HYBRID STRANDED CONDUCTOR
20180209093 ยท 2018-07-26
Assignee
Inventors
- Robert Traxl (Ebensee, AT)
- Gunter Kaiser (Thalheim bei Wels, AT)
- Rudolf Kirth (Voecklabruck, AT)
- Ernst BJOERN (Linz, AT)
- Erich Ruehrnoessl (Haid, AT)
- Peter Baldinger (Schwertberg, AT)
Cpc classification
D07B2201/204
TEXTILES; PAPER
D07B5/007
TEXTILES; PAPER
D07B1/005
TEXTILES; PAPER
D07B2201/2039
TEXTILES; PAPER
International classification
D07B5/00
TEXTILES; PAPER
H01B5/10
ELECTRICITY
Abstract
A hybrid strand includes a core and outer wires arranged around the core, wherein at least a part of the outer wires is compressed, wherein the compressed outer wires include a flattened cross-sectional shape, the outer wires are composed of steel, and the core is a fiber core. A corresponding production method produces such a hybrid strand.
Claims
1-10. (canceled)
11. Hybrid strand (1) comprising a core (2) and outer wires (3) arranged around said core (2), wherein at least a part of the outer wires (3) is compressed, the compressed outer wires (3) comprise a flattened cross-sectional shape, the outer wires (3) are composed of steel and the core (2) is a fiber core, wherein a lateral flattened area of a first compressed outer wire (3) faces a lateral flattened area of an adjacent compressed outer wire (3) at a distance.
12. Hybrid strand according to claim 11, wherein the compressed outer wires (3) comprise an approximately trapezoidal or circular-segment-shaped cross-section.
13. Hybrid strand according to claim 11, wherein the distance between the facing flattened areas is essentially constant at least in sections.
14. Rope (5; 10) comprising several hybrid strands (1) according to claim 11.
15. Rope (10) according to claim 14 in the form of an anti-twist rope.
16. Method for the production of a hybrid strand (1), wherein outer wires (3) made of steel are wrapped and compressed around a fiber core (2), wherein the outer wires (3) have at least almost contact in the state when still uncompressed, during compression contact each other in a lateral contact area, preferably in a flat manner, and wherein after compression at least a part of the outer wires (3) comprises a flattened cross-sectional shape in the contact area, wherein the outer wires (3) support each other in a vault-like manner during the compression and the outer wires (3) are pressed against the fiber core (2) during compression prior to the vault formation and spring back to a corresponding extent after compression, so that the deformed outer wires (3) of the compressed hybrid strand (1) are slightly spaced apart.
Description
[0020] The present invention will be described in more detail on the basis of preferred embodiments, to which it is not limited, however, with reference being made to the enclosed drawings, in which:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] For the purpose of comparison,
[0028] The hybrid rope 10 according to
[0029] As may be seen in particular from
[0030] The following table 1 shows a comparison of values for a conventional compressed steel rope and a compressed hybrid rope, for example according to
TABLE-US-00001 TABLE 1 steel rope Compressed hybrid rope Rope nominal Weight per Specific Weight per Specific diameter meter strength meter strength 24 mm 2.75 kg/m 188 kN/kg 1.95 kg/m 265 kN/kg
[0031] The compressed hybrid rope has a specific strength that is 40% higher compared to a compressed rope that is entirely composed of steel.
[0032] A comparison of a compressed and a non-compressed hybrid rope (with identical breaking force) will resultaccording to table 2in the following nominal diameter of the rope.
TABLE-US-00002 TABLE 2 Hybrid rope compressed Hybrid rope uncompressed Nominal of rope Nominal of rope 24 mm 25.25 mm
[0033] It is added for the sake of completeness that specific breaking force means the ratio between the general breaking force and the weight per meter of a rope.