[0001] This invention relates to a terminal and method for electrical connection to the
center conductor of an insulated wire.
[0002] Solderless electrical terminals characterized by a conductive ferrule including inwardly
extending tines for piercing both outer insulation and center conductor of an insulated
wire are known. However, insulated conductors used in electrical and electronic technologies
of today utilize insulated jacketing of organic polymers such as polyvinyl chloride
(PVC), polytetrafluoroethylene (TFE), extruded TFE, extruded fluorinated ethylene
propolene (FEP) and flurocarbon/polyimide. The above noted organic polymer insulations
have been recently developed for state-of-the-art electrical and electronic usage
and are quite rugged. In some terminations complete penetration of the piercing tines
through the insulation to make contact with the center conductor is doubtful. Further,
some elastomeric insulations are quite resistant to inward compression and could force
the ferrule including the piercing tine radially outward and from contact with the
conductor after having been driven therewithin. Low voltage/ current applications
cannot function acceptably with a loose fit or with some outward release of the piercing
tine. Further, to resist axial pull-out of the wire from the ferrule, some tines cut
transversely of the wire axis. Unfortunately such a termination reduces tensile capability
of the conductor within the insulation. Finally, electrical redundancy of an interconnection
would be desirable.
[0003] Accordingly, a more desirable solderless electrical terminal would reliably penetrate
the insulation of a conductor wire without compromising tensile capability of the
conductor, resist axial pullout of the wire from the terminal and provide electrical
redundancy.
[0004] A solderless terminal in accord with the present invention comprises a tubular sleeve
of conductive material having an inner diameter slightly greater than the external
diameter of an insulated wire having a stranded center conductor, the sleeve including
a plurality of longitudinally extending fins for slicing the insulation into segments
and penetrating the conductor, each fin extending radially inward from the interior
wall of the sleeve and terminating in a sharp penetrating point adapted to slice through
the insulation of the wire inserted within the sleeve so as to expose the conductor
to the fin and to facilitate good penetration of the penetrating point upon radial
inward collapse of the sleeve due to an external force thereon when the sleeve is
crimped radially inward about the wire. The terminal further includes a conical spike
disposed coaxially with the primary axis of the sleeve and terminating in an impaling
tip, the impaling tip being adapted to penetrate into the center conductor to expand
both the center conductor and the insulated wire segments radially outward, the radial
inward crimp of the sleeve compressing the expanded insulation segments radially between
the interior wall of the sleeve and the spike.
[0005] One advantage of a terminal according to this invention is provision of fins which
longitudinally slice the insulation of a wire to be electrically and mechanically
connected whereby inward radial penetration of the fin into the conductor is assured.
Another advantage is provision of fins which terminate in a sharp penetrating point
to expose the center conductor of the wire when the wire is inserted into the terminal.
Yet another advantage is provision of a conical spike for impaling into the conductor
to expand the wire radially outward whereby to wedge the insulation against the interior
wall of the terminal to assist in mechanically holding and resisting axial pull-out
forces placed on the wire. A further advantage is provision of a redundant electrical
interconnection with the center conductor of a insulated wire as a result of the slicing
fins and the conical spike penetrating the conductor. A terminating sleeve in accord
with this invention could be manufactured as a separate part or stamped and rolled
as an insert into a standard conductive sleeve having a spade or connective termination
portion.
[0006] One way of carrying out the invention is described in detail below with reference
to the drawings which illustrate specific embodiments of this invention, in which:
FIGURE 1 is a terminal having an end portion, shown partially in section, positioned
for application to an insulated wire having a center conductor, shown partially in
section.
FIGURE 2 is an end view of the terminal of FIGURE 1.
FIGURE 3 is a side view, partially in section, of the terminal receiving the end portion
of the insulated wire.
FIGURE 4 is an end view, taken along lines IV-IV of FIGURE 3.
FIGURE 5 is a side view, partially in section, of the terminal crimped to the insulated
wire.
FIGURE 6 shows a flat sheet stamped from metal to form a terminal.
FIGURE 7 is an end view of the metal sheet with slicing fins extending perpendicularly
therefrom.
