[0001] The present invention relates to a magnetic circuit for a speaker used in an audio
system.
[0002] Fig. 20 shows a widely used cone speaker. The speaker comprises a yoke 51 having
a yoke base 53 and a cylindrical pole 52 formed on the yoke base 53, an annular top
plate 54, and a magnet 55 disposed between the yoke base 53 and the top plate 54.
A voice coil 56 is supported by a damper 60 and disposed in a magnetic gap
G between the pole 52 and the top plate 54 so as to be movable in the direction shown
by arrows
a and
b. A frame 57 is secured to the plate 54, and a diaphragm 59 is provided between an
edge 58 of the frame 57 and the voice coil 56. Reference numeral 61 designates a terminal
and 62 is a lead.
[0003] Referring to Fig. 21, the magnetic circuit is formed by the yoke 51, magnet 55 and
plate 54, each of which has a rectangular cross section. Consequently, the necessary
magnetic efficiency of magnetic flux φD in the gap
G is reduced by leakages of magnetic fluxes φA, φB and φC.
[0004] Furthermore, no effective measure is taken to prevent any leakage of magnetic flux.
Although the periphery of the magnet 55 serves as a magnetic guard against the magnetic
flux φA, upper and lower corners of the magnet have a small guarding effect.
[0005] Japanese Utility Model Publication 46-8272 discloses a magnetic circuit for a speaker
intended to prevent the reduction of the magnetic efficiency.
[0006] Fig. 22 shows the magnetic circuit disclosed in the publication. The yoke base 53
has a tapered underside 64 which serves to reduce the leakage of the magnetic flux
φA and φB. However, the tapered yoke base 64 has only a small effect to increase the
magnetic efficiency at the gap
G.
[0007] The United States Patent US-A-4 386 332 discloses a similar magnetic circuit for
a dynamic speaker. The circuit comprises an annularly-shaped magnet having the back
plate of a yoke coupled to a first surface of the magnet. The yoke has a center pole
extending from a central portion of the back plate passing through a hole in the annular
magnet. The magnet circuit further comprises an annular top plate coupled to a second
surface of the magnet, where an air gap is provided between the top plate and the
center pole.
[0008] An object of the present invention is to provide a magnetic circuit for a speaker
which may increase its magnetic efficiency, thereby improving tone quality of the
speaker.
[0009] Another object of the present invention is to provide a magnetic circuit which is
light in weight and may be manufactured at low cost.
[0010] According to the present invention, there is provided a magnetic circuit as defined
in claim 1.
[0011] In an embodiment of the invention, the magnet has a periphery having an outwardly
curved sectional shape.
[0012] The magnet, yoke base and top plate may all have peripheries having outwardly curved
sectional shapes respectively.
[0013] In another embodiment, at least one of the yoke base and the top plate has the inwardly
curved periphery.
[0014] The magnet according to another embodiment may have a periphery having a sectional
shape combining straight lines.
[0015] Other objects and advantages of this invention will become understood from the following
description with reference to the accompanying drawings.
BRIEF DESCRIPTION OF DRAWINGS
[0016]
Fig. 1 is a sectional view showing a magnetic circuit according to an embodiment of
the present invention;
Fig. 2 is a sectional view of a second embodiment;
Figs. 3 is a sectional view showing a third embodiment;
Fig. 4 is an illustration showing lines of the magnetic force generated in the first
embodiment;
Fig. 5 is an illustration showing lines of the magnetic force generated in the conventional
magnetic circuit;
Figs. 6, 7a and 7b are sectional views showing modifications of the sectional shape;
Fig. 8 is a sectional view of a fourth embodiment;
Fig. 9 is a sectional view showing a modification of the fourth embodiment;
Fig. 10 is a sectional view for explaining effects of tapered portions;
Fig. 11 is an illustration showing lines of the magnetic force generated in the magnetic
circuit of Fig. 9;
Fig. 12 is a table for comparing performance and weight of the magnetic circuit of
Fig. 9 with conventional magnetic circuits;
Fig. 13 to 19 are sectional views showing fifth to eleventh embodiments of the present
invention;
Fig. 20 is a sectional view showing a conventional cone speaker;
Figs. 21 and 22 are sectional views showing sectional shapes of magnetic circuits
in prior arts.
