NZ210029A - Molten metal filter with intumescent sealing ring - Google Patents

Molten metal filter with intumescent sealing ring

Info

Publication number
NZ210029A
NZ210029A NZ210029A NZ21002984A NZ210029A NZ 210029 A NZ210029 A NZ 210029A NZ 210029 A NZ210029 A NZ 210029A NZ 21002984 A NZ21002984 A NZ 21002984A NZ 210029 A NZ210029 A NZ 210029A
Authority
NZ
New Zealand
Prior art keywords
filter
filter plate
molten metal
filter chamber
metal
Prior art date
Application number
NZ210029A
Inventor
J E Dore
J W Brockmeyer
Original Assignee
Alusuisse
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Alusuisse filed Critical Alusuisse
Publication of NZ210029A publication Critical patent/NZ210029A/en

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22BPRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
    • C22B9/00General processes of refining or remelting of metals; Apparatus for electroslag or arc remelting of metals
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D29/00Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor
    • B01D29/01Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor with flat filtering elements
    • B01D29/03Filters with filtering elements stationary during filtration, e.g. pressure or suction filters, not covered by groups B01D24/00 - B01D27/00; Filtering elements therefor with flat filtering elements self-supporting

Landscapes

  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Manufacturing & Machinery (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Manufacture And Refinement Of Metals (AREA)
  • Filtering Materials (AREA)
  • Treatment Of Steel In Its Molten State (AREA)
  • Casting Support Devices, Ladles, And Melt Control Thereby (AREA)
  • Manufacture Of Alloys Or Alloy Compounds (AREA)
  • Electrical Discharge Machining, Electrochemical Machining, And Combined Machining (AREA)
  • Filtering Of Dispersed Particles In Gases (AREA)
  • Superconductors And Manufacturing Methods Therefor (AREA)
  • Separation Using Semi-Permeable Membranes (AREA)

Abstract

1. Filter for the filtration of molten metal, in the form of an exchangeable filter plate (16) with an elastic seal (18) fixed to the lateral edge faces (17), fitting into the filter seat (12) of a filter chamber (3), the lateral boundaries (15) of the filter seat (12) being adapted to the edge faces (17) of the filter plate (16) characterized in that the seal (18) is swellable by the action of heat.

