[0001] The disclosed invention is directed generally to a keyboard pushbutton switch, and
more specifically is directed to a keyboard pushbutton switch having a long travel,
and enhanced tactile and audible feedback, and improved contact reliability.
[0002] Pushbutton switches are utilized in keyboards for calculators, device control panels,
and the like. A known pushbutton switch structure includes a dome-shaped metallic
contact which contactively engages contacts on a printed circuit board when deformed
by actuation of an associated keycap. The deformation of the metallic dome provides
both tactile feedback and audible feedback.
[0003] An important consideration with a pushbutton switch having a metallic dome contact
is the relatively small contact area provided by the deformed dome, which makes such
switches susceptible to non-closure due to dust and dirt contamination. In order to
increase reliability, some metallic dome pushbutton switches are individually packaged
for insertion in printed circuit boards. Such switches can be more expensive and bulkier.
[0004] Another consideration with metallic dome pushbutton switches is transmission of the
keypress force to the printed circuit board, which if excessive could cause damage.
[0005] A further consideration with pushbutton switches having metallic dome contacts is
a limitation on the amount of key travel imposed by the metallic dome. Relatively
longer key travel provides for a more comfortable keypress.
[0006] US-A-3 668 356 discloses a switch structure in which a manually depressible keytop
has a stem for engaging an actuator assembly. The latter assembly includes a cantilever
arrangement which deforms to provide tactile feedback. Also, the keytop contacts a
base to provide audible feedback. The actuating assembly is used to operate a diaphragm
switch.
[0007] DE-U-8 105 649 discloses a dome switch according to the first part of claim 1.
SUMMARY OF THE INVENTION
[0008] It would therefore be an advantage to provide a keyboard pushbutton switch structure
having a reliably large contact area.
[0009] Another advantage would be to provide a keyboard pushbutton switch structure which
reduces the amount of keypress force transmitted to the printed circuit board utilized
therewith.
[0010] A further advantage would be to provide a keyboard pushbutton switch structure which
provides for sufficient key travel.
[0011] The foregoing and other advantages are provided by the invention which is defined
by Claim 1.
[0012] The advantages and features of the disclosed invention will readily be appreciated
by persons skilled in the art from the following detailed description when read in
conjunction with the drawing wherein:
[0013] FIG. 1 is a schematic exploded perspective illustration of a pushbutton switch in
accordance with the invention.
[0014] FIG. 2 is an elevational sectional view illustrating the pushbutton switch of FIG.
1 with the keycap plunger in the non-actuated position and exerting a slight preload
on the switch dome.
[0015] FIG. 3 is an elevational sectional view illustrating the pushbutton switch of FIG.
1 with the keycap plunger sufficiently displaced to cause deformation of the switch
dome and contactive closure of the switching elements.
[0016] FIG. 4 is an elevational sectional view illustrating the pushbutton switch of FIG.
1 with the keycap plunger sufficiently displaced to cause audible feedback from the
impact of the keycap top on the retaining bezel.
[0017] In the following detailed description and in the several figures of the drawing,
like elements are identified with like reference numerals.
[0018] Referring now to FIG. 1, shown therein is a pushbutton switch assembly that includes
a keycap 11 having a keycap top 11a and a keycap plunger 11b. The keycap plunger 11a
is slidably engaged and retained in a guiding and retaining bezel 13 which, for example,
is integrally formed with other bezels in a bezel structure 15. By way of example,
the keycap plunger includes barb-like tabs for engaging the bottom portions of the
bezel 13 to limit the upward displacement of the keycap.
[0019] An elastomeric dome switch button 17 is located beneath the keycap 11. By way of
example, the switch button 17 is integrally formed in an elastomeric sheet 19, comprising
rubber, for example, with other switch buttons. The elastomeric sheet 19 rests on
a printed circuit board 21 having a conductive pattern 23 aligned with the switch
button 17. By way of example, the conductive pattern 23 can comprise interleaved conductive
traces to provide redundant contact elements. The printed circuit board 21 is attached
to the bezel structure 15 to prevent relative displacement thereof.
