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EP 2 102 387 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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27.01.2016 Bulletin 2016/04 |
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Date of filing: 27.11.2007 |
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International Patent Classification (IPC):
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International application number: |
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PCT/SE2007/050904 |
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International publication number: |
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WO 2008/073031 (19.06.2008 Gazette 2008/25) |
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METHOD FOR THE HEATING OF ANODE BLOCKS, AND AN ARRANGEMENT FOR THE HEATING OF ANODE
BLOCKS.
VERFAHREN ZUM ERHITZEN VON ANODENBLÖCKEN UND ANORDNUNG ZUM ERHITZEN VON ANODENBLÖCKEN
PROCÉDÉ POUR LE CHAUFFAGE DE BLOCS ANODIQUES, ET CONCEPTION DU CHAUFFAGE DE BLOCS
ANODIQUES
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC MT NL PL PT RO
SE SI SK TR |
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Priority: |
15.12.2006 SE 0602707
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Date of publication of application: |
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23.09.2009 Bulletin 2009/39 |
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Proprietor: Sandvik Intellectual Property AB |
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811 81 Sandviken (SE) |
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Inventors: |
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- DANIELSSON, Örjan
722 46 Västerås (SE)
- SPRINGMANN, Stefan
734 40 Hallstahammar (SE)
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References cited: :
WO-A1-01/61260 SE-B- 395 214 US-A- 4 394 566
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WO-A1-95/06145 US-A- 4 347 661 US-A- 4 574 019
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- DATABASE WPI Week 200434 Thomson Scientific, London, GB; AN 2004-362214 XP002589959
-& JP 2004 139769 A (ARUBA JAPAN KK) 13 May 2004 (2004-05-13)
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The present invention relates to a method for the heating of anode blocks, and to
an arrangement for the heating of anode blocks.
[0002] During the production process for primary aluminium, objects known as "anode blocks"
are used. The blocks consist of granulated graphite. Holes are present in these blocks
in order to attach electrical contacts of iron, known as "yokes", by moulding. The
sizes of the blocks may vary, and the number of contact holes into which contacts
are to be attached may also vary. There is normally between three and six holes. The
blocks may have different dimensions: the dimensions may, for example, be 1300 x 500
x 500 millimetre.
[0003] The anode blocks are exchanged at regular intervals. The anode blocks are then renovated
and stored until they are to be reused.
[0004] Water can collect in the holes in the blocks as a result of precipitation, since
the blocks are often stored outdoors, to a certain extent. The blocks, furthermore,
are also exposed to moist air. Water is sucked into the blocks, or is absorbed into
the blocks, since the material of the blocks is porous.
[0005] Water must be removed and the blocks must be dried before a secure attachment of
contacts by moulding can be carried out. This is currently carried out through first
the removal of liquid water by blowing with pressurised air, and then the heating
of the block with the aid of gas burners in order to dry it. The problem with this
procedure is that the gas in the burners contains a certain amount of water vapour
that initially condenses onto the block before the temperature of the block has been
sufficiently raised. A result of this is that it takes far too long to dry the blocks.
[0006] Document
US4347661 discloses a method where the holes are heated by means of inductive heat from electrical
heat inductive coils.
[0007] It is one requirement that the drying time be considerably reduced. The present invention
solves this problem.
[0008] The present invention thus relates to a method for heating anode blocks, which anode
blocks are used in the production of aluminium and comprise contact holes into which
it is arranged that electrical contacts are to be attached, and it is characterised
in that the holes are caused to be heated by means of radiative heat from electrical
resistive elements arranged to be used at high temperatures, in that the wire of the
elements is in the form of shanks with two or more legs, in that each one of the elements
is caused to be arranged in a cup with an open end surface, and in that one cup for
each hole in the anode block is caused to lie in front of the hole in question.
[0009] Furthermore, the invention relates to an arrangement of the type and with the principal
characteristics specified by patent claim 5.
[0010] The invention will be described in more detail below, partially with reference to
an embodiment of the invention shown in the attached drawings, where:
- Figure 1 shows an arrangement according to the invention seen from the side with an
anode block that lies beneath it,
- Figures 2 and 3 show different perspective sketches of the arrangement according to
the invention and an anode block.
[0011] Figure 1 shows an arrangement 1 for the heating of anode blocks 2, which anode blocks
are used during the production of aluminium and which comprise contact holes 3 into
which it is arranged that electrical contacts are to be attached.
[0012] According to the invention, the arrangement 1 comprises electrical resistive elements
4, 5, 6, shown in Figure 3, arranged to be used at high temperatures. It is preferred
to use resistive elements that are manufactured by KANTHAL AB, Sweden, and that are
marketed under the name "Kanthal Super". This element can be heated in operation up
to 1900 °C. The wires of the elements 4-6 are formed as shanks with two or more legs.
Each one of the elements 4-6 is arranged in a cylindrical cup 7, 8, 9 with an open
end surface. It is preferable that the cup is cylindrical. The cups 7-9 with the resistive
elements 4-6 are equal in number to the number of holes 3 in the anode block 2. The
cups 7-9 are placed into a holder 10 that is common for all cups such that one cup
7-9 for each hole 3 in the anode block 2 is caused to lie in front of the hole 3 in
question.
