Background of the Invention
[0001] The present invention relates generally to connectors used in connections with signal
cables, especially high-speed signal cables, and printed circuit boards and more particularly
to high density connectors having selected impedances.
[0002] Many electronic devices rely upon transmission lines to transmit signals between
related devices or between peripheral devices and circuit boards of a computer. These
transmission lines incorporate signal cables that are capable of high-speed data transmissions.
[0003] These signal cables may use one or more twisted pairs of wires that are twisted together
along the length of the cable, and each such pair being encircled by an associated
grounding shield. One wire of the pair may see a +1.0 volt signal, and the other wire
of the pair may see a -1.0 volt signal and thus, these wires are called "differential"
pairs, a term that refers to the differential, i.e., opposing and balanced signals
they carry. Such a twisted pair construction minimizes or diminishes any induced electrical
fields form other electronic devices and thereby eliminates electromagnetic interference.
[0004] In order to maintain electrical performance integrity from such a transmission line,
or cable, to the circuitry of an associated electronic device, it is desirable to
obtain a substantially constant impedance throughout the transmission line and to
avoid large discontinuities in the impedance of the transmission line. The difficulty
of controlling the impedance of a transmission line connector at a connector mating
face is well known because the impedance of a conventional connector typically changes
through the connector and across the interface of the two mating connector components,
particularly with high-density connectors. Although it is relatively easy to maintain
a desired impedance through an electrical transmission line, such as a cable, by maintaining
a specific geometry or physical arrangement of the signal conductors and the grounding
shield, an impedance change is usually encountered in the area where a cable is mated
to a connector. If this impedance change is great, it effects the integrity of the
signals transmitted across the transmission line. It is therefore desirable to maintain
a desired impedance throughout the connector and its connection to the cable.
[0005] WO 01/06602A discloses an electrical connector comprising a housing which holds a
plurality of conductive terminals, the terminals having contact portions adapted for
mating to contact portions of opposing terminals of a mating connector, the terminals
including at least first and second distinct sets of terminals, each distinct set
of terminals including a pair of differential signal contact portions and an associated
ground contact portion. Each distinct set of terminals is arranged in a triangular
pattern through the connector in order to reduce the impedance through the connector.
[0006] The present invention is therefore directed to a termination structure for providing
improved, high-density connections between cables and connectors that provide a high
level of performance and which maintains the electrical characteristics of the cable
through the mating interface between the cable and device connector in the termination
area.
Summary of the Invention
[0007] Accordingly, it is a general object of the present invention to provide an improved,
high-density connector for high-speed data transmission connections in which the impedance
discontinuity through the connector is minimized so as to better attempt to match
the impedance of the transmission line.
[0008] Another object of the present invention is to provide an improved connector for effecting
a high-performance connection between a circuit board and an opposing connector terminated
to a transmission line, wherein the transmission line includes multiple pairs of differential
signal wires, each such pair having an associated ground, the connector having pairs
of signal terminals and ground terminals associated therewith arranged in triangular
fashions so as to reduce impedance discontinuities from occurring when the connector
is mated to the opposing connector and further, by inverting adjacent triangular associated
sets of signal and ground terminals, the connector is given a high density characteristic
while maintaining a desired preselected impedance through the connector.
[0009] Yet another object of the present invention is to provide a connector for high-density
applications wherein the connector has a plurality of terminal triads which are triangular
arrangements of two signal and one ground terminals spaced apart from each other so
as to enhance coupling among the three terminals, the ground terminals being located
at the apex of each triangular arrangement, the connector having at least two such
triads, with one triad being inverted with respect to the other triad.
[0010] It is yet a further object of the present invention to provide a connector for providing
a connection between a circuit board and a connector associated with a signal cable,
wherein each such triad corresponds to an individual channel of the transmission line
and the channels are at least partially isolated from each other within the connector
by an air gap.
[0011] A still other object of the present invention is to provide a high-density connector
having a housing formed from a dielectric material, the housing having a plurality
of cavities disposed therein, each such cavity including a conductive terminal, the
housing cavities being arranged in triangular sets within the connector and each such
triangular set including a pair of signal terminals and one ground terminal, adjacent
triangular sets being inverted with respect to each other, the housing further including
recesses formed therein that extend between adjacent triangular sets to provide an
air gap having a dielectric constant different than that of the connector housing.
[0012] A still further object of the present invention is to provide a connector having
a plurality of terminals grouped in sets of three, each set including two signal terminals
and one ground terminal, the terminals of each set being arranged in a triangular
fashion and disposed at respective apexes of the triangles, the space between each
such set of terminals being filled with a first dielectric material to form a terminal
"module" that is inserted into cavities of the connector housing and which is supported
by the connector housing, the connector housing being formed from a second dielectric
material.
[0013] Yet still another object of the present invention is to provide an improved high-density
connector with controlled impedance for connecting multi-channel transmission lines
to electronic devices, the connector including a housing formed from an electrically
insulative material, a plurality of conductive terminals supported by the housing,
the terminals including at least two sets of three distinct terminals, each set accommodating
a distinct channel in the transmission line and each terminal set including two differential
signal terminals and one associated ground terminal, the three terminals of each set
being disposed at corners of an imaginary triangle and the imaginary triangles of
each terminal set being inverted with respect to each other, each terminal set further
being supported on a carrier formed of an insulative material having a first dielectric
constant, each such carrier being received within a cavity formed in the connector
housing, each terminal set being separated from each other by recesses formed in the
connector housing that define air gaps between the terminal sets.
[0014] The present invention accomplishes these objects by virtue of its structure. In order
to obtain the aforementioned objects, one principal aspect of the invention that is
exemplified by one embodiment thereof includes a first connector for a circuit board
which has a housing that supports, for each twisted pair of wires in the mating signal
cable, three conductive terminals in a unique pattern of a triplet, with two of the
tenninals carrying differential signals, and the remaining terminal being a ground
terminal that serves as a ground plane or ground return to the differential pair of
signal wires. The first connector supports multiple terminal triplets, in an inverted
fashion (widthwise along the connector mating face) so that two rows of terminals
are defined in the first connector, the signal terminals of a first triplet are disposed
in one row in the connector and the ground terminal of that first triplet is disposed
in the other row of the connector, while the signal terminals of a second, or of adjacent
triplets, are disposed in the other row of the connector and the ground terminal of
this second triplet or of two adjacent triplets are disposed in the one row of the
connector. The signal and ground terminals of adjacent triplets are arranged in an
inverted fashion. A second connector for a cable is provided that mates with the first
connector and their second connector has multiple terminal triplets arranged to mate
with their corresponding terminal triplets of the first connector.
[0015] The arrangement of these terminals in sets of three within the first connector permits
the impedance to be more effectively controlled throughout the first connector, from
the points of engagement with the cable connector terminals to be points of attachment
to the circuit board.