Description

<div class="application article clearfix" id="description"> <p class="printTableText" lang="en">2 10029 <br><br> Priority Date(s): <br><br> c.. j. ?o- /&lt;?. */? Compete Specification Filed. .. <br><br> ti '2 NOV 1986 <br><br> Publication Date: Y\''A.'s? <br><br> P.O. Journal, No: • • • /"' •*••"* <br><br> NEW ZEALAND <br><br> Patents Act 1953 <br><br> 55?e*r <br><br> 1°°cTI984 <br><br> •£g£i!Vi to <br><br> N.Z.No. <br><br> COMPLETE SPECIFICATION <br><br> "MOLTEN METAL FILTER AND METHOD OF FILTERING" <br><br> We, SWISS ALUMINIUM LTD., a corporation organised and existing under the laws of Switzerland, of CH-3965 Chippis, Switzerland, <br><br> do hereby declare the invention, for which we pray that a Patent may be granted to u&amp; and the method by which it is to be performed, to be particularly described in and by the following statement : - <br><br> BACKGROUND OF THE INVENTION 2 10029 <br><br> Molten metal, particularly molten aluminum, in practice generally contains entrained solids which are deleterious to the final cast metal product. These entrained solids appear as inclusions in the final cast product after the molten metal is solidified and cause the final product to be less ductile or to have poor bright finishing and anodizing characteristics. The inclusions may originate from several sources. For example, the inclusions may originate from surface oxide films which become broken up and are entrained in the molten metal. In addition, the inclusions may originate as insoluble impurities, <br><br> such as carbides, boridesand others or eroded furnace and trough refractories. <br><br> Porous ceramic foam materials are known to be particularly useful in filtering molten metal, as described in U.S. Patent No. 3j8933917 for "Molten Metal Filter" by Michael J. Pryor and Thomas J. Gray, patented July 8, 1975, and also as described in U.S. Patent No. 3,9^7&gt;363 for "Ceramic Foam Filter" by Michael J. Pryor and Thomas J..Gray, patented March 30, 1976, U.S. Patent No. 4,081,371 for "Filtering of Molten Metal" by John C. Yarwood, James E. Dore and Robert K. Preuss, patented March 28, 1978, and U.S. Patent No. 4,024,056 for "Filtering of Molten Metal" by John C. Yarwood, James E. Dore and Robert K. Preuss, <br><br> patented May 17, 1977. <br><br> 2 1 <br><br> These ceramic foam materials are particularly userulTfo filtering molten metal for a variety of reasons included among which are their excellent filtration efficiency, low cost, ease of use and ability to use same on a disposable, throwaway basis. The fact that these ceramic foam filters are convenient and inexpensive to prepare and may be used on a throwaway basis requires the development of means for easily and conveniently assembling and removing porous, molten metal filters from a filtration unit while providing a highly efficient filtration assembly. Since the filters are designed to be a throwaway item, it is essential to provide an effective means of sealing the filters in place in its holder which is easy to assemble, disassemble and clean up. The holder or filter chamber itself is normally an integral part of a trough, pouring pan or tundish, etc. and should be constructed of refractory materials resistant to the molten metal similar to those used in standard trough construction. It is greatly preferred to seal the filter plate in place using a resilient sealing means or gasket type seal peripherally circumscribing the filter plate. In order to effectively seal the filter plate in place, the prior art teaches the provision of a bevelled peripheral surface on the filter plate onto which the gasket seal is placed. The filter plate is then sealed in place by exerting a vertical pressure downwards on the filter plate in the filter chamber which is provided with a corresponding bevelled surface. It has been found that, as <br><br> a result of the force exerted on the filter plate during assembly in the filter chamher, structural damage may result to the filter plate which could result in metal leakage and/or ineffective metal filtration. Thus, it is highly desirable to provide a filter which can be sealingly mounted in the filter chamber without the need of undue force. In addition, it is highly desirable to provide an effective seal in the filter chamber which may have irregularities on the peripheral surface thereof due to chips, cracks, etc. <br><br> Heretofore, the ceramic foam filters were gasketed with pre-cut strips of low density ceramic fiber having an organic binder. The straight pre-cut strips were simply taped to the bevelled edges of the filters after the filter had been baked and fired. As a result of the foregoing process, a number of disadvantages arose. Firstly, as the gasket is merely taped to the filter the fit is relatively loose and thus the gasket can be easily damaged during handling of the filter. Secondly, since the pre-cut strips are straight and the edges of the filter which are to be sealed are bevelled, a misfit occurs which in some cases results in the molten metal passing between the gasket and filter plate. Finally, as the gasket material Is not taped to the filter until after it is fired, the filter must be dressed, that is coating the edges with additional ceramic slurry, In order to Insure that the edges of the filter are not directly handled during further processing. <br><br> 2 100 29 <br><br> U.S. Patent No. 4,331,621 for "Method for Bonding a Gasket Seal to Surface of Ceramic Foam Filter" by Jerry W. Brockmeyer, patented May 25, 1982 and assigned to the assignee of the instant invention discloses an improved method of integrally bonding a gasket seal to the peripheral surface of a ceramic foam filter plate used in the filtration of molten metal. In accordance with the method disclosed, a mold is provided having dimensions corresponding to the desired final filter size which is to be inserted in the filter chamber when used in the filtration of molten metal. A wet slurry impregnated foam material is centered in the mold leaving a gap between the mold and the impregnated foam. The gap is then filled with a ceramic fiber slurry consisting of a cerainic fiber, organic and/or inorganic binders and a suitable vehicle, usually water. ' If a viscous non-flowing slurry is used it is possible to remove the mold prior to drying. However, if thinner slurries are used, it is necessary to provide a porous mold which would be maintained about the part until dried. The part is then fired using the practices disclosed in the aforesaid U.S. Patent Nos. 3j893s917s 3*947,363 and 4,081,371. Alternatively, the gasket could be applied to a dried and fired ceramic part in the same manner as outlined above. However, in this case an additional drying operation would be required to integrally bond the gasket to the ceramic hody. While the method disclosed in the '621 patent overcomes some of the disadvantages noted above vis-a-vis taping pre-cut strips, there is still a problem of metal leakage around and/or <br><br> 210029 <br><br> floating of the filter plates due to the lack of a positive seal of the filter plate in the filter chamber. <br><br> Accordingly, it is a principal object of the present invention to provide an improved filter for and method of filtering molten metal wherein a positive seal is provided