The present invention relates to a heating element with a heater resistor and at least two contact regions arranged a distance apart from one another on the heater resistor. Generic heating elements are used to heat surfaces of useful items standing in contact with a user.
It is known to contact electrically conductive textiles with sewn-on electrodes. However, this process is very cost-intensive under certain circumstances.
It is also known to use metallic or metallized adhesive tapes as electrodes for flat heater resistors. However, problems arise regarding the durability of the adhesive connection and in ensuring adequate passage of current from the electrode to the flat heater resistor.
Riveted connections are also known. However, these represent a source of mechanical problems. Moreover, riveted connections only provide a point electrical contact.
The present invention provides a heating element with a flat heater resistor and at least two contact regions that are arranged a distance apart from one another on the heater resistor. At least one of the contact regions has a stranded wire assembly which stands in electrically conductive connection with the heater resistor over a relatively apart distance. The stranded wire assembly is comprised of a plurality of filament wires loosely twisted together. It should be understood that loosely twisting the filament wires together can also be referred to as the stranded wire assembly being twisted. A heating element in accordance with the present invention permits the introduction of current from an electrode to a flat heater resistor over a large area. In addition, it is easy to automate production of such a connection, and thus it is economical. Moreover, such an electrode is also capable of withstanding continuous mechanical stress.
A heating element in accordance with the present invention wherein the distance over which the stranded wire assembly is in contact with the heater resistor is greater than 2 cm, such as 10 cm, is also disclosed. Such a heating element is characterized by a good conductive connection between an electrode and a flat heater resistor.
A heating element wherein the stranded wire assembly stands in electrically conductive connection with the heater resistor over essentially all of a direction of extension of the heater resistor is also disclosed. Such a heating element permits distribution of the supplied current over the entire available width or length of the heating element.
A heating element wherein the number of filament wires is at least 40, such as 60-120 or 80-110, is also disclosed. Such a heating element has a great number of current-carrying filament wires and hence a large contact surface between electrode and flat heater resistor.
A heating element wherein the diameter of the filament wire is between 10 and 100 μm, such as between 40 and 60 μm, is also disclosed. Such a heating element has a relatively large diameter of the filament wires in comparison to conventional stranded wires. As a result, the resistance of the individual wires is reduced.
A heating element wherein two stranded wire assemblies are provided instead of a single stranded wire is also disclosed. Such a heating element permits an increase in the amount of current that can be supplied without excessively increasing the material costs.
A heating element wherein the stranded wire assembly has a maximum of 10 turns per meter for twisting of the filament wires about its longitudinal axis, such as 5 turns per meter or 1 turn per meter, is also disclosed. This means that the filament wires within the stranded wire assembly are twisted together with a maximum 10 turns per meter. Such a heating element permits conformation of the stranded wire to the heating element over a large area, due to twisting of the loosely wound filament wires. The transition resistance is significantly reduced in this way.
A heating element wherein the filament wires and/or the stranded wire assemblies have a silver coating, is also disclosed. Such a heating element likewise produces a reduction in transition resistance.
The description to follow deals with possible conformations of the invention. These embodiments are to be understood as examples only, and are explained with reference to:
One stranded wire assembly (6, 6′) is provided in each of the tubular pockets (5,5′) of the contact regions (4, 4′). As shown in
The filament wires (9,9′) preferably have a diameter from 10-100 μm, and in the present example embodiment, 50 μm.
As shown in
The filament wires (9,9′) are provided with a silver coating to increase their conductivity. This allows easier current transmission from the stranded wire assembly (6, 6′) to the heater resistor 2.
The stranded wire assembly (6, 6′) runs lengthwise along the entire length of the heater resistor 2. This permits current to be supplied to the heater resistor 2 over the entire length of the heating element 1. In this way, very wide or long heating elements can be realized.
The stranded wire assembly (6, 6′) can simply be inserted in the tubular pocket in the contact region (4, 4′). However, it can also be additionally attached, for example through sewing, gluing or riveting.
The tubular pocket in the contact region can also be formed by additionally applied strips of material, for example adhesive or hook-and-loop strips, instead of by the material of the resistance element 2. It would also be possible to omit a tubular embodiment of the contact regions. The stranded wire assembly (6,6′) could also be applied to the resistance element uncovered on one side.
Instead of a single stranded wire assembly (6,6′), two stranded wire assemblies could also be laid next to each other in each contact region. The amount of current that can be supplied could be increased easily in this way. While a larger number of stranded wire assemblies is also conceivable, it is less desirable because of additional material costs.
| Number | Date | Country | Kind |
|---|---|---|---|
| 101 42 878.2 | Sep 2001 | DE | national |
This application is a continuation-in-part of U.S. patent application Ser. No. 10/415,798, filed on Sep. 12, 2003.
| Number | Date | Country | |
|---|---|---|---|
| Parent | 10415798 | Sep 2003 | US |
| Child | 12338971 | US |