Additive for reducing particulate matter in exhaust gases derived from the combustion of diesel fuel and fuel oil, and fuel composition containing the same
A diesel fuel additive with iron and cerium salts, organic nitrates, and dispersants addresses the limitations of existing technologies by enhancing combustion efficiency and stability, effectively reducing particulate emissions and fuel consumption.
Patent Information
- Application Number
- JP2023536207
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-24
- Filing Date
- 2021-08-23
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2041-08-23
AI Technical Summary
Existing solutions for reducing particulate matter in diesel engine exhaust gases, such as direct combustion process interventions, combustion gas treatment devices, and fuel additives, face limitations including reactivity issues, high costs, corrosion risks, and instability, failing to effectively and economically reduce PM10 emissions.
A diesel fuel additive comprising a binary mixture of iron and cerium salts, organic nitrates, and dispersants in specific ratios, enhancing combustion efficiency and reducing particulate emissions while maintaining chemical stability for downstream use.
The additive significantly reduces particulate emissions, improves combustion efficiency, and maintains stability over time, reducing metal oxide generation and fouling, thus offering economic advantages and effective pollutant reduction.
Smart Images

Figure 0007744985000001 
Figure 0007744985000002 
Figure 0007744985000003
Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to an additive for fuels such as diesel fuels and fuel oils used in civil and industrial diesel engines and boilers, respectively, which is useful for reducing particulate emissions and reducing consumption. [Background technology]
[0002] technical level Diesel fuel and fuel oil are widely used fuels in a variety of sectors, from automobiles to residential and industrial heating.
[0003] For simplicity, the following will refer only to the use of diesel fuel in internal combustion engines (diesel cycle engines), but it will be understood that what follows extends equally to any use of diesel fuel and fuel oil where emissions are generated by the combustion process.
[0004] In recent years, the technological development of alternative internal combustion engines has been closely linked to the urgent need to ensure an increasingly rational use of natural energy sources while limiting the environmental pollution caused by their use. This has led to significant technological improvements in engines, both spark-ignition engines (gasoline engines) and compression-ignition engines (diesel engines). Thus, although technological innovations have arisen from the same need, their paths have been very different.
[0005] The difference in how these problems are addressed stems from the different tendencies of the combustion process in gasoline engines compared to diesel engines.
[0006] In diesel engines, unlike what happens in gasoline engines, a charge formation process occurs in the form of very small droplets of fuel that burn under conditions of excess air due to the high temperatures reached by the latter during the compression phase.
[0007] Despite the very small droplet sizes of a hundredth of a millimeter in diameter achieved by very high injection pressures (up to 2300 atmospheres), the process by which the droplets are distributed in the combustion chamber is far from uniform, resulting in regions in the combustion chamber where the oxidation process of the diesel fuel only partially occurs, even in the presence of a significant excess of air.
[0008] The nuclei of fuel particles that have not yet been reached by the oxidation process are simultaneously subjected to both high temperature and oxygen-deficient conditions, causing complex cracking phenomena (pyrolysis) and significantly altering their original chemical and physical structure.
[0009] It is this phenomenon that is generally considered to be the main cause of the formation of characteristic carbonaceous particles emitted by diesel engine exhaust, technically defined as "particulate matter" but more commonly known as soot or carbon black. Of the "particulate matter," the PM10 fraction, consisting of particles with an average diameter of less than 10 microns containing approximately 75% of benzopyrene, acenaphthene, anthracene, phenanthrene, and the higher homologues of polycyclic aromatic hydrocarbons, which are proven carcinogens, is particularly harmful.
[0010] Despite high input values and great efforts to improve the efficiency of the combustion process, smoke-causing carbonaceous particulate matter is always present to a greater or lesser extent in the exhaust of diesel engines, and is not only a clear evidence of poor energy utilization of the fuel, but also a cause of considerable environmental degradation and serious damage to health.
[0011] Carbonaceous particulate matter is one of the main harmful substances emitted by diesel engines, so in recent years the main efforts by car manufacturers have essentially been directed towards reducing this pollutant.
