BACKGROUND OF THE INVENTION
[Field of the Invention]
[0001] The present invention relates to a method of operating an improved ignition coil
mainly used for internal combustion engines for vehicles.
[Description of the Related Art]
[0002] Various kinds of ignition coils are known hitherto, wherein a permanent magnet is
inserted into an air gap portion of an iron core in order to increase stored energy.
[0003] Document EP-A-0 352 453 discloses an ignition coil, wherein an iron core is provided
with an air gap additionally having a permanent magnet disposed in the air gap portion.
The cross-sectional area of the permanent magnet and the cross-sectional area of a
permanent magnet supporting portion of the iron core are substantially equal (

). The thickness of the permanent magnet inserted in the air gap portion is between
0.6 - 1.8 mm, the ratio of the cross-sectional area of the permanent magnet supporting
portion SG and the cross-sectional area of the iron core SF is between 1.5 and 4.5,
and the ratio of the cross-sectional area of the permanent magnet SM and the cross-sectional
area of the iron core SF is between 2 and 6. Prior to the energization of the primary
coil, the iron core is magnetized by a magnetizing force of the permanent magnet inserted
in the air gap portion in order to reach a state of a maximum working magnetic flux
density in the negative direction which is opposite to the direction of the magnetization
to be caused by the energization of the primary coil, in particular. According to
this construction, the permanent magnet biases the magnetization to the negative saturation
point of 1.5 T to obtain the maximum energy. However, the secondary voltage will be
reduced, when the primary current is reduced below 3.5 A which is more likely, when
the primary winding resistance is higher than 1 Ohm. In this case, the output voltage
of an ignition coil having a permanent magnet is clearly less than that of an ignition
coil not being equipped with a permanent magnet, specifically in a primary current
range lower than 3 A. Due to the corresponding magnetic saturation, this results in
an output performance degradation.
[0004] Fig. 6 is a schematic view showing a fundamental magnetic circuit of an iron core
which has a permanent magnet inserted into an air gap portion of an ignition coil
according to the above European Patent Application. In a magnetic circuit shown in
Fig. 6, reference mark SF is a cross-sectional area of the iron core through which
magnetic flux Φ flows, SG is a cross-sectional area of a permanent magnet supporting
portion of the iron core, LF is a mean magnetic path length, SM is a cross-sectional
area of the permanent magnet which is hatched, and LM is a thickness of the permanent
magnet.
[0005] Figs. 7 and 8 are performance characteristic diagrams for illustrating the magnetic
performance of the ignition coil according to the above European Patent Application.
[0006] Referring to Fig. 7, when a primary winding is wound by n turns on a winding part
of the ignition coil and exciting or primary current Ip' flows through the primary
winding so as to generate magnetic flux +Φ' in opposite direction to the direction
of magnetization by the permanent magnet which generates a magnetic flux -Φ' in the
negative direction, energy stored in the primary winding is represented by a hatched
area W' and expressed by the following equation.

In order to maximize the energy W' stored in the primary winding of the ignition
coil which has the inserted permanent magnet, a magnetizing force of the permanent
magnet must magnetize the iron core to a point P close to the saturation point of
the negative flux in the iron core in negative flux region in the lower left of Fig.
8.
[0007] In Fig. 9 which is a fragmentary diagram of the positive flux region, a curve (a)
represents a magnetization characteristic of the iron core, a straight line (b) represents
a magnetization characteristic of the permanent magnet, and a curve (c) represents
a magnetization characteristic of the primary winding. The maximum working magnetic
flux density BF of the iron core is given by a value corresponding to a point T which
is a tangent point on the curve (a) with a straight line being parallel to the straight
line (b) as a resultant summation of (a) and (b).
[0008] On the other hand, since the gradient of the magnetization curve of the primary winding
is determined by the permeability µ of the permanent magnet, it is of significance
that a permanent magnet material which has a permeability value close to 1 should
be selected in order to increase the energy stored in the primary winding represented
by a hatched area W in Fig. 8, so that the permeability value close to 1 may contribute
as an air gap which stores energy and to decline the magnetization curve of the primary
winding shown in Fig. 8.
[0009] In connection with the ignition coil referred to Fig. 6, a relationship between the
thickness LM of the permanent magnet and a cross-sectional area ratio SG/SF of the
core has been examined. When considering the positive flux region in Fig. 8, the magnetizing
force nIp/2 produced by an exciting current flowing through the primary winding is
the resultant of a magnetizing force HF·LF of the iron core (where HF is a magnetic
field in the iron core) and a magnetizing force H·LM across the air gap portion containing
the permanent magnet (where H is a magnetic field generated in the air gap portion).
Thus, the above-mentioned relation is expressed by the following equation. In this
case, Ip means the maximum primary winding current, that is, the current under normal
operation.

