Sintered Carbide(s) Bead Powder

The sintered metal carbide bead powder with a tailored composition and manufacturing process addresses breakage and wear issues in grinding media, enhancing operational efficiency and reducing environmental impact.

FR3161680A1Pending Publication Date: 2025-10-31SAINT GOBAIN CENT DE RES & DEVS & DETUD EUROEN
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Patent Information

Application Number
FR2024004523
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-04-30
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

Existing grinding media, particularly tungsten carbide balls, suffer from breakage and wear issues, leading to disrupted grinding operations and particle size distribution, and require a manufacturing process that is both efficient and cost-effective.

Method used

A sintered metal carbide bead powder with a specific chemical and crystallographic composition, including additives like Ti, Ta, Nb, V, Zr, and Hf, providing enhanced break resistance and wear resistance, along with a manufacturing process involving sintering and shaping of a particulate mixture.

Benefits of technology

The powder exhibits improved break resistance and wear resistance, reducing grinding time and maintaining efficient particle size distribution, while minimizing environmental and hygiene concerns from binder release.

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Abstract

Sintered bead powder having: - a chemical composition such that, as percentages by mass based on the mass of the bead powder: - (77 - C4)% ≤ W + Mo ≤ (95.5 - C3)%, with Mo ≤ 10%; - C1% ≤ C ≤ C2%; - Ti, Ta, Nb, V, Zr, Hf such that Ti + Nb + V + Zr ≥ 4.5% and / or Ta + Hf ≥ 5%, and additive ≤ 20.0%, the additive denoting Ti + Ta + Nb + V + Zr + Hf; - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr, Hf, or "other elements": ≤ 3%;with : - C1 = 100*(C3 / C5), - C2 = 100*(C4 / C6), - C3 = 0,5*C7, - C4 = 1,2*C7, - C5 = [m(W) + m(Mo) + m(Ti) + m(Ta)( Z(f) + C5) + m - C6 = [m(W) + m(Mo) + m(Ti) + m(Ta) + m(Nb) + m(V) + m(Zr) + m(Hf) + C4], - C7 = M(C)*[(m(W) / M(W)) + (m(Mo) / M(Mo)) + (m(Ta)) + (m(Ti)) + (m(Ti) / M(Nb)) + (m(V) / M(V)) + (m(Zr) / M(Zr)) + (m(Hf) / M(Hf))], m(W), m(Mo), m(Ti), m(Ta), m(Nb), m(V), m(Zr) and m(Hf) being the mass of Mo, V, Ta in grams W, des Hf, respectively, andM(W), M(Mo), M(Ti), M(Ta), M(Nb), M(V), M(Zr), M(Hf) and M(C) being the molar mass, in g / mol, of elements W, Mo, Ti, Ta, Nb, V, Zr, Hf and C, respectively;- a crystallographic composition such that more than 60% of the crystallized phases present in said bead powder are in the form of metallic carbide(s), as a percentage by mass based on the mass of the crystallized phases, said crystallized phases including at least one carbide of at least one element among Ti, Ta, Nb, V, Zr and Hf. No abbreviated figure.
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Description

Title of the invention: Sintered Metal Carbide(s) Ball Powder technical field

[0001] The present invention relates to a powder of sintered metal carbide(s) beads, to a method of manufacturing this powder, to a method comprising the use of this powder, in particular in an application of grinding, dispersion in a wet medium or surface treatment, and to a suspension comprising said powder. Previous art

[0002] The mineral or mining industry uses balls for the fine grinding of materials possibly pre-ground dry by traditional processes, in particular for the fine grinding of calcium carbonate, titanium oxide, gypsum, kaolin and ore containing metals in generally combined forms (oxides, sulfides, silicates...), processes which may also involve prior purification methods, for example by flotation.

[0003] All these balls typically have a size of 0.03 to several mm, and they must in particular have good resistance to wear.

[0004] To further improve grinding efficiency, the use of sintered balls made of a high-density material, such as tungsten carbide, can be considered. The higher density also facilitates the separation of particles from the suspension to be ground.

[0005] Grinding balls based on tungsten carbide(s) are in particular described in WO / 2020 / 074609.

[0006] During a grinding operation, grinding media can break into pieces. These pieces disrupt the grinding operation, particularly because they are not in the form of balls and have sharp edges, but also because they alter the particle size distribution of the grinding media. The pieces can also accumulate over time in the system that separates the media from the suspension to be ground, which can lead to a shutdown of the mill.

[0007] There is a continuing need for new sintered metal carbide ball powders that exhibit both good wear resistance and improved break resistance.

[0008] There is also a need for a process for manufacturing such beads which is simple and economical to implement.

[0009] One object of the invention is to meet, at least partially, these needs. Summary of the invention

[0010] The invention provides a powder of sintered beads, called "metal carbide beads", said powder having: - a chemical composition such that, as percentages by mass based on the mass of the powder: - (77 - C4)% < W + Mo < (95.5 - C3)%, with Mo < 10%; - Cl% < C < C2%; - Ti, Ta, Nb, V, Zr, Hf such that Ti + Nb + V + Zr > 4.5% and / or Ta + Hf > 5%, and additive < 20.0%, the additive denoting Ti + Ta + Nb + V + Zr + Hf; - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr, Hf or "other elements": < 3%, with: - Cl = 100*(C3 / C5), - C2 = 100*(C4 / C6), - C3 = 0.5*C7, -C4 = 1.2 * C7, - C5 = [m(W) + m(Mo) + m(Ti) + m(Ta) + m(Nb) + m(V) + m(Zr) + m(Hf) + C3], - C6 = [m(W) + m(Mo) + m(Ti) + m(Ta) + m(Nb) + m(V) + m(Zr) + m(Hf) + C4], - C7 = M(C)*[(m(W) / M(W)) + (m(Mo) / M(Mo)) + (m(Ti) / M(Ti)) + (m(Ta) / M(Ta)) + (m(Nb) / M(Nb)) + (m(V) / M(V)) + (m(Zr) / M(Zr)) + (m(Hf) / M(Hf))], m(W), m(Mo), m(Ti), m(Ta), m(Nb), m(V), m(Zr) and m(Hf) being the mass in grams of the elements W, Mo, Ti, Ta, Nb, V, Zr and Hf, respectively, and M(W), M(Mo), M(Ti), M(Ta), M(Nb), M(V), M(Zr), M(Hf) and M(C) being the molar mass in g / mol of the elements W, Mo, Ti, Ta, Nb, V, Zr, Hf and C, respectively; - a crystallographic composition such that more than 60% of the crystallized phases present in said powder are in the form of metallic carbide(s), as a percentage by mass based on the mass of the crystallized phases, said crystallized phases including at least one carbide of at least one element among Ti, Ta, Nb, V, Hf and Zr.

[0011] Remarkably, the inventors have found that such an additive content not only reduces breakage, but also provides good wear resistance.

[0012] In a preferred embodiment, the additive mass content is greater than 5.0%. An additive content greater than 5.0% provides the best compromise between break resistance and wear resistance, particularly in the applications mentioned above.

[0013] Preferably, the Nb content is greater than 5.0%.

