EP0347251A2 - Montre électronique analogique multifonctionnelle - Google Patents

Montre électronique analogique multifonctionnelle Download PDF

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Publication number
EP0347251A2
EP0347251A2 EP89306146A EP89306146A EP0347251A2 EP 0347251 A2 EP0347251 A2 EP 0347251A2 EP 89306146 A EP89306146 A EP 89306146A EP 89306146 A EP89306146 A EP 89306146A EP 0347251 A2 EP0347251 A2 EP 0347251A2
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EP
European Patent Office
Prior art keywords
watch
hand
indicating
time
hands
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP89306146A
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German (de)
English (en)
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EP0347251B1 (fr
EP0347251A3 (fr
Inventor
Kenji C/O Seiko Epson Corporation Sakamoto
Akihiko C/O Seiko Epson Corporation Maruyama
Tatsuo C/O Seiko Epson Corporation Moriya
Hiroshi C/O Seiko Epson Corporation Yabe
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Seiko Epson Corp
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Seiko Epson Corp
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Publication of EP0347251A3 publication Critical patent/EP0347251A3/fr
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    • GPHYSICS
    • G04HOROLOGY
    • G04GELECTRONIC TIME-PIECES
    • G04G9/00Visual time or date indication means
    • GPHYSICS
    • G04HOROLOGY
    • G04CELECTROMECHANICAL CLOCKS OR WATCHES
    • G04C3/00Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means
    • G04C3/14Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means incorporating a stepping motor
    • G04C3/146Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means incorporating a stepping motor incorporating two or more stepping motors or rotors
    • GPHYSICS
    • G04HOROLOGY
    • G04CELECTROMECHANICAL CLOCKS OR WATCHES
    • G04C3/00Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means
    • G04C3/008Mounting, assembling of components
    • GPHYSICS
    • G04HOROLOGY
    • G04CELECTROMECHANICAL CLOCKS OR WATCHES
    • G04C3/00Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means
    • G04C3/14Electromechanical clocks or watches independent of other time-pieces and in which the movement is maintained by electric means incorporating a stepping motor
    • GPHYSICS
    • G04HOROLOGY
    • G04CELECTROMECHANICAL CLOCKS OR WATCHES
    • G04C9/00Electrically-actuated devices for setting the time-indicating means

Definitions

  • This invention relates to analog electronic watches having an additional function indication, such as a chronograph indication, a timer indication or an alarm indication.
  • function indications such as chronograph, alarm, timer or the like
  • a small second hand, alarm hour and minute hands and other hands are used in addition to ordinary second, hour and minute hands, and a small window for exclusive use is provided at an arbitrary eccentric position on the face such as, for example, along the position of the hour hand at 6 o'clock or 9 o'clock, thereby indicating a function such as alarm time or the like.
  • An auxiliary stem and a button for switching function modes are used in addition to the ordinary stem.
  • Such analog electronic watches are exemplified and so disclosed in Japanese Laid-Open Patent Application No. 286783/1986, Japanese Laid-Open Patent Application No. 294388/1986, and Japanese Laid-Open Utility Model Application No. 26191/1986.
  • the prior art multi-­functional electronic watch involves extra die cost and working cost when there is a change in parts, mask cost for an IC chip change and further a cost for design change, thus resulting in high cost for such a multi-­functional electronic watch.
  • redundancy allowed in the disposition of parts and in IC chip specification so as to satisfy various requirements by a single model of electronic watch inevitably lead to a large sized construction and an increase in cost of the watch.
  • the present invention seeks to remove this defect and others, and its object is to provide a multi-­functional electronic watch, effective in lessening the load on design and manufacture, causing no requirement for increased cost and size, satisfying diverse market requirements easily and ensuring design efficiency.
