Information
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Patent Grant
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6346676
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Patent Number
6,346,676
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Date Filed
Tuesday, April 11, 200024 years ago
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Date Issued
Tuesday, February 12, 200222 years ago
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Inventors
-
Original Assignees
-
Examiners
Agents
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CPC
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US Classifications
Field of Search
US
- 174 117 F
- 174 117 M
- 439 404
- 439 405
- 439 498
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International Classifications
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Abstract
An electrical cable suitable for transmission of data signals cable includes a dual layer ribbon cable with a first layer being offset from the other layer by an offset distance. The dual layer ribbon construction of the cable allows the cable to be compliant with a SCSI standard and to include a VHDCI compliant connector. The cable may have a first Z form where a spacer connects an insulator in the first layer with an insulator in the second layer, a second form in which an insulator of the first layer is attached to an insulator in the second layer, or a modified second form in which a spacer is attached between adjacent insulators in the same layer. The double layer ribbon cable construction allows the width of the cable to be reduced to accommodate a smaller pitched, larger pin number VHDCI compliant connector anywhere along the length of the cable. It is emphasized that this abstract is provided to comply with the rules requiring an abstract that will allow a searcher or other researcher to quickly ascertain the subject matter of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. 37 CFR 1.72(b).
Description
BACKGROUND
Current Small Computer System Interface (SCSI) ribbon cables are 25 or 50 millimeters center-to-center spacing using 28 AUG wire for use with an insulation displacement cable (IDC) compliant press through connectors in accordance with the SCSI Parallel Interface specification 3 (SPI 3). Current designs do not allow such a cable to be utilized with a Very High Density Cable Interconnect (VHDCI) connector using a ribbon cable without requiring a printed wiring board (PWB) card as a mount for the VHDCI connector. Thus, there lies a need for a SCSI compliant ribbon cable that is capable of utilizing a VHDCI connector.
BRIEF DESCRIPTION OF THE DRAWINGS
The numerous advantages of the present invention may be better understood by those skilled in the art by reference to the accompanying figures in which:
FIG. 1
is an elevation end view of a ribbon cable configuration in accordance with the present;
FIG. 2
is an elevation end view of the ribbon cable of
FIG. 1
further showing the coupling of the ribbon cable with a VHDCI compliant connector in accordance with the present invention;
FIG. 3
is a top plan view of the ribbon cable of
FIG. 1
, showing a VHDCI compliant connector at either end thereof, and a VHDCI compliant connector coupled to the ribbon cable at a position between either end in accordance with the present invention; and
FIGS. 4A
, B and C are an end view diagram of alternative configurations of the cable shown in FIG.
1
.
DETAILED DESCRIPTION
Reference will now be made in detail to the presently preferred embodiment of the invention, an example of which is illustrated in the accompanying drawings.
Referring now to
FIG. 1
, a ribbon cable configuration of an electrical cable in accordance with the present invention will be discussed. Cable
100
is a double layer ribbon configuration as shown. Cable
100
includes a first layer
110
and a second layer
112
. Each layer
110
and
112
includes at least two or more conductors
116
that are electrically conductive for transmitting electrical signals via cable
100
. Each conductor
116
is encapsulated by an insulator
114
which provides electrical insulation of conductors
116
and isolation of one conductor
116
from electrical contact with an adjacent conductor
116
. Each of conductors
116
is separated by a predetermined distance
118
. The structure defining predetermined distance
118
in one embodiment is a continuation of insulator
114
of two adjacent conductors
116
so that a continuous, generally planar structure is formed. In one embodiment, insulators
114
and predetermined distance
118
structures of both first and second layers
110
and
112
are formed into a single, continuous insulator
114
structure. As shown in
FIG. 1
, first layer
110
is offset from second layer
112
by an offset distance so that a conductor
116
of one of layers
110
and
112
is generally disposed between two adjacent conductors
116
of the other layer of layers
110
and
112
, thereby causing cable
100
to have a double layer ribbon cable configuration where one layer is offset from the other layer. The offset distance in one embodiment is approximately one half of predetermined distance
118
. Conductors
116
and insulator
114
in one embodiment are fabricated from a material that provides both the desired respective electrical properties, for example conductivity, dielectric insulation, an so on, and desired respective physical properties such as flexibility such that cable
100
is at least a partially flexible structure. The number of conductors
116
in first and second layers
110
and
112
is dependent upon the number of conductive paths required for the particular application of cable
100
. Thus, in one embodiment cable
100
includes in total N conductors
116
, with the Nth conductor
122
being disposed in one of said first and second layers
110
and
112
, and the (N−1)th conductor
120
being disposed in the other of said first and second layers
110
and
112
. One embodiment of the present invention contemplates cable
100
being compliant with a (SCSI) standard, for example SCSI-5. In one embodiment, the total number N of conductors
116
is 68 such that conductor
122
is the 68th conductor and conductor
120
is the 67th conductor.