[0014] A powder of beads according to the invention may further comprise one or more of the following optional and preferred characteristics: - the content of the crystallized phases present in the form of metallic carbide(s) is greater than 80%, as a percentage by mass based on the mass of the crystallized phases; - said crystallographic composition is such that more than 50%, by mass, of at least one of the elements Ti, Ta, Nb, V, Zr and Hf, is in the form of carbide(s); - said chemical composition is such that 5.0% < Ti + Ta + Nb + V + Zr + Hf < 15.0%; - said chemical composition is such that the additive is Nb and Nb < 9.7%; - said chemical composition is such that Ti + Ta + Nb + V + Zr + Hf < 10.0%; - C3 = 0.8*C7 and / or C4 = 1.1*C7; - the oxygen O content is less than or equal to 0.85%, preferably less than or equal to 0.1%; - the average grain size of the sintered balls is greater than or equal to 0.1 pm and less than or equal to 4 pm; - said powder of beads has an apparent density greater than or equal to 14.3 g / cm3; - said chemical composition is such that: - w > 64% and W < 90%, and / or - C > 3% and C < 13.5%, and / or - Co < 0.3%, and / or - Ni < 0.3%, and / or - Fe < 0.3%, and / or - Co + Ni + Fe < 0.3%, and / or - Mo > 3% and Mo < 9%, and / or - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr and Hf < 2.5%; said chemical composition is such that: - W > 73% and W < 89%, and / or - C < 9%, and / or - Co + Ni + Fe < 0.05%, and / or - Mo > 5% and Mo < 7%, and / or - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr, Hf < 1%; - said powder of beads has a ratio (D90 - Di0) / D50 less than 0.5, D50 Dio, and D90 denote the ball sizes corresponding to percentages equal to 50%, 10%, and 90% by mass, respectively, on the distribution curve cumulative particle size distribution of the powder bead sizes, said bead sizes being classified in ascending order; - said powder of beads has a median size D50 less than 1.8 mm and greater than 10 pm.

[0015] Preferably, the apparent density of the bead powder is greater than or equal to 14.0 g / cm3, preferably greater than or equal to 14.3 g / cm3, preferably greater than or equal to 14.5 g / cm3. Advantageously, the use of such a powder makes it possible to reduce the grinding time.

[0016] The invention also relates to a particulate mixture comprising at least 90%, preferably at least 95%, preferably at least 98% by mass of a powder of beads according to the invention.

[0017] The invention also relates to a process comprising using, in a grinding, wet dispersion or surface treatment application, a powder of sintered beads according to the invention.

[0018] The powder of beads can also be used in the form of a suspension during grinding and during dispersion in a humid medium. The invention also relates to such a suspension.

[0019] In one embodiment, only a said powder of beads is used. In another embodiment, a particulate mixture is used comprising a said powder of beads mixed with other particles, said other particles preferably representing less than 10%, preferably less than 5%, preferably less than 2% by mass of the sum of the mass of said beads and said other particles.

[0020] The invention also relates to a device selected from: - a crusher comprising a crushing chamber containing a suspension according to the invention and preferably a material to be crushed; - a dispersion device comprising a dispersion chamber containing a suspension according to the invention and preferably a material to be dispersed, for example a pigment powder, for example to make a paint.

[0021] The invention also relates to a method for manufacturing a powder of metallic carbide(s) beads according to the invention, said method comprising the following steps: a) preparation of a starting charge so that the powder of metallic carbide(s) beads obtained at the end of step c) conforms to the invention, b) shaping of the starting charge in the form of a powder of raw beads, c) sintering so as to obtain a powder of metallic carbide(s) beads.

[0022] Preferably, in step a), the additive is supplied, at least partially, preferably totally, in the form of an additive carbide powder(s). The additive remains in a carbide form during manufacturing and is therefore advantageously found in a carbide form, particularly a multiple carbide form, within the ball.

[0023] A process according to the invention may further include one or more of the following optional features: - in step a), the starting load comprises a particulate mixture of inorganic powders, preferably consisting of - of a toilet powder and - of one or more powders of titanium carbide, tantalum carbide, niobium carbide, vanadium carbide, zirconium carbide, hafnium carbide, and - optionally of a carbon powder and / or a powder containing molybdenum, preferably a molybdenum carbide powder and / or a tungsten oxide powder, said powders can be replaced, at least partially, by precursor powders, introduced in equivalent quantities, the median size of all the particles of said powders, preferably the median size of each said powder being less than 2 pm, preferably less than 1 pm, preferably less than 0.5 pm; - preferably, in the starting charge, more than 90%, more than 95%, preferably approximately 100% of the additive is supplied in the form of carbide; - preferably, in the starting load, the additive content is greater than or equal to 5.0%, and preferably less than or equal to 15.0%, preferably less than or equal to 12.0%, preferably less than or equal to 10.0%; - preferably, in the starting charge, Co < 0.5%, preferably Co < 0.3%, preferably Co < 0.2%, preferably Co < 0.1%, preferably Co < 0.05%, preferably the Co content is substantially zero, in mass percentages on the basis of said starting charge; - preferably, in the starting charge, Ni < 0.5%, preferably Ni < 0.3%, preferably Ni < 0.2%, preferably Ni < 0.1%, preferably Ni < 0.05%, preferably the Ni content is substantially zero, in mass percentages on the basis of said starting charge; - preferably in the starting charge, Fe < 0.5%, preferably Fe < 0.3%, preferably Fe < 0.2%, preferably Fe < 0.1%, preferably Fe < 0.05%, in mass percentages on the basis of said starting charge; - preferably, in the starting charge, Co + Ni + Fe < 0.3%, preferably Co + Ni + Fe < 0.2%, preferably Co + Ni + Fe < 0.1%, preferably Co + Ni + Fe < 0.05%, preferably the content of Co + Ni + Fe is substantially zero, in mass percentages on the basis of said starting charge; - preferably, the shaping in step b) is carried out at less than 2 bar, less than 1.5 bar, less than 1.1 bar, preferably at a pressure of 1 bar, preferably at atmospheric pressure; - preferably, the sintering temperature in step c) is above 1700°C, preferably above 1800°C, preferably above 1900°C and preferably below 2300°C; - preferably, the sintering in step c) is carried out at less than 2 bar, less than 1.5 bar, less than 1.1 bar, preferably at a pressure of 1 bar, preferably at atmospheric pressure; - preferably, the duration of the sintering rest in step c) is greater than 0.5 hours and less than 10 hours; - preferably, in step c), sintering is carried out in an inert or reducing atmosphere.

[0024] Remarkably, a median particle size for the starting charge of less than 2 pm makes it possible to obtain sintered metal carbide balls having an apparent density greater than or equal to 14.0 g / cm3, preferably greater than or equal to 14.3 g / cm3, preferably greater than or equal to 14.5 g / cm3, preferably with very low or even zero nickel and / or cobalt contents - without needing to strongly compress the starting charge in step b) and

[0025] - without needing to resort to high-pressure heat treatment, of the type hot isostatic pressing (or "Hot Isostatic Pressing" in English or HIP) or hot pressing (or "Hot Pressing" in English or HP), during step c) of sintering.

[0026] In one embodiment, the process according to the invention does not involve any pressing operation in step b) or in step c), preferably in step b) and step c).

[0027] The manufacturing process is considerably simplified. Definitions

[0028] By "ball", we mean a particle exhibiting sphericity, that is to say a ratio between its smallest Ferret diameter and its largest Ferret diameter, greater than or equal to 0.75, regardless of how this sphericity was obtained.

[0029] By “bead powder” is meant a powder comprising more than 90% by mass of beads.

