Timepiece structure, dial and watch

By introducing a drive component and rotor switching disc into the clock, a new timekeeping system with minute and hour values ​​was achieved, solving the problem of repetitive traditional clock designs and enhancing the product's appeal and user experience.

CN113534643BActive Publication Date: 2025-10-21SHENZHEN WEIKE BRAND MANAGEMENT LTD
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Patent Information

Application Number
CN202110991882.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-08-27
Publication Date
2025-10-21
Estimated Expiration
2041-08-27

AI Technical Summary

Technical Problem

Traditional clock designs are limited to a 360° time-reading method, resulting in similar styles and a lack of appeal.

Method used

A new type of timekeeping system is implemented by using a drive component to rotate multiple pointer indicators, combined with an arc-shaped reading partition and a rotor switching disk to achieve minute and hour values. The reading surface is switched by setting a rotor on the pointer and using the switching disk to drive the rotor.

Benefits of technology

Breaking away from the limitations of traditional watch design, it enhances product appeal, user experience, and design novelty.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a time counting structure, comprising a reading time component and a driving component. The reading time component comprises a switching disc, an indicating element and a dial. The switching disc is provided with a protrusion and a protruding column. The protrusion is provided with a notch part. The protruding column is located in the notch part. The indicating element is provided with N pointers which are uniformly distributed on a concentric circle. Each pointer is provided with a rotatable rotor. The rotor is provided with M reading time surfaces. Each reading time surface is provided with a first mark. The rotor is also provided with a driving part. When the driving part abuts against the protrusion, the driving part is positioned by the protrusion, thereby preventing the rotor from rotating to lock the reading time surface. When the driving part enters the notch part, the driving part is poked by the protruding column, thereby driving the rotor to rotate to switch the reading time surface. The dial is provided with an arc-shaped reading minute zone and a second mark which is arranged along the extension direction of the reading minute zone. The present application also provides a watch head comprising the time counting structure and a clock comprising the watch head. The present application has the beneficial effect of breaking the limitation of traditional clock design and improving the attraction to consumers.
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Description

Technical Field

[0001] The present invention relates to the technical field of clock and watch design, in particular to a timing structure, a clock comprising the timing structure, and a clock comprising the watch head. Background Art

[0002] A clock is a timekeeping device, a precision instrument used to measure and indicate time. Modern clocks are mainly divided into mechanical clocks and electronic clocks. Mechanical clocks use the energy released by a weight or spring as power (mechanical movement) to drive a series of gears, with the escapement regulating the speed of the gear train, and using hands to indicate the time and measure time. Electronic clocks, on the other hand, use electricity as power (electronic movement) and display digital time using LCD and quartz analog timers.

[0003] Traditional analog watches primarily rely on 360-degree time reading. For example, the hour, minute, and second hands are configured to rotate 360 ​​degrees, allowing for time reading using markings, symbols, and other indicators on the dial. This widespread use of 360-degree time reading has led to a proliferation of similar timepieces, limiting product design and reducing consumer appeal. Summary of the Invention

[0004] Based on this, the present invention provides a timing structure that utilizes a driving assembly to drive an indicator member having multiple pointers to rotate, and cooperates with a dial having arc-shaped reading partitions to realize a new type of minute value timing. A rotor is provided on each pointer, and a switching disk drives the rotor to switch the current reading surface to realize a new type of hour value timing, breaking the limitations of traditional watch design and increasing its appeal to consumers.

