AU2015255180A1 - Melting furnace having an infinite furnace campaign - Google Patents

Melting furnace having an infinite furnace campaign Download PDF

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AU2015255180A1
AU2015255180A1 AU2015255180A AU2015255180A AU2015255180A1 AU 2015255180 A1 AU2015255180 A1 AU 2015255180A1 AU 2015255180 A AU2015255180 A AU 2015255180A AU 2015255180 A AU2015255180 A AU 2015255180A AU 2015255180 A1 AU2015255180 A1 AU 2015255180A1
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component
melt
individual
subassemblies
individual elements
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AU2015255180A
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Uwe Geib
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Priority claimed from AU2009301407A external-priority patent/AU2009301407A1/en
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Priority to AU2015255180A priority Critical patent/AU2015255180A1/en
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Priority to AU2017203204A priority patent/AU2017203204A1/en
Abandoned legal-status Critical Current

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  • Waste-Gas Treatment And Other Accessory Devices For Furnaces (AREA)

Abstract

The invention relates to methods and to devices for a melting furnace, or for the 5 conveying lines of the product to be melted, having an infinite life (furnace campaign). The same is achieved by means of the continuous/periodic, e.g. cyclic, exchange, in the optimum case, of all of the components surrounding the furnace interior/melting space, or surrounding the conveying lines, in that the components can be arranged/placed next to each other in a modular manner and that said components move in a certain direction while new individual 10 parts are added at one of the free ends of the respective assembly and while worn/used individual parts are removed at the other free end of the respective assembly. For this purpose the individual components are held and/or moved by suitable receptacles, wherein the furnace interior/melting chamber remains stationary. 7103323_1 (GHMatters) P86905.AU.1 LEANNE ilk.

Description

Melting furnace having an infinite furnace campaign Technical Field 5 [0001] The invention relates to methods and apparatus of a melting furnace with up to infinite furnace campaign. This is implemented by a continuous/periodical thus cyclic exchange of, in the best case, all components of the melting furnace that surround the interior of the furnace/melting space, wherein the components are modularly placed or arranged next to each other, move in a predetermined direction, have a specific shape and are supported by 10 suitable receptacles and are moved and/or turned, wherein the components enclosing the melt remain substantially stationary. Background 15 [0002] A melting furnace of this type is taught by document FR-A-i 156001. [0003] Apparatuses in the area of glass melting technology are furnaces which are assembled from selected fireproof materials. In the simplest case they are composed essentially of a base plate or base plate, sidewalls, a vault and an end walls which together 20 surround the inner space of the furnace or furnace interior/melting space. In order to keep the individual components in their predetermined position and in order to absorb the in some areas considerable forces, comprehensive steel constructions are necessary, which are summarised under the term bracing or anchorage. 25 [0004] The entire glass melting furnace is subject to wear (corrosion/erosion) and has therefore a limited lifetime (furnace campaign). This type of furnace design for melting of glass is with respect to today's modern mechanical components, data analysis systems and control possibilities, short-lived, cost intensive and inefficient. 30 [0005] An exchange of worn out components of the melting furnace is, mainly due to the high temperature, only possible by shutting down and cooling down of the entire glass melting furnace whereby the fabrication of glass is stopped for a long period in time. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0006] Repair of worn out components without shutting down and cooling down is only possible under limitations and prolongs the furnace campaign of the glass melting furnace only marginally. 5 [0007] After a few years the entire melting furnace has to be completely renewed. [0008] It is therefore desirable to provide methods and apparatuses that enable an infinite furnace campaign of melting furnaces, by implementing a continuous/periodical, thus cyclic exchange of the worn components of the melting furnace of all components of the melting 10 furnace, wherein the components are modularly aligned/arranged next to each other, move in a certain direction, thereby providing a specific shape and supported by adapted receiving elements and moved and/or turned, wherein components enclosing the melt remain quasi stationary. 15 [0009] The respective examples are specified in the dependent claims. [0010] Further advantages of the present invention are directed to reducing interruption to glass producing melting furnaces or without essential interruption and that can be continuously adapted to new method and materials. 20 Summary of the Invention [0011] The invention provides in one aspect a method for renewing individual elements or component sub-assemblies of a melting furnace having a melting space or of a haulage track 25 for a melt, wherein the method comprises the following steps: providing individual elements or component subassemblies comprising a plurality of individual element surrounding the melting space such that the individual elements or the component subassemblies are aligned with respect to each other or adjacently 30 arranged individual elements or component subassemblies; and moving at least one individual element or at least one individual element of the component subassemblies in a certain direction 7103323_1 (GHMatters) P86905.AU.1 LEANNE (a) by locally maintaining the individual elements which are not moved or the component subassemblies which are not moved in their determined place, (b) by moving the moved individual elements or the moved component subassemblies in the respective predetermined direction, 5 (c) by attaching or adding new individual elements or new component subassemblies to the corresponding components subassemblies at a beginning of the moving direction, and (d) by removing used individual elements or used component subassemblies from the respective component subassemblies at the end the moving 10 direction, so that the at least one individual element of the component subassemblies is cyclically exchangeable without interruption of the melt or transport process. 