PVD bond coat

The PVD coating process for superalloys addresses the limitations of existing technologies by forming a graded oxide layer through controlled oxygen deposition, enhancing the bond coat's stability and oxidation resistance for high-temperature applications.

JP7749626B2Active Publication Date: 2025-10-06OERLIKON SURFACE SOLUTIONS AG PFAFFIKON
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Patent Information

Application Number
JP2023136360
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-04-21
Filing Date
2023-08-24
Publication Date
2025-10-06
Estimated Expiration
2038-04-19

AI Technical Summary

Technical Problem

Existing coating technologies for superalloys, such as those used in gas turbines, are complex, costly, and unable to provide the necessary properties for high-temperature applications, particularly in terms of oxidation and corrosion resistance, and there is a need for improved bond coat designs that can form stable interfaces with superalloy substrates.

Method used

A PVD coating process that involves using a superalloy target as a cathode, applying a substrate bias, and depositing a graded interface and barrier layer with controlled oxygen content through vacuum arc deposition, allowing for the formation of a stable oxide layer that enhances adhesion and oxidation resistance.

Benefits of technology

The process results in a bond coat with improved mechanical stability and oxidation resistance, providing a robust interface with the superalloy substrate and enabling higher operating temperatures without layer delamination.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To improve a conventional coating in terms of a comprehensive performance for overcoming a limit and an impossibility of a coating system of a current technology.SOLUTION: A superalloy work piece includes: a superalloy substrate; an interlayer (IF-1) directly on a surface of the superalloy substrate, of which composition is substantially the same as that of a superalloy composition; a transition layer (TL) of the superalloy that is substantially the same as the superalloy and an oxide of the superalloy or a different metal composition and a different metal oxide, an oxygen content of the transition layer increasing from IF-1; and a barrier layer (IF-2) of the superalloy oxide or different metal oxide.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to the field of coated superalloy (SA) materials, in particular to a coating method according to claim 1, a workpiece according to claim 12 and a method for manufacturing a workpiece according to claim 26. [Background technology]

[0002] Superalloys exhibit several important properties, including excellent mechanical strength, resistance to thermal creep deformation, good surface stability, and corrosion or oxidation resistance. The crystal structure is usually face-centered cubic austenite. Examples of such alloys are Hastelloy, Inconel, Waspaloy, Rene alloy, Haynes alloy, Incoloy, MP98T, TMS alloy, and CMSX single crystal alloy. Superalloys derive their high-temperature strength from solid-solution strengthening. The key strengthening mechanism is precipitation strengthening, which involves the formation of secondary phase precipitates such as gamma prime and carbides. Oxidation or corrosion resistance is provided by elements such as aluminum and chromium. There are essentially two types of superalloys: Co-base superalloys, which have cobalt as the major metallic component, e.g., C, Cr, W, Ni, Ti, Al, Ir, and Ta as alloying elements, and the other, which is the most important class to date, Ni-base superalloys, which have nickel as the major metallic component, e.g., Cr, Fe, Co, Mo, W, Ta, Al, Ti, Zr, Nb, Re, Y, V, C, B, or Hf are just a few examples of alloying additions used in this group of superalloys. One focus of the present invention is to improve the thermal and wear properties of superalloys in general, and in particular for applications such as high- and low-pressure turbine components for aerospace and industrial gas turbine (IGT) applications, and to this end, some successful experiments have been carried out with Ni-base superalloys such as PWA 1483 and CM 247-DS. Furthermore, aluminide-based alloys as TiAl-based superalloys such as γ-TiAl, or further aluminide-forming high temperature and high wear resistant alloys including Ni-aluminides as NiAl or NiAl3, also known as Raney nickel, Fe-aluminides, Hf-aluminides, Cr-aluminides, Nb-aluminides such as NbAl or NbAl3, Ta-aluminides such as TaAl or TaAl3, Pt-aluminides, Zr-aluminides, etc. are understood herein as superalloy compositions.

[0003] Spark plasma sintering (SPS) is a powder metallurgical manufacturing method in which a powder composition is pressed, preferably under vacuum, in a graphite die between two graphite punches, and a DC current, or optionally a pulsed DC current, is simultaneously applied between the two punches to assist the shaping process of the workpiece being manufactured (in this case, the target). The DC current or pulsed DC current passes directly through the graphite die and the powder compact, in the case of conductive samples such as superalloys. Heat is therefore generated internally, in contrast to conventional hot pressing, where heat is provided by an external heating element. This allows for near-theoretical density to be reached at lower sintering temperatures compared to conventional sintering techniques, and facilitates very high heating or cooling rates (up to 1000 K / min), making the sintering process typically very fast (within minutes). The typical speed of the process ensures the potential for densifying nanosized or nanostructured powders while avoiding the coarsening associated with standard densification routes. For example, in such a procedure, a series of 3-millisecond DC current pulses with an intensity of up to 1500 A and a low voltage of 25 V can be passed directly through the powder sample and press tool.