[0020] The elastomeric dome switch button 17 comprises a conical side wall 17a secured to
the elastomeric sheet 19 at its lower boundary. A horizontal top wall 17b is formed
on the upper boundary of the conical side wall 17a, and a circular ridge 17c is formed
on the top wall 17b. A cylindrical bump 17d of shorter height than the circular ridge
17c is formed in the center of the top wall 17b. The thicknesses of the top wall 17b,
the circular ridge 17c, and the central bump 17d are greater than the thickness of
the conical side wall so that the conical side wall resiliently deforms more easily
than the thicker elements.
[0021] A conductive pad 25, comprising, for example, a carbon impregnated elastomer, is
attached to the underside of the top wall 17b generally in alignment with the bump
17c.
[0022] The keycap 11, the bezel 13, and the bezel structure 15 are configured to provide
a slight preload on the switch button 17 when the keycap 11 is not actuated, as shown
in FIG. 2. Further, the keycap 11 and bezel 13 are configured so that the bottom of
the keycap top is against the top of the bezel 13 when the switch button 17 is fully
deformed, which transfers further force to the bezel 13.
[0023] The pushbutton switch operates as follows. The user presses the top of the keycap
top 11a to displace the keycap 11 downwardly. The conical side wall 17a collapses
just before the contact pad 25 engages the conductive pattern 23 on the printed circuit
board, which causes a distinct variation in the resistance felt by the user's finger.
In particular, the sudden collapse of the conical side wall 17a reduces the resistance
on the keycap which, pursuant to the keypress force, then travels quickly to impact
the bezel 13 and produce an audible feedback click. FIG. 3 shows the contact pad 25
against the conductive pattern 23 just after the conical side wall has collapsed,
and FIG. 4 shows the keycap at its downward travel limit against the bezel 13.
[0024] As particularly shown in FIG. 4, when the keycap 11 is fully depressed against the
bezel 13, the side wall 17a is collapsed, and the top wall 17b is slightly deformed
around the contact pad 23, but does not touch the printed circuit board 19. Any keypress
force applied to the keycap beyond that required to collapse the side wall 17a and
deform the top wall as shown in FIG. 4 will be transmitted to the bezel 13 and not
to the printed circuit board 19. In particular, the keycap 11, the bezel 13, and the
switch button 17 are configured so that a limited amount of force is transmitted to
the printed circuit board, for example, an amount determined to be sufficient to assure
appropriate contact between the contact pad 25 and the conductive pattern 23. In this
manner, contact is assured while preventing excessive forces on the printed circuit
board 21.
[0025] The keycap travel and the nature of the tactile feedback are selected to provide
for a comfortable keypress that provides a distinct indication that contact has been
made.
[0026] The keycap travel is determined by the difference between (a) the top to bottom height
of the retaining bezel 13, and (b) the distance on the keycap plunger 11b between
the barb-like tabs and the underside of the keycap top 11a. In conjunction with selection
of keycap travel, the distance between the contact pad 23 and the printed circuit
conductive pattern should be selected so that appropriate contact is assured while
avoiding the application of excessive force when the keycap is fully depressed.
[0027] The nature of the tactile feedback, which is the force-to-displacement characteristic
of the switch button 17, is determined by the thickness of the conical sidewall 17a,
the thickness of the top wall 17b, the outside diameter of the top wall 17b, and the
inside diameter of the lower boundary of the conical sidewall 17a.
[0028] The foregoing has been a disclosure of a pushbutton switch assembly that advantageously
utilizes elastomeric switch buttons and provides tactile feedback as well as mechanically
produced audible feedback. Further, the disclosed pushbutton switch allows for implementation
of an appropriate comfortable keycap travel.
[0029] Although the foregoing has been a description and illustration of specific embodiments
of the invention, various modifications and changes thereto can be made by persons
skilled in the art without departing from the scope of the invention as defined by
the following claims.