[0016] In this manner, each such triplet of the first connector includes a pair of signal
terminals having contact portions that are aligned together in side-by-side order,
and which are also spaced apart a predetermined distance from each other. The ground
terminal is spaced apart from the two signal terminals in a second row.
[0017] In another principal aspect of the present invention, the width of the ground terminals
and their spacings from the signal terminals of each such triplet may be chosen so
that the three terminals may have desired electrical characteristics such as capacitance
and the like, all of which will affect the impedance of the connector.
[0018] By this impedance-regulating ground structure, a greater opportunity is provided
to reduce the impedance discontinuity which occurs in a connector without altering
the mating positions or the pitch of the differential signal terminals. Hence, this
aspect of the present invention may be aptly characterized as providing a "tunable"
terminal arrangement for each differential signal wire pair and associated ground
wire arrangement found either in a cable or in other circuits.
[0019] In another principal aspect of the present invention, these tunable triplets are
provided within the connector housing in an inverted fashion. That is, the ground
terminals of adjacent terminal triplets lie in different terminal rows of the connector,
as do the signal terminals in alternating fashion along the width of the connector.
When multiple terminal triplets are utilized in the connectors, other terminals of
the connector such as power and reference terminals may be situated in the connector
at a midpoint thereof between the terminal triplets.
[0020] In still another principal aspect of the present invention, the connector has each
of its inverted triplets or triads (i.e., an associated set of two signal terminals
and one ground terminal) arranged in a triangular orientation throughout their length
within the connector housing in order to maintain a desired, predetermined spatial
relationship among these three terminals within each triplet or triad.
[0021] In yet another principal aspect of the present invention, the connector housing may
be modified in certain ways to accommodate the arrangement of terminal triplets with
the housing. In one such instance, the housing may have openings in the form of recesses,
slots or other similar cavities that are interposed between adjacent terminal triplets.
The use of one or more such recesses introduces a slight air gap between the terminal
triplets and because the dielectric constant of air differs from that of the connector
housing material, it provides isolation between triplets and further enhances the
affinity among the two differential signal terminals and the associated ground that
make up each such triplet.
[0022] In another such instance, the terminal triplets are formed together as a single piece,
in the form an insert or module, that is received within a corresponding opening formed
in the connector housing. The terminals of the triplets may be molded directly into
the insert, or module, such as by insert or over molding and the molding material
used to form a body portion of the triplet may be chosen to have a different dielectric
constant from the dielectric constant of the connector housing so that the two dielectric
constants differ from each other so that the dielectric constant of the connector
housing may be chosen to maintain isolation between adjacent tenninal triplets and
the dielectric constant of the triplet assembly may be chosen to enhance the affinity
of the triplet terminals for each other.
[0023] These and other objects, features and advantages of the present invention will be
clearly understood through a consideration of the following detailed description.
Brief Description of the Drawings
[0024] In the course of the following detailed description, reference will be made to the
accompanying drawings wherein like reference numerals identify like parts and in which:
FIG. 1 is a perspective view of a socket, or receptacle, connector constructed in
accordance with the principles of the present invention for mounting on a supporting
circuit board;
FIG. 2 is a perspective view of the connector of FIG. 1, but illustrating the rear
end thereof;
FIG. 3 is a front elevational view of the connector of FIG. 1;
FIG. 4 is a front elevational view of a plug connector that mates with the receptacle
connector of FIG. 1;
FIG. 5 is an exploded view of the connector of FIG. 1;
FIG. 6 is a diagrammatic view of the endface of the connector of FIG. 1, illustrating
the spatial and inverted arrangement of the multiple associated terminal sets supported
thereby;
FIG. 7 is a perspective view of another embodiment of a connector constructed in accordance
with the principles of the present invention having only two associated signal-ground
terminal sets and which utilizes low-force, helix-style terminals rather than flat
blade terminals;
FIG. 8 is a rear elevational view of the connector of FIG. 7;
FIG. 9 is a perspective view of the connector of FIG. 7, taken from the rear with
its external shell removed for clarity;
FIG. 10 is a perspective view of the connectors of FIG. 7, taken from the rear but
with its external shell applied thereto;
FIG. 11 is a perspective view of a terminal set used in the connector of FIG. 7, illustrating
the relative position of and orientation of the terminals to other terminals within
their associated terminal sets;
FIG. 12 is a perspective view of another receptacle-style connector constructed in
accordance with the principles of the present invention and incorporating recesses
within the connector housing to provide a dielectric gap among terminals of each associated
terminal set;
FIG. 13 is a schematic view of another receptacle-style connector diagrammatically
illustrating another use of an air, or dielectric gap between associated terminal
sets;
FIG. 14 is a diagrammatic view of another receptacle-style connector constructed in
accordance with the principles of the present invention, and illustrating a terminal
arrangement wherein each set of associated terminals are previously formed on a dielectric
body as an insert that may be inserted into the connector housing;
FIG. 15 is a diagram illustrating the typical impedance discontinuity experienced
throughout a high-speed cable connection and also the reduction in this discontinuity
that would be experienced with the connectors of the present invention;
FIG. 16 is a diagrammatic perspective view of a set of terminals of the through-hole
style, illustrating how the tail portions and their interconnecting portions need
not be in the same plane; and,
FIG. 17 is a diagrammatic view of an automotive-type connector utilizing the inverted
triad structure of the present invention.
Detailed Description of the Preferred Embodiments
[0025] The present invention is directed to an improved connector particularly useful in
enhancing the performance of high-speed cables, particularly in input-output ("I/O")
applications as well as other type of applications. More specifically, the present
invention attempts to impose a measure of mechanical and electrical uniformity on
the connector to facilitate its performance, both alone and when combined with an
opposing connector.
[0026] Many peripheral devices associated with an electronic device, such as a video camera
or camcorder, transmit digital signals at various frequencies. Other devices associated
with a computer, such as the CPU portion thereof, operate at high speeds for data
transmission. High speed cables are used to connect these devices to the CPU or to
connect the device and two or more CPUs together. Cables that are used in high speed
data transmission applications typically will include differential pairs of signal
wires, either as twisted pairs or individual pairs of wires.
[0027] One consideration in optimizing high speed data transmissions is signal degradation,
which involves crosstalk and signal reflection and another consideration is impedance.
Crosstalk and signal reflection in a cable may be easily controlled easy enough in
a cable by shielding and the use of differential pairs of signal wires, but these
aspects are harder to control in a connector by virtue of the various and diverse
materials used in the connector. The physical size of the connector also limits the
extent to which the connector and terminal structure may be modified to obtain a particular
electrical performance.
