Combustion fuel composition

The integration of magnetite material into hydrocarbon-based fuels addresses inefficiencies and emissions in combustion technologies by improving heat generation and reducing greenhouse gases, offering a sustainable and cost-effective solution.

JP7743963B2Active Publication Date: 2025-09-25THE TRUSTEES FOR THE TIME BEING OF THE KMN FULFILMENT TRUST
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Patent Information

Application Number
JP2024504798
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-08-17
Filing Date
2022-07-20
Publication Date
2025-09-25
Estimated Expiration
2042-07-20

AI Technical Summary

Technical Problem

Existing combustion technologies using hydrocarbon-based fuels are inefficient, costly, and produce significant greenhouse gases and other pollutants, requiring complex and expensive processing steps to reduce emissions.

Method used

A fuel composition comprising hydrocarbon-based fuels mixed with magnetite material, which includes magnetite (Fe3O4) powder with specific size and composition, enhancing combustion efficiency and reducing greenhouse gas emissions through electron donation and acceptance, and magnetic attraction of fuel particles.

Benefits of technology

The magnetite-based fuel composition improves heat generation, reduces greenhouse gas emissions by up to 99%, and allows for repeated use, eliminating the need for costly processing steps and enhancing fuel properties such as heat production and environmental sustainability.

✦ Generated by Eureka AI based on patent content.

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Abstract

A fuel composition for combustion according to claim 1 is disclosed, comprising a hydrocarbon-based fuel and a magnetite material comprising magnetite. The magnetite material is in the form of a powder having a size range of 1 nm to 1 mm. The magnetite material is 0.1 to 80% by weight of the fuel composition. The magnetite material comprises at least 40% magnetite (Fe3O4) and at least 25% Fe (iron).
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Description

[Technical Field]

[0001] The present invention relates to combustible materials, and in particular to combustion compositions containing magnetite materials. [Background technology]

[0002] The principles of fossil fuel combustion are well known in industry, as fossil fuels are commonly used every day and are primarily hydrocarbon fuels that are the active elements in the combustion process. These fuels traditionally used as fossil fuels may be liquid fuels, such as gasoline, diesel, and paraffin or heavy furnace oil; gaseous fuels, such as natural gas, methane, or LPG; or solid fuels, such as coal, wood, or anthracite.

[0003] In these cases, combustion occurs due to the presence of elemental carbon, which reacts with oxygen gas in a well-known process called the reduction-oxidation (REDOX) reaction. The elements / materials involved in the redox reaction are "used up" in the combustion process; that is, the carbon element involved in the combustion process is used up with its electron-donating properties and converted into materials that can no longer be used in the redox reaction as described above. These resulting materials are waste materials from the combustion process. The primary products of a conventional combustion process are heat, flame, ash, smoke, and off-gases, including greenhouse gases.

[0004] For the combustion process to proceed, three elements are required to initiate and advance the combustion process: (1) heat input, (2) carbon, and (3) oxygen. Air can provide the O2 molecules, fuel can be in the form of coal which becomes elemental carbon, and heat is provided to initiate and sustain combustion. The chemical equation for this reaction is: Heat+C+O2=CO2+Heat is.

[0005] There are patent applications known to the inventor that utilize magnetite for other purposes, in which magnetite is calcined and converted into iron oxide, and then mixed with other materials in specific ratios. Patent Document 1 discloses magnetite (Fe3O4) used as a starting material, and a porous iron oxide absorbent having macropores is disclosed. This iron oxide absorbent composition is made of magnetite, aluminum oxide, alumina silicate, and a binder composed of organic substances. These materials are homogenized into a composition, which is calcined in preparation for this use to burn off the organic substances and make it suitable for application.

[0006] Patent Document 2 discloses a silica-bonded composition of 49-90% by weight of magnetite (Fe3O4), 60-70% by weight of saturated alkaline earth silicate, 2-4% by weight of microsilica, and 0.5-7.5% by weight of Al salt. This material can be used for heat storage, for example, as a storage block for a domestic night-time storage heater.

[0007] Patent Document 3 discloses magnetite (Fe3O4) as part of a composition containing magnetite, silica, zeolite, hydrotalcite, Ag, Pt, Cd, Ba, Zn, Ce, and TiO2. These materials are mixed with clay and further processed by calcination to produce a ceramic composite that improves the efficiency of internal combustion engines. In this application, magnetite is used as a material that becomes part of the engine's structure, improving the internal combustion engine for better combustion efficiency of the combustion fuel at the time of the combustion process. Magnetite is not part of the fuel. In these inventions, magnetite does not participate in the combustion process. It is published that magnetite is mixed with metals such as Pt, Ag, and tungsten, and many steps are required, such as annealing, temperature-programmed desorption, and exposure to nitric oxide at controlled temperatures, sometimes under specific pressures. It appears that magnetite is processed under these complex process steps along with very complex and expensive metal objects.

[0008] Applicant desires a combustion fuel composition that is relatively simple and inexpensive, eliminates steps such as annealing, eliminates expensive metal objects, and in the process improves the properties of existing hydrocarbon-based fuels. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] WO2018052861A1 [Patent Document 2] AT4132118 [Patent Document 3] TW200819618A Summary of the Invention

[0010] Accordingly, the present invention provides a fuel composition comprising a hydrocarbon-based fuel and a magnetite material comprising magnetite. More specifically, the present invention provides a fuel composition for combustion, the fuel composition comprising: a hydrocarbon-based fuel and a magnetite material including magnetite (Fe3O4), The magnetite material is in the form of a powder having a size range of 1 nm to 5 mm, the magnetite material is 0.1 to 80 wt. % of the fuel composition; The magnetite material comprises at least 40% magnetite (Fe3O4), The magnetite material has at least 25% Fe (iron). DETAILED DESCRIPTION OF THE INVENTION

[0011] Magnetite-based fuels are fuels in which magnetite material is mixed with a fuel containing a fossil or hydrocarbon fuel and other combustible compounds. Magnetite materials are materials containing magnetite and different oxides, elements, and other compounds. More specifically, magnetite materials may include Fe3O4 (magnetite), also known as magnetic iron oxide or ferrous iron oxide, phosphate, pyrite, silica, alumina, titania, Mn3O4, Cr2O3, VO5, MgO, KO, SrO, Na2O, and ZrO2. The magnetite material in the fuel composition ranges from 0.0025 to 65%, the silica content is 0.001 to 1.5%, the magnetite material has at least 40% Fe3O4, and the Fe3O4 has at least 25% Fe. The size distribution of the magnetite material ranges from 1 nanometer to 5 mm. Magnetite materials have a relatively high density, and for applications in low-density fuels, such as liquid fuels, a very small size is required so that the magnetite material can float on top of and within the liquid fuel. Reaction efficiency and reaction rate also improve at this 1-nanometer size. If the size of the material were increased to 4000 nanometers or even 5 mm, a desirable advantage would be that the heat generated during solid fuel combustion is well dispersed throughout the mixture and not contained in pockets within the mixture, as heat is required for performance and the larger size of the material improves the efficiency of heat distribution. Another advantage of the larger size is that the handling and safety of the material are much better. The magnetite material may contain oxides such as at least 3.5% MgO and at least 2.4% TiO, which are also active in the adsorption and reduction of greenhouse gases. The magnetite material imparts better fuel properties to the fuel composition, imparting a dominant north or south pole to the fuel and also imparting Fe and Fe charges to the fuel. The raw magnetite material has not undergone a combustion process, so the fuel has a predominant north polarity, making the magnetite material-based fuel have a predominant north polarity.The raw magnetite material may also have a predominant south pole, such that fuels based on this magnetite material have a predominant south pole.

