Grease composition and grease-sealed bearing

The grease composition with specific viscosity and modulus, combined with ceramic elements, addresses grease leakage and heat issues in high-speed bearings, enhancing durability and reducing maintenance.

JP2025136187APending Publication Date: 2025-09-19NTN CORP
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Patent Information

Application Number
JP2024034442
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-06
Publication Date
2025-09-19

AI Technical Summary

Technical Problem

Existing grease compositions for high-speed bearings suffer from grease leakage and heat generation, which can shorten the bearing's lifespan, and existing lubrication methods like air-oil and oil-mist lubrication increase costs and complexity.

Method used

A grease composition with a base oil viscosity of 40 mm²/s at 40°C and a storage modulus of 10,000 Pa to 50,000 Pa, using a urea compound or barium soap thickener, and a ceramic rolling element bearing design with a specified grease volume, to prevent leakage and heat generation.

Benefits of technology

The grease composition effectively prevents leakage and suppresses heat generation in high-speed bearings, extending their lifespan and reducing maintenance costs.

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Abstract

To provide a grease composition which can prevent grease leakage even under high-speed rotation conditions while suppressing heat generation inside a bearing, and a grease-sealed bearing in which the grease composition is encapsulated.SOLUTION: A grease composition 7 encapsulated in a rolling bearing 1 comprises a base oil and a thickener. The base oil has a kinematic viscosity of less than 40 mm2 / s at 40°C, the base oil exhibits the maximum storage elastic modulus of 10,000 Pa to 50,000 Pa at 25°C and 1 Hz frequency, the thickener is an urea compound or a barium soap, and the content of the thickener relative to the total amount of the base oil and the thickener is 5 mass% to 30 mass%.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a grease composition and a grease-filled bearing filled with the grease composition, and in particular to a grease composition used in a bearing that supports a rotating shaft such as a main shaft (spindle) that rotates at high speed in a machine tool. [Background technology]

[0002] For example, the main spindle of a machine tool preferably rotates at high speed to increase machining efficiency, and various lubrication technologies are applied to its bearings. Known lubrication methods suitable for high-speed rotating spindles include air-oil lubrication and oil-mist lubrication. However, these lubrication methods require additional equipment such as compressed air and oil supply devices, which is one of the causes of increased initial and running costs for machine tools. In contrast, grease lubrication is a preferred lubrication method because it requires less maintenance.

[0003] Grease-filled rolling bearings for machine tool spindles are required to have high-speed durability. High-speed rotation can lead to grease leakage outside the bearing and heat generated by grease flow inside the bearing, shortening the bearing's lifespan.

[0004] For example, Patent Document 1 proposes a grease composition that prevents grease leakage by specifying the kinematic viscosity of the base oil at 40°C and the carbon number of the lithium soap thickener. Also, Patent Document 2 proposes that in a bearing device lubricated with a grease composition, compressed air that is at a lower temperature than the bearing is sent from the outside to suppress temperature increases in the bearing and extend its lifespan. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-199771 [Patent Document 2] Japanese Patent Application Laid-Open No. 2018-169040 Summary of the Invention [Problem to be solved by the invention]

[0006] However, in the grease composition of Patent Document 1, the kinematic viscosity of the base oil and the carbon number of the lithium soap are specified, but even if the grease composition has the same composition, depending on the proportion of thickener in the total amount of grease, grease leakage and heat generation may increase, potentially shortening the life of the bearing. Furthermore, in Patent Document 2, heat generation inside the bearing is suppressed, but compressed air passes through the bearing, potentially shortening its life due to grease leakage. Furthermore, a device and structure for feeding compressed air are required, which may increase manufacturing costs.

[0007] The present invention has been made in view of the above circumstances, and has an object to provide a grease composition that can prevent grease leakage and suppress heat generation inside a bearing even under high-speed rotation conditions, and a grease-filled bearing in which the grease composition is filled. [Means for solving the problem]

[0008] The grease composition of the present invention is a grease composition that is filled into a rolling bearing and contains a base oil and a thickener, wherein the kinematic viscosity of the base oil at 40°C is 40mm 2 / s, and the maximum storage modulus at a temperature of 25°C and a frequency of 1 Hz is 10,000 Pa to 50,000 Pa.

