Molten metal transfer device

Information

  • Patent Grant
  • 11873845
  • Patent Number
    11,873,845
  • Date Filed
    Friday, May 28, 2021
    3 years ago
  • Date Issued
    Tuesday, January 16, 2024
    10 months ago
Abstract
A device includes a molten metal pump and a metal-transfer conduit. A clamp may be used to attach the metal-transfer conduit to the pump. The pump has a pump base including an indentation configured to receive the metal-transfer conduit and align the pump outlet with the transfer inlet. The pump outlet may be formed in the indentation and preferably near the center of the indentation in order to better align with the transfer inlet. As the pump operates it moves molten metal through a pump outlet that is in communication with a transfer inlet in the metal-transfer conduit. The molten metal enters the transfer inlet, moves upwards in a passage in the metal-transfer conduit, and out of a transfer outlet.
Description
BACKGROUND

As used herein, the term “molten metal” means any metal or combination of metals in liquid form, such as aluminum, copper, iron, zinc, and alloys thereof. The term “gas” means any gas or combination of gases, including argon, nitrogen, chlorine, fluorine, Freon, and helium, which are released into molten metal.


Known molten-metal pumps include a pump base (also called a housing or casing), one or more inlets (an inlet being an opening in the housing to allow molten metal to enter a pump chamber), a pump chamber of any suitable configuration, which is an open area formed within the housing, and a discharge, which is a channel or conduit of any structure or type communicating with the pump chamber (in an axial pump the chamber and discharge may be the same structure or different areas of the same structure) leading from the pump chamber to an outlet, which is an opening formed in the exterior of the housing through which molten metal exits the casing. An impeller, also called a rotor, is mounted in the pump chamber, and is connected to a drive device. The drive shaft is typically an impeller shaft connected to one end of a motor shaft; the other end of the drive shaft being connected to an impeller. Often, the impeller (or rotor) shaft is comprised of graphite and/or ceramic, the motor shaft is comprised of steel, and the two are connected by a coupling. As the motor turns the drive shaft, the drive shaft turns the impeller and the impeller pushes molten metal out of the pump chamber, through the discharge, out of the outlet and into the molten metal bath. Most molten metal pumps are gravity fed, wherein gravity forces molten metal through the inlet and into the pump chamber as the impeller pushes molten metal out of the pump chamber. Other molten metal pumps do not include a base or support posts and are sized to fit into a structure by which molten metal is pumped. Most pumps have a metal platform, or super structure, that is either supported by a plurality of support posts attached to the pump base, or unsupported if there is no base. The motor is positioned on the superstructure if a superstructure is used.


This application incorporates by reference the portions of the following documents that are not inconsistent with this disclosure: U.S. Pat. No. 4,598,899, issued Jul. 8, 1986, to Paul V. Cooper, U.S. Pat. No. 5,203,681, issued Apr. 20, 1993, to Paul V. Cooper, U.S. Pat. No. 5,308,045, issued May 3, 1994, by Paul V. Cooper, U.S. Pat. No. 5,662,725, issued Sep. 2, 1997, by Paul V. Cooper, U.S. Pat. No. 5,678,807, issued Oct. 21, 1997, by Paul V. Cooper, U.S. Pat. No. 6,027,685, issued Feb. 22, 2000, by Paul V. Cooper, U.S. Pat. No. 6,124,523, issued Sep. 26, 2000, by Paul V. Cooper, U.S. Pat. No. 6,303,074, issued Oct. 16, 2001, by Paul V. Cooper, U.S. Pat. No. 6,689,310, issued Feb. 10, 2004, by Paul V. Cooper, U.S. Pat. No. 6,723,276, issued Apr. 20, 2004, by Paul V. Cooper, U.S. Pat. No. 7,402,276, issued Jul. 22, 2008, by Paul V. Cooper, U.S. Pat. No. 7,507,367, issued Mar. 24, 2009, by Paul V. Cooper, U.S. Pat. No. 7,906,068, issued Mar. 15, 2011, by Paul V. Cooper, U.S. Pat. No. 8,075,837, issued Dec. 13, 2011, by Paul V. Cooper, U.S. Pat. No. 8,110,141, issued Feb. 7, 2012, by Paul V. Cooper, U.S. Pat. No. 8,178,037, issued May 15, 2012, by Paul V. Cooper, U.S. Pat. No. 8,361,379, issued Jan. 29, 2013, by Paul V. Cooper, U.S. Pat. No. 8,366,993, issued Feb. 5, 2013, by Paul V. Cooper, U.S. Pat. No. 8,409,495, issued Apr. 2, 2013, by Paul V. Cooper, U.S. Pat. No. 8,440,135, issued May 15, 2013, by Paul V. Cooper, U.S. Pat. No. 8,444,911, issued May 21, 2013, by Paul V. Cooper, U.S. Pat. No. 8,475,708, issued Jul. 2, 2013, by Paul V. Cooper, U.S. patent application Ser. No. 12/895,796, filed Sep. 30, 2010, by Paul V. Cooper, U.S. patent application Ser. No. 12/877,988, filed Sep. 8, 2010, by Paul V. Cooper, U.S. patent application Ser. No. 12/853,238, filed Aug. 9, 2010, by Paul V. Cooper, U.S. patent application Ser. No. 12/880,027, filed Sep. 10, 2010, by Paul V. Cooper, U.S. patent application Ser. No. 13/752,312, filed Jan. 28, 2013, by Paul V. Cooper, U.S. patent application Ser. No. 13/756,468, filed Jan. 31, 2013, by Paul V. Cooper, U.S. patent application Ser. No. 13/791,889, filed Mar. 8, 2013, by Paul V. Cooper, U.S. patent application Ser. No. 13/791,952, filed Mar. 9, 2013, by Paul V. Cooper, U.S. patent application Ser. No. 13/841,594, filed Mar. 15, 2013, by Paul V. Cooper, and U.S. patent application Ser. No. 14/027,237, filed Sep. 15, 2013, by Paul V. Cooper, U.S. Pat. No. 8,535,603 entitled ROTARY DEGASSER AND ROTOR THEREFOR, U.S. Pat. No. 8,613,884 entitled LAUNDER TRANSFER METAL-TRANSFER CONDUIT AND DEVICE, U.S. Pat. No. 8,714,914 entitled MOLTEN METAL PUMP FILTER, U.S. Pat. No. 8,753,563 entitled DEVICE AND METHOD FOR DEGASSING MOLTEN METAL, U.S. Pat. No. 9,011,761 entitled LADLE WITH TRANSFER CONDUIT, U.S. Pat. No. 9,017,597 entitled TRANSFERRING MOLTEN METAL USING NON-GRAVITY ASSIST LAUNDER, U.S. Pat. No. 9,034,244 entitled GAS-TRANSFER FOOT, U.S. Pat. No. 9,080,577 entitled SHAFT AND POST TENSIONING DEVICE, U.S. Pat. No. 9,108,244 entitled IMMERSION HEATHER FOR MOLTEN METAL, U.S. Pat. No. 9,156,087 entitled MOLTEN METAL TRANSFER DEVICE AND ROTOR, U.S. Pat. No. 9,205,490 entitled TRANSFER WELL DEVICE AND METHOD FOR MAKING SAME, U.S. Pat. No. 9,328,615 entitled ROTARY DEGASSERS AND COMPONENTS THEREFOR, U.S. Pat. No. 9,377,028 entitled TENSIONING DEVICE EXTENDING BEYOND COMPONENT, U.S. Pat. No. 9,382,599 entitled ROTARY DEGASSER AND ROTOR THEREFOR, U.S. Pat. No. 9,383,140 entitled TRANSFERRING MOLTEN METAL FROM ONE STRUCTURE TO ANOTHER, U.S. Pat. No. 9,409,232 entitled MOLTEN METAL TRANSFER VESSEL AND METHOD OF CONSTRUCTION, U.S. Pat. No. 9,410,744 entitled VESSEL TRANSFER METAL-TRANSFER CONDUIT AND DEVICE, U.S. Pat. No. 9,422,942 entitled TENSION DEVICE WITH INTERNAL PASSAGE, U.S. Pat. No. 9,435,343 entitled GAS-TRANSFER FOOT, U.S. Pat. No. 9,464,636 entitled TENSION DEVICE GRAPHITE COMPONENT USED IN MOLTEN METAL, U.S. Pat. No. 9,470,239 THREADED TENSIONING DEVICE, U.S. Pat. No. 9,481,035 entitled IMMERSION HEATER FOR MOLTEN METAL, U.S. Pat. No. 9,482,469 entitled VESSEL TRANSFER METAL-TRANSFER CONDUIT AND DEVICE, U.S. Pat. No. 9,506,129 entitled ROTARY DEGASSER AND ROTOR THEREFOR, U.S. Pat. No. 9,566,645 entitled MOLTEN METAL TRANSFER DEVICE AND ROTOR, U.S. Pat. No. 9,581,388 entitled VESSEL TRANSFER METAL-TRANSFER CONDUIT AND DEVICE, U.S. Pat. No. 9,587,883 entitled LADLE WITH TRANSFER CONDUIT, U.S. Pat. No. 9,643,247 entitled MOLTEN METAL TRANSFER AND DEGASSING DEVICE, U.S. Pat. No. 9,657,578 entitled ROTARY DEGASSERS AND COMPONENTS THEREFOR, U.S. Pat. No. 9,855,600 entitled MOLTEN METAL TRANSFER DEVICE AND ROTOR, U.S. Pat. No. 9,862,026 entitled METHOD OF FORMING TRANSFER WELL, U.S. Pat. No. 9,903,383 entitled MOLTEN METAL ROTOR WITH HARDENED TOP, U.S. Pat. No. 9,909,808 entitled DEVICE AND METHOD FOR DEGASSING MOLTEN METAL, U.S. Pat. No. 9,925,587 entitled METHOD OF TRANSFERRING MOLTEN METAL FROM A VESSEL, entitled U.S. Pat. No. 9,982,945 MOLTEN METAL TRANSFER VESSEL AND METHOD OF CONSTRUCTION, U.S. Pat. No. 10,052,688 entitled TRANSFER PUMP LAUNDER DEVICE, U.S. Pat. No. 10,072,891 entitled TRANSFERRING MOLTEN METAL USING NON-GRAVITY ASSIST LAUNDER, U.S. Pat. No. 10,126,058 entitled MOLTEN METAL TRANSFERRING VESSEL, U.S. Pat. No. 10,126,059 entitled CONTROLLED MOLTEN METAL FLOW FROM TRANSFER VESSEL, U.S. Pat. No. 10,138,892 entitled ROTOR AND ROTOR SHAFT FOR MOLTEN METAL, U.S. Pat. No. 10,195,664 entitled MULTI-STAGE IMPELLER FOR MOLTEN METAL, U.S. Pat. No. 10,267,314 entitled TENSIONED SUPPORT SHAFT AND OTHER MOLTEN METAL DEVICES, U.S. Pat. No. 10,274,256 entitled VESSEL TRANSFER DEVICES AND DEVICES, U.S. Pat. No. 10,302,361 entitled TRANSFER VESSEL FOR MOLTEN METAL PUMPING DEVICE, U.S. Pat. No. 10,309,725 entitled IMMERSION HEATER FOR MOLTEN METAL, U.S. Pat. No. 10,307,821 entitled TRANSFER PUMP LAUNDER DEVICE, U.S. Pat. No. 10,322,451 entitled TRANSFER PUMP LAUNDER DEVICE, U.S. Pat. No. 10,345,045 entitled VESSEL TRANSFER METAL-TRANSFER CONDUIT AND DEVICE, U.S. Pat. No. 10,352,620 entitled TRANSFERRING MOLTEN METAL FROM ONE STRUCTURE TO ANOTHER, U.S. Pat. No. 10,428,821 entitled QUICK SUBMERGENCE MOLTEN METAL PUMP, U.S. Pat. No. 10,458,708 entitled TRANSFERRING MOLTEN METAL FROM ONE STRUCTURE TO ANOTHER, U.S. Pat. No. 10,465,688 entitled COUPLING AND ROTOR SHAFT FOR MOLTEN METAL DEVICES, U.S. Pat. No. 10,562,097 entitled MOLTEN METAL TRANSFER DEVICE AND ROTOR, U.S. Pat. No. 10,570,745 entitled ROTARY DEGASSERS AND COMPONENTS THEREFOR, U.S. Pat. No. 10,641,279 entitled MOLTEN METAL ROTOR WITH HARDENED TIP, U.S. Pat. No. 10,641,270 entitled TENSIONED SUPPORT SHAFT AND OTHER MOLTEN METAL DEVICES, U.S. patent application Ser. No. 16/877,267 entitled MOLTEN METAL CONTROLLED FLOW LAUNDER, which was filed on May 18, 2020, U.S. application Ser. No. 16/877,296 entitled SYSTEM AND METHOD TO FEED MOLD WITH MOLTEN METAL, which was filed on May 18, 2020, U.S. application Ser. No. 16/877,332 entitled SMART MOLTEN METAL PUMP, which was filed on May 18, 2020, U.S. application Ser. No. 16/877,182 entitled SYSTEM FOR MELTING SOLID METAL, which was filed on May 18, 2020, U.S. application Ser. No. 16/877,219 entitled METHOD FOR MELTING SOLID METAL, which was filed on May 18, 2020, U.S. Provisional Patent Application Ser. No. 62/849,787 filed on May 17, 2019 and entitled MOLTEN METAL PUMPS, COMPONENTS, DEVICES AND METHODS, and U.S. Provisional Patent Application Ser. No. 62/852,846 filed on May 24, 2019 and entitled SMART MOLTEN METAL PUMP.