[0004] Research into materials used in high-temperature, oxidizing, and corrosive environments is an ongoing effort for applications in aircraft, gas turbines, and combustion engines. Despite differences in ultimate applications, designs, and dimensions, these industries share the same goal: continuous improvement of engine efficiency to reduce fuel consumption and comply with ever-stricter regulations on CO2 emissions. This means operating engines at higher temperatures, resulting in an increased need for more robust, stable, and resistant substrates to operate in the harsh environments of various sections of turbine engines. Even with the use of cutting-edge materials such as superalloys and composites, coating technology cannot be avoided when it comes to improving component life by enhancing oxidation, wear, and corrosion resistance at high operating temperatures. Despite the fact that coating technologies introduced decades ago are well established and are continually improved through the use of new processes and new coating materials, the coating systems manufactured on engine components are becoming increasingly complex. Therefore, for example, issues of layer-to-layer interaction, surface preparation methods, heat treatment, and diffusion are becoming increasingly important. Furthermore, the requirements for next-generation engines are extremely challenging, as these existing technologies have limitations and are unable to provide the necessary properties. A typical coating system for a gas turbine generally consists of several layers: a bond coat, a thermally grown oxide, and a top ceramic layer. The bond coat used to protect the turbine from oxidation is usually produced by a diffusion process for PtAl, electron beam physical vapor deposition (EB-PVD) for MCrAlY, or low-pressure plasma spraying (LPPS). The bond coat, PLANSEE, and the top ceramic layer form a so-called thermal barrier coating (TBC). The top ceramic coating is produced by atmospheric plasma spraying (APS) as a porous coating or by EB-PVD as a columnar coating. The bond coat design is challenging because it must achieve two high-performance interfaces: one that ensures mechanical stability over a wide temperature range for the superalloy substrate, and the other that provides an excellent oxygen barrier for the porous oxide.This suggests the need not only for rational design of the bond coat, but also for high reproducibility in the manufacture of the coating system (stack of layers). [Prior art documents] [Non-patent literature]

[0005] [Non-Patent Document 1] Journal of Applied Crystallography 42 (2009) 726-729 Summary of the Invention [Problem to be solved by the invention]

[0006] It is therefore an object of the present invention to improve and simplify known coating processes for superalloys by avoiding the drawbacks of state of the art methods, such as the use of expensive coating materials such as PtAl, and the use of processes such as EB-PVD, which are complex and cumbersome when coatings composed of elements with different vapor pressures need to be applied. A further object of the present invention is to improve existing coatings in terms of overall performance, for example, to overcome limitations and inability of state of the art coating systems. [Means for solving the problem]

[0007] Therefore, the object of the present invention is to providing a superalloy (SA) substrate to a PVD coating unit; - providing a superalloy target as a cathode of an arc evaporation source of a coating unit; applying a substrate bias to the substrate; - depositing an interface layer (IF-1) of superalloy on the surface of the substrate by vacuum arc deposition from a superalloy target; - providing a reactive gas feed comprising oxygen to the coating unit; - depositing by vacuum arc deposition a transition layer (TL) of the same superalloy or of a different metal composition, wherein the oxygen content of the layer is varied from (IF-1) towards the surface by varying the partial pressure of the reactive gas in the process atmosphere, for example by increasing the oxygen content of the layer from (IF-1) towards the surface by increasing and / or varying the partial pressure of the reactive gas; - depositing, following the transition layer by vacuum arc deposition in a process atmosphere similar to that of the transition layer (TL) but with a higher concentration of reactive gas, a barrier layer (IF-2) containing a higher amount of superalloy oxide or a different metal oxide composition than in the transition layer; The present invention discloses a coating method comprising:

[0008] The oxygen content in the transition layer can be varied by increasing / changing the flow of the oxygen-containing reactive gas in a step or ramp and / or by varying the power of the arc source. Typically, oxygen (O2) gas is used as the reactive gas, although any other volatile oxygen-containing compound, such as ozone (O3), can also be used.

[0009] Such a coating process can be carried out by using a superalloy target having essentially the same composition as the superalloy. The powder composition for producing the target is then selected according to the composition of the superalloy to be coated, resulting in a target having essentially the same composition as the superalloy itself. Essentially the same composition in this context for a target means that, when produced by SPS or other powder metallurgical methods, the major elements constituting more than about 9% by weight of the powder mixture, such as Ni, Co, and Cr in PWA1483, vary by no more than ±20%, preferably no more than ±10%, from the original powder composition due to the effects of manufacturing and / or EDX measurements, for example. The same applies to targets used in reactive or non-reactive processes, whereby the difference from the original powder composition may be slightly larger for a single major element. The same applies to the meaning of the term "essentially the same composition as the interface layer (IF-1)." Among other things, Ni-, Al-, C-, Co-, Cr-, Mo-, Ta-, Ti-, and W powders were used to produce targets for the cathodic vacuum arc coating described below.

[0010] Alternatively, the superalloy solid can be milled to produce a suitable powder which can then be formed into a target by SPS or another powder metallurgy process.

[0011] In the most basic process, the same superalloy target is used to deposit all layers of the bond coat, and oxygen is used as the only process gas.

[0012] Furthermore, in terms of process stability, e.g., low droplet formation, perfectly matched IF-1 layer construction, e.g., with regard to crystallographic coherence and epitaxy onto the substrate, it proves beneficial to provide targets with predominantly the same crystalline structure, which in the case of Ni- or Co-based superalloys means about 80-99% fcc crystalline target structure.

[0013] In a further embodiment of the invention, at least one further target having a further metal composition is provided for depositing a transition layer of a different metal composition and / or a barrier layer of a different metal oxide composition (IF-2). This can be done by providing an additional elemental or composite target to the coating unit. This can be done either by co-arc discharge with the superalloy target and / or by stand-alone arc discharge of at least one target of a further metal composition, whereby a transition phase using both types of targets for depositing the respective coatings is preferred. The composition of the target of the further metal composition is thereby selected such that a layer of a different metal composition and / or a different metal oxide composition can be deposited from the target of the further metal composition alone or by co-arc discharge with the superalloy target.