[0005] A timing structure comprising:

[0006] The time reading assembly comprises: a switching disk, an indicator member pivotally connected to the switching disk, and a dial provided with an adjacent indicator member; the switching disk is provided with a protrusion and a protrusion; the protrusion is provided with a notch; the protrusion is located in the notch; the indicator member is provided with N pointers uniformly spaced on concentric circles, N is an integer, and N≥2; each pointer is provided with a rotatable rotor; the rotor is provided with M time reading surfaces, M is an integer, and M≥2; each time reading surface is provided with a first mark; the rotor is also provided with a driving part; when the driving part abuts against the protrusion, it is positioned by the protrusion, thereby preventing the rotor from rotating to lock the time reading surface; when the driving part enters the notch, it is toggled by the protrusion, thereby driving the rotor to rotate to switch the time reading surface; the dial is provided with an arc-shaped reading partition and a second mark provided along the extension direction of the reading partition; the reading partition is located on the motion trajectory of each pointer; the angle formed by the line connecting the two ends of the reading partition and the rotation center of the pointer is α, and α=360° / N; and

[0007] A drive assembly is connected to the time reading assembly; the drive assembly is connected to the indicator to drive each pointer to achieve 360° rotation.

[0008] When the above-mentioned timing structure is working, the indicator rotates driven by the driving assembly. The pointer on the indicator is used to indicate the minute. When the pointer enters the minute reading area of ​​the dial, the user reads the minute value of the current time according to the second mark pointed to by the pointer. Each pointer is provided with a rotatable rotor, and the user reads the current hour value according to the first mark on the time reading surface displayed by the rotor that has currently entered the reading area. Each rotor is provided with M time reading surfaces. In order to allow the rotor to lock the correct first mark during the rotation of the pointer, a protrusion is provided on the switching disk to abut the driving part of the rotor to lock the current time reading surface of the rotor. At the same time, in order to realize the switching of the time reading surface, a notch portion is provided on the protrusion, and a boss is provided in the notch portion. When the rotor enters the notch portion, it is free from the restriction of the protrusion. During the collision between the driving part and the boss, the driving part is forced to rotate to switch the current time reading surface. Through the above design, a driving assembly is used to drive the indicator member provided with multiple hands to rotate, and in conjunction with a dial provided with arc-shaped reading areas, a new type of minute value timing is realized. A rotor is provided on each hand, and a switching disk drives the rotor to switch the current reading surface, realizing a new type of hour value timing, breaking the limitations of traditional clock design and increasing its appeal to consumers.

[0009] In one embodiment, the rotor's axis of rotation is parallel to the switching disk, and the rotor is a polyhedron with multiple display surfaces, each corresponding to a time reading surface. This polyhedron-shaped rotor allows the current display surface to be switched by rotation, thereby switching the time reading surface, representing a novel structure.

[0010] In one embodiment, the rotor's axis of rotation is perpendicular to the switching disk, and the rotor is sheet-shaped and has multiple blades, with each blade providing a time reading surface. This multi-blade rotor allows the time reading surface to be switched by rotating the current blade, creating a novel structure.

[0011] In one embodiment, the product of N and M is 12 or 24. The product of N and M corresponds to the sum of the number of time reading faces, that is, the range of hour values ​​that can be displayed. Depending on the user's needs, the display can be in 12-hour format or 24-hour format.

[0012] In one embodiment, the second identifier includes at least one of a scale and a number. Depending on different user needs, either the scale or the number or both can be used as the second identifier to make reading more intuitive and enhance the user experience.

[0013] In one embodiment, the drive unit is provided with a bayonet for the protrusion to extend into. When the rotor enters the notch of the protrusion, the bayonet cooperates with the protrusion, allowing the protrusion to accurately rotate the rotor to switch the time reading face, with high precision and good working stability.

[0014] At the same time, the present invention also provides a header.

[0015] A watch head includes the timing structure of any one of the above embodiments.

[0016] The above-mentioned watch head is provided with a timing structure, which utilizes a driving assembly to drive the rotation of an indicator member provided with multiple pointers, and cooperates with a dial provided with arc-shaped reading partitions to realize a new type of minute value timing. A rotor is provided on each pointer, and the rotor is driven by a switching disk to switch the current reading surface, realizing a new type of hour value timing, breaking the limitations of traditional watch design and increasing its appeal to consumers.

