This application relates to the field of terminal device technologies, and in particular, to a vibration motor and a terminal device with a vibration motor.
In a terminal device such as a mobile phone, a tablet, or a wearable device, vibration is usually generated by using a vibration motor, to implement functions such as an incoming call or SMS message reminder and a vibration tactile feedback. With the advance in science and technology, terminal devices gradually become thin. Especially, for a foldable phone, a thickness of the entire phone urgently needs to be reduced. Consequently, mounting space of a vibration motor in the terminal device is gradually reduced. However, because of a limitation of a condition of the vibration motor, thinning of the vibration motor causes vibration performance reduction. Therefore, a current thickness of the vibration motor becomes one of bottlenecks that impede further thinning of the terminal device. It can be learned that how to reduce a thickness of a terminal device (especially a foldable phone) without sacrificing performance of a vibration motor becomes a current design difficulty.
Embodiments of this application provide a vibration motor and a terminal device, to reduce a thickness of a terminal device without sacrificing performance of a vibration motor.
To achieve the foregoing objective, the following technical solutions are used in embodiments of this application.
According to a first aspect, a terminal device is provided. The terminal device includes a first screen, a first middle frame, and a vibration motor. At least a part of the first screen is located on one side of the first middle frame and is stacked with the first middle frame. The vibration motor is located on a side that is of the first middle frame and that is away from the at least part of the first screen. The vibration motor includes a housing, one end of the housing is opened to form an opening, the opening faces the first middle frame, and an edge of the housing at the opening is fastened to the first middle frame.
In the terminal device provided in this application, the opening on the housing of the vibration motor is blocked by using the first middle frame, to form a closed housing, thereby achieving a waterproof and dustproof protection function to some extent. In addition, the first middle frame forms a wall plate of the housing of the vibration motor. Without changing a height of internal accommodation space of the vibration motor, a height of the vibration motor can be reduced, to reduce a mounting height of the vibration motor in the terminal device. This helps reduce a thickness of the terminal device. Because the height of the internal accommodation space of the vibration motor is unchanged, a design height of a structure such as a mass block in the housing does not need to be limited, so that performance of the vibration motor can be ensured.
In a possible implementation of the first aspect, the housing includes a top wall and a side frame, the side frame is disposed around a circumference of the top wall, and an end that is of the side frame and that is away from the top wall surrounds the opening. The structure of the housing is simple, and the top wall and the side frame may be formed integrally by using a stamping process. In some other embodiments, the top wall and the side frame may be formed separately and assembled together. This can facilitate assembly of an internal structure.
In a possible implementation of the first aspect, the vibration motor further includes a mass block. The mass block is disposed in the housing, and the mass block can reciprocally vibrate relative to the housing on a plane parallel to a plane on which the opening is located. Specifically, on the plane parallel to the plane on which the opening is located, a vibration path of the mass block may be a straight line, or may be a curve. A vibration direction of the mass block is perpendicular to a thickness direction of the terminal device. This helps reduce a thickness of the vibration motor, and helps reduce a mounting height of the vibration motor in the terminal device. In a possible implementation of the first aspect, an elastic assembly is configured to elastically support the mass block in the housing, and the elastic assembly allows the mass block to vibrate reciprocally in the housing. In this way, vibration stability of the mass block can be ensured.
In a possible implementation of the first aspect, the elastic assembly includes a first elastic member and a second elastic member. Both the first elastic member and the second elastic member are springs. An arrangement direction of the first elastic member, the mass block, and the second elastic member is parallel to the vibration direction of the mass block. The first elastic member includes a first fastening part, a first connection part, and a second fastening part that are connected in sequence. The first fastening part is connected to the mass block, and a connection manner includes but is not limited to welding, sticking, or integral molding. The second fastening part is connected to the side frame of the housing, and a connection manner includes but is not limited to welding, sticking, or integral molding. The first connection part is approximately of an n shape, an arch direction of the first connection part is parallel to the plane on which the opening is located, and the arch direction of the first connection part is perpendicular to the vibration direction of the mass block. The second elastic member includes a third fastening part, a second connection part, and a fourth fastening part that are connected in sequence. The third fastening part is connected to the mass block, and a connection manner includes but is not limited to welding or sticking. The fourth fastening part is connected to the side frame of the housing, and a connection manner includes but is not limited to welding or sticking. The second connection part is approximately of an n shape, and an arch direction of the second connection part is opposite to the arch direction of the first connection part. In this way, both the first elastic member and the second elastic member have a capability of deforming in a direction parallel to the vibration direction of the mass block. This structure is simple and easy to implement.