between the filter plate and the filter chamber wall. <br><br> In one broad aspect therefore the invention provides in the filtration of molten metal with a removable filter plate, the method which comprises: <br><br> providing a filter chamber having a metal inlet and a metal outlet and having a wall surface adapted to be partitioned by a filter plate; <br><br> providing a filter plate having a peripheral surface adapted to mate with the wall surface of the filter chamber, said filter plate having an intumescent resilient sealing means on said peripheral surface of said filter plate; <br><br> inserting said filter plate and sealing means in said filter chamber of engage the wall surface of the filter chamber; and thereafter passing molten metal through said filter plate for discharge through said outlet, wherein the heat from said molten metal causes said intumescent resilient sealing means to swell thereby providing a positive seal for said filter plate in said filter chamber so as to prevent metal leakage around and/or floating of the filter plate. <br><br> In a:second broad aspect there is provided a molten metal filter for use in the filtration of molten metal in a filter <br><br> chamber having a metal inlet and a metal outlet and having a wall surface adapted to be partitioned by a filter plate having a peripheral surface adapted to mate with the wall surface of the filter chamber, the improvement which comprises an intumescent resilient sealing means secured to the peripheral surface of said filter plate wherein the heat from said molten metal causes said intumescent resilient sealing means to swell thereby providing a positive seal for said filter plate in said filter chamber so as to prevent metal leakage around and/or floating of the filter plate. <br><br> The present invention provides an improved filter plate seal which allows for a simplified filter bowl design and compensates for structural irregularities in the filter bowl. As an intumescent resilient seal is employed the seal swells due to the heat of the molten metal being filtered and/or selective preheating thereby providing a positive seal for the filter plate in the filter chamber so as to prevent metal leakage around and/or floating of the filter plate. In accordance with the present invention it has been found that it is possible to effectively seal a removable filter plate in a filter chamber usee for the filtration of molten metal without the need of an expensive filter chamber design. <br><br> In the following more detailed description reference will be made to the accompanying drawings in which:- <br><br> Figure 1 is a top view of the filter chamber of the present invention including the filter plate in place therein substantially horizontally disposed; <br><br> Figure 2 is a sectional view along the lines II-II of Figure l; <br><br> Figure 3 is a partial sectional view of a simplified filter bowl design employing the principles of the present invention; and <br><br> Figure 4 is a partial sectional view of a vertically disposed filter plate employing the principles of the present invention. <br><br> 210029 <br><br> DETAILED' DESCRIPTION A typical filter chamber is illustrated in Figures 1 and 2, as in a molten metal transfer system, pouring pans, pouring troughs, transfer troughs, metal treatment bays, or the like. The filter apparatus 2 may, if desired, be constructed In two sections which may be bolted together by any suitable means, <br><br> such as by flanges at the peripheries thereof, not shown. The particular filter apparatus illustrated in Figures 1 and 2 is a transfer trough containing a central filter chamber 3 fed by inlet 4 with the metal passing out of the filter chamber via outlet 5- The molten metal may enter the inlet 4 by any suitable means, such as a pouring sprout. The filter chamber 3 is a square shaped chamber, the bottom of which is recessed below the level of the inlet 4 so that the molten metal passing into the filter chamber 3 may travel downwardly through the filter plate of the present invention in place in the filter chamber. Thus, the filter chamber 3 Is characterized by a peripheral rim 7 which may completely surround the upper portion of the filter chamber. As shown in Figure 1, the filter chamber rim 7 surrounds the filter chamber on all sides except adjacent the area of Inlet 4. The filter chamber rim 7 is connected to side wall 8 which extends downwardly to filter chamber floor 9 which has a circumferential wall surface 10 provided with a circumferential projection 11 adapted to mate with the corresponding peripheral wall surface 13 and recess 14 of tapered filter seat insert 12 having bevelled portion 15- Filter seat 12 is secured in wall <br><br> 210029 <br><br> surface 10 by any suitable means known in the art. The filter plate 16 has a corresponding bevelled peripheral surface 17 adapted to mate with the wall surface 10 of the filter chamber. In accordance with the present invention, the peripheral surface of filter 17 is provided with an Intumescent resilient sealing means 18 thereon resistant to the molten metal, and the filter plate 16 and Intumescent sealing means 18 are Inserted in the filter chamber 3 so that the filter plate-sealing means assembly engages the wall surface of the filter chamber. <br><br> A suitable intumescent material used for the manufacture of sealing means 18 is that manufactured by Minnesota Mining and Manufacturing Company and sold under the trademark INTERAM®. The sheet material Is produced from unexpanded vermiculite, hydrobiotite, or water-swelling tetrasilicic fluorine mica using organic and/or inorganic binders to provide a desirable degree of wet strength. The sheet material can be produced to desirable thickness from about 0.1 to about 25 mm by paper making techniques as will be described more fully hereinbelow. <br><br> Suitable Inorganic binders may include tetrasilicic fluorine mica in either the water-swelling unexchanged form or after flocculation as the exchanged salt with a di- or polyvalent cation as well as fibrous material such as asbestos. Organic binders may include small amounts of various polymers and elastomers, often added in latex form, as for example, <br><br> natural or synthetic rubber latices. <br><br> 210029 <br><br> The sheet material may be formed by standard paper making -^techniques as described, for example, in U.S. Patent No. 3,458,329 with respect to ceramic convertible papers. Prom 30 to 85% by weight of intumescent material, preferably unexpanded beneficiated flakes of vermiculite ore, hydroblotite, or water-swelling synthetic tetrasilicic fluorine type mica are incorporated in the sheet either alone or in a combination of any of the three materials. Reinforcing agents (from 0 to 60% but preferably from 5 to about 60%), such as chrysotile or amphibole asbestos, <br><br> soft glass fibers such as available under the tradename chopped E glass, refractory filaments including zirconia-silica fibers as described in U.S. Patent No. 3,709,706, crystalline alumina whiskers and aluminosilicate fibers (available commercially under the tradenames Piberfrax and Kaowool) or metal filaments are incorporated in order to provide integrity to the sheet material in the green state as well as in the finished intumescent sheet material