[0014] Alternatively, or in combination with the use of targets of the aforementioned additional metal composition, a gaseous precursor containing the additional metal to be deposited can be introduced into the PVD coating unit in parallel with the vacuum arc evaporation of the superalloy target to deposit a transition layer of a different metal composition and / or a barrier layer of a different metal oxide composition (IF-2). Such precursors can be introduced into the coating apparatus using the inert or reactive gas supply line or in a separate line.

[0015] It should be noted that, despite the fact that the ratios of the major metal components in at least the transition layer and the major metal components in IF-2 are typically approximately the same, the ratio of any metal can be varied stepwise or ramped between or even within each layer, for example, by simultaneously arcing two or more targets of different metal compositions and varying the respective power inputs of one or both targets, or by varying the flow rates of one or more gaseous precursors, or by applying a combination of each of the aforementioned methods. Such variations in metal content are particularly applicable when forming oxides with oxidation barrier properties, which are typical of TBC designs formed by high-temperature oxidation of a high-aluminum-containing surface prior to the deposition of a porous oxide. One of the goals of the new PVD bond coat design described here is to replace high-temperature oxidation with oxide formation in a PVD in-situ process.

[0016] In a further embodiment of the invention, the interface layer (IF-1) is deposited with a crystalline structure that is compatible with that of the superalloy substrate, and even with an epitaxially grown structure that reflects the crystalline structure of the respective surface location of the superalloy SA. Such a compatible, and in particular epitaxially grown, crystalline structure imparted to the surface of polycrystalline, directionally solidified (DS) or single crystal (SX) SA has been shown to provide superior properties of the overall coating in terms of oxidation resistance and adhesion.

[0017] Preferably, the superalloy oxide and / or oxide of a different metal composition of the barrier layer (IF-2) is deposited in a reactive gas atmosphere with an excess of oxygen. The ratio of oxygen atoms to metal atoms (=excess) can be at least 1.5, or even at least 5, in order to form thermodynamically stable oxides, in particular the most stable oxides, from the superalloy metal and / or the different metal composition evaporated during the deposition of the barrier layer (IF-2). This allows the formation of a barrier layer that contains essentially stoichiometric oxides in the thermodynamically most stable phase for most or all metal elements and / or superalloys or alloys of different metal compositions. Such a barrier layer (IF-2) exhibits a dense columnar structure that is very different from the polycrystalline structure with an almost random grain orientation of, for example, the interface layer (IF-1) deposited on the surface of a polycrystalline SA.

[0018] In contrast to the barrier layer, the interface layer can be deposited with pure metal vapor without a process gas, or an inert gas supply can be provided to the coating unit to deposit at least one of the interface layer (IF-1), transition layer, and barrier layer (IF-2) in an inert gas-containing process atmosphere.

[0019] Regarding important coating parameters such as process pressure, arc current and substrate bias, the following should be noted.

[0020] The process pressure range used for the deposition of the interface (IF-1) was 0.1 mPa to 100 mPa without the use of inert gas. With the addition of inert gas, the pressure increased to approximately 0.1 Pa to 5 Pa. Further process parameters for the interface layer were as follows: Arc current for superalloys: 80A~250A, Substrate bias: -20V to -800VDC and bipolar pulse bias.

[0021] The process pressure range used for depositing the transition layer (TL) in oxygen reactive gas was 0.1 Pa to 5 Pa, with or without the addition of inert gas. Typically, the process pressure during the deposition of the transition layer increased from a very low process pressure without reactive gas, used for the deposition of the interface (IF-1, see above), to a process pressure for depositing the barrier layer (IF-2) with a large amount of reactive gas (see below). Further process parameters for the transition layer were as follows: Arc current for superalloys: 80A~200A, Arc current targeting further metal compositions: 60A-200A; Substrate bias: -20V to -800DC, and unipolar and bipolar pulses.

[0022] The process pressure range used for the deposition of the barrier layer (IF-2) was 0.1 Pa to 8 Pa without the use of inert gas. With the addition of inert gas, the pressure increased to about 0.2 Pa to 10 Pa. Further process parameters for the interface layer were as follows: Arc current targeting superalloys: 60A~200A; Arc current targeting further metal compositions: 60A-220A; Substrate bias: -20V to -600VDC, preferably unipolar or bipolar pulse.

[0023] The composition of the targets of the additional metal composition is selected so that layers of different metal compositions and / or different metal oxide compositions can be deposited from at least one target of the additional metal composition alone or by co-arc discharge with at least one superalloy target. Alternatively, or additionally, a precursor can be used that includes at least one of the additional metals to be deposited in the transition and / or barrier layers.

[0024] It has proven beneficial for this method to use superalloy targets produced by powder metallurgical processes, examples of such processes being hot pressing, hot isostatic pressing (HIP) and especially spark plasma sintering (SPS).

[0025] In a further embodiment of the present invention, in a further process step a further suitable porous ceramic top layer is applied to the surface of the barrier layer (IF-2).

[0026] Such a top layer can be applied by thermal spraying techniques such as, for example, detonation spraying, wire arc spraying, flame spraying, high velocity oxygen fuel coating spraying (HVOF), high velocity air fuel (HVAF), hot water spraying, cold spraying, and preferably plasma spraying or vacuum plasma spraying.

