| (19) |
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(11) |
EP 0 740 373 B9 |
| (12) |
CORRECTED EUROPEAN PATENT SPECIFICATION |
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Note: Bibliography reflects the latest situation |
| (15) |
Correction information: |
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Corrected version no 1 (W1 B1) |
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Corrections, see
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| (48) |
Corrigendum issued on: |
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16.10.2002 Bulletin 2002/42 |
| (45) |
Mention of the grant of the patent: |
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27.02.2002 Bulletin 2002/09 |
| (22) |
Date of filing: 26.04.1996 |
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| (54) |
High performance card edge connector
Hochleistungsfähiger Leiterplattenrandverbinder
Connecteur de bord de carte à haute performance
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| (84) |
Designated Contracting States: |
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DE FR GB IT NL SE |
| (30) |
Priority: |
28.04.1995 US 430952
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| (43) |
Date of publication of application: |
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30.10.1996 Bulletin 1996/44 |
| (73) |
Proprietor: MOLEX INCORPORATED |
|
Lisle
Illinois 60532 (US) |
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| (72) |
Inventor: |
|
- Harwath,Frank A.
Downers Grove,
Illinois 60516 (US)
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| (74) |
Representative: Blumbach, Kramer & Partner GbR |
|
Patentanwälte,
Alexandrastrasse 5 65187 Wiesbaden 65187 Wiesbaden (DE) |
| (56) |
References cited: :
EP-A- 0 436 943 US-A- 5 035 631 US-A- 5 259 786
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US-A- 5 024 609 US-A- 5 141 445
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
Field of the Invention
[0001] The present invention relates to electrical connectors for printed circuits and more
particularly to a high density, low impedance card edge connector useful in high frequency
circuits.
Description of the Prior Art
[0002] Card edge connectors are widely used for connecting printed circuit cards, called
daughtercards, to printed circuit boards or motherboards. A typical card edge connector
includes an insulating housing with a card edge receiving slot and numerous cavities
receiving electrical terminals. The terminals include board contacts extending downward
from the housing and card contacts that engage conductive pads on the edge of a card
inserted into the slot. The housing is mounted on the motherboard with the board contacts
soldered to conductive regions of the motherboard. The card edge connector removably
receives the daughtercard and the terminals provide conductive paths between conductive
pads on the card and conductive regions of the board.
[0003] In order to achieve improved performance, faster operating speeds and increased circuit
density are important trends in digital electronic circuits using printed circuits.
For example, microprocessors operate at ever increasing frequencies and communicate
with ancillary devices such as memory, display drivers and the like over wide channels
with increasing numbers of parallel connections. These trends result in problems in
the design of connectors used with such circuits.
[0004] The goal of high circuit density may be met with closely spaced terminals having
relatively small cross sectional areas. The requirement for high frequency operation
results in the need for low impedance in order to accommodate fast digital pulse rise
times and wide bandwidth. But close circuit spacing can result in increased crosstalk
due to capacitive coupling and can result in increased impedance due to long and/or
narrow signal paths. In addition, at high frequencies, shielding from external interference
may be desirable. Known card edge connector designs have not been entirely effective
in meeting these several and sometimes conflicting goals without high cost and undesirable
complexity.
[0005] A card edge connector according to the preamble of claim 1 is known from US-A-5,024,609.
The terminals are arranged in upper and lower pairs and it is considered to use the
upper pair as signal terminals, when the lower pair is used as ground terminals, and
vice versa in an alternate arrangement.
Summary of the Invention
[0006] A principal object of the present invention is to provide an improved high performance
card edge connector. Other and more specific objects are to provide a connector with
high circuit density and low impedance; to provide a connector suitable for use with
high frequency digital signals; to provide a connector in which crosstalk is minimized;
to provide a connector having interference shielding characteristics; and to provide
an improved connector overcoming disadvantages of card edge connectors used in the
past.
[0007] In brief, in accordance with the present invention there is provided a card edge
connector for a removable printed circuit card having a mating edge with a plurality
of conductive pads. The connector includes an insulating housing with elongated top
and bottom walls and elongated spaced apart side walls. A plurality of transverse
cavities extend between the side walls. An elongated slot in the top wall receives
the mating edge of the circuit card. The slot intersects the cavities and divides
them into similar, aligned cavity portions at opposite sides of the slot. A plurality
of ground and signal terminals are received in the cavity portions, and each of the
terminals includes a mounting portion for holding the terminal in one of the cavity
portions and a contact portion for engaging one of the contact pads upon insertion
of the mating edge into the slot. The card edge connector is characterized by a single
one of the ground terminals being disposed in each of a group of spaced apart first
cavity portions, and a plurality of the signal terminals being disposed in each of
a group of second cavity portions, each of the second cavity portions being adjacent
one of the first cavity portions.
