Method for coating sliding members, and sliding members
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- AISIN CORP
- Filing Date
- 2022-09-15
- Publication Date
- 2026-08-06
AI Technical Summary
【0011】 上記摺動部材は、一例として、筒状に形成されたテレスコ摺動チューブであり、該摺動部材の長手方向に沿う方向を摺動方向とし、前記コーティング剤が配設された領域と該コーティング剤が配設されていない領域とが交互に並ぶ所定のパターンは、該コーティング剤が配設された複数の領域に対して該コーティング剤が配設されていない前記摺動方向と平行なスリット状の複数の領域が交互に並ぶパターンである。よって、一例としては、該摺動部材の前記外側面に対して摩擦抵抗を減らすためのグリスが供給した場合に、該コーティング剤が配設されていないスリット状(直線溝状)の領域がグリスを必要十分に保持するため、該摺動部材とハウジング等との間の摩擦抵抗が減らされて、摺動部材の長期的な使用における耐久性が向上する。
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Abstract
Description
Technical Field
[0001] Embodiments of the present invention relate to a method for coating a sliding member and a sliding member.
Background Art
[0002] Conventionally, a tubular sliding member (for example, an outer tube) of a steering column that houses a steering shaft has a coating on its outer surface so as to be movable in the axial direction along the axis of the steering shaft. The coating on the outer surface is performed by a method of spraying paint with a spray. Further, as disclosed in, for example, Patent Document 1, there is a complicated ball bearing structure in which balls are interposed between a sliding tube and a housing that supports the sliding tube, and the sliding tube is slid by the rolling of the balls.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In order to reduce the frictional resistance during the sliding of the sliding tube, grooves for holding grease may be formed by coating on the outer surface. And, in order to form such a groove by spraying a coating agent on the outer surface of the sliding tube as in the conventional coating, it is necessary to perform a masking process on the outer surface before spraying.
[0005] Thus, in the formation of grooves for holding grease by conventional coating, masking treatment is required for the sliding tube, resulting in an increase in cost. Also, even when a complicated ball bearing structure is adopted to slide the sliding tube, the number of parts such as balls and ball retainers increases, resulting in an increase in cost.
[0006] Therefore, there is a challenge in manufacturing, for example, tubular sliding members used in vehicle steering systems and the like, at a low cost. [Means for solving the problem]
[0007] An embodiment of the present invention, a method for coating a sliding member, includes, as an example, a cleaning step of cleaning the sliding member; a coating pattern forming step, after performing the cleaning step, forming a predetermined pattern on the coating agent distributing surface of a coating plate in which areas where a coating agent for application to the outer surface of the sliding member is distributed and areas where the coating agent is not distributed are arranged alternately; a printing step, while rotating the sliding member and bringing the coating agent distributing surface of the coating plate with the predetermined pattern formed in contact with the outer surface of the sliding member, the coating plate and the sliding member are moved relative to each other along a plane direction parallel to the coating agent distributing surface, thereby printing and applying the coating agent to the outer surface in the predetermined pattern; and a curing step, after performing the printing step, curing the coating agent. Therefore, as an example, it is possible to reduce the amount of coating agent consumed compared to a case in which coating is performed by spraying the coating agent onto the outer surface of the sliding member. Furthermore, when setting the application pattern of the coating agent to the outer surface of the sliding member, the pattern formed on the coating plate is printed (transferred) to the outer surface, eliminating the need for masking the outer surface and thus reducing costs and process time. The coated sliding member has a predetermined pattern on its outer surface in which areas with and without the coating agent are alternately arranged. When grease is supplied to the outer surface to reduce frictional resistance during sliding between the sliding member and the housing, etc., the areas without the coating agent retain the grease sufficiently, thereby reducing frictional resistance between the sliding member and the housing, etc., and improving the durability of the sliding member during long-term use.
[0008] In the above-described method for coating the sliding member, as an example, the sliding member is a tubular telescopic sliding tube, the sliding direction is defined as the direction along the longitudinal direction of the sliding member, and in the printing process, a pattern is printed on the outer surface of the sliding member in which multiple slit-shaped (straight groove-shaped) areas parallel to the sliding direction and where the coating agent is not disposed are alternately arranged between multiple areas where the coating agent is disposed and multiple areas where the coating agent is not disposed. As a result, as an example, the multiple slit-shaped areas of the sliding member where the coating agent is not disposed can more effectively retain the grease, reducing frictional resistance between the sliding member and the housing, etc., enabling the sliding member to slide properly and further improving durability in long-term use.
[0009] As an example, the above method for coating a sliding member includes: a replacement step of replacing the coating plate with a replacement coating plate after the printing step or the curing step; a replacement coating pattern forming step of forming a different type of coating pattern on the surface of the replacement coating plate in which areas where a different type of coating agent with a different function than the coating agent is disposed and areas where the different type of coating agent is not disposed are arranged alternately; a different type printing step of moving the replacement coating plate and the sliding member relatively along a plane direction parallel to the surface of the different type of coating agent while rotating the sliding member, with the surface of the replacement coating plate on which the different type of coating agent has been formed in contact with the outer surface of the sliding member, thereby printing and applying the different type of coating agent separately to the outer surface of the sliding member; and a different type curing step of curing the different type of coating agent after performing the different type printing step. Thus, as an example, it is possible to impart the function of a different type of coating agent to the outer surface of a sliding member at low cost.
[0010] In one embodiment of the present invention, a sliding member is disposed in a steering device, and a predetermined pattern is formed on its outer surface by printing the coating agent using a coating plate, in which areas where the coating agent is disposed and areas where the coating agent is not disposed are arranged alternately. Therefore, in one example, it is possible to reduce costs compared to conventional methods.
[0011] The sliding member described above is, for example, a tubular telescopic sliding tube, and the sliding direction is along the longitudinal direction of the sliding member. The predetermined pattern in which the areas where the coating agent is provided and the areas where the coating agent is not provided are arranged alternately is a pattern in which the areas where the coating agent is provided are alternately surrounded by multiple slit-shaped areas parallel to the sliding direction where the coating agent is not provided. Therefore, for example, when grease is supplied to the outer surface of the sliding member to reduce frictional resistance, the slit-shaped (straight groove-shaped) areas where the coating agent is not provided hold the grease sufficiently, thereby reducing frictional resistance between the sliding member and the housing, etc., and improving the durability of the sliding member in long-term use.
[0012] As an example, the sliding member described above has an outer surface in which a different type of coating agent, which has a different function from the aforementioned coating agent, is applied. This area is separated from the area in which the aforementioned coating agent is applied, and the different type of coating agent is printed using a replaceable coating plate. Therefore, as an example, it is possible to provide the function of a different type of coating agent to the outer surface at low cost.