[0027] The present invention also has the object of providing a method for producing a coated superalloy workpiece, comprising the coating method described above. Such a workpiece may be, for example, any component used in the high temperature zone of an industrial gas turbine or aircraft engine, such as a turbine blade, vane, etc.

[0028] A further object of the present invention is to -A superalloy substrate; an interface layer (IF-1) of essentially the same superalloy composition directly on the surface of the superalloy substrate, followed by a transition layer (TL) of essentially the same superalloy and superalloy oxide, or a different metal composition and different metal oxide, wherein the oxygen content of the transition layer is increased from IF-1; a barrier layer (IF-2) of a superalloy oxide or a different metal oxide; and (c) providing a superalloy workpiece comprising:

[0029] This allows IF-1 to have a crystal structure that is compatible with, or even epitaxial to, the crystal structure of the surface of the superalloy substrate.

[0030] The oxygen content of the transition layer may increase stepwise or gradually from IF-1 to IF-2.

[0031] The different metal compositions in the transition layer can differ from essentially the same superalloy composition by at least one additional element. Similarly, the metal compositions of the different metal oxides in the barrier layer can differ by at least one additional metal present in oxide form.

[0032] The at least one additional element can have an electronegativity of 1.4 or less according to Pauling. Such a low electronegativity is typically the case for metals that have a high likelihood of bonding with oxygen, for example, when such metals are dispersed in a solid metal matrix with a low tendency to form oxides. Such an additional element can be at least one of the lanthanides, preferably La, Er, or Yb. Alternatively, the different metal composition can differ from the superalloy composition in the concentration of at least one element or in the concentration and / or addition of at least one of the following additional elements: Mg, Al, Cr, Er, Y, Zr, La, Hf, Si.

[0033] At least a portion of the additional elements may be oxidized and deposited within the grains as solid solutions (SS) and / or along the grain boundaries of the transition layer (TL) and / or barrier layer (IF-2) as dispersion strengthening oxides (ODS).

[0034] It is known that metals with low electronegativity, such as alkali metals, alkaline earth metals, lanthanides, actinides, and some metals from groups 3 and 4 (transition metals) of the periodic table of elements, tend to form solid solutions (SS) within the grains of the main solid matrix or to form oxide dispersion strengthened (ODS) solids when such metals are located along the grain boundaries of a polycrystalline solid and oxidized by the diffusion of oxygen atoms. The use of such thermodynamically stable materials (SS and / or ODS) is known to strengthen such alloys, e.g., superalloys, through the oxide dispersion hardening process, by adding only small amounts of oxide-forming elements (approximately 2% by volume). However, this is the first time that a similar effect has been demonstrated in a coating when the coating according to the present invention is deposited. The effect of SS and / or ODS strengthening by partially oxidizing a superalloy in the transition layer has been demonstrated.

[0035] The concentration of at least one of the metal element and silicon in the transition layer can be adjusted or increased stepwise or gradually from IF-1 to IF-2.

[0036] The different metal oxides are the following oxides: Aluminum oxide, aluminum-chromium oxide, erbium oxide, yttrium oxide, yttrium-aluminum oxide, magnesium-aluminum oxide, aluminum-silicon oxide, hafnium-silicon oxide The composition may comprise at least one of the following or a mixture thereof:

[0037] Thus, the aluminum oxide or aluminum-chromium oxide may be Al2O3 or (AlCr)2O3 with a corundum crystal structure, and the erbium oxide or yttrium oxide may be Er2O3 or Y2O3 with a cubic crystal structure, and more than 55%, preferably more than 75%, of the respective crystal structure may be the respective corundum or cubic crystal structure.

[0038] The different metal oxides may include aluminum-containing oxides, and the TL and / or IF-2 layers may include aluminum droplets or droplets with a high content of metallic aluminum.

[0039] For example, in the case of an oxide comprising aluminium-chromium oxide, with a corundum structure and / or dispersed as SS or ODS in the transition and / or barrier layer, the layer may comprise droplets with a high content of metallic chromium.

[0040] For example, for IGT and aeronautical applications, a ceramic top layer can be applied as a termination layer on the surface of the top barrier layer (IF-2) of the bond coat. Such a top layer can be made with a porous structure to better accommodate thermal expansion in high temperature applications.

[0041] Next -Interface layer (IF-1) -Transition Layer (TL) and -Barrier layer (IF-2) For a bond coat consisting of successive layers of Any of the following coating thicknesses can be selected: 1 μm ≦ d bond ≦200μm Interface layer thickness (IF-1): 0.01μm≦d IF-1 ≦20μm Transition layer (TL) thickness: 0.1μm≦d TL ≦100μm Barrier layer (IF-2) thickness: 1 μm ≦ d IF-2 ≦50μm

[0042] The thickness of the subsequent thermal sprayed ceramic top layer for aeronautical or IGT applications was selected from 10 μm to 3 mm and showed excellent adhesion and wear resistance.

[0043] The present invention will be further described below with reference to examples and drawings. It should be noted that any combination of the embodiments, modifications or examples of the present invention, even if not explicitly mentioned in the present specification or claims, is considered to be part of the present invention by those skilled in the art, unless they are immediately recognized as non-functional by those skilled in the art.

