EP4433260A1 - Method for machining ceramic workpiece with composite vibration - Google Patents
Method for machining ceramic workpiece with composite vibrationInfo
- Publication number
- EP4433260A1 EP4433260A1 EP22896458.1A EP22896458A EP4433260A1 EP 4433260 A1 EP4433260 A1 EP 4433260A1 EP 22896458 A EP22896458 A EP 22896458A EP 4433260 A1 EP4433260 A1 EP 4433260A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- tip
- section
- slot
- recited
- helical slots
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B24—GRINDING; POLISHING
- B24B—MACHINES, DEVICES, OR PROCESSES FOR GRINDING OR POLISHING; DRESSING OR CONDITIONING OF ABRADING SURFACES; FEEDING OF GRINDING, POLISHING, OR LAPPING AGENTS
- B24B7/00—Machines or devices designed for grinding plane surfaces on work, including polishing plane glass surfaces; Accessories therefor
- B24B7/20—Machines or devices designed for grinding plane surfaces on work, including polishing plane glass surfaces; Accessories therefor characterised by a special design with respect to properties of the material of non-metallic articles to be ground
- B24B7/22—Machines or devices designed for grinding plane surfaces on work, including polishing plane glass surfaces; Accessories therefor characterised by a special design with respect to properties of the material of non-metallic articles to be ground for grinding inorganic material, e.g. stone, ceramics, porcelain
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B24—GRINDING; POLISHING
- B24B—MACHINES, DEVICES, OR PROCESSES FOR GRINDING OR POLISHING; DRESSING OR CONDITIONING OF ABRADING SURFACES; FEEDING OF GRINDING, POLISHING, OR LAPPING AGENTS
- B24B1/00—Processes of grinding or polishing; Use of auxiliary equipment in connection with such processes
- B24B1/04—Processes of grinding or polishing; Use of auxiliary equipment in connection with such processes subjecting the grinding or polishing tools, the abrading or polishing medium or work to vibration, e.g. grinding with ultrasonic frequency
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B24—GRINDING; POLISHING
- B24B—MACHINES, DEVICES, OR PROCESSES FOR GRINDING OR POLISHING; DRESSING OR CONDITIONING OF ABRADING SURFACES; FEEDING OF GRINDING, POLISHING, OR LAPPING AGENTS
- B24B31/00—Machines or devices designed for polishing or abrading surfaces on work by means of tumbling apparatus or other apparatus in which the work and/or the abrasive material is loose; Accessories therefor
- B24B31/10—Machines or devices designed for polishing or abrading surfaces on work by means of tumbling apparatus or other apparatus in which the work and/or the abrasive material is loose; Accessories therefor involving other means for tumbling of work
- B24B31/116—Machines or devices designed for polishing or abrading surfaces on work by means of tumbling apparatus or other apparatus in which the work and/or the abrasive material is loose; Accessories therefor involving other means for tumbling of work using plastically deformable grinding compound, moved relatively to the workpiece under the influence of pressure
Definitions
- Airfoils and other components in a turbine section of a gas turbine engine are typically formed of a superalloy and may include thermal barrier coatings to extend temperature capability and lifetime.
- Ceramic materials such as monolithic ceramics, ceramic matrix composites, and combinations of these, are under consideration to replace superalloys. Among other attractive properties, ceramic materials have high temperature resistance. Ceramic materials, however, typically cannot be directly substituted for a superalloy. Rather, there are manufacturing and design factors that are unique to ceramics and which challenge practical implementation.
- a method for machining a ceramic workpiece includes providing a sonotrode that has a transducer and a horn arranged along an axis.
- the horn has helical slots and terminates at a tip.
- the tip is brought into proximity of the ceramic workpiece and an abrasive media is provided to a work zone around the tip.
- the transducer produces ultrasonic vibration that axially propagates down the horn and causes axial vibration at the tip.
- the helical slots convert a portion of the axial vibration to torsional vibration at the tip.
- the axial vibration and the torsional vibration cause the abrasive media to abrade the ceramic workpiece in the work zone and thereby remove a localized portion of the ceramic workpiece.
- the horn includes a first section that tapers and a second section that has a uniform cross-section, and the helical slots are on the second section.
- the second section is cylindrical and has a solid core.