15 [0012] The invention provides in another aspect a melting furnace or haulage track for a melt having renewable individual elements or component subassemblies surrounding a melting space and/or the melt, wherein: the individual elements or subassembly components, comprising a plurality of 20 individual elements, are aligned with respect to each other or adjacently arranged individual elements or component subassemblies and are configured for moving at least one individual element in a certain direction (a) by locally maintaining the individual elements which are not moved or the 25 component subassemblies which are not moved in their determined place, (b) by moving the moved individual elements or the moved component subassemblies in the respective predetermined direction, (c) by attaching or adding new individual elements or new component subassemblies to the corresponding components subassemblies at a 30 beginning of the moving direction, and (d) by removing worn individual components or worn component subassemblies from the respective component subassemblies at the end of the moving direction, 7103323_1 (GHMatters) P86905.AU.1 LEANNE so that the at least one individual element or the component subassemblies can be exchanged selectively and cyclically without substantially interrupting the melt or transport process. 5 Description of the invention [0013] An advantage is provided by claims 1 to 10 essentially in a way that at least the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) of the melting furnace enclosing the melt (13) comprise aligned with respect to each other or adjacently arranged individual 10 components (la, 4a, 7a, 10.la to 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or consist of a single piece that can differ in size, shape, design and material and which are formed corresponding to their respective specific requirements, provide receiving possibilities for the necessary support and/or moving elements and are moved in a certain direction wherein the individual components which are not moved (la, 4a, 7a, 10.1a to 1O.na, 10. lb to 15 10.nb, 10. 1c to 10.nc, 14a, 17a, 20a, 23a) or the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) which are not moved are locally maintained in their determined place and the moved individual components (la, 4a, 7a, 10.la to 10.na, 10.lb to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or the moved component subassemblies (1, 4, 7, 10, 14, 17, 20, 23), respectively, are moved in the respective predetermined direction and wherein at each beginning of the 20 moving direction new individual components (2, 5, 8, 11, 15, 18, 21, 24) or new component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) are attached or added to the corresponding components subassemblies (1, 4, 7, 10, 14, 17, 20, 23) and worn/used individual components (3, 6, 9, 12, 16, 19, 22, 25) or worn/used component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) are removed form the respective component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) at the 25 end of the moving direction after the corresponding furnace campaign and the resulting wear or tear, wherein the shape of the aligned or adjacently arranged individual components (la, 4a, 7a, 10.la to 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a), or component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) can adapt at their contact position a smooth shape or each other form, such as for example protrusions, indenting, dovetail, groove and tong 30 solutions, etc; this results in a continuous/periodical thus cyclical exchange of at least all individual components (la, 4a, 7a, 10.la to 10.na, 10.lb to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) of the respective single components (la, 4a, 7a, 10.la to 10.na, 10.1b to 10.nb, 10.1 to 10.nc, 14a, 17a, 20a, 23a) or 7103323_1 (GHMatters) P86905.AU.1 LEANNE subassembly components (1, 4, 7, 10, 14, 17, 20, 23) enclosing the melt (13), in the order of their supply or addition of the respective individual components (la, 4a, 7a, 10. 1a to 1O.na, 10.lb to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or subassembly components (1, 4, 7, 10, 14, 17, 20, 23) whereby an up to infinite furnace campaign is implemented and the 5 components enclosing the melt (13) remain quasi stationary. [0014] The described methods and apparatuses that are apparently connected by a common inventive concept are, as is evident to a person skilled in the art, particularly useful for the use in melting furnaces and/or haulage tracks of the (melting material) melt, for glass melting as 10 well as for metal melting or for melt open of mineral basic materials for melting mixtures as well as for any type of melting material. [0015] A glass melting furnace is described in the embodiments as an example. 15 [0016] The examples of the invention are explained with respect to figures 1 to 17 for illustrative purposes, wherein each example can be configured as melting furnace, as haulage track for the melting material/melt (13) or similar up to the further processing of the melt (13). [0017] All figures 1 to 17 are given in a orthogonal Cartesian coordinate system (X, Y, Z), 20 they are however, not limited to the Cartesian coordinate system (X, Y, Z), but can be turned, moved or built up vice versa. [0018] The shown directions of movement (A, B, C, D, E, F, G) of the individual component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) are not limiting, only a mutual 25 limitation of the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) in their movement/displacement has to be avoided. [0019] The control/regulation of the movement of all or parts of the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) or the control/regulation of movement of the 30 individual components (la, 4a, 7a, 10.la to 10.na, 10.lb to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or at least of single parts of the individual components (la, 4a, 7a, 10.1a to 10.na, 10.lb to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) occurs by at least one data treatment system or neuronal data system in an analogue or digital way which ensures the relevant data 7103323_1 (GHMatters) P86905.AU.1 LEANNE for moving, turning and the limitation of occurring local forces and/or momentums of the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) or parts of the component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) or of individual components (la, 4a, 7a, 10.1a to 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or parts of the individual 5 components (la, 4a, 7a, 10.lato 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a). Brief Description of the Drawings [0020] The figures show: 10 [0021] Fig. 1 a perspective view of the entire melting furnace with view into the interior of the melting furnace through cut-out parts of the entire sidewall with vault (10). [0022] Fig. 2 a perspective view of the base plate/ bottom (1) with indication of the direction 15 of movement (A) of the base plate (1) as well as the addition of a new individual element of the base plate (2) and removal of a worn out/used individual element of the base plate (3). [0023] Fig. 3 a front view of an individual element of the end wall at the side of the raw material feeding (4a) with openings for exhaust gas and raw material addition; in the Y-Z 20 plane. [0024] Fig. 4 a front view of the entire end wall at the side of raw material feeding (4) consisting of individual elements of the end wall at the side of the raw material feeding (4a) and illustration of the addition of new individual elements of the end wall at the side of the 25 raw material feeding (5) and removal of a worn out/used individual element of the end wall at the side of the raw material feeding (6); in the Y-Z-plane. [0025] Fig. 5 a front view of an individual element of the end wall at side of the exit of the melting material (7a) with an opening for the melting material; in the Y-Z-plane. 