  • a multi-functional analog watch having a step motor for driving hands indicating ordinary time, at least one or more step motor for driving means to indicate at least one additional function, a gear train between the motor and the hands for indicating ordinary time, and at least one more gear train between a step motor and means for indicating the additional function, characterised in that the ordinary time is indicated by hands rotatable about a central axis, and that the means for indicating at least one additional function comprises at least one hand rotatable about an axis eccentric to the central axis.
  • the invention includes a multi-functional analog electronic watch having a step motor for indicating ordinary time and at least one or more step motors for indicating additional functions, a gear train for indicating ordinary time and at least one or more gear trains for indicating the additional functions, and a micro-computer including a program memory, ordinary time and the additional functions being indicated at arbitrary positions of at least one or more of a movement centre position, a position on an axis in the 12 o'clock direction, a position on an axis in the 3 o'clock direction, a position on an axis in the 6 o'clock direction, and a position on an axis in the 9 o'clock direction according to a number and disposition of the additional function indicating step motors, and disposition of the ordinary time indicating gear train and the additional function indicating gear trains, and actuating signals being generated from the micro-computer in accordance with software in the program memory, to operate the indications at corres­ponding positions.
  • the invention includes a multi-functional electronic watch having a step motor for indicating ordinary time, at least one or more step motors for indicating additional functions, a gear train for indicating ordinary time and at least one or more gear trains for indicating the additional functions, and a micro-computer including a program memory, ordinary time and the additional functions being indicated, respectively, at a centre position and at one of a plurality of arbitrary positions eccentric to the centre position according to the number and disposition of the step motors for indicating additional functions and of the gear train for indicating ordinary time and the gear trains for indicating the additional functions.
  • the micro-computer may generate an actuating signal as instructed by software in the program memory, thereby operating correspondingly the ordinary time indicating and additional function indicating positions.
  • the invention further includes a multi-functional electronic watch having a plurality of step motors, alarm means and a plurality of external operation means, a first step motor for driving hour/minute hands for indicating ordinary time which are disposed one upon the other at the centre of a watch, and a small second hand for indicating seconds of ordinary time which is disposed at a position eccentric to the centre of the watch, a second step motor for driving a chronograph second hand disposed over the hour/minute hands at the centre of the watch, a third step motor for driving a chronograph minute hand disposed at a position eccentric to the centre of the watch, a fourth step motor for driving alarm hour/minute hands for indicating an alarm time which are disposed at a position eccentric to the centre of the watch, a first stem disposed on an outer peripheral portion of the watch, a first switch operating button and a second switch operating button disposed on an outer peripheral portion adjacent the chronograph minute hand indication, a second stem and a third switch operating button disposed on an outer peripheral portion adjacent the alarm time indication.
  • Minutes and seconds of the timer may be indicated on the same hands as the chronograph seconds and minutes, respectively, by reversing the second step motor and the third step motor.
  • One minute of timer residual time may be indicated by increasing the speed of the chronograph second hand disposed at the centre of the watch and stopping the chronograph minute hand.
  • the chronograph second hand disposed at the centre of the watch may vary in drive spacing according to an indication function.
  • the chronograph second may be indicated by a five step drive per second of the chronograph second hand disposed at the centre of the watch.
  • the external operation member for correcting the alarm time indicated, and the external operation member for correcting the ordinary time are preferably disposed at different positions.
  • the first stem may be the external operation member having a correcting function of basic time keeping.
  • the second stem may have a plural stage of pull positions and different operating functions according to the pull position selected.
  • a CMOS-IC chip 20 ( Figure 1) is a one chip micro-­computer for an analog electronic watch with a program memory 202, a data memory 204, four motor drivers 213, 214, 215 and 216, a motor drive controlling circuit 212, a sound generator 210, an interrupt control circuit 218 and other circuits integrated on one chip around a core CPU 201.
  • the core CPU 201 comprises an ALU, a register for arithmetic operations, an address controlling register, a stack pointer, an instruction register, an instruction de-coder and other functional circuits, and is connected to peripheral circuits through an address bus adbus and a data bus dbus according to a memory-­mapped I/O system.