In a possible implementation of the first aspect, the vibration motor further includes a drive assembly. The drive assembly includes a magnet assembly and a coil. The magnet assembly is fastened to the mass block, the coil is located between the mass block and the top wall, the coil is fastened to the top wall of the housing, the magnet assembly cooperates with the coil to generate a Lorentz force, and the Lorentz force is used to drive the mass block to reciprocally vibrate relative to the housing on the plane parallel to the plane on which the opening is located. A structure of the drive assembly is simple, and the magnet assembly may alternatively participate in vibration as a part of the mass block. In addition, because the coil is fastened to the top wall of the housing, a layout is proper, and a support structure of the coil does not need to be additionally disposed. This helps reduce a height of the vibration motor.
In a possible implementation of the first aspect, the vibration motor further includes an electrical connection structure. The electrical connection structure includes a first segment, a second segment, and a third segment that are sequentially connected. The first segment is fastened to an inner surface of the top wall, the coil is fastened to the first segment and electrically connected to the first segment, the second segment is fastened to an inner surface of the side frame, the third segment extends in a radial direction of the opening, a part of the third segment is located outside the housing, and a positive terminal and a negative terminal are disposed on the part that is of the third segment and that is located outside the housing. The electrical connection structure can lead an electrode of the coil to the third segment outside the housing, and when the vibration motor is used in the terminal device, the third segment of the electrical connection structure can be fastened and supported by using the first middle frame. That is, when the vibration motor is used in the terminal device, the third segment of the electrical connection structure is attached to and fastened to the first middle frame. Therefore, the third segment is fastened and supported by using the first middle frame.
In a possible implementation of the first aspect, the electrical connection structure is a flexible circuit board.
In a possible implementation of the first aspect, a connection lug is disposed on an outer surface of the side frame, and the edge of the housing at the opening is fastened to the first middle frame by using the connection lug. Stability and reliability of this connection manner are relatively high, and neither of a limiting structure and a buffer material layer needs to be disposed on a side that is of the housing and that is away from the first middle frame, so that a mounting height of the vibration motor on the first middle frame can be reduced to some extent. In addition, a region occupied by the connection lug is relatively small, and space is reserved on a side that is of the lug and that is away from the first middle frame, so that other parts around the vibration motor can be accommodated.
In a possible implementation of the first aspect, the connection lug includes a fastening part, a lug part, and a connection hole, the fastening part is fastened to the outer surface of the side frame, the lug part is fastened to the fastening part, the connection hole is disposed in the lug part, and an axial direction of the connection hole is consistent with an extension direction of a central axis of the opening. This structure is simple, and can implement a detachable connection between the edge of the housing at the opening and the first middle frame, to facilitate repair and replacement.
In a possible implementation of the first aspect, the edge of the housing at the opening is welded to the first middle frame. Stability of welding is relatively high, so that connection stability of the vibration motor on the first middle frame can be improved. In addition, neither of a limiting structure and a buffer material layer needs to be disposed on a side that is of the housing and that is away from the first middle frame, so that a mounting height of the vibration motor on the first middle frame can be reduced to some extent.