- the second section has a diameter and each of the helical slots has a constant depth, and a ratio of the diameter to the constant slot depth is 5:1 to 10:1.
- the second section has a diameter and each of the helical slots has a slot length, and a ratio of the diameter to the slot length is 1:1 to 1:4.
- each of the helical slots has a constant depth and a slot length, and a ratio of the slot length to the constant slot depth is 5:1 to 20:1.
- the second section has a diameter and each of the helical slots has a slot length and a constant slot depth, and a ratio of the slot length to the constant slot depth divided by the diameter is 1:1 to 1:2.
- each of the helical slots defines a first slot end that is distal from the tip and a second slot end that is proximal to the tip, the first slot ends are located at a first common axial position, and the second slot ends are located at a second common axial position.
- the second common axial position is no more than 12.7 millimeters from the tip.
- first slot end and the second slot end are circumferentially offset by 45° to 135°.
- the horn includes a first section that tapers and a second section that has a uniform cross-section, and the helical slots are on the first section.
- each of the helical slots defines an angle of 30° to 60° with the axis.
- the horn is a step horn.
- the ceramic workpiece is a ceramic matrix composite.
- An ultrasonic machining system includes a sonotrode that has a transducer and a horn arranged along an axis.
- the horn has helical slots and terminates at a tip.
- the transducer produces ultrasonic vibration that axially propagates down the horn and causes axial vibration at the tip.
- the helical slots convert a portion of the axial vibration to torsional vibration at the tip, and the axial vibration and the torsional vibration cause an abrasive media in a work zone around the tip to abrade the ceramic workpiece and thereby remove a localized portion of the ceramic workpiece.
- the horn includes a first section that tapers and a second section that has a uniform cross-section, and the helical slots are on either the first section or the second section.
- the helical slots are on the second section, the second section has a diameter, each of the helical slots has a constant depth, each of the helical slots has a slot length, a ratio of the diameter to the constant slot depth is 5: 1 to 10:1, and a ratio of the diameter to the slot length is 1:1 to 1:4.
- a ratio of the slot length to the constant slot depth is 5: 1 to 20: 1.
- each of the helical slots defines a first slot end that is distal from the tip and a second slot end that is proximal to the tip, the first slot ends are located at a first common axial position, and the second slot ends are located at a second common axial position.
- the second common axial position is no more than 12.7 millimeters from the tip, the first slot end and the second slot end are circumferentially offset by 45° to 135°, and each of the helical slots defines an angle of 30° to 60° with the axis.
- the present disclosure may include any one or more of the individual features disclosed above and/or below alone or in any combination thereof.
- Figure 1 illustrates an example sonotrode for ultrasonic machining of ceramic material.
- Figure 2 illustrates a portion of the horn of the sonotrode.
- Figure 3 illustrates another example sonotrode.
- Figure 4 illustrates an ultrasonic machining system during operation to produce a hole in a ceramic workpiece.
- USM generally involves mechanical vibration at approximately 20 kHz or more in the presence of an abrasive media to cause removal of material. When used on ceramics, however, USM yields low material removal rates that are insufficient for practical implementation on ceramics. In this regard, as will be discussed herein, the present disclosure provides a method and system for USM that facilitates increased material removal rates on ceramic materials.
- FIG 1 illustrates an example sonotrode 20 for facilitation of increased material removal rates in USM systems.
- the sonotrode 20 is operable to provide a composite axial-torsional vibrational mode in order to enhance material removal.
- the sonotrode 20 has a transducer 22 and a horn 24 that are generally arranged along a central axis (A).
- the transducer 22 may include one or more piezoelectric elements that, when activated with an electric current, produces vibrational waves that propagate axially (i.e., axial vibration VI).
- the horn 24 is mechanically coupled to the transducer 22 and includes several sections. As shown, the horn 24 is a step horn, although it is to be understood that the type of horn is not necessarily limited to step horns.
- the horn 24 includes a first section 26 and a second section 28. A least a portion of the first section 26 tapers in cross-section, to focus the vibration. In the illustrated example, the initial portion of the first section 26 adjacent to the transducer 22 is cylindrical but then transitions to conical.
- the second section 28 has a uniform cross-section and terminates at a tip 30. In this example, the second section 28 is cylindrical. Both the first section 26 and the second section 28 are solid and may be formed from an alloy or steel, such as but not limited to an aluminum alloy or steel.