Referring now to
FIG. 2
, a diagram of the cable of
FIG. 1
in which a connector in accordance with the present invention will be discussed. Connector
210
is shown coupling with first and second layer
110
and
112
of cable
100
so that cable
100
is capable of connecting to a device intended to send or receive signals via cable
100
and which has a like connector or receptacle capable of mating with connector
210
such that electrical and physical coupling between cable
100
and the device is provided. Connector
210
generally comprises a bottom
214
and an offside pressure plate
212
that is capable of mating with bottom
214
. Bottom
214
includes an array of pins
216
where each pin
216
is intended to couple with a respective one of conductors
116
of cable
100
. One of pins
216
penetrates through an insulator
114
of first layer
110
and makes physical and electrical contact with the respective conductor
116
that the insulator
114
encapsulates, without contacting any other conductor
116
of either first layer
110
or second layer
112
. Similarly, another pin
216
penetrates through a predetermined distance structure
118
of first layer
110
without contacting any of the conductors
116
of first layer and penetrates through an insulator
114
of second layer
110
and makes physical and electrical contact with the respective conductor
116
of second layer
112
without contacting any other conductor of second layer
112
. In such a configuration, only one pin
216
in the array of pins of bottom
214
contacts a respective one of conductors
116
of cable
100
, one pin
216
for each respective conductor
116
. It should be noted that in some embodiments of cable
100
, the number of pins
216
need not equal the number of conductors
116
, for example cable
100
may include 68 conductors
116
but connector
210
may include only 48 pins, depending upon the particular desired configuration of cable
100
and without providing substantial change to the function of cable
100
. Pressure plate
212
includes an array of receptacles
218
corresponding to the array of pins
216
of bottom
214
such that pins
216
insert into a respective receptacle
218
to secure pins
216
, for example to retain and to prevent lateral movement of pins
216
. Thus, connector
210
couples with cable
100
by bringing bottom
214
together with pressure plate
212
thereby causing pins
216
to penetrate corresponding insulators
114
and contact a respective conductor
116
of first layer
110
or second layer
112
. In one embodiment, connector
210
is compliant with a Very High Density Cable Interconnect (VHDCI) standard, and is an (IDC) type connector. In one embodiment, connector
214
is a VHDCI compliant connector that provides 0.8 millimeter spacing and 68 pins
216
and respective contacts and is suitable for use with SCSI-5compliant cable such that cable
100
is so compliant. As such, cable
100
is compatible with an Ultra-Wide SCSI standard and is suitable for utilization with Redundant Array of Independent Disks (RAID) type controllers. By using a double layer offset ribbon cable, the center-to-center spacing can be reduced to a range such that a SCSI VHDCI connector
210
can be constructed that can mount onto cable
100
at either end of cable
100
or in the middle at a location disposed between either end. By providing a double layer, offset ribbon cable, the center-to-center spacing of cable
100
is thereby capable of being reduced by approximately one-half that of a single layer ribbon cable, and the IDS pitch process of VHDCI connector
210
is thereby capable of being maintained at a lower size to match a 0.8 millimeter pitch in such a connector
210
. In addition, cable
100
is capable of being manufactured using current technologies with only slight modification to present tooling. The double layer offset ribbon construction of cable
100
a reduced with center to center spacing allows for an IDC or “vampire” type piercing between first and second layers
110
and
112
of insulation
114
enclosed wire strand conductors
116
.
