1. Field of the Invention
The present invention relates to an improved structure of a perpetual calendar clock and, particularly, to an improved structure of a perpetual calendar clock in which a rotatory wheel set, flexible circuit boards, and driving apparatuses are used to generate intermittent signals and clock-control signals for driving a date wheel, a month wheel, and a day-of-the-week wheel to turn.
2. Description of the Prior Art
A common structure of a mechanical perpetual calendar usually requires numerous mechanically controlled components for connection and for control so that the date, the day of the week and the month displayed can be altered automatically. Such a structure has a disadvantageous large volume; also, the cost in its production cannot be lowered effectively. The perpetual calendar is thus under great competition pressure in the industry.
An improved structure of a conventional perpetual calendar clock comprises an outer case, rotatory wheels, a driving apparatus, a clock-control unit, and a battery set for supplying power. The outer case has a date window, a month window, a day-of-the-week window, and a clock window formed on the surface thereof. The outer case is hollow and contains the rotatory wheels, the driving apparatus, the clock-control unit and the battery set, which are all fixed within the outer case. The clock-control unit can trigger a signal for controlling the actuation of the driving apparatus. The driving apparatus is linked to a day-of-the-week wheel, a date wheel and a month wheel, which are circulated in sequence, and uses a contact surface of a substrate disposed therein for automatic alternation between those solar months without operation done by hand. The driving apparatus has a motor used for driving a gear set and the gear set controls a brake handle so that a brake switch generates signals. The driving apparatus comprises heavy means which occupy the most space and tend to have a linkage failure.
Since the convention has such drawbacks as described above, it is hardly a good one. An improvement is required urgently.
In view of the above difficulties associated with the conventional structure, the present inventor, through a long-term study and practice, has set about the work of improvement and innovation that provides the present improved structure of a perpetual calendar clock.
The primary objective of this invention is to provide an improved structure of a perpetual calendar clock that uses signals from a clock-control unit to activate driving apparatuses and, further, to control the driving apparatuses so that a date wheel, a month wheel, and a day-of-the-week wheel are turned and a date tab, a month tab, and a day-of-the-week tab are properly displayed.
Another objective of this invention is to provide an improved structure of a perpetual calendar clock that has one driving apparatus disposed within each wheel of a rotatory wheel set and cooperated with the circuit and touch surface of one flexible circuit board, so that the day-of-the-week wheel, the date wheel, and the month wheel of the rotatory wheel set are driven to rotate, wherein as a touch point of the driving apparatus contacts the buses on the flexible circuit board, a signal is generated to activate the driving apparatus within another wheel so as to activate the day-of-the-week wheel, the date wheel, and the month wheel in sequential circulation.
An improved structure of a perpetual calendar clock that can fulfill the inventive objectives comprises an outer case, a rotatory wheel set, three driving apparatuses, and a clock-control unit. The outer case has a month window, a date window, a day-of-the-week window, and a clock window formed on the surface thereof. The outer case is hollow and contains the rotatory wheel set, the driving apparatuses, the clock-control unit, and a battery set, which are all fixed within the outer case. The rotatory wheel set consists of a month wheel, a date wheel, and a day-of-the-week wheel, which, respectively, are aligned to the month window, the date window, and the day-of-the-week window of the outer case. Also, the clock-control unit is aligned to the clock window. Upon one cycle of rotation of an hour hand of the clock-control unit, a signal is sent for controlling and actuating deflecting rods, micro switches, and touch switches of the driving apparatuses. As the month wheel, the date wheel and the day-of-the-week wheel begin to rotate under control of the deflecting rods of the driving apparatuses, buses disposed on a flexible circuit board that are annularly disposed within one of the wheels can contact the touch switch of the driving apparatus associated with the wheel and then another signal is sent to another one wheel. Thus, the month wheel, the date wheel and the day-of-the-week wheel are actuated in sequential circulation. By means of those elements described above, the present invention provides the improved structure of a perpetual calendar clock. Through the cyclic actuation of the driving apparatuses, step control signals are generated so as to turn the month wheel, the date wheel and the day-of-the-week wheel, fulfilling the purpose for tab display of the month, the date and the day of the week.
These features and advantages of the present invention will be fully understood and appreciated from the following detailed description of the accompanying drawings.
Refer to
An outer case 1, referring to
A rotatory wheel set 2, consists of a month wheel 21, a date wheel 22, and a day-of-the-week wheel 23. The wheels 21-23, respectively, have a month tab 211, a date tab 221, and a day-of-the-week tab 231 disposed annularly thereon. The wheels 21-23, respectively, are aligned to the month window 11, the date window 12, and the day-of-the-week window 13 of the outer case 1. The wheels 21-23, respectively, have annular flexible circuit boards 212-232 disposed therein. The wheels 21-23, respectively, have more than one bus 213-233 disposed annularly on the inner surface thereof. The wheels 21-23, respectively, have inner ratchet wheels 214-234 disposed at one edge thereof. The wheels 21-23, respectively, have more than one bump 215-235 disposed on the inner surface of the edge other than that where the inner ratchet wheels 214-234 are disposed. In the month wheel 21, the month tab 211 consists twelve pages; both the number of the ratchets of the inner ratchet wheel 214 and the number of the bumps 215 are equal to this number of pages of the month tab 211. In the date wheel 22, the date tab 221 consists thirty-one pages; both the number of the ratchets of the inner ratchet wheel 224 and the number of the bumps 225 are equal to this number of pages of the date tab 221. In the day-of-the-week wheel 23, the day-of-the-week tab 231 consists fourteen pages, of which two pages are used for each one day to display the AM time as well as the day of the week and to display the PM time as well as the day of the week; also, both the number of the ratchets of the inner ratchet wheel 234 and the number of the bumps 235 are equal to the number of pages of the day-of-the-week tab 231. The month wheel 21, the date wheel 22 and the day-of-the-week wheel 23 of the rotatory wheel set 2, respectively, are aligned to the month window 11, the date window 12, and the day-of-the-week window 13 on the surface of the outer case 1; a clock control unit 4 is aligned to the clock window 14 on the surface of the outer case 1.
