COMPOSITION FOR USE FOR OILS

DE602016093312T2Active Publication Date: 2025-08-20PHILLIPS 66 CO
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Patent Information

Application Number
DE602016093312
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2015-09-03
Filing Date
2016-08-30
Publication Date
2025-08-20
Estimated Expiration
2036-08-30

AI Technical Summary

Technical Problem

Antifoam agents struggle to maintain effectiveness in highly refined lubricating base stocks due to reduced solubility, necessitating the use of solubilizing agents to prevent suspension issues.

Method used

A method involving the formation of an antifoam solution with a shear device to produce a sheared antifoam solution with a maximum particle size less than 1 micron, using a shear mixer and shear screen with specific edge configurations, enhancing suspension stability.

Benefits of technology

The sheared antifoam solution maintains effective suspension and reduces the likelihood of filtration, improving antifoam performance in highly refined lubricating oils.

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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application is a PCT International application which claims the benefit of and priority to U.S. Provisional Application Ser. No. 62 / 213,730 filed September 3, 2015 and U.S. Application Serial No. 15 / 251,787 filed August 31, 2016, entitled "Composition for Use in Oils,".STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT

[0002] None.FIELD OF THE INVENTION

[0003] This invention relates to a composition for use in oils.BACKGROUND OF THE INVENTION

[0004] An antifoam agent is typically added to oils to reduce foaming and air entrainment. Antifoams are common additives in many types of lubricating oils and hydraulic fluids. The purpose of the antifoam is to retard the formation of stable foam on the surface of the oil in the sump, gearbox, or reservoir. Silicones or compounds containing silicone, and acrylic copolymers are popularly used in mineral-based lubricant formulations. Lighter grade turbine oils and hydraulic fluids are generally formulated with acrylate antifoam additives while heavier gear oils, paper machine oils, and crankcase lubricants may use silicone. US4024072A relates to a water-dispersible defoamer composition. US2014 / 221508 relates to a defoaming agent.

[0005] For the antifoam agents to be effective they need to have limited solubility in the lubricant in which they are added. As lubricating base stocks have become more highly refined the solubility has decreased to a point where it has been increasingly difficult to hold antifoams in suspension without the addition of a solubilizing agent.

[0006] There exists a need to increase the effectiveness of antifoam agents.BRIEF SUMMARY OF THE DISCLOSURE

[0007] The invention is as set up in claims 1, 3.

[0008] Disclosed herein is a method comprising forming an antifoam solution comprising an antifoam and a base stock. The antifoam solution is sheared with a shear device to produce a sheared antifoam solution. The sheared antifoam solution has a maximum particle size less than about 1 micron.

[0009] In an embodiment a method is taught of forming an antifoam solution comprising from about 40 wt% to about 60 wt% antifoam, wherein the antifoam is selected from the group consisting of: organo-modified siloxane, silicone, flurosilicone, polyacrylate and combinations thereof, and from about 40 wt% to about 60 wt% alkylated naphthalene base stock. This is followed by shearing the antifoam solution with a shear device to produce a sheared antifoam solution. In this embodiment the shear device comprise a shear mixer within a shear screen wherein the shear screen has a plurality of openings displaced throughout and the openings have at least four straight edges. Additionally, the sheared antifoam solution has a mean particle size from about 0.01 microns to about 0.025 microns and a maximum particle size of less than about 0.5 microns.

[0010] Disclosed herein is a composition comprising a sheared antifoam solution with a mean particle size from about 0.01 microns to about 0.5 microns and a maximum particle size of less than about 1 micron. In this composition the sheared antifoam solution comprises antifoam solution comprising an antifoam and a base stock.

[0011] In an embodiment, the composition can also comprise an antifoam solution with a mean particle size from about 0.01 microns to about 0.025 microns and a maximum particle size of less than about 0.5 micron, wherein the sheared antifoam solution comprises antifoam solution comprising an antifoam and a base stock; wherein the antifoam solution comprises: from about 40 wt% to about 60 wt% antifoam, the antifoam being selected from the group consisting of: organo-modified siloxane, silicone, flurosilicone, polyacrylate and combinations thereof; and from about 40 wt% to about 60 wt% base stock, the base stock being an alkylated naphthalene. In this embodiment the sheared antifoam solution is produced from: forming an antifoam solution comprising from about 40 wt% to about 60 wt% antifoam and from about 40 wt% to about 60 wt% alkylated naphthalene base stock; and shearing the antifoam solution with a shear device to produce a sheared antifoam solution. In this embodiment, the shear device can comprise a shear mixer within a shear screen wherein the shear screen has a plurality of openings displaced throughout and the openings have at least four straight edges.BRIEF DESCRIPTION OF THE DRAWINGS

[0012] A more complete understanding of the present invention and benefits thereof may be acquired by referring to the follow description taken in conjunction with the accompanying drawings in which: Figure 1 depicts an embodiment of the present invention.DETAILED DESCRIPTION

[0013] Turning now to the detailed description of the preferred arrangement or arrangements of the present invention, it should be understood that the inventive features and concepts may be manifested in other arrangements and that the scope of the invention is not limited to the embodiments described or illustrated. The scope of the invention is intended only to be limited by the scope of the claims that follow.