[0013] As an example, the above-mentioned sliding member has a cylindrical region formed on its outer surface where the coating agent is not disposed separately from the predetermined pattern in the sliding direction. Therefore, as an example, this cylindrical region facilitates the refilling of grease from the sliding direction into the slit-shaped (straight groove-shaped) region where the coating agent is not disposed. [Brief explanation of the drawing]
[0014] [Figure 1] Figure 1 is a side view schematically showing a steering device. [Figure 2] Figure 2 is a cross-sectional view schematically showing a steering shaft, a housing, a sliding member (outer tube), and an inner tube. [Figure 3] Figure 3 is a perspective view of the sliding member of Embodiment 1. [Figure 4] Figure 4 is an explanatory view for explaining a cleaning process. [Figure 5] Figure 5 is a perspective view for explaining a coating pattern forming process. [Figure 6] Figure 6 is a perspective view for explaining a printing process. [Figure 7] Figure 7 is a perspective view for explaining a curing process. [Figure 8] Figure 8 is a side view showing a first modification example of the sliding member of Embodiment 1. [Figure 9] Figure 9 is a side view showing a second modification example of the sliding member of Embodiment 1. [Figure 10] Figure 10 is a perspective view for explaining an exchange process and an exchange coating pattern forming process. [Figure 11] Figure 11 is a perspective view for explaining a different type of printing process. [Figure 12] Figure 12 is a perspective view for explaining a different type of curing process. [Figure 13] Figure 13 is a cross-sectional view of the sliding member of Embodiment 2. [Figure 14] Figure 14 is a cross-sectional view of a modification example of the sliding member of Embodiment 2.
MODE FOR CARRYING OUT THE INVENTION
[0015] Figure 1 is a side view schematically showing a steering device 10 including a sliding member 30 (hereinafter referred to as the sliding member 30 of Embodiment 1). The steering device 10 is mounted on a vehicle 1 such as an automobile. Note that the steering device 10 is not limited to this example.
[0016] As shown in FIG. 1, the steering device 10 includes a steering shaft 11, a steering wheel 12, a housing 14, a sliding member 30, a telescopic mechanism 15, a tilt mechanism 16, and an inner tube 13. Note that the steering device 10 is not limited to this example. Also, the sliding member 30 of Embodiment 1 is, for example, a cylindrical telescopic sliding tube and is an outer tube that houses the inner tube 13.
[0017] The steering shaft 11 is formed in a substantially cylindrical shape. In this specification, for convenience, the direction along the axis Ax of the steering shaft 11 is defined as the axial direction, the direction orthogonal to the axis Ax is defined as the radial direction, and the direction around the axis Ax is defined as the circumferential direction. Also, a direction parallel to the direction along the axis Ax of the steering shaft 11 is defined as the longitudinal direction (sliding direction) of the sliding member 30, which is a telescopic sliding tube.
[0018] The axial direction includes a first axial direction Dx1 and a second axial direction Dx2. The first axial direction Dx1 is one direction along the axis Ax. The second axial direction Dx2 is the opposite direction of the first axial direction Dx1. The first axial direction Dx1 is approximately the forward direction of the vehicle 1. The second axial direction Dx2 is approximately the rearward direction of the vehicle 1.
[0019] The steering wheel 12 is attached to the rear end portion of the steering shaft 11 in the second axial direction Dx2. The steering shaft 11 and the steering wheel 12 are integrally rotatable around the axis Ax.
[0020] The sliding member 30 is formed in a substantially cylindrical shape extending along the axis Ax. As shown in Figure 2, the steering shaft 11 is rotatably mounted inside the sliding member 30 via an inner tube 13 around the axis Ax. Figure 2 is a schematic cross-sectional view showing the steering shaft 11, housing 14, sliding member 30, and inner tube 13. As shown in Figure 1, both ends of the steering shaft 11 in the axial direction protrude from both ends of the sliding member 30 in the axial direction. The longitudinal direction and sliding direction of the sliding member 30 are the same as the axial direction of the steering shaft 11.
[0021] The housing 14 accommodates a portion of the sliding member 30. The other portion of the sliding member 30 protrudes from the end of the housing 14 in a second axial direction Dx2. The housing 14 holds the sliding member 30 so that it can slide in the axial direction.
[0022] The telescopic mechanism 15 shown in Figure 1 moves the sliding member 30 axially relative to the housing 14. As a result, the inner tube 13, a portion of the steering shaft 11, and the steering wheel 12 also move axially along with the sliding member 30. The telescopic mechanism 15 may be driven by a motor to move the sliding member 30, or it may be a structure in which the driver moves the sliding member 30 manually.
[0023] The tilt mechanism 16 shown in Figure 1 is mounted to the vehicle body of the vehicle 1 so that the housing 14 can swing. As the tilt mechanism 16 swings the housing 14, the tilt angles of the steering shaft 11, steering wheel 12, inner tube 13, and sliding member 30 are changed along with the housing 14.
[0024] As shown in Figures 1 and 2, the steering shaft 11 comprises, for example, a first shaft 111 and a cylindrical second shaft 112 that is spline-coupled to the rear end of the first shaft 111 and rotates circumferentially. The first shaft 111 and the second shaft 112 are made of a material such as metal. However, the materials of the first shaft 111 and the second shaft 112 are not limited to this example.
[0025] The first shaft 111 and the second shaft 112 are formed, for example, in a substantially cylindrical shape extending in the axial direction. The axis Ax of the steering shaft 11 substantially coincides with the axis of the first shaft 111 and the axis of the second shaft 112. As shown in Figure 2, the first shaft 111 has an end 111b. End 111b is the end of the first shaft 111 in the second axial direction Dx2. The end of the first shaft 111 opposite to end 111b is the end in the first axial direction Dx1. This end is connected to an intermediate shaft, for example, via a universal joint.
[0026] As shown in Figure 2, the second shaft 112 has two ends 112a and 112b. End 112a is the end of the second shaft 112 in the first axial direction Dx1. End 112b is the end of the second shaft 112 in the second axial direction Dx2. The steering wheel 12 shown in Figure 1 is attached to end 112b.
[0027] Since the second shaft 112 is substantially cylindrical, a through hole 113 is provided in the second shaft 112. The through hole 113 penetrates the second shaft 112 in the axial direction. At least a portion of the first shaft 111 is accommodated in the through hole 113. As a result, a portion of the first shaft 111 protrudes from the end 112a of the second shaft 112 in the first axial direction Dx1.
[0028] As shown in Figure 2, a metal inner tube 13 is provided within the housing 14 as a cylindrical support member that houses the steering shaft 11 and supports it so that it can rotate around its axis Ax. Specifically, the second shaft 112 housed within the inner tube 13 is rotatably supported via a bearing 133 disposed at the end of the inner tube 13 in the second axial direction Dx2. However, relative axial movement between the second shaft 112 and the inner tube 13 is restricted, and the second shaft 112 and the inner tube 13 are configured to move axially as a single unit.