[0009] The kinematic viscosity of the above base oil at 40°C is 15mm 2 / s or more 30mm 2 / s.

[0010] The thickener is a urea compound or barium soap, and the content of the thickener relative to the total amount of the base oil and the thickener is 10% by mass to 30% by mass.

[0011] The grease-sealed bearing of the present invention is a rolling bearing comprising an inner ring and an outer ring, a plurality of rolling elements interposed between the inner ring and the outer ring, a cage that holds the rolling elements, a grease composition that is sealed in the bearing space between the inner ring and the outer ring, and a seal member that seals the bearing space, wherein the grease composition is the grease composition of the present invention.

[0012] The rolling elements are characterized in that they are made of ceramic.

[0013] The above rolling bearings have a dm·n value (the pitch circle diameter of the rolling element dm [unit: mm] and the number of rotations of the bearing ring n [unit: min -1 ] product) 100 × 10 4 The bearing is characterized in that it is a bearing for a machine tool main spindle used as described above.

[0014] The sealing member has one end fixed to one of the inner and outer rings and a seal lip portion at the other end facing the other ring without contacting it, and is characterized in that the amount of grease filled in the rolling bearing is 10% to 30% of the static space volume within the bearing. [Effects of the Invention]

[0015] The grease composition of the present invention is filled into a rolling bearing, contains a base oil and a thickener, and has a kinematic viscosity of 40 mm at 40°C. 2 / s, and the maximum storage modulus at a temperature of 25°C and a frequency of 1 Hz is 10,000 Pa to 50,000 Pa, so leakage to the outside of the bearing is prevented and heat generation inside the bearing can be suppressed even under high-speed rotation conditions.

[0016] The grease-sealed bearing of the present invention comprises an inner ring, an outer ring, a plurality of rolling elements, a cage, the grease composition of the present invention, and a seal member. The bearing further uses ceramic rolling elements and has a dm·n value of 100×10 4 The bearing can be suitably used as a bearing for the main spindle of a machine tool as described above. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a cross-sectional view showing an angular contact ball bearing, which is an example of a rolling bearing according to the present invention. [Figure 2] FIG. 1 shows a test using a rheometer. [Figure 3] FIG. 1 is a diagram showing a spindle using an angular contact ball bearing according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0018] The present inventors have conducted extensive research into grease compositions used to lubricate rolling bearings, particularly those used under high-speed rotation conditions, and have found that the storage modulus of a grease composition is related to grease leakage and heat generation inside the bearing, and that by adjusting the storage modulus and the kinematic viscosity of the base oil within a predetermined range, grease leakage can be prevented and heat generation in the bearing can be suppressed, even under high-speed rotation conditions. The present invention is based on this finding.

[0019] An example of a rolling bearing of the present invention will be described with reference to FIG. 1. FIG. 1 is an axial cross-sectional view of an angular contact ball bearing. As shown in FIG. 1, angular contact ball bearing 1 is an angular contact ball bearing in which the bearing space between inner ring 2 and outer ring 3, in which balls 4 are held in a cage 5, is sealed by a seal member 6 fixed to a locking groove provided on the inner circumferential surface of outer ring 3. Seal member 6 is a contact seal in which the seal lip portion on the inner diameter side contacts the seal groove. A grease composition 7 is enclosed around at least balls 4. A line connecting the contact points between balls 4 and the inner and outer rings 2 and 3 has a contact angle α with respect to the radial direction, allowing radial loads and unidirectional axial loads to be supported. In the present invention, the grease composition of the present invention is enclosed in the bearing space formed by inner ring 2, outer ring 3, and balls 4.

[0020] A circumferential groove-like grease pocket is formed on the inner peripheral surface of the outer ring 3, which serves to further prevent leakage of the grease composition.