Three basic types of pumps for pumping molten metal, such as molten aluminum, are utilized: circulation pumps, transfer pumps and gas-release pumps. Circulation pumps are used to circulate the molten metal within a bath, thereby generally equalizing the temperature of the molten metal. Circulation pumps may be used in any vessel, such as in a reverbatory furnace having an external well. The well is usually an extension of the charging well, in which scrap metal is charged (i.e., added).


Standard transfer pumps are generally used to transfer molten metal from one structure to another structure such as a ladle or another furnace. A standard transfer pump has a riser tube connected to a pump discharge and supported by the superstructure. As molten metal is pumped it is pushed up the riser tube (sometimes called a metal-transfer conduit) and out of the riser tube, which generally has an elbow at its upper end, so molten metal is released into a different vessel from which the pump is positioned.


Gas-release pumps, such as gas-injection pumps, circulate molten metal while introducing a gas into the molten metal. In the purification of molten metals, particularly aluminum, it is frequently desired to remove dissolved gases such as hydrogen, or dissolved metals, such as magnesium. As is known by those skilled in the art, the removing of dissolved gas is known as “degassing” while the removal of magnesium is known as “demagging.” Gas-release pumps may be used for either of both of these purposes or for any other application for which it is desirable to introduce gas into molten metal.


Gas-release pumps generally include a gas-transfer conduit having a first end that is connected to a gas source and a second end submerged in the molten metal bath. Gas is introduced into the first end and is released from the second end into the molten metal. The gas may be released downstream of the pump chamber into either the pump discharge or a metal-transfer conduit extending from the discharge, or into a stream of molten metal exiting either the discharge or the metal-transfer conduit. Alternatively, gas may be released into the pump chamber or upstream of the pump chamber at a position where molten metal enters the pump chamber. The gas may also be released into any suitable location in a molten metal bath.


Molten metal pump casings and rotors often employ a bearing device comprising ceramic rings wherein there are one or more rings on the rotor that align with rings in the pump chamber (such as rings at the inlet and outlet) when the rotor is placed in the pump chamber. The purpose of the bearing device is to reduce damage to the soft, graphite components, particularly the rotor and pump base, during pump operation.


Generally, a degasser (also called a rotary degasser) for molten metal, such as molten aluminum, includes (1) an impeller shaft having a first end, a second end and a passage for transferring gas, (2) an impeller, and (3) a drive source for rotating the impeller shaft and the impeller. The first end of the impeller shaft is connected to the drive source and to a gas source and the second end is connected to the impeller.


Generally, a scrap melter for molten metal (particularly molten aluminum) includes an impeller affixed to an end of a drive shaft, and a drive source attached to the other end of the drive shaft for rotating the shaft and the impeller. The movement of the impeller draws molten metal and scrap metal downward into the molten metal bath in order to melt the scrap. A circulation pump is often used in conjunction with the scrap melter to circulate the molten metal in order to maintain a relatively constant temperature within the molten metal.


The materials forming the components that contact the molten metal bath should remain relatively stable in the bath. Structural refractory materials, such as graphite or ceramics, that are resistant to disintegration by corrosive attack from the molten metal may be used. As used herein “ceramics” or “ceramic” refers to any oxidized metal (including silicon, such as silicon dioxide) or carbon-based material, excluding graphite, or other ceramic material capable of being used in a molten metal. “Graphite” means any type of graphite, whether or not chemically treated. Graphite is suitable for being formed into pump components because it is (a) soft and relatively easy to machine, (b) not as brittle as ceramics and less prone to breakage, and (c) less expensive than ceramics. Ceramic, however, is more resistant to corrosion by molten aluminum than graphite.


Some devices or systems used to transfer molten metal include a molten metal pump and a molten metal-transfer conduit, or metal-transfer conduit. The molten metal pump may have a pump base with a pump chamber in which a rotor is positioned, and a discharge that extends from the pump chamber to a pump outlet formed in a side of the pump base. The metal-transfer conduit has a metal-transfer inlet (or transfer inlet) in fluid communication with the pump outlet. In prior devices there was often a gap between the pump outlet and the transfer inlet so more pump speed was required to raise the level of molten metal in the metal-transfer conduit. Alignment of the pump outlet with the transfer inlet of the metal-transfer conduit would be an advantage. The better the alignment, the less pressure required from the pump to push molten metal into the metal-transfer conduit, up the passage of the metal-transfer conduit, and out of the transfer outlet.


SUMMARY

Disclosed is a device that includes (1) a pump having a pump base, and (2) a metal-transfer conduit in communication with the pump. As the pump pumps molten metal, the molten metal exits the outlet of the pump, enters the inlet of the metal-transfer conduit, travels up the metal-transfer passage of the metal-transfer conduit, and exits the conduit outlet. A launder or pipe is preferably connected to the metal-transfer conduit outlet so molten metal exiting the metal-transfer conduit outlet enters such a structure and is transferred to where the operator desires.


The pump may be a circulation pump or gas-injection pump having a base configured to closely align with, and potentially connect to, the metal-transfer conduit.


The pump base includes an indentation in one side, wherein the indentation is configured to receive the metal-transfer conduit, and a pump outlet in the indentation. The metal-transfer conduit has a transfer inlet that leads to a passage inside of the metal-transfer conduit and a transfer outlet above the transfer inlet.


The metal-transfer conduit is positioned in the indentation such that the pump outlet is aligned with the transfer inlet. As the pump is operated molten metal exits the pump outlet and enters the transfer inlet. The molten metal then travels upwards in the passage until it passes through the transfer outlet and out of the metal-transfer conduit.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a side, perspective view of a device according to this disclosure, wherein the device is configured to be installed in a vessel designed to contain molten metal.



FIG. 2 is a side, perspective, exploded view of the device of FIG. 1.



FIG. 3 is a front, perspective view of the device of FIG. 1.



FIG. 4 is a side view of the device of FIG. 1.



FIG. 5 is a front view of the device of FIG. 1.



FIG. 6 is a top view of the device of FIG. 1.



FIG. 7 is a perspective, side view of a pump base according to this disclosure.



FIG. 8 is a top view of the pump base of FIG. 7.



FIG. 9 is a cross-sectional view taken along line A-A of FIG. 8.



FIG. 10 is a front view of the pump base of FIG. 8.



FIG. 11 is a cross-sectional view of taken along line D-D of FIG. 10.



FIG. 12 is a perspective, rear view of a transfer conduit.



FIG. 13 is a rear view of the transfer conduit of FIG. 12.



FIG. 14 is a side, cross-sectional view showing the passageway of the transfer conduit of FIG. 12.



FIG. 15 is a top view of the transfer conduit of FIG. 11.



FIG. 16 is a perspective, side view of an alternate embodiment of a device according to this disclosure.



FIG. 17 is a side, perspective, exploded view of the device of FIG. 16.



FIG. 18 is a side view of the device of FIG. 15.



FIG. 19 is a front view of the device of FIG. 15.



FIG. 20 is a top view of the device of FIG. 15.



FIG. 21 is a partial, cross-sectional front view of the device of FIG. 20 taken along line B-B.



