Method for reclaiming waste mineral materials - Patents.com
The method addresses furnace inefficiencies by delivering waste mineral materials through a side wall inlet to a plasma jet cavity, ensuring efficient melting and reducing environmental impact in the production of man-made mineral fibers.
Patent Information
- Application Number
- JP2025512947
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-09-02
- Filing Date
- 2023-09-01
- Publication Date
- 2025-09-25
AI Technical Summary
Existing methods for recycling waste mineral materials in the production of man-made mineral fibers face challenges such as furnace inefficiency due to waste materials plugging or suffocating the furnace, and the use of binders exacerbates environmental issues and increases complexity and cost.
A method involving a waste inlet in the side wall of a hot metal furnace delivers waste mineral material directly to a plasma jet cavity, allowing efficient melting without clogging, using an auger conveyor or pneumatic transport, and minimizing the use of binders.
This method enables efficient recycling of waste mineral materials, reducing furnace inefficiencies and environmental impact while maintaining operational efficiency and cost-effectiveness.
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Figure 2025531734000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for preparing a mineral melt in a hot metal furnace, the hot metal furnace comprising a plasma torch for heating mineral material and waste or recycled mineral material to form a melt, the waste or recycled mineral material being introduced into the furnace through a waste inlet arranged in a side wall of the hot zone of the furnace. [Background technology]
[0002] Methods for preparing a mineral melt for the production of man-made mineral fibers (MMVF), such as glass or stone fibers, are known to be carried out in shaft furnaces, such as hot metal furnaces. They involve heating a mineral material to form a mineral melt. This heating may be carried out by any means, but is conventionally carried out in the presence of coke and an oxygen-containing gas, or by passing an electric current between two or more electrodes, such as graphite or molybdenum electrodes. The mineral material may also be melted using a plasma torch. The use of plasma as a heat source allows for the reduction of CO2, NO, and other carbon dioxide gases that may be present in the furnace off-gas. x Advantageously, the production of harmful gases such as HCl and H2 can be minimized.
[0003] The spinning process used to form MMVF inevitably produces various by-products that form waste mineral material. This waste mineral material may be in the form of a fine powder material, such as that formed when the MMVF is cut, or it may be naturally fibrous. In addition, end-of-life MMVF products, such as MMVF insulation removed during building renovations, are also considered waste mineral material. Waste mineral material may include binders used during the MMVF manufacturing process. This waste may also be in a hardened or unhardened state.
[0004] Instead of being disposed of in a landfill, waste mineral material can be regenerated by combining it with other (traditional) mineral materials and heating it to form a melt, which can then be spun into new MMVF products.
[0005] While recycling waste mineral materials is beneficial, recycling waste mineral materials does not simply mean that they can be combined with conventional mineral materials and added to a furnace in the usual way. It is unacceptable to directly introduce waste mineral materials into a shaft furnace, for example, by placing them on top of the mineral stack. Due to the various geometries and insulating properties of the waste mineral materials, such as fine powder and fibrous materials, the waste mineral materials can plug or suffocate the furnace by preventing off-gas from rising through the metal stack, restricting the flow of oxygen through the furnace tuyere and oxygen injection port, or restricting the flow of plasma from the plasma torch into the furnace. This significantly reduces furnace efficiency and can also disrupt the melting process.
[0006] Waste mineral materials can be processed to form briquettes that can be added to a shaft furnace along with conventional mineral materials. However, this briquetting process requires the addition of a binder to the waste mineral material, which exacerbates environmental issues. Also, the use of these briquettes is less attractive on an industrial scale because it increases the complexity and cost of the recycling process.
[0007] WO 90 / 07470 describes a method for preparing a melt for mineral wool production using wool waste, in which heat is supplied by a plasma torch. The wool waste is fed to a connecting pipe using an auger conveyor, which transmits the plasma jet to a hot metal furnace. In this method, the wool waste is applied to the plasma outside the hot metal furnace. One challenge with this method is that the feed pipe containing the auger conveyor and connecting pipe is prone to clogging with slag (a component of the wool waste), which is exacerbated when the feed pipe and connecting pipe are water-cooled to extend the device's lifespan. While a preferred embodiment attempts to reduce the impact of feed pipe clogging by gradually increasing the diameter of the feed pipe in the direction toward the connecting pipe, the connecting pipe remains prone to clogging.
