FIELD OF THE INVENTION
[0001] This invention relates to induction heaters for heating ring-like articles such as
bearings and the like which are required to be located over shafts, pipes and the
like.
BACKGROUND
[0002] Induction heating is well known in the art and has conventionally been achieved by
means of apparatus which constitutes a primary winding of a transformer with the bearing
ring forming the secondary winding. This is accomplished by providing a horseshoe
construction for the primary winding and having a connecting piece to complete the
circuit, the connecting piece being adapted to receive the bearing in inductive contact.
[0003] Many types of induction heaters are presently in use. Their use, however, is limited
by several disadvantages derived from the fact that induction heating presently involves
passing a high-power current, often of several kilowatts, through an inducting coil
to effect high heat in conducting metal; and the primary winding is generally of normal
supply frequency and is generally of substantial size which makes it difficult to
transport. Another disadvantage associated with prior art arrangements is that the
bearing requires to be demagnetised during or after the heating operation.
[0004] It is an object of the present invention to obviate some of the disadvantages of
the prior art and to provide apparatus which is easily portable and which does not
magnetise a bearing or ring unduly.
THE INVENTION
[0005] According to the invention, an induction heater for ring-like articles includes a
clamp-like magnetically permeable core having a hinged portion moveable between an
open and a closed position, the core permitting mounting of an article to be heated
around a portion of the core when the core is in the open position; a winding surrounding
the core for energising it, the winding forming the primary of a transformer system
with the article forming the secondary of the transformer system; and a power supply
connected to the primary winding surrounding the core, the induction heater being
characterised in that the power supply is a switched mode high frequency power supply
operating at a sufficiently high frequency so that low magnetic flux density is produced
in the core and the article to avoid the need for demagnetising the article after
it has been inductively heated.
[0006] In a preferred form the core comprises a ferrite material.
[0007] One important advantage of the present invention is that due to the novel use of
high frequency which may be generated by a compact high frequency generator, it can
be made as a very small unit which is easily transportable. The high frequency current
used, which involves low flux density in the core and bearing and in which the oscillations
die gradually due to the resonant mode of operation, means that little or no magnetisation
takes place and a demagnetisation step is avoided.
PRIOR ART STATEMENT
[0008] British Patent GB-A-1 454 783 discloses induction heating equipment for heating metallic
rings such as bearings, the equipment comprising a C-shaped core which constitutes
a primary coil with a flat surface of the body portion of the equipment. The flat
surface receives a bearing and when current is passed through the body and cores a
magnetic flux part is created through the bearing. This induced magnetism must, after
the heating and subsequent step, be removed and it is an object of the present invention
to provide equipment which avoids the necessity for the removal of magnetism in the
bearing, which can be a problem.
EMBODIMENT OF THE INVENTION
[0009] An embodiment of the invention is described below with reference to the accompanying
drawings, wherein:
Figure 1 is a diagrammatic, partially cutaway view of a heater for large bearings
or ring-like articles according to the invention;
Figure 2 is a diagrammatic, partially cutaway view of a heater for small bearings
or ring like articles according to the invention;
Figure 3 is a diagrammatic view of a temperature sensor for use in the invention;
Figure 4 is a diagrammatic view of the housing of the high frequency supply for use
in the invention; and
Figure 5 is a block diagram of a switch mode power supply for the heater.
[0010] Referring to Figures 1 and 2, a primary coil 10 is provided on ferrite cores 12,
which are hinged at 14 to enable a bearing or other ring-like article to be fitted
over either point A or point B. The primary coil 10 is associated with a switch mode
power supply 40, and is connected to this by means of connector 16. A diagrammatic
view of the housing for the switch mode power supply 40, is shown in Figure 4 and
a block diagram of the circuit is shown in Figure 5. The ferrite cores 12 are enclosed
in a heat resistant and non-electrically conductive housing 13.
[0011] Referring to Figure 3, two temperature sensitive I.C.'s 18, are mounted on a spring
clamp 20; one measures the temperature of the bearing, the other measures the ambient
or reference temperature. The two I.C.'s 18 are associated with the switch mode power
supply 40 and are connected to it by means of connector 22.
[0012] Referring to Figure 4, the switch mode power supply 40, is housed, in this embodiment
of the invention, in an aluminium case 24. The primary coil 10 is connected via socket
26 and the temperature sensors 18 are connected via socket 28. The mains supply is
connected through switch 30 and fuse 32. Temperature control of the sensors 18 is
effected by means of a potentiometer 34. The switch mode power supply 40 is activated
by push button 36 and an indication of the active state is made by the LED 38.
[0013] Referring to Figure 5, the mains current to the circuit of the switched mode power
supply 40, is rectified at 42 and smoothed using electrolytic capacitors 44 to produce
a smooth DC current. This supply is then used to power a self-oscillating inverter
circuit 46, the exact frequency of which is regulated by a control circuit 48, (the
inclusion of such a circuit will be obvious to those skilled in the art). The resulting
high voltage and high frequency current is then supplied to the primary coil 10, which
then heats up a load 50, that is to say a bearing or other ring-like article, which
is in inductive contact.