[0017] Referring to Fig. 1, the magnetic circuit according to the present invention comprises
a yoke 1 having a yoke base 2 and a cylindrical pole 3 having an aperture 3a, an annular
magnet 4 mounted cn the yoke base 2, and an annular top plate 5. The magnet 4 is secured
to the yoke base 2 with adhesive, and the top plate 5 is also secured to the magnet
with adhesive. The magnetic circuit has a compressed spherical periphery. Namely,
the yoke base 2 has a convex periphery 2a and the top plate 5 also has a convex periphery
5a, and the periphery 4a of the magnet 4 has an outwardly curved sectional shape.
[0018] In the magnetic circuit shown is Fig. 2, a solid pole 6 is formed on the yoke base
2. The yoke base 2 of the third embodiment shown in Fig. 3 has an annular recess 7
on the inside wall thereof, for allowing large axial movement of the voice coil, which
is designed to be used for the woofer. A pole piece 8 is mounted on the pole 3.
[0019] Referring to Fig. 4 showing lines of magnetic force generated in the magnetic circuit
of Fig. 1, most of magnetic lines gl of force generated from the north pole of the
magnet 4 enter in the plate 5 and are led to the gap
G as magnetic flux g2. Magnetic flux g3 in the gap
G is induced in the pole 3 and the yoke base 2 as magnetic flux g4 and led to the south
pole of the magnet 4.
[0020] Since the periphery of the magnet has an outwardly curved sectional shape, the magnetic
flux gl in the magnet 4 is led to the plate 5 along the periphery. Consequently, magnetic
flux density is high in the gap
G as indicated by the equal magnetic flux density contours L1∼L4. On the other hand,
leakages φ1 and φ2 of magnetic flux outside the magnet 4, plate 5 and yoke 2 are low
in density.
[0021] To the contrary, the conventional magnetic circuit has a low magnetic flux density
in the gap
G and a large leakage φ1 and φ2 of magnetic flux as shown in Fig. 5.
[0022] In a magnetic circuit according to the first embodiment having a magnet radius of
65 mm, a maximum magnetic flux density in the gap
G is 1,312 tesla. In the conventional magnetic circuit of Fig. 21 having the same magnetic
radius as the first embodiment, a maximum magnetic flux density in the gap
G is 1,309 tesla, because of a large amount of the leakage φA and the leakage φC of
the magnetic flux from the plate 54 to the pole 52.
[0023] In addition, the weight of the magnetic circuit of the present invention is reduced
by 20 % of the weight of the conventional magnetic circuit, since edges of the yoke
base 2, magnet 4 and plate 5 are rounded. Accordingly, expensive magnetic material
is reduced in quantity to lower the manufacturing cost thereof. Furthermore, the magnetic
flux density in the magnet 4 is more equalized, so that reduction of magnetization
at low temperature is prevented.
[0024] Although each of the peripheries of the magnetic circuits of Figs. 1 to 3 has a continuously
curved sectional shape, a discontinuous periphery may be employed as shown in Figs.
6, 7a and 7b.
[0025] Each of the magnetic circuit of Figs. 1 to 3 is a solid of revolution about a center
line
ℓ. However, another magnetic circuit having a square shape or ellipse shape in plan
view may be used in embodying the present invention, too.
[0026] Referring to Fig. 8 showing the fourth embodiment, the periphery of a yoke base 17
of yoke 15 has a tapered surface 17a, and a top plate 18 has a tapered surface 18a.
A solid pole 16 is formed on the yoke 15. Each of the tapered surfaces 17a and 18a
is inwardly curved.
[0027] Since the outer periphery of the tapered surface 17a (18a), which has a circular
shape in section, has a small thickness, leakage φB from the circular periphery can
be prevented or reduced to a very small amount.
[0028] Fig. 9 shows a most preferable tapered surface. The periphery of each of the yoke
base 17 and the top plate has no circular sectional shape. Namely, the inwardly curved
surface converges on the surface of a magnet 19.
[0029] The magnetic flux and dimension of the magnetic circuit of Fig. 9 will be described
with reference to Fig. 10. In the figure, X1 designates the outer radius of the magnet
19, X2 represents the inner radius, X3 the radius of the pole 16. Thickness
t of the yoke base 17 at which inner magnetic flux density Bi becomes constant will
be obtained as described hereinafter. Here it is assumed that all of the magnetic
flux in the magnet 19 flows in the yoke 15, hence there is no leakages φA and φB.
1. When X2≦X≦X1, magnetic flux between X and X1 is