  • the program memory 202 consists of a mask read only memory ROM of 2,048 words x 12 bits, storing software for operating the IC, and has an address de­coder 203.
  • the data memory 204 consists of a random access memory RAM of 112 words x 4 bits which is used for various timers, counters for storing hand position of each pointer and others, and has an address de-coder 205.
  • An oscillator circuit 206 oscillates at 32,768 Hz with a tuning fork crystal resonator connected to terminals Xin and Xout as an oscillation source.
  • a first divider circuit 208 divides the 32,768 Hz signal 0 ⁇ 32k generated from the oscillator circuit 206 in sequence and generates a 1 kHz signal 0 ⁇ 1k, a 512 Hz signal 0 ⁇ 512, a 256 Hz signal 0 ⁇ 256, and a 16 Hz signal 0 ⁇ 16.
  • An oscillation stop detection circuit 207 is connected to receive the signal 0 ⁇ 1k and, when a stop of oscillation of the oscillator circuit 206 is detected, applies a re-set to the system.
  • a second divider circuit 209 divides the signal 0 ⁇ 16 from the first divider circuit 208 in sequence into 8 Hz, 4Hz, 2 Hz and 1 Hz signals, which can be read into the core CPU 201 by the software.
  • the 16 Hz signal 0 ⁇ 16, 8 Hz signal 0 ⁇ 8, and 1 Hz signal 0 ⁇ 1 are used as a time interrupt ( Tint ) for processing such as time keeping or the like.
  • the time interrupt ( Tint ) is generated at the fall of each signal.
  • Read, re-set and mask of each interrupt source are all effected by the software, and re-set and mask are read individually at every source.
  • the sound generator 210 can generate a buzzer driving signal to a terminal AL. Driving frequency, ON/OFF operation and sound pattern of the buzzer driving signal can be controlled by the software.
  • the chronograph circuit 211 ( Figure 2) provides a 1/100 sec chronograph, though the drive of the 1/100 sec hand is controlled by hardware to lighten the load on the software.
  • the circuit 211 includes a clock forming circuit 2111 which forms 100 Hz signal 0 ⁇ 100 working as a reference clock for chronography from 512 Hz signal 0 ⁇ 512, and a clock pulse Pfc 100 Hz and 3.91 ms in pulse width for forming 1/100 sec hand driving pulse Pf .
  • a 50-proceeding chronograph counter 2112 counts signals 0 ⁇ 100 passing through an AND gate 2119 and is re-set on a chronograph re-set signal Rcg generated by a control signal forming circuit 2118.
  • a register 2113 holds the contents of the chronograph counter 2112, when a split indication command signal Sp is generated by the control signal forming circuit 2118.
  • a 50-proceeding hand position counter 2114 stores 1/100 sec hand indication position of the 1/100 sec hand by counting 1/100 sec hand driving pulses Pf from a 1/100 sec hand drive controlling circuit 2117 and is re-set by a signal Rhnd from the control signal forming circuit 2118 to store a zero position on the 1/100 sec hand.
  • An identity detection circuit 2115 compares the contents of the register 2113 and of the hand position counter 2114 and generates an identity signal Dty when identity is detected.
  • a zero position detection circuit 2116 generates a zero detection signal Dt0 ⁇ upon detection of zero in the hand position counter 2114.
  • the control signal forming circuit 2118 receives instructions over the bus BUS and forms and generates a start signal St , a chronograph re-set signal Rcg , a split signal Sp , a drive signal Drv and the zero position signal Rhnd .
  • the start signal St is passed to AND gate 2119 and to circuit 2117 to command a measurement start or stop according to a command of the software.
  • the split signal Sp is passed to register 2113 and circuit 2117 to command a split indication or split indication release.
  • the chronograph re-set signal Rcg is passed to counter 2112 to command a re-set of measurement.
