Water-based semi-synthetic metalworking fluid composition
Glycol ether amines in semi-synthetic metalworking fluids address microbial growth issues, enhancing stability and lubrication, and providing safer, more effective metalworking fluid performance.
Patent Information
- Application Number
- JP2024506974
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-24
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2041-08-24
AI Technical Summary
Existing semi-synthetic metalworking fluids face issues with microbial growth, leading to degraded performance, shortened shelf life, and environmental health concerns due to biocides like formaldehyde release, while failing to provide optimal cooling and lubrication for demanding metalworking applications.
Incorporation of glycol ether amines as microbial growth control agents in semi-synthetic metalworking fluids, combined with base oils, organic acids, emulsifiers, and water, to enhance stability, lubrication, and cooling performance.
The compositions demonstrate improved thermal stability, reduced foaming, and effective corrosion protection, offering extended shelf life and safer biocidal properties without formaldehyde release.
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Abstract
Description
[Technical Field]
[0001] Semi-synthetic metalworking fluid compositions are provided that include a microbial growth control agent that includes a particular class of glycol ether amines. [Background technology]
[0002] Introduction Metalworking fluids (MWFs) are used for lubrication during metal cutting and tool forming processes. These fluids help cool metalworking tools, remove chips from the tool / workpiece interface, and provide acceptable machined surface finishes. In recent years, with the development of automotive metalworking containing materials such as aluminum, the requirements for metalworking fluids have become more stringent.
[0003] The metalworking fluid industry desires compositions with good cooling performance, good lubrication, good concentrate stability, and long shelf life. Existing MWFs are typically classified as neat oil, soluble oil, semi-synthetic fluid, or synthetic fluid, with each category representing different functions: cooling, lubrication, rust prevention, and cleaning. Soluble oil MWFs contain 50-70 wt% neat oil, with the remainder of the MWF consisting of antiwear / extreme pressure additives and emulsifiers. Neat and soluble oils typically do not provide the same level of cooling compared to aqueous metalworking fluids. Synthetic fluids typically cannot provide good lubrication performance because their lubrication function is affected by the back-dissolution of polyalkylene glycols at temperatures above their cloud point. Semi-synthetic materials offer the potential to simultaneously provide good lubrication and cooling properties for use in demanding applications. A typical semi-synthetic fluid consists of oil, organic acids, detergents, surfactants, lubricants, amines, corrosion inhibitors, water, and other components. The amount of water in such semi-synthetic MWFs is typically up to 50-60% by weight, along with about 10-40% by weight mineral oil, about 10-20% by weight emulsifier, about 10-20% by weight amine, and other functional additives such as lubricants, corrosion inhibitors, solubilizers, pH neutralizers, biocides, etc. Semi-synthetic MWFs are usually diluted at the end user's site with additional water to a neat oil concentration of 1-20% by weight, more typically 5-7% by weight.
[0004] Emulsifiers are often added to semi-synthetic fluids to form stable oil-in-water dispersions. Emulsifier particles surround the oil droplets and impart a negative charge that binds them to water molecules. The size of these emulsified oil droplets is critical to fluid performance, as smaller emulsifiers generally penetrate more easily to the interface of the cutting zone. Emulsifiers also contribute to the stability of semi-synthetic fluids.
[0005] Semi-synthetic fluids partially degrade over time due to microbial growth, which adversely affects fluid performance as microorganisms feed on the active ingredients in the fluid. Such microbial growth in MWFs can cause serious problems in metalworking processes in many forms, including general souring of the MWF, changes in the MWF's viscosity, shortened MWF shelf life, and corrosion of tools and materials. Additionally, the functionality of equipment and processes, such as feed nozzles, storage tanks, pipelines, and recycling system facilities, can also be affected by microbial growth in MWFs. This souring increases the cost of the MWF, accelerates corrosion rates, and reduces the efficiency of metalworking. The most common solution to controlling microbial growth is the continuous or batch addition of biocides and amine alcohols to a given MWF. However, biocides and some secondary amine alcohols are restricted by regulatory restrictions, and most biocidal chemicals release formaldehyde over time, which is harmful to human health.
[0006] Therefore, it would be desirable to have new semi-synthetic metalworking formulations with novel biocidal compositions that provide improved cooling, lubrication, concentrate stability, and extended shelf life without the environmental health and safety concerns of current fluids.
