Dynamic pressure bearing and electric machine device
By setting flow channels with different depths and widths in the hydrodynamic bearing and using grooves to form the flow channels, the stability problem of the hydrodynamic bearing during bidirectional rotation is solved, achieving stable support and suspension of the medium, and improving the operational stability and miniaturization design of the hydrodynamic bearing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HUAWEI TECH CO LTD
- Filing Date
- 2024-12-30
- Publication Date
- 2026-06-30
AI Technical Summary
During bidirectional rotation, the reduced medium in the low-pressure zone of the hydrodynamic bearing makes it easier for the shaft and bearing to come into contact, thus reducing the operational stability of the hydrodynamic bearing.
By adjusting the depth and/or width of the side where the first and second flow channels are close together in the hydrodynamic bearing, the negative pressure generated on the side where the first and second flow channels are close together is reduced, and the medium support shaft is kept suspended. Grooves are used to form the flow channels to simplify the setup and achieve stable flow and support of the medium.
This ensures the stability of the hydrodynamic bearing during bidirectional rotation, avoids contact between the central shaft and the bearing, improves levitation capability and operational stability, and enables the miniaturization of the hydrodynamic bearing.
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Figure CN122305131A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of bearing technology, and in particular to a hydrodynamic bearing and motor equipment. Background Technology
[0002] With the development of bearing technology, the performance requirements for equipment are getting higher and higher. Hydrodynamic bearings usually consist of a central shaft, a bearing, and a medium. During the operation of the hydrodynamic bearing, the medium can generate dynamic pressure to suspend the central shaft, so that the central shaft and the bearing do not come into contact, thereby preventing wear and noise and ensuring the stable operation of the hydrodynamic bearing.
[0003] In some applications, bidirectional rotation of the hydrodynamic bearing is required, resulting in hydrodynamic grooves distributed in both clockwise and counterclockwise directions. This causes the stress concentration area in the hydrodynamic grooves to become a low-pressure area during counterclockwise rotation, and vice versa. The reduced medium in the low-pressure area decreases the levitation support force on the central shaft, making it easier for the central shaft and bearing to come into contact, thus reducing the operational stability of the hydrodynamic bearing. Summary of the Invention
[0004] This application provides a hydrodynamic bearing and motor device. By setting the depth and / or width of the side where the first flow channel and the second flow channel are close together in the hydrodynamic bearing, the negative pressure generated on the side where the first flow channel and the second flow channel are close together is reduced and / or there is always sufficient medium to support the central shaft suspension, thus ensuring the stability of the bidirectional rotation of the hydrodynamic bearing.
[0005] In a first aspect, this application provides a hydrodynamic bearing, comprising: a bearing and a central shaft, the bearing being sleeved on the outer periphery of the central shaft, a first flow channel, a second flow channel, and a connecting flow channel being provided between the bearing and the central shaft, the first flow channel and the second flow channel being alternately arranged in the axial direction of the bearing, the connecting flow channel connecting the first flow channel and the second flow channel, the depth of the connecting flow channel being less than the depth of the first flow channel and the depth of the second flow channel, the conduction direction of the first flow channel and the conduction direction of the second flow channel both having an angle with the radial and axial directions of the bearing, the conduction direction of the first flow channel and the conduction direction of the second flow channel having an angle, and the side of the first flow channel and the second flow channel that are close to each other having a smaller depth and / or a larger width than the side that are far away from each other.
[0006] This application provides a hydrodynamic bearing, which includes a central shaft and a bearing sleeved on the outer periphery of the central shaft. The spacer region between the bearing and the central shaft has a first flow channel, a second flow channel, and a connecting flow channel for distributing a medium. The connecting flow channel connects the first and second flow channels, and there is a depth difference between the connecting flow channel and both the first and second flow channels, allowing the hydrodynamic bearing to generate dynamic pressure during operation, thus suspending the central shaft. The conduction directions of the first and second flow channels form an angle, and both also form angles with the radial and axial directions of the bearing, allowing the dynamic pressure generated by the medium in the first and second flow channels to be superimposed, jointly supporting the suspension of the central shaft. By alternating the first and second flow channels in the axial direction of the bearing, bidirectional rotation of the hydrodynamic bearing in both clockwise and counterclockwise directions is achieved.
[0007] The side of the first and second flow channels that are close together has a smaller depth than the side that is far apart, which reduces the negative pressure generated on the side where the first and second flow channels are close together; and / or, the side of the first and second flow channels that are close together has a larger width than the side that is far apart, which allows the medium lost on the side where the first and second flow channels are close together to be replenished in a timely manner. Both of these factors help to reduce the reduction in the medium volume on the side where the first and second flow channels are close together, ensuring that the side where the first and second flow channels are close together has sufficient medium to support the central shaft suspension, thereby ensuring the stability of the hydrodynamic bearing operation.
[0008] In one possible implementation, at least one of the inner wall of the bearing and the outer wall of the central shaft has a groove, which forms the first flow channel and the second flow channel. By providing a groove on at least one of the inner wall of the bearing and the outer wall of the central shaft, the medium is confined by the groove. By forming the first and second flow channels with the groove, the arrangement of the first and second flow channels is simplified, the spacing between the bearing and the central shaft is ensured, and the miniaturization of the hydrodynamic bearing is achieved.
[0009] In one possible implementation, the groove includes at least two first grooves and at least one second groove. The at least two first grooves are located on opposite sides of the second groove in the axial direction of the bearing. The extension directions of both the first and second grooves form angles with the radial and axial directions of the bearing, respectively. An angle is also formed between the extension directions of the first and second grooves. Both the first and second grooves are located on the inner wall of the bearing or the outer wall of the central shaft, forming the first and second flow channels, respectively. By ensuring that the extension directions of the first and second grooves form angles with each other and with both the radial and axial directions of the bearing, the first and second flow channels formed by the first and second grooves satisfy the required angular relationship, ensuring that the first and second flow channels can generate significant dynamic pressure. By positioning at least two first grooves on opposite sides of the second groove in the bearing axial direction, bidirectional rotation of the hydrodynamic bearing is achieved. The at least two first grooves and at least one second groove are located on the inner wall of the bearing or the outer wall of the central shaft, simplifying the arrangement of the first and second grooves and enabling the hydrodynamic pressure at the first and second grooves to have a better superposition effect.
[0010] In one possible implementation, the depth of the end of the first groove that is close to the second groove is 0 to 1 / 3 times the depth of the other end that is far away. By ensuring that the depth of the first groove satisfies the above relationship, the negative pressure generated on the side where the first and second grooves are close together is reduced, which helps to ensure that the side where the first and second grooves are close together has sufficient medium to support the central shaft suspension.
[0011] In one possible implementation, the first and second grooves are alternately arranged in the axial direction of the bearing. The grooves further include a third and a fourth groove, located on the same side of the first and second grooves in the circumferential direction of the bearing. The third and fourth grooves are parallel to the second and first grooves, respectively, with their adjacent ends corresponding to the ends of the second groove furthest from the first groove. By providing the third and fourth grooves, the number of grooves is increased, which is beneficial for increasing the magnitude of the dynamic pressure generated by the hydrodynamic bearing. By ensuring the third and fourth grooves satisfy the aforementioned positional relationship with the first and second grooves, and by spacing the third and fourth grooves from the first and second grooves, the negative pressure generated in areas where multiple grooves are close together is reduced. Furthermore, the staggered arrangement of the first and second grooves with the third and fourth grooves results in a more compact groove layout, which is beneficial for miniaturizing the hydrodynamic bearing.