  • the zero position signal Rhnd is passed to counter 2114 to store a zero position of the 1/100 sec hand.
  • the drive signal Drv is passed to circuit 2117 to command operation or inoperation of the 1/100 sec hand.
  • the 1/100 sec hand drive controlling circuit 2117 receives clock pulses Pfc from circuit 2111 and passes clock pulses Pfc when the contents of the chronograph counter 2112 and the hand position counter 2114 are identical in the state when the 1/100 sec hand operates and also during measuring, that is when signals Dty and Drv or St are up.
  • the circuit 2117 also passes clock pulses Pf when the contents of the register 2113 and the hand position counter 2114 are not identical at the time of split indication and also stop of measuring, that is when signal Dty is down and signal Sp is up or signal St is down.
  • the circuit 2117 also passes clock pulses Pf when the contents of the hand position counter 2114 is other than zero in the state when the 1/100 sec hand is not operating and also during measuring, that is when signal Dt0 ⁇ is down and signal Drv is down or signal St is up.
  • the clock pulses Pf are supplied to motor driver 215 ( Figure 1) so that the 1/100 sec hand is ready for driving only by a step motor C.
  • a chronograph interrupt CGint ( Figure 2) is generated on a 5 Hz carry signal 0 ⁇ 5 coming from the chronograph counter 2112, and a measurement after 1/5 seconds is ready for processing by the software.
  • the motor drive controlling circuit 212 ( Figure 3) generates motor driving pulses for each motor driver according to commands from the software.
  • the circuit 212 includes a motor drive system controlling circuit 219 which stores a drive system for each motor and according to commands from the software forms and generates control signals, namely, signal Sa for selecting a forward drive I, signal Sb for selecting a forward drive II, signal Sc for selecting a reverse drive I, signal Sd for selecting a reverse drive II, and signal Se for selecting a forward corrective drive.
  • a motor drive system controlling circuit 219 which stores a drive system for each motor and according to commands from the software forms and generates control signals, namely, signal Sa for selecting a forward drive I, signal Sb for selecting a forward drive II, signal Sc for selecting a reverse drive I, signal Sd for selecting a reverse drive II, and signal Se for selecting a forward corrective drive.
  • the circuit 212 also includes a drive reference signal forming circuit 220 ( Figure 4) for forming and generating a drive reference clock signal Cdrv according to commands from the software over the bus BUS.
  • the circuit 220 includes a 3-bit register 2201 which stores data supplied over the data bus dbus for deciding the frequency of the driving reference clock signal Cdrv according to the output signal of an address de-coder 2202 receiving addresses over the address bus adbus from the software.
  • the circuit 220 also includes a 3-bit register 2203 which is loaded with the data in the register 2201 at the fall of the driving reference clock signal Cdrv generated by a programmable dividing circuit 2205.
  • the circuit 220 also includes a de-coder 2204 generating numerals 2, 3, 4, 5, 6, 8, 10 and 16 in binary form corresponding to data stored in the register 2203.
  • the programmable dividing circuit 2205 divides the 256 Hz signal 0 ⁇ 256 generated from the first divider circuit 208 by n , being the numeral generated by the de-coder 204.
  • the drive reference signal forming circuit 220 is capable of selecting the frequency of the drive reference clock signal Cdrv from among eight kinds, namely, 128 Hz., 85.3 Hz, 64 Hz, 51.2 Hz, 42.7 Hz, 32 Hz, 25.6 Hz and 16 Hz.
  • the frequency of the drive reference clock signal Cdrv is changed at the point in time when data is loaded into the register 2203, and the data is loaded into the register 2203 synchronously with the drive reference clock signal Cdrv . Therefore an interval of 1/ fa will be secured when the frequency fa is switched to the next frequency fb .