[0008] Therefore, there is a need for an improved method for forming a melt suitable for use in forming mineral fibers, which method uses a substantial portion of waste mineral material. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] International Publication No. 90 / 07470 Summary of the Invention
[0010] In a first aspect of the present invention, there is provided a method for preparing a mineral melt in a hot metal furnace, the mineral melt being for the formation of mineral wool, the hot metal furnace comprising: (i) a hot zone at the base of the furnace; (ii) a melt outlet within the hot zone; (iii) at least one plasma torch providing plasma heating to the hot zone by a plasma jet, the plasma jet defining a cavity within the hot zone that is substantially free of solid material; and (iv) a waste inlet disposed in a sidewall of the hot zone of the furnace and configured to deliver waste mineral material to the cavity defined by the plasma jet; A method is provided in which mineral material and waste mineral material fed into a furnace are melted to form a mineral melt.
[0011] In a second aspect of the present invention, there is provided a method for producing man-made vitreous fiber (MMVF), said method comprising: (i) forming a mineral melt using a method as defined in the first aspect of the present invention or any embodiment thereof; (ii) fiberizing the melt by an internal or external spinning process, preferably using a cascade spinning machine; (iii) collecting the formed fibers.
[0012] In a third aspect of the present invention, there is provided a hot metal furnace for the preparation of a mineral melt according to the method according to the first aspect of the present invention or any embodiment thereof. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a schematic diagram of a cross section of a hot metal furnace configuration that can be used to implement the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0014] The present invention is based on the unexpected discovery that a waste inlet located in the wall of the hot zone of a molten metal furnace can efficiently and effectively deliver waste mineral material to a plasma jet, where the waste mineral material is melted to form a mineral melt, without the above-mentioned drawbacks being present.
[0015] A hot metal furnace heated using plasma typically includes a hot zone at the bottom of the furnace, also referred to as the furnace base. One or more plasma torches may provide a level of heating in the hot zone sufficient to melt the mineral material (mineral charge). The melt then pools at the base of the hot zone within the space between the structures supporting the stack of mineral material (usually the mineral material itself or coke used during processing). Once a certain amount of melt has been produced, it may be removed from the furnace through some form of melt outlet, such as a siphon. Once removed from the furnace, the melt may be used to form man-made vitreous fiber (MMVF) by any suitable spinning method.
[0016] Plasma torches generate thermal plasma using direct current (DC), alternating current (AC), radio frequency (RF), or other electrical discharges. While thermal plasma provides heat, in DC plasma torches, heat is generated by sending an arc between two electrodes, through which a carrier gas is passed through a narrowed opening. This raises the temperature of the gas to a point where it reaches the fourth state of matter, i.e., plasma. Plasma torches can be transferred or non-transferred. In non-transferred DC plasma torches, the electrodes are located within the torch housing. On the other hand, in transferred plasma torches, one electrode is located outside the torch housing, allowing the arc to form over a large distance outside the plasma torch. In the present invention, the plasma torch is preferably a non-transferred plasma torch. More preferably, it is a non-transferred DC plasma torch.
[0017] The plasma torch can use a variety of carrier gases, such as oxygen, nitrogen, argon, helium, air, hydrogen, water vapor, or mixtures thereof.
[0018] Typically, one or more plasma torches are mounted outside the furnace, generating a hot plasma, commonly referred to as a plasma jet, that penetrates the furnace's hot zone. This plasma jet can reach temperatures of up to 7,000 degrees Celsius, sufficient to melt nearby mineral material. As the solid mineral material is melted (and subsequently removed from the furnace via the melt outlet), a stack of mineral material moves down the furnace to replace it. In practice, it has been discovered that the plasma jet defines a cavity (a three-dimensional shape) within the furnace that is substantially devoid of solid material, e.g., mineral material, waste mineral material, and coke. The temperature and environment within the plasma jet are typically such that the mineral material within the furnace melts prior to entering the defined cavity, although the cavity may contain some solid material. For example, a section of the stack of mineral material may detach from the bulk material and fall into the plasma jet. Alternatively, the melting process may cause the stack to suddenly or partially collapse, causing solid mineral material to enter the plasma jet, including waste metallic material from the waste inlet discussed below. In either case, the solid material in the cavity is temporary, as it is quickly melted by the plasma jet.