[0012] The combustion of this fuel can be carried out in such a way that the magnetite material is the top layer of the fuel, including solid fuels such as coal, during the combustion process. After the combustion of coal containing the magnetite material, ash containing solid magnetite material remains. This magnetite material combined with the ash can be used as a component of the fuel and added to reduce off-gases, including CO2, from the combustion process of fossil fuels or hydrocarbon fuels. This is because when part of the ash is mixed with the magnetite material, it acquires stronger magnetic properties, thus preventing off-gases from escaping and being attracted to the magnetite material, thereby preventing environmental pollution. The magnetite material combined with the ash can be new, unburned magnetite material or magnetite material that has been repeatedly burned. When the magnetite material is on top of the burning coal, it also allows fuels, including fine coal, especially coal containing pyrite, to acquire some magnetic properties, which improves the combustion efficiency of the fuel.

[0013] The magnetite material may be used as an additive to combustible materials / fuels, including fossil fuels for combustion processes, hydrocarbon fuels, and opportunity fuels, including solid fuels such as coal, wood chips, raw coal, charcoal, lignite, sulfurous materials, carbon soot, peat, biomass, waste plastic materials, wood pellets, and bitumen; liquid fuels, including heavy fuel oil, shale oil, jet fuel, diesel, gasoline, illuminating paraffin, naphtha, biodiesel, LPG, methanol, and butanol; and gas fuels, including natural gas, shale gas, propane, hydrogen, butane, and methane. In the case of gas fuels, the magnetite material may be supplied to the high-pressure stream at a controlled rate so that when the fuel is released under pressure toward the combustion point, the magnetite material combines with the gas and becomes part of the composition of the gas fuel. Opportunity fuels that can be mixed with the magnetite material include petroleum coke, woody and agricultural biomass, tire-derived fuel, and coalbed methane. Additional silica of at least nanometer particle size can be added up to at least 1.5% silica (SiO2). Because the magnetite material is a highly active compound in this blended combination of different materials, this material is used as a magnetite-based fuel. The magnetite material contains metal oxides that contribute to greenhouse gas reduction. The magnetite material participates in electron donation and acceptance, resulting in increased heat generation and the reduction of major off-gases, including SO2, NO2, Co, and CO2, and the generation of O2 during the combustion process. The addition of silica, which has a self-voltage potential, improves the electric field activity of the magnetite material and improves the overall combustion efficiency of the magnetite-based fuel. This allows the materials (magnetite material, fuel, and silica) of this magnetite-based fuel to combust, increasing the heat generation of the fuel and the pressure generated. This fuel reduces the amount of particulate solid material released into the atmosphere. The magnetite-based fuel achieves a long combustion process, and the silica may be of a nanoscale size classification for certain applications, such as liquid fuels.

[0014] Magnetite materials for liquid and gaseous fuel applications tend to settle due to their high density. However, due to the presence of other elements and compounds in the magnetite material, these other compounds have a lower density compared to ferrous ferric oxide magnetite. These other compounds can reduce the density of the magnetite material, making it more suitable for mixing with other fuels and reducing the tendency for settling. Magnetite has at least 25% Fe (elemental iron). The magnetite material must be at least moisture-free, i.e., 0% moisture. Moisture in the material absorbs heat energy generated during the combustion process, thus reducing useful energy. The less water / moisture in the magnetite material fuel, the better the heat generation. This magnetite material has a magnetic field. This magnetite material has a dominant north pole. In this material, the north pole is more dominant than the south pole. For this material, if the north pole is 2.2 mT, the south pole may read 1.2 mT or 1.5 mT; in some measurements, the south pole measures 0.7 mT. The magnetic field on the powdered magnetite material has a reading of 0.460 mT on the north pole and 0.20 mT on the south pole. These readings are for the magnetite material in powder form, but not burned. Fine magnetite material appears to respond differently when exposed to a magnetic field compared to solid magnetite material. Raw magnetite powder material has a dominant north pole even when not exposed to a south pole. The magnetite powder material can be bonded with a solid fuel using a binder, including a resin, so that the magnetite material is completely covered by the magnetite material, or the magnetite material and solid fuel or hydrocarbon fuel can be formed into a structure, such as a pellet or ball structure, and the magnetite material and fuel can be bonded with a binder to form a pellet-containing structure. The north / south polarity has a greater impact on the activity of this material, which is why it produces several unexpected technical results and advantages.A material with this type of property exhibits a north pole dominance, typically equal to a magnetic field strength reading, but opposite to a magnetic field strength reading. This material exhibits this type of property, with a north pole dominance, sometimes by as much as 45%. While these magnetic readings may seem very small for magnetite materials, the effect is clear when viewed at nanometer scale. Because the north pole dominance is dominant, magnetite materials generate more heat during combustion. As magnetite materials are repeatedly used with fuels, including fossil fuels, the north pole magnetic field strength reading decreases, and as this decreases with repeated combustion, heat generation also decreases. Furthermore, as this magnetite material is repeatedly used in the combustion process on magnetite-based hydrocarbon fuels, the south pole increases, resulting in less greenhouse gas emissions.

[0015] Magnetite material-based fuel as a chemical product substantially solves the problems posed by hydrocarbon-based fuels, fossil-based fuels, and other fuels by the chemical composition and physical properties of material compounds containing magnetite, silica, sulfur, etc., how the combustion process is initiated, how the combustion process is maintained, and how the final product of the magnetite material-based fuel is environmentally friendly and sustainable due to the reusability of this magnetite material product. Furthermore, most of the final product after many repeated combustions can be used for industrial applications. One of the final products after repeated use of the magnetite material in this invention is that the magnetite material can end up as hematite material ore that can be used to produce steel. The more times the magnetite material is used in repeated combustion processes, the more greenhouse gases are reduced and O2 is increased from the combustion process. The magnetite material is recovered after the combustion process and reused again. Conventional combustion processes use oxygen gas, and at the end of the combustion process, there should be less oxygen than at the beginning of the combustion process. However, in this invention, the oxygen does not decrease and, in some cases, surprisingly increases. There can be little or no waste from the present invention during the combustion process. If the magnetite material is cooled (not at high temperatures), it will cool to below 35°C after the combustion process. Mixing the magnetite material with hydrocarbon fuel for combustion reduces greenhouse gases, including SO2, NO2, Co, and CO2. The more times it undergoes combustion, the better the greenhouse gas reduction. This magnetite material used in steel production can be mixed with fuels, including coal, coke, anthracite, etc., and fed to the top of the mixture, becoming the top layer and thus beginning to reduce greenhouse gases before they are generated in the reaction process that forms the steel. This same material can be used in other smelting processes for metal smelting operations, and the iron (Fe) content in the production process and final product can be adjusted. The magnetite material as a fuel additive or additive to fuel has very desirable results.As an additive to hydrocarbon fuels, magnetite material-based fuels have highly desirable characteristics as a fuel because they increase heat production, can be combusted repeatedly, reduce off-gases including greenhouse gases, are affordable, and are easy to transport, store, and handle. The magnetite material introduces favorable fuel characteristics into magnetite material-based fuels. These are essential features of the present invention, which are substantially eliminated from the prior art and conventional combustion fuels.