  • the circuit 212 also includes four motor clock controlling circuits 226, 227, 228, 229 which control driving pulse numbers of step motor A, step motor B, step motor C, step motor D, respectively, according to commands from the software. As the circuits are identical, only one circuit 226 ( Figure 9) will be described in detail.
  • the circuit 226 includes a 4-bit register 2261 which stores a driving pulse number commanded by the software.
  • a 4-bit up-counter 2262 counts drive reference clock signals Cdrv passing through AND gate 2274, and is re-set by a control signal.
  • a control signal forming circuit 2272 receives instructions over the address bus adbus , and forms and generates a signal Sset for setting a driving pulse number on the data bus dbus in the register 2261 according to commands from the software, a signal Sread for reading data of the up-counter 2262, and a signal Sreset for re-setting the register 2261 and the up-­counter 2262.
  • the signal Sread is supplied to an inverter 2273 whose output is to the AND gate 2274, so that the driving reference clock signals Cdrv are prohibited from passing the AND gate 2274.
  • a two-way switch 2271 is turned to ON when the signal Sread is generated, thus applying data of the up counter 2262 onto the databus dbus . In this case, the register 2261 and up-counter 2262 must be re-set after reading by the signal Sreset .
  • An identity detection circuit 2263 compares the contents of the register 2261 and the up-counter 2262 and generates an identity signal Dy when the contents are identical.
  • An all-1 detection circuit 2264 generating an all-1 detection signal D15 when the contents of the register 2261 are all 1s.
  • a motor driving pulse forming trigger signal generation circuit 2265 comprises inverters 2266 and 2267, a 3-input AND gate 2268, a 2-input AND gate 2269 and a 2-input OR gate 2270.
  • the circuit 2265 receives clock signals Cdrv supplied as inputs to AND gates 2268 and 2269, the identity signal Dy as input to inverter 2266 whose output is one input of AND gate 2268, and the all-1 detection signal D15 as input to AND gate 2269 and as input to inverter 2267 whose output is one input to AND gate 2268.
  • the outputs of AND gates 2268 and 2269 are ORed in OR gate 2270 whose output is a motor trigger signal Tr .
  • a motor control interrupt Mint is generated, which interrupt can be read by the software, and can be re-set after reading.
  • the circuit 212 ( Figure 3) includes four trigger forming circuits 230, 231, 232 and 233, each receiving a signal Sa , Sb , Sc , Sd or Se from circuit 219 and passing a trigger signal Tr generated from the corres­ponding motor clock controlling circuit as trigger signals Sat , Sbt , Sct , Sdt , Set for drive pulse controlling circuits 221, 222, 223, 224 and 225 to form motor driving pulses Pa, Pb, Pc, Pd, Pe correspondingly to drive system control signals Sa , Sb , Sc , Sd , Se generated from the motor drive system controlling circuit 219.
  • the frequency of the driving reference clock Cdrv is limited to below 64 Hz.
  • the first drive pulse forming circuit 221 forms and generates the driving pulse Pa for forward drive I ( Figure 5).
  • the second drive pulse forming circuit 222 forms and generates the driving pulse Pb for forward drive II ( Figure 6).
  • the third drive pulse forming circuit 223 forms and generates the driving pulse Pc for the reverse drive I ( Figure 7).
  • the fourth drive pulse forming circuit 224 forms and generates the driving pulse Pd for reverse drive II ( Figure 8).
  • the fifth drive pulse forming circuit 225 forms and generates a pulse group Pe for corrective drive, comprising ordinary driving pulse Pl, correction driving pulse P2, pulse P3 at the time of AC magnetic field detection, AC magnetic field detecting pulse SP1, rotation detecting pulse SP2, as disclosed in Japanese Laid-Open Patent No. 260883/1985.
  • motor driving pulse selection circuits 234, 235, 236 and 237 select and generate driving pulses PA, PB, PC and PD, respectively, necessary for a step motor from among the motor driving pulses Pa, Pb, Pc, Pd, Pe generated by the driving pulse forming circuits 221 to 225, corresponding to the drive system control signals Sa , Sb , Sc , Sd or Se received.