and in the exfoliated sheet. Prom 10 to 70% by weight of inorganic binder is used in preparing the intumescent sheet material such as water-swellable synthetic mica microflakes (U.S. Patent No. 3j001,571), asbestos, montmorillonite (bentonite, hectorite, or saponite) or kaolinite (ball clay). Synthetic mica and asbestos which are also included as components for other properties possess a sufficient ability at interlocking or conforming to other particles that are present that they can also serve in the second capacity as inorganic binders. <br><br> n r\ <br><br> 2 100 2 9 <br><br> When synthetic mica is utilized as a binder, solution is prepared from unexchanged synthetic tetrasilicic fluorine mica or a suspension of exchanged synthetic mica may also be used. Concentrations may be varied over wide ranges up to 20?? by weight or more. Synthetic tetrasilicic fluorine mica can be used as a binder in one of the other of two forms. If the unexchanged mica is used (i.e., usually the sodium or lithium form)j flocculation is initiated by the addition of salts of divalent or trivalent cations, such as aqueous solutions of Ba(N0^)2, BaCl2, Al^SO^)^ AltNO^)^- On the other hand, if the exchanged mica (e.g. Ba++, K+, Ca++, Mg++, Sr++, Pb++, <br><br> +++ <br><br> A1 , etc.) is used, flocculation is best achieved with non-ionic polyelectrolytes such as polyethylene imine or polyacrylamides such as commercially available Seperan NP10. <br><br> Small amounts of organic or inorganic fibrous materials may be added to impart additional green strength to the green sheet material. The intumescent material, one or more reinforcing agents and binder are blended together followed by the flocculating agents. A small amount of surfactants or foaming agents may also be employed in order to improve the dispersion of the intumescent material without going beyond the scope of the invention. In order to avoid the use of asbestos in making the sheet, because of possible health hazards associated with this material, substitution of glass fiber materials or refractory (glass or crystalline) filaments or whiskers is possible without impairing <br><br> 2 1 002 9 <br><br> the quality of the sheet. In general, asbestos fibers are less expensive than other fibers. The sheet is conveniently formed by standard paper making techniques either in a handsheet former on Fourdrinier screen although other methods are discussed below. The resulting green sheet is dried at about 90°C to form a handleable, flexible, resilient, intumescent sheet material. A strip of the dry sheet 2.5 cm wide and about 1.5-2.0 mm thick will support suspended loads up to 4.0 kg or more. <br><br> The resiliency of the intumescent sheet material is determined on 25 mm square samples by a modification of ASTM F-36-66 test in which the penetrator is replaced with an anvil 2 inches (5.1) square and the major load is reduced from 250 lb. (113 kg) to 27-5 lb. (12-5 kg). No control of humidity is maintained. <br><br> The test is first to record the dial reading with no sample (tg). The sample is inserted and surface irregularities are removed by applying a 5 lb. (2.26 kg) weight on the tray for 5 seconds. The dial reading (t^_) is recorded with only the gauge anvil and tray in place (total about 5.2 lb. or 2.36 kg). Then the major load as noted is applied and after 60 seconds the dial reading (t2) is recorded and the load is removed and the dial reading (t^) <br><br> again recorded after a further 60 seconds. <br><br> t - t2 <br><br> % compressability = -r r— X 100 <br><br> z0 ~ Z1 <br><br> % recovery = — X 100 <br><br> tx t2 <br><br> Compression of 10-35&amp; and recovery up to about observed on the dry unexpanded sheet. The intumescent sheet is exfoliated at temperatures of about 200° to 600°C. The expanded sheet maintains its integrity and a 2.5 cm wide by 1.5-2.0 mm thick strip supports suspended loads of 2.5 kg or more and maintains its integrity up to 1200°C. Thermal expansion of the intumescent sheet material under a constant load of about <br><br> 2 <br><br> 155 gm/cm produces an expansion in the thickness of the sheet of about 3 to 100% or more depending upon the internal bond strength, rate of heating, and composition. In general, the higher the concentration of intumescent material in the sheet or the less load, the greater the expansion. <br><br> In accordance with the present invention, the intumescent material can be used in either sheet or a paste-like form depending on the application requirements. The refractory fiber and the organic binder can be varied according to the specific requirements of the application as can the amount of intumescent material incorporated in the seal. When sheet material is used the seal can merely be glued to the peripheral wall surface of the filter plate. <br><br> As shown in Figures 1 and 2, the filter 11 is substantially horizontally disposed in a trough. The filter plate 16 is positioned in a recessed section of a filter chamber of filter bowl 3, such as in the floor* portion 9 thereof. Molten metal is fed to the filter 16 via inlet H into the filter chamber 3. <br><br> loPaQ ^ <br><br> 210029 <br><br> The molten metal passes downwardly through filter 16 into the recess 19 beneath the filter plate 16. The filter 16 is sealed in place by means of intumescent resilient seal 18 which swells as a result of the heat generated by the molten metal being filtered thereby providing a positive seal for the filter plate In the filter chamber so as to prevent metal leakage around and/or floating of the filter plate. In addition to the foregoing, a positive seal may be achieved by preheating the seal prior to passing molten metal through the filter plate. This provides some added flexibility in the design of filtration systems. As noted above, the seal would tend to be self-sealing. If any metal leakage started, the surrounding seal would heat and intumesce tending to stop the leak. Even If there were chips or other irregularities on the filter seat 12, the seal 18 would swell and fill the voids thereby preventing leaks. In addition to the foregoing, in accordance with Figure 3 the ability of the seal 18 to swell allows for a simpler filter chamber design. As noted above the seal is self-sealing which would allow the filter seat 12' to be simply a square seat 15* rather than a tapered seat 12. Likewise, the peripheral surface of the filter plate 16' need not be tapered thereby resulting in lower production costs. With reference to Figure 4, the intumescent seal 18 allows for easy vertical location of a filter plate 16'' in a filter apparatus. Again, if a metal leakage started, the seal would heat and Intumesce tending to stop the leak. <br><br> xT'..: I \ . .. .. r.*./ <br><br> 210029 <br><br> It is to be understood that the invention is not limited to the illustrations described and shown herein, which are deemed to be merely Illustrative of the best modes of carrying out the invention, and which are susceptible of modification of form, size, arrangement of parts and details of operation. The invention rather is intended to encompass all such modifications which are within its spirit and scope as defined by the claims. <br><br> 10 <br><br> 15 <br><br> 20 <br><br> G <br><br> 25 <br><br> G <br><br> 30 <br><br> -» C <br><br></p> </div>