[0014] As shown in Figure 1, the method comprises 101 forming an antifoam solution comprising an antifoam and a base stock. It is then followed by 103 shearing the antifoam solution with a shear device to produce a sheared antifoam solution. In this disclosure the sheared antifoam solution has a maximum particle size of less than about 1 micron.

[0015] The method can also be used to create a composition comprising a sheared antifoam solution with a mean particle size from about 0.01 microns to about 0.5 microns and a maximum particle size of less than about 1 micron. In this composition the sheared antifoam solution comprises antifoam solution comprising an antifoam and a base stock.

[0016] The antifoam can be any conventionally known antifoam used to reduce foam in lubricating oils. In an embodiment, the antifoams that can be used include: organo-modified siloxane, silicone, flurosilicone, polyacrylate or combinations thereof.

[0017] The amount of antifoam used in the antifoam solution can vary. In one disclosure the amount of antifoam can range from about 1 wt% to about 99 wt%. In other disclosures the range of antifoam can be from about 10 wt% to about 90 wt%, about 20 wt% to about 80 wt%, about 30 wt% to about 70 wt%. In an embodiment the amount of antifoam can range from about 40 wt% to about 60 wt%, about 45 wt% to about 55 wt% or even from about 48 wt% to about 53 wt%.

[0018] The base stock can be any conventionally known base stock. Non-limiting examples of base stocks that can be used include: esters, polyalkylene glycols, alkylated naphthalenes, polyalphaolefins, petroleum mineral oils based on aromatic, naphthenic or paraffinic crude oils or combinations thereof. In an embodiment the base stock is alkylated naphthalenes.

[0019] The amount of base stock used in the antifoam solution can vary. In one disclosure the amount of base stock can range from about 1 wt% to about 99 wt%. In other disclosures the range of base stock can be from about 10 wt% to about 90 wt%, about 20 wt% to about 80 wt%, about 30 wt% to about 70 wt%. In an embodiment the amount of base stock can range from about 40 wt% to about 60 wt%, about 45 wt% to about 55 wt% or even from about 48 wt% to about 53 wt%.

[0020] In one embodiment it is possible that the antifoam solution only contains antifoam and base stock. In these examples it is possible that the antifoam solution does not contain a solubilizing agent. Solubilizing agents can be broadly defined as additional additives outside the core antifoam and base stock used to solubilize the antifoam or other additives into the base stock. Embodiments of the antifoam solution can either: consist of, consist essentially of or comprise of antifoam and base stock. It is envisioned that additional components added to the antifoam solution may reduce the effectiveness of the antifoam solution. Non-limiting examples of additional components that could be added to the antifoam solution include antiwear additives, extreme pressure additives, detergents, dispersants, demulsifiers, friction modifiers, anti-oxidants, rust inhibitors, corrosion inhibitors or even pour point depressants.

[0021] After preparing the antifoam solution the antifoam solution can then be sheared with a shear device to produce a sheared antifoam solution. The shear device can consist of, consist essentially of or comprise of a shear mixer within a shear screen.

[0022] The shearing for the antifoam solution can be performed in a flow through system or a batch system.

[0023] The shear mixer used as part of the shear device can be any conventionally known shear mixer. In one embodiment the shear mixer is a high-shear mixer that disperses, or transports the antifoam into the base stock. Shear mixers or high-shear mixers typically have a rotor or impeller connected to a blade, together with a stationary component and situated either in a tank containing the antifoam solution to be mixed or in a pipe through which the antifoam solution passes. In other embodiments the shear mixer can also be envisioned to be an Eppenbach homo-mixer, a colloid mill, a Gaulin homogenizer, or a cowles high shear mixer blade.

[0024] Outside the shear device a shear screen can be used to increase shear within the antifoam solution. The shear screen can be of any size or shape as long as it is larger than the outer diameter of the rotor blade. The shear screen is typically disposed around the outside of the rotor blade to assist in the shearing of the antifoam solution.

[0025] The speed of the rotor blade can range from about 500 to about 30,000 rpm. The selection of the rotor blade speed can be adjusted to achieve maximum sheer effect on the antifoam solution.

[0026] A shear screen is typically circular in shape but in different embodiments different shapes are possible. Examples of different shapes that are possible include oblong, square, star, crescent, or even octagon shaped. The height of the shear screen can be any height feasible to achieve maximum shear effect while balancing the need for flow of the antifoam solution into the rotor blades.

[0027] The multiple perforations around the shear screen aid in the shearing of the antifoam solution. The perforations can be of any size and shape. In one embodiment the perforations can be circular, triangular, square, rectangular, star shaped or even crescent shaped. In an alternate embodiment the perforations can have at least two straight edges (such as a pizza slice shape), at least three straight edges (such as a triangle or three straight edges and a dome on top), or even at least four straight edges (such as a square).

[0028] In one embodiment the multiple perforations are not limited to only one type of perforation and could contain multiple types of perforations.