30 [0026] Fig. 6 a front view of the complete end wall at the side of the outlet for the melt(7), consisting of individual elements of the end wall at side of the melt outlet (7a) with indication of the direction of movement (C) of the end wall at the side of the melt outlet (7) and 7103323_1 (GHMatters) P86905.AU.1 LEANNE indication of the addition of a new individual element of the end wall at the side of the melt outlet (8) and removal of a worn out/used individual element of the end wall at the side of the melt outlet (9); and the Y-Z-plane. 5 [0027] Fig. 7 a perspective view of an arc segment of the sidewall with vault (10.1) consisting of individual elements, the individual sidewall element (10.1a), the individual nozzle brick element (10.1b) and the individual vault element (10.1c). [0028] Fig. 8 a perspective view of the entire sidewall with vault (10) consisting of 10 assembled arc segments of the entire sidewall with vault (10.1 to IO.n) with indication of the direction movement (D) of the entire sidewall with vault (10) and illustration of the addition of a new arc segment of the sidewall with vault (11) and removal of a worn out/used arc segment of the sidewall with vault (12). 15 [0029] Fig. 9 a cross section of a possible design of the melting furnace with illustration of height adjustable individual elements of the base plate (la) in the Y-Z-plane. [0030] Fig. 10 a cross section of a possible design of the melting furnace with illustration of the base plate (1) in form of a lying straight cylinder which is at least partly hollow, in the Y 20 Z-plane. [0031] Fig. 11 a cross section of a possible design of the melting furnace or the haulage track of the melt (13) with illustration of the four surfaces surrounding the melt (14), in the Y Z-plane. 25 [0032] Fig. 12 a top view of a possible design of the melting furnace or of the haulage track of the melt (13) without plain covering surfaces enclosing the melt (13), with indication of four surfaces surrounding the melt (14) in the X-Y-plane. 30 [0033] Fig. 13 a top view of a possible design of the melting furnace or of the haulage track of the melt (13) without the plain covering surfaces enclosing the melt (13) with indication of the three planes surrounding the melt (14) in the X-Y-plane. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0034] Fig. 14 a cross section of a possible design of the melting furnace or of the haulage track of the melt (13) with indication of the three planes surrounding the melt (14) in the Y-Z plane. 5 [0035] Fig. 15 a top view of a possible design of the melting furnace or of the haulage track of the melt (13) without the plain covering surfaces enclosing the melt (13), with indication of the two plain sidewalls (17) and of two surrounding surfaces of the melt (14) in the X-Y plane. 10 [0036] Fig. 16 a top view of a possible design of the melting furnace or of the haulage track of the melt (13) without plain covering surfaces enclosing the melt (13), with indication of the entire variable sidewall (20), in the X-Y-plane. [0037] Fig. 17 top view of a possible design of the melting furnace or of the haulage track of 15 the melt (13) without the plain covering surfaces enclosing the melt (13), with indication of the entire variable sidewall (20) and inserted body of revolution (23), in the X-Y-plane. [0038] Fig. 1 to 8 show, as explained below, a method according to claims 1 to 3 and the apparatus according to claims 6 to 7 in a preferred example that is arranged such that the 20 melting furnace can continuously fabricate melt (13) without a considerable limitation in time. [0039] Fig. 1 shows the melting furnace with the directions of movement (A, B, C, D) of the respective components subassemblies (1, 4, 7, 10) in a perspective view with viewing direction into the interior of the melting furnace, through cut-out parts of the entire sidewall 25 with vault (10), wherein the shape of the furnace interior/melting space is a flat straight partial cylinder whereof a straight cutting plane is parallel to the lateral line, wherein orthogonal to the cutting plane two identical parallel segments of a circle are formed, the bottom/base and covering surface, a centre point of which is, with respect to a full circle, outside of a surface of these segments of the circle and which cross the X-axis; this bottom/base surface and the 30 covering surface of the furnace interior/melting space is limited from the exterior by two end walls (4, 7) the centre point of which is, with respect to a full circle, also on the X-axis, wherein the vaulted or arched lateral surface of the furnace interior/melting space is delimited from the exterior by the entire sidewall with vault (10) and the remaining cutting plane of the 7103323_1 (GHMatters) P86905.AU.1 LEANNE furnace interior/melting space, the plane of section which forms a rectangle, delimits the furnace interior/melting space from the exterior with the base plate/bottom (1). Fig. 2 shows the base plate/bottom (1) of the melting furnace comprising modular cuboidal shaped individual elements of the base plate (la) that can be aligned or arranged next to each other, 5 which move translationally in a predetermined direction, the direction of movement-A along the Y-axis in the direction of positive Y-values, while a continuous/periodical, thus cyclic addition of new individual elements of the bottom (2) at the side of negative Y-values occurs and worn/used individual elements of the bottom (3) are removed at the side of positive Y values, wherein the velocity of the movement of the bottom (1) occurs in a manner 10 corresponding to the wear or use of the individual elements of the bottom (la) such that the entity of bottom (1) remains quasi stationary and the distance at the bottom (1) in direction of the Y-axis is lager than two times R2 of the sidewall with vault (10) to ensure an addition of new individual elements of the bottom (2) and/or the removal of worn out/used individual elements of the bottom (3) outside of the furnace interior/melting space wherein the surface of 15 the bottom (1) which is oriented towards the furnace interior/melting space is in the X-Y plane, for Z = h and h > 0 in order to ensure a secure closure of the furnace interior/melting space with respect to the entire sidewall with vault (10) and the two end walls (4, 7) and to enable a rotational movement of the sidewalls (4, 7) wherein a portion of both surfaces of the bottom (1) form a limitation to both end walls (4, 7) they are in contact with in the Y-Z-plane. 