Then, the following equation results.

On the other hand, the following equation is deduced so that the magnetic flux density
BM in the permanent magnet is expressed as follows.

Given that mean magnetic flux density in the air gap portion containing the permanent
magnet is BG, the following relationship is also deduced.

[0010] As will be described later, in the event

is preferably chosen in the relationship between the iron core and the permanent
magnet of the ignition coil, the above equation is immediately reduced to

. By combining this equation with the above equation indicative of BM, there results
the following relation.

Consequently, the thickness LM is indicated by the following relation.

Thus, this is reduced further to the following equation as an equation indicative
of the cross-sectional area ratio SG/SF.

[0011] In the negative flux region of the hatched region in the performance characteristic
curve diagram of Fig. 8, the iron core is required to be magnetized by a magnetizing
force of the primary winding in opposition to energy possessed by the permanent magnet,
so that a positive flux may pass through the iron core. Therefore, the iron core is
first magnetized to the point P close to the saturation point in the negative flux
region of the iron core depicted in the lower left region in Fig. 8 by the magnetizing
force of the permanent magnet as described previously. Thereafter the iron core is
magnetized to the point T near the saturation point in the positive flux region depicted
at an upper right region in Fig. 8 by the magnetizing force nIp due to the exciting
current Ip through the primary winding. In this instance, the maximum energy EM of
the permanent magnet, which depends on the material and shape of the permanent magnet,
is related to the energy W in Fig. 8 which is stored in the primary winding, by

. The area indicative of W in Fig. 8 is W =(1/2)(2·BF·SF)·nIp = BF·SF·nIp.
[0012] On the other hand, the maximum energy product of a permanent magnet is expressed
as (B·H)
MAX., and the theoretical value of a maximum energy EM possessed by the permanent magnet
is expressed by

. As an operating point of the permanent magnet to be determined by the gradient of
the magnetization curve (b) of the permanent magnet shown in Fig. 9, is chosen the
point which gives the maximum energy product (B·H)
MAX. or which is around such optimum point.
[0013] Thus, the energy stored in the primary winding is expressed as follows.

From this equation, the following equation indicative of the cross-sectional area
ratio SM/SF is obtained.

The above two equations (1) and (2) indicate the relationship between dimensions
of individual portions of the magnetic circuit in the ignition coil.
[0014] As a material for said permanent magnet, SmCo5 (samarium cobalt) is used and specifications
of the elements are as follows:

and µ = 1.05. The iron core is formed of non-oriented silicon steel plates and the
value of the elements therefore are as follows.
SF = 49 mm2, BF = 1.4 Wb/m2,
nIp = 800 Aturns, HF = 150 Aturns/m, and
LF = 0.1 m
[0015] The values of the elements are substituted into the equations (1) and (2) to obtain
the relationship between LM and each of the cross-sectional area ratios SG/SF and
SM/SF as graphically shown in Figs. 10 and 11. Illustrated in Figs. 10 and 11 is a
secondary voltage V2 generated in the secondary winding which is obtained from performance
tests conducted for various ignition coils which have different dimensions of individual
portions depending on the changes in thickness LM of the permanent magnet. Particularly,
Fig. 11 shows distribution curves of the secondary voltage V2 shown in Fig. 10 after
converting them into a two-dimensional characteristic curve and as a relationship
between the thickness LM of the permanent magnet and the magnitude of the secondary
voltage V2.
[0016] As a result of thus obtained data illustrated in Figs. 10 and 11 under given dimensional
conditions of the ignition coil, taught are the following relations.
(a)

