Vibration components and handles

By designing an eccentric vibrator and a pendulum eccentric vibrator in the VR game device handle and combining it with the position switching of the driving parts, the simulation of real shooting recoil is achieved, thereby improving the user experience.

CN116549958BActive Publication Date: 2025-09-19GOERTEK INC
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202310499684.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-27
Publication Date
2025-09-19
Estimated Expiration
2043-04-27

AI Technical Summary

Technical Problem

In existing VR gaming devices, the handles cannot provide a realistic shooting recoil feel, resulting in a poor user experience.

Method used

A vibration sensing component is designed, including an eccentric vibrator and a pendulum eccentric vibrator, which are connected to the eccentric vibrator at different positions through a driving member to achieve normal vibration and shooting recoil simulation, and the position is switched by sliding or rotating.

Benefits of technology

It improves the user's shooting recoil tactile experience and provides realistic shooting recoil feedback through the cooperation of the eccentric vibrator and the pendulum eccentric vibrator.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116549958B_ABST
    Figure CN116549958B_ABST
Patent Text Reader

Abstract

The present invention discloses a vibration sensor assembly and a handle. The vibration sensor assembly includes a housing, an eccentric vibrator, a pendulum eccentric vibrator, and a driving member. The housing has a mounting cavity formed therein. The eccentric vibrator is disposed in the housing. The pendulum eccentric vibrator is disposed in the housing and spaced apart from the eccentric vibrator. The driving member is movably disposed in the mounting cavity and has a first position and a second position. The driving member has an output shaft. When the driving member is in the first position, the output shaft is in transmission connection with the eccentric vibrator to drive the eccentric vibrator to rotate. When the driving member is in the second position, the output shaft is in transmission connection with the pendulum eccentric vibrator to drive the pendulum eccentric vibrator to rotate. The technical solution of the present invention improves the problem of the user's hand not feeling the actual recoil of shooting, thereby enhancing the user experience.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of human-computer interaction equipment, and in particular to a vibration sensing component and a handle. Background Art

[0002] Currently, shooting scenes usually occupy a considerable proportion in VR (Virtual Reality) gaming devices. Currently, shooting recoil simulation is mainly achieved through software at the visual level and uniform vibration of the handle. However, the handle held by the user can only achieve an ordinary vibration effect, resulting in the user's hand having no real shooting recoil touch, and the experience is weak. Summary of the Invention

[0003] The main purpose of the present invention is to provide a vibration component and a handle, aiming to improve the problem that the user does not have a real shooting recoil feeling on his hand, so as to enhance the user experience.

[0004] To achieve the above-mentioned object, the present invention proposes a vibration sensing component, comprising:

[0005] a housing, wherein a mounting cavity is formed in the housing;

[0006] an eccentric vibrator, disposed in the housing;

[0007] A pendulum eccentric vibrator is provided in the housing and spaced apart from the eccentric vibrator;

[0008] a driving member movably disposed in the mounting cavity and having a first position and a second position, the driving member having an output shaft;

[0009] Wherein, when the driving member is in the first position, the output shaft is connected to the eccentric vibrator to drive the eccentric vibrator to rotate; when the driving member is in the second position, the output shaft is connected to the pendulum eccentric vibrator to drive the pendulum eccentric vibrator to rotate.

[0010] In one embodiment of the present invention, the driving member is slidably disposed in the mounting cavity to switch between the first position and the second position.

[0011] In one embodiment of the present invention, the housing is defined as having a length direction, and the eccentric vibrator and the pendulum eccentric vibrator are respectively disposed at both ends of the housing along the length direction of the housing; the driving member has two output shafts, and the two output shafts are respectively close to the eccentric vibrator and the pendulum eccentric vibrator;

[0012] When the driving member is in the first position, one of the output shafts is connected to the eccentric vibrator close to it; when the driving member is in the second position, the other output shaft is connected to the pendulum eccentric vibrator close to it.

[0013] In one embodiment of the present invention, the vibration sensing assembly further includes a shifting rod, and the shifting rod is connected to the driving member so as to drive the driving member to slide through the shifting rod under the action of an external force.

[0014] In one embodiment of the present invention, the housing is provided with an escape opening communicating with the installation cavity, and one end of the shifting rod away from the driving member extends out of the housing from the escape opening.