[0030] Magnetic flux in the tapered portion of the yoke base 17 is

[0031] Since φm=φi,

[0032] Therefore

[0033] When X3≦X≦X2, magnetic flux between X and X1 is

[0034] Magnetic flux in the tapered portion of the yoke base 17 is

[0035] Therefore

[0036] When X=X1,


[0037] These are the conditions which define the dimensions of the yoke base.
[0038] The following is the analysis of these conditions.
[0039] When X2≦X≦X1,

(c1 and c2 are constants).
[0040] Consequently, the tapered portion of the yoke base becomes an inwardly curved sectional
shape.
[0041] When X3≦X≦X2,

(c3 is a constant)
[0042] Therefore, in this case also, the tapered portion becomes inwardly curved.
[0043] The above values are obtained on the assumption that the leakage of the magnetic
flux φA does not exist. Actually a part of the flux does not pass through the pole
16 because of the leakage φA. Therefore, the value of the increasing rate of the thickness
t is smaller than the above equations. However, the conditions for forming an inwardly
curved sectional shape do not change. This is confirmed by numerical calculation,
for example by the finite element method.
[0044] The above theory is also applied to the tapered portion of the plate 18.
[0045] Fig. 11 shows a distribution of the magnetic flux in the magnetic circuit of Fig.
9. The same references as in Fig. 4 are used.From the figure, it will be understood
that a high density of magnetic flux is obtained in the gap
G.
[0046] Fig. 12 shows magnetic flux densities and weight of prior arts 1 and 2 and the present
invention. In the table, Bg represents the averaged magnetic flux density in the gap
G, φg is the magnetic flux in the gap, and φm is a total magnetic flux in the magnet.
It will be seen that the magnetic flux density of the present invention is higher
than in the prior arts 1 and 2 and the magnetic circuit of the present invention is
lighter than the prior arts in weight.
[0047] The magnetic circuit of Fig. 13 has a recess 16a in the underside of the pole 16
in order to reduce the weight thereof.
[0048] In the sixth embodiment shown in Fig. 14, an additional recess 16b is formed in the
upperside of the pole 16 so as to further reduce the weight. Since each of the recesses
16a and 16b has a curved inner surface, leakage of magnetic flux therefrom can be
reduced.
[0049] The magnetic circuit of Fig. 15 has a perforation 16c in the pole 16.
[0050] The magnet 19 of the magnetic circuit shown in Fig. 16 has an outwardly curved sectional
shape similar to the first embodiment of Fig. 1.
[0051] Figs. 17 to 19 show various sectional shapes of the magnet circuit, wherein the magnet
can have a periphery shaped as adjoining straight lines so as to project outwardly,
for example a periphery of trapezoidal sectional shape.
[0052] While the presently preferred embodiments of the present invention have been shown
and described, it is to be understood that this disclosure is for the purpose of illustration
and that various changes and modifications may be made without departing from the
scope of the invention as defined in the claims.
1. A magnetic circuit for a speaker having a yoke base (2; 17), a cylindrical pole piece
(3; 16) formed on the yoke base (2; 17), an annular magnet (4; 19) mounted on the
yoke base (2; 17) and an annular top plate (5; 18) mounted on the magnet (4; 19) so