[0029] In a disclosure the sheared antifoam solution can have a mean particle size from about 0.01 microns to about 0.5 microns. In an embodiment the sheared antifoam solution can have a mean particle size from about 0.01 microns to about 0.25 microns, or about 0.01 microns to about 0.1 microns, or about 0.01 microns to about 0.05 microns, or about 0.01 microns to about 0.025 microns. In a disclosure the maximum particle size of the sheared antifoam solution can be less than 1.0 microns, less than 0.75 microns. In an embodiment the maximum particle size of the sheared antifoam solution can be less than 0.5 microns, less than 0.25 microns or even less than 0.1 microns.

[0030] It is theorized that the small mean particle size and a small maximum particle size will assist the antifoams to be held in suspension. Further it is theorized the current method and composition will reduce the antifoam effect on particle number determination and reduce the possibility of the antifoams being filtered out of solution.

[0031] The length of time required to achieve the desired particle size can vary from 5 minutes to 24 hours depending on the volume of starting material and the relative mean particle sizes of the starting materials.

[0032] The following examples of certain embodiments of the invention are given. Each example is provided by way of explanation of the invention, one of many embodiments of the invention, and the following examples should not be read to limit, or define, the scope of the invention.

[0033] The treat rate of this method and composition could vary between 0.001 percent by mass to 99.000 percent by mass. The required treat rate is a function of the final lubricating oil composition, performance requirements and end use application.Example 1:

[0034] A batch lab scale mixer was used with a duplex mixing assembly with a general purpose disintegrating head. A polyacrylate antifoam was mixed 50:50 with a base stock. The results are shown below: Table 1 Base StockAlkylated NaphthaleneAlkylated NaphthaleneParaffinicParaffinicNaphthenicNaphthenicMixing MethodDuplex headPropDuplex headPropDuplex headPropMinimum Size, Micron0.2760.3570.2761.452.132.13Maximum Size, Micron14.51.655.218.6824.112.7Dn (10) micron0.3350.4770.3642.062.852.61Dn (50) micron0.4640.6500.5452.973.903.50Dn (90) micron0.6860.9651.044.745.825.17Solution StabilityStableStableSeparatesSeparatesStableStable Example 2:

[0035] A batch lab scale mixer was used with a shear screen. The shear screen used for this example did not have any straight edges and had perforations that were circular. A polyacrylate antifoam was mixed 50:50 with a alkylated naphthalene base stock. The results are shown below: Table 2 Time (minutes)0251010Minimum0.6750.3570.3570.010.01Size, MicronMaximum Size, Micron21.124.114.50.2430.276Dn (10) micron0.9930.4930.4050.01140.0113Dn (50) micron1.320.7080.5920.01630.0161Dn (90) micron1.861.140.9290.03220.0314 Example 3:

[0036] A batch lab scale mixer was used with a shear screen. The shear screen used for this example had perforations with four straight edges. A polyacrylate antifoam was mixed 50:50 with a alkylated naphthalene base stock. The results are shown below: Table 3 Time (minutes)0251010Minimum Size, Micron0.6750.4050.01140.010.01Maximum Size, Micron21.127.40.5940.2760.243Dn (10) micron0.9930.5750.01380.01130.0128Dn (50) micron1.320.8360.01840.01640.0192Dn (90) micron1.861.350.03460.03380.0402

[0037] In closing, it should be noted that the discussion of any reference is not an admission that it is prior art to the present invention, especially any reference that may have a publication date after the priority date of this application. At the same time, each and every claim below is hereby incorporated into this detailed description or specification as an additional embodiment of the present invention.

Claims

1. A composition comprising: a sheared antifoam solution with a mean particle size from about 0.01 microns to about 0.025 microns and a maximum particle size of less than about 0.5 microns, wherein the sheared antifoam solution comprises antifoam solution comprising an antifoam and a base stock; wherein the antifoam solution comprises: from about 40 wt% to about 60 wt% antifoam, the antifoam being selected from the group consisting of: organo-modified siloxane, silicone, flurosilicone, polyacrylate and combinations thereof; and from about 40 wt% to about 60 wt% base stock, the base stock being an alkylated naphthalene.

2. The composition of claim 1, wherein the antifoam solution does not contain a solubilizing agent.

3. A method for manufacture of the composition according to claim 1 or 2, comprising: forming an antifoam solution comprising from about 40 wt% to about 60 wt% antifoam, wherein the antifoam is selected from the group consisting of: organo-modified siloxane, silicone, flurosilicone, polyacrylate and combinations thereof, and from about 40 wt% to about 60 wt% alkylated naphthalene base stock; and shearing the antifoam solution with a shear device to produce a sheared antifoam solution, wherein the shear device comprises a shear mixer within a shear screen, wherein the shear screen has a plurality of openings displaced throughout, and the openings have at least four straight edges; and wherein the sheared antifoam solution has a mean particle size from about 0.01 microns to about 0.025 microns and a maximum particle size of less than about 0.5 microns.

4. The method of claim 3, wherein the antifoam solution does not contain a solubilizing agent.