[0013] The use by this arrangement of radiative heat from high-temperature elements entails
a method of heating of much greater efficiency than the previous art technology that
has been described, since no water is added at the beginning of the heating process.
A much higher power can be achieved over a limited surface through the use of high-temperature
elements, and this also contributes to a more rapid heating and drying of the anode
blocks.
[0014] According to one preferred embodiment of the invention, the said elements are caused
to be a high-temperature element.
[0015] According to another preferred embodiment, the said cup is caused to be of a fibre
insulation material comprising Al
2O
3 and/or SiO
2.
[0016] According to a further preferred embodiment, each resistive element is caused to
develop a power of approximately 10-20 kW.
[0017] According to another further preferred embodiment, the distance between the said
open end surface and the anode block is caused to exceed a couple of millimetres and
to lie below a couple of centimetres.
[0018] This method has been shown to be able to reduce significantly the drying time for
anode blocks from that required by the prior art technology. The drying time is as
short as approximately 4 minutes with the dimensions of the anode block given above
as examples.
[0019] The present invention thus solves the problem described in the introduction.
[0020] It has, in addition, proved to be the case when testing the arrangement that the
drying time can be further reduced by blowing air, in association with the heating
process, through the cups down into the holes of the anode block using a suitable
and previously known blowing arrangement.
[0021] The present invention is not by any means limited to a method or an arrangement to
be used with anode blocks having three holes. The invention can be used for all designs
of anode block with holes.
[0022] Several embodiments have been described above. However, the invention can be varied
in ways that will be obvious for one skilled in the art, and thus the invention is
not to be seen as limited to the embodiments described above, since it can be varied
within the scope of the attached patent claims.
1. A method for heating anode blocks, which anode blocks (2) are used in the production
of aluminum and comprise contact holes (3) into which it is arranged that electrical
contacts are to be attached, characterised in that the holes (3) are caused to be heated by means of radiative heat from electrical
resistive elements (4, 5, 6) arranged to be used at high temperatures, in that the wire of the elements (4, 5, 6) is in the form of shanks with two or more legs,
in that each one of the elemets (4, 5, 6) is caused to be arranged in a cup (7, 8, 9) with
an open end surface, in that one cup (7, 8, 9) for each hole (3) in the anode block (2) is caused to lie in front
of the hole in question (3) and in that the said cup (7, 8, 9) is caused to be of a fibre insulating material comprising
Al2O3 and/or SiO2.
2. A method according to claim 1, characterised in that said elements (4, 5, 6) are caused to be high-temperature element.
3. A method according to claim 1 or 2, characterised in that each resistive element (4, 5, 6) is caused to develop a power of approximately 10-20
kW.
4. An arrangement for the heating of anode blocks, which anode blocks (2) are used in
the production of aluminium and comprise contact holes (3) into which it is arranged
that electrical contacts are to be attached, characterised in that the arrangement comprises electrical resistive elements (4, 5, 6) arranged to be
used at high temperature, in that the wire of the elements (4, 5, 6) is in the form of shanks with two or more legs,
in that each one of the elements (4, 5, 6) is arranged in a cup (7, 8, 9) with an open end
surface, in that the cups (7, 8, 9) with the resistive elements (4, 5, 6) are equal in number to the
number of holes (3) in the anode block (2), and in that the cups (3) are placed in a holder (10) that is common for all the cups such that
one cup (7, 8, 9) for each hole (3) in the anode block (2) is caused to lie in front
of the hole in question (3) and in that the said cup (7, 8, 9) is manufactured from a fibre insulating material comprising
Al2O3 and/or SiO2.
5. An arrangement according to claim 4, characterised in that the said element (4, 5, 6) is a high-temperature element.
6. An arrangement according to claim 4 or 5, characterised in that each resistive element (4, 5, 6) is arranged to develop a power of approximately
10-20 kW.
1. Verfahren zum Heizen von Anodenblöcken, wobei die Anodenblöcke (2) bei der Herstellung
von Aluminium verwendet werden und Kontaktbohrungen (3) aufweisen, in welchen Vorkehrungen
für die Anbringung von elektrischen Kontakten getroffen sind, dadurch gekennzeichnet, dass bewirkt wird, dass die Bohrungen mit Hilfe von Strahlungswärme von elektrischen Widerstandselementen
(4, 5, 6) erhitzt werden, welche für die Verwendung bei hohen Temperaturen ausgelegt
sind, dass der Draht der Elemente (4, 5, 6) in Form von Bügeln mit zwei oder mehr
Schenkeln vorliegt, dass jedes der Elemente (4, 5, 6) in einem Napf (7, 8, 9) mit
einer offenen Stirnfläche angeordnet ist, dass ein Napf (7, 8, 9) für jede Bohrung
(3) in dem Anodenblock (2) vor der in Rede stehenden Bohrung (3) liegt, und dass bewirkt
wird, dass der Napf (7, 8, 9) aus einem isolierenden Fasermaterial besteht, welches
Al2O3 und/oder SiO2 aufweist.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass bewirkt wird, dass die Elemente (4, 5, 6) Hochtemperaturelemente sind.