[0028] Impedance mismatches in a transmission path can cause signal reflection, which often
leads to signal losses, cancellation, etc. Accordingly, it is desirable to attempt
to keep the impedance consistent over the signal path in order to maintain the integrity
of the transmitted signals. It is not complicated to control the impedance of a transmission
cable. However, the impedance of the connector to which the cable is terminated and
the connector mounted on a circuit board of the device to which the cable connects,
is usually not very well controlled insofar as impedance is concerned. It may vary
greatly from that of the cable. A mismatch in impedances between these two elements
may result in transmission errors, limited bandwidth and the like.
[0029] FIG. 15 illustrates the impedance discontinuity that occurs through a conventional
plug and receptacle connector assembly used for signal cables. The impedance through
the signal cable approaches a constant, or baseline value, as shown to the right of
FIG. 15 at 51. This deviation from the baseline is shown by the solid, bold line at
50. The cable impedance substantially matches the impedance of the circuit board at
52 shown to the left of FIG. 11 and to the left of the "PCB Termination" axis. That
vertical axis "M" represents the point of termination between the socket, or receptacle,
connector and the printed circuit board, while the vertical axis "N" represents the
interface that occurs between the two mating plug and socket connectors, and the vertical
axis "P" represents the point where the plug connector is terminated to the cable.
[0030] The curve 50 of FIG. 15 represents the typical impedance "variation" or "discontinuity"
achieved with conventional connectors and indicates three peaks and valleys that occur,
with each such peak or valley having respective distances (or values)
H1, H2 and
H3 from the baseline as shown. These distances are measured in ohms with the base of
the vertical axis that intersects with the horizontal "Distance" axis having a zero
(0) ohm value. In these conventional connector assemblies, the high impedance as represented
by
H1, will typically increase to about 150 ohms, whereas the low impedance as represented
by
H2 will typically decrease to about 60 ohms. This wide discontinuity between
H1 and
H2 of about 90 ohms affects the electrical performance of the connectors with respect
to the printed circuit board and the cable.
[0031] The present invention pertains to a high-density connector that is particularly useful
in I/O (" input-output") applications which has a improved structure that permits
the impedance of the connector to be set and thereby reduces the aforementioned discontinuity.
In effect, connectors of the present invention may be "tuned" through their design
to improve the electrical performance of the connector.
[0032] FIG. 1 is a perspective view of a receptacle, or socket connector, 100 constructed
in accordance with the principles of the present invention. The connector 100 is seen
to include an insulative connector housing 112 that is formed from a dielectric material,
typically a plastic. In the embodiment depicted, the connector housing 112 has two
leaf, or arm portions 114a, 114b that extend out from a rear body portion 116 and
which form part of a receptacle, or socket, of the connector. These housing leaf portions
support a plurality of conductive terminals 119 as shown. The lower leaf portion 114a
may include a series of grooves, or slots 118 that are disposed therein and are adapted
to receive selected ones of the conductive terminals 119 therein. The upper leaf portion
114b, likewise includes similar grooves 120 that correspondingly receive the remaining
terminals 119 of the connector 110.
[0033] In order to provide overall shielding to the connector housing 112 and its associated
terminals 119, the connector may include a first shell, or shield, 123 that is formed
from sheet metal having a body portion 124 that encircles the upper and lower leaf
portions 114a, 114b of the body portion 116. This first shield 123 may also preferably
include foot portions 125 for mounting to a surface of a printed circuit board 102
and which provide a connection to a ground on the circuit board, although depending
foot portions (not shown) may also be formed with the shield for use in through-hole
mounting of the connector 100, although surface mounting applications are preferred.
A second shield 126 may also be included that encircles part of the connector housing
112, near the rear portion thereof, and which extends forwardly to encircle the body
portion 124 of the first shield 123. This second shield 126 may also utilize mounting
feet 127 and utilize a rear flap that may be folded down over the rear of the connector
housing 112, and which is secured in place by tabs 129 that are bent rearwardly over
it. FIG. 4 illustrates a plug connector 160 that is matable with the socket/receptacle
connector 100 of FIG. 1.
[0034] As mentioned earlier, one of the objects of the present invention is to provide a
connector having an impedance that more closely resembles that of the system (such
as the cable) impedance than is typically found in multi-circuit connectors. The present
invention accomplishes this by way of what shall be referred to herein as the arrangement
of a plurality of associated terminals that are arranged in distinct corresponding
sets, each set being referred to herein as a "triplet" or as a "triad," which in its
simplest sense is the arrangement of three distinct terminals. Examples of such triads,
or triplets, are illustrated schematically in FIG. 6 wherein the terminals of each
distinct set are shown interconnected together by imaginary, dashed lines, and the
terminals being arranged at the respective apexes of each such imaginary triangle.
[0035] Each such a triplet involves two signal terminals, such as the two terminals 140,
141 illustrated in FIGS. 1, 3 and 6 and a single ground terminal 150 that are arranged
to mate with corresponding terminals 161 of a plug connector 160 held on a plug portion
162 and which are terminated to the wires of a differential pair of wires of a cable
(not shown) that carry the same strength signals but which are complements of each
other, i.e., +1.0 volts and -1.0 volts. Such a differential pair usually includes
a ground reference. The arrangement of associated terminal sets within the connector
100 is shown schematically in FIG. 6. The two signal terminals are spaced apart from
each other in a horizontal direction, while the ground terminal is spaced apart from
the two signal terminals in the vertical direction so as to enhance electrical coupling
among the three terminals of each triad. As can be seen in FIG. 6 (shown generally
at 165 thereof), each terminal set has its two differential signal terminals and its
ground reference terminal arranged in a triangular pattern, wherein each terminal
may be considered, in one aspect as defining one apex of an imaginary triangle.
[0036] The terminals that comprise each associated set are interconnected in FIG. 6 by dashed
lines 165 to form the aforementioned imaginary triangles, and it can be further seen
that FIG. 6 illustrates six distinct terminal sets arranged widthwise of the connector,
i.e., along the direction W, but in an inverted fashion. The six terminal sets include
the following distinct terminals: 140, 141 and 150; 142, 143 and 151; 144, 145 and
152; 146, 147 and 153; 148, 149 and 154; and, 240, 241 and 250. Each such terminal
set includes a pair of differential signal terminals, meaning that the terminals are
connected to differential signal traces on a circuit board by way of terminal tails
180, and a single ground reference terminal.
[0037] Using FIG. 5 as an example, the terminals all preferably each include a flat blade
portion 181 that is used for a sliding contact, or mating, with opposing terminals
161 of the plug connector 160. As shown in FIGS. 1 & 5, the ground terminal 150,151
of each triad is preferably wider than any single one of the associated signal terminals
140, 141 of the triad, and its width may exceed the combined width of the two signal
terminals. The terminals 180 also preferably include body portions 182 interconnecting
the contact blade and tail portions 181, 180 together. With this design, the terminals
119 may be easily stamped and formed. The terminals 119 are received within corresponding
slots 118 of the lower leaf 114a of the housing body portion 112 of the receptacle
connector and the free ends of the contact blade portions 181 may be held in openings
formed at the ends of the slots 118.