, that is, the cross-sectional area of the permanent magnet supporting portion of
the iron core should be substantially equal to the cross-sectional area of the permanent
magnet.
(b) As long as the values of LM, SM/SF and SG/SF are within the following ranges,
a secondary voltage V2 is remarkably high.
0.6 mm < LM < 1.8 mm
2 < SM/SF < 6
1.5 < SG/SF < 4.5
[0017] Figs. 15 and 16 show cross-sectional and side views of another conventional ignition
coil which has no permanent magnet, respectively. Figs. 17 and 18 respectively show
the cross-sectional and side views of the ignition coil which utilizes the permanent
magnet according to the above prior art 1. As it is clearly understood by reference
to each Figures and dimensions respectively, the ignition coil applied with the permanent
magnet may drastically realize a small size (see the typical dimension values in the
Figures) and light weight (190 grams) ignition coil compared with the prior art (350
grams) which has no permanent magnet.
[0018] The ignition coil in the prior art described hereinabove and illustrated in Fig.
17 is mostly effective in a highly sophisticated ignition system which may supply
6A (Amperes) drive current constantly to the primary winding which has less than one
ohm resistance even in a case when a battery voltage dropped below the specified value
as to maximize the magnetic flux density. The relationship between the primary cut-off
current and secondary output voltage (I1-V2) of the ignition coil in the prior art
which has no permanent magnet but has the same secondary output voltage at the same
primary current of 6A is graphically compared in Fig. 12 by a solid and dotted lines
respectively.
[0019] The I1-V2 relationship in Fig. 12 indicates that the secondary output voltage of
both ignition coils in the prior art is mostly same at around 6A of the primary current,
but the output voltage of permanent magnet type is clearly less than that without
a permanent magnet particularly in the primary current range lower than 3A. As illustrated
in Fig. 13, this comes from the reason that magnetizing characteristic of the primary
winding actually has a curvature in the case when the ratio between the cross-sectional
area of the permanent magnet SM and that of iron core SF is chosen as 3 (SM/SF = 3),
and the iron core is negatively magnetized into a magnetic saturation region by the
permanent magnet. In other words, as illustrated in Fig. 14, the stored energy W3'
in lower primary current range is less than the energy W' of the ignition coil which
has no permanent magnet by the amount corresponding to a magnetic saturation, and
this results in output performance degradation.
[0020] For the ignition system in which the ignition coil has a primary winding of more
than 1 ohm resistance and primary current is mainly controlled by a dwell angle, the
output performance at around 3A primary current range becomes very important, particularly
in an engine cranking time under high temperature and low battery voltage. Technical
study and understanding regarding this phenomenon is a basic motivation for inventors
of the present invention.
SUMMARY OF THE INVENTION
[0021] It is an object of this invention to newly realize a small and light weight ignition
coil without losing the output performance in lower primary current range.
[0022] According to the present invention this object is accomplished by a method of operating
an ignition coil as claimed in the appended claims.
[0023] Accordingly, the thickness LM of a permanent magnet and SM/SF ratio between two cross-sectional
areas SM and SF are chosen as follows so that the working magnetizing zone of a primary
winding does not reside in the curved zone of the magnetization characteristics in
the negative region as illustrated in Fig. 4.

BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
Fig. 1 is a sectional view of an ignition coil according to one embodiment of this
invention;
Fig. 2 is a side view of the ignition coil according to the embodiment;
Fig. 3 is a magnetization performance diagram of a non-oriented silicone steel sheet;
Fig. 4 is a magnetic characteristic performance diagram illustrating the magnetic
performance of the ignition coil according to the embodiment;
Fig. 5 is a characteristic diagram illustrating a relation between a primary cut-off
current and a secondary voltage of the ignition coil of the present embodiment which
has a permanent magnet in comparison with a prior art ignition coil which has no permanent
magnet;
Fig. 6 is a schematic view illustrating a fundamental magnetic circuit for the iron
core in the prior art ignition coil which has a permanent magnet;
Fig. 7 is a performance characteristic diagram illustrating the fundamental magnetic
performance of the ignition coil of the prior art;
Fig. 8 is a performance characteristic diagram illustrating the magnetic performance
of the ignition coil of the prior art;
Fig. 9 is an explanatory diagram for explaining a process of determining a suitable
value for the maximum working magnetic flux density of the iron core in the positive
flux region of the magnetic performance characteristics shown in Fig. 8;
Fig. 10 is a characteristic diagram illustrating a relationship of cross-sectional
area ratios SG/SF and SM/SF and the voltage V2 generated by the secondary winding
versus the thickness LM of the permanent magnet;
Fig. 11 is a characteristic diagram illustrating a relationship between the secondary
voltage V2 and the thickness LM of the permanent magnet;
Fig. 12 is a characteristic diagram illustrating a relationship between secondary
voltage and cut-off current of primary winding of the ignition coils of the prior
art with and without a permanent magnet;
Fig. 13 is a magnetic performance characteristic diagram in the case of the cross-sectional
area ratio being SM/SF=3;
Fig. 14 is a magnetic performance characteristic diagram of the ignition coil which
has no permanent magnet;
Fig. 15 is a sectional view of the ignition coil which has no permanent magnet;
Fig. 16 is a side view of the ignition coil which has no permanent magnet;
Fig. 17 is a sectional view of the ignition coil according to the prior art; and
Fig. 18 is a side view of the ignition coil according to the prior art.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0025] The present invention is described hereinunder in more detail with reference to an
embodiment illustrated in Figs. 1 through 5. Fig. 1 is a sectional view of an ignition
coil according to an embodiment of this invention and Fig. 2 is a side view of the
same. In Figs. 1 and 2, an iron core 1 is made by laminated non-oriented silicone
steel sheets and forms a closed magnetic flux circuit via an air gap 2 diagonally
arranged in the iron core 1.
[0026] A permanent magnet 4 is inserted into the air gap 2 of the iron core 1. A primary
winding 6 is wound on the iron core 1. The permanent magnet 4 is magnetized in the
opposite direction to the direction of magnetization by the exciting current flowing
through the primary winding 6. Electrical resistance of the primary winding 6 in case
of this embodiment is made to be more than 1 ohm. However, it is another solution
to make more than 1 ohm electrical resistance by connecting an external resistance
in series with the primary winding 6.
[0027] Further, a secondary winding 8 is wound on the primary winding 6. Here, the mutual
relationship between of thickness LM of the permanent magnet 4, diagonal cross-sectional
area SM of the permanent magnet 4 and non-diagonal or normal cross-sectional area
SF of the iron core 1 at the winding portion is selected to satisfy the following
condition. In addition to this condition, the diagonal cross-sectional area SG of
the iron core 1 at the air gap portion is so formed as to be nearly equal to the cross-sectional
are SM of the permanent magnet 4.