[0044] In the following, the invention will be explained in an exemplary manner with the aid of experimental details and figures. [Brief explanation of the drawings]

[0045] [Figure 1] FIG. 1 illustrates the concept of layers and an example of a bond coat. [Figure 2] FIG. 1 shows XRD patterns of virgin and engineered targets. [Figure 3] FIG. 1 shows a micrograph and EBSD of the SA-T surface. [Figure 4] This is a TEM image of the SA-T surface. [Figure 5] FIG. 1 shows EDX mapping. [Figure 6] Bright field and dark field micrographs, line scans. [Figure 7] FIG. 3 shows an XRD similar to FIG. 2 on sapphire. [Figure 8] Layer stack: STEM bright field, TKD, quality map. [Figure 9] FIG. 1 shows a TEM micrograph of the interface. DETAILED DESCRIPTION OF THE INVENTION

[0046] The present invention introduces the layer concept depicted in Figure 1a. This approach is based on the formation of the following layers: a "substrate-identical" interface layer (IF-1) on a bulk superalloy substrate (SA-S), followed by a transition layer (gradient layer) from IF-1 to a partially or fully oxidized coating, terminating in a second interface layer (also referred to herein as a barrier layer) (IF-2). This IF-2 can be an oxygen diffusion barrier and / or nucleation layer for porous oxides, as utilized in the design of TBCs. IF-2 can also be a mixture of oxides formed during the oxidation of ODS coatings or superalloy vapors. The entire layer stack is synthesized in one process under vacuum conditions typical of physical vapor deposition (PVD). Non-reactive and reactive arc evaporation are utilized to generate this coating design through in-situ processing.

[0047] An example of a basic bond coat on a polycrystalline superalloy is shown in FIG. 1b, which includes an interface very similar or identical to the superalloy base and a transition layer that is graded in terms of oxygen concentration, where graded means that the oxygen content increases from the interface toward the barrier layer, which is an oxidized superalloy according to this example.

[0048] The substrates and targets were produced from powders with the chemical composition listed in the second column of Table 1. This composition corresponds to the specifications of the superalloy PWA1483. However, the substrates and targets were produced by spark plasma sintering at approximately 1200 °C and 30 MPa (PLANSEE Composite Materials GmbH). Therefore, this material may differ from the industrially used bulk material produced by melting and casting. In this regard, it is important to note the following: The average grain size of the structure is less than 50 μm, preferably less than 20 μm. Powder metallurgy production preferably starts with alloy powders rather than a mixture of elemental powders. -This allows the synthesis of the phases to occur during the production of the powder rather than during the SPS process. -Such produced targets have no texture, i.e. they are characterized by random grain orientation (e.g. measured by EBSD), which is very different from targets produced by melt metallurgy. The porosity of the structure produced by the SPS process is controlled to be less than 10%, or preferably less than 5%. The SPS process is carried out in the temperature range of 1000 to 1350°C, preferably in the temperature range of 1100 to 1300°C, without the formation of a liquid phase.

[0049] Considering this, this material is further named superalloy substrate (SA-S) when used as a substrate and superalloy target (SA-T) when used as an evaporation target. Small disks (φ60 mm) were fabricated from this material and machined to the size (30 mm × 10 mm × 5 mm) to form SA-S. SA-T disks (φ150 mm) were fabricated using the same process.

[0050] Table 2 lists the main process parameters utilized in the cathodic arc evaporation using SA-T as the cathode in the examples described below. Prior to deposition, the process chamber was evacuated to less than 0.02 Pa, and standard heating and etching steps were performed to ensure sufficient coating adhesion to the substrate. A net deposition time of 45 min was selected for the non-reactive process (metal vapor only) and extended to 240 min for the reactive process in oxygen. This is due to the reduced evaporation rate of SA-T in pure oxygen reactive gas, resulting in coating thicknesses of 1.5 μm (reactive) and 2.2 μm (non-reactive), respectively. The cathode was operated at a DC arc current of 140 A using an INNOVA batch-type manufacturing system from Oerlikon Surface Solutions AG, with either metal vapor only or an 800 sccm oxygen gas flow (reactive process). SA-S and sapphire substrates were coated at a substrate temperature of approximately 550 °C. Only one arc source was used for deposition. A symmetric bipolar bias voltage of 40 V with a frequency of 25 kHz and a negative pulse length of 36 μsec and a positive pulse length of 4 μsec was applied to the substrate during the oxygen treatment.

[0051] The target surfaces were analyzed with a LEO 1530 scanning electron microscope (SEM). The chemical compositions of SA-T and SA-S were measured by energy dispersive X-ray spectroscopy (EDX) in the SEM.

[0052] XRD measurements of polished slices of polycrystalline target material were performed on a Bruker D8 Davinci diffractometer equipped with a Göbel mirror to generate a parallel beam and a LynxEye 1D detector using Cu-Kα radiation. Measurements were performed in 2θ / ω mode from 5 to 140°. Phase analysis was performed using Bruker's Diffrac.Eva V4.1 software in combination with the Crystal Open Database (COD), an open-access collection of crystal structures published in the Journal of Applied Crystallography 42 (2009) 726-729.

[0053] Conventional electron backscatter diffraction (EBSD) analysis was performed on the SA-T surface using a Tescan dual FIB FEG-SEM Lyra 3 with a Digiview IV EDAX camera. An accelerating voltage of 20 kV and an emission current of 5 nA were used. Further, transmission EBSD or Transmission Kikuchi Diffraction (TKD) was performed on a lift-out specimen approximately 100 nm thick mounted in a holder with a 20° pretilt angle relative to the pole piece at a 3 mm working distance. Beam conditions were 30 kV and 5 nA. Chemical segregation was analyzed by ion channeling contrast imaging performed using Ga ions at 30 kV and 1.5 pA. The lift-out lamellae were finally analyzed using a JEOL JEM 2200 fs transmission electron microscope (TEM) equipped with an EDAX EDS system.