[0015] In one embodiment of the present invention, the housing comprises:

[0016] a cylinder having a length direction;

[0017] Two end plates, the two end plates are respectively arranged at both ends of the cylinder and enclose the cylinder to form the installation cavity, each end plate is penetrated by a shaft sleeve, the eccentric vibrator and the pendulum eccentric vibrator are respectively connected to the two shaft sleeves;

[0018] Wherein, when the driving member is in the first position, one of the output shafts is connected to the eccentric vibrator close to it through one of the bushings; when the driving member is in the second position, the other output shaft is connected to the pendulum eccentric vibrator close to it through the other bushing.

[0019] In one embodiment of the present invention, the shaft sleeve has a first end located in the installation cavity and a second end located outside the installation cavity, the first end is provided with a limiting groove, and the second end is provided with a slot;

[0020] The output shaft has a limiting block, which can be inserted into the limiting slot, and the rotating shaft of the eccentric vibrator and the rotating shaft of the pendulum eccentric vibrator are respectively inserted into the two slots.

[0021] In one embodiment of the present invention, a first socket and a second socket are provided on the inner wall of the cylinder, and the first socket and the second socket are respectively close to the two ends of the cylinder; an insert block is provided on the outer edge of the end plate, and the insert blocks of the two end plates are respectively inserted into the first socket and the second socket.

[0022] In one embodiment of the present invention, a connecting structure is provided on the outer side of the shell, and the connecting structure is used to connect with the body of the handle.

[0023] The present invention also provides a handle comprising the vibration sensing component described above.

[0024] In the vibration sensing assembly proposed by the present invention, an eccentric vibrator and a pendulum eccentric vibrator are spaced apart and arranged on a housing, and a driving member is movably arranged in a mounting cavity of the housing, with a first position and a second position. In this way, when the user only needs to experience a normal vibration feeling on the hand, the driving member can be moved to the first position so that the output shaft of the driving member is connected to the eccentric vibrator by transmission, and the eccentric vibrator can be driven to rotate, thereby achieving a normal vibration effect on the hand to meet daily use; and when the user needs to experience the real shooting recoil feeling on the hand, the driving member can be moved to the second position so that the output shaft of the driving member is connected to the pendulum eccentric vibrator by transmission, and the pendulum eccentric vibrator can be driven to rotate, so that the handle can produce a swing effect to simulate the feedback of shooting recoil, thereby achieving the effect of having a real shooting recoil feeling on the hand, and enhancing the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.

[0026] Figure 1 This is a schematic structural diagram of a driving member in a first position in an embodiment of a vibration sensing assembly of the present invention;

[0027] Figure 2 This is a schematic structural diagram of a driving member in a second position in an embodiment of a vibration sensing assembly of the present invention;

[0028] Figure 3 An exploded view of an embodiment of a vibration sensing component of the present invention;

[0029] Figure 4 This is a schematic structural diagram of an embodiment of a handle of the present invention.

[0030] Description of Figure Numbers:

[0031]

[0032]

[0033] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION

[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0035] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0036] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features specified as "first" and "second" may explicitly or implicitly include at least one of such features. In addition, the technical solutions between the various embodiments can be combined with each other, but this must be based on the fact that ordinary technicians in this field can implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0037] The present invention provides a vibration sensor component 100 and a handle 1000, which are intended to improve the problem of a user not having a realistic shooting recoil feeling on their hands, thereby enhancing the user experience.

[0038] The specific structures of the vibration sensor assembly 100 and the handle 1000 of the present invention are described below:

[0039] See also Figures 1 to 3 In one embodiment of the vibration sensing assembly 100 of the present invention, the vibration sensing assembly 100 includes a housing 10, an eccentric vibrator 20, a pendulum eccentric vibrator 30, and a driving member 40; the housing 10 is formed with a mounting cavity 10a; the eccentric vibrator 20 is disposed in the housing 10; the pendulum eccentric vibrator 30 is disposed in the housing 10 and spaced apart from the eccentric vibrator 20; the driving member 40 is movably disposed in the mounting cavity 10a and has a first position and a second position, and the driving member 40 has an output shaft 41;

[0040] In which, when the driving member 40 is in the first position, the output shaft 41 is connected to the eccentric vibrator 20 to drive the eccentric vibrator 20 to rotate; when the driving member 40 is in the second position, the output shaft 41 is connected to the pendulum eccentric vibrator 30 to drive the pendulum eccentric vibrator 30 to rotate.

