localized mechanical stresses on the hide 84 to stretch the hide 84. Optionally, the relative moisture content in the hides 84 may be reduced below 45% and the staking process 18 repeated to further stretch the hide 84. The relative moisture content in the hide 84 is further reduced to about 7% to 15% which results in a stiff dried hide 84.
To soften the hides 84, the hides 84 are milled in a tumbling process 94 to break up and relax fibers in the hide. The milling process 94 can shrink the hide 84 and reduce surface area by about 10%. The shrinkage in the hide 84 during the milling process 94 induces about 10% elongation or residual stretch into the hide fiber structure. The staking process 18 is repeated after milling 94. The staking process 18 stretches the hide 84 back to about the original size or larger depending on the amount and degree of staking 18. However, the final staking process 18 removes most or all of the residual stretch from the hide structure that was induced during the milling step 94. The more the hide 84 is stretched in the final staking process 18, the less residual stretch remains in the hide 84.
The staked hides 84 are then put through finishing processes 22 where paint is applied to the hide surface. Color, feel modifiers, and protective coatings may be applied to the hide 84 during the finishing processes 22. Filler materials may be applied to the hide 84 to cover up surface defects on the hide 84. Optionally, the hide 84 may pass through a heated die process to form a specific grained look to produce an embossed grain finished hide 44. Omitting the embossing operation results in a natural grain finished hide 44 which has the appearance of the natural grain as determined by hair follicles present in the hide 44. Painting and optionally embossing the hide 44 locks the hide 44 into a specific shape and size for the life of the hide 44. Once the hide 44 goes through these typical finishing processes 22, the amount of residual elongation remaining the in the hide 44 is about 2-5%. Finished hide 44 is cut or trimmed into usable pieces and referred to as “leather” or “finished leather” 44. However, hides 60 which have partially passed through various steps of typical hide processing may also be referred to as leather 60. Typically, leather 84 which has undergone final staking process 18 after a milling process 94, and further has undergone finishing processes 22 to add paint or a coating to the leather 84 is referred to as “finished leather” 44.
A variety of known processes 40 used to form 3-dimensional shaped leather pieces 98, 102 are also shown in
Another known process 118 of forming a 3-dimensional leather shape 102 is to vacuum form and/or compression mold a cut piece of finished leather 44 that has been hydrated prior to the forming operation. Hydrating the finished leather 44 increases the amount the finished leather 44 can be stretched without tearing. This process requires the formed leather shape 102 to be dehydrated (dried) and/or heated to remove the added moisture. Alternatively, the finished leather 44 may be pre-heated prior to and/or during the forming process 118. Combinations of hydration and heating may be used during forming operations 118 in order to produce the 3-dimensional leather shape 102 without tearing the finished leather 44.
A flow chart 32A according to an embodiment of the present invention for forming seamless 3-dimensional leather shapes 10 from milled leather 14 is shown in
However, after the milling process 94, hides 14 typically have ≈10% elongation built in to the fiber structure due to shrinkage that occurs in the milling/tumbling operation. By using milled leather 14 instead of finished leather 44, this stored elongation permits the milled leather 14 to be formed into 3-dimensional shapes 10 without additional processing steps 104, 118 since the stored elongation allows the milled leather 14 to be formed around curved shapes.
Referring again to
An embodiment of the process 40A for forming 3-dimensional leather shapes 10 from milled leather 14 is further illustrated in
Vacuum forming and/or compression molding milled leather 14 is suitable for forming 3-dimensional leather shapes 10 for various applications such as seating, furniture, or clothing. With this process, 3-dimensional leather surfaces are achievable with minimal or no surface sewing and without requiring hydrating and/or heating the finished leather during forming of the 3-dimensional shape 10. One-piece surface materials can now be used with shapes and designs that are difficult to achieve through traditional means from finished leather 44.
One-piece 3-dimensional leather shapes 10 made from milled leather 14 allow for a reduction and/or elimination of seams for leather seat trim covers 228 and leather trim pieces (not shown) used in vehicle interiors. Leather seat trim covers are commonly assembled by cutting pieces of finished leather 44 and sewing pieces together to form a 3-dimensional seat trim cover. Unfortunately, numerous seams may be required when cutting pieces and sewing together to form a desired 3-dimensional shape. Also, the amount of detail that can be included in the 3-dimensional shape is limited using a cut & sew method. However, when the seat trim cover 228 is formed from milled leather 14 as illustrated in
One benefit of forming 3-dimensional leather shapes from milled leather is a simplified process which does not require hydrating and/or heating the leather during a molding/forming process. A second benefit is a reduction or elimination of sewing seams on a finished 3-dimensional leather shape. An additional benefit is obtained by producing leather seat trim covers with less sewing seams. Further, more complex and increased contoured 3-dimensional leather shapes can be formed/molded from milled leather compared to typically used finished leather.
The invention has been described in an illustrative manner, and it is to be understood that the terminology, which has been used, is intended to be in the nature of words of description rather than of limitation. Many modifications and variations of the present invention are possible in light of the above teachings. It is, therefore, to be understood that within the scope of the appended claims, the invention may be practiced other than as specifically described.
This application claims priority to and all the benefits of U.S. Provisional Application No. 62/634,218, filed on Feb. 23, 2018, which is incorporated by reference herein.
Number | Date | Country | |
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62634218 | Feb 2018 | US |