[0012] In one possible implementation, the third and fourth grooves are located on the same surface as the first and second grooves, and their adjacent ends are connected. By placing the third and fourth grooves on the same surface as the first and second grooves, and ensuring that their adjacent ends are connected, it is beneficial for the medium to generate greater dynamic pressure, thus supporting the stable levitation of the central shaft.
[0013] In one possible implementation, the two adjacent ends of the first and second grooves are connected. By connecting the adjacent ends of the first and second grooves, the medium can generate greater dynamic pressure in both the first and second grooves, which is beneficial for the stable levitation of the central axis.
[0014] In one possible implementation, the two adjacent ends of the first and second trenches are spaced apart, and the spaced region between the two adjacent ends of the first and second trenches has a groove, which is spaced apart from both the first and second trenches, and forms a portion of the connecting flow channel. By spaced the groove from both the first and second trenches, it is beneficial to reduce the negative pressure generated by the medium at the adjacent ends of the first and second trenches. By forming a portion of the connecting flow channel with the groove, the dynamic pressure at this portion of the connecting flow channel is increased, which is beneficial to increasing the dynamic pressure between the adjacent ends of the first and second flow channels.
[0015] In one possible implementation, the shape of the groove is axially symmetrical about a straight line parallel to the axial direction of the bearing. By making the shape of the groove axially symmetrical about a straight line parallel to the axial direction of the bearing, the groove can increase the dynamic pressure approximately the same when the bearing rotates clockwise or counterclockwise in the circumferential direction, ensuring bidirectional rotation of the dynamic pressure bearing.
[0016] In one possible implementation, the number of grooves corresponding to a single connecting channel is at least two, and the at least two grooves are arranged in an array in the axial and / or circumferential directions of the bearing. By arranging the at least two grooves in an array in the axial and / or circumferential directions of the bearing, the distribution of the at least two grooves is more uniform and regular, which helps to ensure the lifting capacity of the at least two grooves for dynamic pressure.
[0017] In one possible implementation, the number of first grooves corresponding to a single first flow channel is at least two, and the at least two first grooves are arranged in an array along the axial direction of the bearing. The number of second grooves corresponding to a single second flow channel is the same as the number of first grooves corresponding to a single first flow channel. By arranging at least two first grooves in an array along the axial direction of the bearing, the arrangement of the at least two first grooves is more regular, which helps to simplify the setting of the first grooves and ensures that the structure of the first grooves can improve dynamic pressure. By making the number of second grooves corresponding to a single second flow channel the same as the number of first grooves corresponding to a single first flow channel, the dynamic pressure generated by the first flow channel and the second flow channel is comparable, which facilitates the setting of multiple first flow channels and multiple second flow channels to jointly improve dynamic pressure according to actual needs.
[0018] In one possible implementation, the first groove and the second groove are symmetrically arranged, and the axis of symmetry of the first groove and the second groove extends along the circumference of the bearing. By symmetrically arranging the first groove and the second groove, and with the axis of symmetry of the first groove and the second groove extending along the circumference of the bearing, the dynamic pressure near the first flow channel and the dynamic pressure near the second flow channel are made equivalent, further ensuring the stable suspension of the central shaft.
[0019] In one possible implementation, at least one of the inner wall of the bearing and the outer wall of the central shaft has a widening groove, which communicates with at least one of the first groove and the second groove, and is located on the side of the first groove and the second groove that are close to each other. By making the widening groove communicate with at least one of the first groove and the second groove, and by making the widening groove located on the side of the first groove and the second groove that are close to each other, a larger space is provided on the side of the first groove and the second groove that are close to each other to accommodate the medium. This allows the medium lost on the side of the first groove and the second groove that are close to each other to be replenished in a timely manner, which helps to ensure that the side of the first groove and the second groove that are close to each other has sufficient medium to support the levitation of the central shaft.
[0020] In one possible implementation, the widening groove is located at the two ends of the first and second trenches that are close to each other, and the widening groove is connected to both the first and second trenches. By placing the widening groove at the two ends of the first and second trenches that are close to each other, the widening groove is positioned close to the locations in the first and second trenches where negative pressure is likely to be generated, ensuring the widening groove's ability to replenish the medium in the first and second trenches. By making the widening groove connected to both the first and second trenches, the first and second trenches can be connected through a single widening groove, which simplifies the placement of the widening groove and allows for better flow of the medium within the first and second trenches, helping to prevent medium loss.
[0021] In one possible implementation, both the first and second grooves are located on the inner wall of the bearing, and the outer wall of the central shaft has an annular groove arranged circumferentially around the central shaft. The annular groove corresponds to the two adjacent ends of the first and second grooves. By having an annular groove on the outer wall of the central shaft, and the annular groove corresponding to the two adjacent ends of the first and second grooves, a larger space is provided near the adjacent ends of the first and second grooves to accommodate the medium. This allows the medium lost on the adjacent side of the first and second grooves to be replenished in a timely manner, which helps to ensure that the adjacent side of the first and second grooves has sufficient medium to support the levitation of the central shaft.
[0022] In one possible implementation, the central shaft has a flange at at least one end in its axial direction, and the first groove and the second groove are located on at least one of two opposing surfaces of the flange in the axial direction of the central shaft. By positioning the first groove and the second groove on at least one of two opposing surfaces of the flange in the axial direction of the central shaft, the medium generates greater dynamic pressure on the first surface and / or the second surface during the operation of the hydrodynamic bearing, which is beneficial to improving the axial support capacity of the central shaft and enhancing the stability of the hydrodynamic bearing operation.
[0023] Secondly, this application also provides a motor device, including a hydrodynamic bearing and a motor as described in any embodiment of the first aspect, wherein at least one of the bearing and the central shaft of the motor and the hydrodynamic bearing is connected. The beneficial effects in this embodiment are similar to those in the above embodiments, and will not be repeated here. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of the hydrodynamic bearing provided in the embodiments of this application;
[0025] Figure 2 yes Figure 1 The illustrated embodiment shows a cross-sectional view of the bearing at point AA;
[0026] Figure 3 yes Figure 1 A cross-sectional view of the hydrodynamic bearing at BB in the illustrated embodiment;
[0027] Figure 4 This is a cross-sectional view of a bearing with grooves having varying depths, provided in an embodiment of this application.
[0028] Figure 5 This is a cross-sectional view of a bearing with a groove having varying width, provided in an embodiment of this application;
[0029] Figure 6 This is a front view of the central axis with grooves provided in an embodiment of this application;
[0030] Figure 7 This is a cross-sectional view of a bearing with a third groove and a fourth groove provided in an embodiment of this application;
[0031] Figure 8 This is a cross-sectional view of a bearing with grooves provided in an embodiment of this application;
[0032] Figure 9 This is a cross-sectional view of a bearing with at least two grooves arranged circumferentially, as provided in an embodiment of this application.
[0033] Figure 10 This is a cross-sectional view of a bearing with at least two grooves arranged axially, as provided in the embodiments of this application.
[0034] Figure 11 This is a cross-sectional view of a bearing having at least two first grooves and at least two second grooves, as provided in an embodiment of this application.
[0035] Figure 12 This is a schematic diagram of the structure of the central shaft with an annular groove provided in the embodiments of this application;
[0036] Figure 13 This is a schematic diagram of the structure of a central shaft with a flange provided in an embodiment of this application;
[0037] Figure 14 This is a system schematic diagram of the motor device provided in the embodiments of this application. Detailed Implementation
[0038] The embodiments of this application are described below with reference to the accompanying drawings.
[0039] For ease of understanding, the English abbreviations and related technical terms used in the embodiments of this application will be explained and described below.
[0040] It should be understood that the described embodiments are merely some, not all, of the embodiments in this application. All other embodiments obtained by those skilled in the art based on the embodiments in this application without inventive effort are within the scope of protection of this application.
