Intelligent scanning equipment

The scanning device addresses misactivation and structural weakness by incorporating a transparent support element to reinforce the trigger mechanism, enhancing reliability and durability.

CN223110072UActive Publication Date: 2025-07-15NETEASE YOUDAO (HANGZHOU) SMART TECH CO LTD
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Patent Information

Application Number
CN202421981208.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-14
Publication Date
2025-07-15
Estimated Expiration
2034-08-14

AI Technical Summary

Technical Problem

The contact structure of existing scanning pens is easily triggered and damaged by mistake, and the structural strength is insufficient, especially when it is bumped or dropped.

Method used

An intelligent scanning device is designed, adopting a structure of a housing, a trigger assembly and a pressure-sensitive assembly. By setting a transparent support at the front end of the housing to contact the first cross beam, the size and structural strength of the trigger assembly are increased, and the deformed part is used to transmit force to avoid mistriggering. At the same time, the support provides auxiliary lighting for the transparent structure.

Benefits of technology

It improves the structural reliability and service life of the scanning equipment, avoids mistriggering, enhances the structural strength of the front end of the shell, provides auxiliary lighting, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides intelligent scanning equipment. The intelligent scanning equipment comprises a shell, a trigger assembly and a pressure sensing assembly, an open hole penetrating in the vertical direction is formed in the front end of the shell, an observation window and a scanning window which are oppositely arranged are defined by the open hole, a first cross beam formed at the front end of the shell is arranged on the front side of the open hole, the trigger assembly is arranged on the first cross beam, and the pressure sensing assembly is arranged on the first cross beam. A pressure sensing assembly is arranged at the front end of the shell, the triggering assembly is used for abutting against a scanning medium to apply acting force to the pressure sensing assembly when the scanning device is used, and a transparent supporting piece is clamped in the open hole and abuts against the first cross beam. According to the intelligent scanning equipment, the trigger piece is arranged on the first cross beam, so that the size of the trigger piece is correspondingly increased, mistaken touch and mistaken starting are avoided, the structural reliability of the intelligent scanning equipment is improved, and better experience is brought to a user.
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Description

Technical Field

[0001] The embodiments of the present utility model relate to the technical field of intelligent scanning, and more specifically, to intelligent scanning devices. Background Art

[0002] This section aims to provide background or context for the embodiments of the present utility model described in the claims. The description herein is not admitted to be prior art merely by including it in this section.

[0003] In the prior art, the scanning pen is based on optical character recognition technology and an embedded translation system, replacing the traditional button input with a rapid scanning search method. For looking up new words and sentences, just a gentle scan is needed, and the explanations and pronunciations of the words can be displayed immediately.

[0004] For existing scanning pens, the triggering components are usually arranged on both sides of the tip of the pen. On the one hand, the contact heads are relatively small. During operation, due to the small force-bearing area, accidental touches are likely to occur, resulting in errors, such as incorrect activation. On the other hand, the structural strength of the contact heads is relatively low, and the contact heads are also prone to damage when bumped, especially when the scanning pen falls to the ground. Summary of the Utility Model

[0005] Therefore, there is a great need for an improved intelligent scanning device to make the intelligent scanning device less prone to accidental touches and have its structural strength improved.

[0006] In this context, the embodiments of the present utility model are expected to provide an intelligent scanning device.

[0007] In the embodiments of the present utility model, an intelligent scanning device is provided, which includes a housing, a triggering component, and a pressure sensing component. An opening penetrating in the up-down direction is provided at the front end of the housing. The opening defines an observation window and a scanning window arranged oppositely. A first cross beam formed at the front end of the housing is provided on the front side of the opening. The triggering component is arranged on the first cross beam. A pressure sensing component is provided at the front end of the housing. The triggering component is used to contact a scanning medium during use to apply a force to the pressure sensing component. A transparent support member is clamped in the opening, and the support member abuts against the first cross beam.

[0008] According to the intelligent scanning device of the present application, the support member and the front end of the housing jointly define an installation groove, and the pressure sensing component is embedded in the installation groove.

[0009] Optionally, the installation groove includes a first sub-groove and two second sub-grooves. The first sub-groove is located at the front end of the support member, and the two second sub-grooves are located on the opposite side walls of the support member. The first sub-groove and the two second sub-grooves are respectively in smooth transition, and the pressure sensing component is located in the first sub-groove and the two second sub-grooves.

[0010] Optionally, a first avoidance groove is provided on the support member, the first avoidance groove is located in the installation groove, and the trigger assembly, the pressure sensing assembly, and the first avoidance groove are arranged opposite to each other in sequence.

[0011] In the intelligent scanning device according to the present application, the trigger assembly includes a trigger member, the trigger member includes a main body portion and two trigger portions arranged at intervals, both of the two trigger portions are connected to the main body portion, a through hole is provided on the first cross beam, at least part of the main body portion is exposed outside the through hole to abut against the scanning medium during use, part of the trigger portion penetrates through the through hole, a deformation member is clamped between the trigger portion and the pressure sensing assembly, a support portion is provided at one end of the support member in the thickness direction, and a first clamping groove is provided on the deformation member, and the support portion is clamped in the first clamping groove.