- the horn 24 further includes helical slots 32.
- the helical slots 32 are on the second section 28.
- the helical slots 32 serve to convert a portion of the axial vibration (VI) to torsional vibration V2, while limiting excitation of undesirable bending modes.
- the degree and manner to which the helical slots 32 do this can be controlled via the slot geometry.
- each slot 32 defines a first slot end 32a that is distal from the tip 30 and a second slot end 32b that is proximal to the tip 30.
- the first slot ends 32a are located at a first common axial position Al
- the second slot ends 32b are located at a second common axial position A2.
- the second section 28 has a diameter D
- each of the helical slots 32 has a constant depth d, a slot length L, and a circumferential offset C.
- the depth d is the distance from the surface of the second section 28 to the floor of the slot 32.
- the slot length L is the linear axial distance from the first slot end 32a to the second slot end 32b
- the circumferential offset C is the length of the arc segment in degrees between the first end 32a and the second end 32b.
- a ratio of the diameter D to the constant slot depth d is 5:1 to 10:1. In a further example, a ratio of the diameter D to the slot length L is 1:1 to 1:4. In a further example, a ratio of the slot length L to the constant slot depth d is 5:1 to 20:1. In a further example, a ratio of the slot length L to the constant slot depth d divided by the diameter D is 1 : 1 to 1 :2.
- each of the slots 32 has an angle G with respect to the axis A that is from 30° to 60°. In a further example of any of the above examples, the first slot end 32a and the second slot end 32b are circumferentially offset by 45° to 135°. In a further example of any of the above examples, the second common axial position A2 is also no more than 12.7 millimeters from the tip.
- the sonotrode 20 with the above features, or combinations thereof, facilitates adaptation of USM for the machining of ceramic material. For instance, most of the material removal is due to the axial vibration VI. Therefore, the portion of the axial vibration V 1 that is converted into the torsional vibration V2 can be limited via the above prescribed ranges. Moreover, the cycles of vibration should be in sync such that the peak amplitude of the axial vibration VI coincides with the peak amplitude of torsional vibration V2. Also, the torsional vibration V2 can be primarily induced at or near the tip 30 by placing the slots 32 near the tip 30 per the above range. In one alternative shown in Figure 3, however, the helical slots 32 are located on the conical portion of the first section 26.
- FIG 4 illustrates an example of a USM system during operation to machine a ceramic workpiece 40.
- the ceramic material of the workpiece 40 is not particularly limited and may be a monolithic ceramic, a ceramic matrix composite (CMC), or combinations of monolithic and CMC.
- the monolithic ceramic may be, but is not limited to, silicon nitride or silicon carbide.
- the ceramic matrix composite may be, but is not limited to, a SiC/SiC ceramic matrix composite in which SiC fiber tows are disposed within a SiC matrix. Alternatively, the fibers and/or matrix may be Si N4.
- the transducer 22 ( Figure 1) produces ultrasonic vibration that axially propagates down the horn 24 and causes axial vibration VI at the tip 30.
- the aforementioned helical slots 32 convert a portion of the axial vibration VI to torsional vibration V2 at the tip 30.
- the axial vibration VI and the torsional vibration V2 cause an abrasive media 42 containing abrasive particles 44 in a work zone Z around the tip 30 to abrade the ceramic workpiece 40 and thereby remove a localized portion of the ceramic workpiece 40. For instance, at the peak amplitude of the axial vibration the abrasive particles 44 are driven to penetrate into the exposed surface of the ceramic workpiece 40.
- the torsional vibration acts to drive the abrasive particles 44 sideways across the exposed surface, causing the cutting off of "microchips" of ceramic and smoothing of the surface.
- the simultaneous penetration, cutting, and smoothing facilitates an increase in material removal rate and accuracy in comparison to using only axial vibration, thereby enabling more practical application of USM for ceramic material.
- the horn 24 and the ceramic workpiece 40 are separated and there is thus little material removal.
- the tip 30 of the sonotrode 20 can be advanced into the ceramic workpiece 40 as material is removed in order to form a deeper hole and/or translated along the surface of the ceramic workpiece 40 to produce a slot.