[0012] Historically, the measures adopted to reduce carbonaceous particulate matter in the exhaust gases of diesel engines have essentially consisted of the following interventions: a) direct intervention in the combustion process in the engine to prevent the formation of pollutants, b) application of combustion gas treatment devices to convert harmful substances into harmless products, and c) modification of the composition of the fuel.
[0013] Measures implemented to improve the efficiency of the combustion process belong to category a) interventions, since the main cause of the formation of PM10 particulate matter is the imperfection of this process.
[0014] On the other hand, combustion gas treatment devices applied to diesel engine exhaust gases are called "particulate traps" and filter out carbonaceous particles formed in the engine during the combustion process, and belong to category b) interventions.
[0015] PM10 particulate traps generally consist of a porous ceramic substrate with a number of parallel channels, alternately closed and open at their ends, on whose walls particulate matter is deposited by filtration. To prevent material buildup on the substrate from creating excessive backpressure in the engine exhaust, resulting in reduced power and increased fuel consumption, the trap's operation constantly includes a particle removal cycle (a "cleaning" phase), also known as a "regeneration process", during which particulate matter is burned and converted into carbon dioxide and water by suitable technical means.
[0016] Type c) intervention involves supplementing the fuel with either an emulsion or the use of an additive containing an oxidation catalyst. For example, EP 1 307 531 describes an additive for diesel fuels and fuel oils containing a mixed metal oxidation catalyst based on iron, cerium, and calcium, at least one organic nitrate, and a dispersant.
[0017] However, the solutions offered to date for removing particulate matter from exhaust gases still have certain application limitations, as summarized above. In particular, in type a) of intervention, the chemical-physical properties of the fuel in the heterogeneous phase constitute an insurmountable limit to increased reactivity and, therefore, engine efficiency. As for type b), the construction of combustion gas treatment systems has so far proven too expensive from an economic point of view for large-scale application. Finally, fuel additives do not always lead to a satisfactory reduction of particulate matter, and in the case of additives containing metal oxidation catalysts, they lead to the formation of metal oxides, which, although to a lesser extent, are still responsible. Furthermore, the use of additives significantly increases the risk of corrosion in engines and burners. Finally, added fuels can suffer from the formation of deposits due to the instability of the additives, which decompose and form deposits over time, thus eliminating the possibility of refilling the fuel directly downstream of the production site before transportation and use.
[0018] Meanwhile, the need for effective solutions to reduce pollutants in diesel engine exhaust gases is becoming more urgent as national and EU anti-smog regulations become increasingly strict.
[0019] Therefore, in the face of these regulations, there is a strong need to find solutions to limit the emissions of pollutants from diesel engine exhaust gases. Summary of the Invention
[0020] SUMMARY OF THE INVENTION Applicant has now discovered that the use of a diesel engine fuel additive (diesel fuel) containing a metal catalyst comprising a binary mixture of iron and cerium salts, an organic nitrate salt, and a dispersant in specific and appropriate ratios improves combustion efficiency, thereby significantly reducing particulate matter production and fuel consumption, and provides numerous other advantages over prior art additives.
[0021] In particular, in a first aspect thereof, the present invention relates to an additive for diesel fuels and fuel oils, comprising: A) an oxidation catalyst comprising 2 to 12% by weight, based on the total of components A), B) and C), of a mixture of at least one iron salt and at least one cerium salt; B) 82 to 92% by weight of at least one organic nitrate, based on the total of components A), B) and C); C) 6 to 16% by weight of at least one dispersant, based on the total of components A), B) and C).
[0022] This additive has been found to be particularly effective in reducing particulate emissions as well as to be useful in facilitating all stages of the combustion process, thus resulting in better cleanliness in the so-called low temperature zone and better heat exchange conditions due to a significant reduction in fouling caused by a reduction in residues and unburned carbonaceous material in the cylinder and exhaust manifold.
[0023] Furthermore, thanks to the reduced oxidation catalyst content, the additive according to the invention makes it possible to obtain reduced emissions while using less metal, thereby resulting in a lower generation of metal oxides and therefore less fouling of the particulate system.