Referring now to
FIG. 3
, a top plan view of the cable shown in
FIGS. 1 and 2
. As can be seen in
FIG. 3
, cable
100
is capable of coupling with connector
210
at either end of cable
100
. Further, conductor
210
is capable of being disposed at any interior position along the length of cable
100
between either end thereof. Such configuration of cable
100
may be achieved by bringing bottom
214
together with pressure plate
212
at the desired location of connector
210
along the length of cable
210
. Each of first and second layers
110
and
112
is generally planar yet each of first and second layers
110
and
112
can be distorted out of the plane due to the flexibility of insulators
114
and conductors
116
, for example through twisting, warping, rolling, etc. without affecting the operation of cable
100
and to accommodate the span path and distance between two devices coupled by cable
100
, for example.
Referring now to
FIGS. 4A
,
4
B, and
4
C, alternative configurations of the ribbon cable as shown in
FIG. 1
capable of being utilized with electrical cable in accordance with the present invention will be discussed. The configurations of cable
410
,
412
, and
414
as shown in
FIGS. 4A
,
4
B, and
4
C are substantially similar to the configuration of cable
100
as shown in FIG.
1
and couple with pins
216
and
316
, and with bottom plate
214
and pressure plate
212
of connector
210
as discussed herein and as shown in FIG.
2
. Cable
410
is a double stack Z-form cable having first and second layers
110
and
112
, respectively, that allows cable
410
to stack up tightly while providing flexibility for lateral expansion when pins
216
of connector
210
are inserted and pierce through insulation
114
sheath and through spacers
118
. Spacers
118
couple an insulation
114
sheath of a first layer
110
to adjacent insulation
114
sheaths of the second layer
112
, and vice-versa as shown in FIG.
4
A. Such a design of cable
410
is capable of being manufactured using extrusion technology. Cable
412
of
FIG. 4B
has a double stacked form comprising first and second layers
110
and
112
, respectively, where insulation
114
sheaths are extruded with very little or no spacers
118
. Such a configuration of cable
412
provides a more rigid spacing of conductors
116
where it is desired that the positions of conductors
116
and the overall structure of cable
412
are more strictly controlled. Cable
414
of
FIG. 4C
has a double stacked form comprising first and second layers
110
and
112
, respectively, where spacers
118
of cable
414
are formed such that insulation
114
sheathing provides a center-to-center spacing of conductors
116
to allow pins
216
to pierce through insulation
114
with a more controlled spacing and structure of conductors
116
. Spacers
118
between adjacent insulation
114
sheaths of the same layer,
110
or
112
, provide a higher lateral strength to provide a higher center-to-center spacing tolerance between conductors
116
. Cable
100
and connector
210
may be compliant with any parallel bus or connector and termination technology or standard, including but not limited to Small Computer System Interface (SCSI), Integrated Device Electronics (IDE), Advanced Technology Attachment (ATA), Insulation Displacement Cable (IDC), Insulation Displacement Termination (IDT), Very High Density Cable Interconnect (VHDCI), and Intelligent Peripheral Interface (IPI).
It is believed that the electrical cable of the present invention and many of its attendant advantages will be understood by the forgoing description, and it will be apparent that various changes may be made in the form, construction and arrangement of the components thereof without departing from the scope and spirit of the invention or without sacrificing all of its material advantages, the form herein before described being merely an explanatory embodiment thereof. It is the intention of the following claims to encompass and include such changes.
Claims
- 1. A cable, comprising:first and second layers, each of said first and second layers being generally flexibly planar and including two or more conductors aligned in a plane of said respective first and second layers, each one of said two or more conductors of each of said first and second layers being encapsulated by an insulator and being separated from an adjacent conductor by a predetermined distance, said first layer being planarly stacked against said second layer and being offset from said second layer by an offset distance, said two or more conductors of said first layer being substantially parallel to said two or more conductors of said second layer; and a connector disposed at a position along said first and second layers, said connector having at least two pins disposed generally perpendicular to a plane in which at least part of said first and second layers is disposed, one of said at least two pins coupling with one of said two or more conductors of said first layer and another of said at least two pins coupling with one of said two or more conductors of said second layer, at least one of said at least two pins penetrating through one of said first and second layers without contacting any of said two or more conductors of the other of said first and second layers to couple with one of said two or more conductors of the other of said first and second layers.
- 2. A cable as claimed in claim 1, said connector capable of being disposed at an end of said first and second layers.
- 3. A cable as claimed in claim 1, said connector capable of being disposed at an interior position of said first and second layers between a first and a second end of said first and second layers.