[0016] These specific properties of magnetite material may be important to this particular invention. The composition may also include silica. Silica, as a natural material, has a natural voltage of dielectric properties, which may increase the electrical activity of magnetite particles and affect their magnetic and electrical properties. These properties of magnetite material and silica may be highly influential at nanometer-scale sizes. The fact that magnetite-based fuels achieve moderate ignition temperatures may mean that they do not require much heat energy to initiate and propagate the combustion process, and most of the energy generated may be released for utilization rather than being used up by the process. Another fact regarding energy is that magnetite material has at least two electrons for donation and transfer. These two factors may explain the greater energy release. The magnetite material under these typical combustion conditions can donate electrons, accept electrons, and donate electrons at least twice, which may explain the repeated use of this material in the combustion process, which may end up with the electrons accepting and donating electrons overall, which converts CO2 to CO and CO, which then converts to carbon soot and oxygen, producing more soot than usual, which may be used to extend the combustion process, which may indicate a reduced need for atmospheric oxygen. The composition of this magnetite material and the combustion process provide the conditions for this repeated donation and acceptance of electrons by the magnetite material.

[0017] The combustion process of magnetite-based fuels is different from that of conventional fuels, such as hydrocarbon fuels. Hydrocarbon-based fuels have carbon as the active element in the combustion process. Magnetite material, as the active part of the carbon-containing fuel, is far different from carbon-based fuels in the way of reaction process and residue from the combustion process. The fact that both magnetite material and carbon are involved in a chemical reaction can also explain the increased heat generation. The combustion process of hydrocarbon fuels involves an oxidation-reduction chemical process. The combustion process of hydrocarbon materials is initiated by heat, propagated by heat, and further progresses.

[0018] Combustion Process Magnetite-based fuels are more electrically charged and have a pronounced electric field reading. Therefore, they can easily attract and accept electrons. The magnetite in magnetite-based fuels can accept and donate electrons to chemically initiate the combustion process. Magnetite also donates its electrons to elemental oxygen. The magnetite material donates electrons to CO2, which breaks down into Co, and then carbon monoxide breaks down into elemental carbon and O2. The Fe3O4 can capture O2 from CO2. This may be how magnetite materials reduce the amount of CO2 gas and other gases. The combustion process produced a lot of soot in the form of flakes. Diesel with powdered magnetite material simultaneously produced more heat energy, reduced off-gassing, and produced more soot in the form of small black flakes, without reducing O2 levels during the combustion process. This indicates that the O2 produced during the combustion process is sufficient to sustain the combustion process or may be released into the atmosphere. This O2 is a by-product of this combustion process, including magnetite material. This combustion process does not decrease the amount of O2, and in some cases increases the amount of O2, indicating that this combustion process produces some O2. Part of the output from this fossil fuel combustion process is more soot, more heat, and more oxygen. More soot is produced as carbonaceous material from the combustion process. After CO2 is broken down into carbon monoxide, the CO2 is then converted to carbon, which is the soot produced during the combustion process, due to the presence of magnetite material. The donated electrons can return elemental carbon to a state where it can be burned again. The magnetite material donates electrons to CO2, which then accepts the electrons, and this activity can release heat energy. Therefore, this soot material forms part of new fuel and can be used for combustion purposes. This flaky black carbon material can be used for many industrial applications, such as pelletizing and smelting reduction. The more CO2 is decomposed, the more soot and oxygen is produced, thus allowing multiple combustions of the original carbon material under these operating conditions.The soot material can be recovered and mixed with magnetite material or burned alone. Testing work has also revealed that the dirtier the fuel, including raw coal and heavy fuel oil, the more soot is produced, the less CO2 is produced, and the more heat the same amount of material generates without the magnetite material. The magnetite material can be repeatedly burned, and the elemental carbon can also be repeatedly burned, and the two can be mixed to form a new fuel material. This is a major technological advancement and a significant improvement in combustion technology. The repetitive nature of the combustion of both the magnetite material and the elemental carbon works together to make the fuel much more renewable and sustainable, with considerable economic importance to the global economy. The difference and advantage in this case is the elemental carbon, and the absence of other elements that form slag and ash and produce off-gases such as NO and SO2. This combination of magnetite material and elemental carbon may be the cleanest and most efficient fuel for combustion processes. The magnetite material increases heat production, reduces off-gases including greenhouse gases, and produces cleaner elemental carbon that can be used in the combustion process multiple times. The soot material can be collected and mixed with magnetite powder material, and the soot from the magnetite powder material can then be mixed with hydrocarbon fuel for a combustion process. Carbon in the fuel portion of magnetite-based fuels donates electrons, and in this combustion process, magnetite particles accept electrons, which can then donate electrons, and oxygen molecules also accept electrons. This act of electron acceptance releases energy as the combustion process progresses. This two-stage heat release gives magnetite-based fuels their high-temperature combustion process. When electron donation to CO2 is incorporated into the process, this two- or three-stage process gives magnetite-based fuels a unique chemical reaction compared to other fuels. Reduction of off-gases, including greenhouse gases, occurs during the combustion process.

[0019] Due to the charges of its magnetic and electric fields, magnetite materials tend to attract fuel materials, including liquid fuels, to their surface, thereby improving maximum contact between the magnetite material and liquid fossil fuels. In a conventional combustion reaction process, one element (carbon), which may be in the form of coal, donates an electron, and another element, oxygen molecules, accepts that electron, completing the reaction process. In the present invention, the magnetite material can act as an intermediate between the initial and final electron donation. The magnetite material can accept an electron from a hydrocarbon and then pass it on to the oxygen molecule or donate one of its own electrons. There are at least two electron donation stages and at least two electron acceptance stages. This two-stage process may involve two different electrons, one from the carbon element and one from the magnetite material particles. A surprising effect is that the magnetite material particles can act as an electron acceptor, then as an electron donor, and also as an electron donor and then accept electrons. This is a very unusual and surprising activity by magnetite materials. It shows that magnetite materials can move from a high level of electronegativity to accept electrons, then move to a lower level of electronegativity to donate electrons to the next element, an oxygen molecule, and even to another magnetite particle, thereby improving their heat production. When magnetite materials accept electrons from a carbon-based ignition material, their oxidation state decreases and they can be excited by the electric field and the heat of combustion. Furthermore, the fact that they have accepted electrons prompts the magnetite material to donate electrons, which then become oxidized and increase their oxidation state. The magnetite material in magnetite-based fuels can provide a different route to the combustion process over magnetite-based fuels, using less heat to drive the reaction, and generating much more energy due to its ability to provide two-stage electron donation. Electrons from carbon elements may prefer to be donated to the magnetite material due to its charge and the electrical activity of the magnetite material from the magnetic field.This situation where magnetite material accepts and donates electrons can explain the long life of the combustion process in magnetite material-based fuels. The fact that magnetite material donates electrons during the combustion process acts similarly to carbon in conventional hydrocarbon fuels, and in addition, it accepts electrons, which acts like oxygen molecules in the normal combustion process. In terms of electron transfer, it is much more than conventional fuels.

[0020] Magnetite material acts like a catalyst in the combustion process. The difference between magnetite material and a catalyst is that the magnetite material in a magnetite-based fuel loses some of its chemical properties and some of its physical properties. Furthermore, in some ways, the more the magnetite material is used, the more it reduces off-gassing, including greenhouse gases, so the magnetite material improves some of its chemical characteristics. It does not act like a catalyst; it goes beyond what a catalyst does in a chemical reaction and improves some of its properties. It accelerates the process, undergoes chemical / electrical changes, and sometimes ends up as a better magnetite material after the combustion process.