[0007] The compositions of the present invention address some or all of the above needs. Summary of the Invention
[0008] The present invention describes an aqueous semi-synthetic metalworking fluid comprising a base oil, an organic acid, an emulsifier, optionally additives, water, and a microbial growth control agent comprising a glycol ether amine. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a bar graph showing foam height and defoaming time for Comparative Example 1 and Examples 1 to 6 of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0010] The present invention relates to semi-synthetic metalworking fluids, which comprise water, one or more base oils, one or more solubilizers, one or more emulsifiers, optionally one or more additives, and one or more microbial growth control agents, wherein the microbial growth control agent comprises at least a glycol ether amine.
[0011] The water used in the present formulations is preferably deionized water and may comprise at least 20%, preferably 25%, 30%, or even 35% by weight of the formulation, up to 65%, 60%, 55%, or even 50% by weight of the formulation. It is contemplated that these formulations may be further diluted with additional water before use, modifying these ranges accordingly. For example, the formulation may be diluted prior to use so that the base oil concentration is 1-20%, more typically 5-7%, by weight of the diluted formulation.
[0012] The semi-synthetic MWFs of the present invention also include a base oil. The base oil may be any base oil commonly known in the art for use in MWFs. Preferably, the base oil is a base oil selected from naphthenic, paraffinic, or ester oils, or combinations thereof. The concentration of the base oil(s) in the MWF may range from 5, 7, 10, or 15 wt. % of the formulation to 50, 45, 40, or 35 wt. % of the formulation.
[0013] The semi-synthetic MWFs of the present invention also contain a microbial growth control agent and / or biocide, which in one embodiment may be described as a glycol ether amine. Suitable glycol ether amines include, but are not limited to, 2-butoxy-ethanamine, 1-methoxy-2-propanamine, 1-butoxy-2-propanamine, 1-[1-methyl-2-(1-methyl-2-propoxyethoxy)ethoxy]-2-propanamine, 1-(2-butoxy-1-methylethoxy)-2-propanamine, 1-(2-methoxy-1-methylethoxy)-2-propanamine, and 1-(1-methyl-2-propoxyethoxy)-2-propanamine, and 2-amino-2-methyl-2-propanol. Surprisingly, it has been found that such glycol ether amines are good biocides against bacteria and other microorganisms present in the MWF.
[0014] In another embodiment, the biocidal composition of the present disclosure may be a composition comprising at least a glycol ether amine, wherein the primary ether amine compound is of the formula:
[0015] [ka] In the formula, R1 is a C1-C6 alkyl group, more preferably a C3-C4 alkyl group, R2 and R3 are independently CH3 or CH2-CH3, and m is 0-6, or preferably 0-2.
[0016] The concentration of glycol ether amine(s) in the MWF can range from 1, 4, 6, 8, or 10% by weight of the formulation to 30, 25, 15, or 12% of the formulation.
[0017] The microbial growth control agent may further include one or more additional glycol ether amines that may be used in combination with the materials disclosed above to achieve specific microbial growth control goals.
[0018] The semi-synthetic MWFs of the present invention also contain one or more organic acids as solubilizers. Preferred organic acids include 2-ethylhexanoic acid, azelaic acid, tall oil fatty acid, 12-hydroxyl-(cis)-9-octadecenoic acid, dicarboxylic acid, and 9-octadecenoic acid. The concentration of the organic acid in the MWF can range from 2, 3, 4, or 5% by weight of the formulation to 12, 10, 8, or 7% by weight of the formulation.
[0019] The semi-synthetic MWF of the present invention also contains one or more emulsifiers. The emulsifiers can be anionic, cationic, or nonionic. Examples of suitable anionic surfactants or emulsifiers are alkali metal, ammonium, and amine soaps. The fatty acid portion of such soaps preferably contains at least 10 carbon atoms. The soaps can also be formed "in situ." In other words, the fatty acid can be added to the oil phase and the alkaline material can be added to the aqueous phase.
[0020] Other examples of suitable anionic surfactants or emulsifiers are alkali metal salts of alkyl-aryl sulfonic acids, sodium dialkyl sulfosuccinate, sulfated or sulfonated oils such as sulfated castor oil; sulfonated tallow, and alkali salts of short-chain petroleum sulfonic acids.
