Brazing paste
A paste-like brazing material with optimized solvent and binder composition addresses the handling difficulties of pellet-shaped brazing material, facilitating stable bonding and enhancing processing accuracy in mass production.
Patent Information
- Application Number
- JP2022077479
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-10
- Publication Date
- 2025-08-21
- Estimated Expiration
- 2042-05-10
AI Technical Summary
Brazing material in pellet form is difficult to handle and requires a recess for placement, limiting its usability and application.
A paste-like brazing material comprising 80-95% brazing material and 5-20% binder, with specific solvent and thixotropic properties, allowing direct application and improved workability.
The paste-like brazing material achieves stable bonding with high workability, enabling easier joining of smaller parts and improved processing accuracy in mass production.
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Abstract
Description
[Technical Field]
[0001] The present embodiment relates to a brazing paste. [Background technology]
[0002] Brazing filler metals have traditionally been used to join components, particularly metal components. For example, Patent Document 1 discloses a configuration in which a tubular component is joined to a joint body by brazing using nickel brazing, silver brazing, or the like, with its end inserted into an opening of a joint body. Patent Document 1 discloses that brazing is performed along the boundary between the opening and the outer peripheral surface of the tubular component on the end face of the joint body, and the melted, liquid brazing material penetrates into the small gap between the inner peripheral surface of the opening and the outer peripheral surface of the tubular component by capillary action, where the temperature of the brazing material that has penetrated drops and hardens, thereby joining the end of the tubular component to the joint body by brazing. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent Publication No. 2021-76224 Summary of the Invention [Problem to be solved by the invention]
[0004] Brazing material bonding is generally performed using pellet-shaped brazing material. However, since pellet-shaped brazing material is not easy to work with, its use has been limited. When using pellet-shaped brazing material, it is also necessary to provide a recess for placing the pellet-shaped brazing material.
[0005] In order to improve this situation, the present invention provides a paste-like brazing material that can achieve high workability. [Means for solving the problem]
[0006] [Concept 1] The brazing paste according to the first aspect of the present invention comprises: Contains 80% by mass or more and 95% by mass or less of a brazing material and 5% by mass or more and 20% by mass or less of a binder, The binder may contain a solid solvent having two or more hydroxyl groups and 5 to 7 carbon atoms, and a liquid solvent.
[0007] [Concept 2] The brazing paste according to the second aspect of the present invention comprises: Contains 80% by mass or more and 95% by mass or less of a brazing material and 5% by mass or more and 20% by mass or less of a binder, The binder includes a solid solvent having two or more hydroxyl groups and 8 to 10 carbon atoms, and a liquid solvent, (1) When the binder does not contain a thixotropic material, the binder contains a liquid solvent in an amount of 68% by mass or more based on the total amount of the binder; (2) When the binder contains a thixotropic material, the thixotropic material may be contained in an amount of 11% by mass or less based on the total mass of the binder.
[0008] [Concept 3] In the brazing paste according to the first and second aspects of the present invention, The brazing material contains a metal, The oxygen concentration in the metal is 1000 ppm or less, The brazing material may be free of boric acid and borax.
[0009] [Concept 4] 4. The brazing paste according to any one of concepts 1 to 3, When measured under the condition of a temperature rise rate of 10°C / min from 25°C to 450°C, the amount of TG remaining at 250°C may be 0% by mass or more and 1% by mass or less.
[0010] [Concept 5] 5. The brazing paste according to any one of concepts 1 to 4, The binder may contain, as a solid solvent, one or more of 2,5-dimethyl-2,5-hexanediol, trimethylolpropane, and neopentyl glycol.
[0011] [Concept 6] 6. The brazing paste according to any one of concepts 1 to 5, The liquid solvent for the binder may contain one or more of terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol. [Effects of the Invention]
[0012] According to the present invention, a paste-like brazing material that can achieve sufficient bonding and has high workability is provided. [Brief explanation of the drawings]
[0013] [Figure 1] 1 is a side view showing a mode in which metal parts are joined together using the brazing paste according to the present embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0014] A preferred embodiment of this embodiment will be described in detail below. In this embodiment, "or" is a concept that includes "and," and A or B indicates either A, B, or both A and B.