[0021] Some of these gases were reduced by as much as 99%, which is far superior. A table illustrating the reduction in off-gassing from the combustion process is shown here, comparing the off-gassing of a control sample with the same amount of fuel containing magnetite material. Unlike traditional processes, where multiple materials are used to treat each specific gas, such as applying limestone to reduce only one gas, and where other materials must be sourced, such as ammonia to reduce NO, or where other materials must be purchased to reduce other climate change gases, magnetite material reduces these gases, some of the most climate-damaging gases. Compared to other processes where individual chemicals are required to reduce off-gassing, this increases the cost of purchasing and processing these other materials and is inefficient. Magnetite material can also be added to biofuels, especially biodiesel, and, among other benefits, can reduce nitrogen oxide gases, since biodiesel itself produces NOx. Fossil fuels contain sulfur, and it is well known that magnetite material reduces sulfur gases from fuel combustion. Another embodiment of the present invention is applied to raw coal, which is coal that has not yet been processed. In this case, magnetite material-based fuels include some untreated, unwashed, and raw coal fuels that must be processed in conventional processes. When magnetite material is mixed with this untreated, unprocessed coal, off-gases, including greenhouse gases other than carbon monoxide, are reduced. Processing refers to the metallurgical and chemical treatment of coal-containing materials to remove undesirable substances from the coal and make it more suitable for application in combustion processes. These processes can be used to remove greenhouse gases and increase the heat production per unit mass of fuel by 50%. Off-gases, including greenhouse gases, are reduced at different rates. CO2 can be reduced by 53% and NOx can be reduced by 64%. Certain magnetite material compositions in magnetite material-based fuels reduce certain off-gases more than others. Therefore, specific off-gases can be targeted for reduction. Raw coals were tested.This raw coal-magnetite material-based fuel was used in a combustion process, and its performance was much closer to that of treated and processed coal materials. One of the undesirable characteristics of raw coal and other power plant-quality coals is their low thermal energy production and high off-gas emissions, including greenhouse gases. However, when untreated, unprocessed, and untreated coals were mixed with magnetite material to form a magnetite material-based fuel, its performance improved, both in terms of heat production and reduction of off-gases, including greenhouse gases. Nitrogen oxide gases were 64% lower than processed coal, and CO2 was 53% lower than processed coal. Therefore, in some cases, this raw coal-magnetite-based fuel outperforms processed coal. The higher performance of raw coal may be due to its higher sulfur content. Because petroleum coke tends to have higher amounts of sulfur and nitrogen, magnetite material can be mixed with petroleum coke to reduce sulfur gases and nitrogen. Magnetite powder materials can be added to and mixed with opportunity fuels, including orimulsion, bitumen, shale oil, oil sands, tire-derived fuels, wood waste, agricultural waste, sawdust, post-consumer waste, biomass, woody biomass, and plastics, such as low-density polyethylene (LDPE) and high-density polyethylene (HDPE). These plastic materials are made from hydrocarbons and therefore tend to have high calorific value. The addition of magnetite materials can improve the properties of these fuels to bring them closer to those of processed fuels. Magnetite powder materials can also be added to anthracite and graphite coke breeze to reduce greenhouse gas emissions and increase heat production. This is the impact that magnetite material-based fuel technology can have on industries that involve coal processing and fossil fuels and waste-derived fuel materials. Therefore, magnetite material-based fuels using unprocessed and raw fuels, including raw coal, and unprocessed and raw petroleum products, can eliminate the processing steps that are traditionally required for the processing of conventional fuels. Costly fuel processing steps, including coal and petroleum fuels, achieve small benefits in terms of reduction of gases, including greenhouse gases, heat production, and cost compared to the addition of magnetite materials.The addition of this magnetite material to create a magnetite-based fuel composition eliminates this treatment and processing step, reducing associated costs and making unsustainable and unprofitable waste projects, including coal and oil-fired projects, more sustainable and profitable. Furthermore, waste coal dump and coal slime dam materials can be made more suitable as coal for combustion processes. Untreated coal mixed with magnetite material can perform better than processed coal without magnetite, particularly with respect to some greenhouse gases and off-gases. This test work demonstrates that mixing magnetite material with untreated fuel, including raw coal, can eliminate some of the steps in coal processing. The purpose of processing and processing raw coal-containing materials is to reduce off-gases, including greenhouse gases, and also eliminate waste, thereby increasing the heat production of the coal and its value to industry and society. By mixing raw coal, waste coal, slime dam coal, and unprocessed petroleum materials with magnetite material, the mixing of the fuel and magnetite material performs the same function as a processing process in terms of heat production and off-gas reduction. This blending activity is a very simple step that can eliminate previously accepted, complicated, water-consuming, time-consuming, electricity-consuming, environmentally damaging, and costly processing processes. Blending raw dam coal and waste dump coal with magnetite material constitutes a processing activity. By making the fine dam material and waste dump coal valuable to industry, this can contribute to removing these dam and waste dump materials from the environment. There are large amounts of abandoned dam and waste coal materials and other fuels around the world that could serve as feedstock for combustion processes. Blending fuels, including fossil fuels, with magnetite material could significantly advance mineral processing technology for coal, including dam coal, waste dump coal, and raw coal. Magnetite material can be blended with coal and coal derivatives, as well as fuels including coal, dam coal material, raw coal, waste dump coal, lignite, peat, anthracite, graphite, coke, etc.The magnetite material-based fuel is mixed with fuel including raw coal, waste fossil fuel material having the characteristic that the fossil fuel may not have undergone a complete processing and processing process, but may have undergone only partial processing, and this fuel is used in the combustion process.

[0022] During the test work conducted by the inventor, it was observed that the magnetite material for the combustion material process can be repeated many times. The inventor repeated the combustion process several times on the same magnetite material sample, using a new amount of fuel each time. The combustion process proceeded as before and produced heat energy, but the reduction in heat and off-gas with each repeated combustion process was slightly lower, but the heat production decreased significantly from the seventh combustion repetition. Due to the many electron donating and accepting steps, this process involving magnetite material particles requires more oxygen than usual to promote the combustion process.

[0023] One embodiment of the present invention is a combustion process. This combustion process is a fluidized bed combustion process in which a large amount of air is supplied to form a fluidized bed and provide the necessary oxygen, or a fluidized bed state. Greenhouse gases can be supplied to the reaction zone / chamber to form a fluidized bed state and reduce them during the combustion process. In this combustion process, a combustion fuel material is mixed with a magnetite material and then fed into a boiler or combustion chamber. The mixed material may include at least a pulverized coal-based fuel, possibly a firelighter, and may also be a liquid fuel such as a petroleum-based fuel material, or may be a gas fuel. The material is then fluidized by compressed air blown from below, which keeps the mixed material in a suspended state for better aeration of the fuel mixture and combustion. This bubbling fluidized bed generates more heat from the magnetite material-based fuel. Combustion tests were performed by mixing samples with magnetite material, and comparative tests were performed using the same amount of magnetite material and fuel under fluidized conditions. The sample under fluidized conditions was better in terms of heat generation and off-gas reduction. Fluidized conditions during the combustion process produce at least 5% more heat and at least 10% less off-gassing than when the combustion process is not under fluidized bed conditions. For magnetite-based fuels, the combustion process can be a repetitive process. Continuous combustion is a practical way to benefit from the same magnetite material when mixed with solid, liquid, and gaseous materials. After the combustion process, the solid remainder of the magnetite material is left in the combustion zone, and only hydrocarbon / carbon fuel is added in the correct proportion to form the fuel composition, which can be repeated at least twice. The magnetite material can be replenished or replaced as needed. Test work has been conducted using magnetite material compositions ranging from 0.32% to 2.5% in fuel, and the results in greenhouse gas reduction were very good, over 90% compared to when the magnetite material content was 40% of the fuel. At these low content levels, this may be the most economical use of the material in terms of both cost and efficiency.