[0017] In one embodiment, the watch head further comprises: a watch case housing the time-reading assembly and the drive assembly, the watch case comprising: a main body, a hook block connected to the main body, a movably disposed stop block, and an elastic member connected to the stop block; the hook block is provided with a hook groove facing inwardly of the main body; a movable gap is provided between the entrance of the hook groove and the surface of the main body; the stop block is located in the movable gap; and the elastic member provides elastic force to the stop block to maintain the stop block in the movable gap. When the watch strap is connected to the watch head, the hook block hooks to the watch strap, and then the stop block and the elastic member prevent the watch strap from disengaging from the hook portion, thereby improving the efficiency of disassembly and assembly of the watch strap and the watch head.

[0018] At the same time, the present invention also provides a clock.

[0019] A timepiece comprises the watch head according to any one of the above embodiments.

[0020] The above-mentioned clock is provided with a watch head, and the watch head is provided with a timing structure. The timing structure uses a driving component to drive an indicator member provided with multiple pointers to rotate, and cooperates with a dial provided with arc-shaped reading partitions to realize a new type of minute value timing. A rotor is provided on each pointer, and the rotor is driven by a switching disk to switch the current reading surface, realizing a new type of hour value timing, breaking the limitations of traditional clock design and increasing its appeal to consumers.

[0021] In one embodiment, the timepiece includes a wearable component detachably connected to a watch head; the wearable component includes one or more of a watch strap, a lanyard, and a fixing base. Depending on the selected wearable component, the timepiece can be embodied in the form of a wristwatch, a pocket watch, a wall clock, etc. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 A three-dimensional view of a timing structure according to a first embodiment of the present invention;

[0023] Figure 2 for Figure 1 a top view of the timing structure shown;

[0024] Figure 3 for Figure 1 An exploded view of the timing structure shown;

[0025] Figure 4 for Figure 1 A partial view of the timing structure shown;

[0026] Figure 5 for Figure 4 Another perspective view of the timing structure shown;

[0027] Figure 6 for Figure 5 A combined view of the indicator and the switching disc in the timing structure shown;

[0028] Figure 7 for Figure 6 a top view of the indicator member shown;

[0029] Figure 8 for Figure 7 a perspective view of the indicator member shown looking down;

[0030] Figure 9 for Figure 7 Exploded view of the indicator shown;

[0031] Figure 10 A three-dimensional view of a timing structure according to a second embodiment of the present invention;

[0032] Figure 11 for Figure 10 a top view of the timing structure shown;

[0033] Figure 12 for Figure 10 A combined view of the indicator and the switching disc in the timing structure shown;

[0034] Figure 13 for Figure 12 A perspective view of the switching disk shown;

[0035] Figure 14 for Figure 12 a top view of the indicator member shown;

[0036] Figure 15 for Figure 14 a perspective view of the indicator member shown looking down;

[0037] Figure 16 A three-dimensional view of a meter head according to an embodiment of the present invention;

[0038] Figure 17 for Figure 16 An exploded view of a portion of the header is shown;

[0039] Figure 18 This is an exploded view of a timepiece according to an embodiment of the present invention.

[0040] The meanings of the reference numerals in the accompanying drawings are:

[0041] 100-timing structure;

[0042] 10-time reading assembly, 11-switching disk, 111-bump, 1111-notch, 112-column, 12-indicator, 121-pointer, 122-rotor, 1221-bayonet, 13-dial, 131-time reading partition, 123-rack, 124-cover;

[0043] 20- drive assembly;

[0044] 30-watch case, 31-main body, 32-hook block, 321-hook groove, 33-stop block, 34-elastic member;

[0045] 200-wearing part, 201-connecting shaft. DETAILED DESCRIPTION

[0046] To make the above-mentioned objects, features, and advantages of the present invention more readily apparent, specific embodiments of the present invention are described in detail below with reference to the accompanying drawings. The following description sets forth numerous specific details to facilitate a full understanding of the present invention. However, the present invention can be implemented in many other ways than those described herein, and those skilled in the art may make similar modifications without departing from the scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0047] like Figures 1 to 9 As shown, it is a timing structure 100 according to the first embodiment of the present invention.