Claims (5)

<div class="application article clearfix printTableText" id="claims"> <p lang="en"> WHAT WE CLAIM IS:,<br><br> 210029<br><br>
1. In the filtration of molten metal with a removable filter plate, the method which comprises:<br><br> providing a filter chamber having a metal inlet and a metal outlet and having a wall surface adapted to be partitioned by a filter plate;<br><br> providing a filter plate having a peripheral surface adapted to mate with the wall surface of the filter chamber, said filter plate having an Intumescent resilient sealing means on said peripheral surface of said filter plate;<br><br> inserting said filter plate and sealing means In said filter chamber to engage the wall surface of the filter chamber; and thereafter passing molten metal through said filter plate for discharge through said outlet, wherein the heat from said molten metal causes said intumescent resilient sealing means to swell thereby providing a positive seal for said filter plate in said filter chamber so as to prevent metal leakage around and/or floating of the filter plate.<br><br>
2. The method according to claim 1 Including the steps of pre-heating said filter plate after insertion of said filter plate and sealing means in said filter chamber and prior to passing molten metal through said filter plate.<br><br> 210029<br><br>
3. A molten metal filter for use in the filtration of molten metal in a filter chamber having a metal inlet and a metal outlet and having a wall surface adapted to be partitioned by a filter plate having a peripheral surface adapted to mate with the wall surface of the filter chamber, the improvement which comprises an intumescent resilient sealing means secured to the peripheral surface of said filter plate wherein the heat from said molten metal causes said intumescent resilient sealing means to swell thereby providing a positive seal for said filter plate in said filter chamber so as to prevent metal leakage around and/or floating of the filter plate.<br><br>
4. A filtration method as claimed in claim 1 substantially as herein described.<br><br>
5. A molten metal filter substantially as herein described with reference to the accompanying drawings.<br><br> SWISS ALUMINIUM LTD.<br><br> By Their Attorneys<br><br> D<br><br> 3 0 OCT 1984<br><br> RECEIVED<br><br> _ 1 7 _<br><br> </p> </div>
NZ210029A 1983-11-16 1984-10-30 Molten metal filter with intumescent sealing ring NZ210029A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US55226283A 1983-11-16 1983-11-16