[0015] The brazing paste of this embodiment may contain a brazing material and a binder. The brazing material may contain a metal. The binder may contain a solid solvent and a liquid solvent, and may further contain a thixotropic material. The brazing material of this embodiment may be an embodiment that does not contain boric acid or borax as a flux. The metal, such as a metal powder, contained in the brazing material may contain only low oxygen levels of 1000 ppm or less. Boric acid and borax act as reducing agents, but if the metal, such as a metal powder, contains only low oxygen levels of 1000 ppm or less, boric acid and borax are not particularly necessary. From this perspective, it is preferable that the metal, such as a metal powder, contains only 800 ppm or less of oxygen, and more preferably, it contains only 600 ppm or less of oxygen. Note that there is a possibility that the use of boric acid and borax may be subject to restrictions, so adopting an embodiment that does not contain boric acid or borax is also beneficial in this respect. Furthermore, when boric acid and borax are not used, there is no need to select a solid solvent that is compatible with boric acid and borax, which is advantageous in that the range of liquid solvents that can be selected is expanded as a result.
[0016] This embodiment provides a brazing paste. By using this brazing paste, it can be applied directly to the joint, ensuring wetting and achieving stable joint quality. Furthermore, molded parts can be made smaller and simpler, improving processing accuracy and yield per part. Furthermore, the adhesive strength of the brazing paste makes it easier to join smaller parts by stacking them like bricks, enabling various applications in mass production. As an example, the brazing paste 50 of this embodiment is used to join metal parts 10, 20 to another metal part 30, as shown in FIG. 1 . For example, the brazing paste is spread on the surfaces of the metal parts 10, 20 and used to join the metal parts 10, 20 to the other metal part 30. This joining is performed at temperatures of 450°C or higher, typically 900 to 1000°C. As an example, the brazing paste 50 may be used to join components of an automatic transmission.
[0017] The brazing paste may contain 80% to 95% by mass of brazing material, and 5% to 20% by mass of binder. As described below, the binder evaporates and disappears during joining, so the ratio of brazing material to binder is not particularly limited. However, a high binder content reduces viscosity and workability, so the upper limit of the binder content is preferably 20% by mass, more preferably 15% by mass, and even more preferably 10% by mass. Furthermore, a low binder content increases viscosity, also reducing workability, so the lower limit of the binder content is preferably 5% by mass, more preferably 7% by mass, and even more preferably 8% by mass.
[0018] The solid solvent for the binder may contain two or more hydroxyl groups, have 5 to 10 carbon atoms, and be solid at 25° C. Examples of the solid solvent containing 5 to 7 carbon atoms include trimethylolpropane and neopentyl glycol. Examples of the solid solvent containing 8 to 10 carbon atoms include 2,5-dimethyl-2,5-hexanediol.
[0019] As the liquid solvent for the binder, a low-boiling point liquid solvent having a boiling point of 250 or less may be used. Examples of the liquid solvent for the binder include terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol. In this embodiment, the liquid solvent refers to a solvent that is in a liquid state at 25°C, and the solid solvent refers to a solvent that is in a solid state at 25°C.
[0020] The boiling point of isobornylcyclohexanol is 302°C, which is high, but the boiling points of the liquid solvents shown below are low. The boiling point of α-terpineol is 217°C. Butyl carbitol has a boiling point of 198°C. The boiling point of tripropylene glycol monobutyl ether is 230°C. The boiling point of phenyl glycol is 220°C. The boiling point of hexylene glycol is 190°C. The boiling point of tetraethylene glycol dimethyl ether is 240°C. The boiling point of isooctadecanol is 302°C.