[0029] Furthermore, within the housing 14, a metal sliding member 30, which is an outer tube, is provided as a cylindrical member that houses the inner tube 13 and normally holds the inner tube 13 in a predetermined position. That is, the sliding member 30 is normally fitted onto the inner tube 13 so that it is integrated with the inner tube 13. When a load exceeding a predetermined value is applied to the steering shaft 11, it is configured to allow axial relative movement of the inner tube 13 with respect to the sliding member 30 (and consequently, axial movement of the second shaft 112). Specifically, for example, in the event of a collision with the vehicle 1, a large load (collision load) in the first axial direction Dx1 may be applied to the steering wheel 12 from the driver. In this case, the inner tube 13 and the second shaft 112 move in the first axial direction Dx1 while a certain frictional force is generated in a sliding part such as an elastic bush (not shown) provided between the inner tube 13 and the sliding member 30, absorbing the impact when the driver collides with the steering wheel 12. Furthermore, the space between the housing 14 and the sliding member 30 does not function as an energy absorption means as described above.
[0030] As shown in Figure 2, the sliding member 30 is slidably installed inside the housing 14. An extension mechanism is provided between the housing 14 and the sliding member 30, allowing the position of the steering wheel 12 to be adjusted according to the driver's physique, etc. The sliding member 30 is supported by the housing 14 via bearings 14a and 14b, for example, and is held in place by friction mechanisms 14c and 14d using disc springs, etc., which press the sliding member 30 against the inner surface of the housing 14. The friction mechanisms 14c and 14d are arranged, for example, at a predetermined distance in the axial direction, ensuring smooth sliding so that there is no play in the steering wheel 12 shown in Figure 1.
[0031] As shown in Figures 1 and 3, the outer surface 301 of the sliding member 30 has a predetermined pattern formed in which areas 311 (hereinafter referred to as coated areas 311) on which the coating agent 31 is provided and areas 32 (hereinafter referred to as uncoated areas 32) on which the coating agent 31 is not provided are arranged alternately, so that it can slide smoothly in a first axial direction Dx1 or a second axial direction Dx2 along the axis Ax of the steering shaft 11. In the first embodiment, the predetermined pattern on the outer surface 301 of the sliding member 30 is a pattern in which the uncoated areas 32 extend in a slit shape (straight groove shape) relative to the linear coating agent 31 that extends parallel to the longitudinal direction (sliding direction) of the sliding member 30. This pattern of alternating coated areas 311 and uncoated areas 32 goes around the outer surface 301 of the sliding member 30 in the circumferential direction. In each figure, the coating agent 31 is hatched to distinguish it from other parts.
[0032] In Embodiment 1, the coated area 311 of the sliding member 30 is, for example, rectangular in plan view, with its longitudinal direction being the same as the longitudinal direction of the sliding member 30, and the coating agent 31 is raised on the outer surface 301 to a predetermined thickness (for example, several mm). Therefore, the uncoated areas 32, which are alternately arranged with the coated area 311 in the circumferential direction of the sliding member 30, are each rectangular slit-shaped (straight groove-shaped) in plan view. Furthermore, the coating agent 31 may be colored, for example, to facilitate periodic inspection of the sliding member 30.
[0033] Grease is supplied to the outer surface 301 of the sliding member 30 shown in Figure 1 to reduce frictional resistance between the sliding member 30 and the housing 14 when the sliding member 30 slides in the axial direction. When the sliding member 30 is housed in the housing 14, the grease is sufficiently retained by the slit-shaped (straight groove-shaped) uncoated area 32.
[0034] In the sliding member 30 of Embodiment 1 shown in Figures 1 and 3, both ends in the longitudinal direction of the plurality of regions 311 on which the coating agent 31 is disposed are located, for example, inside the circumferential edges at both ends of the cylindrical sliding member 30. Therefore, cylindrical regions 324 on which the coating agent 31 of a predetermined width is not disposed are formed cylindrically so as to encircle the sliding member 30 once, extending inward in the longitudinal direction from both circumferential edges of the sliding member 30. In addition, the sliding member 30 may be configured without cylindrical regions 324, such that the coating regions 311 on the outer surface 301 extend from one end to the other of the sliding member 30.
[0035] For example, the coating of the outer surface 301 of the sliding member 30 in Embodiment 1 with the coating agent 31 is performed by implementing the coating method of this embodiment, which will be described below. The following describes each step when implementing the coating method of the sliding member in this embodiment.
[0036] (1) Washing process First, a cylindrical body 300, shown in Figure 4, which will serve as the base material for the sliding member 30 shown in Figure 1, is prepared. The cylindrical body 300 is formed into a cylindrical shape from a predetermined metal material (such as SUS) by die casting, hot rolling, or hot extrusion. The outer surface 301 of the cylindrical body 300 is a smooth cylindrical surface.
[0037] The cylindrical body 300 is transported, for example, to a cleaning device 70 shown in Figure 4. The cleaning device 70 is equipped with a water tank 701 that can submerge the entire cylindrical body 300 and stores cleaning water 704 (for example, pure water). The cleaning device 70 is equipped with an ultrasonic transducer 703 connected to a high-frequency power supply 702 in the water tank 701, and can ultrasonically clean the cylindrical body 300. The cleaning of the cylindrical body 300 may also be done by spray / shower cleaning or brush cleaning, etc. After the outer surface 301 of the cylindrical body 300 has been cleaned for a predetermined time in the cleaning device 70, the cylindrical body 300 is removed from the cleaning device 70 and blow-dried or spin-dried, etc.
[0038] (2) Coating pattern formation process The cleaned cylindrical body 300 is transported to the coating apparatus 8 shown in Figure 5. The coating apparatus 8 includes, for example, a pressing plate 81 that can move up and down, a coating plate 82 disposed below the pressing plate 81, a moving mechanism 83 that moves the coating plate 82 in a straight line in the X direction, a rotating mechanism 84 that rotatably supports the cylindrical body 300, and a coating agent supply mechanism 85 that supplies liquid coating agent 31 to the coating plate 82.
[0039] For convenience, the XYZ Cartesian coordinate system will be used in the explanation of the coating pattern formation process and the subsequent processes. The X direction includes the +X and -X directions. The Y direction includes the +Y and -Y directions. The Z direction includes the +Z direction (up) and the -Z direction (down). For example, the XY plane is the horizontal plane, and the Z direction is the vertical direction.
[0040] The pressing plate 81, which is made of metal or resin, extends in the Y direction for a length equal to or greater than the length of the cylindrical body 300. In Figure 5, the longitudinal direction of the cylindrical body 300 is parallel to the Y direction. The pressing plate 81 is also movable up and down by a cylinder mechanism (not shown), and can press the coating plate 82 downward with a predetermined pressing force. The pressing plate 81 is also called a squeegee. For example, the lower end of the pressing plate 81 is rounded in an R shape to prevent damage to the coating plate 82 it contacts.