[0054] Analysis of unused targets (cathode) The chemical composition of SA-T fabricated by spark plasma sintering was investigated by EDX. Quantitative analysis is difficult due to the large number of elements analyzed and the varying sensitivity of the method. However, the similarity of the materials (except for C) allows for qualitative comparison. Table 1 presents the results for the virgin surface of the fabricated target, with the values ​​for the total elemental composition in the third column and the values ​​for the difference (Δ) relative to the powder composition in the fourth column. Except for carbon and tantalum, the composition closely matches the original powder. The crystal structure of the virgin target surface, obtained by XRD analysis, was compared with that of the target surface after arc operation in a non-reactive process. Figure 2 shows the 2θ / ω scan. The XRD pattern of the virgin target (dotted line) exhibits several major peaks that can be indexed as an fcc cubic (Fm-3m) structure with a = 3.59 Å. The diffraction patterns observed for the various elements constituting the superalloy (Table 1) are consistent with this cubic lattice. In addition to the individual elements, Cr2Ni3, Al 2.6 Ni 10.7 Ta 0.7 , Ni 0.9 Ta 0.1 , Ni 17 W3, Co 0.87 W 0.13 , Ni 3.28 Ti 0.72 , Ni 0.85 W 0.15These peaks can be indexed to various intermetallic compounds, such as CrNi or CrNi, and can be considered potential candidates for the observed fcc phase. Peaks with intensities less than 1% are also observed in the XRD pattern of the virgin target surface. They may belong to the XRD pattern of tantalum oxide phases formed as a result of surface oxidation. The peaks in the XRD pattern for the engineered target (solid line) reveal a fcc cubic (Fm-3m) phase similar to that observed on the virgin target surface. However, the peaks for the engineered target are slightly shifted toward higher angles, indicating a decrease in the unit cell parameter a from 3.59 Å for the virgin target to 3.58 Å for the engineered target. At the same time, the peaks for the engineered target are narrower than those for the virgin target, which may be due to a recrystallization process on the target surface, resulting in the formation of larger crystals. The assumption of the presence of different intermetallic compounds from X-ray diffraction analysis is consistent with the results of TEM measurements. It has been confirmed that these superalloy materials are indeed composed of different intermetallic compounds (see below).

[0055] A micrograph of the SA-T surface obtained from SEM with backscattered electrons using a beam voltage of 20 kV is shown in Figure 3a. The contrast in the backscattered image is primarily due to grain orientation. This is verified by the corresponding EBSD crystal orientation map of the investigated surface, shown in the black-and-white (bw) version in Figure 3b. EBSD analysis revealed 88% high-angle and 12% low-angle grain boundaries, 7% Σ3 twin (60° at (111)) grain boundaries, and an average grain size of (5.9 ± 3.1) μm. The white dots observed in the backscattered image in Figure 3a were identified by TEM as titanium- and tantalum-rich precipitates. Bright-field and dark-field scanning transmission electron microscope images in Figures 4a and 4b, respectively, show enlarged cross-sections of different grains. An EDX mapping of this detail is shown in Figure 5. This mapping reveals that Cr (Figure 5b below), Co (Figure 5c), and Mo (Figure 5g) also segregate together within the grains. The same is true for Ni (Fig. 5a), Al (Fig. 5h), Ti (Fig. 5e), and Ta (Fig. 5d). Furthermore, the mapping suggests that the precipitates consist mainly of Ta and Ti.

[0056] As previously mentioned, XRD patterns obtained from the surfaces of as-manufactured and engineered targets can be indexed to fcc phases, which could potentially represent different intermetallic compounds (Figure 2). This assumption is supported by STEM studies, in which chemical segregation within and between grains was observed. Figure 6 shows example bright-field (6a) and dark-field (6b) micrographs of a transition across two grain boundaries. The arrow in Figure 6a indicates the location where the EDX line scan shown in Figure 6c was performed. The qualitative distribution of only the dominant elements is plotted, which varies significantly between the two grains studied. Ni / Al and Co / Cr segregation is observed, in good agreement with the mapping shown in Figure 5. This is true for many similar line scans, indicating the presence of multiple fcc phases with very similar lattice parameters.

[0057] Analysis of the targets indicates that the spark plasma sintering process produces target materials with polycrystalline structures with near-random grain orientation. Furthermore, analysis demonstrates the presence of different intermetallic phases with similar lattice parameters and precipitates in the produced materials.

[0058] Analysis of manipulated targets In the next step, the as-prepared target was used as the cathode and evaporated by arc. Evaporation was carried out under the conditions listed in Table 2. In the non-reactive process, no additional gas was used during evaporation. This approach foregoes the possibility of reducing droplet contamination of the deposited coating due to multiple scattering with gas atoms, but maintains a higher degree of ionization and higher kinetic energy of the metal vapor, which favors condensation of the coating at higher energies. The reactive process was carried out with oxygen alone. The oxygen flow value was selected to ensure a ratio of oxygen to evaporated metal atoms of approximately 4–5, resulting in the formation of IF-2 (an oxidized superalloy layer), which results in nearly complete oxidation of the coating. The chemical compositions of the targets after non-reactive process A and reactive process B were measured by EDX and are listed in Table 1 (columns 5–8), along with the difference (Δ) relative to the original powder composition. Analysis of the target surface shows a slight decrease in Al and Cr from the non-reactive to reactive process, but no significant changes in the composition of the other target elements. The XRD pattern of the target surface after arc operation in non-reactive mode is shown in Figure 2 (solid line). Compared to the virgin target (dotted line), the peaks of the engineered target are narrower and shifted toward higher angles. The peaks can also be assigned to an fcc cubic phase (Fm-3m). The average unit cell of the engineered target is slightly smaller, with the lattice constant decreasing from 3.584 Å (before engineering) to 3.568 Å (after engineering), and the decrease in full width at half maximum (FWHM) indicates a recrystallization process on the target surface.