[0024] Finally, the additive according to the invention shows an unexpectedly high chemical and physical stability over time, which allows it to be used further up the product chain, directly downstream from the production site and even before transportation, which has the advantage that it does not cause problems during storage and allows manufacturers to sell fuels that do not need to be topped up with additive before use by the user.
[0025] In a further aspect, the present invention further relates to a fuel composition comprising a fuel selected from the group consisting of diesel fuel and fuel oil, and an additive according to the first aspect of the present invention.
[0026] The advantages of the fuel composition according to the invention are apparent from the characteristics of the additive according to the first aspect of the invention and will not be repeated here.
[0027] However, the applicant has also found that the particular compositional properties of the additive according to the invention make it effective even at low concentrations, thereby making its use economically advantageous.
[0028] In further aspects, the present invention relates to the use of an additive according to the first aspect of the invention to improve the combustion efficiency of diesel fuels and boiler fuel oils in diesel engines, and to a method of improving the combustion efficiency of a fuel selected from diesel fuels and fuel oils, comprising adding to said fuel an additive according to the present invention.
[0029] The features and advantages of the present invention, in addition to other advantages already highlighted above, will be detailed in the following description. DETAILED DESCRIPTION OF THE INVENTION
[0030] Detailed Description of the Invention In a first aspect thereof, the present invention relates to an additive for diesel fuels and fuel oils, comprising: A) an oxidation catalyst comprising 2 to 12% by weight, based on the total of components A), B) and C), of a mixture of at least one iron salt and at least one cerium salt; B) 82 to 92% by weight of at least one organic nitrate, based on the total of components A), B) and C); C) 6 to 16% by weight of at least one dispersant, based on the total of components A), B) and C).
[0031] This additive is not only particularly effective in reducing particulate emissions, but has also proven useful in facilitating all stages of the combustion process, increasing cleanliness in the so-called low-temperature zone and improving heat exchange conditions by drastically reducing fouling due to the reduction of residues and unburned carbonaceous material in the cylinders and exhaust manifolds.
[0032] Furthermore, thanks to the reduced oxidation catalyst content, the additive according to the invention makes it possible to obtain reduced emissions while using less metal, which results in less generation of metal oxides and therefore less fouling of the particulate system.
[0033] Finally, the additive according to the invention shows an unexpectedly high chemical and physical stability over time, which allows it to be used further up the product chain, directly downstream from the production site and even before transportation, which has the advantage that it does not cause problems during storage and allows manufacturers to sell fuels that do not need to be topped up with additive before use by the user.
[0034] In this specification and the following claims, all numerical magnitudes expressing quantities, parameters, percentages, and the like, unless otherwise indicated, shall be deemed to be preceded in all circumstances by the term "about." Moreover, all ranges of numerical magnitudes, as set forth below, include all possible combinations of maximum and minimum numerical values, as well as all possible intermediate ranges.
[0035] The present invention can be manifested by one or more of its aspects, or one or more of the preferred features reported below, which can be combined with each other according to the application requirements.
[0036] Preferably, in the oxidation catalyst A), the at least one iron salt and the at least one cerium salt are salts of an acid selected from the group consisting of: (I) R-COOH, where R is a linear or branched, saturated or unsaturated C7-C 17 an aliphatic radical, or C5-C 12 is an alicyclic radical, and [ka] where R' is H or a linear or branched, saturated or unsaturated C1-C 12 It is an aliphatic radical, and n is an integer from 1 to 5.
[0037] Preferably, the iron salt is a linear saturated C 17 The cerium salt is an acid of formula (I) where R' is an aliphatic radical and R' is a linear saturated C 12 It is an acid of formula (II) which is an aliphatic radical and n is an integer number equal to 1.
[0038] The acids of formula (I) and (II) may also occur as mixtures in natural products.
[0039] Preferably, the amount of cerium in the oxidation catalyst A), expressed as a weight percentage of metallic cerium relative to the total weight of the catalyst, ranges from 0.1 to 1.2%, more preferably from 0.2 to 1%, even more preferably from 0.3 to 0.8%.
