Technical Field
[0001] The present invention relates to an improved spark plug assembly, and in particular,
but not exclusively, to a spark plug assembly for an internal combustion engine.
Background Art
[0002] Conventional spark plug assemblies suffer from a number of disadvantages, resulting
in inefficient, ineffective and/or uneven combustion at or in the vicinity of the
associated cylinder of the internal combustion engine, one result of which can be
the build-up of undesirable carbon and/or other impurities on the electrodes of the
spark plug assembly ultimately affecting the overall operation of the spark plug assembly.
Known spark plug assemblies also have a tendency to produce undesirable "pre-ignition".
Furthermore, known spark plug assemblies are also somewhat unreliable in "firing"
unless the conditions prevailing in their immediate vicinity are correct, for example,
the presence of substances such as oil have been found to prevent "firing".
[0003] Conventional spark plugs have also been found to suffer from heat transfer problems,
particularly when associated with high-performance engines where it has been found
that heat transfer through the spark plug assembly often results in undesirable over
heating, and ultimately, damage to the insulator body of the plug.
[0004] As one example of known spark plug assemblies attention is directed to Australian
Patent Specification No. 159,863 which discloses a spark plug fitted with an adaptor
defining a pre-combustion chamber. The spark plug employed therein was of a conventional
design capable of working normally without the adaptor, although without the adaptor
the plug suffered in performance as a result of the loss of the anti-fouling capability
achieved with the adaptor. However, such a combination of spark plug and adaptor has
now been found to result in a long heat transfer path, and with the advent of more
sophisticated high-performance engines, arrangements such as those disclosed in the
Patent Specification No. 159,863 have been found to suffer as a result of the undesirable
over-heating referred to above.
[0005] Other spark plug assemblies are disclosed in French Patent Specification No. 768447.
One of these has the central electrode of the spark plug disposed within a first chamber
formed by a surrounding outer electrode, a second chamber being formed between the
first chamber and the engine cylinder. This arrangement is intended to reduce the
formation of condensation on the electrodes.
[0006] U.S. Patent No. 2823329 discloses a spark plug arrangement in which the centre electrode
is surrounded by an outer, apertured electrode so that during the compression stroke
fresh gases enter the chamber between the electrodes and thereby cool the centre electrode.
[0007] It would be desirable to provide a spark plug arrangement which is capable of maintaining
a cool centre electrode, and which provides an improved performance compared with
the known spark plug assemblies referred to above.
Disclosure of the Invention
[0008] In accordance with the present invention there is provided a spark plug system comprising
a spark plug including an insulator member having an electrode disposed centrally
thereof and projecting outwardly from one end thereof and an electrode member at said
one end of said insulator member surrounding and spaced from said centrally disposed
electrode, wherein said electrode member is so shaped as to define, with the insulator
member, a pre-combustion chamber surrounding the centrally disposed electrode, said
electrode member having an aperture to receive the extreme end of said centrally disposed
electrode of said insulator member, said electrode member further including a plurality
of additional separate apertures adjacent said central aperture, characterised in
that the system includes an axial venturi passage and said additional apertures are
adapted to allow for fluid communication between the pre-combustion chamber and an
inner chamber section leading to the throat section of said associated axial venturi
passage, and in that at least one transfer port is provided opening at one end to
the cylinder chamber of an associated engine and at the other end near the throat
section of said venturi passage at the side of the inner chamber section thereof.
[0009] With the assembly in accordance with the present invention, it is possible to reduce
the overall length of the spark plug assembly. The spark plug assembly in accordance
with the present invention furthermore minimises, if not eliminates altogether, the
problems involved with over-heating.
[0010] Apart from defining the pre-combustion chamber for the spark plug, the effect of
which will be later described, the electrode member also performs the function of
an earth electrode completely surrounding the centrally disposed electrode, assists
in cooler operation of the plug in a manner to be later discussed and functions as
a gas seal.