- a mass element 25 ( Figure 1) may be provided on the opposite axial side of the transducer 22 from the horn 24. The displacement the tip 30 is larger than at the back side of the transducer 22 because the mass element 25, which may be made from steel, is of relatively higher impedance than the horn 24 (which may be made from aluminum). This prevents the backward propagation of the axial vibration to improve the output amplitude at the tip 30.
Landscapes
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Ceramic Engineering (AREA)
- Inorganic Chemistry (AREA)
- Grinding And Polishing Of Tertiary Curved Surfaces And Surfaces With Complex Shapes (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202163281156P | 2021-11-19 | 2021-11-19 | |
| PCT/US2022/050201 WO2023091545A1 (en) | 2021-11-19 | 2022-11-17 | Method for machining ceramic workpiece with composite vibration |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4433260A1 true EP4433260A1 (en) | 2024-09-25 |
| EP4433260A4 EP4433260A4 (en) | 2025-10-15 |
Family
ID=86385000
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22896458.1A Pending EP4433260A4 (en) | 2021-11-19 | 2022-11-17 | Method for machining a ceramic workpiece using compound vibration |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US20230158629A1 (en) |
| EP (1) | EP4433260A4 (en) |
| WO (1) | WO2023091545A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP4433260A4 (en) * | 2021-11-19 | 2025-10-15 | Raytheon Tech Corp | Method for machining a ceramic workpiece using compound vibration |
| US12528136B2 (en) * | 2023-07-31 | 2026-01-20 | Rohr, Inc. | Method and apparatus for ultrasonic welding thermoplastic components |
| CN117428668B (en) * | 2023-12-08 | 2026-04-03 | 中国机械总院集团江苏分院有限公司 | Torsional vibration ultrasonic honing device |
Family Cites Families (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3699719A (en) * | 1971-01-25 | 1972-10-24 | Nicholas Rozdilsky | Ultrasonic machining |
| JPS5935743B2 (en) * | 1979-01-24 | 1984-08-30 | 株式会社井上ジャパックス研究所 | Ultrasonic grinding equipment |
| JP2003190180A (en) * | 2001-12-27 | 2003-07-08 | Miwatec:Kk | Composite vibration ultrasonic handpiece |
| ES2659512T3 (en) * | 2004-12-13 | 2018-03-16 | Fritz Studer Ag | Tool unit for ultrasonic assisted rotary machining |
| WO2009154658A1 (en) * | 2008-02-22 | 2009-12-23 | Piezolnnovations | Ultrasonic torsional mode and longitudinal-torsional mode transducer systems |
| GB0819712D0 (en) * | 2008-10-27 | 2008-12-03 | Sra Dev Ltd | Torsional generator |
| US10736649B2 (en) * | 2016-08-25 | 2020-08-11 | Ethicon Llc | Electrical and thermal connections for ultrasonic transducer |
| CN108188842B (en) * | 2018-01-30 | 2020-10-27 | 河南理工大学 | Preparation method and processing device for surface microtexture of medical artificial joint ball |
| CN108787407B (en) * | 2018-05-31 | 2023-08-18 | 河南理工大学 | Single-excitation matching type variable-spiral longitudinal-torsional composite ultrasonic vibration processing method and device |
| EP4433260A4 (en) * | 2021-11-19 | 2025-10-15 | Raytheon Tech Corp | Method for machining a ceramic workpiece using compound vibration |
-
2022
- 2022-11-17 EP EP22896458.1A patent/EP4433260A4/en active Pending
- 2022-11-17 US US17/988,879 patent/US20230158629A1/en active Pending
- 2022-11-17 WO PCT/US2022/050201 patent/WO2023091545A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2023091545A1 (en) | 2023-05-25 |
| US20230158629A1 (en) | 2023-05-25 |
| EP4433260A4 (en) | 2025-10-15 |
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Legal Events
| Date | Code | Title | Description |
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| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
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| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
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| STAA | Information on the status of an ep patent application or granted ep patent |
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| 17P | Request for examination filed |
Effective date: 20240618 |
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| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): 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 ME MK MT NL NO PL PT RO RS SE SI SK SM TR |
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| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20250915 |
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| RIC1 | Information provided on ipc code assigned before grant |
Ipc: B24C 5/00 20060101AFI20250909BHEP Ipc: A61B 17/32 20060101ALI20250909BHEP Ipc: B06B 3/04 20060101ALI20250909BHEP Ipc: B24B 31/116 20060101ALI20250909BHEP |