20 Fig. 3 shows an individual element of the end wall at the side of raw material feeding (4a) in the Y-Z-plane in form of a straight cylinder segment, each with a lead-through for the feeding of raw material and for the exhaust gases. Fig. 4 shows the assembled end wall at the side of the raw material feeding (4), comprising individual elements of the end wall at the side of the raw material feeding (4a) adjacently aligned/ arranged next to each other, such that a cylinder 25 segment with an obtuse angle forms, a centre point of which crosses, with respect to two oppositely arranged individual elements of the end wall at the side of the raw material feeding (4a), the X axis and wherein the end wall at the side of the raw material feeding (4) rotates around this X-axis in direction of movement-B, such that at one of both free ends of the end wall at the side of the raw material feeding (4) new individual elements of the end wall at the 30 side of the raw material feeding (5) is added in the same angel degree or essentially in the same angle degree, while at the other free end of the end wall at the side of raw material feeding (4) the worn/used individual elements at the side of the raw material feeding (6) can be removed and that the rotating speed of the end wall at the side of the raw material feeding 7103323_1 (GHMatters) P86905.AU.1 LEANNE (4) depends essentially on the wear of the individual elements of the end wall at the side of the raw material feeding (4a), wherein each individual element of the end wall at the side of raw material feeding (4a) normally performs during its furnace campaign a rotational movement which is less than a complete three-hundred-sixty degree rotation and the surface 5 of the end wall at the side of raw material feeding (4) oriented towards the furnace interior/melting space closes or terminates in the Y-Z-plane with the surfaces of the bottom (1) they are in contact with in the Y-Z-plane. Fig. 5 shows an individual element of the end wall at the side of melt outlet (7a) in the Y-Z-plane in form of a straight cylinder segment with a lead-through the molten material/melt (13). Fig. 6 shows the assembled end wall at the 10 side of the melt outlet (7) which is arranged parallel to the end wall at the side of the raw material feeding (4) at the opposite side of the bottom (1) in the Y-Z plane, the end wall at the side of the raw material feeding (4), comprising individual elements of the end wall of the side of the melt exit (7a) aligned or arranged next to each other in a form such that a cylinder segment with a obtuse angle forms, a centre point of which is with respect to two individual 15 elements of the end wall at the side of the melt outlet (7a) which are arranged opposite to each other, on the X-axis and wherein the end wall at the side of the melt outlet (7) turns in rotation around this X-axis, the direction of movement-C such that at one of both free ends of the end wall at the side of the melt outlet (7) new individual elements of the end wall at the side of the melt outlet (8) can be repeatedly added in the same angle degree or essentially in the same 20 angle degree while at the other free end of the end wall at the side of the melt outlet (7) a worn out/used individual element of the end wall at the side of the melt outlet (9) can be removed and the rotational speed of the end wall at the side of the melt outlet (7) is mainly based on the wear of the individual elements at the end wall at the side of the melt outlet (7a) wherein each one of the individual elements of the end wall at the side of the melt exit (7a) 25 normally performs during a furnace campaign a rotational movement which is less than a complete turn and the surface of the end wall at the side of the melt outlet (7) facing towards the furnace interior/melting space in the Y-Z-plane terminates/close with the surface of the bottom (1) in the Y-Z-plane, which is opposite to the surface of the end wall at the side of the raw material feeding (4) oriented towards the furnace interior/melting space, the furnace 30 interior/melting space. [0040] Fig. 7 shows an arc segment of the entire sidewall with vault (10.1) in form of a lying straight partial hollow cylinder, the straight cutting plane of which is parallel to the lateral 7103323_1 (GHMatters) P86905.AU.1 LEANNE line, wherein two identical parallel annular segments form orthogonal to the cutting plane, the bottom surface and the cover surface of the arc segment of the entire sidewall with vault (10.1), the centre point of which is, in relation to the entire circular ring is outside of the centre point of the plane of these annular elements and which goes through the X-axis, 5 wherein, for the distance h = 0, the bottom surface and the cover surface of the arc segment of the entire sidewall with vault (10.1) would form circular rings, wherein the arc segment of the entire sidewall with vault (10.1) is a straight hollow cylinder, wherein the difference of the radii R2-R1 (for R1<R2) represents the wall thickness of the arc segment of the entire sidewall with vault (10.1) and the both cutting planes of the straight partially hollow cylinder 10 of the arc segment of the entire sidewall with vault (10.1), which are rectangles, respectively that are in the X-Y-plane for Z = h with h>0 and smallest distance of which from the X-axis is RI respectively, lie on the surface of the bottom (1) which faces towards the furnace interior/melting space in order to delimit the furnace interior/melting space, wherein the arc segment of the entire sidewall with vault (10.1) comprises individual elements (10.la, 10.1b, 10.1c) corresponding to the 15 respective requirement, such that, from the Z-plane for Z = h the stones in contact with glass are formed as soldier courses or palisades and built the individual sidewall element (10.la), on which the nozzle brick/throat/quarl in form of an individual nozzle brick element (10.1b) is arranged, and the vault formed from an individual vault element (10. ic), which form together the entire partial hollow cylinder of the arc segment of the entire sidewall with vault (10.1), the vaulted inner lateral surface of 20 which limits the lateral surface of the furnace interior/melting space. Fig. 8 shows the entire sidewall with vault (10) in a form, wherein the individual arc segments of the entire sidewall with vault (10.1 to 10.n) are aligned/arranged next to each other at their respective bottom surfaces and their cover surfaces such that both cutting planes of the straight partial hollow cylinders of the respective arc segments of the entire sidewall with vault (10.1 to IO.n) which are a rectangle, respectively, that lie in 25 the X-Y-plane for Z = h and the lowest distance of which is RI from the X-axis, respectively, lie in a plane and on the surface of the bottom (1) oriented towards the furnace interior/melting space in order to delimit the furnace interior/melting space, wherein the total number of arc segments of the entire sidewall with