[0021] Suitable cationic surfactants or emulsifiers are salts of long-chain primary, secondary or tertiary amines, such as oleylamide acetate, cetylamine acetate, didodecylamine lactate, acetate salts of aminoethyl-aminoethylstearamide, dilauroyltriethylenetetramine diacetate, 1-aminoethyl-2-heptadecenylimidazoline acetate; and quaternary salts, such as cetylpyridinium bromide, hexadecylethylmorpholinium chloride, and diethyldidodecylammonium chloride.
[0022] Examples of suitable nonionic surfactants or emulsifiers include condensation products of higher fatty alcohols with ethylene oxide, such as the reaction product of oleyl alcohol with 10 ethylene oxide units; condensation products of alkylphenols with ethylene oxide, such as the reaction product of isooctylphenol with 12 ethylene oxide units; condensation products of higher fatty acid amides with five or more ethylene oxide units; polyethylene glycol esters of long-chain fatty acids, such as tetraethylene glycol monopalmitate, hexaethylene glycol monolaurate, nonaethylene glycol monostearate, nonaethylene glycol dioleate, tridecaethylene glycol monoarachidate, tricosaethylene glycol monobehenate, and tricosaethylene glycol dibehenate; polyhydric alcohol partial higher fatty acid esters, such as sorbitan tristearate; Ethylene oxide condensation products of polyhydric alcohol partial higher fatty acid esters and their intramolecular anhydrides (mannitol anhydride, also known as mannitan, sorbitol anhydride, also known as sorbitan), such as glycerol monopalmitate (10 molecules of ethylene oxide), pentaerythritol monooleate (12 molecules of ethylene oxide), sorbitan monostearate (10-15 molecules of ethylene oxide), and mannitan monopalmitate (10-15 molecules of ethylene oxide), and long-chain polyglycols in which one hydroxyl group is esterified with a higher fatty acid and the other hydroxyl group is etherified with a low-molecular-weight alcohol, such as methoxypolyethylene glycol 550 monostearate (550 refers to the average molecular weight of the polyglycol ether). Mixtures of two or more of these surfactants may also be used, for example, cationic surfactants may be mixed with nonionic surfactants, or anionic surfactants may be mixed with nonionic surfactants.
[0023] Suitable emulsifiers include ethoxylated or propoxylated C16-18 alcohols; ethoxylated C12-C15 alcohols; sodium alkanesulfonates and alkyl ether carboxylates.
[0024] The concentration of emulsifier(s) in the MWF can range from 4, 5, 6, 8, or 10% by weight of the formulation to 25, 20, 15, or 12% of the formulation.
[0025] The semi-synthetic MWFs of the present invention may also include one or more additives. Preferred additives include diethylene glycol butyl ether, ethylene glycol monobutyl ether, and propylene glycol butyl ether. The concentration of the additive(s) in the MWF may range from 0.0, 0.3, 0.5, 1.0, or 1.5% by weight of the formulation to 2.5, 2.0, or 1.8% of the formulation.
[0026] The semi-synthetic MWFs of the present invention may also contain other additives to provide additional functionality as is generally known in the art. [Example]
[0027] An experiment to test the effectiveness of semi-synthetic MWFs such as those disclosed herein can be conducted as follows: A series of seven semi-synthetic MWFs are prepared as shown in Table 1. Each example is identical except for a different amine as the microbial growth control agent, as shown in Table 2.
[0028] [Table 1]
[0029] [Table 2]
[0030] Test 1: Thermal Stability of Semi-Synthetic Fluids A portion of each of the seven examples above was stored at 50°C (±3°C) and a portion was stored at 0°C (±1°C) for 20 hours. The samples were then observed and the results are shown in Table 3, with "Pass" indicating a single-phase transparent material.
[0031] [Table 3]
[0032] As shown in the table above, the compositions of the present invention (Examples 1 to 6) exhibited better stability than Comparative Example 1, as all examples passed the stability test at at least one temperature.
[0033] Test 2: Foaming test 5.0 g of each of the first seven semi-synthetic fluid concentrates was added to a 250 mL cylinder containing 95 mL of hard water (50 ppm, Ca(CO3)2 equivalents). After closing the cylinder with a stopper, the cylinder was inverted 60 times within 1 minute. The foam volume height immediately after inversion was completed (0 seconds) and the time until the foam height decreased to 0 cm were recorded and are shown in Figure 1.