[0041] It is understood that in the vibration sensing assembly 100 proposed by the present invention, the eccentric vibrator 20 and the pendulum eccentric vibrator 30 are spaced apart on the housing 10, and the driver 40 is movably disposed in the mounting cavity 10a of the housing 10, with a first position and a second position. Thus, when the user only needs to experience a normal vibration sensation on the hand, the driver 40 can be moved to the first position, so that the output shaft 41 of the driver 40 is in transmission connection with the eccentric vibrator 20, thereby driving the eccentric vibrator 20 to rotate, thereby achieving a normal vibration effect on the hand to meet daily use; and when the user needs to experience the realistic tactile sensation of shooting recoil on the hand, the driver 40 can be moved to the second position, so that the output shaft 41 of the driver 40 is in transmission connection with the pendulum eccentric vibrator 30, thereby driving the pendulum eccentric vibrator 30 to rotate, so that the handle 1000 can produce a swing effect to simulate the feedback of shooting recoil, thereby achieving the effect of a realistic tactile sensation of shooting recoil on the hand, thereby enhancing the user experience.

[0042] It should be noted that the eccentric vibrator 20 refers to an existing structure capable of generating an exciting force during rotation. It generally comprises two eccentric structures, and the magnitude of the exciting force can be adjusted by adjusting the angle between the two eccentric structures. The pendulum eccentric vibrator 30 refers to an existing structure capable of generating a swinging effect during rotation to simulate the feeling of shooting recoil, and will not be described in detail here.

[0043] In actual application, the eccentric vibrator 20 and the pendulum eccentric vibrator 30 can be arranged in the installation cavity 10a of the shell 10, or can be arranged on the outside of the shell 10. As long as it is ensured that when the driving member 40 is in the first position, the output shaft 41 on the driving member 40 can be connected to the eccentric vibrator 20 through transmission, and that when the driving member 40 is in the second position, the output shaft 41 on the driving member 40 can be connected to the pendulum eccentric vibrator 30 through transmission, no specific limitation is made here.

[0044] In actual application, the driving member 40 can be driven to switch between the first position and the second position directly by manual means, or by a motor or other mechanical drive means, which is not specifically limited here.

[0045] Furthermore, the driving member 40 can switch between the first position and the second position by sliding, or by rotating. In some embodiments, when the driving member 40 switches between the first position and the second position by rotating, the driving member 40 is defined to have a rotation path during the rotation process, and the eccentric vibrator 20 and the pendulum eccentric vibrator 30 can be spaced apart on the rotation path of the driving member 40. When the driving member 40 rotates to the first position, the output shaft 41 of the driving member 40 is connected to the eccentric vibrator 20 for transmission, and when the driving member 40 rotates to the second position, the output shaft 41 of the driving member 40 is connected to the pendulum eccentric vibrator 30 for transmission.

[0046] Furthermore, the driving member 40 may have one or two output shafts 41. When the driving member 40 has one output shaft 41, the driving member 40 can be in transmission connection with the eccentric vibrator 20 and the pendulum eccentric vibrator 30 through the same output shaft 41 in both the first position and the second position; when the driving member 40 has two output shafts 41, the driving member 40 can be in transmission connection with the eccentric vibrator 20 through one of the output shafts 41 in the first position, and can be in transmission connection with the pendulum eccentric vibrator 30 through the other output shaft 41 in the second position.

[0047] For example, the driving member 40 may be a motor.

[0048] Further, refer to Figures 1 to 3 In one embodiment of the vibration sensing assembly 100 of the present invention, the driving member 40 is slidably disposed in the mounting cavity 10a to switch between the first position and the second position.

[0049] With such a configuration, the driving member 40 can switch between the first position and the second position by sliding. Compared with the rotational movement, the sliding movement can reduce the space occupied by the driving member 40 during the movement, thereby reducing the overall space of the vibration sensing component 100. In addition, the sliding movement can achieve smoother movement.