3. Verfahren nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass bewirkt wird, dass jedes Widerstandselement (4, 5, 6) eine Leistung von etwa 10-20
kW entwickelt.
4. Anordnung für das Heizen von Anodenblöcken, wobei die Anodenblöcke (2) bei der Herstellung
von Aluminium verwendet werden und Kontaktbohrungen (3) aufweisen, welche so ausgelegt
sind, dass elektrische Kontakte darin angebracht werden können, dadurch gekennzeichnet, dass die Anordnung aufweist, dass die elektrischen Widerstandselemente (4, 5, 6) für die
Verwendung bei hoher Temperatur ausgelegt sind, dass der Draht der Elemente (4, 5,
6) in Form von Bügeln mit zwei oder mehr Schenkeln vorliegt, dass jedes der Elemente
(4, 5, 6) in einem Napf (7, 8, 9) mit einer offenen Stirnfläche angeordnet ist, dass
die Näpfe (7, 8, 9) mit den Widerstandselementen (4, 5, 6) gleich der Anzahl der Bohrungen
(3) in dem Anodenblock (2) sind, und dass die Näpfe (3) in einem Halter (10) angeordnet
sind, der für alle Näpfe derselbe ist, sodass ein Napf (7, 8, 9) für jede Bohrung
(3) in dem Anodenblock (2) vor der in Rede stehenden Bohrung (3) liegt, und dass der
Napf (7, 8, 9) aus einem isolierenden Fasermaterial hergestellt ist, welches Al2O3 und/oder SiO2 aufweist.
5. Anordnung nach Anspruch 4, dadurch gekennzeichnet, dass das Element (4, 5, 6) ein Hochtemperaturelement ist.
6. Anordnung nach Anspruch 4 oder 5, dadurch gekennzeichnet, dass jedes Widerstandselement (4, 5, 6) so ausgelegt ist, dass es eine Leistung von in
etwa 10-20 kW entwickelt.
1. Procédé pour chauffer des blocs anodiques, lesquels blocs anodiques (2) sont utilisés
dans la production de l'aluminium et comprennent des trous de contact (3) dans lesquels
on agence des contacts électriques qui doivent être fixés, caractérisé en ce que les trous (3) sont amenés à être chauffés au moyen de chaleur rayonnante à partir
d'éléments électriques résistifs (4, 5, 6) agencés pour être utilisés à des températures
élevées, en ce que le fil des éléments (4, 5, 6) se présente sous la forme de tiges avec deux pattes
ou plus, en ce que chacun des éléments (4, 5, 6) est amené à être agencé dans une coupelle (7, 8, 9)
avec une surface d'extrémité ouverte, en ce qu'une coupelle (7, 8, 9) pour chaque trou (3) dans le bloc anodique (2) est amenée à
être positionnée en face du trou en question (3) et en ce que ladite coupelle (7, 8, 9) est amenée à être un matériau isolant en fibres comprenant
Al2O3 et/ou SiO2.
2. Procédé selon la revendication 1, caractérisé en ce que lesdits éléments (4, 5, 6) sont amenés à être un élément à haute température.
3. Procédé selon la revendication 1 ou 2, caractérisé en ce que chaque élément résistif (4, 5, 6) est amené à développer une puissance d'approximativement
10 - 20 kW.
4. Agencement pour le chauffage de blocs anodiques, lesquels blocs anodiques (2) sont
utilisés dans la production de l'aluminium et comprennent des trous de contact (3)
dans lesquels on agence des contacts électriques qui doivent être fixés, caractérisé en ce que l'agencement comprend des éléments électriques résistifs (4, 5, 6) agencés pour être
utilisés à des températures élevées, en ce que le fil des éléments (4, 5, 6) se présente sous la forme de tiges avec deux pattes
ou plus, en ce que chacun des éléments (4, 5, 6) est agencé dans une coupelle (7, 8, 9) avec une surface
d'extrémité ouverte, en ce que les coupelles (7, 8, 9) avec les éléments résistifs (4, 5, 6) sont égales en nombre
au nombre de trous (3) dans le bloc anodique (2) et en ce que les coupelles (3) sont placées dans un support (10) qui est commun pour toutes les
coupelles de sorte qu'une coupelle (7, 8, 9) pour chaque trou (3) dans le bloc anodique
(2) est amenée à être positionnée en face du trou en question (3) et en ce que ladite coupelle (7, 8, 9) est fabriquée à partir d'un matériau isolant en fibres
comprenant Al2O3 et/ou SiO2.
5. Agencement selon la revendication 4, caractérisé en ce que ledit élément (4, 5, 6) est un élément à haute température.
6. Agencement selon la revendication 4 ou 5, caractérisé en ce que chaque élément résistif (4, 5, 6) est agencé pour développer une puissance d'approximativement
10 - 20 kW.

REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description