[0024] The use of magnetite materials in the composition of magnetite-based fuels for combustion is a significant improvement in combustion technology. Not many chemicals, such as fuels, can be burned repeatedly using the same material. One improvement in combustion technology is when magnetite materials are repeatedly burned, which has shown unusual and unexpected technological advantages. This magnetite material is a versatile material that has been shown to perform better in reducing off-gases, including greenhouse gases, the more times it is burned. That is, test work has shown that magnetite materials can reduce off-gases, including greenhouse gases, in the third burn compared to the second burn. While it is surprising enough that magnetite materials can be burned multiple times as a fuel with fuels to form magnetite-based fuels for combustion materials, it is even more surprising that they perform better the more times they are burned as part of the composition of magnetite-based fuels. The more benefit one gains from the combustion process, the more beneficial it becomes. It has been shown that the following composition can be used as part of a magnetite material-based fuel for a combustion process to reduce off-gassing as it is burned. This is a far more surprising technological achievement. Another unexpected technological achievement is that after the magnetite material undergoes a combustion process with the fuel, it does not lose its magnetic properties like other magnetic materials, which lose their magnetic properties when exposed to higher temperatures, and the magnetic field affects the efficiency of the combustion process. By remagnetizing this magnetite material, it can be regenerated for much more repeated use. This raw magnetite material appears to be suitable for having a dominant north pole. Therefore, when remagnetizing this magnetite material, it can be remagnetized so that the dominant pole is north and the south pole is not dominant, since materials with a dominant north pole can perform better in generating heat.Because this material has a dominant north pole, the most efficient recovery of this material from coal combustion when mixed with ash may be with a strong south pole. All magnets used in this test were of the same field strength, and the same magnet was used for these tests. The magnetic field and polarity of unmagnetized magnetite powder material were tested, and the north pole averaged 0.5 mT and the south pole 0.33 mT. This magnetite material can also be magnetized using only the south pole. Tests were performed by exposing the magnetite powder material particles to the south pole from one side, and then the magnetic field and polarity were tested, and the north pole averaged 1.26 mT, with negligible south pole, and occasionally only the north pole was detected. Another test was performed by exposing the magnetite powder material particles to the south pole on both sides (all around the circumference), and the magnetic field measured on both sides was north polar, as expected, with one side having an average reading of 1.06 mT and the other side having an average reading of 1.39 mT. In another embodiment, the magnetite material can be exposed to a south pole all around to create a north-pole dominant magnetite powder material with a higher north magnetic field reading, creating a magnetite material-based fuel with a north pole. In another embodiment, the magnetite powder material is exposed to a north pole all around to create a magnetite material-based fuel with a higher south magnetic field reading, which will be used in the combustion process. Thus, the magnetite material can be treated to have a higher north pole reading, which is well suited to improving heat production. Another test was performed by exposing the magnetite powder material particles to a south pole on one side and a north pole on the other side, and the magnetic field measured on both sides was surprisingly north-pole, with one side measuring an average of 0.92 millitesla and the other side measuring 1.53 millitesla. Another test was performed in which particles of magnetite powder material were exposed to a north pole on one side and no magnet on the other side, and the magnetic field measured on both sides was south pole, with the magnetic field measured on the side closest to the magnet being 1.54 mT and on the opposite side being 0.67 mT. Most tests show that the north pole is the dominant polarity, but in some instances the south pole was very evident in the raw, untreated powder magnetite material.Using the above polarity combinations, the magnetite powder material can be remagnetized to the level and polarity required for the north pole on the magnetite powder material to increase heat production and the south pole on the magnetite powder material to reduce off-gases, including greenhouse gases. When raw magnetite material is mixed with fuel, including hydrocarbon fuel, and subjected to a combustion process, the south pole increases with the combustion process and the north pole decreases with the combustion. One embodiment of the present invention is to burn a magnetite material-based fuel, then recover the magnetite material, then finely mill it, perhaps 45 to 50 microns finer than before combustion to expose previously unexposed surfaces of the magnetite material, mix it with hydrocarbon fuel to create a magnetite material-based fuel for a better combustion process, and then remagnetize it. Another embodiment of the present invention is the processing of magnetite material to prepare it for mixing with hydrocarbon fuel for a combustion process. The magnetite material is allowed to cool. When magnetite material is repeatedly burned, if the magnetite material from the previous combustion is allowed to cool slowly for at least one hour between combustions, magnetite-based fuels perform better than fuels used within one hour of the previous combustion. This approximately one-hour rest period in air is essentially a cost-effective cooling operation if the material achieves a temperature of 35°C or less. In the case of repeated combustion, the magnetite-based fuel can be burned, after which the solid remaining magnetite material is recovered. After recovery, a one-hour rest period is provided to allow the material to cool to ambient temperature, and then it is mixed with hydrocarbon fuel for another combustion. Here, the performance of the second combustion process is better than the first combustion process in terms of reducing off-gases, including greenhouse gases. One of the best performance embodiments is when the material is cooled at a lower temperature. The cooling process is when the magnetite material is allowed to reduce its temperature.When the magnetite material for this application is cooled at a temperature below about 35°C to achieve a maximum of 35°C, and the magnetite material is mixed to form a magnetite-based fuel, the magnetite-based fuel thus processed provides better performance in terms of heat production and off-gas reduction compared to magnetite material at temperatures above 35°C. The lower the temperature used to cool the magnetite material to create the magnetite-based fuel, the better the performance. Comparing magnetite material cooled at 35°C to magnetite material cooled at about 5°C, the magnetite material in the magnetite-based fuel processed at the lower temperature performs better than the magnetite material in the magnetite-based fuel processed at the higher temperature. The cooled magnetite material is believed to be more reactive with off-gases, including CO, CO, SO, and NO, and to reduce these gases to a greater extent. The cooled magnetite material-based fuel for some test samples achieved an 84% reduction in off-gas efficiency. This cooling process of the magnetite material can be repeated at least twice to fully benefit from the cooling activity. The magnetite powder material is mixed with a hydrocarbon / fossil fuel and co-cooled for use in a combustion process. Another embodiment of the cooling activity is where the magnetite powder material is mixed with a hydrocarbon / fossil fuel, and the fuel is cooled and exposed to a magnetic field for use in a combustion process. The repeated combustion embodiment can be combined, such as where the post-combustion magnetite material is crushed into a finer powder, then cooled, and then mixed into a magnetite material-based fuel. The magnetite material can be recovered by utilizing its magnetic properties, whereby a magnetic separator is used to recover the magnetite material after the combustion process. The magnetic separator selectively attracts magnetite material particles with magnetic properties and separates them into a separate container for further repeated use.Also, the magnetite material can be cooled, mixed with a liquid fuel, and the liquid fuel decanted to create a magnetite material-based fuel for use in a combustion process. In other embodiments of the present invention, the entire magnetite material-based fuel can be cooled and then used in a combustion process after the cooling process.