Brief Description of the Drawings
[0008] The present invention together with the above and other objects and advantages may
best be understood from the following detailed description of the preferred embodiments
of the invention illustrated in the drawings, wherein:
FIG. 1 is an isometric view of a high performance card edge connector constructed
in accordance with the present invention used for interconnecting a printed circuit
motherboard and a printed circuit daughtercard;
FIG. 2 is an enlarged fragmentary horizontal sectional view of the connector taken
along the line 2-2 of FIG. 3;
FIG. 3 is a sectional view of the connector taken along the line 3-3 of FIG. 2;
FIG. 4 is a sectional view of the connector taken along the line 4-4 of FIG. 2;
FIG. 5 is a fragmentary enlarged elevational view of part of the daughtercard of FIG.
1;
FIG. 6 is a fragmentary enlarged plan view of part of the motherboard of FIG. 1;
FIG. 7 is a view like FIG. 3 illustrating another embodiment of the invention, and
is a sectional view taken along the line 7-7 of FIG. 9;
FIG. 8 is a sectional view of the connector of FIG. 7, taken along the line 8-8 of
FIG. 9;
FIG. 9 is an enlarged fragmentary horizontal sectional view of the connector taken
along the line 9-9 of FIG. 7;
FIG. 10 is a fragmentary enlarged elevational view of part of a daughtercard used
with the connector of FIG. 7; and
FIG. 11 is a fragmentary enlarged plan view of part of a motherboard used with the
connector of FIG. 7.
Detailed Description of the Preferred Embodiments
[0009] Having reference now to the drawings, FIG. 1 illustrates a card edge connector 10
constructed in accordance with the principles of the present invention together with
a printed circuit motherboard 12 and a printed circuit daughtercard 14. In a typical
application for example, the board 12 may be a motherboard of a computer or other
electronic device incorporating digital electronics, and card 14 may be a smaller
printed circuit board or daughterboard having electronic devices such as memory or
the like. Connector 10 is mounted on the board 12 and the card 14 is releasably inserted
into the connector 10 in order to establish electrical connections between the board
12 and card 14.
[0010] The structure of the connector 10 is seen in FIGS. 1-4. It includes an insulating
housing 16 formed of molded plastic including an elongated top wall 18, a bottom surface
20, and elongated, opposed side walls 22 and 24. The ends of the housing 16 are provided
with raised guide portions 26. The housing may be provided with standoffs and mounting
pegs (not shown) extending down from the bottom wall 20 to hold the housing 16 on
the board 12 until it is permanently attached in a soldering operation with bottom
wall 20 parallel to the board surface. These features are disclosed for example in
U.S. patent 5,259,768.
[0011] An array of numerous terminal receiving cavities 28 extend transversely between the
side walls 22 and 24. The cavities are separated by barrier walls 30 of the housing
16. The upper portions of the cavities 28 are closed by the top wall 18 and the lower
portions of the cavities open through the bottom surface 20. The housing 16 includes
an elongated, central internal mounting rail 32. Terminal spacer projections 34 extend
outwardly from the side walls 22 near the bottom of the housing 16.
[0012] The daughtercard 14 includes a mating edge 36. The housing 16 includes an elongated
slot 38 formed along the center of the top wall 18 for receiving the mating edge 36.
The guide portions 26 aid in inserting the mating edge 36 into the slot 38. The housing
16 includes keys or transverse webs 40 extending across the slot 38 and received in
keyways or channels 42 in the mating edge 36 to provide a positioning or keying function.
The slot 38 intersects the cavities 28 and the walls 30, and the cavities are divided
into opposed, transversely aligned cavity portions 28A and 28B on opposite sides of
the slot 38. All of the cavities 28 are identical to one another, and all of the portions
28A and 28B are also identical except for orientation with respect to the slot 38.
A bottom wall 39 of the slot 38 is defined by portions of the barrier walls 30.
[0013] Electrical connections are made between the motherboard 12 and the daughtercard 14
by signal terminals 44 and 46 and by ground terminals 48 received in the cavities
28. The terminals 44, 46 and 48 are formed from conductive sheet metal, for example
by blanking, stamping and forming, and in the illustrated arrangement are loaded into
the cavities 28 through the bottom surface 20.