Brief Description of the Drawings
[0011] Several preferred embodiments of the invention will now be described with reference
to the accompanying drawings, in which:
Figure 1 is a partly sectioned side elevational view of a first embodiment of the
spark plug assembly in association with an adaptor providing an axial venturi passage
and adapted to be received in the conventional spark plug port in the cylinder head
of an internal combustion engine;
Figure 2 is a perspective view of the insulator of the spark plug assembly of Figure
1;
Figure 3 is a cross-sectional side elevational view of the adaptor of Figure 1;
Figure 4 is a perspective view of the electrode member forming part of the spark plug
of Figure 1;
Figure 5 is a plan view of the electrode member of Figure 4;
Figure 6 is a partly sectioned side elevational view of a second embodiment of the
spark plug assembly in association with an adaptor the same as the previous embodiment;
Figure 7 is a partly sectioned side elevational view of the insulator of the spark
plug assembly of Figure 6;
Figure 8 is a perspective view of the electrode member forming part of the spark plug
assembly of Figure 6;
Figure 9 is a cross-sectional side elevational view of the electrode member of Figure
8; and
Figure 10 is a sectional view of a modified form of cylinder head configuration at
the spark plug . port and incorporating an axial venturi passage as an alternative
to the adaptorwith which the spark plug assembly is associated in the preceding embodiments.
Detailed Description of Embodiments
[0012] Referring to Figures 1 to 5 of the drawings, the first embodiment of the spark plug
assembly of this invention, and generally designated as 20, includes an insulator
member 21 having an insulator body 22 of cylindrical configuration and a conductor
disposed centrally therethrough and projecting outwardly from one end as shown to
provide the main electrode 23 and extending outwardly from the other end to provide
a conventional electrical connector terminal 24. The insulator body 22 at its end
adjacent the main electrode 23 is enlarged as shown to provide a cylindrical section
25 of larger diameter than the remainder of the body, a frusto-conical section 26
between the cylindrical section 25 and the remainder of the insulator body, and a
further frusto-conical section 27 adjacent the main electrode 23. The remaining component
of the spark plug assembly is provided by an electrode member 28, which in this embodiment
is of a hollow conical configuration angled to match the angle of the frusto-conical
section 27 of the insulator member 21 so as to seat thereon when the electrode member
is placed in position on the end of the insulator member adjacent the main electrode
23 as shown in Figure 1. The conical electrode member 28 has a centrally disposed
aperture 29 at the apex thereof through which the main electrode 23 is received with
the tip of the electrode 23 and the apex of the conical electrode member 28 being
substantially in alignment.
[0013] The diameter of the central aperture 29 is greater than the diameter of the main
electrode 23 to form an annular spark gap extending completely around the main electrode.
When in position, the conical electrode member 28 defines a pre-combustion chamber
30 between itself and the end of the insulator body 22 and surrounding the main electrode
23. The conical electrode member 28 incorporates additional apertures 31, in this
case three equally spaced apart apertures, and so positioned relative to the central
aperture 29 that, when placed in position on the insulator member 21, they will be
in direct fluid communication with the pre-combustion chamber 30.
[0014] The spark plug assembly of this embodiment is, in use, associated with an adaptor
member generally indicated as 32. The adaptor member has a cylindrical main body portion
33 about which a hexagonal flange 34 is formed for engagement by a spanner during
fitting of the adaptor member to the spark plug port of an associated cylinder head.
The remainder of the adaptor member consists of an externally threaded extension 37
complementing the internally threaded spark plug port of an associated cylinder head.
The adaptor member has an axial passage therethrough shaped to provide a large diameter
chamber 35 adapted to receive the enlarged end of the spark plug assembly 20; and
a frusto-conical portion 36 angled to match the angle of the conical electrode member
28 of the spark plug assembly such that, the section of the conical electrode member
radially outwardly of the apertures 31 will be firmly clamped between the frusto-conical
section 27 of the insulator body and the frusto-conical portion 36 of the adaptor
member when the spark plug assembly is inserted within the adaptor as shown in Figure
1.