In a possible implementation of the first aspect, the first screen includes a first part and a second part, and the first part of the first screen is located on one side of the first middle frame and is stacked with the first middle frame. The terminal device further includes a second middle frame, where the second middle frame is rotatably connected to the first middle frame, the second part is disposed on one side of the second middle frame and is stacked with the second middle frame, the terminal device can change between an unfolded state and a folded state, and when the terminal device is in the unfolded state, the first part of the first screen and the second part of the first screen face a same side, or when the terminal device is in the folded state, the first part of the first screen and the second part of the first screen face each other or back onto each other. In this way, the terminal device is a foldable terminal device, and a wall plate of the housing of the vibration motor is formed by using the first middle frame. Without changing a height of internal accommodation space of the vibration motor, a height of the vibration motor can be reduced. This helps reduce a thickness of the foldable terminal device, to improve a hand feeling, a texture, and portability of the foldable terminal.
In a possible implementation of the first aspect, when the terminal device is in the folded state, the first part of the first screen and the second part of the first screen face each other. The terminal device further includes a second screen, where the second screen is located on a side that is of the vibration motor and that is away from the first middle frame, the second screen and the first middle frame are relatively fastened, and the vibration motor and the second screen are spaced from each other. In this way, the terminal device is an inward-foldable terminal having two screens, and a wall plate of the housing of the vibration motor is formed by using the first middle frame. Without changing a height of internal accommodation space of the vibration motor, a height of the vibration motor can be reduced. This helps reduce a thickness of the foldable terminal device, to improve a hand feeling, a texture, and portability of the foldable terminal.
In a possible implementation of the first aspect, a gap between the vibration motor and the second screen is 0.05 millimeters to 0.35 millimeters. In some embodiments, a width of the gap is 0.1 millimeters to 0.2 millimeters. The gap width is suitable, so that a thickness of the foldable terminal can be reduced while preventing the vibration motor from impacting on the second screen.
In a possible implementation of the first aspect, a height of the vibration motor is less than or equal to 3.0 millimeters. In this way, the height of the vibration motor is relatively small. This facilitates a thinning design of the terminal device.
In a possible implementation of the first aspect, there may be one or more vibration motors disposed in the terminal device. When the terminal device is a foldable terminal device, a plurality of vibration motors may all be disposed in first accommodation space of the terminal device or may all be disposed in second accommodation space of the terminal device, or some vibration motors may be disposed in the first accommodation space and the other vibration motors may be disposed in the second accommodation space. When some of a plurality of vibration motors are disposed in the first accommodation space and the other vibration motors are disposed in the second accommodation space, a disposing position of the vibration motors in the first accommodation space and a disposing position of the vibration motors in the second accommodation space may be symmetrical with respect to a rotation axis of a rotation mechanism.
According to a second aspect, a vibration motor is provided. The vibration motor includes a housing, and one end of the housing is opened to form an opening.
When the vibration motor provided in this application is used in a terminal device, the vibration motor may be disposed on a side that is of a first middle frame and that is away from a first screen, the opening of the housing of the vibration motor faces the first middle frame, and an edge of the housing at the opening is fastened to the first middle frame. In this way, the opening on the housing of the vibration motor is blocked by using the first middle frame, to form a closed housing, thereby achieving a waterproof and dustproof protection function to some extent. In addition, the first middle frame forms a wall plate of the housing of the vibration motor. Without changing a height of internal accommodation space of the vibration motor, a height of the vibration motor can be reduced, to reduce a mounting height of the vibration motor in the terminal device. This helps reduce a thickness of the terminal device. Because the height of the internal accommodation space of the vibration motor is unchanged, a design height of a structure such as a mass block in the housing does not need to be limited, so that performance of the vibration motor can be ensured.
In a possible implementation of the second aspect, the housing includes a top wall and a side frame, the side frame is disposed around a circumference of the top wall, and an end that is of the side frame and that is away from the top wall surrounds the opening. The structure of the housing is simple, and the top wall and the side frame may be formed integrally by using a stamping process. In some other embodiments, the top wall and the side frame may be formed separately and assembled together. This can facilitate assembly of an internal structure.
In a possible implementation of the second aspect, a connection lug is disposed on an outer surface of the side frame, the connection lug includes a fastening part, a lug part, and a connection hole, the fastening part is fastened to the outer surface of the side frame, the lug part is fastened to the fastening part, the connection hole is disposed in the lug part, and an axial direction of the connection hole is consistent with an extension direction of a central axis of the opening. This structure is simple, and can implement a detachable connection between the edge of the housing at the opening and the first middle frame, to facilitate repair and replacement.