FIG. 22 is a close-up view of detail C of FIG. 21.



FIG. 23 is an enlarged, front, perspective view of the embodiment of FIG. 16.



FIG. 24 is a partially exploded, front perspective view of the device of FIG. 23.



FIG. 25 is a close-up, partial, front, perspective view of the device of FIG. 23.



FIG. 26 is a close-up, partial, exploded view of the device of FIG. 23.





DETAILED DESCRIPTION

Turning now to the drawings, where the purpose is to describe a preferred embodiment of the invention and not to limit same, a device 10 includes a pump 100 and a metal-transfer conduit 500.


Pump

As seen, for example, in FIGS. 1-11, pump 100 is preferably a circulation pump and can be any type of circulation pump, or gas-release pump, satisfactory to move molten metal into the metal-transfer conduit as described herein. The structure of circulation pumps is known to those skilled in the art. The pump 100 preferably has a superstructure (or platform) 122, a drive source 124 (which is most preferably a pneumatic motor) mounted on the superstructure 122, support posts 126, a drive shaft 128, and a pump base 130. Motor 124 as shown is secured in part to platform 122 by a strap 125. Motor 124 preferably is partially surrounded by a cooling shroud 131, which is known in the art.


The support posts 126 connect the superstructure 122 to the pump base 130. The components of pump 100 that are immersed in molten metal, such as the pump base, support posts, rotor, and rotor shaft, are preferably comprised of graphite and/or ceramic.


Drive shaft 128 preferably includes a motor drive shaft 128A that extends downward from the motor 124, a rotor shaft 128B, and a coupling 128C. Drive shaft 128 is preferably comprised of steel. Rotor drive shaft 128B is preferably comprised of graphite, or graphite coated with a ceramic. Coupling 128C is preferably comprised of steel and connects the motor drive shaft 128A to the rotor drive shaft 128B.


The pump base 130 includes a first side 130A, a second side 130B, a third side 130C, and a fourth side 140. Pump base 130 further includes an inlet 132 at the top of the pump base 130 (but an inlet may instead be in the bottom surface of base 130, or the base 130 may have an inlet in the top surface and bottom surface of the base), wherein the inlet 132 is an opening that leads to a pump chamber 134.


Pump chamber 134 is a cavity formed in the pump base 130. The pump chamber 134 is connected to a tangential discharge 136 that leads to a pump outlet 138, which is an opening in the side wall 140 of the pump base 130. As shown, the side wall 140 of the pump base 130 has an indentation 142 formed therein and the pump outlet 138 is positioned in the indentation 142. This configuration is shown, for example, FIGS. 2, 7 and 8.


Side 140 has a first outer recess 140A and a second outer recess 140B. Two legs 140C and 140D are formed on either side of indentation 142. As shown, indentation 142 is formed in the center of legs 140C and 140D with pump outlet 138 formed in the center of indentation 142. Any suitable location for indentation 142 and pump outlet 138, however, may be utilized.


The indentation 142 is configured to receive metal-transfer conduit 500 and to align the pump outlet 138 with a transfer inlet 506, as described further below. The indentation preferably has a depth D of about 1″ to 3″ and a length of about 8″ to 14″. Legs 140C and 140D have respective sides 142A and 142B, which may be chamfered inwards, such as at an angle of about 5°-30°, and most preferably about 7°. The purpose of the angled inner sides 142A, 142B is to assist in locating metal-transfer conduit 500 in indentation 142.


A rotor 200, best seen in FIG. 2, is positioned in the pump chamber 132 and is connected to an end of the rotor shaft 128B that is opposite the coupling 128C.


In operation, the motor 124 rotates the drive shaft 128, which rotates the rotor 200. As the rotor (also called an impeller) 200 rotates, it moves molten metal out of the pump chamber 134, through the discharge 136, and through the pump outlet 138.


Metal-Transfer Conduit

A metal-transfer conduit 500 is an enclosed structure configured to be positioned in indentation 142 and may be connected to and entirely supported by pump 100. Metal-transfer conduit 500 as shown (and best seen in FIGS. 1-5 and 12-15) is a generally rectangular structure, but can be of any suitable shape or size, wherein the size depends on the size of the pump with which the metal-transfer conduit is used.


Metal-transfer conduit 500 is preferably comprised of material capable of withstanding the heat and corrosive environment of molten metal (particularly molten aluminum). Most preferably the heat resistant material is a high temperature, castable cement, with a high silicon carbide content, such as ones manufactured by AP Green or Harbison Walker, each of which are part of ANH Refractory, based at 400 Fairway Drive, Moon Township, Pa. 15108, or Allied Materials. Cement (if used) to connect metal-transfer conduit 500 to pump base 130 is of a type know by those skilled in the art, and is cast in a conventional manner.


In the embodiment shown, the metal-transfer conduit 500 has a bottom portion B and a top portion T. The bottom portion is preferably comprised of or consists of graphite because graphite is relatively inexpensive and simple to machine, which is helpful in obtaining dimensions sufficient for the bottom portion to be received in the indentation 142 and for the transfer inlet 506 to align with the pump outlet 138.


Metal-transfer conduit 500 as shown has four sides 502A, 502B, 502C and 502D, a bottom surface 502E a top surface 502F, a transfer inlet 506, a passage 508, and a transfer outlet 510. As best seen in FIG. 15, metal-transfer conduit 500 narrows moving from side 502A to side 502C, and sides 502B and 502D are formed at angles of about 5°-10°, or 7°, or 7⅛°, or 7.13°. The purpose of the narrowing configuration (if used) is to more easily position metal-transfer conduit 500 in indentation 142.


Transfer inlet 506 is formed in side 502C, preferably starting about 2″-6″, or 1 ½″-3″, from bottom surface 502E. Transfer inlet 506 can be of any suitable size and shape, and as shown has rounded sides 506A and 506B and a height of about 2″-4″ (or about 3.25″) and a width of about 4″-6″ (or about 5″). Transfer inlet 506 may have the same size and dimensions of pump outlet 138 or it may have a cross-sectional area that is smaller or larger than the cross-sectional area of pump outlet 138. For example, the transfer inlet 506 may have a cross-sectional area that is 5%-10%, 10%-20%, 20%-30%, 30%-40%, 40%-50%, or any amount from 5%-50% larger or smaller than the cross-sectional area of pump outlet 138. The cross-sectional area of the pump outlet 138 is measured at the outer surface of indentation 142, and the cross-sectional area of transfer inlet 506 is measured at the outer surface of side 502C.


Transfer inlet 506 functions to allow molten metal to pass through it and into passage 508. Transfer inlet 506 may be configured to receive an extension (not shown) of base 130 of pump 100, wherein the pump outlet 138 is formed at the end of the extension.


Metal-transfer conduit 500 has a transfer outlet 510 formed in its top surface 512. Transfer outlet 510 is of any suitable size and shape to permit molten metal to move through it.


Pump base 130 and metal-transfer conduit 500 may also have structural features such as ridges, projections, grooves, or bores to assist in aligning metal-transfer conduit 500 with indentation 142 and pump outlet 138 with transfer inlet 506.


When aligned, pump outlet 138 and transfer inlet 506 are about 0-3″ apart, or about 0-2″ apart, or about ¼″-2″ apart or 0-½″ apart. The pump outlet 138 and transfer inlet 506 are also preferably aligned vertically and horizontally so the respective centers of pump outlet and transfer inlet 506 are approximately aligned. By maintaining pump outlet 138 and transfer inlet 506 in close proximity, most molten metal from pump outlet 138 enters transfer inlet 506 when pump 100 is activated. Little pump speed or pressure is wasted, which helps the overall function of device 10.


Metal-transfer conduit 400 includes a groove 520 on side 502B and groove 522 on side 502B. Each groove terminates at side 502A and extends slightly (about ½″-1″) onto side 502C. The purpose of grooves 520 and 522 is to connect to claim 600 as described herein.


Clamp

Clamp 600 is preferably comprised of steel and has a first plate 602 that is configured to be positioned on top surface 502F of metal-transfer conduit 500 and be connected thereto by suitable fasteners. First plate 602 has an opening 602A that is configured to align with transfer outlet 510. Second plate 604 is connected to first plate 602 by hinges 608, so clamp can be folded from a first, contracted position, shown in FIG. 2 to a second, open position shown in FIGS. 1 and 3-6.


Second plate 604 is configured to be positioned on and be fastened to platform 122 by any suitable fasteners. A step-up section 606 further connects first plate 602 to second plate 604 and is preferable fastened to a side of platform 122 by any suitable fasteners.


Front plate 610 is connected to and extends downwards from first plate 602, and is connected to side 502A of metal-transfer conduit 500 by fasteners. Side portions 612 each have ridges (not shown) that mate, respectively, with grooves 520 and 522 to secure clamp 600 to metal-transfer conduit 500.


Operation

In operation, when the motor is activated, molten metal is pumped out of the pump outlet 138 through the transfer inlet 506, and into passage 508. Passage 508 fills with molten metal until the molten metal reaches the transfer outlet 510. Molten metal then exits transfer outlet 510. The transfer outlet 510 may be connected to a pipe, launder or other structure that further transfers the molten metal.


Alternate Embodiment

Another embodiment 100 of the invention is shown in FIGS. 16-22. This embodiment is the same as the one shown in FIGS. 1-15 except for a modification to the metal-transfer conduit and the clamp. The pump is previously-described pump 100.


Metal-Transfer Conduit

The metal-transfer conduit 700 is the same as previously described metal-transfer conduit 500 except that it is shorter as compared to the height of pump 100. Metal-transfer conduit 700 has a top portion T1 that is preferably comprised of ceramic, such as silicon dioxide, and a bottom portion D1 that is preferably comprised of graphite.


Clamp

Clamp 800 is for connecting metal-transfer conduit 700 to the superstructure 122 of pump 100, and to assist in aligning the transfer inlet of metal transfer conduit 700 with the pump outlet 138 of pump base 130. Clamp 800 has an attachment portion 802 and support portion 900. Attachment portion 802 has a mounting plate 804 and insulation 806.


Mounting plate 804 has an opening 808 that communicates with a transfer outlet formed in the top of metal-transfer conduit 700, and apertures 810 that receive fasteners 812 that are positioned through apertures 810 and received in bores (not shown) in the top surface of metal-transfer conduit 700. In this manner the attachment portion 802 and clamp 800 are attached to metal-transfer conduit 700, although any suitable attachment mechanism may be used.