[0041] The simplified moving mechanism 83 is, for example, an electric slider mechanism composed of a motor and a ball screw, which moves the coating plate 82 in a straight line in the X direction while controlling the moving speed of the coating plate 82.
[0042] The simplified rotating mechanism 84 includes, for example, a rotating shaft whose axial direction is the Y direction, and a motor connected to the rotating shaft and rotating it. The rotating shaft rotatably supports the cylindrical body 300 that has been transported to the coating apparatus 8, and the cylindrical body 300 rotates together with the rotating shaft, which rotates at a predetermined rotational speed under the control of the motor. For example, a pressing plate 81 is positioned directly above the outer surface 301 of the cylindrical body 300, which is rotatably supported by the rotating mechanism 84, in the Z direction, with a predetermined gap between them. The coating plate 82 is able to reciprocate in the X direction within this predetermined gap.
[0043] The coating plate 82 is formed of, for example, a resin material with a certain degree of elasticity, and extends in the X direction for a length greater than or equal to the outer circumference of the cylindrical body 300. The length (width) of the coating plate 82 in the Y direction is set to be the same as or greater than the length of the cylindrical body 300. For example, both ends of the coating plate 82 in the X direction are supported by support members (not shown), and the coating plate 82 is able to bend downward when pressed downward (in the -Z direction) from the pressing plate 81.
[0044] In Figure 5, the upper surface of the coating plate 82 facing the +Z direction is a substantially flat pressed surface 820 that the lower end of the pressing plate 81 contacts. The lower surface of the coating plate 82 facing the -Z direction is a coating agent placement surface 821 on which the coating agent 31 is placed. The coating agent placement surface 821 is parallel to the XY plane.
[0045] As shown in Figures 5 and 6, the coating agent placement surface 821 has, for example, straight grooves 822 extending in the Y direction and rectangular in plan view, formed at equal intervals in the X direction. In Figure 5, the state in which the coating agent 31 is filled into the straight grooves 822 is shown. The ends of the straight grooves 822 in the Y direction are located inward from, for example, the sides of the coating plate 82 in the Y direction. That is, the ends of the straight grooves 822 in the Y direction do not open to the sides of the coating plate 82 in the Y direction, so that the liquid coating agent 31 does not leak out from these ends. Furthermore, the longitudinal direction of the cylindrical body 300, which is rotatably supported by the rotating mechanism 84, and the extending direction of each straight groove 822 are parallel to the Y direction, respectively.
[0046] For example, supply holes (not shown) are formed on the top surface of the straight groove 822 in the Z direction, penetrating the coating plate 82 in the Z direction. These supply holes (not shown) are formed in multiple locations on the top surface of the straight groove 822 at equal intervals in the Y direction. The top surface portion of the straight groove 822 may be formed of a mesh material through which the coating agent 31 can pass.
[0047] The coating agent supply mechanism 85 includes, for example, a supply nozzle 850 arranged above the coating plate 82 and alongside the pressing plate 81, and capable of moving up and down by a cylinder mechanism (not shown), and a coating agent supply source 851 which communicates with the supply nozzle 850 and is composed of a dispenser or the like that delivers liquid coating agent 31.
[0048] The liquid coating agent 31 supplied to the coating plate 82 is, for example, a UV-curable resin with a certain degree of viscosity. The coating agent 31 also contains, for example, PTFE (polytetrafluoroethylene) as a solid lubricant. The binder of the coating agent 31 may be a resin that can be cured by visible light, infrared light, or other invisible light.
[0049] In the coating pattern formation process, for example, as shown in Figure 5, the coating plate 82 moves in the Y direction by the moving mechanism 83, and the coating agent 31 is supplied from the supply nozzle 850 of the coating agent supply mechanism 85 to the pressed surface 820, which is the upper surface of the coating plate 82. In parallel with the supply of the coating agent 31 to the pressed surface 820 of the coating plate 82, the pressing plate 81, which descends toward and contacts the pressed surface 820, applies force toward the pressed surface 820 of the coating plate 82, which is in a state where the coating agent 31 has been supplied. As a result, the coating agent 31 flows into each of the straight grooves 822 of the coating plate 82 as it moves in the Y direction, from supply holes or mesh portions (not shown) formed on the top surface of the grooves. Then, as the coating plate 82 passes below the pressing plate 81 from one end in the +X direction to the other end in the -X direction, the coating agent 31 is filled linearly into each of the straight grooves 822. In other words, a pattern is formed on the coating agent placement surface 821 of the coating plate 82 in which straight grooves 822, which are areas where the coating agent 31 is placed, and adjacent areas 823 in the X direction within the straight grooves 822 where the coating agent 31 is not placed are arranged alternately.
[0050] (3)Printing process As shown in Figure 5, the moving mechanism 83 positions the coating plate 82 at the printing start position such that the end portion of the coating plate 82 on the +X direction side is located between the cylindrical body 300 and the pressing plate 81. The rotating mechanism 84 rotates the cylindrical body 300 at a predetermined rotational speed in a counterclockwise direction when viewed, for example, from the -Y direction. Furthermore, the pressing plate 81 descends and contacts the pressed surface 820 of the coating plate 82, causing the pressed portion of the coating plate 82, which has a certain degree of elasticity, to bend slightly toward the -Z direction. Then, a portion of the coating agent application surface 821 comes into contact with the outer surface 301 of the cylindrical body 300 from end to end in the Y direction.
[0051] Furthermore, as the moving mechanism 83 feeds the coating plate 82 in the +X direction at a predetermined feed speed, the coating agent 31 filled in the straight grooves 822 of the coating plate 82 is pressed against the outer surface 301 of the rotating cylindrical body 300 and applied. Continuously, the outer surface 301 comes into contact with the adjacent area 823 in the straight grooves 822 of the coating plate 82 where no coating agent 31 is provided. As this is repeated, a predetermined pattern is formed on the outer surface 301 of the cylindrical body 300 as shown in Figure 6, in which coated areas 311 and uncoated areas 32 are arranged alternately. In this embodiment, the pattern is one in which the uncoated areas 32 extend in a slit shape (straight groove shape) relative to the straight coating agent 31 that extends parallel to the longitudinal direction (sliding direction) of the sliding member 30.
[0052] As the coating plate 82 moves in the +X direction, the cylindrical body 300 rotates, for example, 360 degrees under the motor control of the rotating mechanism 84, forming a pattern in which coated areas 311 and uncoated areas 32 are arranged alternately, so as to circle the outer surface 301 of the sliding member 30 in the circumferential direction. Subsequently, the pressing plate 81 rises and separates from the coating plate 82, and consequently, the deflected coating plate 82 separates from the cylindrical body 300. Then, the cylindrical body 300, whose rotation has stopped, is removed from the rotating mechanism 84.