[0028] Here, referring to the relationship of magnetic flux density B versus magnetizing
force H on the B-H characteristic curve of non-oriented silicone steel sheet in Fig.
3, increment of the magnetizing force H becomes larger from the point where the flux
density B equals 1 [T]. That is, the flux density B starts its saturation over the
point of B=1 [T], then stored magnetic energy does not increase, because the magnetic
energy is an integrated product of the magnetizing force H by magnetic flux density
B.
[0029] Therefore, as illustrated in Fig. 4, it is possible to control magnetization curve
by the primary winding 6 not to come into curved portion in the negative magnetizing
region in the left lower side of the diagram. Since the magnetic saturation point
of the iron core 1 is generally at the point where BF nearly equals 1.5 [T], it is
better to specify the magnetic working range up to 1.5 [T] on the magnetization curve
of the core 1 in the positive region and to specify negatively biased magnetic working
point of the permanent magnet 4 around the point of 2/3 of the saturation point.
[0030] Left lower side of Fig. 4 illustrates that the magnetization by the primary winding
6 in the negative region does not come to the magnetic saturation zone. Excessively
small negative bias of the permanent magnet 4 causes counter-effect for purpose to
minimize the ignition coil. Practically, in case when the thickness LM of the permanent
magnet 4 is the same as that of the prior art, the cross-sectional area SM of the
permanent magnet 4 results in roughly 2/3 of that of the permanent magnet applied
in the prior art. As the permanent magnet 4 in this embodiment of the present invention,
the same magnet material as in the above described prior art which has specification
of µ=1.05 and

is used.
[0031] Thickness LM of the permanent magnet 4 of the present invention is selected within
the same range (0.6 mm<LM<1.8 mm) of that of the prior art, because this range provides
maximum secondary voltage V2 as indicated in Fig. 11. The cross-sectional area ratio
SM/SF is also selected within the range of 1.3<SM/SF<3.0 due to the following relationship.
That is, when the condition

is added to relationship 1.5<SG/SF<4,5 and 2<SM/SF<6 in the prior art, the relationship
between SM and SF results in the following rather limited range.

[0032] In the embodiment of the present invention, the new condition, that is, 2/3 times
factor which has been discussed in detail should be added to the above condition,
then it makes concluded allowable lower and upper limit of the ratio SM/SF as follows.

[0033] As illustrated in Fig. 4, the ignition coil of the present invention may use its
straight line portion as the magnetization curve for the primary winding 6 by the
introduction of the 2/3 factor and SM/SF ratio of 1.5. Further, as illustrated in
Fig. 14 in relation to the prior art, the stored energy W'
1.5 on the lower current range is approximately equal to the energy W' of ignition coil
which has no permanent magnet. Further, Fig. 5 shows that there is no difference in
the secondary output voltage V2 versus cut-off current of the primary winding 6 of
both ignition coils of the present invention and the prior art which has no permanent
magnet.
[0034] As it is clearly understood referring to the dimensions of the ignition coil of the
present invention provided for easy understanding in Figs. 1 and 2 comparing with
that of the one shown in Figs. 15 and 16, small and light weight (240 grams) can be
realized compared with one of the prior art (350 grams) without degrading the output
performance at a low primary current range.
[0035] In summary, disclosed is an ignition coil which is most small in size without degrading
performance under low primary current. The ignition coil includes an iron core 1 forming
a closed magnetic circuit through an air gap 2 , a primary winding 6 wound around
the iron core 1 for magnetizing the iron core 1 and a permanent magnet 4 magnetized
in an opposite direction to a magnetizing direction by the primary winding current.
A cross-sectional area SG of the iron core 1 at which the permanent magnet 4 is inserted
is made substantially equal to that SM of the permanent magnet 4 . In order for the
permanent magnet 4 to bias by 2/3 of the magnetic flux saturation point of the iron
core 1 , the permanent magnet 4 is so shaped that its thickness LM satisfies 0.6 mm<LM<1.8
mm and its cross-sectional area SM and the cross-sectional area SF of winding portion
of the iron core 1 satisfies