In a possible implementation of the second aspect, a removable dustproof structure covers the opening. This can avoid a problem of jamming and rusting of the vibration motor caused when dust enters the vibration motor during transportation, storage, and sale of the vibration motor.
In a possible implementation of the second aspect, the dustproof structure is gummed paper. The gummed paper has low costs and high removal efficiency, and is easy to operate. In addition, the gummed paper has specific waterproof performance, and can prevent moisture from entering the vibration motor.
In embodiments of this application, the terms “first” and “second” are merely used for description, but should not be understood as indicating or implying relative importance or implying a quantity of indicated technical features. Therefore, a feature limited by “first” or “second” may explicitly or implicitly include one or more features.
In embodiments of this application, the term “include”, “have”, or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article, or apparatus that includes a series of elements includes not only those elements but also other elements that are not explicitly listed, or includes elements inherent to such a process, method, article, or apparatus. In a case without more restrictions, for an element limited by the statement “include a . . . ”, a process, method, article, or apparatus that includes the element may further include another same element.
In embodiments of this application, position relationship qualifiers such as the terms “parallel”, “perpendicular”, “consistent”, and “opposite” all indicate approximate positions that allow a specific error.
This application provides a terminal device, and the terminal device has a display interface and can display a video or an image. In addition, a vibration motor is disposed in the terminal device, and can vibrate to implement functions such as an incoming call, message, SMS message, weather, or news reminder and a tactile feedback of a touch or an accidental touch. To overcome a technical bottleneck that a vibration motor limits further thinning of a terminal device, in this application, a middle frame in the terminal device is used to form a wall plate of a housing of the vibration motor, to reduce a mounting height of the vibration motor in the terminal device while ensuring internal accommodation space of the vibration motor, so as to reduce a thickness of the terminal device. Because the improvement solution in this application can ensure the internal accommodation space of the vibration motor, a design volume of a structure such as a mass block in the housing does not need to be limited, so that performance of the vibration motor can be ensured. It may be understood that the thickness of the terminal device refers to a size of the terminal device in a direction perpendicular to the display interface.
The terminal device provided in this application includes but is not limited to a tablet terminal and a foldable terminal. The tablet terminal includes but is not limited to a tablet phone, a tablet personal computer (tablet personal computer), a tablet laptop computer (laptop computer), a tablet personal digital assistant (personal digital assistant, PDA), a tablet in-vehicle device, a tablet wearable device, or the like. The foldable terminal includes but is not limited to a foldable phone or a foldable computer.
The following separately uses a tablet phone and a foldable phone as examples to analyze a thinning requirement for the terminal device, and describes how a vibration motor impedes thinning of the terminal device in this requirement.
To ensure a hand feeling, a texture, and portability of the tablet phone 100, a thickness of the tablet phone 100 needs to be reduced. On a premise that thicknesses of the first screen 101, the first middle frame 102, and the first back cover 103 are fixed, a mounting height h of the vibration motor 104 on the first middle frame 102 is one of bottlenecks that impede further thinning of the tablet phone 100. The mounting height h of the vibration motor 104 on the first middle frame 102 is a height by which an entirety including the vibration motor 104 and a connection structure protrudes from the first middle frame 102. The connection structure is a structure for connecting the vibration motor 104 to the first middle frame 102.
The first middle frame 102 is rotatably connected to the second middle frame 105. Specifically, referring to
The first screen 101 may be folded into a first part 101a (that is, a screen A) and a second part 101b (that is, a screen B). A folding axis is formed between the first part 101a and the second part 101b. To enable the first screen 101 to be folded into the first part 101a and the second part 101b, at least a region in which the folding axis is located on the first screen 101 is made of a flexible material. A remaining region on the first screen 101 may be made of a flexible material, or may be made of a rigid material, or may be partially made of a rigid material and partially made of a flexible material. This is not specifically limited herein. In some embodiments, the entire first screen 101 is made of a flexible material. In this way, manufacturing is convenient and costs are relatively low. However, a screen made of the flexible material is easily scratched.