[0019] It is preferred that the plasma jet defines a cavity within the hot zone that is free of solid material, i.e. no mineral material or waste mineral material enters the cavity.
[0020] The term "waste mineral materials," as referred to above, includes various by-products of the MMVF formation process, commonly referred to as mineral wool waste. These by-products include fine, powdery materials formed in connection with cutting, such as trimming mineral wool mats to form mineral wool slabs of desired dimensions. It also includes recycled mineral materials, such as MMVF insulation removed from buildings undergoing renovation, that would otherwise end up in landfills. Waste mineral materials may include additives, such as binders and hydrophilic or hydrophobic compounds, that were added during the manufacturing process.
[0021] The hot metal furnace includes a waste inlet located in a side wall of the furnace's hot zone. The waste inlet is essentially an opening in the wall of the furnace. It is configured to deliver waste mineral material to a cavity defined by the plasma jet. Essentially, the waste inlet can feed mineral wool waste directly into the plasma jet. It should be understood that, depending on the environment surrounding the plasma jet, the waste mineral material may melt prior to entering the plasma jet. This may depend on the amount or rate at which the waste mineral material is introduced into the furnace through the waste inlet. Once melted, the waste mineral material forms part of the mineral melt at the base of the hot zone and can be removed through the melt outlet.
[0022] The waste mineral material may be fed into the furnace through the waste inlet by any suitable means, such as: (a) an auger conveyor, or (b) A pneumatic tube transport section, preferably the pneumatic tube transport section can be a pneumatic tube transport section using recycled off-gas from a hot metal furnace or nitrogen gas (N2) or any other oxygen-free gas.
[0023] It is preferred that the waste mineral material is fed through the waste inlet by an auger conveyor.
[0024] The rate at which waste mineral material is added to a hot metal furnace may depend on the size of the furnace and its melt production rate, the number of plasma torches, the number of waste inlets and their size and location within the furnace.
[0025] Ideally, the waste mineral material used in the present method for preparing a mineral melt represents 1-40%, preferably 5-35%, more preferably 10-20% by weight of the total waste and mineral material (combined) added to the furnace. The formation of a mineral melt in a hot metal furnace is usually a continuous process, so the proportion of waste mineral material relative to the waste and mineral material combination only needs to be measured periodically. This is because the waste mineral material and / or mineral material may be added to the hot metal furnace in portions.
[0026] To ensure an adequate rate of addition of waste mineral material to the hot metal furnace, waste inlets located in the furnace walls should be spaced 3 cm apart. 2 ~320cm 2 of, preferably 20 cm 2 ~180cm 2 , more preferably 50 cm 2 ~115cm 2 This is roughly equivalent to an annular opening having a diameter of 2 cm to 20 cm, preferably 5 cm to 15 cm, and more preferably 5 cm to 12 cm.
[0027] Ideally, the waste inlet is located on the side wall of the furnace hot zone, above the point where the plasma jet enters the furnace. The advantage of this is that the waste mineral material can more easily move by gravity towards the cavity defined by the plasma jet. As such, this is a highly preferred feature of the present invention.
[0028] The distance between the edge of the orifice through which the plasma jet enters the furnace and the edge of the waste inlet should be sufficient to ensure that the waste mineral material can be melted and incorporated into the melt. This distance can be between 1 cm and 30 cm, preferably between 5 cm and 20 cm, and more preferably between 7 cm and 12 cm. In many cases, this distance is determined by the dimensions of the water cooling jackets for both the waste inlet and the plasma jet.
[0029] Due to the proximity of the waste inlet to the plasma jet, the waste inlet and the means by which the mineral material can be fed through it (e.g., an auger conveyor or pneumatic transport) are preferably formed from a heat-resistant material and / or equipped with a cooling mechanism. The hot zone of a hot metal furnace typically comprises a layer of refractory bricks. Thus, the waste inlet can be an opening in those refractory bricks that provides adequate heat resistance. In addition, the plasma torch is typically water-cooled. The water-cooling system for the plasma torch can be extended to also cool the means by which the waste mineral material can be fed through the waste inlet. This can extend the useful life of the furnace and minimize maintenance downtime, both of which increase the efficiency of the method.