[0021] In angular contact ball bearing 1, the iron-based metallic material constituting the bearing components of inner ring 2, outer ring 3, and balls 4 may be any material commonly used as a bearing material, such as high carbon chromium bearing steel (SUJ1, SUJ2, SUJ3, SUJ4, SUJ5, etc.; JIS G 4805), carburized steel (SCr420, SCM420, etc.; JIS G 4053), stainless steel (SUS440C, etc.; JIS G 4303), high-speed steel (M50, etc.), and cold-rolled steel.

[0022] Furthermore, the balls 4 can be made of not only iron-based metal materials but also lightweight ceramic materials. Using ceramic materials is preferable because, for example, it can suppress the increase in preload caused by centrifugal force during high-speed rotation. Examples of ceramic materials include silicon nitride, silicon carbide, aluminum oxide (alumina), zirconium oxide (zirconia), sialon, and glass. Among these, silicon nitride, which has excellent heat resistance, is more preferable.

[0023] The sealing member 6 may be a metal or rubber molded body alone, or a composite of a rubber molded body and a metal plate, plastic plate, or ceramic plate. From the viewpoint of durability and ease of attachment, a composite of a rubber molded body and a metal plate, as shown in Figure 1, is preferred. Furthermore, a non-contact seal may also be used, as will be described later.

[0024] Angular contact ball bearing 1 is suitable for use under high speed rotation conditions. For example, under high speed conditions, the dm·n value is 80×10 4 or more, preferably 100×10 4 The upper limit of the dm·n value is not particularly limited, but for example, it is 250×10 4 is.

[0025] In rolling bearings, when the bearing rotates at high speeds, centrifugal force can easily cause the grease composition to separate from the oil, and the thickener can be destroyed by stirring and shearing within the bearing, softening the grease composition and making it more likely to leak out of the bearing. Furthermore, when the bearing rotates at high speeds, heat generated by the grease flowing inside the bearing can easily shorten the life of the bearing. In response to these problems, the present invention uses a base oil with a relatively low viscosity and limits the storage modulus of the grease composition to a specified range, thereby preventing grease leakage and suppressing heat generation in the bearing.

[0026] The grease composition of the present invention contains a base oil and a thickener, and may contain various additives as needed. The grease composition has a storage modulus of 10,000 Pa to 50,000 Pa at a temperature of 25°C and a frequency of 1 Hz.

[0027] Dynamic viscoelasticity is a method of evaluating viscoelasticity by applying oscillatory (periodic) strain or stress to a linear viscoelastic body and measuring the corresponding stress or strain. The viscoelasticity obtained in this manner is called dynamic viscoelasticity, and the obtained elastic modulus of dynamic viscoelasticity is expressed in the form of a complex number. In the present invention, the grease composition is considered to be a linear viscoelastic body.

[0028] If the elastic modulus in dynamic viscoelasticity is defined as the complex modulus G* = G' + iG", then the real part G' of the complex modulus G* corresponds to the storage modulus, and the imaginary part G" corresponds to the loss modulus. The storage modulus G' represents the elastic component of dynamic viscoelasticity. Specifically, it refers to the ratio of elastic stress that is in phase with the strain that occurs when an external force is applied to a grease composition, and corresponds to the energy that can be elastically stored from the external force that the grease composition receives. On the other hand, the loss modulus G" represents the viscous component of dynamic viscoelasticity. Specifically, it refers to the ratio of the strain that occurs when an external force is applied to a grease composition that is out of phase with the strain, and corresponds to the energy that is dissipated as heat from the external force that the grease composition receives.

[0029] Thus, the storage modulus can be said to be an index of the shape stability of a grease. Furthermore, even for the same grease, the storage modulus varies greatly depending on the strain. In the case of grease, the storage modulus is high under low strain conditions, but viscosity dominates under high strain conditions, resulting in a low storage modulus. By setting the maximum storage modulus under this low strain to 10,000 Pa to 50,000 Pa, the grease composition exhibits adequate shape stability even during high-speed rotation, preventing grease leakage and suppressing bearing heat generation. If the storage modulus is less than 10,000 Pa, grease leakage may occur. On the other hand, if the storage modulus exceeds 50,000 Pa, fluidity decreases and heat generation becomes more likely. Furthermore, the storage modulus may be 10,000 Pa to 30,000 Pa, or 10,000 Pa to 20,000 Pa.