[0050] In actual application, the connecting line between the eccentric vibrator 20 and the pendulum eccentric vibrator 30 can be parallel to the sliding direction of the driving member 40, or can be perpendicular to the sliding direction of the driving member 40.

[0051] Further, refer to Figures 1 to 3In one embodiment of the vibration sensing component 100 of the present invention, the shell 10 is defined as having a length direction, and the eccentric vibrator 20 and the pendulum eccentric vibrator 30 are respectively arranged at both ends of the shell 10 along the length direction of the shell 10; the driving member 40 has two output shafts 41, and the two output shafts 41 are respectively close to the eccentric vibrator 20 and the pendulum eccentric vibrator 30; wherein, when the driving member 40 is in the first position, one of the output shafts 41 is transmission-connected to the eccentric vibrator 20 close thereto; when the driving member 40 is in the second position, the other output shaft 41 is transmission-connected to the pendulum eccentric vibrator 30 close thereto.

[0052] That is, by making the connection line between the eccentric vibrator 20 and the pendulum eccentric vibrator 30 consistent with the sliding direction of the driving member 40, and making the driving member 40 transmission-connected to the eccentric vibrator 20 through one of the output shafts 41 when in the first position, and making the driving member 40 transmission-connected to the pendulum eccentric vibrator 30 through the other output shaft 41 when in the second position, in this way, not only can the space occupied by the driving member 40 during movement be further reduced, but the eccentric vibrator 20 and the pendulum eccentric vibrator 30 can also be separately arranged at the two ends of the shell 10 to ensure the balance of the vibration sensing component 100, and thus the vibration effect of the eccentric vibrator 20 and the shooting recoil tactile effect of the pendulum eccentric vibrator 30 can be ensured.

[0053] In this embodiment, when the user only needs to experience a normal vibration feeling on the hand, the driving member 40 can be moved toward the eccentric vibrator 20 by sliding to the first position, so that one of the output shafts 41 of the driving member 40 is connected to the eccentric vibrator 20 close to it, and the eccentric vibrator 20 can be driven to rotate, thereby achieving a normal vibration effect on the hand; and when the user needs to experience the real shooting recoil touch on the hand, the driving member 40 can be moved toward the pendulum eccentric vibrator 30 by sliding to the second position, so that the other output shaft 41 of the driving member 40 is connected to the pendulum eccentric vibrator 30 close to it, and the pendulum eccentric vibrator 30 can be driven to rotate, so that the handle 1000 can produce a swing amplitude jump effect to simulate the feedback of shooting recoil, thereby achieving the real shooting recoil touch effect on the hand.

[0054] Further, refer to Figures 1 to 3 In one embodiment of the vibration component 100 of the present invention, the vibration component 100 further includes a lever 50, and the lever 50 is connected to the driving member 40 so as to drive the driving member 40 to slide through the lever 50 under the action of an external force.

[0055] With such an arrangement, the driving member 40 can be smoothly driven to slide by the shifting rod 50 under the action of an external force, so that the driving member 40 can be switched between the first position and the second position more smoothly.

[0056] It should be noted that the external force mentioned above can be human power or mechanical driving force.

[0057] Further, refer to Figures 1 to 3 In one embodiment of the vibration sensing component 100 of the present invention, the housing 10 is provided with an avoidance opening 111 communicating with the mounting cavity 10a, and one end of the lever 50 away from the driving member 40 extends out of the housing 10 from the avoidance opening 111.

[0058] With such an arrangement, during the assembly process, one end of the lever 50 can be connected to the driving member 40, and the end of the lever 50 away from the driving member 40 can be extended from the avoidance opening 111 of the shell 10 to the outside of the shell 10. This can reduce the space in which the lever 50 is accommodated in the installation cavity 10a of the shell 10, thereby reducing the internal space occupied by the lever 50, so that the volume of the shell 10 can be set to be smaller; at the same time, by extending the end of the lever 50 away from the driving member 40 from the avoidance opening 111 of the shell 10 to the outside of the shell 10, it can also be convenient for personnel or a mechanical driving structure to drive the lever 50 to slide, thereby facilitating the sliding of the driving member 40 through the lever 50.