[0012] Optionally, a second avoidance groove is provided on the trigger portion, and the second avoidance groove is arranged opposite to the support portion.

[0013] Optionally, a sealing member is sleeved on the trigger portion, the sealing member has elasticity and is in interference fit with the through hole.

[0014] Optionally, a first limiting portion is provided on the trigger portion, a second limiting portion is provided on the sealing member, and the first limiting portion and the second limiting portion are clamped.

[0015] Optionally, a clamping convex portion is provided on the main body portion, the clamping convex portion is located between the two trigger portions, a second clamping groove is provided on the sealing member, and the clamping convex portion is clamped in the second clamping groove.

[0016] Optionally, one end of the two trigger portions close to each other is the first end, and one end of the two trigger portions away from each other is the second end, and a third avoidance groove is defined by the relative interval between the main body portion and the second end of the trigger portion.

[0017] In the intelligent scanning device according to the present application, the housing further includes a second cross beam located behind the opening and side beams located on both sides of the opening, the support member abuts against the second cross beam and the two side beams at the same time, and the support member is a transparent structure.

[0018] Optionally, a fixing seat is provided on the housing, convex ears are provided on both sides of the support member, mounting holes are provided on the convex ears, and the fixing seat penetrates through the mounting holes.

[0019] In the intelligent scanning device according to the present application, the support member is a cuboid or cube plate-like structure.

[0020] An intelligent scanning device according to an embodiment of the present utility model has a first cross beam formed at the front end of the housing on the front side with an opening. By arranging a trigger member on the first cross beam, the size of the trigger member can be correspondingly increased. At the same time, a deformation member is used to transfer force between the trigger member and the pressure sensing component, so that the intelligent scanning device can be activated by the force received by the trigger member, avoiding accidental touch and accidental activation. At the same time, a support member is used to abut against the first cross beam, increasing the structural strength of the first cross beam. The support member is set to be transparent, which can facilitate the passage of light into the scanning window, providing auxiliary illumination for the scanning window and improving the structural reliability of the intelligent scanning device, bringing a better experience to users. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] By referring to the drawings and reading the following detailed description, the above and other objects, features, and advantages of the exemplary embodiments of the present utility model will become readily understood. In the drawings, several embodiments of the present utility model are shown by way of illustration and not limitation, wherein:

[0022] Figure 1 A side view of an exemplary intelligent scanning device suitable for implementing the embodiment of the present utility model is schematically shown;

[0023] Figure 2 Schematically shown is Figure 1 An enlarged view of section A-A in

[0024] Figure 3 A perspective view of an intelligent scanning device according to another embodiment of the present utility model is schematically shown;

[0025] Figure 4 An exploded view of an intelligent scanning device according to still another embodiment of the present utility model is schematically shown;

[0026] Figure 5 A partial structural view of an intelligent scanning device according to still another embodiment of the present utility model is schematically shown;

[0027] Figure 6 A partial structural view of an intelligent scanning device according to still another embodiment of the present utility model is schematically shown;

[0028] Figure 7 A partial structural view of an intelligent scanning device according to another embodiment of the present utility model is schematically shown;

[0029] Figure 8 A partial structural view of an intelligent scanning device according to another embodiment of the present utility model is schematically shown;

[0030] Figure 9 For Figure 8 An enlarged view of section B in

[0031] Figure 10 Schematically shows a partial structural view of an intelligent scanning device according to another embodiment of the present utility model;

[0032] Figure 11 is Figure 10 an enlarged view of the position C in

[0033] Figure 12 Schematically shows a top view of an intelligent scanning device according to another embodiment of the present utility model;

[0034] Figure 13 Schematically shows a partial three - dimensional view of an intelligent scanning device according to another embodiment of the present utility model;

[0035] Figure 14 Schematically shows a three - dimensional view of an intelligent scanning device according to another embodiment of the present utility model;

[0036] Figure 15 Schematically shows an internal structural view of an intelligent scanning device according to another embodiment of the present utility model;

[0037] Figure 16 Schematically shows an internal structural view of an intelligent scanning device according to another embodiment of the present utility model.

[0038] In the drawings, the same or corresponding reference numerals represent the same or corresponding parts.

[0039] Reference numerals:

[0040] Housing 10, opening 101, first cross - beam 11, through - hole 111, scanning window 12, second cross - beam 13, side beam 14, observation window 15, fixing seat 16, triggering assembly 20, triggering member 21, triggering portion 211, first limiting portion 2111, main body portion 212, clamping projection portion 2121, second avoidance groove 213, third avoidance groove 214, deformation member 22, first clamping groove 221, pressure - sensing assembly 30, support member 40, installation groove 41, first sub - groove 411, second sub - groove 412, first avoidance groove 42, support portion 43, lug 44, installation hole 441, first cover plate 50, second cover plate 60, sealing member 70, second limiting portion 71, second clamping groove 72. Detailed implementation manners

[0041] The principles and spirit of the present utility model will be described below with reference to several exemplary embodiments. It should be understood that these embodiments are given only to enable those skilled in the art to better understand and then implement the present utility model, and do not limit the scope of the present utility model in any way. On the contrary, these embodiments are provided to make the present disclosure more thorough and complete, and to be able to fully convey the scope of the present disclosure to those skilled in the art.