[0041] The terminology used in the embodiments of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The singular forms “a,” “the,” and “the” used in the embodiments of this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.
[0042] It should be understood that the term "and / or" used in this document is merely a description of the same field in the related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, and B alone. Additionally, the character " / " in this document generally indicates that the preceding and following related objects have an "or" relationship.
[0043] Depending on the context, the word "if" as used herein can be interpreted as "when," "when," "in response to determination," or "in response to detection." Similarly, depending on the context, the phrase "if determination" or "if detection (of the stated condition or event)" can be interpreted as "when determination," "in response to determination," "when detection (of the stated condition or event)," or "in response to detection (of the stated condition or event)."
[0044] It should be understood that the terms "first," "second," etc., used in this application are for distinguishing purposes only and should not be construed as indicating or implying relative importance or order. "At least one" means "one or more."
[0045] In the description of this application, the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", "clockwise", "counterclockwise", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0046] In the description of this application, it should be noted that due to manufacturing or assembly errors, there may be slight angular deviations in the design that should be perpendicular or parallel. For example, a deviation within 15 degrees is also considered perpendicular or parallel as described in this embodiment.
[0047] The phrase "within the range" used in this application, unless otherwise specified, includes both endpoints of the range by default. For example, in the range of 1 to 5, it includes the values 1 and 5.
[0048] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation", "connection" and "joining" should be interpreted broadly, for example, they can be fixed connections, detachable connections, mating connections or integral connections; those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0049] It should be understood that in the description of this application, the terms "connection" and "connected" can refer to a mechanical connection or a physical connection. For example, "A connected to B" or "A connected to B" can mean that there are fastening components (such as screws, bolts, rivets, etc.) between A and B, or that A and B are in contact with each other and are difficult to separate.
[0050] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0051] Ball bearings typically consist of an inner ring, an outer ring, and balls. The balls are located between the inner and outer rings, and both the inner and outer rings have a small contact area with the balls, reducing the friction generated when the inner and outer rings rotate relative to each other. However, due to machining precision limitations, when there are dimensional deviations in the balls, poor contact between the balls and the inner and outer rings can occur. This can lead to ball runout between the inner and outer rings, causing noise and affecting the bearing's operational stability. Furthermore, with increasing operating time, the structural stability between the balls and the inner and outer rings further decreases, further reducing the overall operational stability of the ball bearing.
[0052] A hydrodynamic bearing typically consists of a central shaft, a bearing, and a medium. The medium, usually a fluid, is located between the central shaft and the bearing. During operation, the medium generates dynamic pressure to suspend the central shaft, preventing the central shaft and bearing from contacting each other. This reduces the friction generated when the central shaft and bearing rotate relative to each other, and avoids noise generation and mechanical wear caused by operation, thus ensuring the stability of the hydrodynamic bearing operation.
[0053] To generate sufficient dynamic pressure during the operation of a hydrodynamic bearing, dynamic pressure grooves are typically incorporated inside the bearing. The distribution direction of these grooves is similar to the rotation direction of the shaft and / or bearing to maximize dynamic pressure. When the hydrodynamic bearing rotates in one direction, the stress concentration area of the dynamic pressure groove is located on one side of the groove, making the stress concentration area relatively stable. However, in some applications, bidirectional rotation of the hydrodynamic bearing is required. In this case, the dynamic pressure grooves are distributed in both clockwise and counterclockwise directions. This causes the stress concentration area in the groove to become a low-pressure area during clockwise rotation, and vice versa. The reduced medium in the low-pressure area leads to a decrease in the levitation support force of the low-pressure area on the shaft, making it easier for the shaft and bearing to come into contact, thus reducing the operational stability of the hydrodynamic bearing.
[0054] This application provides a hydrodynamic bearing 100; please refer to [reference needed]. Figure 1 , Figure 1A schematic diagram of the structure of the hydrodynamic bearing 100 provided in this application embodiment is shown. The hydrodynamic bearing 100 includes a central shaft 20 and a bearing 10. The bearing 10 is sleeved on the outer periphery of the central shaft 20, and the bearing 10 and the central shaft 20 are spaced apart. The space between the bearing 10 and the central shaft 20 is used to place a medium, which is usually a fluid, to provide a certain buoyancy for the suspension of the central shaft 20. The medium can generate dynamic pressure during the operation of the hydrodynamic bearing 100, further ensuring the suspension of the central shaft 20. The medium ensures the stability of the position of the central shaft 20 relative to the bearing 10, avoids contact between the central shaft 20 and the bearing 10, helps to reduce the friction between the central shaft 20 and the bearing 10, avoids the generation of noise and mechanical wear caused by operation, and ensures the operational stability of the hydrodynamic bearing 100.
[0055] Please see Figure 2 , Figure 2 yes Figure 1 The illustrated embodiment shows a cross-sectional view of the bearing 10 at point AA. A flow channel exists between the bearing 10 and the central shaft 20, within which the medium is located. The flow channel guides the flow direction of the medium and restricts its flow path. Specifically, the flow channel includes a first flow channel 30, a second flow channel 40, and a connecting flow channel 50. The connecting flow channel 50 connects the first flow channel 30 and the second flow channel 40, allowing the medium to flow between the first flow channel 30, the second flow channel 40, and the connecting flow channel 50. Please refer to... Figure 3 , Figure 3 yes Figure 1 In the cross-sectional view of the hydrodynamic bearing 100 at BB in the embodiment shown, the depth of the connecting channel 50 is less than the depth of the first channel 30 and the second channel 40, so that during the operation of the hydrodynamic bearing 100, the medium can generate dynamic pressure at the first channel 30 and the second channel 40, thereby improving the suspension ability and stability of the central shaft 20.
[0056] Please see Figure 2 During the operation of the hydrodynamic bearing 100, the central shaft 20 and / or bearing 10 rotate approximately clockwise along the circumference of the bearing 10 (e.g., Figure 2 (as shown in the CW direction) or counterclockwise (e.g.) Figure 2 Rotate in the CCW direction (as shown), so that the rotation direction of the central shaft 20 and / or bearing 10 is different from the axial direction of bearing 10 (e.g., ...). Figure 2 The Z-direction shown is approximately perpendicular to the direction of the bearing 10. The conduction direction of the first flow channel 30 and the second flow channel 40 are both perpendicular to the radial direction of the bearing 10 (e.g., the direction of the Z-direction). Figure 2 The X-direction and the axial direction are at an angle, so that the conduction direction of the first flow channel 30 and the conduction direction of the second flow channel 40 are both at an angle to the rotation direction. This is beneficial for the medium to generate a large dynamic pressure near the first flow channel 30 and the second flow channel 40, so that the dynamic pressure can support the suspension of the central shaft 20.
[0057] Please see Figure 2 The conduction direction of the first flow channel 30 and the conduction direction of the second flow channel 40 are at an angle, so that the first flow channel 30 has one end close to the second flow channel 40 and the other end far away from it. The direction from the other end of the first flow channel 30 far away from the second flow channel 40 to the end of the first flow channel 30 close to the second flow channel 40 is similar to the rotation direction of the central shaft 20 and / or the bearing 10. This makes the medium gather towards the end of the first flow channel 30 close to the second flow channel 40 during the operation of the hydrodynamic bearing 100. The medium generates a large dynamic pressure near the side of the first flow channel 30 and the second flow channel 40 that are close to each other. The dynamic pressure generated by the first flow channel 30 and the second flow channel 40 can be positively superimposed to jointly support the suspension of the central shaft 20, thereby improving the suspension ability and stability of the central shaft 20.