[0040] Preferably, the amount of iron in the oxidation catalyst A) expressed as a weight percentage of metallic iron relative to the total weight of the catalyst is in the range of 0.1 to 1.2%, more preferably 0.2 to 1%, even more preferably 0.3 to 0.8%.
[0041] In a preferred embodiment of the present invention, the amounts of metals in the oxidation catalyst A) expressed as weight percentages of metallic iron and cerium relative to the total weight of the catalyst are in the range of 0.1-1.2% of cerium and 0.1-1.2% of iron, more preferably 0.2-1% of cerium and 0.2-1% of iron, even more preferably 0.3-0.8% of cerium and 0.3-0.8% of iron.
[0042] Preferably, in the oxidation catalyst A), the weight ratio of cerium to iron is in the range of 0.8 to 1.2, more preferably in the range of 0.9 to 1.1, optimally it is about 1.
[0043] Preferably, the organic nitrate B) of the additive according to the invention is selected from the group consisting of n-amyl nitrate, i-amyl nitrate, and i-octyl nitrate (i.e. 2-ethylhexyl alcohol nitrate), and binary or ternary mixtures thereof. The preferred nitrate is i-octyl nitrate.
[0044] Preferably, the dispersant C) is selected from alkylamines, alkylamides, alkylarylamines and alkylarylamides, and mixtures thereof. Particularly preferred dispersants C) according to the invention are C 10 -C 24 These are alkylamides and alkylamines with aliphatic chains.
[0045] Dispersant C) generally causes an increase in the activity of (A) + (B). Particularly high synergistic effects have been obtained by adding dispersing products based on polyolefinamines or alkylarylamines and olefin-alkyl ester copolymers to the mixture of organic nitrates and metal catalysts described above. Suitable products for implementing the present invention are, for example, those marketed under the name Wax Antisettling Agents (WASA).
[0046] In addition to the essential components set forth above, additives according to the present invention can, and generally do, contain minor amounts of agents suitable for improving particular aspects of the mixture, such as oxidation stability, corrosion inhibition, lubricity, fuel foaming (antifoaming), etc.
[0047] Preferably, the additive according to the invention does not contain calcium salts. The Applicant has indeed surprisingly found that the addition of calcium salts can cause the formation of precipitates in the diesel fuel, thereby impairing its properties and reducing the stability over time of the added diesel fuel.
[0048] Preferably, in the additive according to the invention, the amount of oxidation catalyst A) is comprised between 3 and 12% by weight, more preferably between 3 and 9% by weight, optimally it is equal to about 5% by weight.
[0049] Preferably, in the additive according to the invention, the amount of organic nitrate B) is comprised in an amount corresponding to 82-91% by weight, more preferably 84-90% by weight, optimally about 86% by weight.
[0050] Preferably, in the additive according to the invention, the amount of dispersant C) is comprised between 6 and 15% by weight, more preferably between 7 and 13% by weight, optimally it is equal to about 9% by weight.
[0051] In a preferred embodiment of the invention, the additive according to the invention comprises an oxidation catalyst A) in an amount of 3-12% by weight, an organic nitrate B) in an amount of 82-91% by weight, and a dispersant C) in an amount of 6-15% by weight, more preferably an oxidation catalyst A) in an amount of 3-9% by weight, an organic nitrate B) in an amount of 84-90% by weight, and a dispersant C) in an amount of 7-13% by weight, based on the total weight of the additive, and most preferably an oxidation catalyst A) in an amount of about 5% by weight, an organic nitrate B) in an amount of about 86% by weight, and a dispersant C) in an amount of about 9% by weight, based on the total weight of the additive.
[0052] The additive according to the invention is suitable for use in any diesel engine fuel or any boiler fuel oil for civil and industrial use.
[0053] In a further aspect, the present invention further relates to a fuel composition comprising a fuel selected from the group consisting of diesel fuel and fuel oil, and at least one additive according to the first aspect of the present invention.
[0054] The advantages of the fuel composition according to the invention are apparent from the characteristics of the additive according to the first aspect of the invention and will not be repeated here.
[0055] However, the applicant has also found that the particular compositional properties of the additive according to the invention make it effective even at low concentrations, thereby making its use economically advantageous.