Publications (1)

Publication Number Publication Date
NZ210029A true NZ210029A (en) 1986-11-12

Family

ID=24204594

Family Applications (1)

Application Number Title Priority Date Filing Date
NZ210029A NZ210029A (en) 1983-11-16 1984-10-30 Molten metal filter with intumescent sealing ring

Country Status (15)

Country Link
EP (1) EP0146497B1 (en)
JP (1) JPS60121234A (en)
KR (1) KR900006696B1 (en)
AT (1) ATE40298T1 (en)
AU (1) AU564861B2 (en)
BR (1) BR8405827A (en)
CA (1) CA1245857A (en)
DE (1) DE3476341D1 (en)
DK (1) DK542284A (en)
EG (1) EG16689A (en)
ES (1) ES8603770A1 (en)
MX (1) MX162672A (en)
NO (1) NO165767C (en)
NZ (1) NZ210029A (en)
ZA (1) ZA848579B (en)

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
MX168627B (en) * 1985-04-23 1993-06-02 Conoco Specialty Prod SYSTEM AND APPARATUS FOR THE SEPARATION OF MULTIPHASIC MIXTURES
WO1992002649A1 (en) * 1990-08-03 1992-02-20 Alcan International Limited Liquid metal filter
US5705444A (en) * 1996-05-06 1998-01-06 Minnesota Mining & Manufacturing Company Filter material of ceramic oxide fibers and vermiculite particles
US5898358A (en) * 1997-07-25 1999-04-27 Minnesota Mining & Manufacturing Vermiculite-coated fuse
CN102740955A (en) 2010-06-30 2012-10-17 住友电工超效能高分子股份有限公司 Immersion type membrane module unit and membrane bioreactor device
CN108971469B (en) * 2018-08-31 2020-10-20 广德亚太汽车智能制动系统有限公司 Effectual molten iron pouring ladle of pushing off slag
DE102019005605A1 (en) * 2019-08-09 2021-02-11 Ing3D Ug Process for the manufacture of an additively manufactured product from a mineral starting material by means of direct laser sintering and a lightweight component manufactured using this process
CN115213393B (en) * 2022-07-09 2023-07-21 江苏政田新材料有限公司 Molten steel filtering device for casting anchor chain wheel

