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EP 0 625 086 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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02.04.1997 Bulletin 1997/14 |
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Date of filing: 25.01.1993 |
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International Patent Classification (IPC)6: B26D 7/08 |
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International application number: |
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PCT/GB9300/159 |
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International publication number: |
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WO 9314/912 (05.08.1993 Gazette 1993/19) |
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IMPROVEMENTS RELATING TO CUTTING DEVICES
Verbesserungen an Ultraschallmesser
PERFECTIONNEMENTS DES DISPOSITIFS DE DECOUPE
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Designated Contracting States: |
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AT CH DE FR GB IT LI |
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Priority: |
28.01.1992 GB 9201785
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Date of publication of application: |
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23.11.1994 Bulletin 1994/47 |
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Proprietor: RAWSON, Francis Frederick Hamilton |
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Queniborough,
Leicester LE7 8PF (GB) |
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Inventor: |
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- RAWSON, Francis Frederick Hamilton
Queniborough,
Leicester LE7 8PF (GB)
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Representative: Lally, William et al |
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FORRESTER & BOEHMERT
Franz-Joseph-Strasse 38 80801 München 80801 München (DE) |
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References cited: :
DE-A- 2 504 019 GB-A- 2 219 245
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GB-A- 2 079 213
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- PATENT ABSTRACTS OF JAPAN vol. 14, no. 510 (M-1045)8 November 1990 & JP-A-22 12 097
( MARINE INSTR CO: LTD ) 23 August 1990
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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).
|
Description of Invention
[0001] This invention is concerned with improvements relating to cutting devices, particularly
cutting devices which are operative at high (ultrasonic) frequency.
[0002] There is disclosed in DE-A-2504019 a cutting member which is secured at an axial
plane to a source of ultrasonic vibrations, the cutting member comprising a cutting
element which extends radially from the cutting member.
[0003] According to this invention there is provided a cutting device comprising:
[a] a generally annular cutting member having on one side of a diametral plane a driving
face to be attached to a source of ultrasonic vibrations, said vibrations acting in
a direction radially of the member; and
[b] a cutting edge extending circumferentially of the cutting member on the other
side of said diametral plane.
[0004] Preferably the cutting member, whilst being generally annular, is provided in its
outer surface with "flats", or surfaces curved on different centres.
[0005] By attachment of a circumferential portion of the cutting member to (e.g.) an ultrasonic
horn at an anti- node, the centre of the annulus constitutes a theoretical anti-node,
and vibration will occur alternately radially outwardly and inwardly from the centre
of the annulus, so that the cutting member effects a "pulsation".
[0006] Thus, the cutting edge may subtend at an angle of between 45° and 270°, although
in practise a cutting edge above 180° is unlikely to be of wide value, and preferably
the range of the cutting edge is between 60° and 160°, with a cutting edge vibrating
radially of the annular cutting member.
[0007] The cutting edge may be V-shape in cross-section, or two parallel cutting edges may
be provided by machining a V-shape or U-shape groove into circumference of the cutting
member at least over the circumferential distance thereof required to perform a cutting
operation.
[0008] Such a cutting device may be used for cutting brittle and hard materials, such a
ceramics or concrete, or soft materials, such as fabric, or foodstuffs.
[0009] A theoretical analysis of radial vibrations in thin annular discs can be found in
Young, Winsper and Sansomes papers in Applied Acoustics vol 3 1990 P212-216. The wave
equation for pure radial simple harmonic motion can be written as:

Ur is the particle displacement in a radial direction at radius r and k is the wave
number.

[0010] Where
W is angular velocity
Cr is wave velocity in a radial direction

[0011] Equation (1) is a well known Bessel equation and a discrete solution is obtained
for radial motion (after Watson 1962 Theory of Bessel Functions; London, Cambridge
University Press) for an annular ring with inner and outer radii R1 and R2 or at R1
and R2 with zero stress.
[0012] In the region 1>KR1> 0.3 a simple approximate solution can be written

Where n is an integer, which means that radial motion occurs when the mean circumference
of the annular ring (R1 + R2) is equal to an integral number of wavelengths. The analysis
shows that radial motion is independent of disc thickness. Finite Element modelling
(eg PAFEC'S FEA Computer Programmes, Nottingham, UK) now enables the disc dimensions
to be calculated to show that the radial mode vibration of a disc 150 mm outer and
50 mm inner diameter, and of aluminium with 4% copper alloy giving vibrational frequency
of 18.2 kHz.
[0013] Thus, preferably the ratio of the inner radius R1 to the outer radius R2 of the annular
disc is determined by the equation K (R1 + R2) = 2N, to within an accuracy of plus/minum
5%.