[0042] Summary of the Utility Model

[0043] The following specifically introduces various non - restrictive implementation manners of the present utility model.

[0044] According to an implementation manner of the present utility model, an intelligent scanning device is provided.

[0045] The quantity of any element in the drawings is for illustration rather than limitation, and any naming is only for distinction without any limiting meaning.

[0046] The following elaborates on the principle and spirit of the present utility model in detail with reference to several representative implementation manners of the present utility model.

[0047] First, refer to Figures 1 - 3 As shown, a schematic diagram of an exemplary intelligent scanning device suitable for implementing the implementation manner of the present utility model is shown.

[0048] The intelligent scanning device according to an embodiment of the present application includes a housing 10, a trigger assembly 20, and a pressure - sensing assembly 30. An opening 101 penetrating in the up - and - down direction is provided at the front end of the housing 10. The opening 101 defines an observation window 15 and a scanning window 12 that are oppositely arranged. The trigger assembly 20 includes a trigger member 21. A first cross - beam 11 formed at the front end of the housing 10 is provided on the front side of the opening 101. The trigger assembly 20 is provided on the first cross - beam 11. A pressure - sensing assembly 30 is provided at the front end of the housing 10. The trigger assembly 20 is used to abut against a scanning medium during use to apply a force to the pressure - sensing assembly 30. A transparent support member 40 is clamped in the opening 101, and the support member 40 abuts against the first cross - beam 11.

[0049] Specifically, the scanning window 12 is used to frame the content to be recognized. On the one hand, the observation window 15 facilitates the user to observe the content framed by the scanning window 12, ensuring that the content recognized by the intelligent scanning device is what the user needs. On the other hand, the observation window 15 can facilitate the penetration of light, so as to provide light irradiation for the image acquisition component of the intelligent scanning device to recognize the document to be scanned.

[0050] A first cross - beam 11 formed at the front end of the housing 10 is provided on the front side of the opening 101. The first cross - beam 11 can be used to increase the structural strength of the front end of the housing 10. The support member 40 is fixed to the housing 10 and abuts against the first cross - beam 11, thereby using the support member 40 to increase the structural strength of the first cross - beam 11 and overall enhancing the structural strength of the front end of the housing 10.

[0051] The support 40 can be connected to the front-end part, the back-end part or the side part of the housing 10 at the opening 101. The connection can be detachable or integrally formed, and this application does not make any restrictions. In an embodiment of this application, the support 40 and the housing 10 are detachably connected.

[0052] The support 40 is provided with a transparent structure, which enables light to penetrate into the scanning window 12, assists the image acquisition component in filling light, and facilitates the user to observe the content framed in the scanning window 12 through the support 40.

[0053] Among them, the material of the support 40 can be selected from a variety of different materials according to needs. When selecting, it can be considered from aspects such as the mechanical strength, transparency, durability, and processing performance of the materials. For example, glass can be selected. Glass has excellent optical transparency and scratch resistance, high hardness, and good chemical stability. Resin materials such as acrylic, polycarbonate (PC), polyurethane (TPU), and epoxy resin can also be selected.

[0054] The housing 10 is provided with a trigger component 20 and a pressure sensing component 30. The trigger component 20 is used to contact the medium to be scanned and feedback the received force to the pressure sensing component 30. The pressure sensing component 30 converts the received acting force into an electrical signal and then transmits it to the main control component to confirm whether it is necessary to start the intelligent scanning device. Among them, the pressure sensing component 30 is electrically connected to the main control component, and the trigger component 20 is mechanically connected to the pressure sensing component 30. The connection here refers to a general connection, as long as it can be directly contacted to achieve the transmission of force. The trigger component 20 and the pressure sensing component 30 are not necessarily connected in a narrow sense.

[0055] As Figure 2 and Figure 4 shown, the front end of the housing 10 is provided with a first cross beam 11. The first cross beam 11 extends along the width direction of the housing 10, which can correspondingly increase the installation position available for the trigger component 20, and at the same time enhance the structural strength of the front end of the housing 10. Setting the trigger component 20 on the first cross beam 11 can provide enough installation space for the trigger component 20 to be installed. Therefore, the size of the trigger component 20 can be appropriately increased, thus avoiding the possibility of accidental touch due to the small size of the trigger component 20 being easily stressed.

[0056] It can be understood that when the trigger component 20 increases, the acting force on the pressure sensing component 30 will increase. Therefore, while the trigger component 20 increases, the deformation member 22 is used to transmit the acting force received by the trigger component 20 to the pressure sensing component 30. While transmitting the acting force, the deformation member 22 can absorb the acting force by deformation, thereby buffering the action of the trigger component 20 on the pressure sensing component 30, enabling the pressure sensing component 30 to sense a greater acting force without being damaged.

[0057] As Figure 1 and Figure 2 shown, in some embodiments, the triggering component 20 includes a trigger 21 and a deformable member 22, and the deformable member 22 is sandwiched between the triggering component 20 and the pressure sensing component 30.