[0014] Each ground terminal 48 includes a base portion 50 that generally coincides with
bottom surface 20 when the terminal is in place. A board contact or tail portion 52
extends down from the base portion 50 for connection to a conductive region of the
board 12. A large area panel portion 54 extends up from the base portion 50, and a
flexible resilient spring arm portion 56 extends from the panel portion 54. The spring
arm portion 56 terminates in a card contact portion 58 that is located within the
slot 38 in the path of an inserted mating edge 36 of card 14. A mounting portion or
arm 60 secures the ground terminal 48 in place by frictionally receiving the side
wall 22 or 24 between the arm 60 and the panel portion 54. Arm 60 is received between
a pair of the lugs 34.
[0015] Each "inner" signal terminal 44 includes a base portion 62 that generally coincides
with bottom surface 20 when the terminal is in place. A board contact or tail portion
64 extends down from the base portion 62 for connection to a conductive region of
the board 12. A flexible resilient spring arm portion 66 extends from the base portion
62. The spring arm portion 66 terminates in a card contact portion 68 that is located
within the slot 38 in the path of the inserted mating edge 38 of card 14. A mounting
portion or finger 70 is frictionally received in an aperture in the rail 32 in order
to secure the signal terminal 44 in place.
[0016] Each "outer" signal terminal 46 includes a base portion 72 that generally coincides
with bottom surface 20 when the terminal is in place. A board contact or tail portion
74 extends down from the base portion 50 for connection to a conductive region of
the board 12. A leg portion 76 extends up from the base portion 72, and a flexible
resilient spring arm portion 78 extends from the leg portion 76. The spring arm portion
78 terminates in a card contact portion 80 that is located within the slot 38 in the
path of an inserted mating edge 36 of card 14. A mounting portion or arm 82 secures
the signal terminal 46 in place by frictionally receiving the side wall 22 or 24 between
the arm 82 and the leg portion 76. Arm 82 is received between a pair of the lugs 34.
[0017] High contact density is achieved with the connector 10 by mounting more than a single
signal contact in the cavity portions 28A or 28B. As seen in FIGS. 3 and 4, a signal
contact 44 and a signal contact 46 are mounted side by side in a single cavity portion.
The terminals 44 and 46 are electrically independent from one another because they
are spaced apart and not in contact with one another. As a result, two independent
electrical signals may be conducted through a single cavity portion 28A or 28B.
[0018] Impedance control, signal isolation and crosstalk reduction are achieved by interspersing
the ground terminals 48 among the signal terminals 44 and 46. Every other cavity portion
28A and every other cavity portion 28B is provided with a ground terminal 48. The
remaining alternate cavity portions 28A and 28B are each provided with a pair of signal
terminals 44 and 46. On both sides of the slot 38 there is a pattern of alternating
ground and signal terminals. A part of this continuing pattern is seen in FIG. 2.
Preferably the patterns are offset on opposed sides of the slot 38 so that in each
cavity 28 a pair of signal terminals 44 and 46 are directly opposite a single ground
terminal 48.
[0019] Within the pattern of terminals of the connector 10, each signal terminal pair 44,
46 is sandwiched between a flanking pair of ground terminals 48 and is also aligned
with an opposed ground terminal 48 on the opposite side of the slot 38. This geometry
provides some of the advantages of a coaxial transmission path where a signal conductor
is surrounded by a ground conductor, but with significantly greater density and significantly
lower material and assembly costs.
[0020] One factor in limiting the cost of the connector 10 is the modularity of the design.
Each identical cavity portion 28A or 28B of each identical cavity 28 can accommodate
either a single ground terminal 48 or a pair of signal terminals 44 and 46 without
any modification of the housing structure. All of the signal terminals 44 are disposed
near the longitudinal center of the housing 16 and can be mounted on either side of
the slot 38 in either a cavity portion 28A or a cavity portion 28B by insertion of
the finger portion 70 into the central mounting rail 32. Either a signal terminal
46 or a ground terminal 48 can be mounted in any cavity portion 28A or 28B by engagement
of the arm portion 60 or the arm portion 82 with a side wall 22 or 24.
[0021] The ground terminals 48 and signal terminals 44 and 46 are configured to reduce crosstalk
by creating preferential couplets between the signal terminals 44 and 46 and the ground
terminals 48 rather than directly between signal terminals 44 and 46. As seen in FIGS.
3 and 4, the large area, continuous panel portions 54 of the ground terminals 48 have
peripheries or silhouettes that surround or overlie the spring arm portions 66 of
signal terminals 44 as well as the leg portions 76 and the spring arm portions 78
of the signal terminals 46. Base portions 50 also overlie base portions 62 and 72.