as to form a gap G between the inside wall of the top plate (4; 19) and the opposed outer wall of the
cylindrical pole piece (3; 16);
characterized in that a longitudinal cross-section containing the center line (1 ) of at least one of the yoke base (2; 17), the magnet (4; 19) and the top plate
(5; 18) has a curved periphery (2a, 4a, 5a, 11a, 11b, 11c, 17a, 18a, 19a).
2. The magnetic circuit according to claim 1, wherein the curved periphery (2a, 4a, 5a)
is outwardly curved.
3. The magnetic circuit according to claim 1, wherein the curved periphery (17a, 18a)
is at least partially inwardly curved.
4. The magnetic circuit according to claim 2, wherein the cross-section of the magnet
(4) has an outwardly curved periphery (4a).
5. The magnetic circuit according to claim 2, wherein the cross-section of the magnet
(4) and one of the yoke base (2) and top plate (5) have outwardly curved peripheries
(4a, 2a, 5a).
6. The magnetic circuit according to claim 2, wherein the cross-section of the magnet
(4), the yoke base (2) and the top plate (5) have outwardly curved peripheries (4a,
2a, 5a).
7. The magnetic circuit according to claim 3, wherein the cross-section of at least one
of the yoke base (17) and the top plate (18) has the at least partially inwardly curved
periphery (17a, 18a).
8. The magnetic circuit according to claim 7, wherein the cross-section of one of the
yoke base (17) and the top plate (18) has a circular periphery at its outer portion
adjacent to the magnet.
9. The magnetic circuit according to claim 7, wherein the inwardly curved periphery (17a,
18a) converges to a surface of the magnet (19).
10. The magnetic circuit according to claim 7, wherein the cross-section of the magnet
(19) has an outwardly curved periphery.
11. The magnetic circuit according to claim 7, wherein the cross-section of the magnet
(19) has a periphery shaped as adjoining straight lines so as to project outwardly.
1. Magnetkreis für einen Lautsprecher, der folgendes aufweist:
- eine Jochbasis (2; 17),
- einen zylindrischen Polschuh (3; 16), der an der Jochbasis (2; 17) ausgebildet ist,
- einen ringförmigen Magneten (4; 19), der an der Jochbasis (2; 17) angebracht ist,
und
- eine ringförmige obere Platte (5; 18), die an dem Magneten (4; 19) angebracht ist,
wobei diese Teile einen Spalt
G zwischen der inneren Wand der oberen Platte (4; 19) und der gegenüberliegenden äußeren
Wand des zylindrischen Polschuhs (3; 16) bilden;
dadurch gekennzeichnet,
daß ein Längs-Querschnitt, der die Mittellinie (1) von wenigstens einem von der Jochbasis
(2; 17), dem Magneten (4; 19) und der oberen Platte (5; 18) enthält, eine gekrümmte
Peripherie (2a, 4a, 5a, 11a, 11b, 11c, 17a, 18a, 19a) hat.
2. Magnetkreis nach Anspruch 1,
wobei die gekrümmte Peripherie (2a, 4a, 5a) nach außen gekrümmt ist.
3. Magnetkreis nach Anspruch 1,
wobei die gekrümmte Peripherie (17a, 18a) wenigstens teilweise nach innen gekrümmt
ist.
4. Magnetkreis nach Anspruch 2,
wobei der Querschnitt des Magneten (4) eine nach außen gekrümmte Peripherie (4a) hat.
5. Magnetkreis nach Anspruch 2,
wobei die Querschnitte von dem Magneten (4) und einer von der Jochbasis (2) oder der
oberen Platte (5) nach außen gekrümmte Peripherien (4a, 2a, 5a) haben.
6. Magnetkreis nach Anspruch 2,
wobei die Querschnitte des Magneten (4), der Jochbasis (2) und der oberen Platte (5)
nach außen gekrümmte Peripherien (4a, 2a, 5a) haben.
7. Magnetkreis nach Anspruch 3,