[0058] The deformable member 22 also functions to reset the triggering component 20. After the force applied to the triggering component 20 disappears, the deformable member 22 resets and drives the triggering component 20 to reset.

[0059] It should be noted that the deformable member 22 can deform when subjected to the force of the triggering component 20, and this deformation is elastic deformation. After the force of the triggering component 20 is withdrawn, the deformable member 22 can return to its original state, so that it can be used repeatedly, extending the service life of the intelligent scanning device.

[0060] Since the triggering component 20 is provided on the first cross beam 11, in order to increase the structural strength of the first cross beam 11, the support member 40 is abutted against the first cross beam 11, enhancing the bearing capacity of the first cross beam 11 when subjected to a force impact. When the user accidentally drops the intelligent scanning device to the ground, it can also provide good protection for the first cross beam 11, extending the service life of the intelligent scanning device.

[0061] It should be noted that the shape and thickness of the support member 40 can be set accordingly according to the shape and thickness of the first cross beam 11. For example, the thickness of the support member 40 can be greater than the thickness of the first cross beam 11, or the thickness of the support member 40 can be equal to the thickness of the first cross beam 11, or the thickness of the support member 40 can be less than the thickness of the first cross beam 11. This application does not make any restrictions, as long as the structural strength requirements can be met.

[0062] According to the intelligent scanning device of the embodiment of the present utility model, by arranging the triggering component 20 on the first cross beam 11, the size of the triggering component 20 can be correspondingly increased. At the same time, the deformable member 22 is used to transfer the force between the triggering component 20 and the pressure sensing component 30, so that the intelligent scanning device can be started by the force received by the triggering member, avoiding accidental touch and accidental start. At the same time, the support member 40 is abutted against the first cross beam 11, increasing the structural strength of the first cross beam 11 and enhancing the structural reliability of the intelligent scanning device, bringing a better experience to the user.

[0063] As Figure 2 、 Figure 4 and Figure 5 shown, in an embodiment of the present utility model, the support member 40 and the front end of the housing 10 jointly define an installation groove 41, and the deformable member 22 and the pressure sensing component 30 are embedded in the installation groove 41.

[0064] Specifically, the support member 40 and the housing 10 jointly define an installation groove 41. The deformation member 22 and the pressure sensing assembly 30 are clamped between the first cross beam 11 and the support member 40. While the support member 40 supports the first cross beam 11, the support member 40 can play a role in positioning and supporting the deformation member 22 and the pressure sensing assembly 30, which can simplify the structural arrangement and reduce the number of parts, thereby avoiding increasing the size of the intelligent scanning device and affecting the portability of the intelligent scanning device.

[0065] Specifically, a groove can be machined on the support member 40, or a groove can be machined on the housing 10, or grooves can be machined on both the housing 10 and the support member 40 at the same time. Since the thickness of the housing 10 is thinner than that of the support member 40, machining a groove on the support member 40 can better ensure the structural strength of both the housing 10 and the support member 40.

[0066] In the intelligent scanning device according to the embodiment of the present application, the support member 40 supports the first cross beam 11 and can play a role in positioning and supporting the deformation member 22 and the pressure sensing assembly 30, which can simplify the structural arrangement and reduce the number of parts, thereby avoiding increasing the size of the intelligent scanning device and affecting the portability of the intelligent scanning device.

[0067] As Figure 2 、 Figure 8 and Figure 9 shown, a first avoidance groove 42 is provided on the support member 40. The first avoidance groove 42 is located in the installation groove 41, and the trigger assembly 20, the pressure sensing assembly 30, and the first avoidance groove 42 are arranged opposite to each other in sequence.

[0068] Specifically, the first avoidance groove 42 on the support member 40 enables a part of the support member 40 to be spaced from the pressure sensing assembly 30. Thus, when the pressure sensing assembly 30 is deformed by the acting force of the trigger assembly 20, the support member 40 can avoid the pressure sensing assembly 30, thereby improving the force sensitivity of the pressure sensing assembly 30 and enhancing the overall sensitivity of the intelligent scanning device.

[0069] It should be noted that the shape and size of the first avoidance groove 42 can be set as required. For example, the first avoidance groove 42 can be a cube, a cuboid, an ellipsoid, etc.

[0070] As Figure 2 、 Figure 8 、 Figure 9 and Figure 16As shown, in another embodiment of the present utility model, the trigger member 21 includes a main body portion 212 and a trigger portion 211. The main body portion 212 and the trigger portion 211 are connected. The seal member 70 is sleeved on the trigger portion 211. A through hole 111 is provided on the first cross beam 11. At least a part of the main body portion 212 is exposed outside the through hole 111 to abut against the scanning medium during use. A part of the trigger portion 211 is disposed through the through hole 111. A deformable member 22 is clamped between the trigger portion 211 and the pressure sensing assembly 30. A first avoidance groove 42 is provided on the support member 40. The first avoidance groove 42 is located within the installation groove 41. The trigger portion 211, the deformable member 22, and the first avoidance groove 42 are sequentially arranged opposite to each other.