The first part 101a is located on one side of the first middle frame 102 and is stacked with the first middle frame 102. The second part 101b is located on one side of the second middle frame 105 and is stacked with the second middle frame 105.
The second back cover 106 is located on a side that is of the second middle frame 105 and that is away from the second part 101b, and is stacked with the second middle frame 105. Second accommodation space C2 is formed between the second back cover 106 and the second middle frame 105. The second accommodation space C2 is configured to accommodate structures such as a battery, a main board, and a camera module.
The foldable phone 200 can change between an unfolded state and a folded state. The foldable phone 200 may be classified into two types based on folding directions from the unfolded state to the folded state. One type is a foldable phone that is folded inward (briefly referred to as an inward-foldable phone below), and the other type is a foldable phone that is folded outward (briefly referred to as an outward-foldable phone below). When the inward-foldable phone is in a folded state, the first part 101a and the second part 101b face each other. When the outward-foldable phone is in a folded state, the first part 101a and the second part 101b back onto each other.
It should be noted that in descriptions of the foregoing embodiments and the following embodiments, the included angle θ between the first part 101a and the second part 101b is an included angle between the first part 101a and the second part 101b on a display side of the first screen 101. The display side of the first screen 101 is a side on which the first screen 101 displays an image or a video. When the user is on the display side of the first screen 101, the user can view an image or a video displayed on the first screen 101.
A schematic diagram of a structure of the inward-foldable phone 201 in a half-folded state shown in (b) in
It should be noted that
Because a thickness of the foldable phone (including the inward-foldable phone 201, the outward-foldable phone 202, and the foldable phone that supports both inward folding and outward folding) in the folded state is a sum of thicknesses of two folding parts, the thickness of the foldable phone in the folded state is approximately twice the thickness of the tablet phone 100 shown in
In the foregoing embodiment, the second screen 107 has scratch resistance performance, to reduce a possibility that the second screen 107 is scratched during small-screen display. For example, referring back to
It may be understood that, on the premise that scratch resistance performance of the second screen 107 is ensured, the second screen 107 may alternatively use another structural form. Details are not described herein.
On the premise that scratch resistance performance of the second screen 107 is ensured, a thickness of the second screen 107 is usually large. The thickness of the second screen 107 with scratch resistance performance is usually greater than a thickness of the back cover. Specifically, compared with the foldable phone 200 shown in
It may be learned from the foregoing description that the mounting height of the vibration motor 104 on the first middle frame 102 is one of the bottlenecks that impede thinning of the tablet phone and the foldable phone (especially the foldable phone with the first screen 101 and the second screen 107).
To resolve the foregoing technical problem, a sinking groove may be disposed on a surface of the first middle frame 102, and a part of the vibration motor 104 is accommodated in the sinking groove, to reduce the mounting height of the vibration motor 104 on the first middle frame 102. However, with development of technologies, as one type of vibration motor 104, a lateral linear motor is widely used in tablet terminal devices and foldable terminal devices. A length and a width of the lateral linear motor are usually large, and an occupation area on the first middle frame 102 is relatively large. If a sinking groove is disposed on the first middle frame 102 to reduce the mounting height of the vibration motor 104, an area of the sinking groove region needs to be large to accommodate the lateral linear motor. However, an increase in the area of the sinking groove region leads to a great decrease in structural strength and reliability of the first middle frame 102.
To ensure reliability of the first middle frame 102 and reduce the mounting height of the vibration motor 104 on the first middle frame 102, refer to
Specifically, the vibration motor 104 includes a housing 1, and the housing 1 is configured to perform waterproof and dustproof protection on an internal structure of the vibration motor 104. A material of the housing 1 is metal, for example, stainless steel. In this way, on the premise that structural strength is ensured, a thickness of the housing 1 may be designed to be relatively small, to help reduce a thickness and a volume of the vibration motor 104. In some embodiments, the housing 1 is made of a metal material having magnetic shielding performance. In this way, the housing 1 can prevent a magnetic field inside the vibration motor 104 from affecting performance of an antenna located around the vibration motor 104 in the terminal device.