  • the motor drivers 213, 214, 215 and 216 each drive a step motor by passing motor driving pulses PA, PB, PC and PD, respectively, coming from the motor driving pulse selection circuit 212 alternately to two output terminals of each motor driver.
  • An input control and re-set signal forming circuit 217 receives switched inputs at terminals A, B, C, D, RA1, RA2, RB1 and RB2, and inputs at terminals K, T and R.
  • the circuit 217 also receives data and instructions on bus BUS and any re-set input from the oscillation stop detection circuit 207.
  • the interrupt control circuit 218 operates to give precedence to each switch interrupt SWint , chronograph interrupt CGint , motor control interrupt Mint , storage before reading, and re-set R after reading, by issuing a signal INT.
  • a constant voltage circuit 200 provides a low constant voltage of about 1.2 V at terminal VS1 from a battery voltage of about 1.58 V impressed across terminals VDD and VSS. If there is a switched input at any one of the terminals A, B, C, D, RA1, RA2, RB1 or RB2, a switch interrupt signal SWint is generated. In this case, read and re-set of the interrupt source are carried out by the software. Then, each input terminal is pulled down to the level of terminal VSS representing data 0, where data 1 is represented by the level of terminal VDD.
  • the terminal K is that for switching specifi­cations, and two kinds of specifications can be selected according to the data on terminal K. Then, the data on the terminal K is read by the software.
  • the terminal R is that for system re-setting, and when the terminal R is at the level of terminal VDD, the core CPU 201, the divider circuits 208 and 209 and other peripheral circuits are initialised by the hardware.
  • the terminal T is that for converting the test modes, and by inputting a clock pulse to the terminal T with the terminal RA2 at the level of terminal VDD, sixteen test modes for testing peripheral circuits can be changed.
  • the main test mode comes in a forward drive I ensuring mode, a forward drive II ensuring mode, a reverse drive I ensuring mode, a reverse drive II ensuring mode, a corrective drive ensuring mode, a chronograph 1/100 sec ensuring mode and others, and in these ensuring modes, the motor driving pulse is generated automatically to each motor driving pulse output terminal.
  • the system can be re-set by connecting the terminal R to the level of terminal VDD and also by closing the switches concurrently otherwise.
  • the system will be re-set forcibly by hardware when A or C, and B and RA2 are closed concurrently, and also when one of A, B and C, and RA2 and RB2 are closed concurrently.
  • the CMOS-IC 20 has the following features for the drive of step motors, and is extremely effective as IC chip for multi-hand type multi-­functional analog electronic watches:-
  • FIG. 10 An embodiment of a multi-functional analog electronic watch ( Figure 10) according to the invention incorporates a CMOS-IC 20 as hereinbefore described.
  • the watch includes a base plate 1 formed of a plastics resin material, and a silver oxide battery 2 (SR927W).
  • SR927W silver oxide battery 2
  • the step motor 3 for indicating ordinary time comprises a magnetic core 3a of high permeability material, a coil block 3b consisting of a coil wound on the magnetic core 3a, a coil lead substrate having the opposite ends processed to be conductive and a coil frame, a stator 3c formed of high permeability material, and a rotor 4 consisting of a rotor magnet and a pinion 4a ( Figure 11).
  • a fifth wheel 5 has a gear 5a engaged with the pinion 4a, and a pinion 5b engaged by a gear 6a of a fourth wheel 6.
  • the wheel 6 has a pinion 6b engaged by a gear 7a of a third wheel 7 which also has a pinion 7b engaged by a gear 8a of a minute wheel 8.
  • the wheel 8 has a pinion 8b engaged by a gear 9a of an intermediate wheel 9 having a pinion 9b engaged by a gear 10a of an hour wheel 10.