[0071] Specifically, the trigger member 21 includes a trigger portion 211 and a main body portion 212. The trigger portion 211 abuts against the deformable member 22. The main body portion 212 is used to abut against the scanning medium during use and transmit the acting force to the trigger portion 211. In this way, when the acting force acts on the trigger portion 211, the trigger portion 211 transmits the acting force to the deformable member 22. A first avoidance groove 42 is provided on the support member 40. The trigger portion 211, the deformable member 22, and the first avoidance groove 42 are arranged opposite to each other. When the acting force in the corresponding area acts on the trigger portion 211, a corresponding acting force is applied to the deformable member 22 at the corresponding position. The corresponding position of the deformable member 22 will deform. The first avoidance groove 42 being arranged opposite to the deformable member 22 can avoid the deformable member 22 and provide space for the deformable member 22 to deform. Due to the presence of the pressure sensing assembly 30, the pressure sensing assembly 30 can also deform accordingly at the same time, buffer the acting force, and be able to withstand a greater acting force to avoid damage to the pressure sensing assembly 30. The deformable member 22 abuts against the circumferential edge of the first avoidance groove 42. Due to the presence of the pressure sensing assembly 30, it can indirectly abut against the circumferential edge of the first avoidance groove 42, thereby using the circumferential edge of the first avoidance groove 42 to provide support for the deformable member 22 and prevent the deformable member 22 from shifting during deformation and being unable to reset.

[0072] For example, one first avoidance groove 42 can correspond to multiple trigger portions 211. For example, when multiple trigger portions 211 are provided, a first avoidance groove 42 with a larger size is provided to correspond to all or several of the trigger portions 211. It can also be that the first avoidance groove 42 and the trigger portion 211 are in one-to-one correspondence. Especially when the size of the trigger member 21 is large and several trigger portions 211 need to be provided, the first avoidance groove 42 and the trigger portion 211 are in one-to-one correspondence, so that an interval can be formed between adjacent first avoidance grooves 42. The interval can play a certain supporting role for the deformable member 22, which is more conducive to the reset of the deformable member 22 after deformation.

[0073] According to the intelligent scanning device of the embodiments of the present application, the first avoidance groove 42 can be used to avoid the deformable member 22, thereby providing a certain space for the deformation of the deformable member 22. The relative arrangement of the first avoidance groove 42 and the deformable member 22 can avoid the deformable member 22 and provide space for the deformation of the deformable member 22. Due to the presence of the pressure sensing component 30, the pressure sensing component 30 can also be deformed accordingly, buffer the acting force, and be able to withstand a greater acting force to avoid damage to the pressure sensing component 30.

[0074] As Figure 2 and Figure 7 shown, in another embodiment of the present utility model, one end of the support member 40 in the thickness direction is provided with a support portion 43, and the deformable member 22 is provided with a first clamping groove 221, and the support portion 43 is clamped in the first clamping groove 221.

[0075] Specifically, since the size of the deformable member 22 is relatively large, the support member 40 is provided with the support portion 43, and the deformable member 22 is provided with the first clamping groove 221. The support portion 43 and the first clamping groove 221 are used for limiting and positioning, thereby simplifying the alignment difficulty during the installation of the deformable member 22 on the support member 40. At the same time, by using the cooperation of the support portion 43 and the first clamping groove 221, during the process that the trigger member 21 of the intelligent scanning device drives the deformable member 22 to deform under force, the deformable member 22 can also be prevented from being misaligned during the reset process due to the positioning and cooperation of the support portion 43 and the first clamping groove 221.

[0076] As Figure 6 shown, in another embodiment of the present utility model, the installation groove 41 includes a first sub-groove 411 and two second sub-grooves 412. The first sub-groove 411 is located at the front end of the support member 40, and the two second sub-grooves 412 are located on the opposite side walls of the support member 40. The first sub-groove 411 and the two second sub-grooves 412 are respectively in smooth transition, and the pressure sensing component 30 is located in the first sub-groove 411 and the two second sub-grooves 412.

[0077] Specifically, the installation groove 41 includes the first sub-groove 411 and the two second sub-grooves 412. The first sub-groove 411 is located at the front end of the support member 40, and the pressure sensing component 30 is located in the first sub-groove 411 and the two second sub-grooves 412. It can be understood that the pressure sensing component 30 needs to be electrically connected to the main control component. Therefore, while the pressure sensing component 30 is in relative abutment with the deformable member 22, it also needs to be electrically connected to the main control component located behind the first cross beam 11. The pressure sensing component 30 extends backward along the two side walls of the support member 40 until an electrical connection is formed with the main control component. The second sub-groove 412 can play a role in avoiding the pressure sensing component 30 while playing a role in positioning and limiting, realizing the positioning of the pressure sensing component 30 and the fixation of the wiring. The structural setting is reasonable, and the number of parts can be further reduced.

[0078] It can be understood that the first sub-groove 411 and the second sub-groove 412 have a smooth transition, which can avoid the bending of the pressure-sensitive component 30 and ensure the structural and functional integrity of the pressure-sensitive component 30.

