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EP 2 422 896 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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13.11.2013 Bulletin 2013/46 |
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Date of filing: 03.01.2011 |
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International Patent Classification (IPC):
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Method for rotary compression of hollow parts by cross rolling
Verfahren zur Rotationsverdichtung von Hohlteilen durch Querwalzen
Procédé pour la compression rotative de parties creuses par laminage transversal
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
30.08.2010 PL 39227510
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Date of publication of application: |
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29.02.2012 Bulletin 2012/09 |
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Proprietor: Politechnika Lubelska |
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20-618 Lublin (PL) |
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Inventors: |
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- Pater, Zbigniew
20-258 Turka, Lublin (PL)
- Tomczak, Janusz
20-128 Lublin (PL)
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Representative: Tylinska, Irena et al |
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POLSERVICE
Kancelaria Rzeczników
Patentowych sp. z o.o.
Ul. Bluszczanska 73 00-712 Warszawa 00-712 Warszawa (PL) |
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References cited: :
DE-A1- 3 144 695 JP-A- 63 040 631
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JP-A- 59 120 336
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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] This invention relates to a method for rotary compression of hollow parts by cross
rolling, in particular of hollow shafts and axles. The notion of "hollow part" is
to be understood as a tubular element which has a cylindrical or shaped hole located
centrally along its axis.
[0002] JP-A-63040631 discloses a method for rotary compression of a hollow part by cross-rolling, in which
the hollow workpiece is clamped in a chuck and rolled by three working rolls, which
are moved radially towards the axis of the workpiece.
[0003] A great number of forming methods for hollow parts have been developed so far. The
most commonly used include, for instance, mechanical working processes - metal machining,
in which the required shape of the formed element is obtained by removing consecutive
material layers. The method for producing hollow parts in metal machining processes
has been described in the literature (
J. Kaczmarek "Podstawy obróbki wiórowej, ściemej i erozyjnej," WNT, Warszawa 1997). Plastic methods for forming hollow parts - hollow shafts, are also known, and they
include such processes as drawing, forging and punching, rotary swaging, rotary forging,
hydroforming, cold extrusion, cold extrusion with deep drilling as well as cross wedge
rolling. A detailed description of the above processes has been given in the literature
(
J. Bartnicki , Z. Pater "Walcowanie poprzeczno-klinowe wyrobów drażonych," Wydawnictwo
Politechniki Lubelskiej, Lublin 2005). The most accurate parts are obtained in drawing processes, whose application to
the forming of hollow parts is, however, limited owing to a small number of possibilities
as for shapes that can be obtained. The forging process is applicable only in the
case of forming shafts with large dimensions and masses. Punching is used for producing
thick-walled and short sleeves. Rotary swaging processes allow for reducing diameters
of rods and tubes. Elements formed thereby are noted for their high accuracy, and
if mandrel forged, they can have very accurate cylindrical and conical holes. Another
method for producing hollow parts is the process of hydrostatic drawing, which allows
for the production of complex geometry parts. In this method, a part is formed under
high pressure generated inside this part. Cold extrusion processes, in which metal
is extruded through a hole in a die, are also widely used in industries for producing
hollow parts. In recent years, a number of methods for forming hollow parts by cross
wedge rolling and wedge rolls rolling, have been developed. Both in cross wedge rolling
and in wedge rolls rolling at least one of the forming tools is either a flat wedge
or a roller wedge which drives into the blank and thus decreases its diameter, moving
some volume of the material to the sides. As a result, the product is elongated during
forming and its wall-thickness in the necking zone is decreased. This leads to the
weakening of the product in the rolled step area and necessitates the use of thick-walled
blanks which can only be hot formed. Additionally, the method requires the use of
complex wedge tools of large overall dimensions, which results in high implementation
costs of the cross wedge rolling technology.
The essence of the method for rotary compression of hollow parts by cross rolling,
especially of hollow axles and shafts, lies in that the hollow part to be formed -
the blank - in the form of a tube, is positioned on two powered working rolls - the
tools - , which rotate in the same direction with a first constant velocity, while
the third, upper roll rotates with the first constant velocity in the same direction
as the other rolls and radially moves in a reciprocating manner with a second constant
velocity, and as a result of this motion the rolls approach one another in such a
way so as to be positioned in the final phase of the sizing process at every 120°
+/- 20°, the preferable position being that at every 120°, then the plane motion of
the upper roll is stopped, and the three rotating rolls eventually correct shape inaccuracies
of the hollow part. As the blank sections of rod or tube sections are used, this allows
for rotary compression of such parts as hollow axles and shafts. The compression process
for hollow shafts and axles is done with or without a mandrel, which allows obtaining
accurate holes in the product or accurately shaped holes. The process is done with
three working rolls - the tools -, which rotate and move in a reciprocating manner
radially to the axis of the product.