[0058] For one possible implementation, please refer to Figure 2 The side of the first flow channel 30 that is close to the second flow channel 40 is located on the other side of the first flow channel 30 and the second flow channel 40 that are far apart in a counterclockwise direction (e.g. Figure 2 On one side of the CCW direction (as shown), during the operation of the hydrodynamic bearing 100, the bearing 10 rotates clockwise, causing the medium to converge towards the two ends of the first flow channel 30 and the second flow channel 40, thereby improving the suspension ability and stability of the central shaft 20.
[0059] Please see Figure 2 The first flow channel 30 and the second flow channel 40 are in the axial direction of the bearing 10 (e.g., Figure 2 Alternating arrangement in the Z direction (as shown), with the two first channels 30 on both sides of the second channel 40 in the axial direction of the bearing 10 being the upper first channel 31 and the lower first channel 32 respectively, the second channel 40 is located between the upper first channel 31 and the lower first channel 32. The second channel 40 has a first end 41 and a second end 42 facing away from each other in its conduction direction. The first end 41 is close to the upper first channel 31, and the second end 42 is close to the lower first channel 32, so that the two opposite ends of a single second channel 40 can collect the medium, thereby realizing the bidirectional rotation of the hydrodynamic bearing 100 in both clockwise and counterclockwise directions.
[0060] Please see Figure 2 When the bearing rotates clockwise 10 circumferentially (e.g.) Figure 2 When the bearing 10 rotates counterclockwise (as shown in the CW direction), the medium converges at the two ends of the second flow channel 40 and the upper first flow channel 31 that are close to each other, and the medium flows out at the two ends of the second flow channel 40 and the lower first flow channel 32 that are close to each other; when the bearing 10 rotates counterclockwise in the circumferential direction (as shown in the CW direction), the medium converges at the two ends of the second flow channel 40 and the upper first flow channel 31 that are close to each other, and the medium flows out at the two ends of the second flow channel 40 and the lower first flow channel 32 that are close to each other; Figure 2When rotating (in the CCW direction shown), the medium flows out at the two ends of the second flow channel 40 and the upper first flow channel 31 that are close to each other, and the medium converges at the two ends of the second flow channel 40 and the lower first flow channel 32 that are close to each other. The dynamic pressure generated by the first flow channel 30 and the second flow channel 40 on the side where the medium converges can be positively superimposed to jointly support the suspension of the central shaft 20. The negative pressure generated by the first flow channel 30 and the second flow channel 40 on the side where the medium flows out can also easily be positively superimposed, causing the medium volume of the first flow channel 30 and the second flow channel 40 on the side where the medium flows out to decrease or even disappear. The dynamic pressure generated by the first flow channel 30 and the second flow channel 40 on the side where the medium flows out is insufficient to support the stable suspension of the central shaft 20. The central shaft 20 and the bearing 10 are even prone to collision on the side where the medium flows out, affecting the stability of the operation of the dynamic pressure bearing 100.
[0061] By setting the shape and size of the first flow channel 30 and the second flow channel 40, excessive loss of medium at the ends of the first flow channel 30 and the second flow channel 40 that are close together can be avoided, ensuring that a large dynamic pressure can be generated at all points in the first flow channel 30 and the second flow channel 40, thereby ensuring the stable suspension of the central shaft 20. The following will combine... Figure 4 and Figure 5 The shape and size of the first flow channel 30 and the second flow channel 40 are described in detail.
[0062] In one embodiment, please refer to Figure 4 , Figure 4 The diagram shows a cross-sectional view of a bearing 10 with a groove 11 having varying depth according to an embodiment of this application. The side of the first flow channel 30 and the second flow channel 40 that is close to each other has a smaller depth than the side that is far away from each other. This reduces the negative pressure that can be generated on the side of the first flow channel 30 and the second flow channel 40 that is close to each other, thereby reducing the degree of reduction in the medium volume on the side of the first flow channel 30 and the second flow channel 40 that is close to each other. This is beneficial to ensure that the side of the first flow channel 30 and the second flow channel 40 that is close to each other has sufficient medium to support the suspension of the central shaft 20.
[0063] For example, please refer to Figure 4 The second flow channel 40 and the upper first flow channel 31 have relatively small depths at their adjacent ends, while the upper first flow channel 31 has a larger depth at its end furthest from the second flow channel 40. Similarly, the second flow channel 40 and the lower first flow channel 32 have relatively small depths at their adjacent ends, while the lower first flow channel 32 has a larger depth at its end furthest from the second flow channel 40. This results in both the first end 41 and the second end 42 of the second flow channel 40 having relatively small depths. The middle region of the second flow channel 40 has a larger depth than both the first end 41 and the second end 42, which helps to ensure that the hydrodynamic bearing 100 rotates clockwise (e.g., ...). Figure 4 (as shown in the CW direction) and counterclockwise (e.g.) Figure 4The bidirectional rotation in both directions (CCW direction shown) avoids a large negative pressure on the side where the second flow channel 40 and the first flow channel 30 are close together, which would affect the stability of the dynamic pressure bearing 100.
[0064] In one embodiment, please refer to Figure 5 , Figure 5 The diagram shows a cross-sectional view of a bearing 10 with a groove 11 having a varying width, provided in an embodiment of this application. The side of the first flow channel 30 and the second flow channel 40 that is close to each other has a larger width than the side that is far away from each other. This allows the side of the first flow channel 30 and the second flow channel 40 that is close to each other to have a larger space to accommodate the medium. When a negative pressure is generated on the side of the first flow channel 30 and the second flow channel 40 that is close to each other, the medium lost on the side of the first flow channel 30 and the second flow channel 40 that is close to each other can be replenished in time. This reduces the degree of reduction in the medium volume on the side of the first flow channel 30 and the second flow channel 40 that is close to each other, which is beneficial to ensure that the side of the first flow channel 30 and the second flow channel 40 that is close to each other has sufficient medium to support the suspension of the central shaft 20.
[0065] For example, please refer to Figure 5 The second flow channel 40 and the upper first flow channel 31 have relatively large widths at their adjacent ends, while the upper first flow channel 31 has a smaller width at its end furthest from the second flow channel 40. Similarly, the second flow channel 40 and the lower first flow channel 32 have relatively large widths at their adjacent ends, while the lower first flow channel 32 has a smaller width at its end furthest from the second flow channel 40. This results in both the first end 41 and the second end 42 of the second flow channel 40 having relatively large widths. The middle region of the second flow channel 40 has a smaller width compared to the first end 41 and the second end 42, which helps ensure that the hydrodynamic bearing 100 rotates clockwise (e.g., ...). Figure 5 (as shown in the CW direction) and counterclockwise (e.g.) Figure 5 The bidirectional rotation in both directions (CCW direction shown) avoids a large negative pressure on the side where the second flow channel 40 and the first flow channel 30 are close to each other, which would affect the stability of the dynamic pressure bearing 100.
[0066] It is understandable that the side of the first flow channel 30 and the second flow channel 40 that are close to each other can have a small depth and a large width at the same time, so that the negative pressure generated on the side of the first flow channel 30 and the second flow channel 40 that are close to each other can be reduced and the medium can be replenished in time. That is, the side of the first flow channel 30 and the second flow channel 40 that are close to each other always has enough medium to support the central shaft 20 to suspend, which is beneficial to ensuring the stability of the operation of the hydrodynamic bearing 100.