[0079] As Figure 9 and Figure 16 shown, in one embodiment, a second avoidance groove 213 is provided on the trigger portion 211, and the second avoidance groove 213 is disposed opposite to the support portion 43.

[0080] It can be understood that by providing the second avoidance groove 213, the trigger portion 211 can avoid the support portion 43, and interference with the support portion 43 can be avoided when the trigger portion 211 is pressed.

[0081] As Figures 12 - 14 shown, in one embodiment, a through hole 111 is provided on the first cross beam 11, a part of the trigger portion 211 is inserted into the through hole 111, a sealing member 70 is sleeved on the trigger portion 211, and the sealing member 70 has elasticity and is in interference fit with the through hole 111.

[0082] A through hole 111 is provided on the first cross beam 11, and the trigger portion 211 is inserted into the through hole 111, so as to guide the trigger portion 211 during the pressing process and the reset process by using the through hole 111, so that the trigger portion 211 can only move along the inner wall of the through hole 111. Since there is relative movement between the trigger portion 211 and the through hole 111, a clearance fit exists between the trigger portion 211 and the through hole 111. A sealing member 70 is clamped between the trigger portion 211 and the through hole 111. The sealing member 70 has elasticity. When the trigger portion 211 is pressed, the sealing member 70 can not only play a buffering role, but also block the gap between the trigger portion 211 and the through hole 111, preventing dust and water, and avoiding impurities and water from passing through the gap to damage components such as the pressure-sensitive component 30.

[0083] In one embodiment, since the deformable member 22 extends along the width direction of the support member 40, and on both sides of the support member 40, it is necessary to provide an avoidance for the pressure-sensitive component 30 to extend rearward. Therefore, a support portion 43 is provided on the upper edge or the lower edge of the support member 40, and the freedom degree of the deformable member 22 is restricted by the engagement of the first clamping groove 221 and the support portion 43.

[0084] In another embodiment of the present invention, the first clamping groove 221 extends along the length direction of the deformable member 22.

[0085] According to the intelligent scanning device of the embodiment of the present application, the first clamping groove 221 extends along the length direction of the deformable member 22, which can better limit the deformable member 22 and avoid the dislocation of the deformable member 22 during the reset process after deformation.

[0086] It should be noted that the length direction of the deformable member 22 is the width direction of the housing 10, the length direction of the housing 10 is the direction from the front end to the rear end of the housing 10, and a first cross beam 11 is provided at the front end of the housing 10.

[0087] As Figure 8 and Figure 9 shown, in some embodiments, a first limiting portion 2111 is provided on the triggering portion 211, a second limiting portion 71 is provided on the sealing member 70, and the first limiting portion 2111 and the second limiting portion 71 are clamped.

[0088] It can be understood that by providing the first limiting portion 2111 and the second limiting portion 71, and using the cooperation between the first limiting portion 2111 and the second limiting portion 71, the position of the sealing member 70 is further limited. During the process of pressing the triggering member 21 multiple times, the sealing member 70 is always kept from shifting, improving the sealing performance of the sealing member 70.

[0089] As Figure 10 、 Figure 11 and Figure 16 shown, in some embodiments, the number of the triggering portions 211 is two, the two triggering portions 211 are arranged at intervals, a clamping convex portion 2121 is provided on the main body portion 212, the clamping convex portion 2121 is located between the two triggering portions 211, and a second clamping groove 72 is provided on the sealing member 70, and the clamping convex portion 2121 is clamped in the second clamping groove 72.

[0090] Specifically, the number of the triggering portions 211 is two, and the two triggering portions 211 are arranged at intervals, which is conducive to generating a concentrated acting force on the deformable member 22, thereby improving the sensitivity of the pressure sensing assembly 30. By using the cooperation between the clamping convex portion 2121 and the second clamping groove 72, the position of the sealing member 70 can be further limited. During the process of pressing the triggering member 21 multiple times, the sealing member 70 is always kept from shifting, improving the sealing performance of the sealing member 70.

[0091] As Figure 16 shown, in some embodiments, one end where the triggering portions 211 are close to each other is the first end, and one end where the two triggering portions 211 are far from each other is the second end. A third avoiding groove 214 is defined by a relative interval between the main body portion 212 and the second end of the triggering portion 211.

[0092] Specifically, by providing the third avoidance groove 214, the connection dimension between the main body portion 212 and the triggering portion 211 can be reduced. When the main body portion 212 is subjected to a force when abutting against the scanning medium, the stress concentration can be transmitted to the triggering portion 211 and then to the pressure sensing component 30 through the triggering portion 211, making the reaction more rapid when the force is transmitted to the pressure sensing component 30 and improving the sensitivity of the triggering member 21 to transmit the force. The vacant third avoidance groove 214 can also engage with the seal 70, improving the accuracy of the position and positioning of the seal 70 and avoiding misalignment or displacement.

[0093] As Figure 2 and Figure 4 shown, in another embodiment of the present utility model, the first cross beam 11 is located on the front side of the scanning window 12, the housing 10 further defines a second cross beam 13 located on the rear side of the scanning window 12, the support member 40 abuts against the second cross beam 13 at the same time, the housing 10 further defines side beams 14 located on both sides of the scanning window 12, and the two side beams 14 are respectively located on both sides of the support member 40 and abut against the support member 40.