[0030] By "sintered bead" is meant a bead obtained by mixing suitable raw materials, then shaping this mixture in its raw state and firing the resulting raw bead at a temperature and for a time sufficient to achieve sintering of This raw ball. A sintered ball is made up of "grains" bonded together during sintering.

[0031] The "size" of a powder particle is classically its dimension measured using a laser particle size analyzer.

[0032] The particle or bead sizes corresponding to the percentages equal to 50%, 10%, 90%, and 99.5%, respectively, by mass, on the cumulative particle size distribution curve of the powder's particle and bead sizes, respectively, are called "percentiles" 50 (denoted D50), 10 (denoted D10), 90%, and 99.5%, respectively, on the cumulative particle size distribution curve of the powder's particle and bead sizes, respectively, said particle and bead sizes being ranked in ascending order. According to this definition, 99.5% by mass of the particles or beads in the powder thus have a size less than D99.5, and 0.5% of the particles or beads, by mass, have a size greater than or equal to D99.5.

[0033] The "median size" of a powder of particles, for example of beads, is called the 50th percentile. The median size therefore divides the particles, the beads respectively, of the powder into first and second populations equal in mass, these first and second populations consisting only of particles, beads respectively, having a size greater than or equal to, or less than respectively, the median size.

[0034] The 99.5 percentile is called the "maximum size" of a powder of particles or beads.

[0035] The "median sphericity" of a powder divides the particles of this powder into first and second populations equal in mass, these first and second populations comprising only particles exhibiting a sphericity greater than or equal to, or less than respectively, the median sphericity.

[0036] A total content of several carbides, for example WC + W2C, or of one or more elements, for example W + Mo, or Ti + Ta + Nb + V + Zr + Hf, does not imply that each of said carbides or each of said elements, respectively, is present, even if, in one embodiment, each of said carbides or said elements is present.

[0037] The additive consists of one or more metals from among Ti, Ta, Nb, V, Zr and Hf.

[0038] A multiple carbide is a carbide containing only one of the elements Ti, Ta, Nb, V, Zr and Hf, and another element, preferably W, or a combination of several of the elements Ti, Ta, Nb, V, Zr and Hf, preferably also combined with W.

[0039] A multiple metal carbide is considered to be a carbide of each of the metals it contains. For example, a carbide of W and Ti is a carbide of W and is a carbide of Ti.

[0040] By "apparent density" of a powder, we mean the ratio between the mass of powder and the cumulative volume of the particles of the powder, including the closed porosity located inside these particles.

[0041] A “precursor” of a compound is a constituent which is transformed into said compound during the manufacture of a powder of metal carbide(s) beads according to the invention.

[0042] The "average size" of the grains of a metallic carbide ball is defined as the dimension measured using a "Mean Linear Intercept" method. A measurement method of this type is described in ASTM E1382. The measurement can be performed on a polished surface of a cross-section of the ball, as described in the examples.

[0043] In general, the properties of beads and powders can be measured according to the methods described for the examples below.

[0044] “Contain”, “include” or “present” should not be interpreted as in a limited manner, unless otherwise indicated.

[0045] Unless otherwise stated, the percentages used to characterize a composition always refer to mass percentages based on said composition.

[0046] The mass contents of the phases (WC, W2C,...) are measured on the basis of the total mass of the crystallized phases. Detailed description

[0047] Method for manufacturing a powder of beads according to the invention

[0048] To manufacture a powder of beads according to the invention, one can proceed according to a process comprising the steps a) to c) described above and detailed below.

[0049] In step a), a starting charge adapted to the shaping process of step b) is prepared, preferably at room temperature, as is well known to those skilled in the art. The charge is adapted so that the powder of beads obtained at the end of step c) conforms to the invention. To this end, it comprises a particulate mixture of inorganic powders, or "starting powders", preferably consisting of a WC powder and one or more powders of an additive source, preferably an additive carbide powder, and optionally a carbon powder and / or a powder containing molybdenum, preferably a molybdenum carbide powder and / or a tungsten oxide powder.

[0050] The additive source preferably comprises less than 10%, preferably less than 5%, preferably less than 2%, preferably substantially no additive in oxide form. The additive source preferably comprises more than 90%, preferably more than 95%, preferably more than 98%, preferably substantially 100% additive in carbide form, preferably a carbide selected from titanium carbide, carbide tantalum, niobium carbide, vanadium carbide, zirconium carbide, hafnium carbide and mixtures thereof.

[0051] These starting powders can also be replaced, at least partially, by precursor powders, introduced in equivalent quantities.

[0052] Impurities consist of elements not intentionally introduced into the starting feed. The starting powders are preferably selected so that the total impurity content, excluding oxygen, is less than 0.5%, preferably less than 0.3%, and preferably less than 0.1%, as a mass percentage based on the particulate mixture of the starting feed. Tungsten, which may be present in additive powders, preferably in additive carbide powders, is not considered an impurity.

[0053] When a powder of metal carbide(s) is present in the starting charge, its oxygen content is preferably less than 3%, preferably less than 2%, preferably less than 1%, as a percentage by mass based on the mass of the powder.

[0054] The starting powders are preferably chosen so that their median size is less than 2 µm, preferably less than 1 µm, preferably less than 0.5 µm. The starting powders may be ground or co-ground prior to step a) for this purpose, for example by impact and / or friction grinding.

[0055] Preferably, the ratio of the median size of all said titanium carbide, tantalum carbide, niobium carbide, vanadium carbide, zirconium carbide, hafnium carbide, molybdenum carbide powders and said precursor powders of these compounds, preferably of the median size of each of said powders, to the median size of the tungsten carbide powder is less than 5, preferably less than 4, preferably less than 3, preferably less than 2, preferably less than 1, preferably less than 0.9, preferably less than 0.8, preferably less than 0.7, preferably less than 0.6, preferably less than 0.5.

[0056] In one embodiment, WC is the only tungsten carbide introduced into the starting charge.

[0057] Preferably, the starting charge has a mass ratio of the W content to the additive content greater than or equal to 4, preferably greater than or equal to 5, preferably greater than or equal to 6, preferably greater than or equal to 7, and preferably less than or equal to 20, preferably less than or equal to 19, preferably less than or equal to 18.

[0058] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of titanium carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of titanium carbide powder greater than or equal to 5.7, and preferably less than or equal to 16.2, preferably less than or equal to 15, preferably less than or equal to 14.5.

[0059] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of tantalum carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of tantalum carbide powder greater than or equal to 3.7, and preferably less than or equal to 17.3, preferably less than or equal to 11.1.

[0060] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of niobium carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of niobium carbide powder greater than or equal to 8.1, and preferably less than or equal to 18.1, preferably less than or equal to 16.3.

[0061] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of vanadium carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of vanadium carbide powder greater than or equal to 11.5, and preferably less than or equal to 16.4, preferably less than or equal to 14.6.

[0062] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of zirconium carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of zirconium carbide powder greater than or equal to 10, and preferably less than or equal to 18, preferably less than or equal to 16.3.

[0063] In one embodiment, particularly when WC is the only tungsten carbide introduced into the starting charge, and when the additive is introduced into the starting charge substantially exclusively in the form of hafnium carbide powder, the starting charge has a mass ratio of the amount of WC powder to the amount of hafnium carbide powder greater than or equal to 7.4, and preferably less than or equal to 17.2.