[0048] like Figures 1 to 3 As shown, the timing structure 100 includes: a time reading component 10 and a driving component 20 connected to the time reading component 10. The time reading component 10 is used to time and provide a structure for the user to visually read the current time, and the driving component 20 is used to drive the time reading component 10 to operate.

[0049] Below, combined Figures 1 to 9 , the above-mentioned timing structure 100 is further explained.

[0050] like Figures 3 to 5 As shown, the time reading assembly 10 includes: a switching disk 11 , an indicator 12 pivotally connected to the switching disk 11 , and a dial 13 disposed adjacent to the indicator 12 .

[0051] like Figure 3 and Figure 6 As shown, the switching disk 11 is provided with a protrusion 111 and a protrusion 112. The protrusion 111 is provided with a notch 1111, and the protrusion 112 is located in the notch 1111.

[0052] like Figure 7 and Figure 8 As shown, the indicator 12 is provided with N pointers 121 evenly spaced and distributed on concentric circles, where N is an integer and N≥2. Figure 9 As shown, each pointer 121 is equipped with a rotatable rotor 122. Rotor 122 is provided with M time-reading faces, where M is an integer and M ≥ 2. Each time-reading face is provided with a first identifier. Rotor 122 also has a driving unit. When the driving unit abuts against protrusion 111, it is positioned by protrusion 111, preventing rotor 122 from rotating and locking the time-reading face. When the driving unit enters notch 1111, it is moved by protrusion 112, driving rotor 122 to rotate and switch the time-reading face.

[0053] The specific values ​​of N and M are set according to the hour system used by the watch. For example, if the 12-hour system is commonly used, the product of N and M is 12. If the 24-hour system is used, the product of N and M is 24. The product of N and M corresponds to the total number of reading faces, i.e., the range of hours that can be displayed. Depending on the user's needs, the display can be in either the 12-hour or 24-hour system. It is understood that the user can also customize the hour system according to their needs.

[0054] In this embodiment, the first identifier is an Arabic numeral. In other embodiments, the first identifier may also be a Roman numeral. The first identifier is not limited to a number and may also be other symbols or scales that can reflect the order. Preferably, it is an identifier that allows the user to intuitively and quickly identify it.

[0055] In addition, in order to allow the boss 112 to accurately and stably rotate the rotor 122 to switch the time reading surface. Figure 8 As shown, the drive unit is provided with a bayonet 1221 for the boss 112 to extend into. When the rotor 122 enters the notch 1111 of the protrusion 111, the bayonet 1221 cooperates with the boss 112, so that the boss 112 can accurately turn the rotor 122 to switch the time reading surface, with high precision and good working stability.

[0056] like Figure 4 As shown, the dial 13 is provided with an arc-shaped reading area 131 and a second marker (not shown) arranged along the extension direction of the reading area 131. The reading area 131 is located on the motion trajectory of each pointer 121. The angle formed by the line connecting the two ends of the reading area 131 and the rotation center of the pointer 121 is α, where α = 360° / N.

[0057] In this embodiment, the second identifier includes at least one of a scale and a number. Depending on user needs, either or both scales or numbers can be used as the second identifier, making reading more intuitive and improving the user experience. For example, in this embodiment, the second identifier includes scales and numbers for displaying 1 to 60, which correspond to the 60 minutes in an hour.

[0058] like Figure 3 As shown, the driving assembly 20 is connected to the indicator 12 to drive each pointer 121 to achieve 360° rotation. In this embodiment, the driving assembly 20 can include an electronic movement or a mechanical movement.

[0059] In addition, combined Figures 1 to 9 As shown, in this embodiment, the rotor 122's axis of rotation is arranged parallel to the switching disk 11. The rotor 122 is a polyhedron with multiple display surfaces, each corresponding to a time reading surface. The polyhedron-shaped rotor 122 can switch the current display surface by rotating to achieve the switching of the time reading surface, which is a novel structure.