[0015] With this particular adaptor, the axial passage is completed by a venturi shaped
portion 38 extending through the threaded extension 37 and opening outwardly through
the end of the adaptor. The venturi shaped portion 38 consists of an outer tapered
section 39, a curved intermediate throat section 40 and an inner tapered section 41.
A plurality of elongate ports 42, in this case four, are provided through the wall
of the extension 37 and angled to open outwardly through a chamfered face 43 around
the end of the extension 37 and to open inwardly at the throat section 40 on the inner
tapered section 41 side thereof. As shown in Figure 1, the spark plug assembly 20,
comprising the insulator member 21 and the electrode member 28, and in accordance
with this preferred form of the invention, is positioned within the adaptor member
32 and retained in place by an annular retaining ring 44 having an external thread
cooperating with an internally threaded section 45 within the chamber 35 of the adaptor
member. As shown in Figure 1, the section of the electrode member radially outwardly
from the apertures 31 is clamped between the respective frusto-conical sections 27
and 36 of the insulator body and the adaptor member respectively, such that the apertures
31 will allow fluid communication between the pre-combustion chamber 30 within the
spark plug assembly and the inner tapered section 41 of the venturi passage within
the adaptor member.
[0016] The second embodiment of the invention shown in Figures 6 to 9, represents a modified
form of spark plug assembly 20 and in which the same reference numerals have been
used to identify features identical with those of the first embodiment. The adaptor
member 32 is identical in all respects with the adaptor associated with the spark
plug assembly of the first embodiment, and the same reference numerals are used to
identify its constructional details.
[0017] However, in this embodiment, the central main electrode 23' is shortened, and the
end of the insulator body 22 is of an inverted nose configuration providing a concave
cavity 46. The electrode member 47 of this embodiment is of hollow frusto-conical
configuration providing a flat end wall 48 through the centre of which the main aperture
49 for receiving the tip of the main electrode 23' is provided, and through which
face three additional apertures 50 are formed. The electrode member 47 defines, with
the cavity 46, a pre-combustion chamber 30' which, as with the first embodiment, communicates
with the inner section 41 of the venturi passage within the adaptor member 32 via
the additional apertures 50. As with the first embodiment, the radially outer section,
in this case the conical skirt, of the electrode member 47 is clamped between the
respective frusto-conical surfaces 27 and 36 of the insulator body and adaptor member
respectively.
[0018] In the two embodiments described above, the spark plug assemblies are, in use, associated
with an adaptor member within which the spark plug assembly is received and in which
a venturi passage is provided. The adaptor is in turn received in the conventional
spark plug port in the cylinder head of an internal combustion engine. As an alternative,
the adaptor member, being a separate integer, may be dispensed with and the spark
plug port through the cylinder head modified to provide a venturi passage, whereby
the spark plug assembly may be received directly within the spark plug port.
[0019] Such a modified spark plug port configuration for the cylinder head of an internal
combustion engine is shown in Figure 10. As shown, the spark plug port 51 in the cylinder
head 52 has an outer chamber 53 adapted to receive and retain either of the spark
plug assemblies 20 or 20' of the preceding embodiments, that is, the insulator member
and electrode member combinations 21, 28 of Figures 1 to 5, or 21, 47 of Figures 6to
9. The spark plug port further includes an inner section 54 in the form of a venturi
similar to that provided in the adaptor member of the preceding embodiments, having
outer, throat and inner sections 39, 40 and 41, with elongate ports. 42 opening at
one end into the cylinder chamber of the engine and at the other end into the throat
section 40 on the inner tapered section 41 side thereof. In this situation the electrode
member may be provided with a skirt extending down the side of the insulator member
to assist in locating the electrode member in position and providing for additional
heat transfer.
[0020] The basic principle of operation of the spark plug assembly according to this invention
will now be described.