[0067] This application provides a hydrodynamic bearing 100, which includes a central shaft 20 and a bearing 10 sleeved on the outer periphery of the central shaft 20. The spacer region between the bearing 10 and the central shaft 20 has a first flow channel 30, a second flow channel 40, and a connecting flow channel 50 for distributing a medium. The connecting flow channel 50 connects the first flow channel 30 and the second flow channel 40, and the depth of the connecting flow channel 50 is less than the depth of the first flow channel 30 and the second flow channel 40, so that the hydrodynamic bearing 100 can generate dynamic pressure during operation, thereby suspending the central shaft 20. The conduction directions of the first flow channel 30 and the second flow channel 40 are both at angles to the radial and axial directions of the bearing 10, and there is an angle between the conduction directions of the first flow channel 30 and the second flow channel 40, so that the medium generates a large dynamic pressure near the side of the first flow channel 30 and the second flow channel 40 that are close to each other, and the dynamic pressure generated by the first flow channel 30 and the second flow channel 40 can be positively superimposed to jointly support the suspension of the central shaft 20. By alternating the first flow channel 30 and the second flow channel 40 in the axial direction of the bearing 10, the hydrodynamic bearing 100 can rotate bidirectionally in both clockwise and counterclockwise directions.
[0068] The side of the first flow channel 30 that is close to the second flow channel 40 has a smaller depth than the side that is farther away from the first flow channel 30 and the second flow channel 40, which reduces the negative pressure generated on the side where the first flow channel 30 and the second flow channel 40 are close; and / or, the side of the first flow channel 30 and the second flow channel 40 that is close to the first flow channel 30 and the second flow channel 40 has a larger width than the side that is farther away, which allows the medium lost on the side where the first flow channel 30 and the second flow channel 40 are close to the first flow channel 30 and the second flow channel 40 are close to the first flow channel 30 and the second flow channel 40 to be replenished in time. Both of these factors help to reduce the reduction in the medium volume on the side where the first flow channel 30 and the second flow channel 40 are close to the first flow channel 30 and the second flow channel 40 are close to the first flow channel 30 and the second flow channel 40 are close to the first flow channel 30 and the second flow channel 40 to have sufficient medium to support the suspension of the central shaft 20, thereby ensuring the stability of the operation of the hydrodynamic bearing 100.
[0069] For one possible implementation, please refer to Figure 2 The inner wall of bearing 10 and the outer wall of central shaft 20 enclose the area between bearing 10 and central shaft 20. At least one of the inner wall of bearing 10 and the outer wall of central shaft 20 has a groove 11, which restricts the flow of medium between bearing 10 and central shaft 20, forming a first flow channel 30 and a second flow channel 40. By setting the groove 11 to construct the first flow channel 30 and the second flow channel 40, the arrangement of the first flow channel 30 and the second flow channel 40 is simplified, the spacing between bearing 10 and central shaft 20 is guaranteed, and the dynamic pressure bearing 100 is miniaturized. Furthermore, by adjusting the setting position, shape, and size of the groove 11, the flow of medium can be controlled to meet different application requirements.
[0070] Please see Figure 2The groove includes a first groove 111 and a second groove 112, which respectively form a first flow channel 30 and a second flow channel 40. The extending direction of the first groove 111 and the extending direction of the second groove 112 are both radial to the bearing 10 (e.g., Figure 2 (as shown in the X direction) and axial direction (e.g.) Figure 2 The first groove 111 and the second groove 112 have an angle (in the Z direction shown), and there is an angle between the extension direction of the first groove 111 and the extension direction of the second groove 112, so that the first flow channel 30 and the second flow channel 40 formed by the first groove 111 and the second groove 112 satisfy the angular relationship, ensuring that the first flow channel 30 and the second flow channel 40 formed by the first groove 111 and the second groove 112 can generate a large dynamic pressure. The number of first grooves 111 is at least two, and the number of second grooves 112 is at least one. The at least two first grooves 111 are respectively located on both sides of the second groove 112 in the axial direction of the bearing 10, so that the two opposite ends of the second groove 112 are close to the first groove 111. The medium can converge on the side where the two first grooves 111 and the second groove 112 are close to each other, so as to realize the bidirectional rotation of the dynamic pressure bearing 100.
[0071] Please see Figure 2 At least two first grooves 111 and at least one second groove 112 are located on the inner wall of the bearing 10; or, see [link to relevant documentation]. Figure 6 , Figure 6 The diagram shows a front view of a central shaft 20 with grooves 11 provided in an embodiment of this application. At least two first grooves 111 and at least one second groove 112 are located on the outer wall of the central shaft 20, such that the first grooves 111 and the second grooves 112 are located on the same surface. This simplifies the arrangement of the first grooves 111 and the second grooves 112, and ensures that the dynamic pressure generated by the first flow channel 30 and the second flow channel 40 formed by the first grooves 111 and the second grooves 112 has a good superposition effect during the operation of the hydrodynamic bearing 100, thus supporting the stable suspension of the central shaft 20.
[0072] Please see Figure 2 and Figure 6 When bearing 10 rotates clockwise in the circumferential direction (e.g.) Figure 2 and Figure 6 (as shown in the CW direction) or counterclockwise (e.g.) Figure 2 and Figure 6When rotating in the CCW direction (as shown), the medium collects at one end of the second groove 112 and flows out at the other end, causing the volume of the medium near the other end of the second groove 112 to decrease or even disappear, forming a large negative pressure and affecting the stable suspension of the central shaft 20. Similarly, by setting the shape and size of the first groove 111 and the second groove 112, the shape and size of the first flow channel 30 and the second flow channel 40 can be controlled, which can prevent the medium from flowing out too much at the ends of the first groove 111 and the second groove 112 that are close to each other, ensuring that a large dynamic pressure can be generated at all points in the first groove 111 and the second groove 112, thereby ensuring the stable suspension of the central shaft 20. The following will combine Figure 4 and Figure 5 The shape and size of the first groove 111 and the second groove 112 are described in detail.
[0073] In one embodiment, please refer to Figure 4 The side of the first groove 111 and the second groove 112 that is close together has a smaller depth than the side that is far apart. This reduces the negative pressure generated on the side of the first groove 111 and the second groove 112 that is close together, which helps to ensure that the side of the first groove 111 and the second groove 112 that is close together has sufficient medium to support the suspension of the central shaft 20. For example, the depth of the end of the first groove 111 that is close together with the second groove 112 is 0 to 1 / 3 times the depth of the end of the first groove 111 that is far apart with the second groove 112. This allows the depth variation of the first groove 111 in its extension direction to be reasonably set, ensuring that there is a large depth difference between the end of the first groove 111 that is close together with the second groove 112 and the end that is far apart with the first groove 111 that is far apart with the second groove 112. This results in a smaller negative pressure generated on the end of the first groove 111 that is close together with the second groove 112, ensuring that the first groove 111 has sufficient medium to support the suspension of the central shaft 20. It is understandable that when the second groove 112 is in the axial direction of the bearing 10 (e.g., Figure 4 When both sides of the second groove 112 (in the Z direction) have the first groove 111, the depth of the two ends of the second groove 112 in the extension direction of the second groove 112 can be 0 to 1 / 3 times the depth of its middle region, so as to ensure that there is enough medium in the second groove 112 to support the suspension of the central shaft 20.
[0074] For example, please refer to Figure 2The depth of the end of the first groove 111 that is close to the second groove 112 is 0, and the depth of the end of the second groove 112 that is close to the first groove 111 is also 0. That is, the two ends of the first groove 111 and the second groove 112 that are close to each other are spaced apart, which simplifies the structural setting of the two ends of the first groove 111 and the second groove 112 that are close to each other. This avoids the need to set the first groove 111 and the second groove 112 as stepped grooves to meet the above-mentioned depth changes. At the same time, it also minimizes the amount of negative pressure that can be generated on the side of the first groove 111 and the second groove 112 that are close to each other, which is conducive to ensuring that the first groove 111 and the second groove 112 have sufficient medium to support the central shaft 20 to suspend.