vault (10.1 to IO.n) of the entire sidewall with vault (10) forms at least one cover for the entire vaulted casing/mantle of the furnace interior/melting space and the entire sidewall with vault 30 (10) moves in a predetermined direction in translation with direction of movement-D along the X-axis in the direction of positive X-values while new arc segments of the entire sidewall with vault (11) are continuously/periodically thus cyclically added at the side of negative X-values and worn out/used arc segments of the entire sidewall with vault (12) are removed at the side of positive X-values, wherein the velocity of movement of the entire sidewall with vault (10) occurs in a manner corresponding to 7103323_1 (GHMatters) P86905.AU.1 LEANNE the occurrence of wear/use of the individual arc segments of the entire sidewall with vault (10.1 to 10.n). [0041] It is, of course, although possible that the raw material feeding and/or the removal of the 5 melt (13) occurs via the base plate/bottom (1) in a manner, that suitable openings are provided in selected individual elements of the base plate (la), in this case an infinite furnace campaign without interruptions of the flow of melting material is possible. [0042] The addition of raw materials, energy, the removal of melt (13), exhaust gases and the intake 10 of measurement probes or others can, if it makes technical sense, be inserted through suitable openings in all component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) or in the respective individual elements (la, 4a, 7a, 10.la to 1O.na, 10. lb to 10.nb, 10.1c to lO.nc, 14a, 17a, 20a, 23a) of the respective component subassemblies (1, 4, 7, 10, 14, 17, 20, 23), or can be integrated in individual elements (la, 4a, 7a, 10.la to 1O.na, 10. lb to 10.nb, 10.1c to lO.nc, 14a, 17a, 20a, 23a) of the respective 15 component subassemblies (1, 4, 7, 10, 14, 17, 20, 23), this also applies for bridge walls or individual elements of bridge walls; with suitable arrangement of quarls/nozzle bricks of individual nozzle brick/quarl elements (10 .b to 10.nb), it is possible to exhaust the exhaust gases through these openings, after removing of the burners. 20 [0043] By lifting or lowering of individual elements of the bottom (la), as shown in Fig. 9 out of the plane of the entire surface of the bottom (1), a modification of the current in the melt (13) or barriers in the melt (13) for the promotion of current fields in the melt (13) or aid for the withdraw or local binding of impurities in the melt (13) can be achieved, as well as the lifting of single pieces of the bottom (la) for modifying the gaseous current fields in the upper part of the furnace, as well as for 25 the follow up of the individual elements of the bottom (la) in an existing wear of the individual elements of the bottom (la) or for a cross movement of the individual element of the bottom (la) with corresponding implementation of the individual element of the bottom (la) from the plane of the entire surface of the ground plate (1), wherein these cross wise movements as well as the follow up with existing wear is of course also possible for all other individual elements (4a, 7a, 10.la to 30 10.na, 10.1b to 1O.nb, 10.1c to 1O.nc, 14a, 17a, 20a, 23a) of the respective component subassemblies (4, 7, 10, 14, 17, 20, 23) for all different modifications of the melting bath (13) or modifications of the gaseous phases or similar. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0044] For easy arrangement/alignment of the individual elements of the end wall (4a, 7a), of the individual elements of a bridge wall between single separated chambers with respect to each other, individual elements of the end wall (4a, 7a) or individual elements of the bridge wall can, in place of the shape of a straight cylinder segment, be in form of a straight hollow cylinder segment in both 5 cases, for the cylinder segment as well as for the hollow cylinder segment the expression cylinder segment is used. [0045] The arc segments of the entire sidewall with vault (10.1 to I.n) can also comprise more different individual elements (10.la, 10.1b, 10.1c) than the given three individual 10 elements (10.la, 10.1b, 10.1c), the individual sidewall element (10,1a), the individual nozzle brick or throat element (10.1b) and the individual vault element (10.1c) which can also move with respect to each other or in opposing directions with respect to each other and/or with different velocities; the vault (10.1c to 10.nc) can be termed ceiling in a planar embodiment; the arc segments of the entire sidewall with vault (10.1 to i.n) as well as the other 15 component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) can fulfil further requirements beside their intended use, for example, the arc segments of the entire sidewall with vault (10.1 to IO.n) over the cover of the melting furnace can be a cover for other processes of the melt (13), for example a cover of haulage tracks of the melt (13) or a cover of an exhaust channel, up to the delivery of the exhaust gases to the atmosphere and with a corresponding implementation also of the recuperative process, the 20 heat exchange of the combustion air. [0046] In case of continuation of the sidewalls with vault (10.1 to 10 .n) as limitation for the exhaust gases with respect to the atmosphere, it is also possible to use a planar base plate (1) of the exhaust channel, the so-called fox as well as one or more adjacently arranged vaulted bottoms (1), in 25 cylindrical form, as partially hollow cylinder with eventually different radii (R3, R4). [0047] The entire melting furnace can also comprise a plurality of chambers arranged one after the other, the separation of which comprises an additional separation wall, bridge wall or end wall (4, 7) in between the chambers and may be connected by haulage tracks and which allow material and energy 30 currents by suitable openings in order to separate manufacturing phases; these separation/bridge walls or end walls (4, 7) can comprise several separation walls (4, 7) or end walls arranged directly one after the other which are moveable in translation or rotation with respect to each other in order to time wise close, open or delimit openings or apertures. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0048] In the same way the translational or rotational velocity of the respective component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) can be adapted with a modification or change of individual elements (4a, 7a, 10.la to 10.na, 10. lb to 10.nb, 10.Ic to lO.nc, 14a, 17a, 20a, 23a) for serious test series, with a defect or similar, such that these individual elements (la, 4a, 7a, 10.1a to 5 10.na, 10.lb to 10.nb, 10. icto 10.nc, 14a, 17a, 20a, 23a) of the melting furnace or the haulage track can be removed as fast as possible in order to prevent damages, problems or impurities in the melt (13) or in the entire melt and manufacturing system. [0049] A rotation or turn of rotational component subassemblies (4, 7, 10, 14, 17, 20, 23) 10 during the furnace campaign during a complete turn is also possible, as well as a fast rotational movement of rotational component subassemblies (4, 7, 10, 14, 17, 20, 23) in comparison to other moveable component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) or a fast translational displacement of translational component subassemblies (1, 10, 17) in comparison to other moveable component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) is possible. The movement/displacement of individual 15 component subassemblies (1, 4, 7, 10, 14, 15, 17, 20, 23) can be achieved by a force applied on the resulting alignment/arrangement/contact surface of the individual elements which was the last to be added (la, 4a, 7a, 10.la to 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) or on the alignment/arrangement/contact surface of the individual element that was the last to be added (la, 4a, 7a, 10.la to 10.na, 10.1b to 10.nb, 10.1c to 10.nc, 14a, 17a, 20a, 23a) of the respective 20 component subassembly (1, 4, 7, 10, 14, 15, 17, 20, 23) or in the case of a component subassembly (1, 4, 7, 10, 14, 15, 17, 20, 23) consisting of one exchangeable element at the alignment or arrangement surface of which the subsequent exchangeable element in the direction of the respective direction of movement (A, B, C, D, E, F, G) of the respective component subassemblies (1, 4, 7, 10, 14, 15, 17, 20, 23). 25 [0050] In order to delimit forces and moments on the single elements (la, 4a, 7a, 10.la to 10.na, 10.lb to 1O.nb, 10.1c to 1O.nc, 14a, 17a, 20a, 23a) on certain individual elements (la, 4a, 7a, 10.la to 10.na, 10.lb to 1O.nb, 10.1c to 1O.nc, 14a, 17a, 20a, 23a) or on entire component subassemblies (1, 4, 7, 10, 14, 15, 17, 20, 23), the individual elements (la, 4a, 7a, 10.la to 1O.na, 30 10.lb to 1O.nb, 10.1c to 1O.nc, 14a, 17a, 20a, 23a) parts of the individual elements (la, 4a, 7a, 10.la to 10.na, 10.lb to 1O.nb, 10.1c to 1O.nc, 14a, 17a, 20a, 23a) or the entire component subassemblies (1, 4, 7, 10, 14, 15, 17, 20, 23) can be turned, twisted or moved force and back. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0051] The heating up of the newly attached or added individual elements (2, 5, 8, 11, 15, 18, 21, 24) at the respective component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) can happen mainly or exclusively by heat exchange with the respective component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) at which the newly added or attached individual elements (2, 5, 8, 11, 15, 18, 21, 24) are added or 5 attached, as well as the cooling down of worn or used single elements (3, 6, 9, 12, 16, 19, 22, 25) can occur in the same way. [0052] The invention is also applicable for a plurality of different designs of melting furnaces: 10 [0053] Fig. 10 shows in a cross section in the Y-Z-plane a possible design of a melting furnace or a haulage track of the melt (13) with a vaulted, thus cylindrical bottom (1), the radius centre of which lies in the direction of negative Z-values on the Z-axis with radius R3 and R4, a vaulted bottom (1) the radius centre point of which lies in the direction of positive 15 Z-values is also possible, wherein a modified shape of the individual elements of the bottom (la) as well as a modified form of the individual sidewall elements (10.1a to 10.na) results with a curvature of the ground plate (1) with a radius centre point of the ground plate (1) with positive and with negative Z-values on the Z-axis. 20 [0054] Fig. 11 shows in a cross section in the Y-Z-plane a possible design of a melting furnace or a haulage track of the melt (13) with representation of four surrounding surfaces of the melt (14) in cylindrical shape as partially hollow cylinders, whereof the outer lateral surfaces are in contact with each other whereby their radius centre points (R5, R6) are outside of the furnace interior/melting space or the melt (13) with indication of the direction of 25 movement (E) of the respective surrounding surfaces of the melt (14) and an exemplary representation of the addition a new individual element to one of the surrounding surfaces of the melt (15) and exemplary representation of the removal of a worn out/used individual element at one of the surrounding surfaces of the melt (16), without the plain end faces. 30 [0055] Fig. 12 shows in a top view in the X-Y-plane a possible design for melting furnace or of a haulage track of the melt (13) without furnace interior/melting space, respectively a plaine covering surface delimiting the haulage track, with representation of four surrounding surfaces of the melt (14) in cylindrical form as partial hollow cylinders, wherof the outer 7103323_1 (GHMatters) P86905.AU.1 LEANNE lateral surfaces are in contact with each other, wherein their radius centre points (R5, R6) are each outside the furnace interior/melting space, with indication of the direction of movement (E) of the surfaces surrounding the melt (14) and exemplary representation of the addition of a new individual element at one of the surrounding surfaces of the melt (15) and exemplary 5 representation of the removal of a worn out/used individual element at one of the surrounding surfaces of the melt (16). [0056] Fig. 13 shows in a top view in the X-Y-plane a possible design of a melting furnace or a haulage track of the melt (13) without planar covering surfaces delimiting the furnace 10 interior/melting space, with representation of three surrounding surfaces of the melt (14) as partial hollow cylinders whereof the exterior lateral surfaces are in contact with each other, whereby the radius centre points (R5, R6) are each outside the furnace interior/melting space, with indication of the direction of movement (E) of the respective surrounding surfaces of the melt (14) and exemplary representation of the addition of a new individual element at one of 15 the surrounding surfaces of the melt (15) and exemplary representation of the removal of a worn out/used individual element at one of the surrounding surfaces of the melt (16) wherein at least two of the surrounding surfaces of the melt (14) should be designed cylindrically while one of the three surrounding surfaces of the melt (14) can be planar, such as for example a plain sidewall (17). 