[0021] Upon compression of combustible gases drawn into an associated cylinder during a
preceding induction stroke, the combustible gases accumulate in the axial passage
38 (Figures 1 and 3) or 54 (Figure 10) and also accumulate in the pre-combustion chamber
30 or 30' of the spark plug assembly 20 or 20' via the various apertures through the
electrode member 28 or 47. Upon subsequent firing some of the combustible gas in the
pre-combustion chamber immediately behind the electrode member will ignite, although
a majority of the charge against the end of the insulator body will not have a chance
to ignite. This fact has been confirmed by tests carried out where examination of
the spark plug assembly after use has shown no sign of detonation on the surface of
the electrode member, whilst the face of the insulator body was still wet with uncombusted
fuel. Simultaneously, combustion gases within the axial passage are ignited and are
expanding behind a flame front (hereinafter referred to as the "primary" burn) moving
through the axial passage and into the cylinder chamber. The ignited and expanding
gases within the pre-combustion chamber of the spark plug assembly (hereinafter referred
to as the "secondary" burn) having no other avenue of escape rapidly flow outwardly
through the apertures in the electrode member followed by the relatively larger volume
of uncombusted gases.
[0022] It will be observed that the electrode member forming part of the spark plug assembly
of this invention, apart from providing one of the necessary pair of electrodes for
the creation of a spark, provides an additional heat transfer path directly to the
cylinder head which assists in keeping the spark plug assembly cool as well as acting
as a gas seal. Furthermore, if the main electrode is positioned accurately in the
centre of the aperture in the surrounding electrode member a ring of sparks around
360° of the central electrode is produced providing efficient and symmetrical ignition,
which in turn is believed to account for the easier engine starting which has been
observed for engines fitted with spark plug assemblies in accordance with the present
invention. As the spark plug assembly is associated with a venturi passage as incorporated
in the adaptor of Figures 1 and 3 (venturi passage 38) or in the spark plug port as
in Figure 10 (venturi passage 54), an additional effect is achieved, as follows. As
the combusted gases for the "primary" burn move out of the venturi passage a partial
vacuum, or at least a reduced pressure, is generated in the venturi passage which
has the effect of increasing the speed at which the products of the "secondary" burn
move through the venturi passage, and the net result of the dual burn effect is an
increase in the velocity of the products of both burns through the venturi leading
to a considerable reduction in pressure within the venturi passage. Although it is
not entirely clear why the double burn effect produces such a great increase in velocity
and reduction in pressure in the venturi passage, one possibility is that the high
velocity of the products of the second burn cause it to catch up to the products of
the first burn to act thereupon and thrust them through the throat of the venturi.
Another possibility is that the second burn flows through to the decomposed gases
preceding the flame front of the first burn as it moves through the throat of the
venturi. It is believed that the velocity of the first burn accelerates from an initial
speed of in the order of 50 to 60 feet/sec. to something in the order of 100 feet/sec.
approaching the throat of the venturi passage before being caught by the second burn
moving at a velocity of possibly up to 1100 feet/sec. As a result of the considerably
reduced pressure generated in the venturi, further combustion gases are rapidly drawn
through the elongate ports 42 providing communication between the cylinder chamber
and the venturi passage to prime or recharge the venturi passage, and the pre-combustion
chamber within the spark plug assembly, ready for the next ignition stage, thus eliminating
the time delay associated with priming the space adjacent the spark plug assembly
during the next compression and ignition stage. The priming or recharging action also
has the advantage that the relatively cooler priming gases cool and clean the central
main electrode and the surrounding electrode member.
[0023] In general, the spark plug assemblies in accordance with the present invention exhibit
a greater lifetime without requiring cleaning or replacement. The prevention of carbonization
or fouling of the points also effectively eliminates the disadvantages of gradual
loss of engine power and inefficient running generally associated with the prior art
spark plug assemblies.
[0024] The arrangement in accordance with the present invention also has been found to give
rise to what may be termed a flattening of the flame front, thereby reducing to a
certain extent the possibility of the production of long fingers of flame which have
been found in the past to give rise to unwanted decomposition of the fuel ahead of
the flame front, eventually leading to detonation.