[0030] In the present invention, the storage modulus is measured using a rheometer at a temperature of 25°C and a frequency of 1 Hz. The rheometer preferably has a parallel plate cell as shown in Figure 2. Specific measurement conditions are shown in the Examples.

[0031] The base oil used in the grease composition of the present invention has a kinematic viscosity at 40°C (in the case of a mixed oil, the kinematic viscosity of the mixed oil) of 40mm 2 From the viewpoint of suppressing heat generation in the bearing, the kinematic viscosity is set to 35 mm 2 / s or less is preferable, 30 mm 2 On the other hand, the kinematic viscosity is preferably less than 10 mm / s. 2 / s or more is preferable, 15 mm 2 / s or more is preferable. 2 If the viscosity is less than 16 mm / s, the base oil will be more likely to evaporate. 2 / s~22mm 2 / s.

[0032] The base oil can be any oil normally used in rolling bearings, without any particular limitations. Examples include mineral oils such as paraffinic mineral oil and naphthenic mineral oil, synthetic hydrocarbon oils such as poly-α-olefin (PAO) oil and alkylbenzene oil, ester oil, ether oil, silicone oil, and fluorine oil. These base oils may be used alone or in combination of two or more.

[0033] Among the above base oils, it is preferable to use an ester oil or a base oil containing an ester oil in view of compatibility with other extreme pressure additives and rust inhibitors contained in the grease.

[0034] The thickener used in the grease composition of the present invention is not particularly limited, and any of the commonly used thickeners in the field of greases can be used. For example, soap-based thickeners such as metal soaps and complex metal soaps, and non-soap-based thickeners such as bentone, silica gel, urea compounds, and urea-urethane compounds can be used. Examples of metal soaps include sodium soaps, calcium soaps, aluminum soaps, and lithium soaps, while examples of urea compounds and urea-urethane compounds include diurea compounds, triurea compounds, tetraurea compounds, other polyurea compounds, and diurethane compounds.

[0035] Diurea compounds are obtained by reacting a diisocyanate component with a monoamine component. Examples of diisocyanate components include phenylene diisocyanate and diphenylmethane diisocyanate (MDI). Examples of monoamine components include alicyclic monoamines such as cyclohexylamine, aromatic monoamines such as p-toluidine, and aliphatic monoamines such as octylamine.

[0036] Among the above thickeners, aromatic urea alone or a mixture of aromatic urea and other compounds is preferably used because it is easy to adjust the storage modulus within the desired range. The aromatic diurea compound is obtained by reacting a diisocyanate component with an aromatic monoamine.

[0037] The thickener is preferably contained in an amount of 5 to 30% by mass relative to the total amount of base oil and thickener, and more preferably 10 to 30% by mass since this makes it easier to adjust the storage modulus within the desired range. In the case of a urea-based thickener, the thickener may be contained in an amount of 10 to 20% by mass.

[0038] The grease composition of the present invention may further contain other additives within the scope of the present invention, such as antioxidants such as amine-based, phenol-based, and sulfur-based compounds, rust inhibitors such as sulfonates, and oiliness agents such as esters and alcohols.

[0039] The worked penetration (JIS K 2220) of the grease composition is preferably in the range of 200 to 350. If the penetration is less than 200, oil separation may be small, resulting in poor lubrication. On the other hand, if the penetration exceeds 350, the grease becomes soft and tends to leak out of the bearing, which is undesirable.

[0040] In the grease-sealed bearing of the present invention, the amount of grease sealed in is preferably 10% to 40% (volume ratio) of the static space volume within the bearing interior. If it is less than 10% by volume, the amount of grease required for lubrication will be insufficient and the grease will be prone to depletion, while if it exceeds 40% by volume, the increased torque caused by stirring will make it more susceptible to heat generation. Here, the static space volume refers to the volume of the space between the inner ring, outer ring, and seal member that the rolling elements and cage do not pass through when the bearing rotates. The amount of grease sealed in may be 10% to 30% or may be 10% to 20% of the static space volume within the bearing interior.