FIGURE 8 is an end view of the metal sheet with spike forming portions extending therefrom.
FIGURE 9 is a side view of the metal sheet of FIGURE 8.
FIGURE 10 shows the metal sheet of FIGURE 9 rolled into a tubular sleeve to form the
terminal.
FIGURE 11 is a perspective view of the terminal of FIGURE 10 and shown partially in
section.
[0007] Referring now to the drawings, FIGURE 1 shows a terminal 20 for electrical and mechanical
connection to a wire 10 of the type having a center conductor 16 surrounded by a sheath
of insulation 12. The terminal 20 is comprised of an electrically conductive material
and comprises a solid medial portion 21, a U-shaped portion 22 at one end for interconnecting
the wire to a terminal lug (not shown) and a cylindrical portion forming a sleeve
23 at the other end, the sleeve 23 having a cylindrical interior wall 24a defining
an axial passage 24 sized to receive the wire 10. The U-shaped portion 22 may be formed
as a ring or any other desired configuration.
[0008] Preferably, center conductor 16 would be comprised of a plurality of conductive strands
helically disposed, the separate strands being capable of untwisting (i.e., unwinding)
so as to expand radially outward more easily so than would a solid conductor. One
end of wire 10 is preferably cut so that both the center conductor 16 and insulation
12 have, respectively, flat end faces 18, 14.
[0009] The terminal 20 is fabricated such that the axial passage 24 is closed at one end
by an end wall 31 formed by medial portion 21 and open at the other end as defined
by end face 25. Axial passage 24 has an interior diameter approximating and being
somewhat greater than the external diameter of conductor wire 10 so as to slidably
receive the. one end portion of wire 10 when the wire is inserted therewithin. A plurality
of longitudinally extending fins 26 are disposed generally equiangularly around interior
wall 24a for slicing the sheath of insulation 12 longitudinally from end face 14 thereof
rearwardly to expose the conductor therein and a conical spike 32 is disposed on end
wall 31 for penetrating the center conductor 16. Each of the slicing fins 26 extend
radially inward from interior wall 24a and terminate in a sharp pentrating point 26p
for penetrating the center conductor 16 upon radial inward collapse of the sleeve
23 due to an external force placed thereupon. Conical spike 32 has its axis coaxially
aligned with the principal axis of sleeve 23 and terminates in a tip 32A longitudinally
forward from end wall 31 for centrally impaling conductor 16. The slicing fins 26
sidewise define an acute right-angled triangle relative to interior wall 24a and each
fin includes a transverse rear face 30 and an acutely-angled slicing edge 28 which
intersect to form the penetrating point 26p. The fins are axially spaced from impaling
tip 32A of conical spike 32 and each fin has its rear face 30 facing end wall 31.
To provide support and strain relief for wire 10, the fins 26 are disposed longitudinally
inward from end face 25.
[0010] FIGURE 2 is an end view of terminal 20 looking into passage 24. Preferably, four
like-shaped slicing fins 26 are disposed substantially at 90° to one another around
interior wall 24a, each fin further being generally V-shaped in transverse cross-section
and including flank surfaces 27, 29 which extend radially inward from interior wall
24 and intersect to define the slicing edge 28. Conical spike 32 extends from end
wall 31 and has its tip 32A coaxially aligned with the principal axis of sleeve 23.
[0011] FIGURE 3 shows the one axial end portion of wire 10 inserted into sleeve 23. Although
shown best in FIGURE 4 the slicing fins 26 completely slice the sheath of insulation
12 and form four arcuate insulation segments 12A, 12B, 12C, 12D having, respectively,
transverse end faces 14A, 14B, 14C, 14C, each insulation segment extending longitudinally
rearward from its respective segment end face. The sharp penetrating point 26p of
each slicing fin 26 slightly scores the conductor 16 longitudinally as result of the
longitudinal insertion of wire 10 within terminating sleeve 23 to seat the slicing
fin for termination therewith. Conical spike 32 is driven into end face 14 and its
tip 32A is axially impaled within the conductor 16, the sliced insulation segments
thereby allowing the stranded conductor and insulation segments to expand radially
outward and the insulation segments to be slightly wedged against interior wall 24a.