[0053] The coating pattern formation process and the printing process may be carried out in parallel. Alternatively, the coating plate 82 or the like may be positioned below the cylindrical body 300, and the coating agent 31 may be printed from below the outer surface 301 of the cylindrical body 300.
[0054] For example, in the printing step of the coating method of this embodiment, as shown in Figure 6, cylindrical regions 324 in which a predetermined width of coating agent 31 is not disposed are formed around the outer surface 301, extending inward in the longitudinal direction from both circumferential edges in the Y direction of the cylindrical body 300.
[0055] (4) Curing process After the printing process is complete, the cylindrical body 300, with the coating agent 31 printed onto its outer surface 301 to a predetermined thickness, is transported to, for example, the ultraviolet irradiation device 73 shown in Figure 7. The ultraviolet irradiation device 73 is, for example, a mercury lamp or an LED lamp that irradiates ultraviolet light 734 of a predetermined wavelength downward. The cylindrical body 300 is supported and rotatable in the ultraviolet irradiation device 73 by a rotation axis (not shown) whose axial direction is the longitudinal direction of the cylindrical body 300. As the cylindrical body 300 rotates, the ultraviolet light 734 is irradiated onto the outer surface 301 for a predetermined time, causing the coating agent 31 shown in Figure 7 to harden. Upon completion of the hardening process, the sliding member 30 of Embodiment 1 shown in Figures 1, 3, and 7 is completed.
[0056] The coating agent 31 cured by ultraviolet irradiation exhibits excellent adhesion to the cylindrical body 300, grease resistance, impact resistance, and abrasion resistance. The curing process may also be carried out within the coating apparatus 8, as shown in Figures 5 and 6, by equipping the coating apparatus 8 with an ultraviolet irradiation mechanism.
[0057] The curing process is not limited to the ultraviolet irradiation method described above. For example, if the coating agent 31 used in the printing process uses a thermosetting resin as a binder and PTFE, MoS2 (molybdenum disulfide), or graphite as a solid lubricant, the coating agent 31 printed on the outer surface 301 of the cylindrical body 300 may be baked in an electric furnace. The baked coating agent 31 will have the same performance as the coating agent 31 cured by ultraviolet irradiation in terms of adhesion to the cylindrical body 300, grease resistance, impact resistance, and abrasion resistance.
[0058] Furthermore, the curing process using ultraviolet irradiation can be completed in a shorter time compared to the curing process using an electric furnace. For example, the curing process using ultraviolet irradiation can be completed in approximately 1 / 240th of the time required for the curing process using an electric furnace. In addition, the curing process using ultraviolet irradiation can be carried out in a smaller space and consume less power compared to the curing process using an electric furnace.
[0059] The sliding member 30 of Embodiment 1 of the present invention, which is installed in the steering device 10 shown in Figure 1, has an outer surface 301, and a predetermined pattern of coated areas 311 and uncoated areas 32 is formed on the outer surface 301 by printing the coating agent 31 using the coating plate 82 as described above. In other words, compared to a sliding member whose outer surface 301 is coated by spray spraying, for example, manufacturing costs can be reduced. This is because masking treatment of the outer surface of the sliding member, which is required when spray spraying is performed, is not necessary, and costs are reduced because no masking material is used. In addition, with spray spraying, the coating efficiency of the coating agent on the outer surface of the sliding member is about 30%, resulting in a large loss of coating agent. In Embodiment 1, the sliding member 30 has a predetermined pattern of coating on its outer surface 301 by printing the coating agent 31 using the coating plate 82, so the coating efficiency of the coating agent 31 can be made about 90%, and the loss of coating agent 31 is reduced. Furthermore, the sliding member 30 has a predetermined pattern on its outer surface 301 in which coated areas 311 and uncoated areas 32 are arranged alternately. Therefore, when grease is supplied to the outer surface 301 to reduce frictional resistance between the sliding member 30 and the housing 14 during axial sliding as shown in Figure 2, the uncoated areas 32 can hold the grease in sufficient quantity. Thus, frictional resistance between the sliding member 30 and the housing 14 is reduced, improving the durability of the sliding member 30 during long-term use.
[0060] Furthermore, the sliding member 30 in Embodiment 1 is, for example, a cylindrical telescopic sliding tube (outer tube), and the sliding direction is defined as the direction along the longitudinal direction of the sliding member 30. The predetermined pattern in which coated areas 311 and uncoated areas 32 are arranged alternately is a pattern in which multiple coated areas 311 and multiple slit-shaped (straight groove-shaped) uncoated areas 32 parallel to the sliding direction are arranged alternately. As a result, multiple areas 32 in which the slit-shaped coating agent 31 parallel to the sliding direction of the sliding member 30 housed in the housing 14 shown in Figure 2 is not provided can more effectively retain the grease, further improving the durability of the sliding member 30 and the housing 14 during long-term use. In addition, the sliding member 30 can reduce the cost of the steering device 10 compared to cases such as employing a complex ball bearing structure between the housing 14 and the outer surface 301 of the sliding member 30.
[0061] A first modified example of the sliding member 30 of Embodiment 1 will be described below with reference to Figure 8. For example, the coated area 311 may correspond to a location on the outer surface 301 of the sliding member 30 where the frictional resistance between it and the inner surface of the housing 14, as shown in Figure 2, is particularly high. That is, as shown in Figure 2, the sliding member 30 is pressed against and held by the friction mechanisms 14c and 14d, which use disc springs or the like, so the frictional resistance is particularly high at the locations on the outer surface 301 of the sliding member 30 that come into contact with the friction mechanisms 14c and 14d, which are arranged at a predetermined distance in the sliding direction (axial direction) of the sliding member 30.
[0062] For example, in the first modified sliding member 30A shown in Figure 8, a first region is formed on the outer surface 301 of the sliding member 30A in the circumferential direction, in which coated regions 311 and slit-shaped uncoated regions 32 are alternately arranged, corresponding to the friction mechanism 14c shown in Figure 2. Then, a second region is formed on the outer surface 301 at a predetermined distance from the first region in the sliding direction (longitudinal direction) of the sliding member 30A, in which coated regions 311 and slit-shaped uncoated regions 32 are alternately arranged, corresponding to the friction mechanism 14d shown in Figure 2. The area between the first region and the second region in the sliding direction of the outer surface 301 of the sliding member 30A is a cylindrical region 326 where no coating agent 31 is provided.