[0038] In the plug connector of FIG. 4, the plug connector preferably has a solid plug body
portion 185 and the terminals are disposed on opposite surfaces of the plug body portion
185. If desired, the plug body portion 185 may include a keyway that is adapted to
receive a positive key 188 of the receptacle connector of FIG. 1. The key and keyway
may be interposed between at least a pair of distinct terminal triplet sets, as illustrated.
[0039] The benefits of the "triad" aspect will now be discussed with respect to a single
associated terminal set, namely the terminal set shown at the left of FIG. 6 and including
signal terminal 140, 141 (shown as
S1 and
S2) and ground terminal 150 (
G12). The two signal terminals 140 and 141 may be considered in one sense, as arranged
in a triangular fashion with respect to the ground terminal 150. They may also be
considered in another sense as "flanking" the ground terminal inasmuch as portions
of the signal terminals may extend to a point somewhat exterior of the side edges
of the ground terminal 150. The triangular relationship among these three associated
terminals may vary and may include equilateral triangular relationships, isosceles
triangular relationships, scalene triangular relationships and the like, with the
only limitation being the desired width W of the connector 100.
[0040] The contact blade portions of the terminals 119 are cantilevered out from their respective
body portions and therefore lie in different planes than the intermediate body portions.
The contact blade portions of the terminals in the two (top and bottom or upper and
lower) rows are spaced apart from each other and also lie in different planes from
each other. Preferably the contact blade portions of each row are parallel to each
other but it is understood that due to manufacturing tolerances and other manufacturing
considerations, the two sets of contact blade portions may not be parallel to each
other.
[0041] In order to increase the density of the terminals within the connector 100, the associated
adjacent terminals sets are "inverted" with respect to one another. This is most clearly
shown in the plug connector shown in FIG. 6, where it can be seen that the ground
terminals of alternating associated terminal sets, namely terminals 150 (
G12), 152 (
G56), 153 (
G78) and 250 (
G1112) lie along, or are supported on, one (the upper) leaf portion 114b of the connector
housing 112 along with the signal terminals of intervening associated terminal sets,
namely terminals 142, 143 (
S3 &
S4), 148, 149 (
S9 &
S10). In a similar, but opposite fashion, the signal terminals of the alternating associated
terminal sets, namely 140, 141 (
S1 &
S2), 144, 145 (
S5 &
S6), 146, 147 (
S7 &
S8), and 240, 241 (
S11 &
S12) and the ground terminals of the intervening associated terminals sets, namely 151
(
G34) and 154 (
G910) lie along, or are supported by the other, or lower, leaf portion 114a. Other terminals,
such as power in and out terminal 170 and a terminal 171 reserved for other use, may
be located on either the upper or lower leaf portion, as illustrated in FIG. 6, which
may be considered as a schematic diagram of both the plug connector shown in FIG.
4 and the receptacle connector shown in FIG. 1. A key member 173 may also be formed
on one of the leaf portions to provide means for keying to the opposing plug connector
160.
[0042] By this structure, each pair of the differential signal terminals of the connector
and its associated circuit board circuitry have an individual ground terminal associated
with them that extends through the connector, thereby more closely resembling the
interconnecting cable from an electrical performance aspect. The same inverted, triangular
relationship is maintained in the plug connector 160, and this and the structure of
the receptacle connector 100 keeps the signal wires of the cable "seeing" the ground
in the same manner throughout the length of the cable and in substantially the same
manner through the plug and receptacle connector interface and on to the circuit board.
[0043] The presence of an associated, distinct ground terminal with each pair of differential
signal terminals importantly imparts capacitive, common mode, coupling between the
three associated terminals as a set. This coupling will serve to reduce the impedance
in that particular region of the connector and serves to reduce the overall impedance
variation through the entire cable to board interface. As such, the present invention
obtains an impedance curves that more closely emulates the straight line baseline
50 of the Impedance curve of FIG. 15. The sizes on the terminals and their spacing
may be varied to in effect, "tune" the impedance of the connector. The effect of this
tunability is explained in FIG. 15, in which a reduction in the overall impedance
discontinuity occurring through a cable to circuit board connector assembly. The impedance
discontinuity that is expected to occur in the connectors of the present invention
is shown by the dashed line 60 of FIG. 15. The solid line of FIG. 15 represents the
typical impedance discontinuity that is experienced in the connector system, and by
comparing the dashed and solid lines, the magnitudes of the peaks and valleys of this
discontinuity,
H11,
H22 and
H33 are greatly reduced. The present invention is believed to significantly reduce the
overall discontinuity experienced in a conventional connector assembly. In one application,
it is believed that the highest level of discontinuity will be about 135 ohms (at
H11) while the lowest level of discontinuity will be about 85 ohms (at
H22). The target baseline impedance of connectors of the invention will typically be
may vary from about 28 to about 150 ohms, but will preferably be in the range of between
about 100 to about 110 ohms with a tolerance of about +/- 5 to +/- 25ohms. It is contemplated
therefore that the connectors of the present invention will have a total discontinuity
(the difference between
H11 and
H22) of about 50 ohms or less, which results in a decrease from the conventional discontinuity
of about 90 ohms referred to above of as much as almost 50%. This benefit is believed
to originate from the capacitive coupling that occurs among the two differential signal
terminals and their associated ground terminal. It will be understood, however, that
capacitive coupling is but one aspect that affects the ultimate characteristic impedance
of the terminals and the connector supporting them.
[0044] In the embodiments shown in FIGS. 1-6, the width of the ground terminal contact blade
portions are preferably larger than the corresponding contact blade portions of the
signal terminals. In some instances, a portion of the ground terminal may overlie
or overlap, a portion of at least one of its associated signal terminals and in other
instances, the ground terminal may lie between or abut imaginary lines that extend
up from the side edges of the signal terminals. In instances where the ground terminals
are larger than their associate signal terminals by virtue of their increased width,
they will have more surface area than a signal terminal and hence, increased coupling.
[0045] FIG. 7 illustrates another embodiment 300 of a connector incorporating the principles
of the present invention and utilizing terminals having pin-type contact portions
as opposed to the flat contact blade portion of FIGS. 1-6 In this connector 300, helix-style
terminals 302 are utilized and each such terminal 302 is housed within an individual
associated cavity 304 of the dielectric connector housing 306. The cavities 304 and
their associated terminals 302 are disposed in the connector housing in two rows,
as illustrated. The base structure of the contact portions of this type of terminals
is described generally in U.S. Patent No- 4,740,180, issued April 26, 1988. As shown
in FIG. 11, each terminal 302 in this style connector 300, has such a helix-style
contact portion 315 that extends out from a body portion 316 that is used to hold
the terminal 3 02 in place within its associated connector housing cavity 304, and
a tail portion 318 that as shown may be used for mounting the connector 300 to a surface
of a circuit board 301. The tail portions 318 of the terminals 302 are connected to
the contact and body portions by way of interconnecting portions 319. Although the
planes of the contact portions 315 are different (but preferably parallel), the planes
of the interconnecting portions 319 and the tail portions 318 are preferably common.