Eyelets 812 are attached to mounting plate 804 and are used to lift or lower clamp 800 and metal-transfer conduit 700. Insulation 806 helps protect the metal mounting plate 804 from the heat of molten metal in the vessel in which device 100 is positioned. As shown, insulation 806 is formed of two insulating sheets of material, although any suitable structure may be utilized. Insulation 806 extends along the rear and both sides of metal-transfer conduit 700, but does not extend along the front of metal-transfer conduit 700, because mounting plate 804 does not extend past the front of metal-transfer conduit 700.


Support portion 900 includes two gussets 902, 904 that are preferably comprised of steel and are welded or otherwise connected to mounting plate 804. Connectors 906 are shown as formed of square tubing and are attached, such as by welding or other form of attachment, to each of gussets 902, 904. Each connector 906 has a substantially vertical section 906A and a substantially horizontal section 906B. Each connector 906 further includes an alignment plate 908 that includes a slot 908A.


A riser ledge assembly 1100 is configured to connect to support portion 900 of clamp 800 in order to connect the metal transfer conduit 700 to pump 100 and to support and properly position metal-transfer conduit 700 in indentation 142. Riser ledge assembly 1100 as shown has a first side 1102 and a second side 1104, although it could be one piece or more than two pieces. Each side 1102, 1104 has a fastening plate 1106 with apertures (not shown) that receive fasteners 1108 that are received in bores 1110 in edge 122A of platform (or superstructure) 122.


Each side 1102, 1104 also has a flange 1112 that is connected to a swivel bolt 1114, and a second flange 1116 with a projection 1118.


In operation, riser ledge assembly 1100 is connected to superstructure 122 by positioning sides 1102, 1104 on edge 122A, aligning fasteners 1108 with bores 1110 and positioning fasteners 1108 in bores 1110, such as by screwing the fasteners into the bores, or by positioning the fastener through the bores 1110 and securing them with nuts on the side edge 122A opposite riser ledge assembly 1100. Clamp 800 is positioned on metal-transfer conduit 700. Clamp 800, with riser tube 700 attached, is connected to riser ledge assembly 1100 by positioning connectors 906 over flanges 1116 and projections 1118, and projections 1118 are received in mating depressions (not shown) in connectors 906. The metal transfer conduit 700 swings into place in indentation 142 in base 130, and the slots 908A of alignment plate 908 are positioned against threaded rods 1114A of swivel bolts 1114. Openings 1110 are larger in diameter than the bodies of fasteners 1108, which allows for fasteners 1108 to be moved upwards or downwards or sideways, which alters the position of the metal-transfer conduit 700. In one embodiment, the vertical position and/or sideways position of metal-transfer conduit 700 can be adjusted by up to about ½″ or up to about ¾″.


Operation

Device 1000 operates in the same manner as previously described device 10.


NON-LIMITING EXAMPLES

Some non-limiting examples of this disclosure are as follows:


Example 1: A device for transferring molten metal, the device comprising:


(a) a pump configured for pumping molten metal, wherein the pump comprises (i) a pump base including a pump chamber, a pump outlet, a discharge extending from the pump chamber to the outlet, (ii) a rotor in the pump chamber, and (iii) a front side that includes an indentation, wherein the pump outlet is positioned in the indentation; and


(b) a metal-transfer conduit having a top portion and a bottom portion, a transfer inlet, a transfer outlet, and a passage extending from the transfer inlet to the transfer outlet, wherein the bottom portion of the transfer conduit is positioned in the indentation and the transfer inlet is juxtaposed and in fluid communication with the pump outlet.


Example 2: The device of example 1, wherein the pump outlet is in the center of the indentation.


Example 3: The device of example 1 or 2, wherein the pump further includes a platform that supports a motor.


Example 4: The device of example 3, wherein the platform is attached to a clamp and the clamp is further attached to the top portion of the metal-transfer conduit.


Example 5: The device of any of examples 1-4, wherein the bottom portion of the metal-transfer conduit is comprised of graphite and the top portion of the transfer conduit is comprised of ceramic.


Example 6: The device of example 5, wherein the ceramic is silicon carbide.


Example 7: The device of example 5 or 6, wherein the bottom portion consists of graphite.


Example 8: The device of any of examples 5 or 6, wherein the top portion consists of ceramic.


Example 9: The device of any of examples 1-8, wherein the discharge is tangential to the pump chamber.


Example 10: The device of any of examples 1-10, wherein the transfer outlet is on a top surface of the transfer conduit.


Example 11: The device of any of examples 1-11, wherein the pump outlet has an outer cross-sectional area and the transfer inlet has an outer cross-sectional area.


Example 12: The device of example 11, wherein the cross-sectional area of the pump outlet is the same as the cross-sectional area of the transfer inlet.


Example 13: The device of example 11, wherein the cross-sectional area of the pump outlet is greater than the cross-sectional area of the transfer inlet.


Example 14: The device of example 11, wherein the cross-sectional area of the transfer inlet is greater than the cross-sectional area of the pump outlet.


Example 15: The device of any of examples 1-14, wherein the metal-transfer conduit is connected to the pump base.


Example 16: The device of example 15, wherein the metal-transfer conduit is cemented to the pump base.


Example 17: The device of any of examples 1-16, wherein a distance between the pump outlet and the transfer inlet is 2″ or less.


Example 18: The device of any of examples 1-16, wherein a distance between the pump outlet and the transfer inlet is ½″ or less.


Example 19: The device of any of examples 1-18, wherein the side of the pump base that includes the indentation has a first chamfered side and a second chamfered side.


Example 20: The device of example 19, wherein the first chamfered side and the second chamfered side are chamfered inwards by 5° to 20°.


Example 21: The device of any of examples 1-20, wherein the indentation has a depth of 1″ to 4″.


Example 22: The device of any of examples 1-21, wherein the indentation has a length of 8″ to 14″.


Example 23: The device of any of examples 1-22, wherein the indentation has a first, inner wall and a second, inner wall.


Example 24: The device of example 23, wherein the first, inner wall is angled inwards by 5° to 20° and the second, inner wall is angled inwards by 5° to 20°.


Example 25: The device of any of examples 1-24, wherein the pump outlet and the transfer inlet are vertically aligned.


Example 26: The device of any of examples 1-25, wherein the pump outlet and the transfer inlet are horizontally aligned.


Example 27: The device of any of examples 1-26, wherein the pump base further includes one or more locater structures configured to align the pump base with the metal-transfer conduit.


Example 28: The device of example 27, wherein the one or more locater structures are in the indentation.


Example 29: The device of any of examples 1-28, wherein the metal-transfer conduit has one or more locater structures configured to align the metal-transfer conduit with the pump base.


Example 30: The device of any of examples 1-29, wherein the metal-transfer conduit has a front surface having a first width, a second surface on which the transfer inlet is positioned, wherein the second surface has a second width, and the second width is less than the first width.


Example 31: The device of example 30, wherein the metal-transfer conduit has a two side surfaces that connect the first surface to the second surface, wherein each of the side surfaces are angled.


Example 32: The device of example 4, wherein the clamp has a first plate attached to a top surface of the metal transfer conduit and a second plate attached to the platform.


Example 33: The device of example 32, wherein the clamp further includes an opening in the first plate and the opening is aligned with the transfer outlet.


Example 34: The device of example 32 or 33, wherein the clamp further includes a step-up section that connects the first plate to the second plate.


Example 35: The device of example 34, wherein the step-up section is connected to a side of the platform.


Example 36: The device of any of examples 32-35, wherein the first plate and second plate are connected by hinges and the clamp is movable between a first, compressed position and a second, expanded position.


Example 37: The device of any of examples 4 or 32-36, wherein the metal transfer conduit has grooves in two sides and the clamp has side plates with ridges received in the grooves.


Some additional, non-limiting examples of this disclosure are as follows:


Example 1: A pump base for a molten metal pump, the pump base comprising:


(a) a pump chamber configured to house a rotor, a pump outlet in one side of the base, and a discharge extending from the pump chamber to the pump outlet, and (b) a front side that includes an indentation configured to receive a metal-transfer conduit, wherein the pump outlet is positioned in the indentation.


Example 2: The device of example 1, wherein the outlet is in the center of the indentation.


Example 3: The device of example 1 or 2, wherein the pump further includes a platform that supports a motor.


Example 4: The device of example 3, wherein the platform is configured to attach to the top portion of the transfer conduit.


Example 5: The device of any of examples 1-4, wherein the discharge is tangential to the pump chamber.


Example 6: The device of any of examples 1-11, wherein the pump outlet has an outer cross-sectional area and the transfer inlet has an outer cross-sectional area.


Example 7: The device of any of examples 1-18, wherein the front side of the pump base has a first chamfered side and a second chamfered side.


Example 8: The device of example 19, wherein the first chamfered side and the second chamfered side are chamfered inwards by 5° to 20°.


Example 9: The device of any of examples 1-20, wherein the indentation has a depth of 1″ to 4″.


Example 10: The device of any of examples 1-21, wherein the indentation has a length of 8″ to 14″.


Example 11: The device of any of examples 1-22, wherein the indentation has a first, inner wall and a second, inner wall.


Example 12: The device of example 23, wherein the first, inner wall is angled inwards by 5° to 20° and the second, inner wall is angled inwards by 5° to 20°.


Some additional, non-limiting examples of this disclosure are as follows:


Example 1: A transfer conduit for use with a molten metal pump, the transfer conduit comprising: a top portion and a bottom portion, a transfer inlet, a transfer outlet, and a passage extending from the transfer inlet to the transfer outlet, wherein the bottom portion of the transfer conduit is positioned in the indentation and the transfer inlet is juxtaposed and in fluid communication with the outlet.


Example 2: The device of example 1, wherein the bottom portion of the transfer conduit is comprised of graphite and the top portion of the transfer conduit is comprised of ceramic.


Example 3: The device of example 2, wherein the ceramic is silicon carbide.


Example 4: The device of example 2 or 3, wherein the bottom portion consists of graphite.


Example 5: The device of any of examples 2 or 3, wherein the top portion consists of ceramic.


Example 6: The device of any of examples 1-5, wherein the transfer outlet is in a top surface of the transfer conduit.