.
1. A method of operating an ignition coil of the type comprising,
an iron core (1) forming a closed magnetic path through an air gap (2) provided therein,
a primary winding (6) wound on said iron core for magnetizing said iron core when
supplied with an electric current,
a secondary winding (8) wound on said iron core (1),
a permanent magnet (4) inserted in said air gap (2) of said iron core (1) and magnetized
in an opposite direction to a magnetizing direction by the supply of electric current
to said primary coil (6), wherein a cross-sectional area (SG) of said iron core at
which said permanent magnet is inserted is substantially equal to a cross-sectional
area (SM) of said permanent magnet (4) and a thickness (LM) of said permanent magnet
is within a range from 0.6 mm to 1.8 mm, and
said primary winding has a primary resistance higher than 1 Ohm and a ratio (SM/SF)
between the cross-sectional area (SM) of said permanent magnet (4) and a cross-sectional
area (SF) of said iron core (1) at which said windings are wound is within a range
from 1.3 to 3.0,
whereby, in operation, the maximum value of the current to flow through the primary
winding magnetizing the iron core at saturation causes a magnetizing force on the
iron core which is opposite in direction and 1.5 times the value of the magnetizing
force due to the permanent magnet.
2. A method of operating an ignition coil of the type comprising,
an iron core (1) forming a closed magnetic path through an air gap (2) provided therein,
a primary winding (6) wound on said iron core for magnetizing said iron core when
supplied with an electric current,
a secondary winding (8) wound on said iron core (1),
a permanent magnet (4) inserted in said air gap (2) of said iron core (1) and magnetized
in an opposite direction to a magnetizing direction by the supply of electric current
to said primary coil (6), wherein a cross-sectional area (SG) of said iron core at
which said permanent magnet is inserted is substantially equal to a cross-sectional
area (SM) of said permanent magnet (4) and a thickness (LM) of said permanent magnet
is within a range from 0.6 mm to 1.8 mm, and
said primary winding (6) is connected to an outside resistance which provides, in
combination with said primary winding, a primary resistance higher than 1 Ohm, and
a ratio (SM/SF) between the cross-sectional area (SM) of said permanent magnet (4)
and a cross-sectional area (SF) of said iron core (1) at which said windings are wound
is within a range from 1.3 to 3.0,
whereby, in operation, the maximum value of the current to flow through the primary
winding magnetizing the iron core at saturation causes a magnetizing force on the
iron core which is opposite in direction and 1.5 times the value of the magnetizing
force due to the permanent magnet.
3. Method of operating an ignition coil according to claim 1 or 2, wherein said ignition
coil is used for internal combustion engine of an automotive vehicle.
4. Method of operating an ignition coil according to claim 3, wherein a permeability
(µ) of said permanent magnet (4) is substantially 1, said permanent magnet (4) includes
samarium and cobalt, and said iron core (1) includes non-oriented silicone steel plates.
5. Method of operating an ignition coil according to claim 1 or 2, wherein the magnetization
in the opposite direction by said permanent magnet (4) is limited to 1.0 T.
1. Verfahren zum Betreiben einer Zündspule der Bauart mit,
einem einen geschlossenen magnetischen Kreis über einen darin vorgesehenen Luftspalt
(2) aufweisenden Eisenkern (1),
einer auf dem Eisenkern gewickelten Primärwicklung (6) zur Magnetisierung des Eisenkerns