[0025] In practical terms the arrangement in accordance with the present invention has been
found to give rise to substantial improvements in at least three performance parameters
of an internal combustion engine, namely an improvement in the indicated mean effective
pressure (i.m.e.p.); a reduction in the octane requirement for the fuel (even to the
extent that it has been shown that engines previously requiring high octane (super)
fuels can still achieve equivalent or better performance with low octane (standard)
fuels); a reduction in the overall fuel consumption; and perhaps more importantly,
elimination of the necessity for leaded fuels, and a reduction in the emission of
pollutants. Also, a test carried out on the engine of a vehicle, which was previously
notorious for resulting in accumulation of oil on the spark plug electrodes, has shown
that with spark plugs in accordance with the present invention such "oiling" has ceased
and in addition original engine performance has been restored.
[0026] It is believed that both the exhaust and induction strokes for the motor or engine
will be normal in all respects and no burnt gas will be left in the venturi passage.
It has been found that the only adjustment required to be made to any engine in order
to accommodate spark plugs in accordance with the invention is with regard to the
timing. To be more specific it has been found preferable to advance the timing by
from between 5 and 7 degrees in order to take up or absorb the time lag caused by
the pre-combustion of the fuel and the subsequent firing of the mixture by means of
a flame instead of a spark.
1. A spark plug system comprising a spark plug (20) including an insulator member
(21) having an electrode (23; 23') disposed centrally thereof and projecting outwardly
from one end thereof and an electrode member (28; 47) at said one end of said insulator
member (21) surrounding and spaced from said centrally disposed electrode (23; 23'),
wherein said electrode member (28; 47) is so shaped as to define, with the insulator
member (21), a pre-combustion chamber (30; 30') surrounding the centrally disposed
electrode (23; 23'), said electrode member (28; 47) having an aperture (29; 49) to
receive the extreme end of said centrally disposed electrode (23; 23') of said insulator
member (21), said electrode member (28; 47) further including a plurality of additional
separate apertures (31; 50) adjacent said central aperture (29; 49), characterised
in that the system includes an axial venturi passage (38) and said ' additional apertures (31; 50) are adapted to allow for fluid communication between
the pre-combustion chamber (30; 30') and an inner chamber section (41) leading to
the throat section (40) of said associated axial venturi passage (38; 54), and in
that at least one transfer port (42) is provided opening at one end to the cylinder
chamber of an associated engine and at the other end near the throat section (40)
of said venturi passage (38; 54) at the side of the inner chamber section (41) thereof.
2. A spark plug system as claimed in claim 1, wherein said electrode member is in
the form of a hollow conical member (28) and said aperture (29) for receiving said
centrally disposed electrode (23) is provided through the apex of said conical electrode
member (28).
3. A spark plug system as claimed in claim 1, wherein said insulator member (21) has
a cavity (46) formed in one end thereof adjacent said central electrode (23'), and
said electrode member (47) is of frusto-conical configuration having a flat end wall
(48), and said aperture (49) for receiving said centrally disposed electrode (23')
is provided through the centre of said flat end wall (48).
4. A spark plug system as claimed in any one of the preceding claims, wherein said
additional apertures (31; 50) are equally spaced around said central aperture (29;
49) and radially spaced therefrom.
5. A spark plug system as claimed in any one of the preceding claims, wherein said
electrode member (28; 47) is located on a surface (27) of said insulator member (21)
surrounding and spaced from said electrode (23; 23') whereby, in use, said electrode
member (28; 47) is clamped between said surface (27) and a complementary surface (36)
about the adjacent end of said axial venturi passage (38).
6. A spark plug system as claimed in any one of the preceding claims, including an
adaptor member (32) through which said axial venturi passage (38) is provided, and
wherein said one end of said insulator member (21) is received and retained within
a chamber (35) within said adaptor (32) and communicating with said axial venturi
passage (38).
7. A spark plug system as claimed in any one of claims 1 to 5, wherein said associated
axial venturi passage (54) is provided by the spark plug port in an associated engine
body.