[0004] One beneficial effect of the invention is that it allows for the application of simple
forming tools based on three rolls which can be manufactured at a relatively low cost
to produce such parts as hollow stepped shafts. Hollow parts are more and more often
used in machine constructions, in automotive industry, and particularly in aerospace
industry. Owing to the use of such parts, the construction mass of elements can be
decreased, while their strength and functional properties are at the same time retained.
For forming hollow shafts, thick-walled tubes can be used as the blank, which makes
additional drilling operations unnecessary as well as it eliminates material loss
which occurs during machining. Additionally, it is possible to obtain the finished
product - the stepped shaft, from the blank in the form of a tube section within one
plastic forming operation. Owing to the use of rotational forming tools - the rolls,
it is possible to roll products of different diameters by means of the same set of
working rolls. The formed hollow shaft will have a more advantageous structure, which
will improve strength properties of the part. Another beneficial effect of the invention
is the fact that during compression, the material flows mainly in the radial direction,
which increases the wall-thickness of the shaft in the necking zone and, thus, increases
strength properties of the part. One more beneficial effect of the method is its universality,
as the method can be used to form all metals and alloys which are suitable for metal
machining.
[0005] The method for rotary compression of hollow parts by cross rolling, especially of
hollow shafts and axles, has been schematically illustrated in two figures, where
Figure 1 presents both the beginning of the forming process for a hollow stepped shaft
and type of the blank used, while Figure 2 shows the end of the rolling process for
the hollow shaft as well as the hollow part obtained from the compression process.
[0006] The method for rotary compression of hollow parts, especially of hollow axles and
shafts, consists in positioning the blank
1 in the form of a tube section on two working rolls
2 and
3 - the tools. Next, the rolls
2 and
3 begin to rotate in the same direction with the first velocity n
1, and the upper roll
4 moves radially in a reciprocating manner with the second velocity
V towards the axis of the blank
1. As a result of the reciprocating motion of the upper roll
4, the rolls
2,
3,
4 - the tools - , relatively approach one another in such a way that in the final phase
of the sizing process they are positioned at every 120°. The rotational motion of
the working rolls
2,
3,
4 makes the blank
1 rotate around its axis with the third velocity
n2, at the same time the rolls
2,
3,
4 - the tools -, relatively shift in the radial direction forming on the surface of
the blank
1 a profile of the finished product
5. In the final phase of the process, when the part
5 reaches the assumed dimensions, the progressive motion of the upper roll
4 is stopped, while the three working rolls
2,
3,
4 still rotate and eventually form the ultimate shape of the rolled product
5 , removing surface irregularities which have occurred at the beginning of the process.
The shape of the rolling tools
2,
3 and
4 mirrors in the contact phase the shape of the finished product
5. The shape of the compressed hollow shaft is formed on the contact boundary of consecutive
points marked by the rotating tools, which allows for rolling of products of different
diameters.
1. A method for rotary compression of hollow parts by cross rolling, especially of hollow
shafts and axles, characterized in that the hollow part to be formed - the blank (1) - in the form of a tube is positioned
on two powered working rolls (2), (3) - the tools-, which rotate in the same direction with a first constant velocity
(n1), while a third, upper, roll (4) rotates with the first velocity (n1) in the same direction as the rolls (2) and (3) and radially moves in a reciprocating manner with a second velocity (V), and as a result of this motion the rolls ((2), (3), and (4)) approach one another and in the final phase of the sizing process they are positioned
at every 120° +/- 20°, the preferable position being that at every 120°, then the
plane motion of the roll (4) is stopped, and the rotating rolls ((2), (3) and (4)) eventually correct shape inaccuracies of the hollow part (5).
2. The method according to claim 1, characterized in that as the blank (1) sections of rod or tube sections are used, which allows for rotary
compression of parts (5) such as hollow axles and shafts.
3. The method according to claim 1, characterized in that the compression process for hollow shafts and axles is done with or without mandrel,
which allows obtaining accurate holes in the product (5) or shaped holes.