Having thus described some embodiments of the invention, other variations and embodiments that do not depart from the spirit of the invention will become apparent to those skilled in the art. The scope of the present invention is thus not limited to any particular embodiment, but is instead set forth in the appended claims and the legal equivalents thereof. Unless expressly stated in the written description or claims, the steps of any method recited in the claims may be performed in any order capable of yielding the desired result.

Claims
  • 1. A device for transferring molten metal, the device comprising: (a) a pump configured for pumping molten metal, wherein the pump comprises (i) a pump base including a pump chamber, a pump outlet, and a discharge extending from the pump chamber to the outlet, (ii) a rotor in the pump chamber, and (iii) a front side that includes an indentation, wherein the pump outlet is positioned in the indentation; and(b) a metal-transfer conduit having a top portion and a bottom portion, a transfer inlet, a transfer outlet, and a passage extending from the transfer inlet to the transfer outlet, wherein the bottom portion of the metal-transfer conduit is positioned in the indentation and the transfer inlet is juxtaposed and in fluid communication with the pump outlet,wherein the metal-transfer conduit has a front surface having a first width, and a rear surface on which the transfer inlet is positioned, wherein the rear surface has a second width, and the second width is less than the first width; and the metal-transfer conduit further includes two side surfaces that connect the front surface to the rear surface, wherein each of the two side surfaces is angled.
  • 2. The device of claim 1, wherein the pump outlet is in a center of the indentation.
  • 3. The device of claim 1, wherein the pump further includes a platform that is attached to a clamp, and the clamp is further attached to the top portion of the metal-transfer conduit.
  • 4. The device of claim 1, wherein the bottom portion of the metal-transfer conduit is comprised of graphite and the top portion of the transfer conduit is comprised of ceramic.
  • 5. The device of claim 1, wherein the discharge is tangential to the pump chamber.
  • 6. The device of claim 1, wherein the transfer outlet is on a top surface of the metal-transfer conduit.
  • 7. The device of claim 1, wherein the metal-transfer conduit is connected to the pump base.
  • 8. The device of claim 7, wherein the metal-transfer conduit is cemented to the pump base.
  • 9. The device of claim 1, wherein a distance between the pump outlet and the transfer inlet is 2″ or less.
  • 10. The device of claim 1, wherein a distance between the pump outlet and the transfer inlet is ½″ or less.
  • 11. The device of claim 1, wherein the front side of the pump base has a first chamfered outer side and a second chamfered outer side.
  • 12. The device of claim 1, wherein the indentation has a first, inner wall and a second, inner wall, wherein the first inner wall is angled inwards by 5° to 20° and the second inner wall is angled inwards by 5° to 20°.
  • 13. The device of claim 1, wherein the pump outlet and the transfer inlet are vertically aligned.
  • 14. The device of claim 1, wherein the pump outlet and the transfer inlet are horizontally aligned.
  • 15. The device of claim 3, wherein the clamp has a first plate attached to a top surface of the metal transfer conduit and a support section attached to the platform.
  • 16. The device of claim 15, wherein the clamp further includes an opening in the first plate and the opening is aligned with the transfer outlet.
  • 17. The device of claim 15, wherein the clamp further includes a step-up section that connects the first plate to a second plate, wherein the step-up section is connected to a side of the platform.
US Referenced Citations (770)
Number Name Date Kind
35604 Guild Jun 1862 A
116797 Barnhart Jul 1871 A
209219 Bookwalter Oct 1878 A
251104 Finch Dec 1881 A
307845 Curtis Nov 1884 A
364804 Cole Jun 1887 A
390319 Thomson Oct 1888 A
495760 Seitz Apr 1893 A
506572 Wagener Oct 1893 A
585188 Davis Jun 1897 A
757932 Jones Apr 1904 A
882477 Neumann Mar 1908 A
882478 Neumann Mar 1908 A
890319 Wells Jun 1908 A
898499 O'Donnell Sep 1908 A
909774 Flora Jan 1909 A
919194 Livingston Apr 1909 A
1037659 Rembert Sep 1912 A
1100475 Franckaerts Jun 1914 A
1170512 Chapman Feb 1916 A
1196758 Blair Sep 1916 A
1304068 Krogh May 1919 A
1331997 Neal Feb 1920 A
1185314 London Mar 1920 A
1377101 Sparling May 1921 A
1380798 Hansen et al. Jun 1921 A
1439365 Hazell Dec 1922 A
1454967 Gill May 1923 A
1470607 Hazell Oct 1923 A
1513875 Wilke Nov 1924 A
1518501 Gill Dec 1924 A
1522765 Wilke Jan 1925 A
1526851 Hall Feb 1925 A
1669668 Marshall May 1928 A
1673594 Schmidt Jun 1928 A
1697202 Nagle Jan 1929 A
1717969 Goodner Jun 1929 A
1718396 Wheeler Jun 1929 A
1896201 Sterner-Rainer Feb 1933 A
1988875 Saborio Jan 1935 A
2013455 Baxter Sep 1935 A
2035282 Schmeller, Sr. Mar 1936 A
2038221 Kagi Apr 1936 A
2075633 Anderegg Mar 1937 A
2090162 Tighe Aug 1937 A
2091677 Fredericks Aug 1937 A
2138814 Bressler Dec 1938 A
2173377 Schultz, Jr. et al. Sep 1939 A
2264740 Brown Dec 1941 A
2280979 Rocke Apr 1942 A
2290961 Heuer Jul 1942 A
2300688 Nagle Nov 1942 A
2304849 Ruthman Dec 1942 A
2368962 Blom Feb 1945 A
2383424 Stepanoff Aug 1945 A
2423655 Mars et al. Jul 1947 A
2488447 Tangen et al. Nov 1949 A
2493467 Sunnen Jan 1950 A
2515097 Schryber Jul 1950 A
2515478 Tooley et al. Jul 1950 A
2528208 Bonsack et al. Oct 1950 A
2528210 Stewart Oct 1950 A
2543633 Lamphere Feb 1951 A
2566892 Jacobs Apr 1951 A
2625720 Ross Jan 1953 A
2626086 Forrest Jan 1953 A
2676279 Wilson Apr 1954 A
2677609 Moore et al. Apr 1954 A
2698583 House et al. Jan 1955 A
2714354 Farrand Aug 1955 A
2762095 Pemetzrieder Sep 1956 A
2768587 Corneil Oct 1956 A
2775348 Williams Dec 1956 A
2779574 Schneider Jan 1957 A
2787873 Hadley Apr 1957 A
2808782 Thompson et al. Oct 1957 A
2809107 Russell Oct 1957 A
2821472 Peterson et al. Jan 1958 A
2824520 Bartels Feb 1958 A
2832292 Edwards Apr 1958 A
2839006 Mayo Jun 1958 A
2853019 Thornton Sep 1958 A
2865295 Nikolaus Dec 1958 A
2865618 Abell Dec 1958 A
2868132 Rittershofer Jan 1959 A
2901006 Andrews Aug 1959 A
2901677 Chessman et al. Aug 1959 A
2906632 Nickerson Sep 1959 A
2918876 Howe Dec 1959 A
2948524 Sweeney Aug 1960 A
2958293 Pray, Jr. Nov 1960 A
2966345 Burgoon et al. Dec 1960 A
2966381 Menzel Dec 1960 A
2978885 Davison Apr 1961 A
2984524 Franzen May 1961 A
2987885 Hodge Jun 1961 A
3010402 King Nov 1961 A
3015190 Arbeit Jan 1962 A
3039864 Hess Jun 1962 A
3044408 Mellott Jul 1962 A
3048384 Sweeney et al. Aug 1962 A
3070393 Silverberg et al. Dec 1962 A
3092030 Wunder Jun 1963 A
3099870 Seeler Aug 1963 A
3128327 Upton Apr 1964 A
3130678 Chenault Apr 1964 A
3130679 Sence Apr 1964 A
3151565 Albertson et al. Oct 1964 A
3171357 Egger Mar 1965 A
3172850 Englesberg et al. Mar 1965 A
3203182 Pohl Aug 1965 A
3227547 Szekely Jan 1966 A
3244109 Barske Apr 1966 A
3251676 Johnson May 1966 A
3255702 Gehrm Jun 1966 A
3258283 Winberg et al. Jun 1966 A
3272619 Sweeney et al. Sep 1966 A
3289473 Louda Dec 1966 A
3291473 Sweeney et al. Dec 1966 A
3368805 Davey et al. Feb 1968 A
3374943 Cervenka Mar 1968 A