[0022] Substantially the entire signal current paths through the signal terminals 44 and
46 are aligned between large area portions of the immediately adjacent ground terminals
48. The relatively large area and mass of the ground terminals 48 achieves a ground
plane effect and reduced ground inductance. In addition, the ground terminals 48 are
separated from the pairs of signal terminals 44 and 46 by barrier walls 30. These
walls are part of the housing 16 and are a molded, dielectric plastic material. In
contrast the terminals 44 and 46 of each pair of signal terminals are separated by
air. The dielectric housing material increases the coupling of each signal terminal
44 and 46 to the adjacent ground terminal, while the air separation between signal
terminals minimizes the cross coupling between signal terminals 44 and 46.
[0023] Card contact portions 68 of the signal terminals 44 are arranged in two lines at
opposite sides of the slot 38 and parallel to the bottom wall 20. These lines are
equidistant from the bottom wall 20 and are relatively close to the bottom 39 of the
slot 38. Card contact portions 80 of the signal terminals 46 are also arranged in
two lines at opposite sides of the slot 38 and parallel to the bottom wall 20. These
lines are equidistant from the bottom wall 20 and are located above the lines of card
contact portions 68. Card contact portions 58 of the ground terminals 46 are also
arranged in two lines at opposite sides of the slot 38 and parallel to the bottom
wall 20. These lines are equidistant from the bottom wall 20 and are located above
the lines of card contact portions 68 and 80.
[0024] The ground terminals 48 provide an interference shielding effect because the ground
card contact portions 58 are more elevated than the signal card contact portions 68
and 80. The ground paths are arrayed like a canopy or umbrella around the signal current
paths and act to shield the signal current paths from electromagnetic interference.
[0025] The card contact portions of the terminals 44, 46 and 48 are arrayed in a high density
configuration. The card contact portions 68 and 80 of each pair of signal terminals
44 and 46 are vertically spaced apart and are aligned in the same vertical plane.
The card contact portion 58 of the transversely opposed ground terminal 48 lies in
the same vertical plane. The card contact portions 48 of the two flanking ground terminals
48 are longitudinally spaced from this vertical plane by a distance equal to the pitch
of the terminals within the housing 10, i.e. the distance between centerlines of cavities
28.
[0026] As seen in FIG. 5, the card 14 includes a contact pad array 84 configured to mate
with the card contact portions 58, 68 and 80. A first line of signal contact pads
86 lies along the mating edge 36. Pads 86 are contacted by the card contact portions
68 of signal terminals 44 when the card 14 is inserted into slot 38. A second line
of signal contact pads 88 lies above pads 86. Pads 88 are contacted by the card contact
portions 80 of signal terminals 44 when the card 14 is inserted into slot 38. A third
line of ground contact pads 90 lies above pads 86 and 88. Pads 90 are contacted by
the card contact portions 58 of ground terminals 48 when the card 14 is inserted into
slot 38. One of the two surfaces of the card 14 is seen in FIG. 5. The opposite side
is similar except that the pads are displaced longitudinally by a distance equal to
the connector pitch with signal pads 86 and 88 on one surface of the card aligned
with a ground pad 90 on the opposite surface.
[0027] The board contact or tail portions 52, 64 and 74 of the terminals 48, 44 and 46 are
arrayed to maximize circuit density not only within the connector 10 but also at the
interface with the motherboard 10. The board contact portions 74 of signal terminals
46 are in two parallel longitudinal lines at the opposite sides of the housing 16.
The board contact portions 64 of signal terminals 48 are in two parallel longitudinal
lines located near the center of the housing 16. The board contact portions 52 of
the ground terminals 48 are in two parallel lines between the board contact portions
74 and 64. The lines of the board contact portions are equally spaced apart across
the width of the connector 10, and preferably the spacing is equal to the connector
pitch.
[0028] A matching array 92 of conductive regions on the board 12 is seen in FIG. 6. Central
lines of conductive regions 94 are engaged by board contact portions 64 of signal
terminals 44. Outer lines of conductive regions 96 are engaged by board contact portions
74 of signal terminals 46. Intermediate lines of conductive regions 98 are engaged
by board contact portions 52 of ground terminals 48. The uniform transverse spacing
equal to the connector pitch produces the uniformly staggered array 92 seen in FIG.
6 and permits high signal density.
[0029] In the illustrated arrangement, the conductive regions 94, 96 and 98 are plated-through
holes in the board 12, and the board contact portions 52, 64 and 74 are solder tail
or pin contacts suitable for insertion into the holes where they are soldered in place
by a known flow soldering process. Alternatively, other contacts such as surface mount
foot contacts could be used and the conductive regions 94, 96 and 98 could be plated
areas on the board surface to which the contacts are soldered by known surface mount
soldering techniques.