[0046] The tail portions 318 of these type terminals are all surface mount tails and, hence
lie in a single, common plane that coincides with the top surface of a circuit board
(not shown) to which the connector is mounted. However, as illustrated in FIG. 11
(in phantom) and FIG. 16, the terminals may utilize through-hole mounting tails. In
this instance, the tails and the body portion of the terminals will not lie in a common
plane, but rather, the ground and signal terminals may lie in different planes (vertical
planes are shown in FIGS, 11 and 16) and be spaced apart from each other by a spacing
"D". In this arrangement, the tails 318 occur as part of the interconnecting body
portions 319 and the ground terminal tail is spaced apart from the signal terminal
tails.
[0047] The connector 300 may include a pair of shield, inner shield 308 and an outer shield
310 to provide shielding to the overall connector structure. The inner shield 308
may extend over a portion of the connector housing 306 as shown in FIG 9, and the
outer shield 310 may extend over substantially all of the connector housing 306 in
a manner well known in the art. In this embodiment, the connector 300 does not include
any ancillary terminals, such as power in and out, or a status detection terminal
as might be utilized in the connector of FIGS. 1-6.
[0048] In this embodiment, two ground terminals 320, 321 are utilized and are respectively
associated each with a pair of differential signal terminals 325, 326 and 327, 328.
The signal terminals and ground terminal of each associated set are arranged in the
desired triangular fashion and the sets are inverted with respect to each other, meaning
that if the connector is considered as having two distinct rows of terminals, the
ground terminal 320 of one set is located in one terminal row, while the ground terminal
of the other differential terminal set is located in the other terminal row. Likewise,
the signal terminals of each differential terminal set are inverted. This type of
application is useful on multiple signal channel applications, where each differential
terminal set is used to convey data from a different and distinct channel.
[0049] FIG. 12 illustrates another embodiment 400 of a connector constructed in accordance
with the principles of the present invention. In this embodiment, two sets 402, 404
of differential terminals are illustrated in an inverted triangular fashion, but the
three terminals that make up each differential set are partially separated by a recess,
or cavity 406 formed in the front face of the connector housing 408. This cavity has
a depth less than the depth of the connector housing and may preferably range between
about 0.5 mm to about 10 mm. This depth provides a hollow air gap or air "pool" at
the mating face of the connector housing and serves to provide a measure of electrical
isolation between by modifying the affinity of each of the terminals within a triplet
will have for each other. The recess 406 serves to somewhat "tie" the three terminals
together by virtue of its use of air as a dielectric. As illustrated, it is preferable
that the recess lie within the boundaries of an imaginary triangle connecting the
three terminals of the triplet together.
[0050] FIG. 13 illustrates schematically, how a recess, or cavity, 420 may be formed in
a connector housing 422 to isolate differential terminal sets from each other. The
recess 420 in this instance may project much deeper into the connector housing than
the recess shown in FIG 12, and may extend, if need be, entirely through the connector
housing. In this type of structure, the cavities 420 provide a deep air channel with
the air having a different dielectric constant than the connector housing material
and thus will serve to electrically isolate terminal triplets from each other
[0051] FIG. 14 illustrates yet another embodiment 500 in which terminal set "inserts" are
formed by insert or otherwise molding a set of three associated terminals 510 (including
two signal terminals S and one ground reference terminal G) onto a dielectric support
506 that may have the general triangular configuration shown in FIG. 14 to form a
distinct insert or module that may be inserted into a corresponding cavity. The terminals
of each such associated set are maintained in their triangular orientation by the
support 506 so that the two signal terminals are spaced apart from each other and
the ground terminal is spaced apart from the signal terminals. These inserts, or modules,
are then inserted into the connector housing 502 into complementary shaped cavities
505. In this manner, different dielectric materials are present among the terminals
of each associated terminal set as well as between adjacent terminal sets, which are
also inverted. The dielectric constant of the molded support 506 will be different
than that of the connector housing 502 to provide another means of electrical isolation
between terminal triplets and enhance the electrical affinity, at least in terms of
coupling, among the terminals of each triplet. In instances where the support material
of the terminal set has a dielectric constant higher than that of the surrounding
connector housing, the coupling among the terminals in the triplet will be increased,
thereby driving the impedance of the triplet down. Conversely, where the support material
of the terminal set has a dielectric constant lower than that of the surrounding connector
housing, the coupling among the terminals in the triplet will be decreased, thereby
driving the impedance of the triplet up. Hence, the impedance of the connector may
be tuned, both overall and within individual triplet sets (or signal channels).
[0052] FIG. 17 illustrates the implementation of the inverted structure of the present invention
in a pin-type automotive connector 600. The connector 600 has an insulative housing
601 with a plurality of cavities 602 formed therein. Each such cavity 602 preferably
includes a conductive terminal disposed therein, although in some applications, certain
of the cavities may be empty or "blind". As shown in the Figure, two signal channels
are shown, each of which includes a terminal triplet 603, 604, with two signal terminals
A+, A-, B+, B- associated with a single ground terminal
GRA and
GRB. In this type of application, the terminal triplets or triads may be separated by
power "ground" type terminals, i.e., voltage in and voltage return, +Vcc and -Vcc.
The terminals extend through to the rear of the housing 601, where they may be terminated
to corresponding wires of a wire harness or to a circuit board. The opposing connector
will utilize projecting terminals arranged in the same manner to mate with the connector
600.
1. A high-density electrical connector (100,300,400, 500, 600) comprising: a housing
(112, 306, 408, 422, 502, 601) which holds a plurality of conductive terminals (119),
the terminals having contact portions (181) adapted for mating to contact portions
of opposing terminals of a mating connector, said terminals including at least first
and second distinct sets (165) of terminals, each distinct set of terminals including
a pair of differential signal contact portions (140,141) and an associated ground
contact portion (150),
characterised in that;
the two distinct sets (165) of terminals are disposed in at least two rows on said
housing (112,), one of the two rows including a pair of differential signal contact
portions (140,141) from said first distinct set (165) of terminals and a ground contact
portion (150) from said second distinct set (165) of terminals, the other of said
two rows including a pair of differential signal contact portions (142,143) from said
second distinct set (165) of terminals and a ground contact portion (150) from said
first distinct set (165) of terminals, said first and second distinct sets (165) of
terminals being inverted with respect to each other within said housing (112), whereby
said first distinct set of terminal contact portions (140,141) disposed in said one
row is opposed to said second distinct terminal set ground contact portion (150) disposed
in said other row.