[0094] Specifically, the first cross beam 11 is located on the front side of the scanning window 12, the housing 10 further defines a second cross beam 13 on the rear side of the scanning window 12, the housing 10 further defines side beams 14 located on both sides of the scanning window 12, the two ends of the side beams 14 are respectively connected to the first cross beam 11 and the second cross beam 13, and the support member 40 abuts against the side beams 14, the first cross beam 11 and the second cross beam 13 at the same time, which can further enhance the structural strength of the front end structure of the housing 10 and prevent damage when the intelligent scanning device falls.

[0095] It can be understood that the intelligent scanning device needs to scan the material to be recognized for visual recognition. Providing the scanning window 12 is conducive to the image acquisition component to perform visual recognition on the material to be recognized. At the same time, the first cross beam 11, the second cross beam 13 and the side beams 14 are located around the scanning window 12, which is conducive to enhancing the structural strength around the scanning window 12.

[0096] According to the intelligent scanning device of the embodiment of the present application, the second cross beam 13 and the side beams 14 can be used to fix the support member 40, enhancing the support strength of the support member 40 for the first cross beam 11. At the same time, the support member 40 can be used to further enhance the structural strength of the front end structure of the housing 10 and prevent damage when the intelligent scanning device falls.

[0097] As Figure 5 , Figure 6 and Figure 15 shown, in some embodiments, the housing 10 is provided with a fixing seat 16, the two sides of the support member 40 are provided with lugs 44, the lugs 44 are provided with mounting holes 441, and the fixing seat 16 passes through the mounting holes 441.

[0098] Specifically, the fixing base 16 is inserted into the mounting hole 441. By using the snap-fit between the fixing base 16 and the mounting hole 441, it is possible to fix and limit the position between the housing 10 and the support member 40, increasing the difficulty of the overall installation and fit of the intelligent scanning device, and improving the assembly efficiency and the reliability after assembly.

[0099] In some embodiments, the support member 40 is a rectangular or cubic plate-like structure. In this way, while ensuring that the support member 40 provides sufficient support force, the structural setting of the support member 40 is simplified, and the processing difficulty is reduced.

[0100] As Figure 2 、 Figure 3 and Figure 4 shown, in another embodiment of the present utility model, a first cover plate 50 is provided in the observation window 15. The first cover plate 50 is provided with a transparent structure, and the first cover plate 50 is integrally formed with the support member 40.

[0101] Among them, the first cover plate 50 can be used to seal the intelligent scanning device at the observation window 15, which is beneficial for dust and water protection. Setting the first cover plate 50 and the support member 40 to be integrally formed can reduce the number of parts and simplify the installation process.

[0102] In another embodiment of the present utility model, a first cover plate 50 is provided in the observation window 15. The first cover plate 50 is provided with a transparent structure, and the first cover plate 50 is integrally formed with the support member 40, and the first cover plate 50 and the support member 40 are formed separately.

[0103] Setting the first cover plate 50 and the support member 40 to be formed separately can reduce the part processing difficulty. Forming them separately can simplify the preparation process, and it is also beneficial to adaptively select different materials according to the functions. For example, the requirement for wear resistance of the support member 40 may be relatively low, while for the first cover plate 50, the requirements for wear and scratch resistance are relatively high, which is conducive to adaptively selecting better materials according to the needs.

[0104] The first cover plate 50 can be made of resin materials such as glass, acrylic, polycarbonate (PC), polyurethane (TPU), and epoxy resin.

[0105] In another embodiment of the present utility model, a contact surface inclined with respect to the observation window 15 is provided at the bottom of the front end of the housing 10. A scanning window 12 is provided on the contact surface, and a second cover plate 60 is provided in the scanning window 12. The second cover plate 60 is provided with a transparent structure.

[0106] Specifically, the abutting surface is used to fit media such as books to achieve the inclination of the intelligent scanning device. The scanning window 12 is used to frame the content to be recognized. The second cover plate 60 is provided to facilitate the enclosure of the intelligent scanning device at the observation window 15, which is beneficial for dust and water protection. The second cover plate 60 is set as a transparent structure, which is conducive to the acquisition of content by the image acquisition component and the auxiliary lighting for the image acquisition component in cooperation with the observation window 15.

[0107] The second cover plate 60 can be made of resin materials such as glass, acrylic, polycarbonate (PC), polyurethane (TPU), and epoxy resin.

[0108] It should be noted that although several devices or sub-devices of the device are mentioned in the above detailed description, this division is not mandatory. In fact, according to the embodiments of the present invention, the features and functions of the two or more devices described above can be embodied in one device. Conversely, the features and functions of one device described above can be further divided and embodied by multiple devices.

[0109] Although the operations of the method of the present invention are described in a specific order in the drawings, this does not require or imply that these operations must be performed in that specific order, or that all the operations shown must be performed to achieve the desired result. On the contrary, the steps depicted in the flowchart can be changed in the execution order. Additionally or alternatively, some steps can be omitted, multiple steps can be combined into one step for execution, and / or one step can be decomposed into multiple steps for execution.