1. A switch structure for electrically connecting contacts (23) on a printed circuit
board (21), the switch structure comprising:
a manually depressible keycap (11) having a top (11a) and a plunger (11b);
retaining means (13,15) in which the plunger (11b) is slidably mounted and retained,
and in which the printed circuit board (21) can be received;
an elastomeric dome switch (17) having a conical side wall (17a), a central wall
(17b) formed on a periphery of the side wall (17a) and a circular ridge (17c) formed
on the central wall (17b); the dome switch (17) also having a contact (25) for engaging
with the printed circuit board contacts (23) when the keycap (11) is depressed; the
circular ridge (17c) engaging the plunger (11b) so that, when the plunger (11b) is
depressed, the dome switch (17) yields to resist manual depression of the keycap (11),
and then deforms, with less resistance, to provide tactile feedback, before the dome
switch contact (25) engages with the printed circuit board contacts (23); the central
wall (17b) and the circular ridge (17c) of the dome switch (17) being substantially
thicker than its conical side wall (17a) so that, when the keycap (11) is depressed,
the conical side wall (17a) resiliently deforms more easily than the central wall
(17b) and the circular ridge (17c),
characterised in that a part of the retaining means (13) acts as a stop, which allows
limited displacement of the plunger (11b) after the dome switch contact (25) engages
with the printed circuit board contacts (23); and that the retaining means (13), the
keycap (11) and the dome switch (17) are configured so that:
(a) the keycap top (11a) impacts with the retaining means (13) after said limited
displacement, to provide audible feedback audible feedback;
(b) the central wall (17b) deforms and the conical side (17a) stretches without kinking
during the limited displacement, and
(c) only a limited force is transmitted to the engaged contacts (23,25), as a result
of the limited displacement, which ensures electrical connections, but prevents excessive
force from being transmitted to the printed circuit board (21).
2. A switch structure according to Claim 1 in which the keycap (11) and the retaining
means (13,15) are configured so that the dome switch (17) is pre-loaded when the keycap
(11) is in a non-depressed state.
3. A switch structure according to Claim 1 or 2 in which the central wall has an enlarged
central bump (17d) extending in the same direction of the circular ridge (17c), the
bump (17d) being shorter than the circular ridge (17c) and being positioned above
the contact (25), in the dome switch (17), so that a portion of the central wall (17b)
extends beyond the dome switch contact (25).
4. A switch structure according to any of the preceding Claims in which the part of the
retaining means (13) which acts as a stop, is in the form of an upstanding sleeve
having an upper rim portion which impacts with the keycap top (11a).
5. A switch structure according to Claim 4 wherein the plunger (11b) is slidably mounted
in the sleeve and has barb-like tabs engaging a lower end of the sleeve so as to retain
the plunger (11b), the tabs extending across the circular ridge (17c).
