The present invention relates to a method for manufacturing an electrical conductor on a substrate.
Resistors and, prior to that, the resistor connection are implemented by screen printing on today's thick-film substrates (LTCC, low-temperature cofired ceramics, standard hybrids). The different resistance values are adjusted using pastes of different resistance decades and through the geometry of the resistor as well as by subsequent trimming cuts using a laser beam.
The technology today has the following restrictions: in the case of up to six different resistance layers, drying steps are necessary between the individual printings. After the second printing, topography effects result in deviations in layer thickness and thus increased scattering ranges in the resistance values. Great allowances with regard to the target value before the final laser trim are required due to this wide scattering range, resulting in long laser times.
In addition, German patent document DE 10 2004 044 144 A1 discusses dropwise application of colloid inks, forming resistance films on a substrate.
An aspect of the exemplary embodiments and/or exemplary methods of the present invention is the use of a dispensing operation for applying metal plating pastes and/or resistors in strands to the unfired tape or to the fired ceramic. Thus, accurate dosing while avoiding topography effects is possible by dispensing resistor pastes, for example. Each decade is applied via a separate metering head. With the help of sample analyses, it is easily possible to regulate the resistor geometry, so that allowances with regard to the target value before the final laser trim may turn out to be a great deal smaller or the target value may be adjusted directly, so that the laser trim is definitely shortened or may even be omitted.
Diluted or undiluted thick-film pastes may be dispensed in strands or by drops (inkjet principle). The print may be applied mechanically, electromagnetically, or by piezoelectric elements. Drops (slightly diluted resistor pastes) may be applied by pushbutton using a piezoelectric bending transducer and a ceramic or ceramic-coated plunger-nozzle pairing.
The exemplary embodiments and/or exemplary methods of the present invention is explained in greater detail below as an example with reference to the figures.
This conductor 10 is manufactured by a method for manufacturing an electrical conductor 10 by applying at least one paste 13, in particular a thick-film paste, to a substrate 16 by a dispensing operation. Paste 13 is applied in at least one strand 19, in this example in five strands 19.1 through 19.5.
Paste 13 may be applied in parallel strands 19.1 through 19.5.
If conductor 10 is a resistor, then each resistance decade, for example, a strand 19.3, may be applied by a separate metering head.
Paste 13 may be a metal plating paste or a resistor paste, depending on the choice.
After application of paste 13, a firing operation is performed and subsequently a laser trim, if necessary.
In a step prior to the actual fabrication (pilot production, for example), the dispensing method may be performed at least once in a trial run, then substrate 16 fired with paste(s) 13 and a target value, in particular a resistance value, may be ascertained.
Depending on the deviation from the target value, a laser trim is then ascertained.
For application of paste 13, a device which operates mechanically or electromagnetically or a piezoelectric element may be used.
Substrate 16 is an unfired tape or a fired ceramic.
Number | Date | Country | Kind |
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102007063282.9 | Dec 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP08/68074 | 12/19/2008 | WO | 00 | 1/21/2011 |