One end of the housing 1 is opened to form an opening 1a. In some embodiments, referring to
When the vibration motor 104 is used in the terminal device described in any one of the foregoing embodiments, the opening 1a is opposite the first middle frame 102, and an edge of the housing 1 at the opening 1a is fastened to the first middle frame 102.
In this way, when the vibration motor 104 is used in the terminal device, the opening 1a of the vibration motor 104 may be blocked by using the first middle frame 102, to form a closed housing, thereby achieving a waterproof and dustproof protection function to some extent. In addition, the first middle frame 102 forms a wall plate of the housing 1 of the vibration motor 104. Without changing a height of internal accommodation space of the vibration motor 104, a height of the vibration motor 104 can be reduced, to reduce a mounting height of the vibration motor 104 in the terminal device. This helps reduce a thickness of the terminal device. Because the height of the internal accommodation space of the vibration motor 104 is unchanged, a design height of a structure such as a mass block in the housing 1 does not need to be limited, so that performance of the vibration motor 104 can be ensured.
There are a plurality of fastening manners between the edge of the housing 1 at the opening 1a and the first middle frame 102.
For example,
For another example, refer to
On the basis of the foregoing two examples, referring to
In some other examples, the edge of the housing 1 at the opening 1a may be fastened to the first middle frame 102 in a manner such as sticking or clamping. This is not specifically limited herein.
In some embodiments, a waterproof structure may be disposed between the edge of the housing 1 at the opening 1a and the first middle frame 102, to improve waterproof performance of the vibration motor 104. The waterproof structure includes but is not limited to a sealant and a sealing ring. The waterproof structure may alternatively be an annular groove disposed on the surface of the first middle frame 102, and the edge of the housing 1 at the opening 1a is embedded in the annular groove, so that a path on which moisture enters the housing 1 through the gap can be prolonged, thereby playing a waterproof role.
In some embodiments, the height (that is, a size in a thickness direction of the terminal device) of the vibration motor 104 is less than or equal to 3.0 mm. For example, the height of the vibration motor 104 is 3.0 mm, 2.9 mm, 2.8 mm, 2.7 mm, 2.6 mm, 2.5 mm, or the like. In this way, the height of the vibration motor 104 is relatively small. This facilitates thinning of the terminal device.
An internal structure of the vibration motor 104 shown in
Specifically,
The mass block 3 is located in the housing 1. The mass block 3 is in a rectangular shape. In some other embodiments, the mass block 3 may alternatively be a cube, a sphere, an ellipsoid, or the like. As a vibration body in the vibration motor 104, the mass block 3 can reciprocally vibrate on a plane parallel to the plane on which the opening 1a is located. Specifically, on the plane parallel to the plane on which the opening 1a is located, a vibration path of the mass block 3 may be a straight line, or may be a curve. In the embodiment shown in
The elastic assembly 4 is configured to elastically support the mass block 3 in the housing 1, and the elastic assembly 4 allows the mass block 3 to vibrate reciprocally in the housing 1 in a direction A1. In some embodiments, referring to
The first elastic member 41 includes a first fastening part 41a, a first connection part 41c, and a second fastening part 41b that are connected in sequence. The first fastening part 41a is connected to the mass block 3, and a connection manner includes but is not limited to welding or sticking. The second fastening part 41b is connected to the fourth side wall 12d of the side frame 12 in the housing 1, and a connection manner includes but is not limited to welding or sticking. The first connection part 41c is approximately of an n shape, an arch direction A2 of the first connection part 41c is parallel to the plane on which the opening 1a is located, and the arch direction A2 of the first connection part 41c is perpendicular to the vibration direction A1 of the mass block 3.
The second elastic member 42 includes a third fastening part 42a, a second connection part 42c, and a fourth fastening part 42b that are connected in sequence. The third fastening part 42a is connected to the mass block 3, and a connection manner includes but is not limited to welding or sticking. The fourth fastening part 42b is connected to the third side wall 12c of the side frame 12 in the housing 1, and a connection manner includes but is not limited to welding or sticking. The second connection part 42c is approximately of an n shape, and an arch direction A3 of the second connection part 42c is opposite to the arch direction A2 of the first connection part 41c.