bei einer Versorgung mit elektrischem Strom,
einer auf dem Eisenkern (1) gewickelten Sekundärwicklung (8),
einem in den Luftspalt (2) des Eisenkerns (1) eingefügten und in einer Gegenrichtung
zu einer Magnetisierungsrichtung infolge der Versorgung der Primärspule (6) mit elektrischem
Strom magnetisierten Dauermagneten (4), wobei eine Querschnittsfläche (SG) des Eisenkerns,
bei der der Dauermagnet eingefügt ist, im wesentlichen gleich einer Querschnittsfläche
(SM) des Dauermagneten (4) ist und eine Dicke (LM) des Dauermagneten innerhalb eines
Bereiches von 0,6 mm bis 1,8 mm liegt, und
wobei die Primärwicklung einen primärseitigen Widerstand größer als 1 Ohm aufweist
und ein Verhältnis (SM/SF) zwischen der Querschnittsfläche (SM) des Dauermagneten
(4) und einer Querschnittsfläche (SF) des Eisenkerns (1), bei der die Wicklungen aufgewickelt
sind, innerhalb eines Bereiches von 1,3 bis 3,0 liegt,
wobei im Betrieb der Maximalwert des durch die Primärwicklung zur Sättigungsmagnetisierung
des Eisenkerns fließenden Stroms eine Magnetisierungsstärke in dem Eisenkern bewirkt,
die der Magnetisierungsstärke infolge des Dauermagneten entgegengerichtet und wertmäßig
1,5-fach größer ist.
2. Verfahren zum Betreiben einer Zündspule der Bauart mit,
einem einen geschlossenen magnetischen Kreis über einen darin vorgesehenen Luftspalt
(2) aufweisenden Eisenkern (1),
einer auf dem Eisenkern gewickelten Primärwicklung (6) zur Magnetisierung des Eisenkerns
bei einer Versorgung mit elektrischem Strom,
einer auf dem Eisenkern (1) gewickelten Sekundärwicklung (8),
einem in den Luftspalt (2) des Eisenkerns (1) eingefügten und in einer Gegenrichtung
zu einer Magnetisierungsrichtung infolge der Versorgung der Primärspule (6) mit elektrischem
Strom magnetisierten Dauermagneten (4), wobei eine Querschnittsfläche (SG) des Eisenkerns,
bei der der Dauermagnet eingefügt ist, im wesentlichen gleich einer Querschnittsfläche
(SM) des Dauermagneten (4) ist und eine Dicke (LM) des Dauermagneten innerhalb eines
Bereiches von 0,6 mm bis 1,8 mm liegt, und
wobei die Primärwicklung (6) mit einem außerhalb angeordneten Widerstand verbunden
ist, der in Verbindung mit der Primärwicklung einen primärseitigen Widerstand größer
als 1 Ohm bereitstellt, und ein Verhältnis (SM/SF) zwischen der Querschnittsfläche
(SM) des Dauermagneten (4) und einer Querschnittsfläche (SF) des Eisenkerns (1), bei
der die Wicklungen aufgewickelt sind, innerhalb eines Bereiches von 1,3 bis 3,0 liegt,
wobei im Betrieb der Maximalwert des durch die Primärwicklung zur Sättigungsmagnetisierung
des Eisenkerns fließenden Stroms eine Magnetisierungsstärke in dem Eisenkern bewirkt,
die der Magnetisierungsstärke infolge des Dauermagneten entgegengerichtet und wertmäßig
1,5-fach größer ist.
3. Verfahren zum Betreiben einer Zündspule nach Anspruch 1 oder 2, wobei die Zündspule
für eine Brennkraftmaschine eines Automobils verwendet wird.
4. Verfahren zum Betreiben einer Zündspule nach Anspruch 3, wobei eine Permeabilität
(µ) des Dauermagneten (4) im wesentlichen den Wert 1 aufweist, der Dauermagnet (4)
Samarium und Kobalt umfaßt, und der Eisenkern (1) nichtorientierte Silizium-Stahl-Platten
umfaßt.
5. Verfahren zum Betreiben einer Zündspule nach Anspruch 1 oder 2, wobei die Magnetisierung
in der Gegenrichtung durch den Dauermagneten (4) auf den Wert 1,0 T beschränkt ist.
1. Procédé pour le fonctionnement d'une bobine d'allumage du type comprenant,
un noyau de fer (1) formant un trajet magnétique fermé par un entrefer (2) prévu dans
celui-ci,
un enroulement primaire (6) enroulé sur ledit noyau de fer pour magnétiser ledit noyau