[0025] Another embodiment of the present invention is characterized by a magnetite material-based fuel composition in which the performance of the fuel does not consistently increase linearly with a linear increase in the magnetite material content of the magnetite material-based fuel. The magnetite material used for this purpose is of at least nanometer particle size, and during testing, it was observed that the diesel performance of this magnetite material-based fuel increased heat production by 30%, reduced the proportion of off-gases, including greenhouse gases, and reduced nitrogen oxides by 85%, compared to when the magnetite material content was absent in the fuel. Surprisingly, when the magnetite material content was reduced to a 40% magnetite material content, the performance benefit in terms of off-gas reduction was only observed to be as low as 72%, or when the magnetite material concentration was increased by 30%, the off-gas reduction improved by only 18%. The performance improved by 18%, or linearly. The improvement is not linear, since the increase in magnetite content is 30%, but only 18%. Specific magnetite material content reduces greenhouse gas emissions at different rates. Magnetite material can be mixed with heavy fuel oil to create a magnetite-based fuel for use in combustion processes. Heavy fuel oil is very heavy, so it may not have the problem of magnetite material settling, and the magnetite material can achieve uniform mixing or may be on top of the heavy fuel oil, eliminating the need for any decanting preparation. For heavy fuel oil, a 50% magnetite material content significantly reduces nitrogen oxides by 65%. However, unexpectedly, reducing the content of magnetite material in a magnetite-based fuel, such as heavy fuel oil, to a 0.32% magnetite material content in a magnetite-based fuel results in much better performance in off-gas reduction, with some gases, such as NO, reduced by as much as 98%. With increasing magnetite material, it is expected that the off-gas reduction will increase, however, as observed in this test work, much lower magnetite material content in magnetite material based fuels performs much better in reducing off-gassing as seen with nitrogen oxides.Therefore, a consistent linear increase in magnetite material content in a magnetite material-based fuel does not consistently result in a consistent linear increase in performance in terms of heat production and reduction of off-gases, including greenhouse gases. The magnetite material in the composition of a magnetite material-based fuel may be more efficient at a certain percentage. Some magnetite material contents in a magnetite material-based fuel result in very slight improvements that appear to be dead ends, and sometimes no greenhouse gas reduction at all. A magnetite-based fuel may have a dosage of magnetite material as low as 20 ppm, and a dosage of silica as low as 10 ppm. In some cases, some higher magnetite contents result in negative consequences in terms of reducing the performance of the magnetite material-based fuel in terms of off-gas reduction. This may appear to be a dead end for the use of this magnetite material, but performance improves with additional increased dosages. Therefore, the selection of magnetite material content in a magnetite material-based fuel composition is not predictable in terms of heat production and greenhouse gas reduction. It does not follow a linear relationship, meaning that while a 10% magnetite material content results in a 20% improvement, a 20% content does not result in a 40% improvement. While there are research papers that emphasize that adding more than 10% magnetite does not improve fuel performance, this proposed invention shows that additions much greater than 10% improve fuel performance. This literature appears to teach against adding more than 10% of any magnetite material to create a magnetite material-based fuel, which does not provide any expectation of success when adding more than 10% magnetite material to create a magnetite material-based fuel. Heat production was compared between a diesel control sample, samples with magnetite material content, and cooled samples. The control sample without magnetite material for comparison had a temperature reading of 236°C during combustion, while the sample with 0.125% magnetite material content had a temperature reading of 313°C, resulting in a 33% improvement.The cooling and repetition result in improved reduction in off-gassing, and they actually work synergistically together to provide superior off-gas reduction. The magnetite material-based fuel may have a composition including 85% magnetite material. The magnetite material-based fuel generates more heat than conventional fuels without the magnetite material, especially in fluidized bed formations that require more air and oxygen. Another material that generates more heat that can be utilized as part of the composition of the magnetite material-based fuel is sulfur. In this embodiment, the magnetite material-based fuel may include a hydrocarbon fuel, a sulfur material, and a magnetite material. The function of sulfur is to generate more heat, and the magnetite material will generate more heat and also reduce SO2 from the sulfur material from the magnetite material-based fuel. For sulfur materials, the fuel can start with elemental sulfur or as a compound, and this sulfur will undergo a combustion process, and normally SO2 should be produced, but for this magnetite material-based fuel, one of the materials produced can be sulfur because the SO2 is decomposed into sulfur and oxygen. This sulfur-containing embodiment opens up new methods and new types of fuels that can produce enormous amounts of heat per kilogram of fuel. The composition of this embodiment of the invention may have a sulfur content of up to 5%, and again, the sulfur can be used repeatedly. This embodiment of the invention can also be used in firelighters, where sulfur is mixed with magnetite powder material in the matchstick of the firelighter so that when the firelighter burns, it burns with the magnetite material, increasing heat production and reducing SO2. This application can also be extended to firelighters, where the magnetite material forms part of the firelighter fuel composition when ignition is initiated at the tip or block of the firelighter. Another embodiment of the invention is when the magnetite material is used as part of the structure or as a conduit for oxygen spear cutting pipes for furnace taps, because the magnetite material improves heat production in the combustion zone.In this application, all of the thin wires in the oxygen spear cutting pipe may have magnetite material mixed into the wire structure and piping material. The magnetite material can also be used in hot springs, natural geysers, and geothermal wells, which release gases, including SO2 and CO2, into the atmosphere. Hot springs release methane, and geothermal wells release methane gas and CO2. In geothermal wells, geysers, and hot springs, the magnetite material can increase heat release and reduce off-gassing, which can be used for heating applications or power generation. Another embodiment of the invention is the application of magnetite material mixed with methane gas to flare the methane gas. Flaring methane gas generates many greenhouse gases. In the case of methane flaring, methane gas must be captured, its release rate / pressure slowed, and then mixed with magnetite material; or, combustion of methane gas occurs in a magnetite material environment, which generates more heat and can be used for power generation or home heating purposes; or, it can simply be flared, reducing methane release into the atmosphere and greenhouse off-gassing. Methane gas flaring occurs in coal mining and oil-producing areas, in addition to pollution from the methane gas itself and combustion off-gassing. Because methane gas is the most potent gas that negatively impacts climate change, processing and mixing methane gas with magnetite material can be very important. The tip of a cutting torch from which a flame emerges may have magnetite powder material as part of its structure, so that where combustion begins and the flame emerges, the magnetite material becomes part of the combustion process, increasing heat production and reducing off-gassing, including greenhouse gases. Magnetite material also reduces CO2 emissions. 2、It can be mixed with waste coal to reduce off-gassing, including CO, SO2, and NOx, which would reduce off-gassing if the waste dump were to self-ignite. Also, if waste coal is already being burned, magnetite material can be fed / mixed / injected on top of the already-burned waste coal. In the development of underground coal gasification and combustion, where coal produces gases like CO2 and CO, magnetite material can be mixed and pumped into the on-site coal for the combustion process, thereby reducing off-gassing, including greenhouse gases. Mixing magnetite material by drilling coal seams and pumping / feeding magnetite material into these seams to create magnetite-based fuels can reduce off-gassing and also reduce the need for underground carbon capture. This could be an opportunity for industry to have a significant impact on climate change by using stored CO2, where the magnetite material is mixed with burning fuel and stored CO2, and the magnetite material reacts with the CO2 to break it down into CO2. In this case, much more oxygen must be supplied in the form of air. CO2 can be deliberately introduced into a combustion operation where magnetite material is mixed with a hydrocarbon fuel, allowing the magnetite material to react with CO2, decomposing it into CO, and finally decomposing the CO into carbon and oxygen. The way the magnetite material works is that CO2 reacts with the magnetite material after it is formed from the combustion process. This process can be used in a carbon reservoir where stored carbon dioxide (CO2) is mixed with magnetite material and then mixed with fuel for the combustion operation. The CO2 can be in liquid or solid form and then mixed with the magnetite material and then mixed with fuel for the combustion process. A similar process can be performed with CO2 and used in a combustion process. The same process involves mixing magnetite powder material with a hydrocarbon fuel / fuel and then mixing it with SO2 for the combustion process. A similar process to the above involves mixing magnetite powder material with a hydrocarbon fuel / fuel and then mixing it with NO2 for the combustion process. Another embodiment of this gas addition involves mixing magnetite material with a hydrocarbon fuel and then adding at least CO2, CO, and SO2.2、 This can be the case when it can be mixed with gases containing H2S, mercury, and NO. Magnetite material-based fuel can be mixed with FeS2 for application in a combustion process. The magnetite material can also be applied to and mixed with materials including combustible ice, which is a gas hydrate of methane gas, permafrost, etc. Permafrost can be frozen soil or rock containing methane gas to increase heat production during combustion and reduce greenhouse gases. Waste oil can also be mixed with magnetite powder material for a combustion process. The present invention may be embodied in any process in which a ferroalloy melting process or reduction uses materials including coal, where the magnetite material can be coal, coke, graphite, smokeless When mixed with a reducing agent containing a carbonaceous material, the magnetite material can increase the heat production of the process and also reduce off-gases, including greenhouse gases. Because this product is a ferroalloy material, additional iron (Fe) content is still acceptable. The ferroalloy product may contain ferrochromium, ferrosilicon, ferrovanadium, ferromanganese, ferrophosphorus, etc., and a reducing agent based on the magnetite material can be fed onto Fe2O3 so that the magnetite material reacts with the off-gases and then becomes part of the steelmaking process by contributing Fe element.