[0041] In the angular contact ball bearing 1 shown in Figure 1, a contact seal is used as the seal member, but a non-contact seal in which a gap is provided between the seal lip and the opposing raceway portion may also be used. For example, a seal groove may be provided in the raceway portion (e.g., the outer peripheral surface of the inner ring) opposing the seal lip of the seal member, and a simple labyrinth may be formed by the seal lip and the seal groove. The grease composition of the present invention has a storage modulus within a specified range and can prevent grease leakage even in a non-contact seal.

[0042] As the rolling bearing of the present invention, in addition to the angular contact ball bearing shown in FIG. 1, deep groove ball bearings, cylindrical roller bearings, tapered roller bearings, spherical roller bearings, needle roller bearings, thrust cylindrical roller bearings, thrust tapered roller bearings, thrust needle roller bearings, thrust spherical roller bearings, etc. can also be used.

[0043] Figure 3 shows an example of a spindle device for a machine tool main spindle that uses the angular contact ball bearing of Figure 1. As shown in Figure 3, spindle device 11 has two rows of angular contact ball bearings 1 on the front side and a single row of cylindrical roller bearings 15 on the rear side, and is a high-speed model driven by built-in motor 12 equipped with stator 13 and rotor 14 located in the center. The rotating shaft driven by built-in motor 12 is supported by angular contact ball bearing 1 and cylindrical roller bearing 15. Cylindrical roller bearing 15 consists of inner ring 16, outer ring 17, cylindrical rollers 18, and cage 19. [Example]

[0044] The present invention will be specifically explained by way of examples and comparative examples, but is not limited to these examples in any way.

[0045] Examples 1 to 3, Comparative Examples 1 to 7 Ten types of test greases were prepared as shown in Tables 1 and 2. Tables 1 and 2 show the kinematic viscosity at 40°C and the type of thickener for each test grease.

[0046] <Measurement of storage modulus> The storage modulus was measured using a viscoelasticity measuring device (HAAKE MARS). As shown in Figure 2, each test grease G was sandwiched between parallel disk plates 8 with a diameter of 25 mm and a thickness of 1 mm. For each test grease, a periodic strain was applied by vibration by rotating the upper plate 9, and the shear stress as a response was measured. The measurement conditions are shown below. Frequency: 1Hz Strain amount: 1 x 10 -5 ~5×10 -3 Temperature: 25℃

[0047] The maximum storage modulus G' at a frequency of 1 Hz and a temperature of 25° C. was calculated using the following formula. The results are shown in Tables 1 and 2. G′=(σ0 / γ0)cosδ Here, σ0 indicates the stress at t=0, γ0 indicates the strain at t=0, and δ indicates the phase difference (the delay in response time when strain is applied).

[0048] <Bearing test> The test grease was filled into a 70 mm inner diameter angular contact ball bearing 5S-2LA-BNS014CLLB (non-contact seal) to prepare a test bearing. The test conditions were an ambient temperature of 25°C and a rotational speed of 21,500 min -1 , maximum surface pressure during stable operation is 1.8 to 2.0 GPa, dm·n value is approximately 200×10 4 The evaluation was carried out with the amount of grease filled being 15% of the static space volume inside the bearing. The load was a fixed position preload method commonly used in machine tools. Ceramic balls were used as the rolling elements.

[0049] The bearing life was evaluated as the time until the test bearing became too hot to rotate. Note that the bearing life in Tables 1 and 2 was calculated based on the life of Comparative Example 1. The results are shown in Tables 1 and 2.

[0050] Leakage outside the bearing was evaluated by visually inspecting each test bearing after operation. If the result was "yes," it was confirmed that the test grease had leaked from the seal groove. The results are shown in Tables 1 and 2.

[0051] [Table 1]

[0052] [Table 2]

[0053] As shown in Table 1, the kinematic viscosity of the base oil at 40°C is 40mm 2 The test bearings of Examples 1 to 3, which used grease compositions having a storage modulus of less than 10,000 Pa to 50,000 Pa measured above, exhibited a bearing life that was 3.0 times or more longer than that of Comparative Example 1.