[0030] FIGS. 7-11 illustrate an alternative embodiment of the invention in the form of an
electrical connector 110. Similar reference characters used with connectors 10 and
110 identify similar structural features.
[0031] In connector 10, alternate cavity portions 28A and 28B contain ground terminals 48
or signal contacts 44 and 46. Thus, as seen in FIG. 2, the ground and signal current
paths alternate and each signal terminal pair 44, 46 is sandwiched between a pair
of ground terminals 48. In the connector 110 (FIG. 9), two adjacent cavity portions
28A or 28B receive signal terminal pairs 44, 46, and the pair of signal terminal cavities
is sandwiched between cavities 28A or 28B containing ground terminals. The coupling
of signal terminals to ground is not as effective as with the arrangement of connector
10, but the signal capacity or circuit density is increased. Every pair of signal
terminals 44 and 46 is immediately adjacent to a ground terminal 48 and effective
coupling to ground is achieved for every signal path.
[0032] The pattern of board contact portions 52, 64 and 74 of connector 110 differs from
that of the connector 10. Thus, as seen in FIG. 11, the pattern of conductive regions
or plated through holes 94, 96 and 98 in the motherboard 10 is altered. In addition,
due to the differences in the way the terminals are arrayed, the arrangement of signal
contact pads 86 and 88 and of ground contact pads 90 on the daughtercard 12 is also
altered.
[0033] As best seen in FIGS. 7 and 8, the ground terminals 48 of the connector 110 have
mounting portions or arms 60' that are longer than the portions or arms 82 of the
signal terminals 46. Arms 60' extend toward the top wall 18 beyond the arms 82 and
beyond the spacers 34. Connector 110 includes a conductive metal shield 112 having
a top wall 114 and side walls 116 terminating in an enlarged skirt 118. The skirt
118 engages the ends of the arms 60' so that the shield is electrically connected
to ground through numerous electrically parallel paths providing extremely low resistance
and inductive impedance.
[0034] An alternative configuration for retaining the terminals in the housing is shown
in FIGS. 7 and 8. The housing is slightly modified and is particularly useful for
applications in which the terminals are loaded into the cavity portions 28A, 28B by
hand rather than with automation equipment. Rail 32 of the connector 110 has downwardly
extending portions 32A located at each cavity portion 28A or 28B where a ground terminal
48 is mounted. These portion block access of the mounting portions 70 of terminals
44 to the aperture in the mounting rail 32. The resulting keying effect prevents inadvertent
mounting of signal terminals in a cavity portion intended for a ground terminal 48.
[0035] While the present invention has been described with reference to the details of the
embodiments of the invention shown in the drawing, these details are not intended
to limit the scope of the invention as claimed in the appended claims.
1. A card edge connector (10) for a removable printed circuit card (14) having a mating
edge (36) with a plurality of conductive pads (86,88,90), said connector comprising:
an insulating housing (16) including elongated top (18) and bottom walls (39) and
elongated spaced apart side walls (22,24);
a plurality of transverse cavities (28) extending between said side walls (22,24);
an elongated slot (38) in said top wall (18) for receiving the mating edge (36) of
the circuit card (14), said slot (38) intersecting said cavities (28) and dividing
said cavities into rows of similar, aligned cavity portions (28A,28B) at opposite
sides of said slot (38); and
a plurality of differently configured terminals (44,46,48) of at least a first basic
shape and a second basic shape being received in said cavity portions, each of said
terminals including a mounting portion (60,70,82) and a contact portion (58,68,80)
for engaging one of the contact pads (86, 88,90) upon insertion of the mating edge
(36) into said slot (38);
said terminals are to be connected as signal terminals (44,46) and as ground terminals
(48),
characterized in that
each cavity portion (28A, 28B) contains only one kind of terminal, at least two signal
terminals (44,46) or one ground terminal (48),
the ground terminals (48) are assigned to the first shape terminals and the signal
terminals to the second shape terminals, wherein the basic shape of the signal terminals
may include substantially similar forms, and in that
each first shape terminal is disposed in a cavity portion which is arranged between
two cavity portions containing second shape terminals.
2. The card edge connector as claimed in claim 1 wherein said first and second shape
terminals alternate along the length of said housing (16).
3. The card edge connector as claimed in claim 1 wherein two adjacent cavity portions
which receive second shape terminals (44,46) are disposed between two distant cavity
portions each of which receives a first shape terminal (48).
4. The card edge connector as claimed in claim 1, 2 or 3 wherein the signal terminals
which are mounted in a single cavity portion, constitute first and second signal terminals
(44, 46), which have their contact portions (68, 80) arranged in, and on one side
of said slot (38).