2. The connector of claim 1, wherein said connector housing is a plug connector housing
(160) and said housing (160) includes a plug portion (162) that is matable with an
opposing receptacle connector (100), and said two rows are opposed two different surfaces
of said plug portion (162).
3. The connector of claim 1, wherein said connector housing (112) is a receptacle connector
housing and said housing includes a socket portion that receives a plug portion of
an opposing plug connector (160) and said two rows are disposed on opposing surfaces
of said socket portion.
4. The connector of claim 1 wherein, for each of said distinct sets (165) of terminals,
said pair of differential signal contact portions (140,141) and said associated ground
contact portion (150) are arranged at apexes of an imaginary triangle.
5. The connector of claim 4, wherein the imaginary triangles are inverted with respect
each distinct set (165) of terminals.
6. The connector of claim 1, wherein said connector housing (422) includes at least one
recess (420) formed therein disposed between said two distinct sets of terminals (S,S,G),
the recess (420) defining an air gap between said distinct sets of terminals.
7. The connector of claim 1, wherein said distinct sets of terminals are formed together
as a terminal unit (506) and said connector housing (502) includes cavities (505)
formed thereon which receive said distinct terminal units.
8. The connector of claim 1, wherein each of said terminals (119,302) includes a tail
portion (125,31b) that extends out of said housing (112,306) for attaching said connector
to a circuit member.
9. The connector of claim 8, wherein the terminal tail portions (125,318) are surface
mount portions which lie in a common plane.
10. The connector of claim 8, wherein said tail portions (318) include through-hole portions
for insertion into mounting holes of a circuit member, said tail portions (318) of
said signal terminals (327,328) of each of said distinct sets (165) of terminals being
spaced apart from said tail portions (318) of said ground terminals (321) of said
distinct terminal sets (165).
11. The connector of claim 1, further including an additional distinct set (165) of terminals,
the additional distinct terminal set (165) including a pair of differential signal
contact portions (144,145) and an associated ground contact portion (152), said first,
second and additional sets (165) of terminals being inverted with respect to each
other within said connector housing (112).
12. The connector of claim 1, wherein said ground contact portions (150) of said first
and second distinct terminal sets (165) are wider than a width of any single signal
terminal (140,141) of said distinct terminal sets (165).
13. The connector of claim 10, wherein said ground and signal terminal tail portions 150;140,141)
lie in different planes.
14. The connector of claim 7, wherein said terminal units (503) each include a dielectric
body portion (506) supporting said terminals (S,S,G) of each distinct terminal set,
the terminal unit dielectric body portion (506) supporting a pair of differential
signal terminals (S.S) in spaced apart order thereon and further supporting an associated
ground terminal (G) spaced apart from said differential signal terminal pair.
15. The connector of claim 14, wherein said connector housing (502) is formed from a dielectric
material and the connector housing (502) and said terminal set dielectric body portion
(506) each have different dielectric constants.
16. The connector of claim 14, wherein said terminal set dielectric body portion (506)
has a triangular configuration.
17. The connector of claim 1, wherein said distinct terminal sets (165) are separated
by a key component (188) for orienting an opposing connector with said connector.
18. The connector of claim 1. wherein said connector housing (408) includes a plurality
of spaced-aport hollow cavities disposed therein which define said housing two terminal
rows, and for each distinct terminal set (402,404), said pair of differential signal
contact portions (S,S) and said associated ground contact portion (G) are arranged
at apexes of imaginary triangles, said connector housing (408) further including a
front face and said front face including a pair of recesses (406) formed therein,
said recesses (406) being disposed within boundaries of said imaginary triangles.
19. The connector of claim 1, wherein said terminals include pin terminals and said connector
includes a power-in lenninal (+Vcc) and a power-out terminal (-Vcc), the power-in
and power-out terminals being disposed in different ones of said two rows of terminals.
20. The connector of claim 15, wherein the dielectric constant of said connector housing
(520) is lower than the dielectric constant of said dielectric body portion (506).
21. The connector of claim 15, wherein the dielectric constant of said connector housing
(520) is higher than the dielectric constant of said dielectric body portion (506).
1. Elektrischer Verbinder (100, 300, 400, 500, 600) hoher Dichte, der aufweist: ein Gehäuse
(112, 306, 408, 422, 502, 601) das eine Mehrzahl von leitenden Anschlüssen (119) trägt,
wobei die Anschlüsse Kontaktteile (181) aufweisen, die dazu ausgebildet sind, mit
Kontaktteilen gegenüberstehender Anschlüsse eines zusammenpassenden Verbinders zusammengefügt
zu werden, welche Anschlüsse wenigstens erste und zweite getrennte oder einzelne Sätze
(165) von Anschlüssen einschließen, wobei jeder einzelne Satz von Anschlüssen ein
Paar von differentiellen Signalkontaktteilen (140, 141) und einen damit verknüpften
Massekontaktteil (150) einschließt,
dadurch gekennzeichnet dass
die zwei einzelne Sätze (165) von Anschlüssen in wenigstens zwei Reihen an dem Gehäuse
(112) angeordnet sind, wobei eine der beiden Reihen ein Paar von differentiellen Signalkontaktteilen
(140, 141) von dem ersten einzelnen Satz (165) von Anschlüssen und einen Massekontaktteil
(150) von dem zweiten einzelnen Satz von (165) von Anschlüssen einschließt, wobei
die andere der beiden Reihen ein Paar von differentiellen Signalkontaktteilen (142,
143) von dem zweiten einzelnen Satz (165) von Anschlüssen und einen Massekontaktteil
(150) von dem ersten einzelnen Satz (165) von Anschlüssen einschließt, wobei die ersten
und zweiten einzelnen Sätze (165) von Anschlüssen in Bezug aufeinander innerhalb des
Gehäuses (112) umgekehrt sind, wobei der erste einzelne Satz von Anschlusskontaktteilen
(140, 141), der in der einen Reihe angeordnet ist, dem Massekontaktteil (150) des
zweiten einzelnen Anschlusssatzes, der in der anderen Reihe angeordnet ist, gegenüber
steht.
2. Verbinder nach Anspruch 1, bei dem das Verbindergehäuse ein Steckerverbindergehäuse
(160) ist und das Gehäuse (160) einen Steckerteil (162) einschließt, der mit einem
gegenüberstehenden Buchsenverbinder (100) zusammenfügbar ist, und bei dem die beiden
Reihen zwei unterschiedlichen des Steckerteils (162) gegenüberstehen.
3. Verbinder nach Anspruch 1, bei dem das Verbindergehäuse (112) ein Buchsenverbindergehäuse
ist und das Gehäuse einen Steckdosenteil einschließt, der einen Steckerteil eines
gegenüberstehenden Steckerverbinders (160) aufnimmt, und bei dem die beiden Reihen
auf gegenüberliegenden Oberflächen des Steckdosenteils angeordnet sind.