[0060] For example, in this embodiment, one indicator 12 is provided with three pointers 121, and each pointer 121 is provided with a rotor 122, so there are three rotors 122 in total, i.e., N=3. Accordingly, α=360° / 3=120°. One rotor 122 is provided with four display surfaces, corresponding to the four time reading surfaces, i.e., M=4. Figure 7 As shown, in a counterclockwise direction, one rotor 122 is provided with Arabic numerals: 1, 4, 7, 10; the next rotor 122 is provided with Arabic numerals: 2, 5, 8, 11; and the next rotor 122 is provided with Arabic numerals: 3, 6, 9, 12.

[0061] For example, Figure 2 As shown, the time displayed by the timing structure 100 is currently 4:30. Figure 7 As shown, as the indicator 12 rotates further, when the rotor 122 with the Arabic numeral 4 leaves the reading partition 131, the rotor 122 with the Arabic numeral 5 enters the reading partition 131, and the rotor 122 with the Arabic numeral 3 is toggled by the protruding column 112 on the switching disk 11, and the rotor 122 rotates 90° around the pointer 121 as the axis, switching from 3 to 6.

[0062] Furthermore, if Figure 6As shown, in this embodiment, the protrusion 111 is an arc-shaped ridge structure, and the area where the driving unit contacts the protrusion 111 is a trapezoidal step structure. This step structure contacts the top surface of the protrusion 111, preventing the rotor 122 from rotating about the pointer 121. A latch 1221 is provided between two adjacent time-reading faces. When the protrusion 112 enters the latch 1221, the protrusion 112 forces the rotor 122 to rotate as the pointer 121 rotates, thereby switching the currently displayed time-reading face.

[0063] In addition, if Figure 8 As shown, in this embodiment, the outer end of the pointer 121 is provided with a tip portion for pointing to the read partition 131. Figure 9 As shown, in this embodiment, the indicator 12 is further provided with a rack 123 for accommodating each pointer 121 and a cover 124 for connecting the rack 123 to the driving assembly 20 .

[0064] like Figure 4 and Figure 5 As shown, during operation, the indicator 12 rotates under the drive assembly 20. The pointer 121 on the indicator 12 is used to indicate the minute. When the pointer 121 enters the reading area 131 of the dial 13, the user reads the minute value of the current time according to the second mark pointed by the pointer 121. Each pointer 121 is equipped with a rotatable rotor 122. The user reads the current hour value according to the first mark on the reading surface displayed by the rotor 122 currently entering the reading area 131. Figure 6 As shown, each rotor 122 is provided with M time-reading faces. To ensure that the rotor 122 locks onto the correct first indicator during the rotation of the pointer 121, a protrusion 111 is provided on the switching disk 11 to abut the driving unit of the rotor 122, thereby locking the rotor 122 on the current time-reading face. Furthermore, to facilitate switching of the time-reading faces, a notch 1111 is provided on the protrusion 111, and a protrusion 112 is provided within the notch 1111. When the rotor 122 enters the notch 1111, it is freed from the restraint of the protrusion 111. The collision between the driving unit and the protrusion 112 forces the driving unit to rotate, thereby switching the current time-reading face.

[0065] The timing structure 100 utilizes a drive assembly 20 to rotate an indicator member 12 having a plurality of hands 121, and cooperates with a dial 13 having arc-shaped reading sections 131 to realize novel minute-value timing. A rotor 122 is provided on each hand 121, and is driven by a switching disk 11 to switch the current reading surface, realizing novel hour-value timing, breaking the limitations of traditional clock design and enhancing consumer appeal.

[0066] like Figures 10 to 15 As shown, it is a timing structure 100 according to the second embodiment of the present invention.

[0067] This embodiment differs from the first embodiment in that the rotation axis of the rotor 122 is perpendicular to the switching disk 11. The rotor 122 is sheet-shaped and has multiple blades, with each blade providing a time reading surface. This multi-blade rotor 122 allows the time reading surface to be switched by rotating the current blade, resulting in a novel structure.