[0056] Preferably, the additive according to the invention can be added to the fuel in an amount comprised between 1 and 10 g / l of fuel; more preferably in an amount comprised between 1 and 5 g / l of fuel; and even more preferably in an amount equal to about 2 g / l, making it possible to obtain an effective reduction of particulate matter.
[0057] The Applicant has particularly surprisingly discovered that at the same use concentrations, the additives according to the invention generally achieve better performance than other similar additives of the prior art, for example those according to EP 1 307 531, and are therefore even capable of achieving similar performance to the latter when used in concentrations indicatively lower than 50% thereof. Due to the reduced metal content of the additives according to the invention, this results in less generation of metal oxides and therefore less fouling of the particulate system.
[0058] The fuel compositions of the invention may also contain additional additives conventionally used in diesel engine fuels in amounts commonly used therein, such as additional lubricity and stability improvers, corrosion inhibitors, and the like.
[0059] When mixed with diesel engine fuel, the additives of the present invention can dramatically reduce particulate matter in the exhaust gases of diesel engines used in automobiles, locomotives, ships, earthmoving machinery, and even in pumping stations or power generation equipment. Because the combustion mechanism of diesel fuel in diesel-fueled boilers is similar to that governing the oxidation processes in internal combustion engines, albeit at a much lower air-fuel ratio, the additives of the present invention can also be used, with similar advantageous results, to reduce particulate matter emitted from diesel-fueled heating systems.
[0060] In further aspects, the present invention relates to the use of an additive according to the first aspect of the invention to improve the combustion efficiency of diesel fuels and boiler fuel oils in diesel engines, and to a method of improving the combustion efficiency of a fuel selected from diesel fuels and fuel oils, comprising adding to said fuel an additive according to the present invention.
[0061] Preferably, in the method for improving the combustion efficiency of a fuel, in the adding step, 1 to 10 g / l of the at least one additive is added to the fuel, more preferably 1 to 5 g / l, optimally about 2 g / l of the at least one additive is added.
[0062] The invention will now be described by means of some examples which are considered for purposes of non-limiting illustration thereof.
[0063] experiment Example 1: Pollutant Emission Measurement and Opacity Testing To illustrate the properties of the additive according to the invention, emissions of regulated pollutants are measured and smoke opacity tests are carried out in comparative tests in which a standard reference diesel fuel is added with the additive according to the invention, the results obtained are compared with those obtained from the standard reference diesel fuel alone in the absence of the additive according to the invention, and the % variation in performance under the same conditions is calculated, highlighting the improvement obtained by the use of the additive.
[0064] Tests were conducted on an engine brake bench using a Cummins C110 D5 (6B) engine at six engine power levels: [Table 0]
[0065] In countries requiring mandatory road tests, diesel vehicle verification involves not only measuring the levels of regulated pollutants but also the opacity of diesel smoke. Opacity measurements are performed using a specialized "opacimeter"—a device that captures exhaust gases with a probe and sends them into a measurement chamber. The optical path within the chamber is altered depending on the color and density of the gas, and the opacity is determined by the degree of absorption. In this example, a TESTO Model 338 Diesel Smoke Meter was used (https: / / www.testo.com / it-IT / testo-338 / p / 0632-3381).
[0066] The light attenuation is measured by the instrument as the carbon black index (FSN) or Bosch index, and as the mass concentration of soot per unit volume (mg / m 3 ) was measured.
[0067] As an additive according to the invention, a mixture was used which consisted of: A) An oxidation catalyst consisting of a binary mixture of iron and cerium salts, where R is a linear saturated C 17 In the acid form of formula (I), which is an aliphatic radical, for cerium, R' is a linear saturated C 12 an oxidation catalyst in the form of an acid of formula (II) in which n is an integer number equal to 1 and is an aliphatic radical, in which the iron content (expressed as a percentage by weight of metallic iron relative to the total weight of the catalyst) is 0.4% and the cerium content (expressed as a percentage by weight of metallic cerium relative to the total weight of the catalyst) is 0.4%; the catalyst is present in the additive in an amount corresponding to 5% by weight relative to the total weight of the additive; B) i-octyl nitrate in an amount corresponding to 86% by weight relative to the total weight of the additive; C) A commercially available Wax Anti-Settling Agent (WASA) (Infineum R715) was used as a dispersant in an amount equivalent to 9% by weight relative to the total weight of the additives.