In this way, both the first elastic member 41 and the second elastic member 42 have a capability of deforming in a direction parallel to the vibration direction A1 of the mass block 3. When the mass block 3 vibrates in a direction close to the fourth side wall 12d, an included angle between two arms of the first connection part 41c decreases, and an included angle between two arms of the second connection part 42c increases. When the mass block 3 vibrates in a direction close to the third side wall 12c, an included angle between two arms of the first connection part 41c increases, and an included angle between two arms of the second connection part 42c decreases. This structure is simple and easy to implement.
It should be noted that, when it is ensured that the elastic assembly 4 can elastically support the mass block 3 in the housing 1, and the elastic assembly 4 allows the mass block 3 to reciprocally vibrate in the direction A1 in the housing 1, the elastic assembly 4 may alternatively be designed in another structural form. This is not specifically limited herein.
The drive assembly 5 is configured to drive the mass block 3 to reciprocally vibrate on the plane parallel to the plane on which the opening 1a is located. In some embodiments, referring to
Specifically, the magnet assembly 51 includes a first magnet 51a and a second magnet 1b. The first magnet 51a is housed in the first mounting groove 31, and the second magnet 51b is housed in the second mounting groove 32. The first magnet 51a and the second magnet 51b may be magnetic iron or magnetic steel. A magnetization direction of the first magnet 51a and a magnetization direction of the second magnet 51b are both perpendicular to the plane on which the opening 1a is located, and the magnetization direction of the first magnet 51a is opposite to the magnetization direction of the second magnet 51b. The magnetization direction is a direction from the north pole (that is, the N pole) to the south pole (that is, the S pole). For example, referring to
In some other embodiments, a disposing position of the magnet assembly 51 may be interchangeable with a disposing position of the coil 52. That is, the magnet assembly 51 is disposed on the housing 1, and the coil 52 is disposed on the mass block 3.
The electrical connection structure 6 is configured to lead an electrode of the coil 52 out of the housing 1. The electrical connection structure 6 includes but is not limited to a printed circuit board (printed circuit board, PCB), a flexible printed circuit (flexible printed circuit board, FPC), and a structure formed by connecting a plurality of wires by using a flexible structure. The electrical connection structure 6 includes a first segment 61, a second segment 62, and a third segment 63 that are sequentially connected.
Based on the foregoing embodiment, optionally, referring to
There may be one or more vibration motors 104 disposed in the terminal device 100. This is not specifically limited herein. When the terminal device 100 is the foldable terminal device shown in
The vibration motor 104 may be sold, stored, transported, or the like as a product structure. Based on this, to avoid a problem of jamming and rusting of the vibration motor 104 caused when dust enters the vibration motor 104 during transportation, storage, and sale, in some embodiments, refer to
According to the foregoing description, this application provides a vibration motor and a terminal device with the vibration motor. When a call, a message, or an SMS message is received, the vibration motor can vibrate to prompt a user to view in a timely manner. In addition, when a button displayed on a screen is triggered or is triggered by mistake, the vibration motor can vibrate to implement a tactile feedback.
In the description of this specification, specific features, structures, materials, or characteristics may be combined in an appropriate manner in any one or more embodiments or examples.
Finally, it should be noted that the foregoing embodiments are merely used to describe the technical solutions of this application, but not limit the technical solutions of this application. Although this application is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacement on some technical features thereof. However, these modifications or replacements do not make the essence of the corresponding technical solutions depart from the spirit and scope of the technical solutions in embodiments of this application.
Number | Date | Country | Kind |
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202111278350.0 | Oct 2021 | CN | national |
This application is a national stage of International Application No. PCT/CN2022/116910, filed on Sep. 2, 2022, which claims priority to Chinese Patent Application No. 202111278350.0, filed on Oct. 30, 2021, both of which are incorporated herein by references in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/116910 | 9/2/2022 | WO |