[0021] The metal of the brazing material may be added as a metal powder and mixed with other components to form a paste. Because it is in this paste form, the metal powder cannot be recognized as a powder with the naked eye in the brazing material paste. The metal may be an alloy powder, a metal powder, or a mixture of an alloy powder and a metal powder. The metal contained in the brazing material is not particularly limited, and any type of metal can be used. The metal contained in the brazing material may be appropriately changed depending on the material of the metal parts to be joined. For example, a Cu-based alloy powder and an Fe-based metal powder may be used. More specifically, a CuNiMnSiB alloy powder and an Fe powder may be used. The CuNiMnSiB alloy powder may contain 38.0 to 41.0 mass% Cu, 40.0 to 43.0 mass% Ni, 14.0 to 16.0 mass% Mn, 1.6 to 2.0 mass% Si, 1.3 to 1.7 mass% B, and 1.0 mass% or less of other components. Typically, the alloy powder is the main component of the joint, and the metal powder is added to ensure wettability. When using Fe sheet metal, the Fe powder can ensure wettability to the Fe sheet metal.
[0022] For example, the brazing material may contain alloy powder and metal powder as its components, and may contain 80 to 90 mass % of alloy powder and 10 to 20 mass % of metal powder flux relative to the total brazing material components (100 mass %).
[0023] The binder may contain a thixotropic material. As the thixotropic material, an amide component may be used, and examples thereof include stearic acid amide, toluamide, lauric acid amide, myristic acid amide, and palmitic acid amide.
[0024] As an example, the binder component may include one or more of 2,5-dimethyl-2,5-hexanediol, trimethylolpropane, and neopentyl glycol, which are solid solvents, and one or more of terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol, which are liquid solvents.
[0025] In a first embodiment, the brazing paste contains 80% by mass to 95% by mass of brazing material and 5% by mass to 20% by mass of binder, and also contains a solid solvent containing two or more hydroxyl groups and having 5 to 7 carbon atoms, and a liquid solvent. Note that the brazing paste may contain other components.
[0026] In a second embodiment, the brazing paste contains 80% by mass or more and 95% by mass or less of a brazing material and 5% by mass or more and 20% by mass or less of a binder, and the binder contains a solid solvent containing two or more hydroxyl groups and having 8 to 10 carbon atoms, and a liquid solvent, and (1) when the binder does not contain a thixotropic material, the liquid solvent is contained in an amount of 68% by mass or more relative to the entire binder, (2) When the binder contains a thixotropic material, the content of the thixotropic material is 11 mass % or less based on the total amount of the binder. The brazing paste may contain other components.
[0027] In each of the first and second embodiments, the brazing material may contain neither boric acid nor borax.
[0028] The binder components may contain 10 to 90% by mass of a solid solvent and 10 to 90% by mass of a liquid solvent. For example, the binder may contain 10 to 90% by mass of a solid solvent containing one or more of trimethylolpropane and neopentyl glycol, and 10 to 90% by mass of a liquid solvent containing one or more of terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol. As another example, the binder may contain a liquid solvent containing one or more of terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol, and may contain 2,5-dimethyl-2,5-hexanediol as a solid solvent in an amount of 10 to 90 mass %, and (1) if the binder does not contain a thixotropic material, the liquid solvent may be contained in an amount of 68 mass % or more relative to the entire binder, and (2) if the binder contains a thixotropic material, the thixotropic material may be contained in an amount of 11 mass % or less relative to the entire binder.
[0029] When terpineol is used as the sole liquid solvent, 2,5-dimethyl-2,5-hexanediol is used as the solid solvent, and the binder does not contain a thixotropic material, the upper limit of the terpineol content relative to the entire binder is preferably 64% by mass or less, and more preferably 60% by mass or less. In this case, the lower limit of the terpineol content relative to the entire binder is preferably 35% by mass or more, more preferably 40% by mass or more, and even more preferably 50% by mass or more. Under these conditions, a high terpineol content can cause paste separation and deteriorate paste storage performance. On the other hand, a low terpineol content can deteriorate binder properties. Furthermore, using another solid solvent instead of 2,5-dimethyl-2,5-hexanediol can enhance the versatility of the liquid solvent. In this case, the restrictions on the content of the liquid solvent are also more lenient, and the lower limit of the liquid solvent may be set to 5 mass%, more preferably 10 mass%, and the upper limit of the liquid solvent content may be set to 75 mass%, more preferably 70 mass%.