[0068] The additive was added to diesel fuel in an amount equivalent to 2 g / l (hereinafter, this data may be referred to as "diesel fuel + additive").
[0069] For comparison, tests were also conducted on the same diesel fuel without the additive according to the present invention (the data relating thereto will be referred to hereinafter as "diesel fuel"), and the data were compared by determining the % variation in performance between the diesel fuel with the additive according to the present invention and the diesel fuel without the additive (the data relating thereto will be referred to hereinafter as "variation"), calculated according to the following formula:
number
[0070] The results obtained are reported in Tables 1 and 2 below. [Table 1] [Table 2]
[0071] From an analysis of the data in Tables 1 and 2, it is readily apparent that the additive according to the present invention proved effective in significantly reducing pollutant and particulate emissions under all conditions tested.
[0072] Example 2 - Comparison with additives according to EP 1 307 531 To further illustrate the advantages associated with the additive according to the invention compared to additives of the prior art, a comparison test was carried out between the additive according to Example 1 of the present application ("AddInv", additive according to the invention) and an additive according to EP 1 307 531 ("AddEP531", additive according to EP 1 307 531) having the following composition: a) Aliphatic acid C8 for Ce, C for Fe 18a metal oxidation catalyst consisting of 5% Ce, 7% Fe, and 2.5% Ca, with Ca in the form of a salt of dodecylbenzenesulfonic acid, the catalyst being present in the additive in an amount of 10% by weight based on the total weight of the additive; and b) i-octyl nitrate in an amount corresponding to 70% by weight relative to the total weight of the additive; c) Para-Flow 412 (Exxon) (50% active material) was used as dispersant in an amount of 20% by weight based on the total weight of the additive.
[0073] Both additives were added to a standard reference diesel fuel; additive AddInv was added in an amount equivalent to 2 g / L of diesel fuel, and additive AddEP531 was added in an amount equivalent to 3.5 g / L of diesel fuel, as taught in the examples of EP 1 307 531. EP 1 307 531 also teaches that 3.5 g / L is a preferred additive amount (see EP 1 307 531 A1).
[0074] Next, in order to compare the results obtained with the two different additives with those obtained with diesel fuel alone and also to highlight the improvement obtained by using the additive according to the invention by comparing the two additives with each other, the % performance variation under the same conditions for each of the two additives compared to unsupplemented diesel fuel was calculated according to the formula already used in Example 1:
number
number
[0075] Testing was carried out on an engine brake bench using an Isotta Fraschini model V1312 T2 MLL engine with a constant engine power rate of 50%. Engine consumption and smoke opacity data (FSN scale, mg / m 3 ) were measured and compared.
[0076] The results obtained are reported in Tables 3, 4 and 5 below. [Table 3] [Table 4] [Table 5]
[0077] From the analysis of the data in Tables 3, 4 and 5, it is easy to see that the additive according to the invention proves to be more effective in reducing fuel consumption and particulate emissions than the additive according to EP 1 307 531, while using less metal, thereby resulting in a significantly reduced generation of metal oxides, together with the significantly reduced pollutant emissions already shown in Example 1.
Claims
1. A) an oxidation catalyst comprising 2 to 12% by weight, based on the total of components A), B) and C), of a mixture of at least one iron salt and at least one cerium salt; B) 82 to 92% by weight, based on the total of components A), B) and C), of at least one organic nitrate; and C) 6 to 16% by weight, based on the total of components A), B) and C), of at least one dispersant; An additive for diesel fuels and fuel oils comprising: The foregoing additive wherein the dispersant C) is selected from alkylamines, alkylamides, alkylarylamines, alkylarylamides, or mixtures thereof.