[0034] As shown in the above table, the compositions of the present invention (Examples 1 to 5) have better anti-foaming performance than Comparative Example 1 (MEA+TEA), because all of these examples show lower foam heights and shorter defoaming times.
[0035] Test 3: Corrosion prevention test To evaluate the corrosion protection performance of the semi-synthetic solutions, 5 mL of each of the hard water solutions used in Test 2 was added to a 35 mm x 10 mm plastic Petri dish along with 4.0 (±0.1) gm of cast icon chips and stored at 25°C for 24 hours. After this period, the corrosion state of the iron chips was observed and the percentage area observed to be affected is recorded in Table 4.
[0036] [Table 4]
[0037] As shown in Table 4 above, the compositions of the present invention (Examples 1, 3, and 6) have corrosion prevention performance equivalent to that of Comparative Example 1 (MEA+TEA).
Claims
1. 1. A semi-synthetic metalworking fluid comprising: a. at least one base oil; b. at least one microbial growth control agent comprising a glycol ether amine selected from the group consisting of 1-[1-methyl-2-(1-methyl-2-propoxyethoxy)ethoxy]-2-propanamine, 1-(2-butoxy-1-methylethoxy)-2-propanamine, 1-(2-methoxy-1-methylethoxy)-2-propanamine, and 1-(1-methyl-2-propoxyethoxy)-2-propanamine; c. one or more organic acids; d. one or more emulsifiers; e. optionally one or more additives; f. water, the concentration of the glycol ether amine in the metalworking fluid is in the range of 4% to 30% by weight; A semi-synthetic metalworking fluid, wherein the organic acid as a solubilizer is selected from ethylhexanoic acid, azelaic acid, tall oil fatty acid, 12-hydroxyl-(cis)-9-octadecenoic acid, dicarboxylic acids, 9-octadecenoic acid and mixtures thereof.
2. R of the microbial growth control agent 1 is C 3 ~C 4 10. The semi-synthetic metalworking fluid of claim 1, wherein the alkyl group is an alkyl group.
3. 10. The semi-synthetic metalworking fluid of claim 1, wherein the glycol ether amine further comprises 2-butoxy-ethanamine, 1-methoxy-2-propanamine, or 1-butoxy-2-propanamine.
4. 10. The semi-synthetic metalworking fluid of claim 1, wherein the microbial growth control agent further comprises another amine.
5. 10. The semi-synthetic metalworking fluid of claim 1, wherein in the microbial growth control agent, m is 0-2.
6. 10. The semi-synthetic metalworking fluid of claim 1, wherein the base oil is selected from naphthenic oils, paraffinic oils, ester oils, and mixtures thereof.
7. The emulsifier is an ethoxylated or propoxylated C 16 ~C 18 Alcohol, Ethoxylated C 12 ~C 15 10. The semi-synthetic metalworking fluid of claim 1 selected from alcohols, sodium alkanesulfonates and alkyl ether carboxylates, and mixtures thereof.
8. 10. The semi-synthetic metalworking fluid of claim 1, wherein the additive is present and is selected from diethylene glycol butyl ether, ethylene glycol monobutyl ether, propylene glycol butyl ether, and mixtures thereof.
9. 10. The semi-synthetic metalworking fluid of claim 1, wherein the microbial growth control agent is present in an amount of 6 to 15% by weight of the semi-synthetic metalworking fluid.
10. 10. The semi-synthetic metalworking fluid of claim 1, wherein the base oil is present in an amount of 10 to 45 weight percent of the semi-synthetic metalworking fluid.
11. The semi-synthetic metalworking fluid of claim 1 , wherein the emulsifier is present in an amount of 5 to 20% by weight of the semi-synthetic metalworking fluid.
12. 10. The semi-synthetic metalworking fluid of claim 1, wherein the organic acid as a solubilizer is present in an amount of 3 to 10% by weight of the semi-synthetic metalworking fluid.
13. 10. The semi-synthetic metalworking fluid of claim 1, wherein the water is present in an amount of 20 to 60% by weight of the semi-synthetic metalworking fluid.
Citation Information
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