[0059] In this embodiment, the length of the avoidance opening 111 in the longitudinal direction of the housing 10 is greater than or equal to the sliding distance of the driving member 40, so as to prevent the avoidance opening 111 from blocking the sliding of the lever 50, thereby blocking the sliding of the driving member 40. It should be noted that the sliding distance of the driving member 40 mentioned here refers to the distance between the driving member 40 in the first position and the driving member 40 in the second position, so as to ensure that the driving member 40 can switch between the first position and the second position.

[0060] In some embodiments, in conjunction with Figure 4 When the vibration sensing component 100 is applied to the handle 1000, the end of the lever 50 away from the driving member 40 can be extended outside the body 200 of the handle 1000. In this way, the user can manually move the lever 50 to drive the driving member 40 to switch between the first position and the second position.

[0061] In addition, the shell 10 can also be provided with an avoidance hole connected to the installation cavity 10a, so that the electrical connection line on the driving member 40 can extend out of the shell 10 through the avoidance hole, for being used to be electrically connected to the main board on the main body 200 of the handle 1000, so that the movement of the driving member 40 can be controlled by the main board on the main body 200.

[0062] In addition, in order to improve the stability of the driving member 40 during the sliding process, a sliding groove can be provided on the cavity wall of the installation cavity 10a, and a sliding part that slides with the sliding groove can be provided on the outer surface of the driving member 40, so that the driving member 40 can slide more smoothly with the cooperation of the sliding part and the sliding groove.

[0063] Further, refer to Figures 1 to 3 In one embodiment of the vibration component 100 of the present invention, the shell 10 includes a cylinder 11 and two end plates 12; the cylinder 11 has a length direction; the two end plates 12 are respectively arranged at both ends of the cylinder 11, and are enclosed with the cylinder 11 to form the installation cavity 10a, and each of the end plates 12 is passed through a shaft sleeve 121, and the eccentric vibrator 20 and the pendulum eccentric vibrator 30 are respectively connected to the two shaft sleeves 121; wherein, when the driving member 40 is in the first position, one of the output shafts 41 is connected to the eccentric vibrator 20 adjacent thereto through one of the shaft sleeves 121; when the driving member 40 is in the second position, the other output shaft 41 is connected to the pendulum eccentric vibrator 30 adjacent thereto through the other shaft sleeve 121.

[0064] With such arrangement, during the assembly process, the driving member 40 can be first installed from any end of the cylinder 11 to the inside of the cylinder 11, and then the two shaft sleeves 121 are respectively passed through the two end plates 12, and then the two end plates 12 are respectively installed at the two ends of the sleeve, so that the driving member 40 can be conveniently installed, and then the eccentric vibrator 20 and the pendulum eccentric vibrator 30 can be respectively connected to the two shaft sleeves 121; in this way, when the driving member 40 slides to the first position, one of the output shafts 41 on the driving member 40 will be connected to one of the shaft sleeves 121, so as to be connected to the eccentric vibrator 20 close to it through the shaft sleeve 121. At this time, When the driving member 40 is working, the sleeve 121 can be driven to rotate through the output shaft 41, and the eccentric vibrator 20 can be driven to rotate through the sleeve 121, so as to achieve a normal vibration effect on the hand; when the driving member 40 slides to the second position, another output shaft 41 on the driving member 40 will be connected to another sleeve 121, so as to be connected to the pendulum eccentric vibrator 30 close to it through the sleeve 121. At this time, when the driving member 40 is working, the sleeve 121 can be driven to rotate through the output shaft 41, and the pendulum eccentric vibrator 30 can be driven to rotate through the sleeve 121, so as to achieve a real shooting recoil tactile effect on the hand.

[0065] Further, refer to Figures 1 to 3In one embodiment of the vibration sensing component 100 of the present invention, the sleeve 121 has a first end 1211 located in the installation cavity 10a, and a second end 1212 located outside the installation cavity 10a, the first end 1211 is provided with a limiting groove 1211a, and the second end 1212 is provided with a slot 1212a; the output shaft 41 has a limiting block 411, and the limiting block 411 can be inserted into the limiting groove 1211a, and the rotating shaft of the eccentric vibrator 20 and the rotating shaft of the pendulum eccentric vibrator 30 are respectively inserted into the two slots 1212a.