[0030] When 2,5-dimethyl-2,5-hexanediol is used as the solid solvent, in order to achieve optimal softness and optimal tackiness (above 0.6) as a paste, the lower limit of 2,5-dimethyl-2,5-hexanediol in the binder component (out of 100% by mass) is preferably 25% by mass, more preferably 30% by mass, and the upper limit of 2,5-dimethyl-2,5-hexanediol in the binder component is preferably 65% by mass, more preferably 50% by mass, and even more preferably 40% by mass.
[0031] When 2,5-dimethyl-2,5-hexanediol is used as the solid solvent and one or more of terpineol, isooctadecanol, and isobornylcyclohexanol are used as the liquid solvent, in order to achieve optimal softness and optimal tackiness (a tackiness of 0.6 or more) as a paste, the lower limit of the total amount of terpineol, isooctadecanol, and isobornylcyclohexanol in the binder component (100% by mass) (including cases where any of terpineol, isooctadecanol, and isobornylcyclohexanol is not present and is 0) is preferably 45% by mass, more preferably 50% by mass. Also, the upper limit of the total amount of terpineol, isooctadecanol, and isobornylcyclohexanol in the binder component is preferably 75% by mass, more preferably 70% by mass.
[0032] From the viewpoint of more reliably suppressing binder residue when joining metal parts together, it is preferable that the binder component be contained in an amount of 10 mass% or less, more preferably 6 mass% or less, and even more preferably 2 mass% or less, based on the total binder components. [Example]
[0033] The alloy powder used was a CuNiMnSiB alloy powder with a particle size distribution of 22 μm to 44 μm and a D50 of 33 μm. The CuNiMnSiB alloy powder contained 38.0 to 41.0 mass% Cu, 40.0 to 43.0 mass% Ni, 14.0 to 16.0 mass% Mn, 1.6 to 2.0 mass% Si, and 1.3 to 1.7 mass% and 1.0 mass% or less B. As the metal powder, Fe powder was used, and the powder had a particle size distribution of 75 μm or less and a D50 of 33 μm. The brazing filler metal was 100% by mass, and contained 85% by mass of CuNiMnSiB alloy powder and 15% by mass of Fe powder. The oxygen concentration in the CuNiMnSiB alloy powder and Fe powder was 1000 ppm or less. Because the oxygen concentration in the metal powder was so low, the brazing filler metal did not contain flux containing boric acid or borax.
[0034] The 175°C TG remaining amount % was measured using a thermogravimetric differential thermal analyzer (TG-DTA) manufactured by Hitachi High-Tech Science Corporation, under the condition of a heating rate of 10°C / min from 25°C to 450°C. The TG remaining amount % affects the bonding strength. The % shown in the table is the value at 175°C TG remaining amount. If the 175°C TG remaining amount % was less than 1 mass%, it was marked as "Good", and if it was 1 mass% or more, it was marked as "Poor". Pasting was confirmed by viscosity according to JIS standards and visual inspection. If the viscosity was 50-160 Pa s and no separation was visible, it was marked "Good." If the viscosity was outside the range of 50-160 Pa s or separation was visible, it was marked "Poor." The strength was measured using a DFH210 (static torsion tester) manufactured by Saginomiya Seisakusho Co., Ltd. Weak strength means that the material will not function as a joining material. Strengths of 7900 Nm or greater were marked "Good," and strengths of less than 7900 Nm were marked "Poor." While the values at 175°C were used in this example, values higher than 175°C may be used for judgment. Alternatively, a material with a residual amount of less than 1% by mass at 220°C or less than 1% by mass at 250°C may be selected. However, in terms of effectiveness, a TG residual amount of less than 1% by mass at 250°C is preferred, a TG residual amount of less than 1% by mass at 220°C is more preferred, and a TG residual amount of less than 1% by mass at 175°C is even more preferred.
[0035] Binder components consisting of each of Examples 1 to 8 in Table 1 were prepared. Next, 91% by mass of the brazing material component was mixed with 9% by mass of the binder component, and then measurements were made of the TG residual %, pasting, and strength at 175°C. As mentioned above, the brazing material component (100% by mass) was a mixture of 85% by mass of CuNiMnSiB alloy powder and 15% by mass of Fe powder, and this also applies to Examples 9 to 17 and Comparative Examples 1 to 6 described below.