[0075] In one embodiment, please refer to Figure 5 At least one of the inner wall of the bearing 10 and the outer wall of the central shaft 20 has a widening groove 13. The widening groove 13 is located on the same surface as the first groove 111 and the second groove 112, which helps to simplify the setting of the widening groove 13. The widening groove 13 is connected to at least one of the first groove 111 and the second groove 112, so that the medium flows between the widening groove 13 and the first groove 111 and / or between the widening groove 13 and the second groove 112, which helps to increase the accommodating space of the first groove 111 and / or the second groove 112 for the medium. The widening groove 13 is located on the side where the first groove 111 and the second groove 112 are close together, so that the side where the first groove 111 and the second groove 112 are close together has a larger space to accommodate the medium. When a negative pressure is generated on the side where the first groove 111 and the second groove 112 are close together, the medium lost on the side where the first groove 111 and the second groove 112 are close together can be replenished in time, reducing the degree of reduction in the medium volume on the side where the first flow channel 30 and the second flow channel 40 are close together. This is beneficial to ensure that the side where the first groove 111 and the second groove 112 are close together has enough medium to support the suspension of the central shaft 20.
[0076] For example, please refer to Figure 5 The widening groove 13 is located at the two ends of the first groove 111 and the second groove 112 close to each other. This ensures that the widening groove 13 is positioned close to the areas in the first groove 111 and the second groove 112 where negative pressure is likely to occur, thus guaranteeing the ability of the widening groove 13 to replenish the medium in the first groove 111 and the second groove 112. The widening groove 13 is connected to both the first groove 111 and the second groove 112, allowing them to be connected through a single widening groove 13. This simplifies the placement of the widening groove 13 and allows for better flow of the medium in the first groove 111 and the second groove 112, further preventing medium loss. All of these factors contribute to ensuring that the first groove 111 and the second groove 112 have sufficient medium to support the suspension of the central shaft 20.
[0077] For one possible implementation, please refer to Figure 7 , Figure 7 This illustration shows a cross-sectional view of a bearing 10 with a third groove 113 and a fourth groove 114 according to an embodiment of this application. The groove 11 includes a first groove 111, a second groove 112, a third groove 113, and a fourth groove 114. The first groove 111 and the second groove 112 are located in the axial direction of the bearing 10 (e.g., ...). Figure 7 The third groove 113 and the fourth groove 114 are alternately arranged in the Z direction (as shown), and are in the axial direction of the bearing 10 (e.g., in the Z direction). Figure 7 The grooves 113 and 114 are alternately arranged in the Z direction (as shown). The third groove 113 and the fourth groove 114 are both located on the same side of the first groove 111 and the second groove 112 in the circumferential direction of the bearing 10. This increases the number of grooves 11 and improves the dynamic pressure that the dynamic pressure bearing 100 can generate. At the same time, the multiple grooves 11 are distributed in the circumferential direction of the bearing 10, so that the dynamic pressure generated by the multiple grooves 11 can be superimposed, thereby improving the support capacity of the medium for the central shaft 20.
[0078] Please see Figure 7 The third groove 113 is parallel to the second groove 112, and the fourth groove 114 is parallel to the first groove 111. This arrangement of the third groove 113 and the second groove 112 is spaced apart, and the fourth groove 114 and the first groove 111 are spaced apart. The negative pressure generated in the spaced areas of the third groove 113 and the second groove 112 is relatively small, and the negative pressure generated in the spaced areas of the fourth groove 114 and the first groove 111 is also relatively small. This avoids the generation of large negative pressure in the areas where multiple grooves 11 are close to each other, and ensures that multiple grooves 11 can generate sufficient dynamic pressure. Furthermore, the arrangement of multiple grooves 11 is more regular, which is beneficial to simplifying the setting of multiple grooves 11. The two ends of the third groove 113 and the fourth groove 114 that are close to each other correspond to the end of the second groove 112 that is away from the first groove 111, so that in the axial direction of the bearing 10, the second groove 112 and the third groove 113 are approximately at the same height, and the fourth groove 114 is located on the side of the second groove 112 that is away from the first groove 111. It can be understood that the two ends of the third groove 113 and the fourth groove 114 that are close to each other correspond to the area near the end of the second groove 112 that is away from the first groove 111.
[0079] By arranging the first groove 111, the second groove 112, the third groove 113, and the fourth groove 114 in the above-mentioned arrangement, the first groove 111 and the second groove 112 are staggered with the third groove 113 and the fourth groove 114 along the circumferential direction of the bearing 10. This makes full use of the space on the outer wall of the central shaft 20 and / or the inner wall of the bearing 10, making the arrangement of the grooves 11 more compact. This increases the number of grooves 11 that can be provided in the hydrodynamic bearing 100, which is beneficial for the medium to generate greater dynamic pressure between the central shaft 20 and the bearing 10 during the operation of the hydrodynamic bearing 100. Alternatively, when the number of grooves 11 that can be provided in the hydrodynamic bearing 100 is fixed, the axial length of the bearing 10 can be reduced, thereby achieving miniaturization of the hydrodynamic bearing 100.
[0080] Please see Figure 7 The second groove 112 and the third groove 113 are arranged in parallel. The third groove 113 is located on one side of the second groove 112 in the circumferential direction of the bearing 10, and the second groove 112 and the third groove 113 are approximately at the same height, so that when the bearing 10 rotates clockwise in the circumferential direction (e.g., ... Figure 7 When rotating in the CW direction (as shown), the medium gathers at the end of the second groove 112 near the first groove 111, and the medium also gathers at the end of the third groove 113 away from the fourth groove 114, so that the dynamic pressure generated by the second groove 112 and the dynamic pressure generated by the third groove 113 can be superimposed to jointly support the stable suspension of the central shaft 20.
[0081] Please see Figure 7 The number of first grooves 111 can be at least two. Second grooves 112 are arranged in a one-to-one correspondence with the first grooves 111. Two adjacent first grooves 111 are arranged parallel to each other in the circumferential direction of the bearing 10. A third groove 113 is located in the interval region between two adjacent first grooves 111, and the third groove 113 is spaced apart from both the first grooves 111 and the second grooves 112. This results in a large interval region between adjacent first grooves 111, and the negative pressure generated in this interval region is small, preventing large negative pressure from being generated within the dynamic pressure grooves 11. Simultaneously, by setting the first grooves 111, second grooves 112, third grooves 113, and fourth grooves 114 to satisfy the above arrangement, the arrangement of multiple grooves 11 is more compact, ensuring that the dynamic pressure bearing 100 has a sufficient number of grooves 11 and can generate large dynamic pressure.
[0082] In one embodiment, please refer to Figure 7The first groove 111, the second groove 112, the third groove 113, and the fourth groove 114 are all located on the inner wall of the bearing 10 or the outer wall of the central shaft 20, so that the dynamic pressure generated in the first groove 111, the second groove 112, the third groove 113, and the fourth groove 114 has a good superposition effect, jointly supporting the stable suspension of the central shaft 20. The two ends of the third groove 113 and the fourth groove 114 that are close to each other can be connected, so that the medium can generate large dynamic pressure in both the third groove 113 and the fourth groove 114. Similarly, the two ends of the first groove 111 and the second groove 112 that are close to each other can also be connected, so that the medium can generate large dynamic pressure in both the first groove 111 and the second groove 112. Both of these are conducive to ensuring the medium's support capacity for the central shaft 20.