20 [0057] Fig. 14 shows, as a cross section in the Y-Z-plane, a possible design of melting furnace or a haulage track of the melt (13) without a planar end walls delimited the furnace interior/melting space or the haulage track, with representation of three surrounding surfaces of the melt (14) in cylindrical, thus vaulted form as partial hollow cylinders, the outer lateral 25 surfaces of which are in contact with each other, whereby the radius centre points (R5, R6) are each outside the furnace interior/melting space of the melt (13), respectively, with indication of the direction of movement (E) of the respective surrounding surfaces of the melt (14) and exemplary representation of the addition of a new individual element at one of the surrounding surfaces of the melt (15) and exemplary representation of the removal of a worn 30 out/used individual element at one of the surrounding surfaces of the melt (16), whereby it is also possible that the individual surrounding surfaces of the melt (14) in form of a partial hollow cylinder provide a gap or a plurality of gaps between the surrounding surfaces of the melt (14) or comprise one/more variably adjustable gaps in order for example enable a 7103323_1 (GHMatters) P86905.AU.1 LEANNE continuous or adjustable flow of melt/melting material as is desirable for the manufacturing of flat glass, for the controlled exhaust of exhaust gases or a controlled addition of raw material, as well as sinks in the exterior lateral surfaces of parts of the surrounding surfaces of the melt (14) in order to enable openings in the melting furnace or the haulage track wherein at least 5 two of the surrounding surfaces of the melt (14) are cylindrically while one of three surrounding surfaces of the melt (14) can be equally planar, such as for example a plain sidewall (17). Fig. 15 shows in a top view in the X-Y-plane a possible design of a melting furnace or a haulage track of the melt (13) without planar covering faces delimiting the furnace interior/melting space, with representation of two planar sidewalls (17) with 10 indication of the direction of movement (F) of both planar sidewalls (17) and exemplary representation of the addition of one individual element of the planar sidewall (18) at one of the two planar sidewalls (17) and exemplary representation of the removal of a worn out/used individual element of the planar sidewall (19) from one of the two planar sidewalls (17), and two surrounding surfaces of the melt (14) as end walls in cylindrical form, thus vaulted as 15 partial hollow cylinders with indication of the direction of movement (E) of the two surrounding surfaces of the melt (14) as end walls with exemplary representation of the addition of a new individual element of the surrounding surface of the melt (15) at one of the two surrounding surfaces of the melt (14) as end wall and exemplary representation of the removal of worn/used individual element of the surrounding surfaces of the melt (16) at one 20 of the two surrounding surfaces of the melt (14), wherein the two surrounding surfaces of the melt (14), which implement the end wall can also be turned with the rotational axis in the Y plane wherein a rotation according to Fig. 15 in the Y-Z-plane is possible with a haulage track of the melt (13). 25 [0058] Fig. 16 shows in a top view in the X-Y-plane a possible design of a melting furnace or of a haulage track of the melt (13) without planar covering faces delimiting the furnace interior/melting space with representation of the entire variable sidewall (20), with indication of the direction of movement (G) of the entire variable sidewall (20) and the presentation of the addition of a new individual element of the variable sidewall (21) and removal for worn 30 out/used individual element of the variable sidewall (22) wherein the entire variable sidewall (20) can adapt any shape, as long as a secure delimitation by the planar, not-shown covering phases can be achieved. 7103323_1 (GHMatters) P86905.AU.1 LEANNE [0059] Fig. 17 shows in a top view in the X-Y-plane a possible design of a melting furnace or a haulage track of the melt (13) without planar covering faces delimiting the furnace interior/melting room in the same way as in Fig. 16 but with an inserted body of revolution (23) with rotational axis in the Y-plane and representation of the addition of a new individual 5 element of the body of revolution (24) and removal of a worn/used individual element of the body of revolution (25). [0060] The respective surrounding surfaces of the melt (14) in the illustrative exemplary designs of the melting furnace or the haulage track of the melt (13) do not necessarily have 10 the same radii (R5, R6). [0061] All described component subassemblies (1, 4, 7, 10, 14, 17, 20, 23) can also be made from one exchangeable part. 15 [0062] The melting furnace and the haulage track can have any adequate and technically reasonable shape. [0063] It is to be understood that, if any prior art publication is referred to herein, such reference does not constitute an admission that the publication forms a part of the common 20 general knowledge in the art, in Australia or any other country. [0064] In the claims which follow and in the preceding description of the invention, except where the context requires otherwise due to express language or necessary implication, the word "comprise" or variations such as "comprises" or "comprising" is used in an inclusive 25 sense, i.e. to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the invention. 7103323_1 (GHMatters) P86905.AU.1 LEANNE Reference list 1 bottom/base plate of the melting furnace la. individual element of the bottom (1) of the melting furnace 5 2 addition of a new individual element of the bottom (la) of the melting furnace 3 removal of a worn out/used individual element of the bottom (la) of the melting furnace 4 end wall at the side of raw material feeding of the melting furnace 4a. individual element at the end wall at the side of raw material feeding (4) of the melting 10 furnace 5 addition of a new individual element at the end wall at side of raw material feeding (4a) of the melting furnace 6 removal of a worn out/used individual element at the side of raw material feeding (4a) of the melting furnace 15 7 end wall at the side of the melt outlet of the melting furnace 7a. individual element of the end wall at the side of the melt outlet (7) of the melting furnace 8 addition of a new individual element of the end wall at the side of the melt outlet (7a) of the melting furnace 20 9 removal of a worn out/used individual element at the end wall at the side of the melt outlet (7a) of the melting furnace 10 entire sidewall with vault of the melting furnace 10.1 to 10.n arc segment of the entire sidewall with vault (10) of the melting furnace 25 10.la. individual sidewall element of the melting furnace 10. lb. individual nozzle brick element of the melting furnace 10. Ic. individual vault element of the melting furnace 11 addition of a new arc segment of the sidewall with vault (10.1 to IO.n) of the melting furnace 30 12 removal of worn out/used arc segment of sidewall with vault (10.1 to i.n) of the melting furnace 13 melt 7103323_1 (GHMatters) P86905.AU.1 LEANNE 14 surrounding surface of the melt in form of a partial hollow cylinder of the melting furnace or of the haulage track 14a. individual element of the surrounding surface of the melt (14) in form of a partial hollow cylinder of the melting furnace or of the haulage track 5 15 addition of a new individual element of the surrounding surface of the melt (14a) of the melting furnace or of the haulage track 16 removal of a worn out/used individual element of the surrounding surface of the melt (14a) of the melting furnace or the haulage track 17 planar sidewall of the melting furnace/haulage track 10 17a. individual element of the planar sidewall (17) of the melting furnace or of the haulage