[0026] One challenge with magnetite in liquid fuels is that most of the magnetite material tends to sink to the bottom of the liquid fuel, resulting in an inconsistent fuel. A more uniform and consistent fuel composition is desirable. Furthermore, magnetite material is more effective and desirable when it resides on the surface of the fuel. One effective way to solve this consistency problem is to grind the magnetite material into nanoscale particles, most of which float on top of and within the liquid fuel. When most of the magnetite material floats within the liquid fuel, the density of the liquid fuel increases, making the fuel viscous. The magnetite material particles do not easily sink and remain suspended. This action may result in a fuel with a consistent composition. Another solution is to use surfactants to keep the magnetite particles suspended, ensuring a consistent combustion process.

[0027] Tests were carried out on the present invention.

[0028] Coal Test: Test work was carried out using solid fuel containing coal. Each of the coal samples was mixed with magnetite material powder, and it was observed that the coal-magnetite material fuel mixture burned hotter and the combustion process lasted longer compared to the coal alone. The flame was also much larger than the flame for the coal alone. For comparison, the off-gas results were also taken from No. 2, SO 2、Co and CO2 were measured. These off-gases were reduced. Tests were also conducted using liquid fuels containing diesel, gasoline, and paraffin. In these tests, the magnetite-powder material liquid fuel (diesel) mixture test showed that the magnetite powder material-diesel mixture performed better than diesel alone. The magnetite powder material-diesel mixture performed better in terms of heat production, with a larger flame and a longer-lasting combustion process. The combustion process lasted approximately five times longer with the fuel sample containing the magnetite powder material, and the temperature was much higher than with diesel alone. A comparison test was conducted using the same amount of diesel to burn diesel alone, with an average temperature of 142°C. Another test was conducted using the same amount of diesel mixed with the magnetite material, with an average temperature of 329°C, representing an improvement of over 100%. The combustion process of the magnetite powder material-diesel lasted longer. The combustion test for diesel alone lasted 30 seconds, while the magnetite material-diesel mixture lasted approximately 150 seconds, with a flame twice as large.

[0029] Another embodiment of the present invention relating to hydrocarbon fuels is that liquid fuel can be conditioned with cooled magnetite material for a period of time in a container (tank) surrounded by a layer of cooled magnetite powder material, which has an intermediate layer of cooled or uncooled magnetite material located within an inner layer of a solid container material made of plastic materials, including polyester and other plastic-like materials. The magnetite material contacts the fuel, and the magnetite material is released from the container with use and becomes part of the fuel during the combustion stage. The magnetite powder material-based fuel from the container can then be used in the combustion process. This embodiment can take the form of, among other things, automobile fuel tanks, fuel storage tanks, and fuel transport tanks, i.e., anything that contains fuel. Even fuel supply systems in internal combustion engines, including pump systems, can be made using magnetite powder material or even pipes through which fuel is pumped. Any part of the fuel supply system that comes into contact with the fuel can be made using this cooled or uncooled magnetite material in its structure. The magnetite material can also be mixed with a rubber material suitable for creating structures for hydrocarbon fuel delivery. The pump in any fuel pump system can be made using magnetite material that is released with use to form part of the fuel, and any fuel containment container can be used. The magnetite powder material can be mixed with bitumen, which can act as a binder, to be mixed with other fuels, including solid hydrocarbon fuels. In another embodiment of this containment container, cooled magnetite material powder can be formed into a container shape using a binder material including bentonite, and the cooled magnetite material is bound into the desired shape, with the outermost surface of the container made of a material including a metal material, and the inner surface made of the bound cooled or uncooled magnetite powder material, with liquid or even solid fuel in contact with the magnetite material. Examples include train fuel containers, ship fuel containers, LPG containers, fuel pipes for pumping fuel, and long-distance fuel transport pipes for storing fuel.Even small household fuel containers, such as jerry cans and paraffin tanks, can use embodiments in which the magnetite powder material is part of the magnetite material's structure and is released with use to form part of the fuel. In other embodiments, cooled or uncooled magnetite material is uniformly mixed with materials including concrete, metal materials, and plastic materials including nylon, polyester, and the like. Another embodiment involves the structure of the containing material being mixed with the magnetite material, and the magnetite powder material is gradually released from the structure with the flow of fuel and use over time, and the magnetite material combines with the fuel on its way to the combustion point. This involves the magnetite material being detached in small particles and becoming part of the hydrocarbon fuel. The fuel technology development space is a very congested space, in part due to environmental requirements, where gases produced from fossil fuels are causing climate change. After the magnetite material combustion process, repeated combustion tests were conducted on the same magnetite material. Combustion continued, producing good heat in each combustion test. Although heat production decreased slightly with each successive combustion process, by the eighth combustion test, heat production decreased significantly. After each combustion test, tests were conducted to confirm the magnetic properties of the burned magnetite material samples. Measurements using a Tesla meter revealed that the magnetic field decreased with each combustion process, converting the magnetite material to hematite iron ore. One measurement test measured a pre-combustion reading of 0.8 millitesla and a post-combustion reading of 0.7 millitesla, representing a decrease of approximately 12.5%. Other tests showed a 3% change in the magnetic field in the magnetite material, and some tests showed a 5% change. It is well known in the fuel industry that fuels, including liquid fuels, lack polarity—i.e., they lack north and south poles. Using a high-precision Tesla meter, magnetic field strength readings were also taken on this diesel fuel, and it was observed that the fuel had a small, consistent polarity reading. This polarity was characterized by a persistent, dominant south pole, but the readings were very small.Consider that the magnetite material has a dominant north pole and the two materials are mixed together for the combustion process. This suggests that the magnetic fields from both materials can affect combustion and heat production, and that the magnetic fields from the two mixed materials work synergistically to improve the fuel's performance in terms of heat production and the reduction of off-gases, including greenhouse gases. Even after a reaction involving physical changes, the catalyst remains chemically the same, so the magnetite material does not function completely like a catalyst. Some of the magnetite material transforms into hematite. The magnetite material for this application undergoes both physical and chemical changes. The physical change may be the result of misalignment of magnetic particles during the combustion process, which can result in a decrease in the magnetic field, especially on the north pole. However, when using a magnetite-based fuel, the south pole continues to increase with each combustion process, but mysteriously the south pole is lost or reduced. The magnetite material can be remagnetized to increase its magnetic field to a higher level.