[0014] The device may comprise a plurality of cutting members secured (e.g. by welding or
bolting) in parallel array to a single drive member, to enable a plurality of parallel
cuts to be produced simultaneously.
[0015] The invention will become more clear from the following description, to be read with
reference to the accompanying drawings, of cutting devices which have been selected
for the purposes of illustrating the invention by way of example.
[0016] In the accompanying drawings:
FIGURES 1a and 1b are respectively side and front elevations of a cutting device which is the first
embodiment of the invention;
FIGURES 2a and 2b are respectively side and front elevations of the cutting device which is the second
embodiment of the invention; and
FIGURE 3 is a schematic view showing a multi-bladed cutting device.
[0017] The device which is the first embodiment of the invention comprises an annular cutting
member 6 having an inner radius of 50mm and an outer radius of 150mm, the cutting
member being of aluminium with 4% copper alloy. The member 6 is provided with a flat
drive face 8 on one side of diametral plane, by which the cutting member is attached
to an ultrasonic horn 10 providing a source of ultrasonic vibrations at a frequency
of 18.2 kHz. The face 8 will constitute an anti-node (portion of maximum displacement)
and the centre of the aperture 12 of the member 6 providing a theoretical node. With
such a construction, the member 6 vibrates radially inwardly and outwardly, as shown
by the arrows, in a pulsating manner. The member 6 is provided with a circumferential
cutting edge 14 subtending an angle of about 180° at the centre of the member which
in the operation of the drive vibrates at a substantially uniform amplitude, allowing
when the device is moved in the direction of the arrow A through a substrate 18, a
cutting action to be effected.
[0018] In the second embodiment, parallel cutting edges 20
a, 20
b are afforded by the provision of a generally U-shape groove or channel into the circumferential
edge of the cutting member, to enable twin cutting tracks to be provided.
[0019] In the embodiment illustrated in Figure 3, a plurality, specifically three cutting
member 6
a, 6
b, 6
c, each similar to the cutting member illustrated in Figure 1, are connected in parallel
to a multi-stage ultrasonic horn 28, whereby the cutting edges 14 are all caused to
vibrate together, enabling a multiple cut to be obtained in the substrate.
[0020] It will of course be appreciated that by the utilisation of a cutting member of the
kind illustrated in Figure 2, a multiple increase of the number of cuts may be obtained.
[0021] By the use of the invention a significantly deeper cut than may conventionally be
obtained may be made, and the device may be used to cut a wide variety of materials,
including those with which difficulty may otherwise be experienced.
[0022] Whilst in the preferred embodiment the cutting member is annular, if desired "flats"
or alternatively curved faces may be provided on the other circumference.
1. A cutting device comprising
(a) a generally annular cutting member (6, 6a, 6b, 6c) having on one side of a diametral
plane a driving face (8) to be attached to a source (10) of ultrasonic vibrations,
said vibrations acting in a direction radially of the member; and
(b) a cutting edge (14, 20a, 20b) extending circumferentially of the cutting member
(6) on the other side of said diametral plane.
2. A cutting device according to Claim 1 wherein the cutting member is provided on its
outer surface with a flat, or a surface curved on a different centre, constituting
said driving face (8).
3. A cutting device according to one of Claims 1 and 2 wherein the cutting edge subtends
an angle of between 45° and 270°, preferably between 60° and 160°.
4. A cutting device according to any one of the preceding claims wherein he cutting edge
is V-shape in cross section.
5. A cutting device according to any one of Claims 1, 2 and 3 wherein to parallel cutting
edges (20a, 20b) are provided by machining a V-shape or U-shape groove into the circumference
of the cutting member at least over part of the circumferential distance thereof.
6. A cutting device according to any one of the preceding claims comprising a plurality
of cutting members (6a, 6b, 6c) secured in parallel array to a single drive member
28.
7. A cutting device according to any one of the preceding claims wherein the values of
the inner radius R1 and the outer radius R2 are in approximate accordance with the
equation K (R1 + R2) = 2N.
8. A cutting device according to Claim 7 wherein said approximation is to within plus/minus
5%.
9. A cutting mechanism comprising a cutting device according to any one of the preceding
claims and an ultrasonic device (10) attached to a flat drive surface (8) on the circumference
of the cutting device with the circumferentially extending cutting edge (14, 20) located
generally opposite to the drive face.
1. Schneidvorrichtung, umfassend
(a) ein im allgemeinen ringförmiges Schneidglied (6, 6a, 6b, 6c), das auf einer Seite
einer diametralen Ebene eine Antriebsfläche (8) aufweist, die an eine Quelle (10)
für Ultraschallvibrationen anzubringen ist, wobei besagte Vibrationen in eine Richtung
radial zu dem Glied wirken; und
(b) eine Schneidkante (14, 20a, 20b), die sich entlang des Umfangs des Schneidglieds
(6) auf der anderen Seite besagter diametralen Ebene erstreckt.