[0068] like Figure 12 As shown in the figure, in this embodiment, one indicator 12 is provided with four pointers 121, each pointer 121 is provided with a rotor 122, and there are four rotors 122 in total, i.e., N=4. Accordingly, α=360° / 4=90°. One rotor 122 is provided with three blades, and each blade is provided with a time reading surface, i.e., M=3. Figure 14 As shown, in a counterclockwise direction, one rotor 122 is provided with Arabic numerals: 1, 5, 9; the next rotor 122 is provided with Arabic numerals: 2, 6, 10; the next rotor 122 is provided with Arabic numerals: 3, 7, 11; and the next rotor 122 is provided with Arabic numerals: 4, 8, 12.

[0069] For example, Figure 11 As shown, the time displayed by the timing structure 100 is currently 8:30. Figure 14 As shown, as the indicator 12 further rotates, when the rotor 122 with the Arabic numeral 8 leaves the reading partition 131, the rotor 122 with the Arabic numeral 9 enters the reading partition 131, and the rotor 122 with the Arabic numeral 6 is toggled by the protruding column 112 on the switching disk 11, and the rotor 122 rotates 120° around the pointer 121 as the axis, switching from 6 to 10.

[0070] Furthermore, if Figure 12 As shown, in this embodiment, the protrusion 111 is a tab structure, and the outer contour of the rotor 122 serves as the driving portion. The outer contour of the rotor 122 abuts the outer periphery of the protrusion 111, preventing the rotor 122 from rotating about the pointer 121. Each blade has a latch 1221 at its base. When the protrusion 112 enters the latch 1221, the protrusion 112 forces the rotor 122 to rotate as the pointer 121 rotates, thereby switching the currently displayed time display.

[0071] In addition, if Figure 14 As shown, in this embodiment, the outer end of each blade is provided with a tip portion for pointing to the reading partition 131 .

[0072] Other structures of this embodiment are similar to or the same as those of the first embodiment, and can also achieve the beneficial effects of the first embodiment.

[0073] like Figure 16 and Figure 17 As shown, the present invention also provides a header.

[0074] The watch head includes the timing structure 100 of the first embodiment.

[0075] In addition, in this embodiment, the watch head further comprises: a watch case 30 for accommodating the time reading component 10 and the driving component 20. The time reading component 10 and the driving component 20 are not described here.

[0076] like Figure 16 and Figure 17 As shown, the watch case 30 includes: a main body 31, a hook block 32 connected to the main body 31, a movably arranged stop block 33, and an elastic member 34 connected to the stop block 33. The hook block 32 is provided with a hook groove 321 facing the inner side of the main body 31. A movable gap is provided between the entrance of the hook groove 321 and the surface of the main body 31. The stop block 33 is located in the movable gap. The elastic member 34 provides elastic force for the stop block 33 to stay in the movable gap. When the watch strap is connected to the watch head, it is hooked to the watch strap through the hook block 32, and then the stop block 33 and the elastic member 34 prevent the watch strap from being separated from the hook part, thereby improving the efficiency of disassembly and assembly of the watch strap and the watch head.

[0077] The watch head is provided with a timing structure 100. This timing structure 100 utilizes a drive assembly 20 to drive an indicator 12 having multiple hands 121 to rotate. This timing structure cooperates with a dial 13 having arc-shaped reading sections 131 to achieve novel minute-value timing. A rotor 122 is provided on each hand 121. The rotor 122 is driven by a switching disk 11 to switch the current reading surface, achieving novel hour-value timing. This breaks the limitations of traditional watch design and enhances consumer appeal.

[0078] like Figure 18 As shown, the present invention also provides a clock.

[0079] The timepiece includes the watch head of the above embodiment.

[0080] In addition, the clock can also include: a wearable piece 200 detachably connected to the watch head. The wearable piece 200 includes: a watch strap, a lanyard, and one or more of a fixing seat. Depending on the selected wearable piece 200, the clock can be embodied in the form of a watch, a pocket watch, a wall clock, etc.