[0083] For one possible implementation, please refer to Figure 8 , Figure 8 A cross-sectional view of a bearing 10 with a groove 12 provided in an embodiment of this application is shown. The two ends of the first groove 111 and the second groove 112 are spaced apart, which helps to reduce the negative pressure generated at the two ends of the first groove 111 and the second groove 112. However, during the operation of the dynamic pressure bearing 100, the dynamic pressure generated when the two ends of the first groove 111 and the second groove 112 are spaced apart is less than the dynamic pressure generated when the two ends of the first groove 111 and the second groove 112 are connected.
[0084] A groove 12 is provided in the space between the two adjacent ends of the first groove 111 and the second groove 112. The groove 12 is spaced apart from both the first groove 111 and the second groove 112 to avoid the groove 12 causing a large negative pressure at the adjacent ends of the first groove 111 and the second groove 112. The connecting channel 50 connects the first channel 30 formed by the first groove 111 and the second channel 40 formed by the second groove 112. The groove 12 forms a partial connecting channel 50, and this partial connecting channel 50 is located between the adjacent ends of the first channel 30 and the second channel 40. The groove 12 increases the dynamic pressure at this partial connecting channel 50, thereby increasing the dynamic pressure between the adjacent ends of the first channel 30 and the second channel 40.
[0085] In one embodiment, please refer to Figure 9 and Figure 10 , Figure 9 This illustration shows a cross-sectional view of a bearing 10 with at least two grooves 12 arranged circumferentially, according to an embodiment of this application. Figure 10 The embodiments of this application show at least two grooves 12 along the axial direction (e.g.) Figure 9 and Figure 10The cross-sectional view of the bearings 10 arranged in the Z direction (shown) shows that each connecting flow channel 50 corresponds to at least two grooves 12. This allows the specific number of grooves 12 to be set according to actual needs, thereby controlling the degree of dynamic pressure increase near the two ends of the first flow channel 30 and the second flow channel 40. The at least two grooves 12 can be arranged in an array along the axial direction of the bearing 10, or in an array along the axial direction of the bearing 10, making the distribution of the at least two grooves 12 more uniform and regular, which is beneficial to ensuring the ability of the at least two grooves 12 to increase dynamic pressure. It can be understood that the at least two grooves 12 can be arranged both in an array along the axial direction and in the circumferential direction of the bearing 10 to ensure the stable suspension of the central shaft 20.
[0086] In one embodiment, please refer to Figure 8 , Figure 9 and Figure 10 Bearing 10 rotates clockwise in the circumferential direction (e.g.) Figure 8 , Figure 9 and Figure 10 (as shown in the CW direction) or counterclockwise (e.g.) Figure 8 , Figure 9 and Figure 10 The groove 12 rotates in the CCW direction shown, and its shape is parallel to the axial direction of the bearing 10 (as shown). Figure 8 , Figure 9 and Figure 10 The linear symmetry (in the Z direction) ensures that the groove 12 increases the dynamic pressure approximately the same when the bearing 10 rotates clockwise or counterclockwise in the circumferential direction, thus guaranteeing the bidirectional rotation of the dynamic pressure bearing 100. For example, the shape of the groove 12 may include, but is not limited to, a circle or a rectangle.
[0087] For one possible implementation, please refer to Figure 11 , Figure 11 A cross-sectional view of a bearing 10 with at least two first grooves 111 and at least two second grooves 112 provided in this embodiment is shown. The number of first grooves 111 corresponding to a single first flow channel 30 is at least two, and the number of second grooves 112 corresponding to a single second flow channel 40 is at least two. This allows the medium to generate significant dynamic pressure near both the first and second flow channels 30, which is beneficial for ensuring that the dynamic bearing 100 has sufficient dynamic pressure to support the suspension of the central shaft 20. The number of second grooves 112 in a single second flow channel 40 can be the same as the number of first grooves 111 in a single first flow channel 30, making the dynamic pressure of the medium near the first flow channel 30 and the dynamic pressure near the second flow channel 40 approximately equivalent. This simplifies the setting and arrangement of the first grooves 111 and the second grooves 112, and facilitates setting different numbers of first flow channels 30 and second flow channels 40 according to actual needs, so that the dynamic bearing 100 has sufficient dynamic pressure to support the suspension of the central shaft 20.
[0088] In one embodiment, please refer to Figure 11 The first groove 111 and the second groove 112 have the same shape and size, which further improves the regularity of the first groove 111 and the second groove 112 and simplifies the setting and arrangement of the first groove 111 and the second groove 112; at the same time, the dynamic pressure near the first flow channel 30 and the dynamic pressure near the second flow channel 40 are similar, which helps to ensure the stability of the dynamic pressure at various points in the dynamic pressure bearing 100, thereby ensuring the stable suspension of the central shaft 20.
[0089] In one embodiment, please refer to Figure 11 At least two first grooves 111 and at least two second grooves 112 are located in the axial direction of the bearing 10 (e.g., Figure 11 The array arrangement in the Z direction (as shown) makes the arrangement of at least two first grooves 111 and at least two second grooves 112 more regular, which helps to ensure the lifting capacity of at least two first grooves 111 and at least two second grooves 112 for dynamic pressure, and further ensures the stable suspension of the central shaft 20.
[0090] Please see Figure 11 At least two first grooves 111 and at least two second grooves 112 are symmetrically arranged, and the axis of symmetry of the first grooves 111 and the second grooves 112 extends along the circumference of the bearing 10, so that the dynamic pressure of the medium near the first flow channel 30 formed by the first groove 111 is equivalent to the dynamic pressure near the second flow channel 40 formed by the second groove 112, which further ensures the stable suspension of the central shaft 20.
[0091] For one possible implementation, please refer to Figure 2 and Figure 12 , Figure 12 The diagram shows a schematic of the structure of a central shaft 20 with an annular groove 21 provided in an embodiment of this application. The first groove 111 and the second groove 112 are both located on the inner wall of the bearing 10. The outer wall of the central shaft 20 has an annular groove 21. The annular groove 21 is arranged around the circumference of the central shaft 20 to increase the accommodating space of the medium. The two ends of the annular groove 21 that are close to the first groove 111 and the second groove 112 correspond to each other, so that the setting position of the annular groove 21 is close to the position where the first groove 111 and the second groove 112 are prone to generate negative pressure, thus ensuring the ability of the annular groove 21 to replenish the medium in the first groove 111 and the second groove 112. When a negative pressure is generated near the end of the first flow channel 30 and the second flow channel 40 formed by the first groove 111 and the second groove 112, the medium lost at the end of the first groove 111 and the second groove 112 can be replenished in time, reducing the reduction in the medium volume at the end of the first flow channel 30 and the second flow channel 40, and further ensuring that the end of the first groove 111 and the second groove 112 has sufficient medium to support the suspension of the central shaft 20.
[0092] For one possible implementation, please refer to Figure 13 , Figure 13 This illustration shows a schematic diagram of a central shaft 20 with a flange 22 provided in an embodiment of this application. The central shaft 20 is located in its axial direction (e.g., Figure 13 At least one end of the central shaft 20 (in the Z direction shown) has a flange 22, such that the central shaft 20 has a larger diameter at the flange 22. The diameter of the central shaft 20 at the flange 22 is larger than the inner diameter of the bearing 10, so that the flange 22 can limit the height of the central shaft 20 in the axial direction of the bearing 10, which is beneficial to ensuring the stability of the position of the central shaft 20 relative to the bearing 10. The flange 22 has a first surface 221 and a second surface 222 facing away from each other in the axial direction of the central shaft 20. The first groove 111 and the second groove 112 are located on at least one of the first surface 221 and the second surface 222, so that the medium near the first groove 111 and the second groove 112 on the flange 22 can provide axial support force to the central shaft 20 when the central shaft 20 rotates clockwise along the circumference of the bearing 10 (e.g., ...). Figure 13 (as shown in the CW direction) or counterclockwise (e.g.) Figure 13 When the medium rotates in the CCW direction (as shown), it can generate a large dynamic pressure near the central shaft 20, thereby ensuring the suspension of the central shaft 20 and improving the stability of the dynamic pressure bearing 100.