[0054] In contrast, Comparative Examples 1-3 and 6-7, which had base oil viscosities equivalent to those of Examples 1-3, had short lifespans.Comparative Examples 1-2 generated more heat during operation than Examples 1-3.This is thought to be because the heat generated increased the surface pressure during stable operation, leading to early failure to rotate.The storage modulus of the grease compositions of Comparative Examples 1-2 exceeded 50,000 Pa.

[0055] On the other hand, the elastic storage modulus of Comparative Examples 6 and 7 was lower than that of Examples 1 to 3, being 5000 Pa or less. In these cases, leakage to the outside of the bearing was confirmed, and the leakage of the test grease resulted in a short life. Since the amount of grease filled was only 15% of the static space volume inside the bearing, the impact of leakage is thought to be particularly large.

[0056] From the above results, it is preferable that the storage modulus is 10,000 Pa to 50,000 Pa in order to prevent grease from leaking outside the bearing under high-speed rotation conditions and to suppress heat generation in the bearing.

[0057] In addition, even if the storage modulus satisfies this range, if the kinematic viscosity of the base oil at 40°C is 40mm 2 In the case of grease compositions with a viscosity of 40°C or more, the life was short (Comparative Examples 4 to 5). These grease compositions have a high viscosity, so they tend to starve, and compared to low viscosity products, they generate more heat and the surface pressure increases, which is thought to have led to early failure of rotation. From the above results, it can be seen that the 40°C kinematic viscosity of the base oil is 2 / s or less is preferred. [Industrial Applicability]

[0058] The grease composition of the present invention is suitable for use as a grease for rolling bearings used under high-speed rotation conditions, specifically, as a grease for rolling bearings in spindle devices for machine tool main shafts, because it prevents leakage of grease outside the bearing, allows operation with low temperature rise, and has a long life, even under high-speed rotation conditions. [Explanation of symbols]

[0059] 1 Angular contact ball bearing 2. Inner circle 3 outer ring 4 balls (rolling elements) 5 Cage 6 Sealing material 7 Grease composition 8 Rheometer 9 Upper Plate 10 Lower Plate 11 Spindle device 12 Built-in motor 13 Stator 14 rotors 15 Cylindrical roller bearings 16 Inner Circle 17 Outer ring 18 Cylindrical roller 19 Cage

Claims

1. A grease composition that is enclosed in a rolling bearing and contains a base oil and a thickener, The kinematic viscosity of the base oil at 40°C is 40 mm 2 / s or less, The grease composition is characterized in that the maximum storage modulus at a temperature of 25°C and a frequency of 1 Hz is 10,000 Pa to 50,000 Pa.

2. The kinematic viscosity of the base oil at 40°C is 15 mm 2 / s or more 30mm 2 2. The grease composition according to claim 1, wherein the viscosity of the grease composition is less than 1 / s.

3. 3. The grease composition according to claim 1, wherein the thickener is a urea compound or barium soap, and the content of the thickener relative to the total amount of the base oil and the thickener is 5% by mass to 30% by mass.

4. A rolling bearing comprising an inner ring and an outer ring, a plurality of rolling elements interposed between the inner ring and the outer ring, a cage that holds the rolling elements, a grease composition that is sealed in a bearing space between the inner ring and the outer ring, and a seal member that seals the bearing space, A grease-sealed bearing, wherein the grease composition is the grease composition according to claim 1 or 2.

5. 5. A grease-sealed bearing according to claim 4, wherein said rolling elements are made of ceramic.

6. The rolling bearing has a dm·n value of 100×10 4 5. A grease-sealed bearing according to claim 4, which is a bearing for a main spindle of a machine tool used as described above.

7. the seal member has one end fixed to one of the inner and outer rings, and a seal lip portion at the other end facing the other ring without contacting it, 5. A grease-sealed bearing according to claim 4, wherein the amount of grease sealed in said rolling bearing is 10% to 30% of the static space volume within said bearing.

Citation Information

Patent Citations

  • Grease composition and rolling bearing for use in machine tool axle

    JP2006199771A

  • Cooling structure of bearing device

    JP2018169040A