[0012] FIGURE 4 is an end view of terminal 20 showing wire 10 inserted within sleeve 23,
the four arcuate insulation segments 12A, 12B, 12C and 12D formed by fins 26 slicing
the insulation end faces 14A, 14B, 14C and 14D and conical spike 32 with its tip 32A
impaled into conductor 16. Center conductor 16 is helically stranded.
[0013] FIGURE 5 shows inward radial collapse of sleeve 23 after having been crimped radially
inward around the end portion of wire 10, the external force driving the sharp penetrating
points 26p of each slicing fin 26 radially inward and into stranded conductor 16 therewithin
and the insulation segments 12A, 12B, 12C, 12D to radially expand and fill an annular
recess formed around conical spike 32 and interior wall 24a adjacent end wall- 31
to form a compressed force fit therebetween which resists axial pull-out forces on
the wire.
[0014] Preferably, a radially inward indent circle would be formed around terminating sleeve
23 at an axial position slightly rearward of abutment faces 30 on slicing fins 26
and forwardly of tip 32A of conical spike 32. Many suitable forms of crimping are
known. It is contemplated that the crimping would be much as described in U.S. Patents
4,272,150 issuing June 9, 1981 to Fairbairn, "Electrical Contact for an Electrical
Connector" or 4,278,317 issuing July 14, 1981 to Gallusser et al, "Formed Socket Contact
with Reenforcing Ridge," the specification of each being incorporated herein by reference.
In particular, four symetrically arranged arcuate dies would be positioned about the
terminal sleeve and aligned with each of the slicing fins and the dies moved simultaneously
radially inward to provide four indents about the sleeve 23.
[0015] As a result of the inward crimping by the dies, the sharp penetrating point 26p of
each slicing fin 26 is driven into conductor 16 and insulated segments 12A, 12B, 12C
and 12D radially expanded by spike 32 into the sleeve recess.
[0016] FIGURES 6-10 relate to a method of forming a terminal 20' by stamping and forming
a terminating sleeve 33' from a substantially flat sheet 33 of metal stock.
[0017] FIGURE 6 shows a generally flat, rectangular, metal sheet 33 comprising a pair of
substantially parallel longitudinal edges 34, 35, a forward lateral edge 36 and a
toothed rearward lateral edge defined by four V-shaped sheet portions 38, each V-shaped
sheet portion 38 being defined by respective lateral edge portions 37, 39 which intersect
to form an included acutely angled tip portion 40. The V-shaped sheet portions 38
are symmetrically disposed and form a continguous succession of teeth between longitudinal
edges 35, 34 with one of the lateral edge portions 37 extending from longitudinal
edge 35 to initiate the first V-shaped sheet portion 38 and one of the other lateral
edge portions 39 extending from longitudinal edge 34 to terminate the last V-shaped
sheet portion 38. Alternatively, lateral edge portions 39, 37 could extend from longitudinal
edges 35, 34, respectively whereupon three complete and two half complete V-shaped
sheet portions 38 would be described between the longitudinal edges.
[0018] Four generally acute, right-angled, triangular shaped fins 42 are stamped from an
intermediate portion of sheet 33 with each fin 42 being substantially alike in shape
and comprising first and second edges 41, 43 sheared from the sheet, each of the first
edges 41 extending along a line parallel to forward lateral edge 36 and perpendicular
to longitudinal edges 35, 34 and the second edges 43 being disposed at an acute angle
to longitudinal edges 35, 34. The fins 42 terminate in a sharp penetrating point 44
as defined by the intersection of the first and second edges 41, 43 with each of the
second edges 43 defining an insulation slicing edge.
[0019] FIGURE 7 is an end view of sheet 33 showing lateral edge portions 37, 39 forming
the tip portions 40 and the succession of V-shaped sheet portions 38 thereacross.
The four fins 42 have been struck downwardly from and are substantially perpendicular
to the plane of sheet 33. Each of the second edges 43 would be coined so that their
edge faces are acutely-angled with respect to a plane forming each respective fin
42 to form an insulation slicing edge.