[0066] With such arrangement, during the assembly process, the bushing 121 is passed through the corresponding end plate 12 so that the first end 1211 of the bushing 121 is located in the installation cavity 10a and the second end 1212 of the bushing 121 is located outside the installation cavity 10a. The bushing 121 can be stably installed on the corresponding end plate 12, and the bushing 121 can be driven by the output shaft 41 to rotate relative to the end plate 12, thereby smoothly driving the eccentric vibrator 20 or the pendulum eccentric vibrator 30 connected thereto to rotate; in addition, the rotating shaft of the eccentric vibrator 20 and the rotating shaft of the pendulum eccentric vibrator 30 can be respectively inserted into the slots 1212a of the two bushings 121, so as to ensure the installation stability between the eccentric vibrator 20 and the pendulum eccentric vibrator 30 and the bushing 121; and when the driving member 40 slides to the first position, it can be The limit block 411 on one of the output shafts 41 is inserted into the limit groove 1211a of one of the shaft sleeves 121, and the limit block 411 cooperates with the limit groove 1211a, so that the driving member 40 can smoothly drive the shaft sleeve 121 to rotate, and then smoothly drive the eccentric vibrator 20 to rotate, so as to prevent slipping between the output shaft 41 and the shaft sleeve 121; and when the driving member 40 slides to the second position, the limit block 411 on the other output shaft 41 can be inserted into the limit groove 1211a of the other shaft sleeve 121, and the limit block 411 cooperates with the limit groove 1211a, so that the driving member 40 can smoothly drive the shaft sleeve 121 to rotate, and then smoothly drive the pendulum eccentric vibrator 30 to rotate, so as to prevent slipping between the output shaft 41 and the shaft sleeve 121.

[0067] Further, refer to Figure 3 In one embodiment of the vibration sensing component 100 of the present invention, a first insertion hole 112 and a second insertion hole 113 are opened on the inner wall of the cylinder 11, and the first insertion hole 112 and the second insertion hole 113 are respectively close to the two ends of the cylinder 11; the outer edge of the end plate 12 is provided with an insertion block 122, and the insertion blocks 122 of the two end plates 12 are respectively inserted into the first insertion hole 112 and the second insertion hole 113.

[0068] With such arrangement, during the assembly process, the plug blocks 122 on the two end plates 12 can be respectively inserted into the first insertion holes 112 and the second insertion holes 113 of the cylinder 11, thereby realizing quick assembly of the end plates 12; and when the end plates 12 need to be disassembled, the plug blocks 122 on the two end plates 12 can be respectively pulled out from the first insertion holes 112 and the second insertion holes 113 of the cylinder 11, thereby realizing quick disassembly of the end plates 12.

[0069] In addition, in order to improve the installation stability of the end plate 12, a plurality of first sockets 112 and a plurality of second sockets 113 can be provided, so that the plurality of first sockets 112 are arranged at intervals along the circumference of the cylinder 11, and the plurality of second sockets 113 are arranged at intervals along the circumference of the cylinder 11, and a plurality of spaced-apart plug blocks 122 are provided on the outer edge of the end plate 12. In this way, during the assembly process, each plug block 122 on one of the end plates 12 can be inserted into a first socket 112, and each plug block 122 on the other end plate 12 can be inserted into a second socket 113, so that stable installation of the end plate 12 can be achieved.

[0070] Further, refer to Figures 1 to 3 In one embodiment of the vibration component 100 of the present invention, a connecting structure 60 is provided on the outer side of the shell 10. In this way, when the vibration component 100 of the present application is applied to the handle 1000, the vibration component 100 can be connected to the body 200 of the handle 1000 through the connecting structure 60, so that under the action of the vibration component 100, the handle 1000 can achieve a normal vibration effect or a shooting recoil tactile effect.

[0071] In some embodiments, the connecting structure 60 can be a connecting plate with connecting holes. During the assembly process, screws can be used to penetrate the connecting holes on the connecting plate and insert into the fixing holes on the body 200 of the handle 1000 to connect the vibration component 100 to the body 200 of the handle 1000.