[0064] The WC content in the metal carbide beads can be adjusted using the carbon content in the starting charge. To increase the WC content in the metal carbide beads, the carbon content in the starting charge can be increased, for example by adding a carbon source, in particular a Carbon black powder, an organic compound in the form of a powder or liquid, preferably containing little or no oxygen, especially sucrose.

[0065] To increase the W2C content and / or to decrease the free carbon content in the metal carbide(s) beads, a metal tungsten powder and / or a tungsten carbide powder with a higher oxygen content and / or a tungsten oxide powder can be added to the starting charge.

[0066] The starting charge may include, in addition to the particulate mixture, a solvent, preferably water, the quantity of which is adapted to the shaping method of step b). The starting charge may also include a dispersant, a plasticizer, a surface tension modifier, a gelling agent and / or an antifoaming agent. These additives, well known to those skilled in the art, are suitable for the shaping method used in step b).

[0067] In step b), any conventional shaping process known for the manufacture of sintered balls can be implemented.

[0068] Among these processes, we can mention: - granulation processes, for example using granulators, fluidized bed granulators, or granulation discs, - the atomization-drying processes of a slip, - gelling processes, - injection molding or extrusion processes, and - pressing processes.

[0069] In one embodiment, steps a) and b) are at least partially coincident, in particular when a solvent is added progressively during shaping.

[0070] In a preferred embodiment, step b) does not involve pressing.

[0071] In step c), the raw beads are sintered in an inert atmosphere, for example in argon or nitrogen, or a reducing atmosphere, for example in an atmosphere of hydrogen and / or carbon monoxide, or under vacuum.

[0072] Preferably the sintering is carried out in an electric furnace, preferably at atmospheric pressure.

[0073] As is well known, the duration and temperature of sintering allow adjustment of the apparent density of the resulting beads. It is also well known that applying pressure during sintering increases the apparent density of the resulting beads. As the examples below show, a small median size, however, makes it possible to obtain the desired apparent density by shaping and sintering at ambient pressure.

[0074] Preferably, the sintering time is greater than 0.5 hours and less than 10 hours.

[0075] In step c), sintering is carried out at a temperature above 1700°C, preferably above 1800°C, preferably above 1900°C and preferably below 2300°C.

[0076] After step c) of sintering, the resulting bead powder may undergo an optional particle size sorting step, for example by sieving and / or air separation, configured to obtain a particle size distribution suitable for the intended use. The bead powder may also undergo morphological sorting, in particular using a spiral separator. Powder of marbles

[0077] A powder of beads according to the invention is made up of metallic carbide(s) beads.

[0078] Said metallic carbide ball(s), preferably each metallic carbide ball(s), may in particular comprise one or more of the following optional characteristics: - preferably C3 = 0.6*C7, preferably C3 = 0.7*C7, preferably C3 = 0.8*C7, preferably C3 = 0.9*C7; - preferably C4 = 1.1 *C7; - preferably, the oxygen O content is less than or equal to 0.85%, preferably less than or equal to 0.7%, preferably less than or equal to 0.5%, preferably less than or equal to 0.4%, preferably less than or equal to 0.2%, preferably less than or equal to 0.1%, as a percentage by mass based on the mass of the ball - preferably more than 70%, preferably more than 80%, preferably more than 85%, preferably more than 90%, preferably more than 95% of the crystallized phases are in the form of metallic carbide(s), as a percentage by mass based on the mass of the crystallized phases; - in one embodiment, all the crystalline phases present are in the form of metallic carbide(s); - in one embodiment, at least one metal carbide is a multiple metal carbide; - at least a part of Ti, Ta, Nb, V, Zr and Hf is present in the form of a metallic carbide, said metallic carbide being a multiple metallic carbide; - preferably more than 50%, preferably more than 60%, preferably more than 70%, preferably more than 80%, preferably more than 90%, preferably more than 95%, by mass of the additive, preferably of at least one of the elements Ti, Ta, Nb, V, Zr and Hf, preferably of each of the elements Ti, Ta, Nb, V, Zr and Hf, are in the form of carbide(s); - preferably W > 64%, preferably W > 66%, preferably W > 68%, preferably W > 70%, preferably W > 71%, preferably W > 73%, preferably W > 75%, and preferably W < 90%, preferably W < 89%, as percentages by mass based on the mass of the ball; - preferably, C > 3%, and preferably C < 13.5%, preferably C < 11%, preferably C < 10%, preferably C < 9%, preferably C < 8%, as a percentage by mass based on the mass of the ball; - preferably, Ti + Ta + Nb + V + Zr + Hf > 5.0%, and preferably Ti + Ta + Nb + V + Zr + Hf < 15.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 12.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 10.0%, as a percentage by mass based on the mass of the ball; - preferably, W > 64%, preferably W > 66%, preferably W > 68%, preferably W > 70%, preferably W > 71%, preferably W > 73%, preferably W > 75%, and preferably W < 90%, preferably W < 89% and C > 3%, and preferably C < 13.5%, preferably C < 11%, preferably C < 10%, preferably C < 9%, preferably C < 8%, and preferably Ti + Ta + Nb + V + Zr + Hf > 5.0%, and preferably Ti + Ta + Nb + V + Zr + Hf < 15.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 12.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 10.0%, as percentages by mass based on the mass of the marble; - in a preferred embodiment, the additive is Nb and preferably Nb > 5.0%, and preferably Nb < 9.7%, as a percentage by mass based on the mass of the ball; - the metal carbide ball(s) has a sphericity greater than 0.90; - in one embodiment, WC and W2C together represent more than 80% of the mass of all the crystallized phases of the ball.

[0079] In one embodiment, the metal carbide ball(s) comprises more than 1%, preferably more than 3%, preferably more than 5%, and less than 9%, preferably less than 7% of molybdenum Mo, as a percentage by mass based on the mass of the ball.

[0080] Cobalt and / or nickel and / or iron are generally used as a metallic binder in the manufacture of sintered tungsten carbide balls and allow the sintering temperature to be lowered.

[0081] The wear generated during the use of said tungsten carbide balls results in the release of cobalt and / or nickel and / or iron compounds, which may cause pollution of the ground or homogenized material, or even hygiene and environmental problems. Similarly, hygiene and environmental problems may be encountered during the manufacture of said balls.

[0082] Remarkably, the inventors have found that very good performance is obtained in the aforementioned applications, even with very small quantities of Co, Ni and Fe. These small quantities advantageously limit hygiene and environmental problems and / or pollution of the ground material.

[0083] Preferably, - Co < 0.5%, preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%; - Ni < 0.5%, preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%; - Fe < 0.5% preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%; - Co + Ni + Fe < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%.

[0084] A metal carbide ball(s), preferably each metal carbide ball(s) has an average grain size greater than or equal to 0.1 pm, preferably greater than or equal to 0.5 pm and / or less than or equal to 4 pm, preferably less than or equal to 3 pm, preferably less than or equal to 2 pm.

[0085] Preferably, a metal carbide ball(s), preferably each metal carbide ball(s) has a sphericity greater than 0.80, preferably greater than 0.85, preferably greater than 0.90, preferably greater than 0.92, preferably greater than 0.94, preferably greater than 0.95.

[0086] The powder beads preferably have a maximum size of less than 2 mm, preferably less than 1.5 mm, preferably less than 1 mm, preferably less than 800 pm.

[0087] The powder beads preferably have a median size D50 of less than 1.8 mm, preferably less than 1.5 mm, preferably less than 1 mm, preferably less than 600 µm, and / or preferably greater than 10 µm, preferably greater than 20 µm, preferably greater than 30 µm. Such median sizes are particularly well suited to dispersion applications in humid environments.