[0059] Coating Synthesis Using the parameters for Process A shown in Table 2, we synthesized coatings using a non-reactive process to investigate whether the target chemical composition could be maintained within the coating. The compositions obtained by EDX are shown in Table 3. In both cases, Coating A has the composition of the interface layer (IF-1). Except for C, where EDX was not sufficiently sensitive or accurate, the analysis showed only a decrease in Al concentration, with Ti concentration showing some decrease. An initial XRD analysis of the coating on an SA-S substrate was performed. Because the lattice constants of the coating and SA-S are very similar, the observed Bragg reflections could not be unambiguously assigned to the coating. Therefore, the measurement was repeated for the coating on a sapphire substrate (Figure 7).

[0060] The first of the two observed phases, designated M-1 (black line, left of the peak) at a = 3.60 Å, is nearly identical to the uncoated SA-S phase (a = 3.59 Å) (Figure 7). The second phase, M-2 (gray line, right of the peak), has a shift toward a higher 2θ angle (a = 3.56 Å). This indicates a slightly different nucleation behavior on the sapphire substrate. The lattice constant of the M-2 phase was measured to be approximately 3.56 Å. TEM examination of the target (and substrate) material already showed multiple intermetallic phases, and EDX mapping indicated the presence of at least two element groups in addition to precipitates that segregate together. These two groups may condense at different temperatures, resulting in this phase separation.

[0061] In additional experiments, the complete layer stack was investigated following Process B. After the initial pretreatment of SA-S described above, IF-1 was formed by arc evaporation in a non-reactive mode, resulting in a SA-S with a thickness of approximately 500 nm and no additional interfaces. In a subsequent step, 800 sccm of oxygen was supplied to the arc evaporation process, resulting in a short transition from non-reactive to reactive mode. Combined with a double rotation of the substrate, this resulted in the formation of a multilayer structure, ultimately resulting in the nucleation of an approximately 1.5 μm oxide coating. A STEM bright-field image of the complete layer stack is shown in Figure 8a. The interface between the substrate and the interface layer IF-1 is indicated by a dashed line in Figures 8b and 8c. This interface is investigated in more detail by the TKD in Figure 8c and the corresponding image quality map in Figure 8b, here in black and white. Orientation mapping showed epitaxial growth on the grains in the IF-1 region, followed by the nucleation of numerous very small grains of arbitrary orientations and the growth of larger grains that eventually nucleated on the finer grains in this transition region, forming the oxide region of the layer stack. A high-resolution (HR)-TEM micrograph of an enlarged area of ​​the interface is shown in Figure 9. The micrograph shows that the lattice planes of the ST-A and coating are parallel with the same distance between the planes, again confirming the epitaxial growth of the coating on the substrate.

[0062] This work details the possibility of producing a complete layer stack for a bond coat by cathodic arc evaporation in an in situ process sequence, i.e., without breaking vacuum. It was demonstrated that targets from powders with nearly identical chemical composition to the superalloy substrate could be fabricated and used as cathodes for arc evaporation. The targets could be operated in both non-reactive and reactive deposition processes. Examination of the target surface after treatment with and without oxygen reactive gas revealed little effect on the chemical composition and crystalline structure. Coatings synthesized in the non-reactive deposition mode also have similar chemical composition and crystalline structure to the target. This approach to forming a complete layer stack for a bond coat in a single process enables the design principle of profile grading by the controlled addition of reactive oxygen gas or the manipulation of additional targets of the same or different elemental composition. Furthermore, epitaxial growth was observed on the grains of the polycrystalline substrate at the substrate interface. The addition of oxygen to the ongoing arc evaporation process led to the formation of a fine grain transition zone, ultimately resulting in the nucleation of larger crystals in the fully oxidized region of the layer stack. The presented approach has the potential to realize epitaxial growth on any superalloy material and to implement gradients to coatings with different chemical compositions and functionalities.

[0063] [Table 1]

[0064] [Table 2]

[0065] [Table 3]

Claims

1. - providing a superalloy (SA) substrate to a PVD coating unit; - providing a superalloy target as the cathode of the arc source of said coating unit; - applying a substrate bias to the substrate; - depositing an interface layer (IF-1) of superalloy (SA) on the surface of said substrate by vacuum arc evaporation from said superalloy target; - providing a reactive gas comprising oxygen to said coating unit; - depositing by vacuum arc evaporation a transition layer (TL) of the same superalloy (SA) or of a different metal composition, wherein the oxygen content of said transition layer (TL) is varied from said interface layer (IF-1) towards the surface of said transition layer (TL) opposite said interface layer (IF-1) by varying the partial pressure of said reactive gas in the process atmosphere; - depositing, following said transition layer (TL), by vacuum arc evaporation in a process atmosphere containing a higher concentration of said reactive gas, a barrier layer (IF-2) containing a higher amount of superalloy oxide or a different metal oxide composition than in said transition layer (TL), said superalloy target having essentially the same composition as said superalloy (SA) substrate; Including, A coating method wherein said interface layer (IF-1) is deposited with pure metal vapor.