4. Verbinder nach Anspruch 1, bei dem für jeden der einzelnen Sätze (165) von Anschlüssen
das Paar von differentiellen Signalkontaktteilen (140, 141) und der damit verknüpfte
Massekontaktteil (150) auf Ecken eines imaginären Dreiecks angeordnet sind.
5. Verbinder nach Anspruch 4, bei dem die imaginären Dreiecke in Bezug auf jeden einzelnen
Satz (165) von Anschlüssen umgekehrt sind.
6. Verbinder nach Anspruch 1, bei dem das Verbindergehäuse (422) wenigstens eine darin
ausgebildete Ausnehmung (420) einschließt, die zwischen den beiden einzelnen Sätzen
von Anschlüssen (S,S,G) angeordnet ist, wobei die Ausnehmung (420) einen Luftspalt
zwischen den einzelnen Sätzen von Anschlüssen definiert.
7. Verbinder nach Anspruch 1, bei dem die einzelnen Sätze von Anschlüssen zusammen als
eine Anschlusseinheit (506) ausgebildet sind und das Verbindergehäuse (502) daran
ausgebildete Hohlräume (505) einschließt, die die einzelnen Anschlusssätze aufnehmen.
8. Verbinder nach Anspruch 1, bei dem jeder der Anschlüsse (119, 302) einen Schwanzteil
(125, 318) einschließt, der sich aus dem Gehäuse (112, 306) zum Anbringen des Verbinders
an einem Schaltungsglied erstreckt.
9. Verbinder nach Anspruch 8, bei dem die Anschlussschwanzteile (125, 318) Oberflächenanbringungsteile
sind, die in einer gemeinsamen Ebene liegen.
10. Verbinder nach Anspruch 8, bei dem die Schwanzteile (318) Durchgangslochteile zum
Einfügen in Montagelöcher eines Schaltungsgliedes einschließen, welche Schwanzteile
(318) der Signalanschlüsse (327, 328) jedes der einzelnen Sätze (165) von Anschlüssen
von den Schwanzteilen (318) der Masseanschlüsse (321) der einzelnen Anschlusssätze
(165) beabstandet sind.
11. Verbinder nach Anspruch 1, der weiter einen zusätzlichen einzelnen Satz (165) von
Anschlüssen einschließt, wobei der zusätzliche einzelne Anschlusssatz (165) ein Paar
von differentiellen Signalkontaktteilen (144, 145) und einen damit verknüpften Massekontaktteil
(152) einschließt, welche ersten, zweiten und zusätzlichen Sätze (165) von Anschlüssen
in Bezug aufeinander innerhalb des Verbindergehäuses (112) umgekehrt sind.
12. Verbinder nach Anspruch 1, bei dem die Massekontaktteile (150) der ersten und zweiten
einzelnen Anschlusssätze (165) breiter sind als die Breite irgendeines einzelnen Signalanschlusses
(140, 141) der einzelnen Anschlusssätze (165).
13. Verbinder nach Anspruch 10, bei dem die Masse- und Signalanschlussschwanzteile (150;
140, 141) in unterschiedlichen Ebenen liegen.
14. Verbinder nach Anspruch 7, bei dem die Anschlusseinheiten (503) jeweils einen dielektrischen
Körperteil (506) einschließen, der die Anschlüsse (S,S,G) jedes einzelnen Anschlusssatzes
trägt, wobei der dielektrische Körperteil (506) der Anschlusseinheit ein Paar von
differentiellen Signalanschlüssen (S,S) in beabstandeter Ordnung darauf trägt und
weiter einen verknüpften Masseanschluss (G) trägt, der von dem differentiellen Signalanschlusspaar
beabstandet ist.
15. Verbinder nach Anspruch 14, bei dem das Verbindergehäuse (502) aus einem dielektrischen
Material gebildet ist und das Verbindergehäuse(502) und der dielektrische Körperteil
(506) des Anschlusssatzes jeweils unterschiedliche Dielektrizitätskonstanten haben.
16. Verbinder nach Anspruch 14, bei dem der dielektrische Körperteil (506) des Anschlusssatzes
eine dreieckige Konfiguration hat.
17. Verbinder nach Anspruch 1, bei dem die einzelnen Anschlusssätze (165) durch eine Schlüssel-,
Keil- oder Passfederkomponente (188) zum Ausrichten eines gegenüberstehenden Verbinders
mit dem Verbinder getrennt sind.
18. Verbinder nach Anspruch 1, bei dem das Verbindergehäuse (408) eine Mehrzahl von beabstandeten
hohlen Hohlräumen einschließt, die darin angeordnet sind, die die beiden Anschlussreihen
des Gehäuses definieren, und wobei für jeden einzelnen Anschlusssatz (402, 404) das
Paar von differentiellen Signalkontaktteilen (S,S) und der verknüpfte Massekontaktteil
(G) auf Ecken von imaginären Dreiecken angeordnet sind, wobei das Verbindergehäuse
(408) weiter eine. Vorderfläche einschließt und die Vorderfläche ein Paar von darin
ausgebildeten Ausnehmungen (406) einschließt, welche Ausnehmungen (406) innerhalb
der Grenzen der imaginären Dreiecke angeordnet sind.
19. Verbinder nach Anspruch 1, bei dem die Anschlüsse Stiftanschlüsse einschließen und
der Verbinder einen Stromversorgungseingangsanschluss (+Vcc) und einen Stromversorgungsausgangsanschluss
(-Vcc) einschließt, wobei die Stromeingangs- und Stromausgangsanschlüsse in unterschiedlichen
der beiden Reihen von Anschlüssen angeordnet sind.
20. Verbinder nach Anspruch 15, bei dem die Dielektrizitätskonstante des Verbindergehäuses
(520) kleiner ist als die Dielektrizitätskonstante des dielektrischen Körperteils
(506).
21. Verbinder nach Anspruch 15, bei dem die Dielektrizitätskonstante des Verbindergehäuses
(520) größer ist als die Dielektrizitätskonstante des dielektrischen Körperteils (506).