1. Zündkerzenanlage mit einer Zündkerze (20) mit einem Isolator (21), der eine Elektrode
(23; 23') aufweist, die in seiner Mitte angeordnet ist und von seinem einen Ende nach
außen vorsteht, und mit einem Elektrodenteil (28; 47), das an dem einen Ende des Isolators
(21) angeordnet ist und im Abstand von der mittig angeordneten Elektrode (23; 23')
diese umgibt, wobei das Elektrodenteil (28; 47) so gestaltet ist, daß es mit dem Isolator
(21) eine Vorbrennkammer (30; 30') ausbildet, die die mittig angeordnete Elektrode
(23; 23') umgibt, wobei das Elektrodenteil (28; 47) eine Öffnung (29; 49) vor Aufnahme
des extremen Endes der mittig angeordneten Elektrode (23; 23') des Isolators (21)
aufweist und wobei das Elektrodenteil (28; 47) weiterhin eine Vielzahl zusätzlicher
separater Öffnungen (31; 50) neben der mittigen Öffnung (29; 49) aufweist, dadurch
gekennzeichnet, daß die Anlage einen axialen Venturi-Kanal (38) aufweist und die zusätzlichen
Öffnungen (31; 50) so ausgebildet sind, daß sie eine Fluidverbindung zwischen der
Vorbrennkammer (30; 30') und einem Innenkammer abschnitt (41) herstellen, der zu einem
Kehlabschnitt des zugeordneten axialen Venturi-Kanals (38; 54) führt, und daß zumindest
ein Übertragungskanal (42) vorgesehen ist, der mit einem Ende in die Zylinderkammer
einer zugeordneten Brennkraftmaschine und mit dem anderen Ende nahe des Kehlabschnitts
(40) des Venturi-Kanals (38; 54) an der Seite des Innenkammerabschnitts (41) desselben
mündet.
2. Zündkerzenanlage nach Anspruch 1, bei der das Elektrodenteil als hohles konisches
Element (28) gestaltet ist und die Öffnung (29) zur Aufnahme der mittig angeordneten
Elektrode (23) durch die Spitze des konischen Elektrodenteils (28) vorgesehen ist.
3. Zündkerzenanlage nach Anspruch 1, bei der der Isolator (21) einen in seinem einen
Ende ausgebildeten Hohlraum (46) neben der mittigen Elektrode (23') aufweist, das
Elektrodenteil (47) kegelstumpfförmig mit einer ebenen Abschlußwand (48) ist und die
Öffnung zur Aufnahme der mittig angeordneten Elektrode (23') durch die Mitte der ebenen
Abschlußwand (48) vorgesehen ist.
4. Zündkerzenanlage nach einem der vorangehenden Ansprüche, bei der die zusätzlichen
Öffnungen (31; 50) im gleichen Abstand um die mittige Öffnung (29; 49) und im Radialabstand
zu dieser angeordnet sind.
5. Zündkerzenanlage nach einem der vorangehenden Ansprüche, bei der das Elektrodenteil
(28; 47) auf einer Fläche (27) des Isolators (21) angeordnet ist, die im Abstand von
der Elektrode (23; 23') dieselbe umgibt, wodurch, beim Gebrauch, das Elektrodenteil
(28; 47) zwischen der Fläche (27) und einer Komplementärfläche (36), die um das benachbarte
Ende des axialen Venturi-Kanals (37) angeordnet ist, eingeklemmt ist.
6. Zündkerzenanlage nach einem der vorangehenden Ansprüche, die ein Adapterteil (32)
aufweist, durch das der axiale Venturi-Kanal (38) ausgebildet ist, und bei der das
eine Ende des Isolators (21) innerhalb einer Kammer (35) innerhalb des Adapterteils
(32) aufgenommen und gehalten ist und mit dem axialen Venturi-Kanal (38) in Verbindung
steht.
7. Zündkerzenanlage nach einem der Ansprüche 1 bis 5, bei der der zugeordnete axiale
Venturi-Kanal (54) in der Zündkerzenbohrung eines zugeordneten Brennkraftmaschinenblocks
vorgesehen ist.