[0030] Depending on the diameter of a typical hot metal furnace, it may be preferable for the furnace to have two to five plasma torches, preferably three or four, especially if the plasma torches are the primary or only means of supplying heat to the furnace. The plasma torches should be positioned substantially equidistant from one another around the periphery of the furnace in a substantially horizontal plane. This means that the plasma jet from each plasma torch extends toward the center of the hot metal furnace. To maximize the rate at which waste mineral material can be added to the furnace, the plasma torches should each have an associated waste inlet.
[0031] The waste mineral material may take a variety of forms, but a more homogeneous waste may be preferred. It may therefore be first crushed before being introduced into the hot metal furnace through the waste inlet. A rod mill is preferably used. In this example, the waste mineral material is crushed to a mass of 500 kgm 3 ~1500kgm 3 For example, 700 kgm 3 ~1250kgm 3 For example, 800 kgm 3 ~1000kgm 3 Grinding the waste mineral material to these densities means that the waste mineral material can be more easily added to a hot metal furnace using an auger conveyor or pneumatic pipe transport.
[0032] The claimed method is particularly suitable when combined with the method described in WO 2022 / 106592, the contents of which are incorporated herein by reference, for the production of a mineral melt suitable for use in the formation of MMV, glass or stone fibres, which method reduces NOx generated in the off-gas of a hot metal furnace, even when a plasma torch is used. x and minimize the amount of H. Such advantages can be achieved by supplying more than 50% of the thermal energy to the hot metal furnace using a plasma torch, which uses nitrogen (N), carbon monoxide (CO), carbon dioxide (CO), or a mixture thereof as a carrier gas, and water is excluded from any zone of the hot metal furnace above 750°C.
[0033] As is known, hot metal furnaces typically include a range of temperature zones including a hot zone, an oxidation zone, a reduction zone, and a preheat zone.
[0034] In view of the above, a specific feature of the method of the present invention is that (i) the furnace is equipped with at least one tuyere and / or oxygen injection port that provides a source of oxygen to the oxidation zone of the hot metal furnace; (ii) at least one plasma torch uses N2, CO, CO2, or a mixture thereof as a carrier gas, and optionally, the enthalpy of the carrier gas is 2.0 to 6.0 kWh / Nm 3 For example, 3.0 to 5.0 kWh / Nm 3 and preferably the carrier gas is nitrogen (N2); (iii) more than 50% of the furnace's thermal energy is provided by the plasma torch; (iv) the temperature of the oxidation zone is less than 1400 degrees Celsius; (v) the temperature of the hot zone is greater than the temperature of the oxidation zone; and / or (vi) Water is substantially excluded from any zone of the furnace having a temperature greater than 750 degrees Celsius.
[0035] All of the characteristics (i) to (vi) are related to the NO produced in the off-gas. x It is preferred that the amount of H2 included be minimized when this is the objective of the process. (I) more than 60%, preferably more than 70%, more preferably more than 80%, even more preferably more than 90%, and most preferably all of the thermal energy of the hot metal furnace is provided by at least one plasma torch; and / or (II) Heating is provided in the hot zone only by at least one plasma torch.
[0036] In addition, NO x NO is greatly reduced when oxygen is excluded from zones of the hot metal furnace that contain nitrogen and have temperatures above 1400 degrees Celsius. x To help minimize the formation of , the carrier gas should contain, at most, only trace amounts of oxygen. This means that the carrier gas should contain less than 5 wt. %, for example, less than 2 wt. %, and preferably less than 0.8 wt. % oxygen, based on the total weight of the carrier gas. Ideally, the carrier gas is oxygen-free. This means that only trace amounts of oxygen are present, at most.
[0037] NO x NO can be produced from nitrogen and oxygen at high temperatures. x To reduce the formation of NO, the temperature in the oxidation zone of the hot metal furnace should be between 600 and 1400 degrees Celsius. x To further reduce the formation of , it is preferred that the temperature in the oxidation zone is 600 to 1300 degrees Celsius, more preferably 600 to 1200 degrees Celsius, even more preferably 600 to 1100 degrees Celsius, especially 600 to 1000 degrees Celsius, and most preferably 600 to 900 degrees Celsius, especially 600 degrees Celsius to less than 850 degrees Celsius.