de fer lorsqu'il est alimenté en courant électrique,
un enroulement secondaire (8) enroulé sur ledit noyau de fer (1),
un aimant permanent (4) introduit dans ledit entrefer (2) dudit noyau de fer (1) et
magnétisé dans une direction opposée à une direction de magnétisation par l'alimentation
d'un courant électrique à ladite bobine primaire (6), dans lequel une superficie de
la section (SG) dudit noyau de fer où est inséré ledit aimant permanent est sensiblement
égale à une superficie de la section (SM) dudit aimant permanent (4) et une épaisseur
(LM) dudit aimant permanent se situe à l'intérieur d'une plage de 0,6mm jusqu'à 1,8
mm, et
ledit enroulement primaire possède une résistance primaire supérieure à 1 Ohm et un
rapport (SM/SF) entre la superficie de section (SM) dudit aimant permanent (4) et
une superficie de section transversale (SF) dudit noyau de fer (1) où sont enroulés
lesdits enroulements se situe à l'intérieur d'une plage de 1,3 jusqu'à 3,0,
de telle sorte que dans le fonctionnement, la valeur maximum du courant passant par
l'enroulement primaire magnétisant le noyau de fer à saturation provoque une force
magnétisante qui est de direction opposée et qui est de 1,5 fois la valeur de la force
de magnétisation imputable à l'aimant permanent.
2. Procédé pour le fonctionnement d'une bobine d'allumage du type comprenant,
un noyau de fer (1) formant un trajet magnétique fermé par un entrefer (2) prévu dans
celui-ci,
un enroulement primaire (6) enroulé sur ledit noyau de fer pour magnétiser ledit noyau
de fer lorsqu'il est alimenté en courant électrique,
un enroulement secondaire (8) enroulé sur ledit noyau de fer (1),
un aimant permanent (4) inséré dans ledit entrefer (2) dudit noyau de fer (1) et magnétisé
dans une direction opposée à une direction de magnétisation par l'alimentation en
courant électrique à ladite bobine primaire (6), dans lequel une superficie de section
(SG) dudit noyau de fer où est inséré l'aimant permanent est sensiblement égale à
une superficie de section (SM) dudit aimant permanent (4) et une épaisseur (LM) dudit
aimant permanent se situe à l'intérieur d'une plage de 0,6 mm à 1,8 mm, et
ledit enroulement primaire (6) est connecté à une résistance extérieure qui assure,
en combinaison avec ledit enroulement primaire, une résistance primaire supérieure
à 1 Ohm, et un rapport (SM/SF) entre la superficie de section (SM) dudit aimant permanent
(4) et une superficie de section (SF) dudit noyau de fer (1) où sont enroulés les
enroulements se situe à l'intérieur d'une plage de 1,3 jusqu'à 3,0,
de telle sorte que , dans le fonctionnement, la valeur maximum du courant passant
par l'enroulement primaire magnétisant le noyau de fer à saturation provoque une force
magnétisante sur le noyau de fer qui est de direction opposée et de 1,5 fois la valeur
de la force magnétisante imputable à l'aimant permanent.
3. Procédé pour le fonctionnement d'une bobine d'allumage selon la revendication 1 ou
2, dans lequel ladite bobine d'allumage est utilisée pour le moteur à combustion interne
d'un véhicule automobile.
4. Procédé pour le fonctionnement d'une bobine d'allumage selon la revendication 3, dans
lequel une perméabilité (µ) dudit aimant permanent (4) est sensiblement égale à 1,
ledit aimant permanent (4) comprenant du samarium et du cobalt, et ledit noyau de
fer (1) comprend des plaquettes d'acier au silicium non-orientées.
5. Procédé pour le fonctionnement d'une bobine d'allumage selon la revendication 1 ou
2, dans lequel la magnétisation dans la direction opposée par ledit aimant permanent
(4) est limitée à 1,0 T.