track 18 addition of a new individual element of the planar sidewall (17a) of the melting furnace/haulage track 19 removal of a worn out/used individual element of the planar sidewall (17a) of the 15 melting furnace or of the haulage track 20 entire variable sidewall of the melting furnace or of the haulage track 20a. individual element of the variable sidewall (20) in the form of a regular straight prism of the melting furnace or haulage track 21 addition of a new individual element of the variable sidewall (20a) of the melting 20 furnace or of the haulage track 22 removal of a worn out/used individual element of the variable sidewall (20a) of the melting furnace or of the haulage track 23 body of revolution with a rotational axis in the Y-plane 23a. individual element of the body of revolution (23) 25 24 addition of an individual element of the body of revolution (23) 25 removal of a worn out/used individual element of the body of revolution (23) A. direction of movement of the bottom (1) B. direction of movement of the end wall at the side of raw material feeding (4) 30 C. direction of movement of the end wall at the side of the melt outlet (7) D. direction of movement of the entire sidewall with vault (10) E. direction of movement of a surrounding surface of the melt (14) F. direction of movement of a planar sidewall (17) 7103323_1 (GHMatters) P86905.AU.1 LEANNE G. direction of movement of a variable sidewall (20) h. distance between the X-axis and the plane of the bottom (1) of the plane of the bottom (1) directed towards the furnace interior/melting space 5 R1 inner radius of the arc segment of the sidewall with vault (10.1) R2 outer radius of the arc segment of the sidewall with vault (10.1) R3 inner radius of the ground plate (1) R4 outer radius of the ground plate (1) 10 R5 inner radius of a surrounding surface of the melt (14) R6 outer radius of the surrounding surface of the melt (14) X. X-axis of the orthogonal Cartesian coordinate system Y. Y-axis of the orthogonal Cartesian coordinate system 15 Z. Z-axis of the orthogonal Cartesian coordinate system 7103323_1 (GHMatters) P86905.AU.1 LEANNE

Claims (13)

1. A method for renewing individual elements or component sub-assemblies of a melting 5 furnace having a melting space or of a haulage track for a melt, wherein the method comprises the following steps: providing individual elements or component subassemblies comprising a plurality of individual element surrounding the melting space such that the individual elements or 10 the component subassemblies are aligned with respect to each other or adjacently arranged individual elements or component subassemblies; and moving at least one individual element or at least one individual element of the component subassemblies in a certain direction 15 (a) by locally maintaining the individual elements which are not moved or the component subassemblies which are not moved in their determined place, (b) by moving the moved individual elements or the moved component subassemblies in the respective predetermined direction, (c) by attaching or adding new individual elements or new component 20 subassemblies to the corresponding components subassemblies at a beginning of the moving direction, and (d) by removing used individual elements or used component subassemblies from the respective component subassemblies at the end the moving direction, 25 so that the at least one individual element of the component subassemblies is cyclically exchangeable without interruption of the melt or transport process.
2. The method of claim 1, wherein at least one individual element of a component 30 subassembly or at least one component subassembly is exchangeable. 7103323_1 (GHMatters) P86905.AU.1 LEANNE
3. The method according to claim 1 or claim 2, wherein at least one individual element of a component subassembly or at least one component subassembly is translationally moveable or rotationally moveable. 5
4. The method of claim 1 or claim 2, wherein at least one individual element) of a component subassembly or at least one component subassembly is translationally displaceable or rotationally moveable.
5. The method of claim 1 when appended to either of claim 2 or claim 4, wherein at least 10 one individual element of a component subassembly and/or at least one component subassembly is translationally moveable in more than one plane.
6. A melting furnace or haulage track for a melt having renewable individual elements or component subassemblies surrounding a melting space and/or the melt, wherein: 15 the individual elements or subassembly components, comprising a plurality of individual elements, are aligned with respect to each other or adjacently arranged individual elements or component subassemblies and are configured for moving at least one individual element in a certain direction 20 (a) by locally maintaining the individual elements which are not moved or the component subassemblies which are not moved in their determined place, (b) by moving the moved individual elements or the moved component subassemblies in the respective predetermined direction, 25 (c) by attaching or adding new individual elements or new component subassemblies to the corresponding components subassemblies at a beginning of the moving direction, and (d) by removing worn individual components or worn component subassemblies from the respective component subassemblies at the end of 30 the moving direction, 7103323_1 (GHMatters) P86905.AU.1 LEANNE so that the at least one individual element or the component subassemblies can be exchanged selectively and cyclically without substantially interrupting the melt or transport process. 5
7. The apparatus of claim 6, wherein the shape of the aligned or adjacently arranged individual elements, or component subassemblies can adapt at their contact position a smooth shape.
8. The apparatus of claim 6, wherein at least one individual element of a component 10 subassembly or at least one component subassembly is cylindrical.
9. The apparatus of claim 6, wherein at least one individual element of a component subassembly or at least one component subassembly is a cylinder segment. 15
10. The apparatus of any one of claims 6 to 9, wherein at least one subassembly is made from one exchangeable part.
11. The apparatus of claim 7, wherein the smooth shape is a protrusions, indenting, dovetail, groove, or tong solution. 20
12. A method for renewing individual elements or component sub-assemblies of a melting furnace having a melting space or of a haulage track for a melt, the method being substantially as hereinbefore described with reference to and as illustrated in the accompanying drawings. 25
13. A melting furnace or haulage track for a melt having renewable individual elements or component subassemblies surrounding a melting space and/or the melt, the furnace or haulage track being substantially as hereinbefore described with reference to and as illustrated in the accompanying drawings. 30 7103323_1 (GHMatters) P86905.AU.1 LEANNE
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