5. The card edge connector as claimed in claim 4 wherein said first and second signal
terminals (44, 46) each include a base portion (62,72) adjacent said bottom wall (39)
and a spring portion (66,78) extending from said base portion to said contact portion
(68, 80), said contact portions (68,80) of said first and second signal terminals
being spaced apart.
6. The card edge connector as claimed in claim 4 or 5, wherein each ground terminal (48)
includes a base portion (50) adjacent said bottom wall (39) and a panel portion (54)
having a periphery overlying each spring portion (66, 78) of adjacent first and second
signal terminals (44, 46).
7. The card edge connector as claimed in any of claims 4-6, wherein said contact portions
(68,80) of said first and second signal terminals (44, 46) are vertically aligned.
8. The card edge connector as claimed in any of claims 4-7, wherein said contact portions
(58) of said ground terminals (48) are spaced farther from said bottom wall than said
contact portions (68, 80) of said first and second signal terminals (44, 46).
9. The card edge connector as claimed in any of claims 1-8 wherein each of said first
shape terminals (48) on one side of said slot (38) is directly opposed to one of said
second shape terminals (46) on the opposite side of said slot.
10. The card edge connector as claimed in any of claims 4-9 wherein each of said cavity
portions containing first and second signal terminals (44,46) has vertically aligned
and spaced apart contact portions (68,80) and each of said first cavity portion (58)
offset from the contact portions of adjacent first and second signal terminals.
11. The card edge connector as claimed in any of claims 4-10 wherein the contact portions
(68) of said first signal terminals (44) are in a first row parallel to said bottom
wall (39), the contact portions (80) of said second signal terminals (46) are in a
second row parallel to said first row and farther from said bottom wall (39) than
said first row, and the contact portions (58) of said ground terminals (48) are in
a third row parallel to said second row and farther from said bottom wall (39) than
said second row.
1. Leiterplattenrandverbinder(10) für eine entfernbare Leiterplatte (14), die einen Anschlussrand
(36) mit einer Mehrzahl von leitfähigen Flecken (86, 88, 90) aufweist, mit folgenden
Merkmalen des Verbinders:
ein isolierendes Gehäuse (16) umfasst ein längliches Oberteil (18) und Bodenwandungen
(39) sowie längliche, im Abstand voneinander angeordnete Seitenwandungen (22, 24);
eine Mehrzahl von Querhohlräumen (28) erstrecken sich zwischen den Seitenwandungen
(22, 24);
ein länglicher Schlitz (38) in der oberen Wand (18) zur Aufnahme des Anschlussrandes
(36) der Schaltungsplatte (14), wobei der Schlitz (38) die Hohlräume (28) schneidet
und die Hohlräume in Reihen von ähnlichen, zueinander ausgerichteten Hohlraumabschnitten
(28A, 28B) an entgegengesetzten Seiten des Schlitzes (38) unterteilt;
eine Mehrzahl von unterschiedlich gestalteten Anschlüssen (44, 46, 48) von mindestens
einer ersten Basisgestalt und einer zweiten Basisgestalt, die in den Hohlraumabschnitten
aufgenommen werden, wobei die jeweiligen Anschlüsse einen Montageabschnitt (60, 70,
82) und einen Kontaktabschnitt (58, 68, 80) umfassen, um sich beim Einführen des Anschlussrandes
(36) in den Schlitz (38) an einen der Kontaktflecke (86, 88, 90) anzulegen;
die Anschlüsse sind als Signalanschlüsse (44, 46) und als Erdungsanschlüsse (48) anzuschließen;
dadurch gekennzeichnet,
dass jeder Hohlraumabschnitt (28A, 28B) nur eine Art von Anschluss enthält, und zwar mindestens
zwei Signalanschlüsse (44, 46) oder einen Erdungsanschluss (48);
dass die Erdungsanschlüsse (48) den Anschlüssen mit erster Gestalt zugeordnet sind und
die Signalanschlüsse den Anschlüssen mit zweiter Gestalt, wobei die Basisgestalt der
Signalanschlüsse im wesentlichen ähnliche Formen umfassen kann, und
dass jeder Anschluss erster Gestalt in einem Hohlraumabschnitt gelegen ist, der zwischen
zwei Hohlraumabschnitten angeordnet ist, die Anschlüsse zweiter Gestalt enthalten.
2. Leiterplattenrandverbinder nach Anspruch 1,
dadurch gekennzeichnet, dass die Anschlüsse mit erster und zweiter Gestalt sich entlang der Länge des Gehäuses
(16) abwechseln.