wobei der Querschnitt von wenigstens einer von der Jochbasis (17) und der oberen Platte
(18) eine wenigstens teilweise nach innen gekrümmte Peripherie (17a, 18a) hat.
8. Magnetkreis nach Anspruch 7,
wobei der Querschnitt von wenigstens einer von der Jochbasis (17) oder der oberen
Platte (18) in seinem äußeren, an den Magneten angrenzenden Bereich eine kreisförmige
Peripherie hat.
9. Magnetkreis nach Anspruch 7,
wobei die nach innen gekrümmte Peripherie (17a, 18a) zu einer Oberfläche des Magneten
(19) konvergiert.
10. Magnetkreis nach Anspruch 7,
wobei der Querschnitt des Magneten (19) eine nach außen gekrümmte Peripherie hat.
11. Magnetkreis nach Anspruch 7,
wobei der Querschnitt des Magneten (19) eine Peripherie hat, die in ihrer Form von
aneinander angrenzenden Geraden gebildet wird, derart, daß diese nach außen vorstehen.
1. Circuit magnétique pour un haut-parleur ayant une base de culasse (2 ; 17), une pièce
polaire cylindrique (3 ; 16) formée sur la base de culasse (2 ; 17), un aimant annulaire
(4 ; 19) monté sur la base de culasse (2 ; 17) et une plaque sommitale annulaire (5
; 18) montée sur l'aimant (4 ; 19) de façon à former un intervalle G entre la paroi
intérieure de la plaque sommitale (4 ; 19) et la paroi extérieure opposée de la pièce
polaire cylindrique (3 ; 16) ;
caractérisé en ce qu'une section transversale longitudinale contenant la ligne centrale
(1) d'au moins l'un de la base de culasse (2 ; 17), de l'aimant (4 ; 19) et de la
plaque sommitale (5 ; 18) a une périphérie incurvée (2a, 4a, 5a, 11a, 11b, 11c, 17a,
18a, 19a).
2. Circuit magnétique selon la revendication 1, dans lequel la périphérie incurvée (2a,
4a, 5a) est incurvée vers l'extérieur.
3. Circuit magnétique selon la revendication 1, dans lequel la périphérie incurvée (17a,
18a) est au moins partiellement incurvée vers l'intérieur.
4. Circuit magnétique selon la revendication 2, dans lequel la section transversale de
l'aimant (4) a une périphérie incurvée vers l'extérieur (4a).
5. Circuit magnétique selon la revendication 2, dans lequel la section transversale de
l'aimant (4) et de l'une de la base de culasse (2) et de la plaque sommitale (5) ont
des périphéries incurvées vers l'extérieur (4a, 2a, 5a).
6. Circuit magnétique selon la revendication 2, dans lequel les sections transversales
de l'aimant (4), de la base de culasse (2) et de la plaque sommitale (5) ont des périphéries
incurvées vers l'extérieur (4a, 2a, 5a).
7. Circuit magnétique selon la revendication 3, dans lequel la section transversale d'au
moins l'une de la base de culasse (17) et de la plaque sommitale (18) a une périphérie
incurvée au moins partiellement vers l'intérieur (17a, 18a).
8. Circuit magnétique selon la revendication 7, dans lequel la section transversale de
l'une de la base de culasse (17) et de la plaque sommitale (18) a une périphérie circulaire
au niveau de sa portion extérieure adjacente à l'aimant.
9. Circuit magnétique selon la revendication 7, dans lequel la périphérie incurvée vers
l'intérieur (17a, 18a) converge vers une surface de l'aimant (19).
10. Circuit magnétique selon la revendication 7, dans lequel la section transversale de
l'aimant (19) a une périphérie incurvée vers l'extérieur.
11. Circuit magnétique selon la revendication 7, dans lequel la section transversale de
l'aimant (19) a une périphérie formée par des lignes droites se rejoignant de façon
à se projeter vers l'extérieur.