1. Connecteur (100, 300, 400, 500, 600) électrique haute densité comprenant: un boîtier
(112, 306, 408, 422, 502, 601) qui contient une pluralité de bornes (119) conductrices,
les bornes comportant des parties (181) de contact adaptées pour s'accoupler avec
des parties de contact de bornes opposées d'un connecteur correspondant, lesdites
bornes comprenant au moins des premier et deuxième ensembles distincts (165) de bornes,
chaque ensemble distinct de bornes comprenant deux parties (140, 141) de contact de
signal différentiel et une partie (150) de contact de masse associée,
caractérisé en ce que :
les deux ensembles (165) distincts de bornes sont disposés en au moins deux rangées
sur ledit boîtier (112), l'une des deux rangées comprenant deux parties (140, 141)
de contact de signal différentiel dudit premier ensemble (165) distinct de bornes
et une partie (150) de contact de masse dudit deuxième ensemble (165) distinct de
bornes, l'autre desdites deux rangées comprenant deux parties (142, 143) de contact
de signal différentiel dudit deuxième ensemble (165) distinct de bornes et une partie
(150) de contact de masse dudit premier ensemble (165) distinct de bornes, lesdits
premier et deuxième ensembles (165) distincts de bornes étant inversés l'un par rapport
à l'autre dans ledit boîtier (112), moyennant quoi ledit premier ensemble distinct
de parties (140, 141) de contact de bornes disposé dans ladite première rangée est
opposé à ladite partie (150) de contact de masse du deuxième ensemble distinct de
bornes disposée dans ladite autre rangée.
2. Connecteur selon la revendication 1, dans lequel ledit boîtier de connecteur est un
boîtier (160) de connecteur enfichable et ledit boîtier (160) comprend une partie
(162) enfichable qui peut être accouplée avec un connecteur (100) fixe opposé, et
lesdites deux rangées sont deux surfaces différentes opposées de ladite partie (162)
enfichable.
3. Connecteur selon la revendication 1, dans lequel ledit boîtier (112) de connecteur
est un boîtier de connecteur fixe et ledit boîtier comprend une partie d'embase qui
reçoit une partie enfichable d'un connecteur (160) enfichable opposé et lesdites deux
rangées sont disposées sur des surfaces opposées de ladite partie d'embase.
4. Connecteur selon la revendication 1, dans lequel, pour chacun desdits ensembles (165)
distincts de bornes, lesdites deux parties (140, 141) de contact de signal différentiel
(140, 141) et ladite partie (150) de contact de masse associée sont agencées aux sommets
d'un triangle imaginaire.
5. Connecteur selon la revendication 4, dans lequel les triangles imaginaires sont inversés
par rapport à chaque ensemble (165) distinct de bornes.
6. Connecteur selon la revendication 1, dans lequel ledit boîtier (422) de connecteur
comprend au moins un évidement (420) formé dans celui-ci disposé entre lesdits deux
ensembles distincts de bornes (S, S, G), l'évidement (420) définissant un espace d'air
entre lesdits ensembles distincts de bornes.
7. Connecteur selon la revendication 1, dans lequel lesdits ensembles distincts de bornes
sont formés, ensemble, comme une unité (506) de bornes et ledit boîtier (502) de connecteur
(502) comprend des cavités (505) formées sur celui-ci qui reçoivent lesdites unités
de bornes distinctes.
8. Connecteur selon la revendication 1, dans lequel chacune desdites bornes (119, 302)
comprend une partie (125, 318) de queue qui s'étend hors dudit boîtier (112, 306)
pour fixer ledit connecteur à un élément de circuit.
9. Connecteur selon la revendication 8, dans lequel les parties (125, 318) de queue des
bornes sont des parties de montage en surface qui appartiennent à un même plan.
10. Connecteur selon la revendication 8, dans lequel lesdites parties (318) de queue comprennent
des parties pour trous traversants pour une insertion dans des trous de montage d'un
élément de circuit, lesdites parties (318) de queue desdites bornes (327, 328) de
signal de chacun desdits ensembles (165) distincts de bornes étant espacées desdites
parties (318) de queue desdites bornes (321) de masse desdits ensembles (165) distincts
de bornes.
11. Connecteur selon la revendication 1, comprenant en outre un ensemble (165) distinct
supplémentaire de bornes, l'ensemble (165) distinct supplémentaire de bornes comprenant
deux parties (144, 145) de contact de signal différentiel et une partie (152) de contact
de masse associée, lesdits premier, deuxième ensembles et ensemble (165) supplémentaire
de bornes étant inversés les uns par rapport aux autres dans ledit boîtier (112) de
connecteur.
12. Connecteur selon la revendication 1, dans lequel lesdites parties (150) de contact
de masse desdits premier et deuxième ensembles (165) de bornes distincts sont plus
larges qu'une largeur de n'importe quelle borne (140, 141) de signal unique desdits
ensembles (165) de bornes distincts.
13. Connecteur selon la revendication 10, dans lequel lesdites parties de contact de masse
et les parties (140, 141) de queue sont dans des plans différents.
14. Connecteur selon la revendication 7, dans lequel lesdites unités (503) de bornes comprennent
chacune une partie (506) de corps diélectrique supportant lesdites bornes (S, S, G)
de chaque ensemble de bornes distinct, la partie (506) de corps diélectrique d'unité
de bornes supportant deux bornes (S, S) de signal différentiel ordonnées et espacées
sur ladite partie de corps et supportant, en outre, une borne (G) de masse associée
espacée desdites deux bornes de signal différentiel.
15. Connecteur selon la revendication 14, dans lequel ledit boîtier (502) de connecteur
est formé en un matériau diélectrique, et le boîtier (502) de connecteur et ladite
partie (506) de corps diélectrique d'ensembles de bornes ont chacun différentes constantes
diélectriques.
16. Connecteur selon la revendication 14, dans lequel ladite partie (506) de corps diélectrique
d'ensembles de bornes a une configuration triangulaire.
17. Connecteur selon la revendication 1, dans lequel lesdits ensembles (165) de bornes
distincts sont séparés par un composant (188) formant détrompeur pour orienter un
connecteur opposé avec ledit connecteur.
18. Connecteur selon la revendication 1, dans lequel ledit boîtier (408) de connecteur
comprend une pluralité de cavités creuses espacées disposées dans ledit boîtier qui
définissent lesdites deux rangées de bornes de boîtier, et pour chaque ensemble (402,
404) de bornes distinct, lesdites deux parties (S, S) de contact de signal différentiel
et ladite partie (G) de contact de masse associée sont agencées aux sommets de triangles
imaginaires, ledit boîtier (408) de connecteur comprenant, en outre, une face avant
et ladite face avant comprenant deux évidements (406) formés dans celle-ci, lesdits
évidements (406) étant disposés à l'intérieur ou dans le périmètre délimité par desdits
triangles imaginaires.
19. Connecteur selon la revendication 1, dans lequel lesdites bornes comprennent des broches
et ledit connecteur comprend une borne d'entrée de puissance (+Vcc) et une borne de
sortie de puissance (-Vcc), les bornes d'entrée et de sortie de puissance étant disposées
dans des rangées différentes parmi lesdites deux rangées de bornes.
20. Connecteur selon la revendication 15, dans lequel la constante diélectrique dudit
boîtier (520) de connecteur est inférieure à la constante diélectrique de ladite partie
(506) de corps diélectrique.
21. Connecteur selon la revendication 15, dans lequel la constante diélectrique dudit
boîtier (520) de connecteur est supérieure à la constante diélectrique de ladite partie
(506) de corps diélectrique.