1. Eine Schalterstruktur zur elektrischen Verbindung von Kontakten (23) auf einer gedruckten
Schaltungsplatine (21), wobei die Schalterstruktur folgende Merkmale aufweist:
eine von Hand niederdrückbare Tastenabdeckung (11) mit einer Oberfläche (11a) und
einem Druckkolben (11b);
eine Rückhalteeinrichtung (13, 15), in der der Druckkolben (11b) gleitbar befestigt
und zurückgehalten ist, und in der die gedruckte Schaltungsplatine (21) aufgenommen
werden kann;
einen elastomeren Kuppelschalter (17) mit einer konischen Seitenwand (17a), einer
mittleren Wand (17b), die auf einer Peripherie der Seitenwand (17a) gebildet ist,
und einem kreisförmigen Steg (17c), der auf der mittleren Wand (17b) gebildet ist;
wobei der Kuppelschalter (17) ebenfalls einen Kontakt zur Ineingriffnahme mit den
Kontakten (23) der gedruckten Schaltungsplatine aufweist, wenn die Tastenabdeckung
(11) niedergedrückt ist; wobei der kreisförmige Steg (17c) mit dem Druckkolben (11b)
Eingriff nimmt, so daß, wenn der Druckkolben (11b) niedergedrückt ist, der Kuppelschalter
(17) nachgibt, um einer manuellen Niederdrückung der Tastenabdeckung (11) zu widerstehen,
und sich dann mit geringem Widerstand verformt, um eine fühlbare Rückwirkung zu schaffen,
bevor der Kuppelschalterkontakt (25) mit den Kontakten (23) der gedruckten Schaltungsplatine
Eingriff nimmt; wobei die mittlere Wand (17b) und der kreisförmige Steg (17c) des
Kuppelschalters (17) wesentlich dicker sind als dessen konische Seitenwand (17a),
so daß sich, wenn die Tastenabdeckung (11) niedergedrückt ist, die konische Seitenwand
(17a) leichter als die mittlere Wand (17b) und der ringförmige Steg (17c) elastisch
verformt,
dadurch gekennzeichnet,
daß ein Teil der Rückhalteeinrichtung (13) als ein Anschlag wirkt, der eine begrenzte
Verschiebung des Druckkolbens (11b) ermöglicht, nachdem der Kuppelschalterkontakt
(25) mit den Kontakten (23) der gedruckten Schaltungsplatine Eingriff nimmt; und
daß die Rückhalteeinrichtung (13), die Tastenabdeckung (11) und der Kuppelschalter
(17) konfiguriert sind, so daß:
(a) die Tastenabdeckungsoberfläche (11a) nach der begrenzten Verschiebung auf die
Rückhalteeinrichtung (13) aufprallt, um eine hörbare Rückwirkung zu erzeugen;
(b) sich die mittlere Wand (17b) verformt und sich die konische Seitenwand (17a) streckt,
ohne während der begrenzten Verschiebung zu knicken, und
(c) lediglich eine begrenzte Kraft an die in Eingriff genommenen Kontakte (23, 25)
als ein Ergebnis der begrenzten Verschiebung übertragen wird, was elektrische Verbindungen
sicherstellt, aber verhindert, daß eine übermäßige Kraft an die gedruckte Schaltungsplatine
(21) übertragen wird.
2. Eine Schalterstruktur gemäß Anspruch 1, bei der die Tastenabdeckung (11) und die Rückhalteeinrichtung
(13, 15) derart konfiguriert sind, daß der Kuppelschalter (17) vorgeladen ist, wenn
die Tastenabdeckung (11) in einem nicht-gedrückten Zustand ist.
3. Eine Schalterstruktur gemäß Anspruch 1 oder 2, bei der die mittlere Wand eine vergrößerte
mittlere Erhöhung (17d) aufweist, die sich in die Richtung des ringförmigen Steges
(17c) erstreckt, wobei die Erhöhung (17d) kürzer ist als der ringförmige Steg (17c)
und innerhalb des Kuppelschalters (17) oberhalb des Kontaktes (25) angeordnet ist,
so daß sich ein Abschnitt der mittleren Wand (17b) über den Kuppelschalterkontakt
(25) erstreckt.
4. Eine Schalterstruktur gemäß einem der vorhergehenden Ansprüche, bei der der Teil der
Rückhalteeinrichtung (13), der als Anschlag wirkt, in der Form einer aufrecht stehenden
Buchse mit einem oberen Randabschnitt ist, der auf die Tastenabdeckungsoberfläche
(11a) aufprallt.
5. Eine Schalterstruktur gemäß Anspruch 4, bei der der Druckkolben (11b) gleitend in
der Buchse befestigt ist und widerhakenförmige Streifen aufweist, die mit einem unteren
Ende der Buchse Eingriff nehmen, um den Druckkolben (11b) zurückzuhalten, wobei sich
die Streifen über den ringförmigen Steg (17c) erstrecken.