3. Leiterplattenrandverbinder nach Anspruch 1,
dadurch gekennzeichnet, dass zwei benachbarte Hohlraumabschnitte, welche Anschlüsse (44, 46) zweiter Gestalt aufnehmen,
zwischen zwei entfernten Hohlraumabschnitten gelegen sind, die jeweils einen Anschluss
erster Gestalt (48) aufnehmen.
4. Leiterplattenrandverbinder nach Anspruch 1, 2 oder 3,
dadurch gekennzeichnet, dass die Signalanschlüsse, die in einem einzelnen Hohlraumteil montiert sind, erste und
zweite Signalanschlüsse (44, 46) bilden, deren Kontaktabschnitte (68, 80) in dem Schlitz
(38), und zwar an dessen einer Seite, angeordnet sind.
5. Leiterplattenrandverbinder nach Anspruch 4,
dadurch gekennzeichnet, dass die ersten und zweiten Signalanschlüsse (44, 46) jeweils einen Basisabschnitt (62,
72) benachbart der Bodenwandung (39) und einen Federabschnitt (66, 78) umfassen, der
sich von dem Basisabschnitt zu dem Kontaktabschnitt (68, 80) erstreckt, wobei die
Kontaktabschnitte (68, 80) der ersten und der zweiten Signalanschlüsse mit Abstand
voneinander angeordnet sind.
6. Leiterplattenrandverbinder nach Anspruch 4 oder 5,
dadurch gekennzeichnet, dass jeder Erdungsanschluss (48) einen Basisabschnitt (50) benachbart der Bodenwandung
(39) und einen Plattenabschnitt (54) umfasst, dessen Umfang die jeweiligen Federabschnitte
(66, 68) von benachbarten ersten und zweiten Signalanschlüssen (44, 46) überdeckt.
7. Leiterplattenrandverbinder nach einem der Ansprüche 4 bis 6,
dadurch gekennzeichnet, dass die Kontaktabschnitte (68, 80) der ersten und zweiten Signalanschlüsse (44, 46) vertikal
übereinander ausgerichtet sind.
8. Leiterplattenrandverbinder nach einem der Ansprüche 4 bis 7,
dadurch gekennzeichnet, dass die Kontaktabschnitte (58) der Erdungsanschlüsse (48) weiter von der Bodenwandung
als die Kontaktabschnitte (68, 80) der ersten und zweiten Signalanschlüsse (44, 46)
angeordnet sind.
9. Leiterplattenrandverbinder nach einem der Ansprüche 4 bis 8,
dadurch gekennzeichnet, dass jeder Anschluss erster Gestalt (48) auf einer Seite des Schlitzes (38) jeweils einem
Anschluss zweiter Gestalt (46) auf der entgegengesetzten Seite des Schlitzes direkt
gegenüberliegt.
10. Leiterplattenrandverbinder nach einem der Ansprüche 4 bis 9,
dadurch gekennzeichnet, dass die Hohlraumabschnitte, welche erste und zweite Signalanschlüsse (44, 46) enthalten,
jeweils vertikal zueinander ausgerichtete und voneinander beabstandete Kontaktabschnitte
(68, 80) aufweisen und dass die jeweiligen ersten Hohlraumabschnitte (58) von den
Kontaktabschnitten der benachbarten ersten und zweiten Signalanschlüsse versetzt sind.
11. Leiterplattenrandverbinder nach einem der Ansprüche 4 bis 10,
dadurch gekennzeichnet, dass die Kontaktabschnitte (68) der ersten Signalanschlüsse (44) in einer ersten Reihe
parallel zu der Bodenwandung (39), die Kontaktabschnitte (80) der zweiten Signalanschlüsse
(46) in einer zweiten Reihe parallel zur ersten Reihe und weiter von der Bodenwandung
(39) entfernt als die erste Reihe, und die Kontaktabschnitte (58) der Erdungsanschlüsse
(48) in einer dritten Reihe parallel zur zweiten Reihe und weiter von der Bodenwandung
(39 )als die zweite Reihe angeordnet sind.