2. 2. Coating method according to claim 1, characterized in that at least one further target with a further metal composition is provided for depositing the transition layer (TL) of a different metal composition and / or the barrier layer (IF-2) of a different metal oxide composition.

3. 3. Coating method according to claim 1 or 2, characterized in that gaseous precursors are provided in parallel with the vacuum arc evaporation of the superalloy target to deposit the transition layer (TL) of different metal composition and / or the barrier layer (IF-2) of different metal oxide composition.

4. Coating method according to any one of claims 1 to 3, characterized in that the interface layer (IF-1) is deposited with a crystalline structure that is compatible with that of the superalloy substrate.

5. 5. Coating method according to any one of claims 1 to 4, characterized in that the superalloy oxide and / or oxide of a different metal composition of the barrier layer (IF-2) is deposited with a ratio of oxygen atoms to metal atoms of at least 1.5 to form thermodynamically stable oxides from the superalloy metal and / or different metal composition evaporated during the deposition of the barrier layer (IF-2).

6. 5. Coating method according to any one of claims 1 to 4, characterized in that the superalloy oxides and / or oxides of different metal compositions of the barrier layer (IF-2) are deposited with a ratio of oxygen atoms to metal atoms of at least 5.

7. 7. A coating method according to any one of claims 1 to 6, characterized in that an inert gas supply is provided to the coating unit to deposit at least one of the interface layer (IF-1), the transition layer (TL) and the barrier layer (IF-2) in an inert gas-containing process atmosphere.

8. 8. The coating method according to any one of claims 1 to 7, characterized in that the superalloy target is produced by a powder metallurgical process.

9. 9. Coating method according to any one of claims 1 to 8, characterized in that in a further process step a ceramic top layer is applied to the surface of said barrier layer (IF-2).

10. 10. The coating method of claim 9, wherein the ceramic top layer is applied by a thermal spray technique.

11. - a superalloy substrate, an interface layer (IF-1) directly on the surface of the superalloy substrate, consisting essentially of the same superalloy composition as the superalloy substrate, followed by a transition layer (TL) of essentially the same superalloy and superalloy oxide or a different metal composition and a different metal oxide, the oxygen content of said transition layer increasing from said interface layer (IF-1); a barrier layer (IF-2) of a superalloy oxide or a different metal oxide; Superalloy workpieces, including:

12. A workpiece as described in claim 11, characterized in that the interface layer (IF-1) has a crystalline structure that is consistent with the crystalline structure of the surface of the superalloy (SA) substrate.

13. 13. Workpiece according to claim 11 or 12, characterized in that the oxygen content of the transition layer (TL) increases stepwise or gradually from the interface layer (IF-1) to the barrier layer (IF-2).

14. 14. The workpiece of any one of claims 11 to 13, wherein the different metal composition differs from the essentially same superalloy composition by at least one additional element.

15. 15. The workpiece of claim 14, wherein the at least one additional element has an electronegativity of 1.4 or less.

16. 16. The workpiece of claim 14 or 15, wherein the at least one further element comprises a lanthanide.

17. 17. The workpiece of claim 16, wherein the lanthanide is at least one of La, Er, or Yb.

18. 18. A workpiece according to any one of claims 11 to 17, characterized in that the different metal composition differs from the superalloy composition in at least the concentration or addition of at least one of the following further elements: Mg, Al, Cr, Er, Y, Zr, La, Hf, Si.

19. 19. The workpiece according to any one of claims 15 to 18, characterized in that at least a part of the further element is oxidized and deposited within the grains as a solid solution (SS) and / or along the grain boundaries of the transition layer (TL) and / or the barrier layer (IF-2) as a dispersion strengthened oxide (ODS).

20. 20. The workpiece according to any one of claims 11 to 19, characterized in that the concentration of at least one of a metal element or silicon in the transition layer (TL) increases stepwise or gradually from the interface layer (IF-1) to the barrier layer (IF-2).

21. The different metal oxides are the following oxides: Aluminum oxide, aluminum-chromium oxide, erbium oxide, yttrium oxide, yttrium-aluminum oxide, magnesium-aluminum oxide, aluminum-silicon oxide, hafnium-silicon oxide 21. The workpiece according to any one of claims 11 to 20, characterized in that it comprises at least one of the following or a mixture thereof:

22. 22. The workpiece of claim 21, wherein the aluminum oxide or aluminum-chromium oxide is Al2O3 or (AlCr)2O3 having a corundum crystal structure, and the erbium oxide or yttrium oxide is Er2O3 or Y2O3 having a cubic crystal structure.

23. 23. The workpiece of claim 22, wherein greater than 55% of each crystal structure is corundum or cubic.

24. 23. The workpiece of claim 22, wherein greater than 75% of each crystal structure is corundum or cubic.

25. 25. The workpiece according to any one of claims 11 to 24, characterized in that the different metal oxide comprises an aluminum-containing oxide and the transition layer (TL) or the barrier layer (IF-2) comprises aluminum droplets.

26. 26. The workpiece of any one of claims 11 to 25, wherein the different metal oxide comprises a chromium-containing oxide, and the transition layer (TL) or the barrier layer (IF-2) comprises chromium-containing droplets.

27. 27. The workpiece of any one of claims 11 to 26, comprising a ceramic top layer on a surface of the barrier layer (IF-2).

28. A method for manufacturing a superalloy (SA) workpiece, comprising the coating method of any one of claims 1 to 10.

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