[0020] FIGURE 8 shows the four V-shaped sheet portions 38 struck downwardly from and substantially
perpendicular to the plane of sheet 33.
[0021] FIGURE 9 shows each V-shaped sheet portion 38 being folded downwardly towards the
plane of sheet 33 and each respective tip portion 40 pointing towards the first edges
41 of fins 42 such that a plane including the V-shaped sheet portions 38 will be at
an acute-angle relative to the plane of sheet 33. The dotted lines show the final
position of the sheet portions 38.
[0022] FIGURE 10 shows sheet 33 rolled into a cylinder to form a sleeve 33' and define a
terminal 20'. When rolled, opposite longitudinal edges 35, 34 adjoin one another to
form a longitudinal seam. The fins 42 are disposed substantially at 90° to one another
and have their sharp penetrating points 44 converging radially inward toward the axis
of the cylinder. The V-shaped sheet portions 38 extend radially inward to the axis
of the sleeve 33' with the V-shaped tip portions 40 converging together so that edge
portions 37, 39 of one tip portion 40 are adjoining with like edge portions 39, 37
of each adjacent tip portion to form in combination, a substantially continuous conical
spike 45.
[0023] FIGURE 11 shows a perspective view of the stamped and formed terminal 20' comprising
the cylindrical sleeve 33' with a portion of the sleeve being cut away to show a portion
of the conical spike 45 formed by sheet portions 38 converging. The dotted lines on
sleeve 33' show inward radial extensions of fins 42 and the insulated conductor wire
10 positioned for axial insertion therein. Each of the V-shaped tip portions 40 have
their ends 40A slightly coined to form, in combination, a sharp impaling point.
[0024] Although not shown by FIGURE 11, the rolled sleeve could be inserted into an axial
passage formed by a ferrule of a spade or ring type terminal lug and the sleeve and
terminal lug then crimped together about an insulated conductor wire. Although only
one surface of each tip portion 40 is coined, both could be coined.
1. A terminal for electrical connection to stranded conductors (16) disposed within
insulation (12) of a wire (10), said terminal comprising a metal sleeve (23) having
a passage (24) adapted to receive the wire and characterized by:
a fin (26) extending radially inward into said passage (24) and terminating in a penetrating
point (26p), said penetrating point (26p) being adapted to longitudinally slice into
said insulation (12) of the wire (10) when the wire is inserted into the passage (24)
and to make electrical connection with the stranded conductors (16).
2. The terminal as recited in Claim 1 wherein said penetrating point (26p) is adapted
to penetrate into the stranded conductors (16) upon radial inward collapse of said
sleeve (23) due to an external force thereupon, whereby when said wire (10) is inserted
into said sleeve (23) the fin (26) slices the insulation (12) and when the external
force is applied to collapse the sleevethe fin (26) is driven radially inward and
the penetrating point (26p) driven radially into the stranded conductors (16).
3. The terminal as recited in Claim 1 wherein said sleeve (23) includes a closed end
(31), further characterized by a conical spike (32) disposed adjacent said closed
end (31), said conical spike (32) being coaxially aligned with the sleeve axis and
terminating in an impaling tip (32a) adapted to axially penetrate into the stranded
conductors (16) of the wire (10) and make electrical connection therewith when the
wire is inserted into the sleeve.
4. The terminal as recited in Claim 3, further characterized by a plurality of fins
(26) having a respective penetrating point (26p).
5. The terminal as recited in Claim 4 wherein each said penetrating point (26p) is
adapted to longitudinally slice completely through its respective portion of the insulation
(12) when the wire (10) is inserted into the passage (24) to expose the stranded conductors
(16) and thereby form a plurality of insulation segments (14A, 14B, 14C, 14D) and
wherein said conical spike (32) is adapted to expand the wire and its insulation segments
radially outward and into abutment against the sleeve (23) when the impaling tip (32A)
axially penetrates the stranded conductors whereupon radial inward collapse of the
sleeve the insulation is pressed between the sleeve and the conical spike to form
a mechanical connection.