[0014] In one example of the invention, a ferrite core was selected which was suitable for
use at frequencies of 20KHZ. Type Philips A320 KP 9012 was used of size 94mm in length,
27mm in width and 16mm in thickness and several were assembled together to form the
heater as shown i Figure 1. These were wound with 15 turns of 2 x 1mm copper wire.
[0015] An auxiliary circuit is included to cause the main circuit to run at a frequency
that produces a power factor of 1 in the primary coil 10. This is to ensure that maximum
power is always delivered to the load 50. (Under variable load conditions the power
factor could change causing reduced power in the bearing or ring). This circuit also
has the function of causing the transistors to switch at zero current, thus reducing
losses in them.
[0016] Variable temperature settings are obtainable by means of the control 34 and at the
set temperature point, automatic switch off of the switch mode power supply 40 is
effected together with an audible buzzer. Measurement of the temperature rise can
be shown using a liquid crystal display.
[0017] If, while setting up a workpiece to be heated, the circuit across the temperature
sensor is incomplete or the temperature sensor is not fitted to the workpiece, a safety
circuit will disable the switch mode power supply thereby inhibiting activation of
said supply.
[0018] The invention allows high inductive heating with low power input.
1. An induction heater for ring-like articles including a clamp-like magnetically permeable
core (12) having a hinged portion (14) moveable between an open and a closed position,
the core permitting mounting of an article to be heated around a portion of the core
when the core is in the open position; a winding (10) surrounding the core for energising
it, the winding forming the primary of a transformer system with the article forming
the secondary of the transformer system; and a power supply (40) connected to the
primary winding (10) surrounding the core, the induction heater being characterised
in that the power supply is a switched mode high frequency power supply operating
at a sufficiently high frequency so that low magnetic flux density is produced in
the core and the article to avoid the need for demagnetising the article after it
has been inductively heated.
2. An induction heater according to Claim 1 characterised in that the core comprises
a ferrite material.
3. An induction heater according to Claim 1 characterised in that it further comprises
a housing (13) formed of heat resistant and non-electrically conductive material,
and wherein the housing encloses the core (12) and winding (10).
4. An induction heater according to any of the preceding Claims characterised in that
the switched mode power supply (40) includes a phase-locked loop.
1. Ein induktion Heizer für ringartige Produkte einschließlich eines klammerartigen magnetisch
durchdringbaren Kerns (12) mit einem scharnievtem Teil (14) mit öffnungs Möglickkeit
zwischen einer offenen und geschlossenen Position, der Kern ermögeicht das Plazieren
eines Produktes zum erheizen um einen Teil des Kerns wenn der Kern in einer offenen
Postion ist; einer Spulung (10) um den Kern für seine Energisierung, indem diese Spule
den primären Teil des transformer Systems bildet und das Produkt den sekondären Teil
des transformer System; und eine energie Quelle (40) angeschlossen an die den Kern
umringende primäre Spule (10), der induktions Heizer dadurch charakterisiert in dem
die energie Quelle eine hoch Frequenz energie Quelle - Schaetanlage ist die mit einer
genügent hohen Frequenz funktioniert um eine hedrige magnetische Fluß-Dichte in dem
Kern und dem Produkt zu produzieren und somit die Nögtigkeit einer Demagnetisierung
des Prodiktes zu vermeiden nachdem es induktionsartig erheizt wurde.
2. Einen induktion Heizer nach Anspruch 1 dadurch charakterisiert, daß der Kern aus ferritischem
Material besteht.
3. Einen induktion Heizer nach Anspruch 1 dadurch charakterisiert daß er noch ein Gehause
(13) enthält welches aus einem Hitze beständigem und elektrisch nicht leitendem Material
besteht und in dem das Gehäuse den Kern (12) und die Spule (10) umschließt.
4. Einen induktion Heizer nach jedem der vorgehenden Ansprüche dadurch charakterisiert
in dem die energie Quelle (40) eine Phasen haltende Schlinge enthält.
1. Un chauffage à induction pour chauffer un objet annulaire, qui comprend un noyau (12)
qui est magnétiquement perméable et ayant une portion pivotante (14) qui peut être
déplacé entre une position ouverte et une position fermeé; le noyau permettant à l'objet
d'être monté autour d'une portion de cela quand c'est en position ouverte; un bobinage
(10) entourant le noyau pour l'exciter, le bobinage formant la phase primaire d'une
système transformateur avec l'objet qui forme la secondaire de la système transformateur;
et un source d'energie électrique (40) étant raccordée au bobinage primaire (10) et
entourant le noyau; le chauffage à induction étant caractérisé par la fait que la
source d'energie est un contact de haute fréquence avec un mode d'interrupteur, qui
produit une fréquence suffisamment haute pour produire un flux magnétique de basse
tension dans le noyau et l'objet, afin d'eviter la nécessité pour démagnétisation
aprés qu'il ait été chauffé inductivement.
2. Un chauffage à induction selon revendication 1 se caractérisé dans le fait que le
noyau comprend un material ferrite.
3. Un chauffage à induction selon revendication 1 se caractérisé dans la fait que qu'en
plus il comprend aussi une réserve comprenant le noyau et la bobinage de chaleur résistante
et non conductive électriquement.
4. Un chauffage à induction selon aucun les revendications précédentes se caractérisé
par le fait que le contact de haute fréquence avec une mode d'interrupteur comprend
une phase d'interdiction en boucle.