[0030] Magnetite materials contain Fe2+ and Fe3+. During combustion of magnetite-based fuels, Fe2+ increases, reducing combustion off-gases containing Co, Co2, S02, and N02, while Fe3+ decreases, reducing heat production during the same combustion process. Fe2+ increases and continues to increase as the combustion process is repeated. At the same time, Fe3+ decreases as the combustion process is repeated for the same material. During the combustion process, Fe2+ increases and Fe3+ decreases, improving off-gas reduction performance. The initiation of the combustion process prepares the magnetite material for further combustion activity to reduce off-gas emissions. The magnetite material can be prepared for further combustion processes to form magnetite-based fuels. Cooling the magnetite material in preparation for mixing with fuel for the combustion process increases the Fe2+ content and decreases the Fe3+ content. Cooling refers to lowering the temperature from the post-combustion temperature. Cooling the material can be performed at temperatures as low as -15°C or even lower. The cooling process may be a slow cooling process. Fe2+ increases by about 24% by mass and Fe3+ decreases by 76% by mass. The increase in Fe2+ during the combustion process increases by about 10% and the decrease in Fe3+ decreases by about 3%. The cooling action increases Fe2+ by at least 10% and decreases Fe3+ by at least 3%. In a method for preparing a magnetite material-based fuel, the magnetite material is exposed to a south pole, and the north pole magnetic field increases and becomes dominant, increasing Fe3+, thereby improving heat production, and the Fe3+ and north pole work together to improve heat production in a much better manner. In a similar embodiment, the magnetite material is exposed to a north pole, and the south pole magnetic field reading increases and becomes dominant, increasing Fe2+, improving off-gas reduction, and the Fe2+ and south pole work synergistically to reduce off-gas, including CO, CO2, SO2, and NOx, in a much better manner. Thus, the repeated combustion process with cooling improves the efficiency of off-gas reduction, and the two work synergistically together to improve the performance of the combustion process. The repeated combustion, cooling, and exposing the magnetite material to a magnetic field also work synergistically together to improve the overall performance of the magnetite material-based fuel.After combustion of a magnetite-based solid fuel containing coal, the ash and fly ash become magnetic and therefore do not easily become airborne. Unburned magnetite material can be mixed with the ash, and this mixed material can be mixed with fuel for the combustion process. Both the fly ash and magnetite material have magnetic field strength readings. The fly ash and magnetite material mixed with coal were able to reduce off-gases containing Co, CO2, SO2, and NO2 slightly better than the magnetite material alone. The burned fly ash and magnetite material have a larger dominant north pole than the magnetite material alone. Carbon can be magnetized at room temperature, so the carbon material that has not undergone the combustion process and the soot-forming material can be collected along with the magnetite material and used again for combustion. Magnetite-based fuel also reduces particulate matter.

[0031] Testing on candles: Tests were also conducted using two candles: one was a regular candle with wax, and the other was a candle with magnetite material in the wax. The magnetite material content in the magnetite material-based fuel (wax) was up to 80% because 80% magnetite powder material content works better for the candle structure and flame. The magnetite material wax composition may contain other waxes besides paraffin wax, including beeswax, soy wax, vegetable or coconut wax, olive wax, and animal fat wax. Stearic acid may also be added. While a conventional paraffin candle produces 2.8 grams of CO2 per gram, the magnetite material in the wax can reduce CO2 and CO2 by up to 75%. Other gases, such as NO2 and SO2, are also reduced by the same margin. The candle of this proposed invention embodiment produces a higher temperature during its burn and is also brighter. This candle, with its larger, brighter, hotter, and longer-lasting flame, can be used for heating, lighting, and cooking. Repeated magnetite materials can be used to create candles with smaller flames because repeated magnetite generates less heat. Candles using magnetite wax are much brighter than regular candles, burning at over 30 lux and illuminating larger areas. This indicates that candles can solve the problems of low light, cost, and off-gassing, including greenhouse gases harmful to health and the environment, for the lighting market. This combustion process also increases O2 gas, a gas that is beneficial to the environment and health. Candles mixed with magnetite powder material generate at least 25% more heat than conventional candles, are at least 30 lumens brighter, and emit at least 10% more fragrance.

[0032] Test results

[0033] [Table 1]

Claims

1. A hydrocarbon fuel; Magnetite (Fe 3 O 4 a magnetite material comprising A fuel composition for combustion comprising: the magnetite material is in the form of a powder having a size range of 1 nm to 5 mm; the magnetite material is 0.125 to 80 wt. % of the fuel composition; The magnetite material is at least 40% by weight of magnetite (Fe 3 O 4 ), the magnetite material comprises at least 25% by weight of iron (Fe), the iron being present as both Fe 2+ and Fe 3+ ions, the Fe 2+ ions and the Fe 3+ ions being at least 10% by weight of the iron; the magnetite material contains at least 0.001-1.5 wt. % of nanometer-sized silica (SiO 2 ); The magnetite material is moisture-free, 1. A fuel composition for combustion, wherein the combustion performance, as measured by the specific energy output and off-gas reduction of said fuel composition, is non-linearly related to the proportion of said magnetite material.

2. The magnetite material is a mixture of phosphate, pyrite (FeS2), alumina (Al2O3), titania (TiO2), Mn 3 O 4 , Cr 2 O 3 , V 2 O 5 , MgO, K 2 O, SrO, Na 2 O, ZrO 2 10. The fuel composition of claim 1, further comprising:

3. The hydrocarbon fuel is coal, peat, lignite, slime dam coal, charcoal, and / or anthracite; Petroleum-based fuels, including heavy fuel oils (HFOs), and / or biomass, wood or wood pellets, opportunity fuels, biofuels, and / or bitumen; 10. The fuel composition of claim 1, comprising one or more of:

4. 10. The fuel composition of claim 1, wherein the hydrocarbon-based fuel is a liquid and the magnetite material is in suspension or precipitate.

5. The hydrocarbon fuel is Tire-derived fuel, Waste plastic fuel, Waste oil, Fly ash, and Recovered soot, 10. The fuel composition of claim 1, comprising one or more of:

6. 10. A candle comprising the fuel composition of claim 1, the hydrocarbon-based fuel comprises wax, paraffin wax, and / or stearic acid; The candle includes a wick, and both the wick and the hydrocarbon-based fuel participate in combustion.

7. 10. A method of making the fuel composition of claim 1, comprising: combusting the fuel composition; recovering magnetite material from the combusted fuel composition; mixing the hydrocarbon-based fuel with the recovered magnetite material, thereby further producing the fuel composition; A method comprising:

8. 8. The method of claim 7, further comprising the step of cooling the recovered magnetite material at a temperature of 35°C or less for at least 1 hour after the step of burning.

9. the recovered magnetite material is a solid; 8. The method of claim 7, wherein the method includes processing the solid recovered magnetite material and producing the magnetite material by grinding it into a powder of size less than 45 μm.

10. 8. The method of claim 7, further comprising mixing the recovered magnetite material with previously uncombusted raw magnetite material.

11. The method of claim 7 , wherein the recovered magnetite material is applied to a top surface of the hydrocarbon-based fuel.

12. The method of claim 7 , wherein recovering the magnetite material comprises exposing the magnetite material to a magnetic field using a magnet.

13. 10. A method of making the fuel composition of claim 1, comprising: providing a vessel or conduit made of said magnetite material; providing the hydrocarbon-based fuel in the container or conduit; mixing a portion of the magnetite material from the container or conduit with the hydrocarbon-based fuel, thereby forming the fuel composition; A method comprising:

14. The hydrocarbon-based fuel is at least partially gaseous; The gaseous hydrocarbon fuel is supplied to form a fluidized bed; The gaseous hydrocarbon fuel is CO 2 , CO, SO 2 8. The method of claim 7, comprising one or more of:

15. 10. A method of making the fuel composition of claim 1, wherein the magnetite material is combined with the hydrocarbon-based fuel using a binder comprising a resin and formed into a pellet or ball structure.

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