6. A terminal for electrical connection to one end portion of a wire (10) of the type
having a plurality of stranded conductors (16) surrounded by an insulative jacket
(12), said terminal comprising a tubular metal sleeve (23; 33') having an internal
wall (24a) defining a longitudinal passage (24) sized to receive the wire, said terminal
being characterized by a plurality of longitudinally extending fins (26; 42) terminating
in a penetrating point (26p; 44), each of said penetrating points (26p; 44) extending
radially inward into the passage (24) a distance sufficient to slice through the insulation
of the wire (10) when the wire is inserted longitudinally into said sleeve (23; 33')
and being adapted to penetrate into the stranded conductors (16) upon the radial inward
collapse of said sleeve (23; 33') due to external force applied to the sleeve (23;
33'), whereby when the end portion of the wire (10) is inserted into the sleeve (23;
33') the fins (26; 44) longitudinally slice through the insulation (12) to form a
plurality of insulation segments (14A, 14B, 14C, 14D) and to expose the stranded conductors
(16) and when the external force is applied to collapse the sleeve (23; 33') radially
inward the penetrating point (26p; 44) of each fin (26; 42) is driven into the stranded
conductors (16) to form an electrical connection.
7. The terminal as recited in Claim 6, further characterized in that said sleeve (23;
33') includes a conical spike (32; 45) terminating in an impaling tip (32A; 40A),
said conical spike (32; 45) being coaxially aligned with both the sleeve axis and
the center of said wire (10), said tip (32a; 40a) being adapted to penetrate centrally
into the conductor strands (16) and expand the insulation segments (14A, 14B, 14C,
14D) radially-outward and into abutment with the internal wall (24a) of the sleeve.
8. A method of making the terminal according to Claim 7, said method characterized
by:
stamping a flat sheet (33) of metal into an elongated generally rectangular shape,
said sheet being defined by a pair of longitudinal edges (34, 35) and by a pair of
lateral edges (36, 38), the longitudinal edges being substantially parallel to one
another,
cutting into the sheet (33) to form a plurality of V-shaped fins (42),
forming a plurality of V-shaped sheet portions along one lateral edge (38), each V-shaped
sheet portion including lateral edge portions (37, 39) which terminate in a tip portion
(40),
bending each of said V-shaped fins (42) upwardly from the plane of the sheet (33)
so as to be substantially perpendicular thereto,
folding each of said V-shaped tip portions (40) upwardly from plane of the sheet (33)
and in the same direction as said fins (42) and then downwardly towards the plane
of the sheet (33) so that the tip portions (40) are pointing towards the fins (42),
and
rolling said sheet (33) into a tubular form comprising said sleeve (33') by progressively
bending the longitudinal edges (34, 35) around to a position where said longitudinal
edges adjoin at a seam, said rolling disposing fins (42) and V-shaped tip portions
(40) internally of said sleeve, said V-shaped tip portions (40) converging together
to form said conical spike (45).
9. A method of making an electrical connection between the terminal according to Claim
7 and the stranded conductors (16) of said insulated wire (10), said method characterized
by:
inserting the end portion of said wire (10) into said passage (24) whereby said fins
(26) slice through the insulation (12) of said wire (10);
forcing the end portion of said wire axially inward into said passage (24) and against
said conical spike (32) whereby the impaling tip (32A) of said spike penetrates into
said stranded conductors (16); and
applying an external force radially inward to said sleeve (23) to drive said fins
(26) inwardly and drive their penetrating points (26p) into contact with the stranded
conductors (16) whereby the penetration by penetrating points (26p) and impaling tip
(32A) with the stranded conductors forms a mechanical and electrical connection between
the wire and the terminal.
10. An electrical connection between the terminal according to Claim 7 and the stranded
conductors of the insulated wire, said connection characterized by:
said penetrating points (26p; 44) extend from said sleeve (23; 33') and penetrate
radially inward into said stranded conductors (16) to make electrical connection therewith;
said impaling tip (32A; 40A) penetrates coaxially inward into said stranded conductors
(16) to make electrical connection therewith; and
said insulated segments (14A, 14B, 14C, 14D) extend radially outward and into abutment
with the sleeve (23; 33') to form a mechanical press fit therewith.