[0038] The off-gas from a hot metal furnace heated with a plasma torch is N2, CO, CO2, NO x , and H2, each of which is a component of the off-gas. The off-gas may contain additional components, such as water and particles, i.e., solid particles of material. In certain features, the off-gas may be used, in whole or in part, as a carrier gas for one or more of the plasma torches. The components of the off-gas may be separated prior to use as a carrier gas. The components of the off-gas may be separated from each other, or a combination of two or more components may be separated from the other components. This means that the carrier gas may contain at least one component of the off-gas, for example, one, two, three, four, five, or more of the off-gas components. It is preferred that the carrier gas contain the off-gas components N2, CO, CO2, or a combination thereof. Alternatively, the carrier gas may contain one off-gas component, for example, N2, CO, or CO2.
[0039] One or more components of the off-gas may be subjected to off-gas cleaning prior to its use in the off-gas. Preferably, off-gas cleaning removes particles suspended in the off-gas and / or water. Off-gas cleaning may be performed on the entire off-gas or on at least one component separated from the remainder of the off-gas. The carrier gas may consist of the off-gas or at least one component of the off-gas. Alternatively, it may contain the off-gas or at least one component of the off-gas. In the latter example, additional gas that was not part of the off-gas may be added to the carrier gas prior to its use. In this example, the carrier gas is "topped up" with the additional gas.
[0040] The method may be used to form any melt suitable for forming mineral wool, and is particularly advantageous in forming melts in which the melt, or the MMVF thereafter produced, has element chemical analyses within various ranges (measured as weight percent oxides) bounded by the following conventional or preferred lower and upper limits: SiO2 35 to 50% by weight, preferably 38 to 48% by weight, more preferably 33 to 44% by weight, Al2O3 12 to 30% by weight, preferably 15 to 28% by weight, more preferably 16 to 24% by weight, Up to 2 wt% TiO2, Fe2O32~12% by weight, CaO 5 to 30% by weight, preferably 8 to 20% by weight, MgO 0 to 15% by weight, preferably 1 to 12% by weight, Na2O 0~15% by weight, K2O 0~15% by weight, P2O50~3% by weight, MnO 0~3% by weight, B2O30~3% by weight.
[0041] In this example, if the melt forms an MMVF, it is preferred that the proportion of Fe(2+) in the melt be greater than 80% based on total Fe, preferably at least 90%, more preferably at least 95%, and most preferably at least 97% based on total Fe. In such an example, it is preferred that the MMVF be made using a cascade spinner. Further details of these exemplary melts can be found in WO 2012 / 140173, which is incorporated herein by reference.
[0042] As is customary in the art, references herein to Fe2O3 in a mineral melt or fiber composition refer to the total amount of iron (calculated in terms of Fe2O3) within the melt or composition, regardless of the amount of each oxidation state of iron present in the composition.
[0043] In the above example melt and resulting fiber, the amount of iron in the melt is preferably 2-15 wt. %, preferably 5-12 wt. %. Hot metal furnaces tend to have a reducing atmosphere, which can result in the reduction of iron oxides and the formation of metallic iron. Preferably, metallic iron is not incorporated into the melt and fiber and should be removed from the furnace. Therefore, conditions within the furnace should be carefully controlled to avoid excessive iron reduction. However, applicants have found that it is possible to produce final product fibers with significant levels of iron oxide.
[0044] The method of the present invention can be used to form fibers that can be soluble in saline. High-purity aluminum, biologically soluble fibers that can be advantageously produced using the method of the present invention are described in WO 96 / 014474 and WO 96 / 014274, and others in WO 97 / 029057, German Utility Model No. 2970027 (DE-U-2970027), and WO 97 / 030002, which are incorporated herein by reference.
[0045] Such fibers preferably have suitable solubility in lung fluid, as demonstrated by in vivo testing or in vitro testing, typically performed in saline buffered to about pH 4.5. Suitable solubilities are described in WO 96 / 014454. Typically, the rate of dissolution is at least 10 or 20 nm per day in the saline solution. The fibers preferably have a sintering temperature above 800°C, more preferably above 1000°C. Preferably, the melt has a viscosity of 5-100 poise at the fiber formation temperature, and preferably a viscosity of 10-70 poise at 1400°C. Additional embodiments of this example can be found in WO 99 / 28252, incorporated herein by reference.
[0046] The MMVF may be formed as a bonded web comprising MMVF as described above, may be MMVF made by the methods described above, or may be a cured binder composition.