[0093] In one embodiment, please refer to Figure 13 The outer wall of the central shaft 20 and the first surface 221 and the second surface 222 of the flange 22 both have a first groove 111 and a second groove 112, so that the medium near the first groove 111 and the second groove 112 on the outer wall of the central shaft 20 provides radial support force for the central shaft 20, and the medium near the first groove 111 and the second groove 112 on the first surface 221 and the second surface 222 provides axial support force for the central shaft 20. The central shaft 20 is simultaneously subjected to radial and axial support forces, which helps to ensure the stable suspension of the central shaft 20 and improve the operational stability of the hydrodynamic bearing 100.
[0094] In one embodiment, please refer to Figure 13The diameter of the first surface 221 of the flange 22 is larger than the inner diameter of the bearing 10, and the diameter of the second surface 222 of the flange 22 is also larger than the inner diameter of the bearing 10. This allows both the first surface 221 and the second surface 222 of the flange 22 to have a large area for the first groove 111 and the second groove 112. The first surface 221 and / or the second surface 222 of the flange 22 have at least two first grooves 111 and at least one second groove 112, and these at least two first grooves 111 and at least one second groove 112 are located on the same surface. This ensures that the medium generates significant dynamic pressure near the first surface 221 and / or the second surface 222 during the rotation of the bearing 10, further ensuring the stable suspension of the central shaft 20 and improving the stability of the dynamic pressure bearing 100. Simultaneously, the extension direction of the first groove 111 and the extension direction of the second groove 112 are both approximately radial to the central shaft 20, ensuring that the medium near the first groove 111 and the second groove 112 can provide axial support force to the central shaft 20.
[0095] This application also provides an electric motor device 200, please refer to [reference needed]. Figure 1 and Figure 14 , Figure 14 A schematic diagram of a motor device 200 provided in an embodiment of this application is shown. The motor device 200 includes a dynamic pressure bearing 100 and a motor 201. The motor 201 is connected to at least one of the bearing 10 and the central shaft 20 of the dynamic pressure bearing 100. The motor 201 is used to provide power to the dynamic pressure bearing 100 so that the dynamic pressure bearing 100 can rotate clockwise and counterclockwise.
[0096] It is understood that the motor device 200 in this embodiment has the dynamic pressure bearing 100 in the above embodiments. Therefore, the motor device 200 in this embodiment has all the technical effects of the dynamic pressure bearing 100 in the above embodiments. Since the technical effects of the dynamic pressure bearing 100 have been fully explained in the above embodiments, they will not be repeated here.
[0097] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.
Claims
1. A dynamic pressure bearing, characterized by, include: Bearing and central shaft, the bearing being sleeved on the outer circumference of the central shaft. The bearing and the central shaft have a first flow channel, a second flow channel, and a connecting flow channel. The first flow channel and the second flow channel are alternately arranged in the axial direction of the bearing. The connecting flow channel connects the first flow channel and the second flow channel. The depth of the connecting flow channel is less than the depth of the first flow channel and the depth of the second flow channel. The conduction direction of the first flow channel and the conduction direction of the second flow channel both have an angle with the radial and axial directions of the bearing. There is an angle between the conduction directions of the first flow channel and the conduction direction of the second flow channel. The side of the first flow channel and the second flow channel that is closer to each other has a smaller depth and / or a larger width than the side that is farther away from each other.
2. The dynamic pressure bearing of claim 1, wherein At least one of the inner wall of the bearing and the outer wall of the central shaft has a groove, the groove forming the first flow channel and the second flow channel.
3. The dynamic pressure bearing of claim 2, wherein, The groove includes at least two first grooves and at least one second groove. The at least two first grooves are located on both sides of the second groove in the axial direction of the bearing. The extension directions of the first groove and the second groove are both at angles with the radial and axial directions of the bearing. There is an angle between the extension directions of the first groove and the extension directions of the second groove. The first groove and the second groove are both on the inner wall of the bearing or the outer wall of the central shaft. The first groove and the second groove respectively form the first flow channel and the second flow channel.
4. The dynamic pressure bearing of claim 3, wherein The depth of the end of the first trench that is close to the second trench is 0 to 1 / 3 times the depth of the other end that is far away.
5. The dynamic pressure bearing of claim 3 or 4, wherein, The first groove and the second groove are alternately arranged in the axial direction of the bearing. The groove also includes a third groove and a fourth groove. The third groove and the fourth groove are located on the same side of the first groove and the second groove in the circumferential direction of the bearing. The third groove and the fourth groove are parallel to the second groove and the first groove, respectively. The two ends of the third groove and the fourth groove that are close to each other correspond to the end of the second groove that is away from the first groove.
6. The dynamic pressure bearing of claim 5, wherein, The third and fourth grooves are located on the same surface as the first and second grooves, and the two ends of the third and fourth grooves that are close to each other are connected.
7. A dynamic pressure bearing according to any one of claims 3 to 6, characterised in that, The two ends of the first trench and the second trench that are close to each other are connected.
8. A dynamic pressure bearing according to any one of claims 3 to 6, characterised in that, The first groove and the second groove are spaced apart at their adjacent ends, and the spaced area between the adjacent ends of the first groove and the second groove has a groove. The groove is spaced apart from both the first groove and the second groove, and the groove forms part of the connecting flow channel.
9. The hydrodynamic bearing according to claim 8, characterized in that, The shape of the groove is symmetrical about a straight axis parallel to the axial direction of the bearing.
10. The hydrodynamic bearing according to claim 8 or 9, characterized in that, The number of grooves corresponding to a single connecting channel is at least two, and the at least two grooves are arranged in an array in the axial and / or circumferential directions of the bearing.
11. The hydrodynamic bearing according to any one of claims 3 to 10, characterized in that, The number of first grooves corresponding to a single first flow channel is at least two, and the at least two first grooves are arranged in an array along the axial direction of the bearing. The number of second grooves corresponding to a single second flow channel is the same as the number of first grooves corresponding to a single first flow channel.
12. The hydrodynamic bearing according to any one of claims 3 to 11, characterized in that, The first groove and the second groove are symmetrically arranged, and the axis of symmetry of the first groove and the second groove extends along the circumference of the bearing.
13. The hydrodynamic bearing according to any one of claims 3 to 12, characterized in that, At least one of the inner wall of the bearing and the outer wall of the central shaft has a widening groove, the widening groove communicating with at least one of the first groove and the second groove, and the widening groove being located on the side of the first groove and the second groove that are close to each other.
14. The hydrodynamic bearing according to claim 13, characterized in that, The widening groove is located at the two ends of the first groove and the second groove that are close to each other, and the widening groove is connected to both the first groove and the second groove.
15. The hydrodynamic bearing according to any one of claims 3 to 14, characterized in that, Both the first groove and the second groove are located on the inner wall of the bearing. The outer wall of the central shaft has an annular groove, which is arranged circumferentially around the central shaft. The annular groove corresponds to the two ends of the first groove and the second groove that are close to each other.
16. The hydrodynamic bearing according to any one of claims 3 to 15, characterized in that, The central shaft has a flange at at least one end in its axial direction, and the first groove and the second groove are located on at least one of two surfaces of the flange that are opposite each other in the axial direction of the central shaft.
17. A motor device, characterized in that, Includes the hydrodynamic bearing and motor as described in any one of claims 1 to 16, wherein the motor and at least one of the bearing and the central shaft of the hydrodynamic bearing are connected.