1. Système de bougie d'allumage comportant une bougie d'allumage (20) incluant un
organe formant isolateur (21) qui possède une électrode (23; 23') positionnée au centre
de cet organe et faisant saillie vers l'extérieur à partir d'une première extrémité
de ce dernier, et un organe formant électrode (28; 47) situé au niveau de ladite première
extrémité dudit organe formant isolateur (21) et entourant, en en étant espacé, ladite
électrode centrale (23; 23'), et dans lequel ledit organe formant électrode (28; 47)
est conformé de manière à définir, avec l'organe formant isolateur (21), une chambre
de précombustion (30; 30') entourant l'électrode centrale (23; 23'), ledit organe
formant électrode (28; 47) possédant une' ouverture (29; 49) destinée à recevoir la pointe d'extrémité de ladite électrode
centrale (23; 23') dudit organe formant isolateur (21), ledit organe formant électrode
(28; 47) comprenant en outre plusieurs ouvertures supplémentaires séparées (31; 50)
situées au voisinage de ladite ouverture centrale (29; 49), caractérisé en ce que
le système comporte un passage axial formant venturi (38) et lesdites ouvertures supplémentaires
(31; 50) sont adaptées pour permettre une communication fluidique entre la chambre
de précombustion (30; 30') et une section intérieure (41) de la chambre conduisant
à la section format col (40) dudit passage axial associé formant venturi (38; 54),
et en ce qu'il est prévu au moins un orifice de transfert (42) débouchant, à une extrémité,
dans la chambre du cylindre d'un moteur associé et, au niveau de l'autre extrémité,
à proximité de la section formant col (40) dudit passage formant venturi (38; 54),
sur le côté de cette dernière, tourné vers la section intérieure (41) de la chambre.
2. Système de bougie d'allumage selon la revendication 1, dans lequel ledit organe
formant électrode est réalisé sous la forme d'un organe conique creux (28) et ladite
ouverture (29) de réception de ladite électrode centrale (23) est ménagée à travers
le sommet dudit organe en forme d'électrode conique (28).
3. Système de bougie d'allumage selon la revendication 1, dans lequel ledit organe
formant isolateur (21) comporte une cavité (46) ménagée dans l'une de ses extrémités,
au voisinage de ladite électrode centrale (23'), et ledit organe formant électrode
(47) possède une configuration tronconique présentant une paroi d'extrémité plate
(48), et ladite ouverture (49) de réception de ladite électrode centrale (23') est
ménagée au centre de ladite paroi d'extrémité plate (48).
4. Système de bougie d'allumage selon l'une quelconque des revendications précédentes,
dans lequel lesdites ouvertures supplémentaires (31; 50) sont uniformément réparties
autour de ladite ouverture centrale (29; 49) et sont espacées radialement de cette
dernière.
5. Système de bougie d'allumage selon l'une quelconque des revendications précédentes,
dans lequel ledit organe formant électrode (28; 47) est situé sur une surface (27)
dudit organe formant isolateur (21) en entourant, tout en en étant espacé, ladite
électrode (23; 23'), ce qui a pour effet que, en service, ledit organe formant électrode
(28; 47) est coincé entre ladite surface (27) et une surface complémentaire (36) autour
de l'extrémité adjacente dudit passage axial formant venturi (38).
6. Système de bougie d'allumage selon l'une quelconque des revendications précédentes,
incluant un organe formant adaptateur (32), à travers lequel est formé ledit passage
axial formant venturi (38), et dans lequel ladite première extrémité dudit organe
isolateur (21) est logée et retenue à l'intérieur d'une chambre (35) située à l'intérieur
dudit adaptateur (32) et est en communication avec ledit passage axial formant venturi
(38).
7. Système de bougie d'allumage selon l'une quelconque des revendications 1 à 5, dans
lequel ledit passage axial associé formant venturi (54) est formé par l'orifice de
réception de la bougie dans un corps de moteur associé.