- 4. A cable as claimed in claim 1, said connector being compliant with a parallel bus standard.
- 5. A cable as claimed in claim 1, said connector being compliant with at least one standard selected from the group consisting of SCSI, IPI, IDE, IDT, ATA, VHDCI, and IDC.
- 6. A cable as claimed in claim 1, said first and second layers being compliant with a parallel bus standard.
- 7. A cable as claimed in claim 1, said first and second layers being compliant with at least one standard selected from the group consisting of SCSI, IPI, IDE, IDT, ATA, VHDCI, and IDC.
- 8. A cable as claimed in claim 1, the offset distance being approximately one half of the predetermined distance.
- 9. A cable, comprising:first and second layers, each of said first and second layers being generally flexibly planar and including two or more conductors aligned in a plane of said respective first and second layers, each one of said two or more conductors of each of said first and second layers being encapsulated by an insulator and being separated from an adjacent conductor by a predetermined distance, said first layer being planarly stacked against said second layer and being offset from said second layer by an offset distance, said two or more conductors of said first layer being substantially parallel to said two or more conductors of said second layer; a connector disposed at a position along said first and second layers, said connector having at least two pins disposed generally perpendicular to a plane in which at least part of said first and second layers is disposed, one of said at least two pins coupling with one of said two or more conductors of said first layer and another of said at least two pins coupling with one of said two or more conductors of said second layer, at least one of said at least two pins penetrating through one of said first and second layers without contacting any of said two or more conductors of the other of said first and second layers to couple with one of said two or more conductors of the other of said first and second layers, and at least one or more spacers, at least one of said one or more spacers connecting said insulator of a conductor of said two or more conductors of said first layer with said insulator of a conductor of said two or more conductors of said second layer.
- 10. A cable, comprising:first and second layers, each of said first and second layers being generally flexibly planar and including two or more conductors aligned in a plane of said respective first and second layers, each one of said two or more conductors of each of said first and second layers being encapsulated by an insulator and being separated from an adjacent conductor by a predetermined distance, said first layer being planarly stacked against said second layer and being offset from said second layer by an offset distance, said two or more conductors of said first layer being substantially parallel to said two or more conductors of said second layer; a connector disposed at a position along said first and second layers, said connector having at least two pins disposed generally perpendicular to a plane in which at least part of said first and second layers is disposed, one of said at least two pins coupling with one of said two or more conductors of said first layer and another of said at least two pins coupling with one of said two or more conductors of said second layer, at least one of said at least two pins penetrating through one of said first and second layers without contacting any of said two or more conductors of the other of said first and second layers to couple with one of said two or more conductors of the other of said first and second layers, and at least two or more spacers, at least one of said two or more spacers connecting said insulator of a conductor of said two or more conductors of said first layer with an adjacent insulator of a conductor of said two or more conductors of said first layer, and at least another of said two or more spacers connecting said insulator of a conductor of said two or more conductors of said second layer with an adjacent insulator of a conductor of said two or more conductors of said second layer.
- 11. A cable, comprising:first and second layers, each of said first and second layers being generally flexibly planar and including two or more conductors aligned in a plane of said respective first and second layers, each one of said two or more conductors of each of said first and second layers being encapsulated by an insulator and being separated from an adjacent conductor by a predetermined distance, said first layer being planarly stacked against said second layer and being offset from said second layer by an offset distance, said two or more conductors of said first layer being substantially parallel to said two or more conductors of said second layer; and a connector disposed at a position along said first and second layers, said connector having at least two pins disposed generally perpendicular to a plane in which at least part of said first and second layers is disposed, one of said at least two pins coupling with one of said two or more conductors of said first layer and another of said at least two pins coupling with one of said two or more conductors of said second layer, at least one of said at least two pins penetrating through one of said first and second layers without contacting any of said two or more conductors of the other of said first and second layers to couple with one of said two or more conductors of the other of said first and second layers, wherein at least one insulator of a conductor of said two or more conductors of said first layer contacts at least one insulator of a conductor of said two or more conductors of said second layer.
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Date |
Kind |
4429940 |
Freshwater et al. |
Feb 1984 |
A |
5194014 |
McClune et al. |
Mar 1993 |
A |
5727962 |
Caveney et al. |
Mar 1998 |
A |
5902146 |
Hanami |
May 1999 |
A |