[0088] The powder of beads has a ratio (D90 - Di0) / D50 preferably less than 0.5, preferably less than 0.4, preferably less than 0.3, preferably less than 0.2, preferably less than 0.1. Advantageously, the separation of the beads and the suspension to be ground is facilitated.

[0089] A powder of beads according to the invention may in particular have one or more of the following optional characteristics: - C3 = 0.6*C7, preferably C3 = 0.7*C7, preferably C3 = 0.8*C7, preferably C3 = 0.9*C7; -C4= 1.1*C7 ; - the oxygen O content is less than or equal to 0.85%, preferably less than or equal to 0.7%, preferably less than or equal to 0.5%, preferably less than or equal to 0.4%, preferably less than or equal to 0.2%, preferably less than or equal to 0.1%, as a percentage by mass based on the mass of the powder of beads; - more than 70%, preferably more than 80%, preferably more than 85%, preferably more than 90%, preferably more than 95% of the crystalline phases present are in the form of metallic carbide(s), as a percentage by mass based on the mass of the crystalline phases; - in one embodiment, all the crystalline phases present are in the form of metallic carbide(s); - in one embodiment, at least one metal carbide is a multiple metal carbide; - at least a part of Ti, Ta, Nb, V, Zr and Hf is present in the form of a metallic carbide, said metallic carbide being a multiple metallic carbide; - preferably more than 50%, preferably more than 60%, preferably more than 70%, preferably more than 80%, preferably more than 90%, preferably more than 95%, by mass of the additive, preferably of at least one of the elements Ti, Ta, Nb, V, Zr and Hf, preferably of each of the elements Ti, Ta, Nb, V, Zr and Hf, are in the form of carbide(s); - preferably W > 64%, preferably W > 66%, preferably W > 68%, preferably W > 70%, preferably W > 71%, preferably W > 73%, preferably W > 75%, and preferably W < 90%, preferably W < 89%, as a percentage by mass based on the mass of the ball powder; - preferably, C > 3%, and preferably C < 13.5%, preferably C < 11%, preferably C < 10%, preferably C < 9%, preferably C < 8%, as a percentage by mass based on the mass of the ball powder; - preferably, Ti + Ta + Nb + V + Zr + Hf > 5.0%, and preferably Ti + Ta + Nb + V + Zr + Hf < 15.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 12.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 10.0%, as a percentage by mass based on the mass of the ball powder; - preferably, W > 64%, preferably W > 66%, preferably W > 68%, preferably W > 70%, preferably W > 71%, preferably W > 73%, preferably W > 75%, and preferably W < 90%, preferably W < 89% and C > 3%, and preferably C < 13.5%, preferably C < 11%, preferably C < 10%, preferably C < 9%, preferably C < 8%, and Ti + Ta + Nb + V + Zr + Hf > 5.0%, and preferably Ti + Ta + Nb + V + Zr + Hf < 15.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 12.0%, preferably Ti + Ta + Nb + V + Zr + Hf < 10.0%, as a percentage by mass based on the mass of the powder beads ; - in a preferred embodiment, the additive is Nb and preferably Nb > 5.0%, and preferably Nb < 9.7%, as a percentage by mass based on the mass of the powder of beads; - the powder of metallic carbide(s) beads has a median sphericity greater than 0.80, preferably greater than 0.85, preferably greater than 0.90, preferably greater than 0.92, preferably greater than 0.94, preferably greater than 0.95, preferably greater than 0.97, preferably greater than 0.98. Advantageously, the energy required for grinding is reduced; - in one embodiment, WC and W2C together represent more than 80% of the mass of all the crystallized phases; - in one embodiment, the metal carbide bead powder comprises more than 1%, preferably more than 3%, preferably more than 5% and less than 9%, preferably less than 7% of molybdenum Mo, as a percentage by mass based on the mass of the bead powder; - Co < 0.5%, preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%, as a percentage by mass based on the mass of the ball powder; - Ni < 0.5% preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%, as a percentage by mass based on the mass of the ball powder; - Fe < 0.5% preferably < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%, as a percentage by mass based on the mass of the powder of the balls; - Co + Ni + Fe < 0.3%, preferably < 0.2%, preferably < 0.1%, preferably < 0.05%, as a percentage by mass based on the mass of the ball powder; - the apparent density of the ball powder is greater than or equal to 14.0 g / cm3, preferably greater than or equal to 14.3 g / cm3, preferably greater than or equal to 14.5 g / cm3; - the content of elements other than W, Mo, C, Ti, Ta, Nb, V, Zr and Hf is less than 2.5%, preferably less than 2%, preferably less than 1.5%, preferably less than 1%, as a percentage by mass based on the mass of the powder of beads; - in one embodiment, particularly when a TiC powder is present in the starting charge in step b), the mass content of Ti is greater than or equal to 5.0%, and / or less than or equal to 15.0%, preferably less than or equal to 13.0%, preferably less than or equal to 12.0%, as a percentage by mass based on the mass of the powder of beads; - in one embodiment, particularly when TaC powder is present in the starting charge in step b), the mass content of Ta is greater than or equal to 7.5%, as a percentage by mass based on the mass of the powder of beads; - in one embodiment, particularly when NbC powder is present in the starting charge in step b), the mass content of Nb is greater than or equal to 5.0%, and / or less than or equal to 15.0%, preferably less than or equal to 13.0%, preferably less than or equal to 10.0%, as a percentage by mass based on the mass of the bead powder; - in one embodiment, particularly when a VC powder is present in the starting charge in step b), the mass content of V is greater than or equal to 5.0%, and / or less than or equal to 15.0%, preferably less than or equal to 13.0%, preferably less than or equal to 10.0%, preferably less than or equal to 6.5%, as a percentage by mass based on the mass of the ball powder; - in one embodiment, in particular when a ZrC powder is present in the starting charge in step b), the mass content of Zr is greater than or equal to 5.0%, and / or less than or equal to 15.0%, preferably less than or equal to 13.0%, preferably less than or equal to 10.0%, preferably less than or equal to 8.0%, as a percentage by mass based on the mass of the powder of beads; - in one embodiment, particularly when an HfC powder is present in the starting charge in step b), the mass content of Hf is less than or equal to 15.0%, preferably less than or equal to 13.0%, preferably less than or equal to 11.2%, as a percentage by mass based on the mass of the powder of beads. Applications

[0090] A powder of beads according to the invention is in particular intended for grinding applications (called "microgrinding"), dispersion in wet media and surface treatment.

[0091] In a grinding application, the powdered beads can be suspended in a mixture of a solvent and the material to be ground. In such an application, the powdered beads can also be used in a dry medium.

[0092] Grinding aims to reduce the particle size of a material to be ground, whether liquid or solid. Powdered beads can be used in particular to grind organic matter, especially food.

[0093] In wet dispersion applications, the powder of beads is suspended in a mixture of a solvent and the material to be dispersed.

[0094] The purpose of dispersion is to homogenize a material to be dispersed, liquid or solid, in particular a paint, an ink, a dye, a magnetic lacquer, or an agrochemical compound.

[0095] The purpose of surface treatment is to modify the appearance and / or nature of a surface to be treated. For this purpose, dry powder beads are projected onto said surface, for example, a metallic surface. At the time of their projection, the speed of the beads is typically greater than 10 m / s, preferably greater than 20 m / s, preferably greater than 30 m / s, preferably greater than 40 m / s.