[0110] It should be understood that each block of the flowchart and / or block diagram, and the combinations of blocks in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, or other programmable data processing device, thereby producing a machine. These computer program instructions are executed by the computer or other programmable data processing device, resulting in a device that implements the functions / operations specified in the blocks of the flowchart and / or block diagram.

[0111] These computer program instructions can also be stored in a computer-readable medium that can cause the computer or other programmable data processing device to work in a specific manner. In this way, the instructions stored in the computer-readable medium produce a product that includes an instruction device for implementing the functions / operations specified in the blocks of the flowchart and / or block diagram.

[0112] Computer program instructions may also be loaded onto a computer, other programmable data processing apparatus, or other devices, causing a series of operational steps to be performed on the computer, other programmable data processing apparatus, or other devices to generate a computer-implemented process, so that the instructions executed on the computer or other programmable apparatus can provide a process for implementing the functions / operations specified in the boxes of the flowchart and / or block diagram.

[0113] The use of the verbs "comprise", "include" and their inflected forms as used in the application document does not exclude the presence of elements or steps other than those recited in the application document. The article "a" or "an" preceding an element does not exclude the presence of a plurality of such elements.

[0114] Although the spirit and principles of the present utility model have been described with reference to several specific embodiments, it should be understood that the present utility model is not limited to the specific embodiments disclosed, and the division of each aspect does not mean that the features in these aspects cannot be combined for benefit. Such division is only for convenience of expression. The present utility model aims to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims. The scope of the appended claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.

Claims

1. An intelligent scanning device, characterized in that, It includes a housing, a trigger assembly, and a pressure sensing assembly. An opening penetrating in the up-down direction is provided at the front end of the housing. The opening defines an observation window and a scanning window which are oppositely arranged. A first cross beam formed at the front end of the housing is provided at the front side of the opening. The trigger assembly is provided on the first cross beam. A pressure sensing assembly is provided at the front end of the housing. The trigger assembly is used to abut against a scanning medium during use to apply a force to the pressure sensing assembly. A transparent support member is clamped in the opening, and the support member abuts against the first cross beam.

2. The intelligent scanning device according to claim 1, wherein The support member and the front end of the housing jointly define an installation groove, and the pressure sensing assembly is embedded in the installation groove.

3. The intelligent scanning device according to claim 2, wherein The installation groove includes a first sub-groove and two second sub-grooves. The first sub-groove is located at the front end of the support member, and the two second sub-grooves are located on the opposite side walls of the support member. The first sub-groove and the two second sub-grooves are respectively in smooth transition, and the pressure sensing assembly is located in the first sub-groove and the two second sub-grooves.

4. The intelligent scanning device according to claim 2, wherein, A first avoidance groove is provided on the support member. The first avoidance groove is located in the installation groove. The trigger assembly, the pressure sensing assembly, and the first avoidance groove are arranged oppositely in sequence.

5. The intelligent scanning device according to claim 1, characterized in that, The trigger assembly includes a trigger member. The trigger member includes a main body portion and two trigger portions arranged at intervals. Both of the two trigger portions are connected to the main body portion. A through hole is provided on the first cross beam. At least part of the main body portion is exposed outside the through hole to abut against a scanning medium during use. Part of the trigger portion penetrates through the through hole. A deformation member is clamped between the trigger portion and the pressure sensing assembly. One end of the support member in the thickness direction is provided with a support portion, and a first clamping groove is provided on the deformation member. The support portion is clamped in the first clamping groove.

6. The intelligent scanning device according to claim 5, wherein A second avoidance groove is provided on the trigger portion, and the second avoidance groove is arranged oppositely to the support portion.

7. The intelligent scanning device according to claim 5, characterized in that, A sealing member is sleeved on the trigger portion. The sealing member has elasticity and is in interference fit with the through hole.

8. The intelligent scanning device according to claim 7, characterized in that, A first limiting portion is provided on the trigger portion, and a second limiting portion is provided on the sealing member. The first limiting portion and the second limiting portion are clamped.

9. The intelligent scanning device according to claim 7, wherein A clamping convex portion is provided on the main body portion. The clamping convex portion is located between the two trigger portions. A second clamping groove is provided on the sealing member. The clamping convex portion is clamped in the second clamping groove.

10. The intelligent scanning device according to claim 5, characterized in that, One end of the two trigger portions close to each other is the first end, and one end of the two trigger portions far from each other is the second end. A third avoidance groove is defined at a relative interval between the main body portion and the second end of the trigger portion.

11. The intelligent scanning device according to claim 1, characterized in that The housing further includes a second cross beam located at the rear side of the opening and side beams located on both sides of the opening. The support member abuts against the second cross beam and the two side beams at the same time. The support member is a transparent structure.

12. The intelligent scanning device according to claim 11, wherein, A fixing seat is provided on the housing. Lugs are provided on both sides of the support member. Mounting holes are provided on the lugs. The fixing seat penetrates through the mounting holes.

13. The intelligent scanning device according to any one of claims 1 to 12, characterized in that, The support member is a cuboid or cube plate-like structure.