3400923 Howie et al. Sep 1968 A
3417929 Secrest et al. Dec 1968 A
3432336 Langrod et al. Mar 1969 A
3459133 Scheffler Aug 1969 A
3459346 Tinnes Aug 1969 A
3477383 Rawson et al. Nov 1969 A
3487805 Satterthwaite Jan 1970 A
3512762 Umbricht May 1970 A
3512788 Kilbane May 1970 A
3532445 Scheffler et al. Oct 1970 A
3561885 Lake Feb 1971 A
3575525 Fox et al. Apr 1971 A
3581767 Jackson Jun 1971 A
3612715 Yedidiah Oct 1971 A
3618917 Fredrikson et al. Nov 1971 A
3620716 Hess Nov 1971 A
3650730 Derham et al. Mar 1972 A
3689048 Foulard et al. Sep 1972 A
3715112 Carbonnel Feb 1973 A
3732032 Daneel May 1973 A
3737304 Blayden et al. Jun 1973 A
3737305 Blayden et al. Jun 1973 A
3743263 Szekely Jul 1973 A
3743500 Foulard et al. Jul 1973 A
3753690 Emley et al. Aug 1973 A
3759628 Kempf Sep 1973 A
3759635 Carter et al. Sep 1973 A
3767382 Bruno et al. Oct 1973 A
3776660 Anderson et al. Dec 1973 A
3785632 Kraemer et al. Jan 1974 A
3787143 Carbonnel et al. Jan 1974 A
3799522 Brant et al. Mar 1974 A
3799523 Seki Mar 1974 A
3807708 Jones Apr 1974 A
3814400 Seki Jun 1974 A
3824028 Zenkner et al. Jul 1974 A
3824042 Barnes et al. Jul 1974 A
3836280 Koch Sep 1974 A
3839019 Bruno et al. Oct 1974 A
3844972 Tully, Jr. et al. Oct 1974 A
3871872 Downing et al. Mar 1975 A
3873073 Baum et al. Mar 1975 A
3873305 Claxton et al. Mar 1975 A
3881039 Baldieri et al. Apr 1975 A
3886992 Maas et al. Jun 1975 A
3915594 Nesseth Oct 1975 A
3915694 Ando Oct 1975 A
3935003 Steinke et al. Jan 1976 A
3941588 Dremann Mar 1976 A
3941589 Norman et al. Mar 1976 A
3942473 Chodash Mar 1976 A
3954134 Maas et al. May 1976 A
3958979 Valdo May 1976 A
3958981 Forberg et al. May 1976 A
3961778 Carbonnel et al. Jun 1976 A
3966456 Ellenbaum et al. Jun 1976 A
3967286 Andersson et al. Jun 1976 A
3972709 Chin et al. Aug 1976 A
3973871 Hance Aug 1976 A
3984234 Claxton et al. Oct 1976 A
3985000 Hartz Oct 1976 A
3997336 van Linden et al. Dec 1976 A
4003560 Carbonnel Jan 1977 A
4008884 Fitzpatrick et al. Feb 1977 A
4018598 Markus Apr 1977 A
4043146 Stegherr et al. Aug 1977 A
4052199 Mangalick Oct 1977 A
4055390 Young Oct 1977 A
4063849 Modianos Dec 1977 A
4068965 Lichti Jan 1978 A
4073606 Eller Feb 1978 A
4091970 Komiyama et al. May 1978 A
4119141 Thut et al. Oct 1978 A
4125146 Muller Nov 1978 A
4126360 Miller et al. Nov 1978 A
4128415 van Linden et al. Dec 1978 A
4147474 Heimdal et al. Apr 1979 A
4169584 Mangalick Oct 1979 A
4191486 Pelton Mar 1980 A
4213742 Henshaw Jul 1980 A
4242039 Villard et al. Dec 1980 A
4244423 Thut et al. Jan 1981 A
4286985 van Linden et al. Sep 1981 A
4305214 Hurst Dec 1981 A
4322245 Claxton Mar 1982 A
4338062 Neal Jul 1982 A
4347041 Cooper Aug 1982 A
4351514 Koch Sep 1982 A
4355789 Dolzhenkov et al. Oct 1982 A
4356940 Ansorge Nov 1982 A
4360314 Pennell Nov 1982 A
4370096 Church Jan 1983 A
4372541 Bocourt et al. Feb 1983 A
4375937 Cooper Mar 1983 A
4389159 Sarvanne Jun 1983 A
4392888 Eckert et al. Jul 1983 A
4410299 Shimoyama Oct 1983 A
4419049 Gerboth et al. Dec 1983 A
4456424 Araoka Jun 1984 A
4470846 Dube Sep 1984 A
4474315 Gilbert et al. Oct 1984 A
4496393 Lustenberger Jan 1985 A
4504392 Groteke Mar 1985 A
4509979 Bauer Apr 1985 A
4530641 Gschwender Jul 1985 A
4537624 Tenhover et al. Aug 1985 A
4537625 Tenhover et al. Aug 1985 A
4545887 Arnesen Oct 1985 A
4556419 Otsuka et al. Dec 1985 A
4557766 Tenhover et al. Dec 1985 A
4586845 Morris May 1986 A
4592700 Toguchi et al. Jun 1986 A
4594052 Niskanen Jun 1986 A
4596510 Arneth et al. Jun 1986 A
4598899 Cooper Jul 1986 A
4600222 Appling Jul 1986 A
4607825 Briolle et al. Aug 1986 A
4609442 Tenhover et al. Sep 1986 A
4611790 Otsuka et al. Sep 1986 A
4617232 Chandler et al. Oct 1986 A
4634105 Withers et al. Jan 1987 A
4640666 Sodergard Feb 1987 A
4655610 Al-Jaroudi Apr 1987 A
4668166 Lutz May 1987 A
4669953 Gschwender Jun 1987 A
4673434 Withers et al. Jun 1987 A
4682585 Hiltebrandt Jul 1987 A
4684281 Patterson Aug 1987 A
4685822 Pelton Aug 1987 A
4696703 Henderson et al. Sep 1987 A
4701226 Henderson et al. Oct 1987 A
4702768 Areauz et al. Oct 1987 A
4714371 Cuse Dec 1987 A
4717540 McRae et al. Jan 1988 A
4739974 Mordue Apr 1988 A
4741664 Olmstead May 1988 A
4743428 McRae et al. May 1988 A
4747583 Gordon et al. May 1988 A
4767230 Leas, Jr. Aug 1988 A
4770701 Henderson et al. Sep 1988 A
4786230 Thut Nov 1988 A
4802656 Hudault et al. Feb 1989 A
4804168 Otsuka et al. Feb 1989 A
4810314 Henderson et al. Mar 1989 A
4822473 Arnesen Apr 1989 A
4834573 Asano et al. May 1989 A
4842227 Harrington et al. Jun 1989 A
4844425 Piras et al. Jul 1989 A
4851296 Tenhover et al. Jul 1989 A
4854834 Gschwender et al. Aug 1989 A
4859413 Harris et al. Aug 1989 A
4860819 Moscoe et al. Aug 1989 A
4867638 Handtmann et al. Sep 1989 A
4884786 Gillespie Dec 1989 A
4898367 Cooper Feb 1990 A
4908060 Duenkelmann Mar 1990 A
4909704 Lutz Mar 1990 A
4911726 Warkentin Mar 1990 A
4923770 Grasselli et al. May 1990 A
4930986 Cooper Jun 1990 A
4931091 Waite et al. Jun 1990 A
4940214 Gillespie Jul 1990 A
4940384 Amra et al. Jul 1990 A
4954167 Cooper Sep 1990 A
4967827 Campbell Nov 1990 A
4973433 Gilbert et al. Nov 1990 A
4986736 Kajiwara et al. Jan 1991 A
4989736 Andersson et al. Feb 1991 A
5015518 Sasaki et al. May 1991 A
5025198 Mordue et al. Jun 1991 A
5028211 Mordue et al. Jul 1991 A
5029821 Bar-on et al. Jul 1991 A
5058654 Simmons Oct 1991 A
5078572 Amra et al. Jan 1992 A
5080715 Provencher et al. Jan 1992 A
5083753 Soofi Jan 1992 A
5088893 Gilbert et al. Feb 1992 A
5092821 Gilbert et al. Mar 1992 A
5098134 Monckton Mar 1992 A
5099554 Cooper Mar 1992 A
5114312 Stanislao May 1992 A
5126047 Martin et al. Jun 1992 A
5131632 Olson Jul 1992 A
5135202 Yamashita et al. Aug 1992 A
5143357 Gilbert et al. Sep 1992 A
5145322 Senior, Jr. et al. Sep 1992 A
5152631 Bauer Oct 1992 A
5154652 Ecklesdafer Oct 1992 A
5158440 Cooper et al. Oct 1992 A
5162858 Shoji et al. Nov 1992 A
5165858 Gilbert et al. Nov 1992 A
5177304 Nagel Jan 1993 A
5191154 Nagel Mar 1993 A
5192193 Cooper et al. Mar 1993 A
5202100 Nagel et al. Apr 1993 A
5203681 Cooper Apr 1993 A
5209641 Hoglund et al. May 1993 A
5215448 Cooper Jun 1993 A
5268020 Claxton Dec 1993 A
5286163 Amra et al. Feb 1994 A
5298233 Nagel Mar 1994 A
5301620 Nagel et al. Apr 1994 A
5303903 Butler et al. Apr 1994 A
5308045 Cooper May 1994 A
5310412 Gilbert et al. May 1994 A
5318360 Langer et al. Jun 1994 A
5322547 Nagel et al. Jun 1994 A
5324341 Nagel et al. Jun 1994 A
5330328 Cooper Jul 1994 A
5354940 Nagel Oct 1994 A
5358549 Nagel et al. Oct 1994 A
5358697 Nagel Oct 1994 A
5364078 Pelton Nov 1994 A
5369063 Gee et al. Nov 1994 A
5383651 Blasen et al. Jan 1995 A
5388633 Mercer, II et al. Feb 1995 A
5395405 Nagel et al. Mar 1995 A
5399074 Nose et al. Mar 1995 A
5407294 Giannini Apr 1995 A
5411240 Rapp et al. May 1995 A
5425410 Reynolds Jun 1995 A
5431551 Aquino et al. Jul 1995 A
5435982 Wilkinson Jul 1995 A
5436210 Wilkinson et al. Jul 1995 A
5443572 Wilkinson et al. Aug 1995 A
5454423 Tsuchida et al. Oct 1995 A
5468280 Areaux Nov 1995 A
5470201 Gilbert et al. Nov 1995 A
5484265 Horvath et al. Jan 1996 A
5489734 Nagel et al. Feb 1996 A
5491279 Robert et al. Feb 1996 A
5494382 Kloppers Feb 1996 A
5495746 Sigworth Mar 1996 A
5505143 Nagel Apr 1996 A
5505435 Laszlo Apr 1996 A
5509791 Turner Apr 1996 A
5511766 Vassilicos Apr 1996 A
5520422 Friedrich May 1996 A
5537940 Nagel et al. Jul 1996 A