[0047] Preferably, the melt in this particular example has a viscosity in the range of 10-30 poise at 1400°C, more preferably in the range of 20-25 poise. The advantage of selecting these viscosities is that the resulting MMVFs have smaller diameters than would be possible with a higher melt viscosity. Furthermore, it is possible to use a lower melt temperature to achieve the required operating viscosity. This saves energy because a lower melt temperature can be used. It also reduces wear on the rotor used to produce the fiber, since a lower temperature melt generates less wear. Further details of the melt in this example can be found in WO 2015 / 055758, which is incorporated herein by reference. The viscosity of the melt can be determined according to ASTM C 965-96.
[0048] The raw materials (mineral materials) may be in the form of briquettes. Briquettes are made by known means by molding the desired particulate material and binder into the desired briquette shape and allowing the binder to harden. The binder may be a hydraulic binder, i.e., activated by water, such as Portland cement. Other hydraulic binders may be used as partial or complete cement substitutes, including lime, blast furnace slag powder, certain other slags, as well as cement kiln dust and ground MMVF shot (see JP 51075711, U.S. Patent Application Publication No. 4662941, and U.S. Patent Application Publication No. 4724295, each of which is incorporated herein by reference). Alternative binders include clay. Briquettes may also be formed with an organic binder such as molasses, as described, for example, in WO 34 / 034514, which is incorporated herein by reference. Such briquettes may be described as formstones.
[0049] The melt prepared via the method of the present invention may be suitable for the production of mineral wool, or MMVF, such as glass or stone fibre. Preferably, the melt formed is suitable for use in forming MMVF. Thus, in a second aspect of the present invention, (i) forming a melt using a method as defined herein; (ii) fiberizing the melt by an internal or external spinning process, preferably using a cascade spinner; (iii) collecting the formed fibers; A method for producing an MMVF is provided, comprising:
[0050] Fibers, particularly MMVF, can be produced from melts in conventional ways. Typically, they are produced by a centrifugal fiber-forming process. For example, fibers may be formed by a spinning cup process in which they are ejected outward through perforations in a spinning cup, or the melt may be injected from a rotating disk, or fiber formation may be enhanced by injecting a jet of gas through the melt. Fiber formation may be carried out by pouring the melt into a first rotor in a cascade spinning machine. In this example, the melt is poured into the first of a set of two, three, four, or more rotors, each rotating about a substantially horizontal axis. The melt from the first rotor is thereby first injected into the second (lower) rotor, but some may be ejected from the first rotor as fibers. The melt from the second rotor may then be ejected as fibers but some may be ejected toward the third (lower) rotor, and so on. Generally, the spinning process is preferably carried out using a cascade spinning machine.
[0051] The properties required of the melt for use in each spinning method are known in the art, and the melt composition can be adjusted to provide those properties. For example, one skilled in the art can select the mineral materials added to the hot metal furnace to produce a particular melt composition and be spun by a particular spinning process.
[0052] During the fiberization process, the melt forms an airborne, entrained cloud of fibers that are collected as a web on a conveyor and conveyed away from the fiberizer. The fiber web is then consolidated, which may involve cross-wrapping and / or longitudinal compression and / or vertical compression and / or winding around a mandrel to produce a cylindrically shaped product for pipe insulation. Other consolidation processes may also be performed.
[0053] Conventionally, a binder composition is applied to the fibers, preferably while they are in an airborne cloud. Alternatively, it may be applied after collection on a conveyor, although this is less preferred. Conventional types of binders using mineral wool fibers may be used.
[0054] After consolidation, the web of fibers is transferred to a curing device that cures the binder, which may be carried out at a temperature of 100-300°C, such as 170-270°C, such as 180-250°C, such as 190-230°C.
[0055] Curing is carried out in a conventional curing oven for mineral wool production, in which hot air is blown through the interlocked web, preferably operating at a temperature of 150-300°C, such as 170-270°C, for example 180-250°C, for example 190-230°C. Curing may be carried out for 30 seconds to 20 minutes, for example 1-15 minutes, for example 2-10 minutes. Typically, curing is carried out at a temperature of 150-250°C for 30 seconds to 20 minutes.
[0056] The curing process can begin immediately after the binder is applied to the fibers. Curing is defined as a process in which the binder composition undergoes a physical and / or chemical reaction. In the case of a chemical reaction, the molecular weight of the compounds in the binder composition typically increases, thereby increasing the viscosity of the binder composition and typically leading to the binder composition reaching a solid state. The cured binder composition bonds the fibers together to form a structurally coherent fiber matrix.