[0081] For example, in this embodiment, the wearing member 200 is a watch band, so that the timepiece forms a watch structure. In addition, the end of the watch band is provided with a connecting shaft 201 for hooking the hook block 32 mentioned above.

[0082] The above-mentioned clock is provided with a watch head, and the watch head is provided with a timing structure 100. The timing structure 100 uses a driving assembly 20 to drive an indicator 12 having multiple hands 121 to rotate, and cooperates with a dial 13 having arc-shaped reading sections 131 to realize a novel minute value timing. A rotor 122 is provided on each hand 121, and the rotor 122 is driven by a switching disk 11 to switch the current reading surface, realizing a novel hour value timing, breaking the limitations of traditional clock design and increasing consumer appeal.

[0083] The technical features of the above embodiments can be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0084] The above embodiments merely represent preferred embodiments of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent. It should be noted that a person skilled in the art would be able to make various modifications and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the patent for this invention shall be determined by the appended claims.

Claims

1. A timing structure, characterized in that: include: Read-time component; The time reading assembly includes: a switching disk, an indicator member pivotally connected to the switching disk, and a dial arranged adjacent to the indicator member; the switching disk is provided with a protrusion and a protrusion; the protrusion is provided with a notch; the protrusion is located in the notch; the indicator member is provided with N pointers uniformly spaced on concentric circles, N is an integer, and N≥2; each pointer is provided with a rotatable rotor; the rotor is provided with M time reading faces, M is an integer, and M≥2; each time reading face is provided with a first mark; the rotor is further provided with a driving unit; when the driving unit abuts the protrusion, it is positioned by the protrusion, thereby preventing the rotor from rotating to lock the time reading face; when the driving unit enters the notch, it is moved by the protrusion, thereby driving the rotor to rotate to switch the time reading face; the dial is provided with an arc-shaped reading partition and a second mark arranged along the extension direction of the reading partition; the reading partition is located on the motion trajectory of each pointer; the angle formed by the line connecting the two ends of the reading partition and the rotation center of the pointer is α, and α=360° / N; and A driving assembly is connected to the time reading assembly; the driving assembly is connected to the indicator to drive each of the pointers to achieve 360° rotation.

2. The timing structure according to claim 1, characterized in that: The rotating shaft of the rotor is arranged parallel to the switching disk, and the rotor is a polyhedron and is provided with multiple display surfaces, and one display surface corresponds to one time reading surface.

3. The timing structure according to claim 1, characterized in that: The rotating shaft of the rotor is arranged perpendicular to the switching disk, and the rotor is sheet-shaped and provided with a plurality of blades, and one of the blades is provided with a time reading surface.

4. The timing structure according to claim 1, characterized in that The product of N and M is 12 or 24.

5. The timing structure according to claim 1, characterized in that: The second identification includes at least one of a scale and a number.

6. The timing structure according to claim 1, characterized in that The driving part is provided with a bayonet for the protruding column to extend into.

7. A meter head, characterized in that: The timing structure comprises the timing structure according to any one of claims 1 to 6.

8. The meter head according to claim 7, characterized in that: Also includes: A watch case that accommodates the time-reading component and the driving component, the watch case comprising: a main body, a hook block connected to the main body, a movably arranged stop block, and an elastic member connected to the stop block; the hook block is provided with a hook groove facing the inner side of the main body; a movable gap is provided between the entrance of the hook groove and the surface of the main body; the stop block is located at the movable gap; the elastic member provides elastic force for the stop block to stay at the movable gap.

9. A timepiece, characterized in that: The instrument comprises the header described in any one of claims 7 to 8.

10. The timepiece according to claim 9, characterized in that include: A wearing piece detachably connected to the watch head; The wearing piece includes one or more of a watch strap, a lanyard, and a fixing seat.

Citation Information

Patent Citations

  • Timing structure, watch head and clock

    CN215813745U