2. Schneidvorrichtung nach Anspruch 1, dadurch gekennzeichnet, daß das Schneidglied auf
seiner Außenfläche mit einer flachen Fläche oder mit einer zu einem anderen Mittelpunkt
gekrümmten Fläche versehen ist, die besagte Antriebsfläche (8) bildet.
3. Schneidvorrichtung nach Anspruch 1 oder 2, dadurch gekennzeichnet, daß die Schneidkante
einen Winkel von zwischen 45° und 270°, vorzugsweise zwischen 60° und 160°, begrenzt.
4. Schneidvorrichtung nach irgendeinem der vorangehenden Ansprüche, dadurch gekennzeichnet,
daß die Schneidkante im Querschnitt eine V-Form aufweist.
5. Schneidvorrichtung nach irgendeinem der Ansprüche 1 bis 3, dadurch gekennzeichnet,
daß parallele Schneidkanten (20a, 20b) vorgesehen sind, indem einer Aussparung in
dem Umfang des Schneidglieds zumindest über einen Teil der Umfangsdistanz desselben
eine V-Form oder eine U-Form maschinell gegeben ist.
6. Schneidvorrichtung nach irgendeinem der vorangehenden Ansprüche, gekennzeichnet durch
eine Vielzahl von Schneidgliedern (6a, 6b, 6c), die in einem parallelen Feld an einem
einzigen Antriebsglied (28) befestigt sind.
7. Schneidvorrichtung nach irgendeinem der vorangehenden Ansprüche, dadurch gekennzeichnet,
daß die Werte des Innenradius R1 und des Außenradius R2 ungefähr mit der Gleichung
K (R1 + R2) = 2N übereinstimmen.
8. Schneidvorrichtung nach Anspruch 7, dadurch gekennzeichnet, daß besagte Nährung in
einem Bereich von plus/minus 5% liegt.
9. Schneidmechanismus, umfassend eine Schneidvorrichtung nach irgendeinem der vorangehenden
Ansprüche und eine Ultraschallvorrichtung (10), die an einer flachen Antriebsfläche
(8) auf dem Umfang der Schneidvorrichtung angebracht ist, wobei sich die Schneidkante
(14, 20), die im allgemeinen gegenüber der Antriebsfläche angeordnet ist, entlang
des Umfangs erstreckt.
1. Un dispositif de découpe comprenant
(a) un élément de coupe généralement annulaire (6, 6a, 6b, 6c) ayant sur un côté d'un
plan diamétral une face d'entraînement (8) à lier à une source (10) de vibrations
ultrasoniques, lesdites vibrations agissant suivant une direction radiale à l'élément
; et
(b) un bord de coupe (14, 20a, 20b) s'étendant à la périphérie de l'élément de coupe
(6) sur l'autre côté dudit plan diamétral.
2. Un dispositif de découpe conforme à la Revendication 1 dans lequel l'élément de coupe
est muni sur sa surface externe d'un méplat, ou d'une surface courbe sur un centre
différent, constituant ladite face d'entraînement (8).
3. Un dispositif de découpe conforme à l'une des Revendications 1 et 2 dans lequel le
bord de coupe sous-tend un angle entre 45° et 270°, de préférence entre 60° et 160°.
4. Un dispositif de découpe conforme à l'une quelconque des revendications précédentes
dans lequel le bord de coupe a une forme en V en section transversale.
5. Un dispositif de découpe conforme à l'une quelconque des Revendications 1, 2 et 3
dans lequel des bords de coupe parallèles (20a, 20b) sont ménagés par usinage d'une
rainure en forme de V ou en forme de U à la périphérie de l'élément de coupe au moins
sur une partie de la distance périphérique de celui-ci.
6. Un dispositif de découpe conforme à l'une quelconque des revendications précédentes,
comprenant une pluralité d'éléments de coupe (6a, 6b, 6c) fixés en rangée parallèle
à un élément d'entraînement unique (28).
7. Un dispositif de découpe conforme à l'une quelconque des revendications précédentes
dans lequel les valeurs du rayon interne R1 et du rayon externe R2 sont en accord
approximativement avec l'équation K (R1 + R2) = 2N.
8. Un dispositif de découpe conforme à la Revendication 7 dans lequel ladite approximation
est à plus/moins 5 % près.
9. Un mécanisme de découpe comprenant un dispositif de découpe conforme à l'une quelconque
des revendications précédentes et un dispositif ultrasonique (10) lié à une face d'entraînement
plate (8) sur la périphérie du dispositif de découpe avec un bord de coupe s'étendant
à la périphérie (14, 20) localisé généralement à l'opposé de la face d'entraînement.