2. The at least one iron salt and the at least one cerium salt are salts of an acid selected from the group consisting of: (I) R—COOH, where R is a linear or branched, saturated or unsaturated C 7 -C 17 is an aliphatic radical, or C 5 -C 12 is an alicyclic radical, and 【Chemistry II】 where R' is H or a linear or branched, saturated or unsaturated C 1 -C 12 an aliphatic radical, and n is an integer from 1 to 5; The additive of claim 1.
3. Iron salts are linear saturated C 17 The cerium salt is an acid of formula (I) in which R' is an aliphatic radical and R' is a linear saturated C 12 3. The additive according to claim 1, which is an acid of formula (II) in which the radical is an aliphatic radical and n is an integer equal to 1.
4. 4. The additive according to claim 1, wherein the amount of metals in the oxidation catalyst A) expressed as weight percentages of metallic iron and cerium relative to the total weight of the catalyst ranges from 0.1 to 1.2% for cerium and from 0.1 to 1.2% for iron.
5. 5. The additive of claim 4, wherein the amount of metals in the oxidation catalyst A) expressed as weight percentages of metallic iron and cerium relative to the total weight of the catalyst ranges from 0.3 to 1% for cerium and 0.3 to 1% for iron.
6. 6. The additive according to claim 1, wherein in the oxidation catalyst A) the weight ratio of cerium to iron is in the range of 0.8 to 1.
2.
7. 7. The additive according to claim 1, wherein the organic nitrate B) is selected from the group consisting of amyl nitrate, i-amyl nitrate, i-octyl nitrate, or binary or ternary mixtures thereof.
8. 8. The additive of claim 7, wherein the organic nitrate B) is i-octyl nitrate.
9. Dispersant C) is C 10 -C 24 2. The additive of claim 1, selected from alkylamines and alkylamides having aliphatic chains.
10. 10. The additive according to claim 1, wherein the amount of oxidation catalyst A) is 3 to 12 wt. %, the amount of organic nitrate B) is 82 to 91 wt. %, and the amount of dispersant C) is 6 to 15 wt. %, based on the total weight of the additive.
11. 11. The additive according to claim 1, wherein the amount of oxidation catalyst A) is 3 to 9 wt.-%, the amount of organic nitrate B) is 84 to 90 wt.-%, and the amount of dispersant C) is 7 to 13 wt.-%, based on the total weight of the additive.
12. 12. The additive according to claim 1, wherein the amount of oxidation catalyst A) is equal to 5% by weight, the amount of organic nitrate B) is equal to 86% by weight, and the amount of dispersant C) is equal to 9% by weight, relative to the total weight of the additive.
13. 13. A fuel composition comprising a fuel selected from the group consisting of diesel fuel and fuel oil, and at least one additive according to any one of claims 1 to 12.
14. A fuel composition according to claim 13, wherein the amount of additive is comprised between 1 and 10 g / l of fuel.
15. A fuel composition according to claim 14, wherein the amount of additive is comprised between 1 and 5 g / l of fuel.
16. 16. A fuel composition according to claim 15, wherein the amount of additive is equal to 2 g / l of fuel.
17. 13. Use of an additive according to any one of claims 1 to 12 to improve the combustion efficiency of diesel fuel in a diesel engine.
18. 13. Use of an additive according to any one of claims 1 to 12 for improving the combustion efficiency of boiler fuel oil.
19. 13. A method for improving the combustion efficiency of a fuel selected from diesel fuel and fuel oil, said method comprising the step of adding to said fuel at least one additive according to any one of claims 1 to 12.
20. 20. The method of claim 19, wherein in the step of adding, 1 to 10 g / l of the at least one additive is added to the fuel.
21. 21. The method of claim 20, wherein in the step of adding, 1 to 5 g / l of the at least one additive is added to the fuel.
22. 22. The method of claim 21, wherein in the step of adding, 2 g / l of the at least one additive is added to the fuel.
Citation Information
Patent Citations
Diesel motor fuel additive and method for preparing same
CN101250448A
fuel with improved ignitability
JP2001527124A
Additive for reducing particulate matter in exhaust gas produced by combustion of diesel oil and fuel composition containing the same
JP2004506067A