[0063] The coating of the sliding member 30A in the first modified example shown in Figure 8 is performed by carrying out substantially the same steps as those described earlier in the coating method. The difference in each of the steps described earlier is, for example, that the coating plate used in the coating pattern formation step and the printing step is one in which a strip-shaped area is used in the central part of the coating agent placement surface 821 in the Y direction of the coating plate 82 shown in Figure 5, in which no multiple straight grooves 822 are formed. This makes it possible to form a cylindrical area 326 on the outer surface 301 of the sliding member 30A in which the coating agent 31 is not placed during the printing step.
[0064] For example, the cylindrical region 324 on the outer surface 301 of the sliding member 30 in Embodiment 1 shown in Figures 1 and 3, and the cylindrical regions 324 and 326 on the outer surface 301 of the sliding member 30A in the first modified example shown in Figure 8, can function as grease replenishment surfaces that facilitate the refilling of grease from the sliding direction relative to the uncoated region 32.
[0065] For example, the sliding direction is defined as the direction along the longitudinal direction of the sliding member 30, and a predetermined pattern in which areas where the coating agent 31 is provided and areas where the coating agent 31 is not provided are arranged alternately may be a pattern in which multiple areas where the coating agent 31 is provided and multiple areas where the coating agent 31 is not provided are arranged alternately on the outer surface 301 as spiral slits or wavy slits extending in the longitudinal direction.
[0066] The sliding member 30B shown in Figure 9 is a second modification of the sliding member 30 of Embodiment 1. For example, the sliding direction is defined as the direction along the longitudinal direction of the sliding member 30B, and a predetermined pattern in which regions 313 where the coating agent 31 is provided and regions 328 where the coating agent 31 is not provided are arranged alternately is a pattern in which multiple regions 328 where the coating agent 31 is not provided form a grid-like slit on the outer surface 301 relative to multiple regions 313 where the coating agent 31 is provided. This grid-like pattern is also formed on the outer surface 301 by the coating method described above.
[0067] In the steering device 10 shown in Figure 1, for example, the outer circumference of the bearing of a worm gear (not shown) may be made the sliding member of the present invention, thereby simplifying the bushing that supports the bearing of the worm gear. Alternatively, for example, the sliding member that supports the rotation axis of the tilt mechanism 16 shown in Figure 1 may be the sliding member of the present invention.
[0068] In the coating method of this embodiment, for example, after the curing process, the following steps may be sequentially performed on the sliding member 30 of Embodiment 1: the replacement process, the replacement coating pattern formation process, and the different type of printing process.
[0069] (5) Replacement process For example, in the coating apparatus 8 shown in Figure 6, the connection between the moving mechanism 83 and the coating plate 82 is released, and the coating plate 82 is replaced with a new replacement coating plate 86 shown in Figure 10. Also, the sliding member 30 of Embodiment 1 shown in Figure 7 is transported from the ultraviolet irradiation device 73 to the coating apparatus 8 shown in Figure 10.
[0070] The replacement coating plate 86 shown in Figure 10 is made of, for example, a resin material with a certain degree of elasticity, and extends in the X direction for a length greater than or equal to the outer circumference of the cylindrical body 300. The width of the replacement coating plate 86 in the Y direction is set to be the same as or greater than the length of the cylindrical body 300, for example. For example, the replacement coating plate 86, whose ends in the X direction are supported by support members (not shown), can bend downward when pressed downward from the pressing plate 81.
[0071] The upper surface of the replacement coating plate 86 is a substantially flat pressed surface 860 to which the lower end of the pressing plate 81 abuts. The lower surface of the replacement coating plate 86 is a surface 861 for the application of a different type of coating agent 35. The surface 861 for the application of the different type of coating agent is parallel to the XY plane.
[0072] The surface 861 for distributing the different type of coating agent has, for example, straight grooves 862 that extend in the Y direction and are rectangular in plan view, formed at equal intervals in the X direction. The ends of the straight grooves 862 in the Y direction are not open on both sides of the replacement coating plate 86 in the X direction, so that the liquid different type of coating agent 35 does not leak out from these ends. In addition, the longitudinal direction of the cylindrical body 300, which is rotatably supported by the rotating mechanism 84 shown in Figure 10, and the extending direction of each straight groove 862 are parallel to the Y direction.
[0073] For example, the groove width of the straight groove 862 in the X direction is set to be smaller than the width of the uncoated area 32 formed on the outer surface 301 of the cylindrical body 300 shown in Figure 10. Also, for example, the groove top surface of the straight groove 862 has a curved cross-sectional shape that gradually rounds towards the top. The groove top surface of the straight groove 862 has multiple supply holes (not shown) formed at equal intervals in the X direction, or it is formed of a mesh material that allows another type of coating agent 35 to pass through.
[0074] When the coating plate 82 (see Figure 5) is replaced with a replacement coating plate 86, the coating agent supplied to the replacement coating plate 86 by the coating agent supply mechanism 85 shown in Figure 10 is also changed from coating agent 31 to a different type of coating agent 35. Coating agent 31 and the different type of coating agent 35 have different functions. That is, the liquid different type of coating agent 35 supplied to the replacement coating plate 86 is, for example, a UV-curing conductive coating agent in which a conductive polymer is mixed as a filler in the binder. Note that the different type of coating agent 35 is not limited to a UV-curing type; a thermosetting type may be used, and it may also have functions other than conductivity. In each figure, the different type of coating agent 35 is hatched to distinguish it from other parts.
[0075] (6) Process for forming replacement coating patterns The replacement coating pattern formation process is carried out in substantially the same manner as the coating pattern formation process described earlier, so its explanation will be omitted. After the replacement coating pattern formation process is performed, the different type of coating agent 35 is filled linearly into each of the straight grooves 862 shown in Figure 10. That is, on the surface 861 of the replacement coating plate 86, a different type pattern is formed in which the straight grooves 862, which are areas where the different type of coating agent 35 is disposed, and the areas 863 adjacent to the straight grooves 862 where the different type of coating agent 35 is not disposed are arranged alternately in the X direction.
[0076] (7) Different printing processes As shown in Figure 10, the moving mechanism 83 positions the replacement coating plate 86 such that, for example, the end portion of the replacement coating plate 86 on the +X direction side is positioned between the cylindrical body 300 and the pressing plate 81. After this positioning is completed, the moving mechanism 83 further moves the replacement coating plate 86 to a position offset in the X direction by a correction distance so that the different type of coating agent 35 in the straight groove 862 does not overlap with the coating area 311 on the outer surface 301 of the cylindrical body 300 that is to be coated.
[0077] Then, as shown in Figure 10, the cylindrical body 300 is rotated at a predetermined rotational speed in a counterclockwise direction when viewed from, for example, the -Y direction, and the pressing plate 81 descends and comes into contact with the pressed surface 860 of the replacement coating plate 86. The pressed portion of the replacement coating plate 86, which has a certain degree of elasticity, bends downward so as to deflect, and a part of the surface 861 on which the other type of coating agent is applied comes into contact with the outer surface 301 of the cylindrical body 300 from end to end in the Y direction.
