Claims
- 1. A honeycomb extrusion die comprising a die body incorporating an array of parallel feedholes and a discharge section connecting with the die body comprising an array of parallel pins forming criss-crossing discharge slots, the discharge slots communicating with the feedholes and opening onto a die discharge face, the feedholes being separated by a minimum feedhole inter-spacing and the discharge slots being formed by spaces between the parallel pins, the pins connecting to the die by pin root ends and having pin outer ends forming the die discharge face, wherein:
the die includes a pin support section in the form of a planar die region disposed between and connecting with both the die body and the pin root ends, the pin support section comprising an array of apertures for conveying extrudable material from the feedholes to the discharge slots, the pin support section further comprising an array of pin support segments disposed among the apertures for joining the pin root ends to the die body, the pin support segments being of larger cross-section transverse to the feedholes than the minimum feedhole inter-spacing.
- 2. A honeycomb extrusion die in accordance with claim 1 wherein the apertures are cross-shaped.
- 3. A honeycomb extrusion die in accordance with claim 1 wherein the discharge slots have a first slot width at slot base sections adjoining the pin support section that is larger than a second slot width at or adjoining the die discharge face.
- 4. A honeycomb extrusion die in accordance with claim 1 wherein the pin support section and die discharge section are provided as an integral unitary metal structure permanently bonded to the die body.
- 5. A method for making a honeycomb extrusion die comprising a die body, a pin support section, and a die discharge section which comprises the steps of:
providing a metal plate for the die body; forming an array of parallel batch supply feedholes through the die body; providing a metal plate for the pin support section; forming an array of apertures in the pin support section, the apertures being configured to leave an array of pin support segments among the apertures; joining the pin support section to the die body; and providing a die discharge section connecting with the pin support section, the die discharge section comprising an array of criss-crossing discharge slots disposed between an array of parallel pins, the parallel pins having pin roots connecting with the pin support segments.
- 6. A method in accordance with claim 5 wherein:
the metal plate for the pin support section is of a thickness sufficient for a composite pin support and die discharge section; recesses for the apertures are provided in a first surface of the metal plate by plunge electrical discharge machining; the first surface of the metal plate is permanently bonded to the die body; criss-crossing discharge slots are machined into a second surface of the metal plate to form the die discharge section.
- 7. A method in accordance with claim 6 wherein the recesses for the apertures are cross-shaped.
- 8. A method in accordance with claim 6 wherein base sections of the discharge slots proximate to the pin support section are widened by wire electrical discharge machining.
- 9. In the method for forming a honeycomb structure by extruding a plasticized honeycomb batch material through a honeycomb extrusion die, the batch material being discharged from the die through a criss-crossing array of discharge slots formed between parallel pins attached by pin roots to the remainder of the die, the improvement wherein the pins are supported against bending by pin support segments connecting the pin roots to the die body.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/444,651, filed Feb. 3, 2003, entitled “Honeycomb Extrusion Dies”, by Bernas et al.
Provisional Applications (1)
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Number |
Date |
Country |
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60444651 |
Feb 2003 |
US |