[0096] Surface treatment can be implemented for cleaning purposes, for example for the removal of rust (descaling), to create compressive prestresses on the surface of a part ("shot-peening") or to modify the surface appearance of a part, in particular roughness, brightness or gloss ("cosmetic finishing").

[0097] In all these applications, to limit environmental impact and reduce costs, the marbles are conventionally recovered after use, sorted to remove broken marble pieces, and then reused.

[0098] Since the pieces of marble are not spherical, they reduce efficiency. In particular, their projection can lead to damage to the part, or even cause it to break.

[0099] Furthermore, in all these applications, the powder must be very fluid. These applications are therefore far removed from applications in which the powder must be shaped, for example to form a part or a preform, as in additive manufacturing, in particular described in US2018 / 023668. Examples

[0100] The following non-limiting examples are given for the purpose of illustrating the invention.

[0101] Measurement protocols

[0102] The following methods were used to determine certain properties of different sintered bead powders.

[0103] To determine the sphericity of a ball, the smallest and largest Feret diameters are measured using Zeiss Zen Core software, on an Axio Imager model microscope marketed by the Zeiss company.

[0104] The quantification of the elements present in the chemical composition of the sintered beads is carried out: - for carbon, using a CS744 model carbon-sulfur analyzer marketed by the company LECO; - for oxygen, using an ON836 model oxygen-nitrogen analyzer marketed by the company LECO; - for boron and lithium, by inductively coupled plasma spectrometry (ICP) of a solution obtained according to the following method. The sintered beads to be analyzed first undergo calcination under air at 650°C for 4 hours. Then 700 mg of the said calcined beads are mixed with 3 g of sodium carbonate, and the mixture is heated to 950°C for a holding time of 15 minutes. After cooling, the resulting mixture is added to 200 cm³ of demineralized water and 10 cm³ of a 30 vol% hydrochloric acid solution, and the mixture is then heated to 200°C with stirring. The resulting solution is then filtered and dilute to 500 ml with demineralized water to obtain the solution to be analyzed by ICP; - for elements other than boron, lithium, oxygen and carbon, by X-ray fluorescence on a bead obtained by melting a mixture of 5 g of lithium tetraborate and 500 mg of sintered beads to be analyzed which have previously undergone calcination under air at 650°C for 24 hours, the determination of element contents being carried out considering that said calcination has oxidized all the elements present in the beads to be analyzed and that said beads no longer contain carbon after said calcination.

[0105] The quantification of the crystallized phases present in the sintered beads of the examples is carried out directly on said beads, said beads being glued onto a self-adhesive carbon pellet, so that the surface of said pellet is covered to the maximum with beads.

[0106] The crystalline phases present in the sintered beads are measured by X-ray diffraction, for example using a Panalytical X'Pert PRO diffractometer equipped with a copper DX tube. The diffraction pattern is acquired with this equipment over an angular range of 5° to 80°, with a step size of 0.017° and a counting time of 150 s / step. The front optics include a fixed programmable divergence slit of 1 / 4°, 0.04 rad Soller slits, a 10 mm mask, and a fixed 1 / 2° anti-scattering slit. The sample is rotated to limit preferential orientations. The rear optics include a fixed programmable anti-scattering slit of 1 / 4°, a 0.04 rad Soller slit, and a Ni filter.

[0107] The diffraction patterns were then qualitatively analyzed using EVA software and the PDF-5+ 2024 database.

[0108] Once the phases present were identified, the diffraction patterns were quantitatively analyzed using GSAS-II software by Rietveld refinement according to the following classical protocol, for the example beads:

[0109] The CIF (Crystallographic Information File) files of the identified phases are imported to perform the refinement. These CIF files can, for example, be obtained from the "Crystallography Open Database".

[0110] For each of the following steps, the following options are used for refinements: “Refinement type: analytic Hessian”, “Max cycles: 10”, “SVD zero tolerance: le-06”, - a refinement of the sample parameters "Histogram scale factor" and "Sample displacement" is carried out, then - a refinement of the background signal is performed with the following choices: "background function: chebyschev-1", "Number of coeff" equal to 7, then - a refinement of the mesh parameters is performed on the WC phase using the "Refine unit cell" option, then - a refinement of the roughness parameters "Surface roughness A" and "Surface roughness B" of the sample is carried out, then - a refinement of the "microstrain" parameter of the WC phase is carried out.

[0111] Then, we fix the parameters resulting from the previous refinements, that is to say, we no longer let them vary freely.

[0112] Then, for each of the identified secondary phases (example 1: WB; examples 2 and 3: Nb and W multiple carbide), said secondary phase is taken into account in the refinement, and, for examples 2 and 3, the lattice parameter is manually adjusted so that the position of the simulated peaks of the Nb and W multiple carbide phase is sufficiently close to the experimental peaks so as not to diverge the refinement.

[0113] Then, successively, a refinement of the fraction of phases present is carried out, followed by a refinement of the "microstrain" parameter of the secondary phase, and then a refinement of the mesh parameters of the secondary phase using the "Refine unit cell" option.

[0114] Then, we freeze the results from "Refine unit Cell" and "microstrain" and we leave "scale factor" free.

[0115] Finally, assuming, for examples 2 and 3, that the element Nb is entirely contained in the multiple carbide of Nb and W, a refinement of the fraction of phases present is carried out by iteratively varying the relative proportion of Nb and W in said multiple carbide, until the mass percentage of Nb in the whole sample, determined from the refinement, corresponds to the mass percentage of Nb measured by chemical analysis, to within 0.1%.

[0116] The apparent density of the beads was determined on a powder of beads using a helium pycnometer (AccuPyc 1330 from Micromeritics®), according to the classical method based on the measurement of the volume of helium displaced.

[0117] Particle size analyses of the powders used in the starting charges were carried out using an LA-950 laser scattering particle size analyzer marketed by Horiba.

[0118] Particle size analysis of the metal carbide bead powders in the examples was performed on a sample of at least 500 beads using Zeiss Zen Core software on an Axio Imager microscope marketed by Zeiss, after converting the surface area of ​​each observed bead into a volume using the following formula: _ 4^ ( S j3 / 2 with S the projected surface area of ​​the ball.

[0119] The average grain size of the sintered balls was measured by the "Mean Linear Intercept" method. A method of this type is described in ASTM E1382. According to this standard, analysis lines are drawn on images of the balls, and then, along each analysis line, the lengths, called "intercepts", are measured between two consecutive grain boundaries intersecting said analysis line.

[0120] The average length "1'" of the intercepts "I" is then determined.

[0121] The average size “d” of the grains of the sintered powder beads is given by the relation: d = 1.56.1'. This formula is derived from formula (13) of "Average Grain Size in Polycrystalline Ceramics" MI Mendelson, J. Am. Cerm. Soc. Vol. 52, No. 8, pp 443-446.

[0122] To determine the break resistance of the beads, for each example, 300 g of beads (having passed through a square-mesh sieve with an opening of 106 microns, as described below) corresponding to the residue on a square-mesh sieve with an opening of 38 µm were projected, with recirculation, onto a surface to be treated made of XC65 steel, using a Venturi effect gun equipped with a projection nozzle of 8 mm diameter, positioned 150 mm from the surface to be treated, with a projection angle of 85° and at an overpressure of 2 bar. The projection was continued for 10 minutes.