[0078] Furthermore, the moving mechanism 83 moves the replacement coating plate 86 in the +X direction at a predetermined feed speed, and the different type of coating agent 35, which is filled in the straight grooves 862 of the replacement coating plate 86, is applied to the uncoated area 32 of the outer surface 301 of the rotating cylindrical body 300. Continuously, the area 863 of the replacement coating plate 86 where the different type of coating agent 35 is not provided comes into contact with the coated area 311 of the cylindrical body 300. As this is repeated, as shown in Figure 11, an area 353 (hereinafter referred to as the different type of coating area 353) where the different type of coating agent 35, which has a different function from the coating agent 31, is provided is formed on the outer surface 301 of the cylindrical body 300, separate from the coated area 311.
[0079] As the replacement coating plate 86 moves in the +X direction, the motor control of the rotating mechanism 84 causes the cylindrical body 300 to rotate, for example, 360 degrees, thereby forming a different coating region 353 that separates from the coating region 311 and encircles the outer surface 301 of the sliding member 30. Subsequently, the pressing plate 81 rises and separates from the replacement coating plate 86, and consequently, the replacement coating plate 86, which was pressed and bent, separates from the cylindrical body 300. Furthermore, the cylindrical body 300, whose rotation has stopped, is removed from the rotating mechanism 84.
[0080] The replacement coating pattern formation process and the alternative printing process may be carried out in parallel. Alternatively, the replacement coating plate 86, etc., may be positioned below the cylindrical body 300, and the alternative coating agent 35 may be printed from below the outer surface 301 of the cylindrical body 300.
[0081] (8) Different curing process Next, the cylindrical body 300, on which the different type of coating agent 35 has been printed on its outer surface 301, is transported to the ultraviolet irradiation device 73 shown in Figure 12. In the ultraviolet irradiation device 73, ultraviolet light 734 is irradiated onto the outer surface 301 for a predetermined time, causing the different type of coating agent 35 to harden, and the sliding member 30C of Embodiment 2 shown in Figures 12 and 13 is completed. Figure 13 is a cross-sectional view of the sliding member 30C.
[0082] For example, as shown in Figure 13, the thickness of the thickest part of the cross-section of the different type of coating agent 35, which is formed in a straight line along the longitudinal direction (sliding direction) of the sliding member 30C on the non-coated area 32, is the same as the thickness of the coating agent 31 printed on the outer surface 301. The cross-sectional shape of the different type of coating agent 35 is a roughly semi-elliptical shape, which is a transfer of the cross-sectional shape of the straight groove 862 of the replacement coating plate 86. That is, the thickness of the different type of coating agent 35, which is printed in a straight line along the longitudinal direction (sliding direction) of the sliding member 30C, gradually decreases from the thickest part of the cross-section toward both the left and right sides in the circumferential direction. Note that the cross-sectional shape of the different type of coating agent 35 is not limited to the above example and may be a roughly semi-circular shape, etc.
[0083] When the sliding member 30C of Embodiment 2 is housed in the housing 14 shown in Figures 1 and 2, the gaps on both the left and right sides in the circumferential direction relative to the coating area 311 of the different coating area 353 become slit-shaped (straight groove-shaped) parallel to the sliding direction, allowing the different coating area 353 to properly retain grease. Therefore, the frictional resistance acting between the sliding member 30C and the housing 14 is reduced, further improving the durability of the sliding member 30C in long-term use. Furthermore, the sliding member 30C of Embodiment 2 can use, for example, the conductive different coating area 353 as an earthing path for static electricity, etc. That is, the thickest part of the cross-section of the different coating agent 35 printed on the sliding member 30C in Figure 13 can come into contact with the housing 14 shown in Figures 1 and 2, and the earthing path can be formed via the housing 14. Note that the conductive different coating area 353 may also form an earthing path that does not go through the housing 14. Furthermore, for example, on the sliding member 30c shown in Figure 13, the uncoated areas 32 may be exposed to a predetermined width on both the left and right sides in the circumferential direction of the different type of coating agent 35 that has been printed onto it.
[0084] Examples of regions 353 on the outer surface of the sliding member where the different type of coating agent 35 is applied are not limited to the sliding member 30C of Embodiment 2. For example, as in the sliding member 30D of another example shown in Figure 14 of the sliding member 30C of Embodiment 2, approximately half of the uncoated region 32 may be the region 353 where the different type of coating agent 35 is applied. That is, the sliding member 30D shown in Figure 14 is formed so that the order of coated region 311, uncoated region 32 where the different type of coating agent 35 is not printed, coated region 311, and the different type of coated region 353 printed on the uncoated region 32 is repeated in the circumferential direction. In the sliding member 30D of another example shown in Figure 14, the thickness of the different type of coating agent 35 is approximately the same as the thickness of the coating agent 31. Furthermore, when the sliding member 30D is housed in the housing 14 shown in Figures 1 and 2, the uncoated area 32, which is slit-shaped (straight groove-shaped) parallel to the sliding direction relative to the coated area 311, can properly retain grease. This reduces the frictional resistance acting between the sliding member 30D and the housing 14, further improving the durability of the sliding member 30C in long-term use. In addition, the sliding member 30D can be used as an earth path for static electricity, etc., by bringing a different type of coated area 353, for example, which is conductive, into contact with the housing 14 shown in Figures 1 and 2. Note that for the sliding member 30C of Embodiment 2 shown in Figure 13, for example, half the area of one uncoated area 32 may be made into an area 353 where a different type of coating agent 35 is provided.
[0085] As described above, the coating method for a sliding member according to an embodiment of the present invention includes, as an example, a cleaning step of cleaning the sliding member 30; a coating pattern forming step, after the cleaning step, in which a predetermined pattern is formed on the coating agent placement surface 821 of the coating plate 82 in which a region (straight groove 822) in which a coating agent 31 for application to the outer surface 301 of the sliding member 30 is provided and a region 823 in which the coating agent 31 is not provided are arranged alternately; a printing step, in which, with the coating agent placement surface 821 of the coating plate 82 in which the predetermined pattern has been formed and the outer surface 301 of the sliding member 30 in contact, the coating plate 82 and the sliding member 30 are moved relative to each other along a plane direction parallel to the coating agent placement surface 821 while rotating the sliding member 30, and the coating agent 31 is printed and applied to the outer surface 301 in a predetermined pattern; and a curing step, after the printing step, in which the coating agent 31 is cured. Therefore, for example, compared to the case where coating is performed by spraying the coating agent onto the outer surface 301 of the sliding member 30, the amount of coating agent 31 consumed can be reduced. Also, when setting the application pattern of the coating agent 31 to the outer surface 301 of the sliding member 30, since the pattern formed on the coating plate 82 is printed (transferred) onto the outer surface 301, there is no need to perform masking on the outer surface 301, which reduces costs and process time. Furthermore, the coated sliding member 30 of Embodiment 1 has a predetermined pattern on its outer surface 301 in which coated areas 311 and uncoated areas 32 are arranged alternately. When grease is supplied to the outer surface 301 to reduce frictional resistance during sliding between the sliding member 30 and the housing 14, the uncoated areas 32 hold the grease sufficiently, thereby reducing frictional resistance between the sliding member 30 and the housing 14, and improving the durability of the sliding member 30 during long-term use.