[0072] Furthermore, in order to improve the installation stability of the vibration sensing assembly 100 , a plurality of connecting plates may be provided on the outer side of the housing 10 , so that the plurality of connecting plates can be connected to the body 200 of the handle 1000 using a plurality of screws.

[0073] See also Figure 4 The present invention also proposes a handle 1000, which includes the vibration component 100 as described above. The specific structure of the vibration component 100 refers to the above embodiment. Since the handle 1000 adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought by the technical solutions of the above embodiments, which will not be described one by one here.

[0074] In this embodiment, the handle 1000 may further include a body 200 , and the vibration sensing component 100 may be connected and fixed in the body 200 via a connecting structure 60 .

[0075] The above description is only a preferred embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made by using the contents of the present invention description and drawings under the inventive concept of the present invention, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.

Claims

1. A vibration sensing component, characterized in that: include: a housing, wherein a mounting cavity is formed in the housing; an eccentric vibrator, disposed in the housing; A pendulum eccentric vibrator is provided in the housing and spaced apart from the eccentric vibrator; a driving member movably disposed in the mounting cavity and having a first position and a second position, the driving member having an output shaft; Wherein, when the driving member is in the first position, the output shaft is connected to the eccentric vibrator to drive the eccentric vibrator to rotate; when the driving member is in the second position, the output shaft is connected to the pendulum eccentric vibrator to drive the pendulum eccentric vibrator to rotate.

2. The vibration sensing component according to claim 1, wherein: The driving member is slidably disposed in the mounting cavity to switch between the first position and the second position.

3. The vibration sensing component according to claim 2, wherein: The shell is defined as having a length direction, and the eccentric vibrator and the pendulum eccentric vibrator are respectively arranged at both ends of the shell along the length direction of the shell; the driving member has two output shafts, and the two output shafts are respectively close to the eccentric vibrator and the pendulum eccentric vibrator; When the driving member is in the first position, one of the output shafts is connected to the eccentric vibrator close to it; when the driving member is in the second position, the other output shaft is connected to the pendulum eccentric vibrator close to it.

4. The vibration sensing component according to claim 3, wherein: The vibration sensing component further includes a shifting rod, which is connected to the driving member so as to drive the driving member to slide through the shifting rod under the action of an external force.

5. The vibration sensing component according to claim 4, wherein: The shell is provided with an escape opening communicating with the installation cavity, and one end of the shifting rod away from the driving member extends out of the shell from the escape opening.

6. The vibration sensing component according to claim 3, wherein: The housing comprises: a cylinder having a length direction; Two end plates, the two end plates are respectively arranged at both ends of the cylinder and enclose the cylinder to form the installation cavity, each end plate is penetrated by a shaft sleeve, the eccentric vibrator and the pendulum eccentric vibrator are respectively connected to the two shaft sleeves; Wherein, when the driving member is in the first position, one of the output shafts is connected to the eccentric vibrator close to it through one of the bushings; when the driving member is in the second position, the other output shaft is connected to the pendulum eccentric vibrator close to it through the other bushing.

7. The vibration sensing component according to claim 6, wherein: The shaft sleeve has a first end located in the installation cavity and a second end located outside the installation cavity, the first end is provided with a limiting groove, and the second end is provided with a slot; The output shaft has a limiting block, which can be inserted into the limiting slot, and the rotating shaft of the eccentric vibrator and the rotating shaft of the pendulum eccentric vibrator are respectively inserted into the two slots.

8. The vibration sensing component according to claim 6, wherein: The inner wall of the cylinder is provided with a first plug hole and a second plug hole, and the first plug hole and the second plug hole are respectively close to the two ends of the cylinder; the outer edge of the end plate is provided with an insert block, and the insert blocks of the two end plates are respectively inserted into the first plug hole and the second plug hole.

9. The vibration sensing assembly according to any one of claims 1 to 8, wherein: A connecting structure is provided on the outer side of the shell, and the connecting structure is used to be connected to the body of the handle.

10. A handle, characterized in that: The invention comprises a vibration sensing component according to any one of claims 1 to 9.

Citation Information

Patent Citations

  • Swinging power tool

    CN102441874A

  • Drive exciter and electronic device

    CN114827850A