[0123] After processing, the beads, including bead fragments, were recovered and sieved again using a square-mesh sieve with an opening of 38 µm. The mass (ml), in grams, of beads corresponding to the residue on the square-mesh sieve with an opening of 38 µm was determined. The break resistance, Rc, expressed as a mass percentage, is calculated according to the following formula: Rc = 100 * ml / 300.

[0124] To determine wear, a powder of beads from each example was sieved so as to retain the residue on the square mesh sieve with an opening of 63 pm and the passing portion on the square mesh sieve with an opening of 80 pm, then was polished, in several batches, with a diamond suspension with a median size of 1 pm, for 12 hours in a Labstar mill marketed by NETZSCH, in MiniPur configuration, rotating at 3250 rpm with a 0.2 liter chamber filled to 80% by volume with polishing beads. After polishing, the powder was dried and then sorted using a vibrating sorting table to remove non-spherical beads. Then, 365.5 ml (volume measured using a graduated cylinder) of the polished bead powder was weighed (mass mO) and introduced into the chamber of a NETZSCH Alpha® Lab laboratory bead mill equipped with a ceramic grinding chamber (CeramC) and a ceramic stirring shaft (CeramZ), as well as an open, gridless, dynamic selection system with separate drive for separating the grinding beads (ZETA RS configuration).A suspension containing 1037 g of Nabalox® 684 alumina powder marketed by Nabaltec, with a median size D50 of 1 pm and 1555 ml of water is ground in recirculation at 2570 rotations per minute for 2 hours with an average flow rate of 20 l / h.

[0125] The wear of the beads is then evaluated by measuring the amount of tungsten, titanium, tantalum, niobium, vanadium, zirconium, and hafnium, expressed as tungsten carbide WC, titanium carbide TiC, tantalum carbide TaC, niobium carbide NbC, zirconium carbide ZrC, and hafnium carbide HfC, respectively, in the ground alumina powder. These amounts are measured by X-ray fluorescence on a bead obtained by melting a mixture of 5 g of lithium tetraborate and 500 mg of the ground alumina powder, said ground alumina powder having previously undergone calcination in air at 650°C for 24 hours. It is considered that said calcination has resulted in the oxidation of all elements from the wear of the powder of beads of the examples present in the ground alumina powder, and that said ground alumina powder does not contain carbon after said calcination.

[0126] Let P be the total quantity WC + TiC + TaC + NbC + ZrC + HfC, expressed as a mass percentage based on the mass of the ground alumina powder.

[0127] Wear, U, expressed as a percentage, is equal to 100 * {P / [(100-P) * 1037]} / mO.

[0128] Manufacturing protocol

[0129] The sintered beads of examples 1 to 3 were prepared from: - of a tungsten carbide powder comprising more than 99% WC tungsten carbide and having a median size of 0.7 pm for examples 1 to 3, - of a boron carbide powder, having an O content of 2.3%, a total carbon content of 21.8%, and a content of elements other than O, B and C less than 0.4%, and having a median size of 0.4 pm for example 1, - of a niobium carbide powder, for examples 2 and 3, obtained after grinding under the following conditions: an aqueous suspension containing 2400 g of niobium carbide powder marketed by the company HC Starck, having a median size D50 equal to 1.4 pm and 1720 ml of water is ground using ULTIMIL tungsten carbide balls marketed by the company Saint-Gobain Zirpro, having a median size equal to 2 pm, in a LabStar laboratory ball mill marketed by the company NETZSCH equipped with a grinding chamber and a NElast polymer stirring shaft, in recirculation at 4220 rotations per minute for 4 hours with a peristaltic pump speed of 104 rotations per minute.After grinding and drying, the niobium carbide powder has an O content of 1.9%, a total carbon content of 10.2%, a tungsten content of 14% and a content of elements other than O, Nb, W and C of less than 0.1%, and a median size of 0.4 pm, - of a sucrose (D+) powder marketed by the company Sigma-Aldrich. .

[0130] For each example, a mixture - of carbide powders, - of a sucrose powder (D+), - demineralized water, - of an aqueous solution of acetic acid with a concentration of 12 g / L - of an aqueous solution of poly(ethyleneimine) with an average molar mass by weight, Mw, of 750,000 and a concentration of 29% by mass, in the quantities shown in the following table 1, is stirred in a paddle mixer for 1 hour to obtain a suspension.

[0131] [Tables 1] Example 1 Example 2 Example 3 Tungsten carbide powder 25000 g 25000 g 25000 g Boron carbide powder 50 g - - Niobium carbide powder 0 773 g 1596 g Sucrose (D+) powder 50 g 200 g 200 g Demineralized water 4150 g 4150 g 4150 g Aqueous solution of acetic acid 1875 g 1875 g 1875 g Aqueous solution of poly(ethyleneimine) 290 g 290 g 290 g

[0132] For each example, the viscosity of the suspension is then adjusted within a range between 10 Pa.s and 25 Pa.s, measured using an Anton Paar ViscoQC-300R viscometer, with an RH5 spindle at a rotational speed of 5 rpm, said viscosity being adjusted using an aqueous solution of ammonia NH4OH with a mass concentration of 10%.

[0133] This suspension is then shaped into beads by atomization-drying in a GEA Minor Mobile atomizer, in a hot air stream with an inlet temperature of 300°C and an outlet temperature of 110°C.

[0134] The formed beads are collected and sintered at 2250°C for a holding time of 4 hours, under argon, with a temperature rise rate and a temperature fall rate of 300°C / h. After sintering, the sintered beads are sieved using a square mesh sieve with an opening of 10⁶ µm, and the particle size fraction corresponding to the particles passing through the square mesh sieve with an opening of 10⁶ µm is retained.

[0135] Results

[0136] The results obtained are summarized in the following table 2. [Table 2] Example 1 2 3 Chemical composition W 93 89.8 87.6 e, as a percentage by mass based on 1 Mo <0.1 <0.1 <0.1 C 6.3 6.6 6.5 a mass of the powder d Ti <0.1 <0.1 <0.1 e sintered beads Ta <0.1 <0.1 <0.1 Nb <0.1 3 5.3 V <0.1 <0.1 <0.1 Zr <0.1 <0.1 <0.1 O <0.1 <0.1 <0.1 Other elements <0.3 <0.3 <0.3 Of which O <0.1 <0.1 <0.1 Of which Co + Ni + Fe <0.05 <0.05 <0.05 Of which B 0.1 <0.01 <0.01 Content of crystal phases Metallic carbide(s) 92 100 100 crystalline, as a percentage by mass on the base Of which multiple carbide of Nb and W 0 7 12 Of which WC+W2C 92 93 88 of the mass of the phases Of which W2C <1 <1 <1 s crystallized of the sintered bead powder Other crystallized phases 8 0 0 Including WB 8 0 0 Other characteristics Apparent density (g / cm3) 15.5 15.1 14.6 Average grain size (pm) 11.8 1.6 1.3 Median sphericity of the powder beads 0.97 0.97 0.97 D50 of the powder beads (pm) 73 71 70 Relative density (%) 99.1 99.0 98.8 Break resistance Rc (%) 50 84 83 Wear U (%) 0.12 0.31 0.18

[0137] In examples 2 and 3, at least some of the niobium is present in the form of a carbide, in particular in the form of a multiple carbide of niobium and tungsten in an amount equal to 7% and 12%, respectively, as a percentage by mass on the basis of the mass of the crystallized phases.