[0086] In the method for coating sliding members, as an example, the sliding member 30 is a cylindrical telescopic sliding tube (outer tube), and the sliding direction is defined as the direction along the longitudinal direction of the sliding member 30. In the printing process, a pattern is printed on the outer surface 301 of the sliding member 30 in which multiple areas 311 (coated areas 311) on which the coating agent 31 is disposed are alternately arranged with multiple slit-shaped (straight groove-shaped) areas 32 (uncoated areas 32) parallel to the sliding direction where the coating agent 31 is not disposed. As a result, the uncoated areas 32 of the sliding member 30 can more effectively retain the grease, reducing the frictional resistance between the sliding member 30 and the housing 14, allowing the sliding member 30 to slide properly, and further improving durability in long-term use.
[0087] In the coating method for sliding members of the embodiment, as an example, an exchange step of exchanging the coating plate 82 and a replacement coating plate 86 after the printing step or the curing step, an exchange coating pattern forming step of forming a different type of pattern on the different type of coating agent distributing surface 861 of the replacement coating plate 86, in which a different type of coating agent 35 having a different function from the coating agent 31 is distributed in alternating areas (straight grooves 862) and areas 863 where the different type of coating agent 35 is not distributed, and the different type of pattern The method includes a special printing step in which, with the formed replacement coating plate 86 and the outer surface 301 of the sliding member 30 in contact, the replacement coating plate 86 and the sliding member 30 are moved relative to each other along a plane direction parallel to the special coating plate 861 while the sliding member 30 is rotated, and the special coating plate 86 and the sliding member 30 are printed and applied to the outer surface 301 of the sliding member 30 separately from the coating agent 31; and a special curing step in which the special coating agent 35 is cured after the special printing step is performed. Therefore, as an example, it is possible to impart the function of the special coating agent 35 to the outer surface 301 of the sliding member 30 at low cost.
[0088] The embodiments of the present invention described above are not intended to limit the scope of the invention, but are merely examples that fall within the scope of the invention. Some embodiments of the present invention may be modified, omitted, or added to the embodiments described above, for example, with respect to at least some of the specific uses, structures, shapes, functions, and effects, without departing from the spirit of the invention. [Explanation of Symbols]
[0089] 1: Vehicle 10: Steering system 11: Steering shaft 12: Steering wheel 13: Inner tube 14: Housing 14c, 14d: Friction mechanism 15: Telescopic mechanism 16: Tilt mechanism 30: Sliding member of Embodiment 1 300: Cylindrical body 301: Outer surface 31: Coating agent 311: Area where the coating agent is applied 32: Area where no coating agent is applied 324: Cylindrical area 35: Different types of coating agents 30A: Sliding member of the first modified example 30B: Sliding member of the second modified example 30C: Sliding member of Embodiment 2 30D: Modified example of the sliding member of Embodiment 2 70: Cleaning device 73: Ultraviolet irradiation device 8: Coating equipment 81: Pressing plate 82: Coated plate 821: Surface for coating agent application 822: Straight groove 83: Moving mechanism 84: Rotating mechanism 85: Coating agent supply mechanism 86: Replacement coating plate 861: Surface for application of different type of coating agent
Claims
1. A method for coating a sliding member disposed in a steering device, A cleaning step for cleaning the sliding member, After performing the cleaning step, a coating pattern forming step is performed on the coating agent placement surface of the coating plate, in which a predetermined pattern is formed in which areas where the coating agent for application to the outer surface of the sliding member is provided and areas where the coating agent is not provided are arranged alternately. A printing step in which, with the coating agent application surface of the coating plate on which the predetermined pattern is formed in contact with the outer surface of the sliding member, the sliding member is rotated and the coating plate and the sliding member are moved relative to each other along a plane direction parallel to the coating agent application surface, thereby printing and applying the coating agent to the outer surface in the predetermined pattern; A method for coating a sliding member, comprising a curing step of curing the coating agent after performing the printing step.
2. The sliding member is a tubular telescopic sliding tube, and the sliding direction is defined as the direction along the longitudinal direction of the sliding member. The method for coating a sliding member according to claim 1, wherein the printing step involves printing a pattern on the outer surface of the sliding member in which a plurality of slit-shaped regions parallel to the sliding direction and not having the coating agent arranged alternately with a plurality of regions where the coating agent is provided.
3. A replacement step is performed after the printing step or after the curing step, in which the coating plate and a replacement coating plate are replaced. A replacement coating pattern forming step for the surface of the replacement coating plate on which a different type of coating agent is provided, wherein areas where a different type of coating agent having a different function from the aforementioned coating agent is provided and areas where the different type of coating agent is not provided are arranged alternately, A special printing process is performed in which, while the sliding member is in contact with the surface on which the special coating agent is to be disposed of on the replacement coating plate on which the special pattern is formed, the replacement coating plate and the sliding member are moved relative to each other along a plane direction parallel to the surface on which the special coating agent is to be disposed, thereby printing and applying the special coating agent separately from the coating agent to the outer surface of the sliding member. A method for coating a sliding member according to claim 1 or 2, comprising a special curing step of curing the special coating agent after performing the special printing step.
4. It is installed in the steering system, A sliding member having a predetermined pattern on its outer surface, in which areas where the coating agent is applied and areas where the coating agent is not applied are arranged alternately, formed by printing the coating agent using a coating plate.
5. The sliding member is a tubular telescopic sliding tube, and the sliding direction is defined as the direction along the longitudinal direction of the sliding member. The sliding member according to claim 4, wherein the predetermined pattern in which the area where the coating agent is disposed and the area where the coating agent is not disposed are alternately arranged is a pattern in which a plurality of slit-shaped areas parallel to the sliding direction in which the coating agent is not disposed are alternately arranged relative to a plurality of areas where the coating agent is disposed.
6. The sliding member according to claim 4 or 5, wherein the outer surface is formed by printing the alternative coating agent, which has a different function from the coating agent, on an area where the alternative coating agent is disposed, separating it from the area where the coating agent is disposed.
7. The sliding member according to claim 5, wherein a cylindrical region is formed on the outer surface in which the coating agent is not disposed separately from the predetermined pattern in the sliding direction.
Citation Information
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