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1327046A (en) * 1970-01-28 1973-08-15 Ici Ltd Filter seal
NO148381C (en) * 1975-03-28 1983-09-28 Alusuisse CERAMIC FOAM FILTER FOR MILT METAL FILTERING, PROCEDURE FOR ITS MANUFACTURING AND APPLICATION OF THE FILTER
US4298187A (en) * 1978-04-26 1981-11-03 Swiss Aluminium Ltd. Apparatus for inline degassing and filtration of molten metal
US4179102A (en) * 1978-06-12 1979-12-18 Swiss Aluminium Ltd. Apparatus for the degassing and filtration of molten metal
DE3151434A1 (en) * 1980-12-27 1982-07-22 Bridgestone Tire Co. Ltd., Tokyo Filter device
US4331621A (en) * 1981-03-19 1982-05-25 Swiss Aluminium Ltd. Method for bonding a gasket seal to surface of ceramic foam filter

Also Published As

Publication number Publication date
EP0146497B1 (en) 1989-01-25
BR8405827A (en) 1985-09-17
ES8603770A1 (en) 1986-01-16
DK542284D0 (en) 1984-11-15
EG16689A (en) 1989-12-30
NO165767C (en) 1991-04-10
MX162672A (en) 1991-06-14
ZA848579B (en) 1985-06-26
JPH0377260B2 (en) 1991-12-10
JPS60121234A (en) 1985-06-28
EP0146497A2 (en) 1985-06-26
EP0146497A3 (en) 1986-10-08
AU3470784A (en) 1985-05-23
ES537231A0 (en) 1986-01-16
CA1245857A (en) 1988-12-06
AU564861B2 (en) 1987-08-27
ATE40298T1 (en) 1989-02-15
NO165767B (en) 1990-12-27
NO844533L (en) 1985-05-20
KR900006696B1 (en) 1990-09-17
DK542284A (en) 1985-05-17
KR850004025A (en) 1985-07-01
DE3476341D1 (en) 1989-03-02

Similar Documents

Publication Publication Date Title
US3947363A (en) Ceramic foam filter
CA1178797A (en) Integrally bonded gasket for ceramic foam filter
EP0095308B1 (en) Intumescent sheet material containing low density fillers
CA1293520C (en) Ceramic foam filter and process for preparing same
CA1245857A (en) Molten metal filter and method of filtering
CA1287974C (en) Filtration apparatus
FR2450879A1 (en) PROCESS FOR THE AGGLOMERATION OF FINE PARTICLES OF COAL MATERIAL
US20120175804A1 (en) Low expansion corrosion resistant ceramic foam filters for molten aluminum filtration
CA2991250C (en) High temperature filter assembly
JPH0147207B2 (en)
EP0074735B1 (en) Rigid sludge dewatering filter plate
CA1161238A (en) Inorganic composite structures
EP0234825A1 (en) Casting of molten ferrous metal and moulds for use therein
US4081168A (en) Hot top lining slabs and sleeves
JP2680841B2 (en) Filter cartridge for molten aluminum filtration and filtration device using the same
CA2020628A1 (en) Filters
US5147546A (en) Ceramic foam filter body having a gasket chemically and mechanically bonded thereto
US4452698A (en) Rigid filter plate and process for manufacture of the same
RU2138462C1 (en) Hall-herult electolyzer cryolite-resistant refractory material
US3958998A (en) Hot top lining slabs and sleeves
CA1261147A (en) Containers for molten metal
EP0058500A1 (en) Method of veneering brick linings of furnaces and other high temperature enclosures
Pivinskii Refractory concretes of a new generation: Relationship between their composition, structure, and properties
JPH0523807B2 (en)
KR100328048B1 (en) Basic dam block refractory composition