[0057] Alternatively, the curing of the binder in contact with the mineral fibers may be carried out in a heat press. Curing of the binder in contact with the mineral fibers in a heat press has the particular advantage that it makes it possible to produce a high density product.
[0058] The invention will now be described in more detail with reference to the drawing (FIG. 1), which is a schematic illustration in cross section of a hot metal furnace configuration that can be used to implement the invention.
[0059] The plasma torch 1 includes two separate tubular electrodes 2 and 3, to which direct current is supplied via conductors 4 and 5 from a voltage adjustment unit such as a rectifier and thyristor 6 or a thyristor and IGBT (Insulated Gate Bipolar Transistor). Current is supplied to the thyristor 6 via conductor 7, which includes a transformer 8. The tubular electrodes 2 and 3 are equipped with cooling jackets, and cooling water is introduced into the cooling jackets by a pump 9 and recycled through a heat exchanger 10. The cooling medium is introduced into the heat exchanger 10 through a supply pipe 11 and discharged through an outlet pipe 12. The plasma torch 1 also includes a pipe 13 for introducing a carrier gas into a distribution chamber 14, from which the carrier gas flows into the space between the electrodes 2 and 3.
[0060] The plasma torch 1 is connected to the side wall of a hot metal furnace 16 through a connecting pipe 15. The end of the connecting pipe 15 is inserted into a hole in the wall of the shaft furnace. In use, the plasma jet 17 generated by the plasma torch 1 extends toward the center of the hot metal furnace and defines a cavity (dashed line 18) that is substantially free of solid material in the hot zone. The plasma jet 17 provides plasma heating to the hot zone.
[0061] The hot metal furnace also includes a waste inlet 19 located in a sidewall of the furnace, in this example above the orifice through which the plasma jet enters the hot metal furnace. In use, waste mineral material may be delivered to the cavity 18 through the waste inlet 19 defined by the plasma jet. This may be accomplished, for example, via an auger conveyor 20 rotatably mounted within a feed pipe 21 extending through the waste inlet 19, as shown in FIG. 1.
[0062] The plasma jet 17 melts the waste and mineral material in the hot zone of the furnace, resulting in a melt pool at the base of the hot metal furnace, which may be removed from the furnace in the usual manner.
Claims
1. 1. A method for preparing a mineral melt in a hot metal furnace, said melt being for the formation of mineral wool, said hot metal furnace comprising: (i) a hot zone at the base of the furnace; (ii) a melt outlet within the hot zone; (iii) at least one plasma torch providing plasma heating to the hot zone with a plasma jet, the plasma jet defining a cavity within the hot zone that is substantially free of solid material; and (iv) a waste inlet disposed in a sidewall of the hot zone of the furnace and configured to deliver waste mineral material to the cavity defined by the plasma jet; The method wherein the mineral material fed to the furnace and the waste mineral material are melted to form the mineral melt.
2. 2. The method according to claim 1, wherein the amount of waste mineral material used is 1-40%, preferably 5-35%, more preferably 10-20% of the total weight of waste mineral material and mineral material.
3. The waste inlet includes: (I) located on the wall of the furnace above the point where the plasma jet enters the furnace; and / or (II) 3 cm 2 ~320cm 2 of, preferably 20 cm 2 ~180cm 2 , more preferably 50 cm 2 ~115cm 2 3. The method of claim 1 or 2, wherein the surface area is
4. The waste mineral material comprises: (a) by an auger conveyor; or (b) a pneumatic pipe transport section, preferably, the pneumatic pipe transport section is configured to transport regenerated off-gas or nitrogen gas (N 2 ) or any other non-oxygen containing gas delivered through the waste inlet by pneumatic tube transport; 4. A method according to any one of claims 1 to 3, wherein the waste mineral material is preferably fed through the waste inlet by an auger conveyor.
5. 5. A method according to any one of claims 1 to 4, wherein the hot metal furnace is equipped with two to five, preferably three or four, plasma torches arranged substantially equidistant from one another around the periphery of the furnace in a substantially horizontal plane, the plasma jet from each plasma torch extending towards the centre of the hot metal furnace, and each plasma torch having an associated waste inlet.