5543558 Nagel et al. Aug 1996 A
5555822 Loewen et al. Sep 1996 A
5558501 Wang et al. Sep 1996 A
5558505 Mordue et al. Sep 1996 A
5571486 Robert et al. Nov 1996 A
5585532 Nagel Dec 1996 A
5586863 Gilbert et al. Dec 1996 A
5591243 Colussi et al. Jan 1997 A
5597289 Thut Jan 1997 A
5613245 Robert Mar 1997 A
5616167 Eckert Apr 1997 A
5622481 Thut Apr 1997 A
5629464 Bach et al. May 1997 A
5634770 Gilbert et al. Jun 1997 A
5640706 Nagel et al. Jun 1997 A
5640707 Nagel et al. Jun 1997 A
5640709 Nagel et al. Jun 1997 A
5655849 McEwen et al. Aug 1997 A
5660614 Waite et al. Aug 1997 A
5662725 Cooper Sep 1997 A
5676520 Thut Oct 1997 A
5678244 Shaw et al. Oct 1997 A
5678807 Cooper Oct 1997 A
5679132 Rauenzahn et al. Oct 1997 A
5685701 Chandler et al. Nov 1997 A
5690888 Robert Nov 1997 A
5695732 Sparks et al. Dec 1997 A
5716195 Thut Feb 1998 A
5717149 Nagel et al. Feb 1998 A
5718416 Flisakowski et al. Feb 1998 A
5735668 Klein Apr 1998 A
5735935 Areaux Apr 1998 A
5741422 Eichenmiller et al. Apr 1998 A
5744093 Davis Apr 1998 A
5744117 Wilkinson et al. Apr 1998 A
5745861 Bell et al. Apr 1998 A
5755847 Quayle May 1998 A
5758712 Pederson Jun 1998 A
5772324 Falk Jun 1998 A
5776420 Nagel Jul 1998 A
5785494 Vild et al. Jul 1998 A
5842832 Thut Dec 1998 A
5846481 Tilak Dec 1998 A
5858059 Abramovich et al. Jan 1999 A
5863314 Morando Jan 1999 A
5866095 McGeever et al. Feb 1999 A
5875385 Stephenson et al. Feb 1999 A
5935528 Stephenson et al. Aug 1999 A
5944496 Cooper Aug 1999 A
5947705 Mordue et al. Sep 1999 A
5948352 Jagt et al. Sep 1999 A
5951243 Cooper Sep 1999 A
5961285 Meneice et al. Oct 1999 A
5963580 Eckert Oct 1999 A
5992230 Scarpa et al. Nov 1999 A
5993726 Huang Nov 1999 A
5993728 Vild Nov 1999 A
6007313 Siegel Dec 1999 A
6019576 Thut Feb 2000 A
6027685 Cooper Feb 2000 A
6036745 Gilbert et al. Mar 2000 A
6074455 van Linden et al. Jun 2000 A
6082965 Morando Jul 2000 A
6093000 Cooper Jul 2000 A
6096109 Nagel et al. Aug 2000 A
6113154 Thut Sep 2000 A
6123523 Cooper Sep 2000 A
6152691 Thut Nov 2000 A
6168753 Morando Jan 2001 B1
6187096 Thut Feb 2001 B1
6199836 Rexford et al. Mar 2001 B1
6217823 Vild et al. Apr 2001 B1
6231639 Eichenmiller May 2001 B1
6250881 Mordue et al. Jun 2001 B1
6254340 Vild et al. Jul 2001 B1
6270717 Tremblay et al. Aug 2001 B1
6280157 Cooper Aug 2001 B1
6293759 Thut Sep 2001 B1
6303074 Cooper Oct 2001 B1
6345964 Cooper Feb 2002 B1
6354796 Morando Mar 2002 B1
6358467 Mordue Mar 2002 B1
6364930 Kos Apr 2002 B1
6371723 Grant et al. Apr 2002 B1
6398525 Cooper Jun 2002 B1
6439860 Greer Aug 2002 B1
6451247 Mordue et al. Sep 2002 B1
6457940 Lehman Oct 2002 B1
6457950 Cooper et al. Oct 2002 B1
6464458 Vild et al. Oct 2002 B2
6474962 Allen et al. Nov 2002 B1
6495948 Garrett, III Dec 2002 B1
6497559 Grant Dec 2002 B1
6500228 Klingensmith et al. Dec 2002 B1
6503292 Klingensmith et al. Jan 2003 B2
6524066 Thut Feb 2003 B2
6533535 Thut Mar 2003 B2
6551060 Mordue et al. Apr 2003 B2
6562286 Lehman May 2003 B1
6656415 Kos Dec 2003 B2
6679936 Quackenbush Jan 2004 B2
6689310 Cooper Feb 2004 B1
6709234 Gilbert et al. Mar 2004 B2
6716147 Hinkle et al. Apr 2004 B1
6723276 Cooper Apr 2004 B1
6805834 Thut Oct 2004 B2
6843640 Mordue et al. Jan 2005 B2
6848497 Sale et al. Feb 2005 B2
6869271 Gilbert et al. Mar 2005 B2
6869564 Gilbert Mar 2005 B2
6881030 Thut Apr 2005 B2
6887424 Ohno et al. May 2005 B2
6887425 Mordue et al. May 2005 B2
6902696 Klingensmith et al. Jun 2005 B2
7037462 Klingensmith et al. May 2006 B2
7074361 Carolla et al. Jul 2006 B2
7083758 Tremblay Aug 2006 B2
7131482 Vincent et al. Nov 2006 B2
7157043 Neff Jan 2007 B2
7204954 Mizuno Apr 2007 B2
7273582 Mordue Sep 2007 B2
7279128 Kennedy et al. Oct 2007 B2
7326028 Morando Feb 2008 B2
7402276 Cooper Jul 2008 B2
7470392 Cooper Dec 2008 B2
7476357 Thut Jan 2009 B2
7481966 Mizuno Jan 2009 B2
7497988 Thut Mar 2009 B2
7507365 Thut Mar 2009 B2
7507367 Cooper Mar 2009 B2
7543605 Morando Jun 2009 B1
7731891 Cooper Jun 2010 B2
7771171 Mohr Aug 2010 B2
7841379 Evans Nov 2010 B1
7896617 Morando Mar 2011 B1
7906068 Cooper Mar 2011 B2
8075837 Cooper Dec 2011 B2
8110141 Cooper Feb 2012 B2
8137023 Greer Mar 2012 B2
8142145 Thut Mar 2012 B2
8178037 Cooper May 2012 B2
8328540 Wang Dec 2012 B2
8333921 Thut Dec 2012 B2
8337746 Cooper Dec 2012 B2
8361379 Cooper Jan 2013 B2
8366993 Cooper Feb 2013 B2
8409495 Cooper Apr 2013 B2
8440135 Cooper May 2013 B2
8444911 Cooper May 2013 B2
8449814 Cooper May 2013 B2
8475594 Bright et al. Jul 2013 B2
8475708 Cooper Jul 2013 B2
8480950 Jetten et al. Jul 2013 B2
8501084 Cooper Aug 2013 B2
8524146 Cooper Sep 2013 B2
8529828 Cooper Sep 2013 B2
8535603 Cooper Sep 2013 B2
8580218 Turenne et al. Nov 2013 B2
8613884 Cooper Dec 2013 B2
8714914 Cooper May 2014 B2
8753563 Cooper Jun 2014 B2
8840359 Vick et al. Sep 2014 B2
8899932 Tetkoskie et al. Dec 2014 B2
8915830 March et al. Dec 2014 B2
8920680 Mao Dec 2014 B2
9011761 Cooper Apr 2015 B2
9017597 Cooper Apr 2015 B2
9034244 Cooper May 2015 B2
9057376 Thut Jun 2015 B2
9057377 Thut Jun 2015 B1
9074601 Thut Jul 2015 B1
9080577 Cooper Jul 2015 B2
9108224 Schererz et al. Aug 2015 B2
9108244 Cooper Aug 2015 B2
9156087 Cooper Oct 2015 B2
9193532 March et al. Nov 2015 B2
9205490 Cooper Dec 2015 B2
9234520 Morando Jan 2016 B2
9273376 Lutes et al. Mar 2016 B2
9328615 Cooper May 2016 B2
9377028 Cooper Jun 2016 B2
9382599 Cooper Jul 2016 B2
9383140 Cooper Jul 2016 B2
9388925 Juarez Jul 2016 B2
9409232 Cooper Aug 2016 B2
9410744 Cooper Aug 2016 B2
9422942 Cooper Aug 2016 B2
9435343 Cooper Sep 2016 B2
9464636 Cooper Oct 2016 B2
9470239 Cooper Oct 2016 B2
9476644 Howitt et al. Oct 2016 B2
9481035 Cooper Nov 2016 B2
9481918 Vild et al. Nov 2016 B2
9482469 Cooper Nov 2016 B2
9494366 Thut Nov 2016 B1
9506129 Cooper Nov 2016 B2
9506346 Bright et al. Nov 2016 B2
9532670 Vaessan Jan 2017 B2
9566645 Cooper Feb 2017 B2
9581388 Cooper Feb 2017 B2
9587883 Cooper Mar 2017 B2
9632670 Wu Apr 2017 B2
9643247 Cooper May 2017 B2
9657578 Cooper May 2017 B2
9855600 Cooper Jan 2018 B2
9862026 Cooper Jan 2018 B2
9903383 Cooper Feb 2018 B2
9909808 Cooper Mar 2018 B2
9920767 Klain et al. Mar 2018 B2
9925587 Cooper Mar 2018 B2
9951777 Morando et al. Apr 2018 B2
9970442 Tipton May 2018 B2
9982945 Cooper May 2018 B2
10052688 Cooper Aug 2018 B2
10072897 Cooper Sep 2018 B2
10126058 Cooper Nov 2018 B2
10126059 Cooper Nov 2018 B2
10138892 Cooper Nov 2018 B2
10195664 Cooper et al. Feb 2019 B2
10267314 Cooper Apr 2019 B2
10274256 Cooper Apr 2019 B2
10302361 Cooper May 2019 B2
10307821 Cooper Jun 2019 B2
10309725 Cooper Jun 2019 B2
10322451 Cooper Jun 2019 B2
10345045 Cooper Jul 2019 B2
10352620 Cooper Jul 2019 B2
10428821 Cooper Oct 2019 B2
10458708 Cooper Oct 2019 B2
10465688 Cooper Nov 2019 B2
10562097 Cooper Feb 2020 B2
10570745 Cooper Feb 2020 B2
10641270 Cooper May 2020 B2
10641279 Cooper May 2020 B2
10675679 Cooper Jun 2020 B2
11020798 Cooper Jun 2021 B2
11098719 Cooper Aug 2021 B2
11098720 Cooper Aug 2021 B2
11103920 Cooper Aug 2021 B2
11130173 Cooper Sep 2021 B2
11149747 Cooper Oct 2021 B2
11167345 Cooper Nov 2021 B2
11185916 Cooper Nov 2021 B2
11286939 Cooper Mar 2022 B2
11358216 Cooper Jun 2022 B2
11358217 Cooper Jun 2022 B2
11391293 Cooper Jul 2022 B2
11471938 Fontana Oct 2022 B2
11519414 Cooper Dec 2022 B2
20010000465 Thut Apr 2001 A1
20020089099 Denning Jul 2002 A1
20020102159 Thut Aug 2002 A1