1. Connecteur (10) pour bord de carte destiné à une carte à circuit imprimé amovible
(14) ayant un bord d'accouplement (36) avec plusieurs plots conducteurs (86, 88, 90),
ledit connecteur comportant:
un boîtier isolant (16) comprenant des parois allongées supérieure (18) et inférieure
(39) et des parois latérales allongées et espacées (22, 24);
plusieurs cavités transversales (28) s'étendant entre lesdites parois latérales (22,
24);
une fente allongée (38) dans ladite paroi supérieure (18) pour recevoir le bord d'accouplement
(36) de la carte à circuit (14), ladite fente (38) intersectant lesdites cavités (28)
et divisant lesdites cavités en rangées de parties de cavité similaire, alignées (28A,
28B) sur des côtés opposés de ladite fente (38); et
plusieurs bornes différemment configurées (44, 46, 48) d'au moins une première forme
de base et une seconde forme de base, reçues dans lesdites parties des cavités, chacune
desdites bornes comprenant une partie de montage (60, 70, 82) et une partie de contact
(58, 68, 80) destinée à engager l'un des plots de contact (86, 88, 90) lors d'une
introduction du bord d'accouplement (36) dans ladite fente (38);
lesdites bornes sont destinées à être connectées en tant que bornes (44, 46) de signaux
et bornes (48) de masse,
caractérisé en ce que
chaque partie de cavité (28A, 28B) ne contient qu'un type de borne, au moins deux
bornes de signaux (44, 46) ou une borne de masse (48),
les bornes de masse (48) sont affectées aux bornes de la première forme et les bornes
de signaux aux bornes de la seconde forme, dans lequel la forme de base des bornes
de signaux peut comprendre des configurations sensiblement similaires, et en ce que
chaque borne de la première forme est disposée dans une partie de cavité qui est agencée
entre deux parties de cavité contenant des bornes de la seconde forme.
2. Connecteur pour bord de carte selon la revendication 1, dans lequel lesdites bornes
des première et seconde formes alternent sur la longueur dudit boîtier (16).
3. Connecteur pour bord de carte selon la revendication 1, dans lequel deux parties de
cavité adjacentes qui reçoivent des bornes (44, 46) de la seconde forme sont disposées
entre deux parties de cavité distantes qui reçoivent chacune une borne (48) de la
première forme.
4. Connecteur pour bord de carte selon la revendication 1, 2 ou 3, dans lequel les bornes
de signaux qui sont montées dans une partie de cavité unique constituent des première
et seconde bornes de signaux (44, 46), dont les parties de contact (68, 80) sont agencées
dans ladite fente (38) et sur un côté de celle-ci.
5. Connecteur pour bord de carte selon la revendication 4, dans lequel lesdites première
et seconde bornes de signaux (44, 46) comprennent chacune une partie de base (62,
72) adjacente à ladite paroi inférieure (39) et une partie à ressort (66, 78) s'étendant
de ladite partie de base jusqu'à ladite partie de contact (68, 80), lesdites parties
de contact (68, 80) desdites première et seconde bornes de signaux étant espacées.
6. Connecteur pour bord de carte selon la revendication 4 ou 5, dans lequel chaque borne
de masse (48) comprend une partie de base (50) adjacente à ladite paroi inférieure
(39) et une partie de panneau (54) ayant une périphérie s'étendant au-dessus de chaque
partie à ressort (66, 68) de première et seconde bornes adjacentes (44, 46) de signaux.
7. Connecteur pour bord de carte selon l'une quelconque des revendications 4 à 6, dans
lequel lesdites parties de contact (68, 80) desdites première et seconde bornes (44,
46) de signaux sont alignées verticalement.
8. Connecteur pour bord de carte selon l'une quelconque des revendications 4 à 7, dans
lequel lesdites parties de contact (58) desdites bornes de masse (48) sont espacées
davantage de ladite paroi inférieure que lesdites parties de contact (68, 80) desdites
première et seconde bornes (44, 46) de signaux.
9. Connecteur pour bord de carte selon l'une quelconque des revendications 1 à 8, dans
lequel chacune desdites bornes (48) de la première forme sur un côté de ladite fente
(38) est directement opposée à l'une desdites bornes (46) de la seconde forme sur
le côté opposé de ladite fente.
10. Connecteur pour bord de carte selon l'une quelconque des revendications 4 à 9, dans
lequel chacune desdites parties de cavité contenant des première et seconde bornes
(44, 46) de signaux comporte des parties de contact espacées et alignées verticalement
(68, 80) et chaque première partie de cavité (58) décalée des parties de contact des
première et seconde bornes adjacentes de signaux.
11. Connecteur pour bord de carte selon l'une quelconque des revendications 4 à 10, dans
lequel les parties de contact (68) desdites premières bornes (44) de signaux sont
situées dans une première rangée parallèle à ladite paroi inférieure (39), les parties
de contact (80) desdites secondes bornes (46) de signaux sont situées dans une seconde
rangée parallèle à ladite première rangée et davantage espacée de ladite paroi inférieure
(39) que ladite première rangée, et les parties de contact (58) desdites bornes de
masse (48) sont situées dans une troisième rangée parallèle à ladite deuxième rangée
et davantage espacée de ladite paroi inférieure (39) que ladite deuxième rangée.