Three driving apparatuses 3 (referring to
A clock-control unit 4 is fixed at the clock window 14 of the outer case 1. The clock-control unit 4 consists of an hour hand 41, a rotatory touch piece 42, and a control substrate 43. Through the rotation of the hour hand 41, the rotatory touch piece 42 is driven so as to touch a contact surface of the control substrate 43. Upon one cycle of rotation of the hour hand 41 per twelve hours, a signal is triggered for controlling and actuating the driving apparatus 3.
By means of those elements described above, which can be combined within the outer case 1, the present invention provides the improved structure of a perpetual calendar clock as shown in
The month wheel 21, the date wheel 22 and the day-of-the-week wheel 23, cooperating with the respective driving apparatuses 3 disposed therein, can rotate by constant degrees. A detailed description is set forth as follows, with regard to the flexible circuit boards 212-232 within the wheels 21-23.
For the month wheel 21, there are three sets of buses 213 associated with the flexible circuit board 212. Each bus 213 of the first set has a contact surface contacting a negative electrode; of the second set, the bus 213 having a contact surface corresponds to February; of the third set, the bus 213 having a contact surface corresponds to one of April, June, September and November; of the second and the third sets, the bus 213 having no contact surface corresponds to one of January, March, May, July, August, October and December.
For the date wheels 22, there are five sets of buses 223 associated with the flexible circuit board 222. Each bus 223 of the first set has a contact surface contacting a negative electrode; of the second set, the bus 223 having a contact surface corresponds to one of the dates ranging from 1st to 28th, and the bus 223 having no contact surface corresponds to one of the dates 1st and those ranging from 29th to 31st; of the third set, the bus 223 having a contact surface corresponds to the date 1st, and the bus 223 having no contact surface corresponds to one of the dates ranging from 2nd to 31st; of the fourth set, the bus 223 having a contact surface corresponds to the date 31 st, and the bus 223 having no contact surface corresponds to one of the dates ranging from 1st to 30th; of the fifth set, the bus 223 having a contact surface corresponds to the dates ranging from 29th to 31st, and the bus 223 having no contact surface corresponds to one of the dates ranging from 1st to 28th.
For the day-of the-week wheel 23, there are three sets of buses 233 associated with the flexible circuit board 232. Each bus 233 of the first set has a contact surface contacting a negative electrode; of the second and the third sets, the bus 233 having a contact surface corresponds to the day of the week ranging from Sunday to Saturday with AM time, while the bus 233 having no contact surface corresponds to the day of the week ranging from Sunday to Saturday with PM time.
Thus, upon one cycle of rotation of the hour hand 41 of the clock control unit 4 per twelve hours, a signal is triggered for actuating the driving apparatus 3 within the day-of the-week wheel 23 and then the deflecting rod 33 of the driving apparatus 3 within the day-of-the-week wheel 23 can deflect the inner ratchet wheel 234 at one side edge of the day-of the-week wheel 23, so that the day-of the-week tab 231 turns to the next page and displays the day of the week wheel with, say, the AM time. Upon another one cycle of rotation of the hour hand 41 per twelve hours, a signal is triggered for actuating the driving apparatus 3 within the day-of the-week wheel 23 and then the deflecting rod 33 of the driving apparatus 3 within the day-of-the-week wheel 23 can deflect the inner ratchet wheel 234 at one side edge of the day-of the-week wheel 23, so that the day-of the-week tab 231 turns to the next page and displays the day of the week wheel with, say, the PM time, a signal is triggered for actuating the driving apparatus 3 within the date wheel 22 and then the deflecting rod 33 of the driving apparatus 3 within the date wheel 22 can deflect the inner ratchet wheel 224 at one side edge of the date wheel 22, so that the date tab 221 turns to the next page and displays the proper date. Once the date wheel 22 turns the date tab 221 for thirty-one times, a signal is triggered for actuating the driving apparatus 3 within the month wheel 21 and then the deflecting rod 33 of the driving apparatus 3 within the month wheel 21 can deflect the inner ratchet wheel 214 at one side edge of the month wheel 21, so that the month tab 211 turns to the next page and displays the proper month. Yet, for February that amounts to twenty-eight days, the date tab 221 can turn to the date 1st after the date 28th, using the contact surfaces of the buses 223 of the flexible circuit board 222 of the date wheel 22 since the contact surfaces are over the three dates 29th, 30th and 31 st.
In a leap year, a downtime of one day may be taken in February that amounts to twenty-nine days, for people to adjust the tabs by hand.
The improved structure of a perpetual calendar clock provided by the present invention, as compared with conventional technologies, has the following advantages.
1. The present invention provides an improved structure of a perpetual calendar clock that uses touch switches for the date wheel, the month wheel, and the day-of-the-week wheel associated with the driving apparatuses so to generate step control signals for controlling the turns tabs to display the proper date, month and day of the week.
2. The present invention provides an improved structure of a perpetual calendar clock that is integrated effectively for implementation so that the entire structure becomes smaller and the product can be made lighter and simpler and thus more competitive.
3. The present invention provides an improved structure of a perpetual calendar clock that has less mechanical transmission parts so that the failure rate is lowered.
Many changes and modifications in the above described embodiment of the invention can, of course, be carried out without departing from the scope thereof. Accordingly, to promote the progress in science and the useful arts, the invention is disclosed and is intended to be limited only by the scope of the appended claims.
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