6. 6. A method according to any one of claims 1 to 5, wherein the waste mineral material is crushed, preferably by a rod mill, before being introduced into the hot metal furnace through the waste inlet.
7. The waste mineral material is 500 kgm 3 ~1500kgm 3 For example, 700 kgm 3 ~1250kgm 3 For example, 800 kgm 3 ~1000 kgm 3 7. The method of claim 6, wherein the mixture is ground to a density of 0.1 to 0.
25.
8. (i) the furnace comprises at least one tuyere and / or oxygen injection port that provides a source of oxygen to the oxidation zone of the hot metal furnace; (ii) at least one of the plasma torches is nitrogen (N 2 ), carbon monoxide (CO), carbon dioxide (CO 2 ), or a mixture thereof, is used as a carrier gas, and optionally, the enthalpy of the carrier gas is 2.0 to 6.0 kWh / Nm 3 For example, 3.0 to 5.0 kWh / Nm 3 and preferably the carrier gas is nitrogen (N 2 ) and (iii) more than 50% of the furnace's thermal energy is provided by the plasma torch; (iv) the temperature of the oxidation zone is less than 1400 degrees Celsius; (v) the temperature of the hot zone is greater than the temperature of the oxidation zone; and / or (vi) The method of any one of claims 1 to 7, wherein water is substantially excluded from any zone of the furnace having a temperature greater than 750 degrees Celsius.
9. (I) more than 60%, preferably more than 70%, more preferably more than 80%, even more preferably more than 90%, and most preferably all of the thermal energy of the hot metal furnace is provided by at least one plasma torch; and / or 9. The method of claim 1, wherein (II) heating is provided in the hot zone solely by at least one of the plasma torches.
10. (a) the temperature of the oxidation zone is from 600 to 1400 degrees Celsius, preferably from 600 to 1300 degrees Celsius, more preferably from 600 to 1200 degrees Celsius, even more preferably from 600 to 1100 degrees Celsius, in particular from 600 to 1000 degrees Celsius, and most preferably from 600 to 900 degrees Celsius, in particular from 600 to less than 850 degrees Celsius; and / or 10. The method of any one of claims 1 to 9, wherein (b) the temperature of the hot zone is greater than 800 degrees Celsius, preferably greater than 900 degrees Celsius, more preferably greater than 1000 degrees Celsius, more preferably greater than 1100 degrees Celsius, more preferably greater than 1200 degrees Celsius, more preferably greater than 1300 degrees Celsius, more preferably greater than 1400 degrees Celsius.
11. The melt has the following composition, expressed as oxides, in weight percent: SiO 2 35 to 50% by weight, preferably 38 to 48% by weight, more preferably 33 to 44% by weight, Al 2 O 3 12 to 30% by weight, preferably 15 to 28% by weight, more preferably 16 to 24% by weight, TiO 2 up to 2% by weight, Fe 2 O 3 2-12 wt%, 5 to 30% by weight, preferably 8 to 20% by weight, of CaO, MgO 0 to 15% by weight, preferably 1 to 12% by weight, Na 2 0~15wt%, K 2 0~15wt%, P 2 O 5 0-3% by weight, MnO 0-3% by weight, B 2 O 3 0-3% by weight, 11. The method of claim 1, wherein the first and second inputs are connected to the first and second inputs.
12. 12. The method according to any one of claims 1 to 11, wherein the proportion of Fe(2+) in the melt is greater than 80% based on total Fe, preferably at least 90%, more preferably at least 95%, and most preferably at least 97% based on total Fe.
13. 13. The method of any one of claims 1 to 12, wherein the carrier gas comprises or consists of at least one component of the off-gas produced by the furnace, preferably the at least one component of the off-gas is subjected to off-gas cleaning prior to its use as a carrier gas, more preferably the off-gas cleaning is to remove particles and / or water.
14. 1. A method for producing man-made vitreous fiber (MMVF), the method comprising: (i) forming a mineral melt using a method as defined in any one of claims 1 to 13; (ii) fiberizing the melt by an internal or external spinning process, preferably using a cascade spinning machine; (iii) collecting the formed fibers.
15. A hot metal furnace for the preparation of a mineral melt by the method according to any one of claims 1 to 13.
Citation Information
Patent Citations
Method and apparatus for preparing a melt for mineral fibre production
WO1990007470A1