[0138] The powder of balls of example 1, outside the invention, has a wear U equal to 0.12% and a break resistance equal to 50%.

[0139] The powder of example 2 has a wear U equal to 0.31% and a break resistance equal to 84%, greater than the break resistance of the powder of example 1 of 68%.

[0140] The powder of Example 3, according to the invention, exhibits a wear U of 0.18%, close to that of Example 1, and a break resistance of 83%, greater than the break resistance of the powder of Example 1 of 66%. This Example 3 illustrates a good compromise between break resistance and wear.

[0141] As is now clear, the invention provides a powder of metallic carbide(s) balls exhibiting both good wear resistance and improved break resistance.

[0142] Of course, the present invention is not limited to the embodiments described, which are provided by way of illustrative and non-limiting examples.

Claims

Demands

1. Sintered bead powder exhibiting: - a chemical composition such that, in mass percentages based on the mass of the powder of beads: - (77 - C4)% < W + Mo < (95.5 - C3)%, with Mo < 10%; - Cl% < C < C2%; - Ti, Ta, Nb, V, Zr, Hf such that Ti + Nb + V + Zr > 4.5% and / or Ta + Hf > 5%, and additive < 20.0%, the additive denoting Ti + Ta + Nb + V + Zr + Hf; - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr, Hf, or "other elements": < 3%; with : -C1 = 100*(C3 / C5), - C2 = 100*(C4 / C6), - C3 = k*C7, with k chosen from 0.5, 0.6, 0.7, 0.8 and 0.9, - C4 = k'*C7, with k' chosen from 1.2 and 1.1, - C5 = [m(W) + m(Mo) + m(Ti) + m(Ta) + m(Nb) + m(V) + m(Zr) + m(Hf) + C3], - C6 = [m(W) + m(Mo) + m(Ti) + m(Ta) + m(Nb) + m(V) + m(Zr) + m(Hf) + C4], - C7 = M(C)*[(m(W) / M(W)) + (m(Mo) / M(Mo)) + (m(Ti) / M(Ti)) + (m(Ta) / M(Ta)) + (m(Nb) / M(Nb)) + (m(V) / M(V)) + (m(Zr) / M(Zr)) + (m(Hf) / M(Hf))], m(W), m(Mo), m(Ti), m(Ta), m(Nb), m(V), m(Zr) and m(Hf) being the mass, in grams, of the elements W, Mo, Ti, Ta, Nb, V, Zr and Hf, respectively, and M(W), M(Mo), M(Ti), M(Ta), M(Nb), M(V), M(Zr), M(Hf) and M(C) being the molar mass, in g / mol, of the elements W, Mo, Ti, Ta, Nb, V, Zr, Hf and C, respectively; - a crystallographic composition such that more than 60% of the crystallized phases present in said powder of beads are in the form of metallic carbide(s), as a percentage by mass based on the mass of the crystallized phases, said crystallized phases including at least one carbide of at least one element among Ti, Ta, Nb, V, Zr and Hf.

2. Sintered bead powder according to the preceding claim, wherein the content of the crystallized phases present in the form of metallic carbide(s) is greater than 80%, as a percentage by mass based on the mass of the crystallized phases.

3. Sintered bead powder according to any one of the preceding claims, wherein said crystallographic composition is such that more than 50%, by mass, of at least one of the elements Ti, Ta, Nb, V, Zr and Hf, is in the form of carbide(s).

4. Sintered bead powder according to any one of the preceding claims, wherein said chemical composition is such that 5.0% < Ti + Ta + Nb + V + Zr + Hf < 15.0%.

5. Sintered bead powder according to the preceding claim, wherein said chemical composition is such that the additive is Nb and Nb < 9.7%.

6. Sintered bead powder according to claim 4, wherein said chemical composition is such that Ti + Ta + Nb + V + Zr + Hf < 10.0%.

7. Powder according to any one of the preceding claims, wherein C3 = 0.5*C7 and C4 = 1.2*C7.

8. Sintered bead powder according to any one of claims 1 to 6, wherein C3 = 0.8*C7 and / or C4 = 1.1*C7.

9. Sintered bead powder according to any one of the preceding claims, wherein the oxygen O content is less than or equal to 0.85%.

10. Sintered bead powder according to the preceding claim, wherein the oxygen O content is less than or equal to 0.1%.

11. Sintered bead powder according to any one of the preceding claims, wherein the average grain size of the sintered beads is greater than or equal to 0.1 pm and less than or equal to 4 pm.

12. Sintered bead powder according to any one of the preceding claims having an apparent density greater than or equal to 14.3 g / cm3

13. Sintered bead powder according to any one of the preceding claims, wherein said chemical composition is such that: - w > 64% and W < 90%, and / or - C > 3% and C < 13.5%, and / or - Co < 0.3%, and / or - Ni < 0.3%, and / or - Fe < 0.3%, and / or - Co + Ni + Fe < 0.3%, and / or - Mo > 3% and Mo < 9%, and / or - elements other than W, Mo, C, Ti, Ta, Nb, V, Zret Hf<2.5%.

14. Sintered bead powder according to the preceding claim, wherein said chemical composition is such that: - W > 73% and W < 89%, and / or - C < 9%, and / or - Co + Ni + Fe < 0.05%, and / or - Mo > 5% and Mo < 7%, and / or - elements other than W, Mo, C, Ti, Ta, Nb, V, Zr, Hf < 1%.

15. Sintered bead powder according to any one of the preceding claims, having a ratio (D90 - Di0) / D50 of less than 0.5, D50, Dio, and D90 denoting the bead sizes corresponding to the percentages equal to 50%, 10%, and 90% by mass respectively, on the cumulative particle size distribution curve of the powder's bead sizes, said bead sizes being ranked in ascending order.

16. Sintered bead powder according to any one of the preceding claims, having a median size D50 less than 1.8 mm and greater than 10 pm.

17. Suspension comprising a powder of sintered beads according to any one of the preceding claims.

18. Particulate mixture comprising more than 90% by mass of a powder of beads according to any one of claims 1 to 16.

19. A manufacturing process comprising the following steps: a) preparing a starting charge so that the ball powder obtained at the end of step c) is a ball powder according to any one of claims 1 to 16, b) shaping the starting charge into a raw ball powder, c) sintering at a temperature above 1700°C so as to obtain a sintered ball powder.

20. A process according to the preceding claim, wherein the sintering temperature is greater than 1800°C.

21. A method according to any one of the two immediately preceding claims, wherein the sintering is carried out at atmospheric pressure.

22. A method according to any one of the three immediately preceding claims, wherein in step a), the load of

23.

24. starting charge comprises a particulate mixture consisting of WC powder and one or more powders of titanium carbide, tantalum carbide, niobium carbide, vanadium carbide, zirconium carbide, hafnium carbide, and optionally of carbon powder and / or molybdenum carbide powder and / or tungsten oxide powder, said powders being able to be replaced, at least partially, by precursor powders, introduced in equivalent quantities, the median size of all the particles of said powders, preferably the median size of each said powder being less than 2 pm. Method according to the immediately preceding claim, wherein the median size of all the particles of said powders in the starting charge, preferably the median size of each said powder in the starting charge is less than 1 pm. A process comprising using, in a grinding, wet dispersion or surface treatment application, a sintered bead powder according to any one of claims 1 to 16 or a particulate mixture according to claim 18.

Citation Information

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