The present disclosure relates to a cable, in particular to a twin axial cable for use with data transmission faster than 10 Gbps.
Traditional twin axial cables for 10 Gbps+ data transmission typically have approximately 5% coupling. Dual extrusion is an existing method that enables increasing the coupling percentage of twin axial cables. However, this method cannot rely on off-the-shelf in-line electronic process controls developed for single insulated conductors. U.S. Pat. Nos. 5,142,100, 8,981,216 and 9,123,452 disclose some related designs.
An improved twin axial cable is desired.
Accordingly, an object of the present disclosure is to provide a twin axial cable with 7%-14% signal pair coupling and the corresponding reduced signal power loss. Another object of the invention is to provide the aforementioned cable with the traditional manufacturing method rather than the dual extrusion method.
To achieve the above object, a twin axial or parallel pair cable includes a pair of wires each with a core conductor enclosed in a primary insulator, a secondary insulative inner tape spirally wrapping the pair of insulated wires, a shielding tape longitudinally wrapping the inner tape with an insulative inner layer and a conductive outer layer thereof, a drain wire positioned outside of the shielding tape and at the centerline between the pair of wires, and an insulative outer taper spirally wrapping both the shielding tape and the drain wire. One feature of the invention is to have a seam of the longitudinally wrapping shielding tape located opposite to the drain wire along the centerline in a vertical direction which is perpendicular to the transverse direction defined by two centers of the wires.
In other embodiments, the secondary layer of insulation may be longitudinally wrapping the pair or it may be made up of two tapes that are spirally wound in opposite directions.
Other objects, advantages and novel features of the disclosure will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
Reference will now be made in detail to the embodiments of the present disclosure.
Referring to
The materials and dimensions of the related elements may be referred to the following tables performing 7.5%-14% coupling.
The invention has the following features and benefits. Even though not all respective features and benefits are totally new, anyhow the combinations as shown in the embodiments and defined in the claims are novel and have the specific advantages to meet the transmission faster than 10 Gbps while still using the traditional manufacturing method.
Tighter signal pair coupling, 7% to 14%, provides an improved insertion loss for differential signals
Having the drain wire located outside foil shield reduces its impact high frequency data transmission performance
Longitudinally wrapped shield
Foil shield is captured between inner dielectric tape wrap and outer tape wrap. In addition, the foil seam is located on the bottom side of the twin-ax, the side opposite the drain wire
Foil-out, PET tape in, provides oxidation barrier on surface conducting high-speed reference currents
Solid Dielectric
Available with optional copper, Cu/PET, shield
Available with option silver plated wires
Manufactured using traditional processes
While a preferred embodiment in accordance with the present disclosure has been shown and described, equivalent modifications and changes known to persons skilled in the art according to the spirit of the present disclosure are considered within the scope of the present disclosure as described in the appended claims. In this invention, the key feature is to control the spacing between the signal conductors relative to the spacing between the shielding tape and the signal conductors. As shown in
Number | Date | Country | |
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62735011 | Sep 2018 | US |