20020146313 Thut Oct 2002 A1
20020185790 Kilgensmith Dec 2002 A1
20020185794 Vincent Dec 2002 A1
20030047850 Areaux Mar 2003 A1
20030075844 Mordue et al. Apr 2003 A1
20030082052 Gilbert et al. May 2003 A1
20030151176 Ohno Aug 2003 A1
20030201583 Klingensmith Oct 2003 A1
20040050525 Kennedy et al. Mar 2004 A1
20040076533 Cooper Apr 2004 A1
20040096330 Gilbert May 2004 A1
20040115079 Cooper Jun 2004 A1
20040245684 Kojo Dec 2004 A1
20040262825 Cooper Dec 2004 A1
20050013713 Cooper Jan 2005 A1
20050013714 Cooper Jan 2005 A1
20050013715 Cooper Jan 2005 A1
20050053499 Cooper Mar 2005 A1
20050077730 Thut Apr 2005 A1
20050081607 Patel et al. Apr 2005 A1
20050116398 Tremblay Jun 2005 A1
20060180963 Thut Aug 2006 A1
20060198725 Thut Sep 2006 A1
20070253807 Cooper Nov 2007 A1
20080163999 Hymas et al. Jul 2008 A1
20080202644 Grassi Aug 2008 A1
20080211147 Cooper Sep 2008 A1
20080213111 Cooper Sep 2008 A1
20080230966 Cooper Sep 2008 A1
20080253905 Morando et al. Oct 2008 A1
20080304970 Cooper Dec 2008 A1
20080314548 Cooper Dec 2008 A1
20090054167 Cooper Feb 2009 A1
20090140013 Cooper Jun 2009 A1
20090269191 Cooper Oct 2009 A1
20100104415 Morando Apr 2010 A1
20100200354 Yagi et al. Aug 2010 A1
20110133374 Cooper Jun 2011 A1
20110140318 Reeves et al. Jun 2011 A1
20110140319 Cooper Jun 2011 A1
20110140619 Lin Jun 2011 A1
20110142603 Cooper Jun 2011 A1
20110142606 Cooper Jun 2011 A1
20110148012 Cooper Jun 2011 A1
20110163486 Cooper Jul 2011 A1
20110210232 Cooper Sep 2011 A1
20110220771 Cooper Sep 2011 A1
20110227338 Pollack Sep 2011 A1
20110303706 Cooper Dec 2011 A1
20120003099 Tetkoskie Jan 2012 A1
20120163959 Morando Jun 2012 A1
20130105102 Cooper May 2013 A1
20130142625 Cooper Jun 2013 A1
20130214014 Cooper Aug 2013 A1
20130224038 Tetkoskie et al. Aug 2013 A1
20130292426 Cooper Nov 2013 A1
20130292427 Cooper Nov 2013 A1
20130299524 Cooper Nov 2013 A1
20130299525 Cooper Nov 2013 A1
20130306687 Cooper Nov 2013 A1
20130334744 Tremblay Dec 2013 A1
20130343904 Cooper Dec 2013 A1
20140008849 Cooper Jan 2014 A1
20140041252 Vild et al. Feb 2014 A1
20140044520 Tipton Feb 2014 A1
20140083253 Lutes et al. Mar 2014 A1
20140210144 Torres et al. Jul 2014 A1
20140232048 Howitt et al. Aug 2014 A1
20140252697 Rauch Sep 2014 A1
20140252701 Cooper Sep 2014 A1
20140261800 Cooper Sep 2014 A1
20140263482 Cooper Sep 2014 A1
20140265068 Cooper Sep 2014 A1
20140271219 Cooper Sep 2014 A1
20140363309 Henderson et al. Dec 2014 A1
20150069679 Henderson et al. Mar 2015 A1
20150192364 Cooper Jul 2015 A1
20150217369 Cooper Aug 2015 A1
20150219111 Cooper Aug 2015 A1
20150219112 Cooper Aug 2015 A1
20150219113 Cooper Aug 2015 A1
20150219114 Cooper Aug 2015 A1
20150224574 Cooper Aug 2015 A1
20150252807 Cooper Sep 2015 A1
20150285557 Cooper Oct 2015 A1
20150285558 Cooper Oct 2015 A1
20150323256 Cooper Nov 2015 A1
20150328682 Cooper Nov 2015 A1
20150328683 Cooper Nov 2015 A1
20160031007 Cooper Feb 2016 A1
20160040265 Cooper Feb 2016 A1
20160047602 Cooper Feb 2016 A1
20160053762 Cooper Feb 2016 A1
20160053814 Cooper Feb 2016 A1
20160082507 Cooper Mar 2016 A1
20160089718 Cooper Mar 2016 A1
20160091251 Cooper Mar 2016 A1
20160116216 Schlicht et al. Apr 2016 A1
20160221855 Retorick et al. Aug 2016 A1
20160250686 Cooper Sep 2016 A1
20160265535 Cooper Sep 2016 A1
20160305711 Cooper Oct 2016 A1
20160320129 Cooper Nov 2016 A1
20160320130 Cooper Nov 2016 A1
20160320131 Cooper Nov 2016 A1
20160346836 Henderson et al. Dec 2016 A1
20160348973 Cooper Dec 2016 A1
20160348974 Cooper Dec 2016 A1
20160348975 Cooper Dec 2016 A1
20170037852 Bright et al. Feb 2017 A1
20170038146 Cooper Feb 2017 A1
20170045298 Cooper Feb 2017 A1
20170056973 Tremblay et al. Mar 2017 A1
20170082368 Cooper Mar 2017 A1
20170106435 Vincent Apr 2017 A1
20170106441 Vincent Apr 2017 A1
20170130298 Teranishi et al. May 2017 A1
20170167793 Cooper et al. Jun 2017 A1
20170198721 Cooper Jul 2017 A1
20170219289 Williams et al. Aug 2017 A1
20170241713 Henderson et al. Aug 2017 A1
20170246681 Tipton et al. Aug 2017 A1
20170276430 Cooper Sep 2017 A1
20180058465 Cooper Mar 2018 A1
20180111189 Cooper Apr 2018 A1
20180178281 Cooper Jun 2018 A1
20180195513 Cooper Jul 2018 A1
20180311726 Cooper Nov 2018 A1
20190032675 Cooper Jan 2019 A1
20190270134 Cooper Sep 2019 A1
20190293089 Cooper Sep 2019 A1
20190351481 Tetkoskie Nov 2019 A1
20190360491 Cooper Nov 2019 A1
20190360492 Cooper Nov 2019 A1
20190368494 Cooper Dec 2019 A1
20200130050 Cooper Apr 2020 A1
20200130051 Cooper Apr 2020 A1
20200130052 Cooper Apr 2020 A1
20200130053 Cooper Apr 2020 A1
20200130054 Cooper Apr 2020 A1
20200182247 Cooper Jun 2020 A1
20200182248 Cooper Jun 2020 A1
20200256350 Cooper Aug 2020 A1
20200360987 Cooper Nov 2020 A1
20200360988 Fontana Nov 2020 A1
20200360989 Cooper Nov 2020 A1
20200360990 Cooper Nov 2020 A1
20200362865 Cooper Nov 2020 A1
20200363128 Cooper Nov 2020 A1
20210199115 Cooper Jul 2021 A1
20210254622 Cooper Aug 2021 A1
20220025905 Cooper Jan 2022 A1
20220080498 Cooper Mar 2022 A1
20220193764 Cooper Jun 2022 A1
20220213895 Cooper Jul 2022 A1
20220234099 Cooper Jul 2022 A1
20230001474 Fontana Jan 2023 A1
20230219132 Cooper Jul 2023 A1
Foreign Referenced Citations (43)
Number Date Country
683469 Mar 1964 CA
2115929 Aug 1992 CA
2244251 Jun 1998 CA
2305865 Feb 2000 CA
2176475 Jul 2005 CA
2924572 Apr 2015 CA
392268 Sep 1965 CH
102943761 Feb 2013 CN
103511331 Jan 2014 CN
1800446 Dec 1969 DE
19541093 May 1997 DE
19614350 Oct 1997 DE
2006051814 Jul 2008 DE
168250 Jan 1986 EP
665378 Aug 1995 EP
1019635 Jun 2006 EP
543607 Mar 1942 GB
942648 Nov 1963 GB
1185314 Mar 1970 GB
1565911 Apr 1980 GB
1575991 Oct 1980 GB
2122260 Jan 1984 GB
2193257 Feb 1988 GB
2217784 Mar 1989 GB
2289919 Dec 1995 GB
58048796 Mar 1983 JP
63104773 May 1988 JP
11-270799 Oct 1999 JP
5112837 Jan 2013 JP
227385 Apr 2005 MX
90756 Jan 1959 NO
416401 Feb 1974 RU
773312 Oct 1980 RU
199808990 Mar 1998 WO
199825031 Jun 1998 WO
200009889 Feb 2000 WO
2002012147 Feb 2002 WO
2004029307 Apr 2004 WO
2010147932 Dec 2010 WO
2014031484 Feb 2014 WO
2014055082 Apr 2014 WO
2014150503 Sep 2014 WO
2014185971 Nov 2014 WO
Non-Patent Literature Citations (7)
Entry
“Response to Final Office Action and Request for Continued Examination for U.S. Appl. No. 09/275,627,” including Declarations of Haynes and Johnson, dated Apr. 16, 2001.
Document No. 504217: Excerpts from “Pyrotek Inc.'s Motion for Summary Judgment of Invalidity and Unenforceability of U.S. Pat. No. 7,402,276,” Oct. 2, 2009.
Document No. 505026: Excerpts from “MMEI's Response to Pyrotek's Motion for Summary Judgment of Invalidity or Enforceability of U.S. Pat. No. 7,402,276,” Oct. 9, 2009.
Document No. 507689: Excerpts from “MMEI's Pre-Hearing Brief and Supplemental Motion for Summary Judgment of Infringement of Claims 3, 4, 15, 17-20, 26, 28 and 29 of the '074 Patent and Motion for Reconsideration of the Validity of Claims 7-9 of the '276 Patent,” Nov. 4, 2009.
Document No. 517158: Excerpts from “Reasoned Award,” Feb. 19, 2010.
Document No. 525055: Excerpts from “Molten Metal Equipment Innovations, Inc.'s Reply Brief in Support of Application to Confirm Arbitration Award and Opposition to Motion to Vacate,” May 12, 2010.
USPTO; Notice of Reissue Examination Certificate dated Aug. 27, 2001 in U.S. Appl. No. 90/005,910.
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