1. Structure d'interrupteur pour relier électriquement des contacts (23) situés sur une
carte à circuit imprimé (21), la structure d'interrupteur comportant:
une touche (11) pouvant être enfoncée de manière manuelle, ayant une partie supérieure
(11a) et un piston (11b),
des moyens de retenue(13, 15) dans lesquels le piston (11b) est monté de manière
coulissante et retenue, et dans lesquels la carte à circuit imprimé (21) peut être
reçue,
un commutateur (17) formant dôme en élastomère ayant une paroi latérale conique
(17a), une paroi centrale (17b) formée à la périphérie de la paroi latérale (17a)
et un rebord circulaire (17c) formé sur la paroi centrale (17b); le commutateur (17)
formant dôme ayant aussi un contact (25) destiné à venir en contact avec les contacts
(23) de la carte à circuit imprimé lorsque la touche (11) est enfoncée; le rebord
circulaire (17c) venant en contact avec le piston (11b) de telle sorte que lorsque
le piston (11b) est enfoncé, le commutateur (17) formant dôme tente de résister à
l'enfoncement manuel de la touche (11) et ensuite se déforme, en ayant une résistance
plus faible, pour fournir un retour tactile, avant que le contact (25) du commutateur
formant dôme ne vienne en contact avec les contacts (23) de la carte à circuit imprimé;
la paroi centrale (17b) et le rebord circulaire(17c) du commutateur (17) formant dôme
étant nettement plus épais que sa paroi latérale conique (17a) de telle sorte que
lorsque la touche (11) est enfoncée, la paroi latérale conique se déforme de manière
élastique plus facilement que la paroi centrale (17b) et le rebord circulaire (17c),
caractérisée en ce qu'une partie des moyens de retenue (13) agit en tant qu'arrêt,
qui permet un déplacement limité du piston (11b) après venue en contact du contact
(25) du commutateur formant dôme avec les contacts (23) de la carte à circuit imprimé
; et en ce que les moyens de retenue (13), la touche (11) et le commutateur (17) formant
dôme sont configurés de telle sorte que
(a) la partie supérieure (11a) de la touche vient heurter les moyens de retenue (13)
après ledit déplacement limité pour assurer un retour audible;
(b) la paroi centrale (17b) se déforme et la paroi latérale conique (17a) subit une
contrainte sans vrillage pendant le déplacement limité, et
(c) seule une force limitée est transmise aux contacts (23, 25) mis en contact, du
fait du déplacement limité, ce qui assure les connexions électriques mais empêche
qu'une force excessive soit transmise à la carte à circuit imprimé (21).
2. Structure d'interrupteur selon la revendication 1, dans laquelle la touche (11) et
les moyens de retenue(13, 15) sont configurés de telle sorte que le commutateur (17)
formant dôme soit préchargé lorsque la touche (11) est dans un état non-enfoncé.
3. Structure d'interrupteur selon la revendication 1 ou 2, dans laquelle la paroi centrale
comporte une bosse centrale (17d) agrandie s'étendant dans la même direction que le
rebord circulaire (17c), la bosse (17d) étant plus courte que le rebord circulaire
(17c) et étant positionnée au-dessus du contact (25), dans le commutateur (17) formant
dôme, de sorte qu'une partie de la paroi centrale (17b) s'étende au-delà du contact
(25) du commutateur formant dôme.
4. Structure d'interrupteur selon l'une quelconque des revendications précédentes, dans
laquelle la partie des moyens de retenue (13) qui agit en tant qu'arrêt a la forme
d'un manchon agencé vers le haut ayant une partie formant bord supérieur qui est heurtée
par la partie supérieure (11a) de la touche.
5. Structure d'interrupteur selon la revendication 4, dans laquelle le piston (11b) est
monté de manière coulissante dans le manchon et comporte des pattes analogues à des
arêtes venant en contact avec une extrémité inférieure du manchon de manière à retenir
le piston (11b), les pattes s'étendant à travers le rebord circulaire(17c).