[0036] [Table 1]
[0037] As shown in Table 1, all of Examples 1 to 8 showed excellent results in terms of TG, pasting, and strength. When the 175°C TG residual percentage is evaluated as "Good," the 250°C TG residual percentage is naturally also 1 mass% or less. This also applies hereinafter.
[0038] Binder components consisting of each of Examples 9 to 17 in Table 2 were prepared. As shown in Table 2, all of Examples 9 to 17 showed excellent results in terms of TG, pasting, and strength. [Table 2]
[0039] Binder components consisting of each of Comparative Examples 1 to 6 in Table 3 were prepared. The TG, pasting and strength were evaluated in the same manner as in Examples 1 and 2. In Comparative Example 1, in which no solid solvent was used, favorable results could not be obtained in terms of TG and strength. In Comparative Examples 2 to 4, which used 2,5-dimethyl-2,5-hexanediol as the solid solvent, did not contain a thixotropic agent, and contained a liquid solvent in an amount of 65 mass% or less relative to the total binder, favorable results were not obtained in terms of strength. Furthermore, in Comparative Examples 2 and 3, which used α-terpineol as the liquid solvent, favorable results were not obtained in terms of pasting. Furthermore, in Comparative Example 4, which used isooctadecanol as the liquid solvent, favorable results were not obtained in terms of TG. In Comparative Examples 5 and 6, in which 2,5-dimethyl-2,5-hexanediol was used as the solid solvent and the content of the thixotropic material was 15 mass % or more, favorable results could not be obtained in terms of either TG or strength. [Table 3]
[0040] Furthermore, when the deposition properties for 30 mass% 2,5-dimethyl-2,5-hexanediol were confirmed, it was confirmed that the deposition properties of 2,5-dimethyl-2,5-hexanediol were extremely superior to those of α-terpineol, and it was also confirmed that it is beneficial to use α-terpineol when using 2,5-dimethyl-2,5-hexanediol. [Explanation of symbols]
[0041] 10, 20, 30 Metal parts 50 Brazing paste
Claims
1. Contains 80% by mass or more and 95% by mass or less of a brazing material and 5% by mass or more and 20% by mass or less of a binder, The binder includes a solid solvent that contains two or more hydroxyl groups and has 5 to 7 carbon atoms and is in a solid state at 25°C, and a liquid solvent that is in a liquid state at 25°C, A brazing paste containing a solid solvent in an amount of 10 mass % or more relative to the total amount of the binder.
2. Contains 80% by mass or more and 95% by mass or less of a brazing material and 5% by mass or more and 20% by mass or less of a binder, The binder includes a solid solvent that contains two or more hydroxyl groups and has 8 to 10 carbon atoms and is in a solid state at 25°C, and a liquid solvent that is in a liquid state at 25°C, (1) When the binder does not contain a thixotropic material, the liquid solvent is contained in an amount of 68% by mass or more relative to the entire binder, and the solid solvent is contained in an amount of 10% by mass or more relative to the entire binder; (2) When the binder contains a thixotropic material, the thixotropic material is contained in an amount of 2% by mass or more and 11% by mass or less based on the total amount of the binder, and the solid solvent is contained in an amount of 10% by mass or more based on the total amount of the binder. Brazing paste.
3. The brazing material contains a metal, The oxygen concentration contained in the metal is 1000 ppm or less, The brazing paste according to claim 1 or 2, wherein the brazing material does not contain boric acid or borax.
4. 3. The brazing paste according to claim 1, wherein the TG residual amount at 250 ° C. is 0% by mass or more and 1% by mass or less when measured under the condition of a temperature increase rate of 10 ° C. / min from 25 ° C. to 450 ° C. The brazing paste according to claim 1 or 2.
5. 3. The brazing paste according to claim 1, further comprising, as a solid solvent for the binder, one or more of 2,5-dimethyl-2,5-hexanediol, trimethylolpropane, and neopentyl glycol.
6. 3. The brazing paste according to claim 1, wherein the liquid solvent for the binder is one or more of terpineol, isobornylcyclohexanol, butyl carbitol, tripropylene glycol monobutyl ether, phenyl glycol, hexylene glycol, tetraethylene glycol dimethyl ether, and isooctadecanol.
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