4. The method according to claim 1, characterized in that the process is done with three working rolls ((2), (3) and (4)) - the tools-, which rotate with the first velocity (n1) and move in a reciprocating manner with the second velocity (V) radially to the axis of the product (5).
1. Verfahren zum Drehverengen der Hohlwerkstücke durch Querwalzen, insbesondere der Hohlwellen
und -achsen, dadurch gekennzeichnet, dass das zu formende Hohlwerkstück - Rohling (1) - in Form eines Rohrs auf zwei angetriebenen Arbeitsrollen (2), (3) - Werkzeugen - angeordnet ist, die sich in derselben Richtung mit der ersten konstanten
Geschwindigkeit (n1) drehen, während eine dritte, obere Rolle (4) sich mit der ersten Geschwindigkeit (n1) in derselben Richtung, wie die Rollen (2) und (3) dreht und die hin- und hergehende Bewegung in der radialen Richtung mit der zweiten
Geschwindigkeit (V) ausführt, wobei sich die Rollen [(2), (3) und (4)] infolge dieser Bewegung zueinander nähern, damit sie in der Endphase des Kalibrierens
je 120° +/- 20° angeordnet sind, wobei die Anordnung je 120° bevorzugt wird, und dann
die Schubbewegung der Rolle (4) abgeschaltet wird und die sich drehenden Rollen [(2), (3) und (4)] die Ungenauigkeiten der Form der Hohlwerkstücke (5) endgültig korrigieren.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass als Rohling (1) Abschnitte von Stangen oder Röhren verwendet werden, was das Drehverengen der Werkstücke
(5) in Form der Hohlachsen und -wellen ermöglicht.
3. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass das Verfahren des Verengens der Hohlwellen und -achsen frei oder auf einer Dornstange,
die das Erreichen der genauen Öffnungen oder Formöffnungen im Erzeugnis (5) ermöglicht, durchgeführt wird.
4. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass das Verfahren mit drei Arbeitsrollen [(2), (3) und (4)] - Werkzeuge - durchgeführt wird, die sich mit der ersten Geschwindigkeit (n1) drehen und die Hin- und Herbewegung mit der zweiten Geschwindigkeit (V) radial zur Achse des Erzeugnisses (5) ausführen.
1. Procédé de sertissage rotatif des produits creux provenant du laminage transversal,
notamment des arbres et des essieux creux, caractérisé en ce que le produit creux formé - demi-produit (1) sous la forme de tube est placé sur deux rouleaux opératoires entraînés (2), (3) - outils-qui tournent dans la même direction avec la première vitesse constante,
(n1), et le troisième rouleau (4) - supérieur tourne avec la première vitesse (n1) dans la même direction que les rouleaux (2) et (3) et effectue un mouvement alternatif dans la direction radiale avec la deuxième vitesse
(V), à la suite de ce mouvement les rouleaux (2), (3) et (4) s'approchent mutuellement pour que dans la phase finale du processus - d'étalonnage
soient arrangés à chaque 120° +/- 20° la disposition à chaque 120° étant préferée,
alors le mouvement de coulissement du rouleau (4) s'arrête, et les rouleaux en rotation (2), (3) et (4) corrigent définitivement les inexactitudes de la forme du produit (5) creux.
2. Procédé selon la revendication 1, caractérisé en ce que le demi-produit (1) est sous la forme des sections de barres ou de tubes, qui permet à sertir les produits
(5) sous la forme d'essieux et d'arbres creux.
3. Procédé selon la revendication 1, caractérisé en ce que le processus de sertissage des arbres et des essieux creux est réalisé librement
ou sur un mandrin, qui permet d'obtenir des orifices précises dans le produit (5) ou des orifices profilés.
4. Procédé selon la revendication 1, caractérisé en ce que le processus est réalisé dans un système dans lequel les trois rouleaux (2), (3) et (4) opératoires - outils effectuent un mouvement rotatif avec la première vitesse (n1) et un mouvement alternatif dans la direction radiale avec la deuxième vitesse (V) par rapport à l'axe du produit (5).


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
Non-patent literature cited in the description
- J. KACZMAREKPodstawy obróbki wiórowej, ściemej i erozyjnejWNT, Warszawa, 1997, [0003]
- J. BARTNICKIZ. PATERWalcowanie poprzeczno-klinowe wyrobów drażonychWydawnictwo Politechniki Lubelskiej,
Lublin, 2005, [0003]