  • the minute wheel 8 and hour wheel 10 have their axes disposed centrally of the watch face and have noses projecting therethrough carrying minute and hour hands 11 and 12, respectively.
  • the various pinions, wheels and gears of the gear train are mounted on bearings in the base plate 1 and a spaced plate 53 ( Figures 11 to 15).
  • the plate 53 ( Figure 15) is recessed to receive a circuit substrate 54 held in place by a plate 52.
  • the reduction ratio between the rotor pinion 4b and the minute wheel gear 8a is 1/1800, so that the minute wheel 8 and hand 11 rotate once for every 1800 rotations of the rotor 4. If the rotor 4 rotates once in two seconds, that produces a single revolution of the wheel 8 per 3600 seconds or 60 minutes or one hour.
  • the reduction ratio between the minute pinion 8b and the hour wheel gear 10a is 1/12, so that with the rotor 4 rotating once in two seconds, the hour wheel rotates once in twelve hours.
  • the pinion 5b of the fifth wheel 5 ( Figure 12) is also engaged by a gear 13a of a small second wheel 13 whose axis of rotation is disposed eccentrically of the watch face and along the position of the hour hand at 9 o'clock ( Figure 17).
  • the wheel 13 has a nose projecting through the watch face 41 ( Figure 12) and carrying a small second hand 14.
  • the reduction gear ratio between the rotor pinion 4a and the small second gear 13a is 1/30, and thus the small second wheel 13 turns once per 60 seconds when the rotor 4 rotates once per two seconds, thereby indicating seconds of ordinary time.
  • the step motor 15 ( Figure 10) for chronograph second hand indication, comprises a magnetic core 15a of high permeability material, a coil block 15b consisting of a coil wound on the magnetic core 15a, a coil lead substrate with the opposite ends processed to be conductive and a coil frame, a stator 15c consisting of high permeability material, and a rotor 16 consisting of a rotor magnet and a rotor pinion 16a ( Figure 13).
  • the rotor pinion 16a is engaged by a gear 17a of a chronograph first intermediate wheel 17 having a pinion 17b engaged by a gear 18a of a chronograph second intermediate wheel 18.
  • the wheel 18 has a pinion 18b engaged by a gear 19a of a chronograph wheel 19.
  • the chronograph wheel 19 is disposed centrally of the watch and has a nose projecting through the noses of the minute and hour wheels 8 and 10, and carries a hand 21.
  • the wheel 19 is urged into engagement with the wheel 8 by a spring 65 ( Figures 11 to 15) pressing on a bearing portion projecting through the plate 53.
  • the reduction gear ratio between the rotor pinion 16a and the chronograph gear 19a is 1/150.
  • the rotor 16 rotates two and a half times or 900° per second on electrical signals from CMOS-IC 20, so that the chronograph wheel 19 rotates 6° per second, or five steps of 1.2°, thereby indicating 60 chronograph seconds per revolution.
  • the hand 21 functions as a timer set hand for timer setting at the same time in a timer operation described hereinafter.
  • the step motor 27 for minute indication of the chronograph and second indication of an elapsed time of the timer, comprises a magnetic core 27a of high permeability material, a coil block 27b consisting of a coil wound on the magnetic core 27a, a coil lead substrate with the opposite ends processed to be conductive and a coil frame, a stator 27c consisting of high permeability material, and a rotor 28 consisting of a rotor magnet and a rotor pinion 28a ( Figure 14).
  • the rotor pinion 28a is engaged by a gear 29a of a chronograph minute intermediate wheel 29 having a pinion 29b engaged by a gear 30a of a chronograph minute wheel 30.
  • the chronograph minute wheel 30 is disposed to rotate on an axis eccentric to the watch face and along the position of the hour hand at 12 o'clock. A minute indication of the chronograph and a second indication of an elapsed time of the timer are made on that axis.
  • the reduction gear ratio between the rotor pinion 28a and the chronograph minute gear 30a is 1/30.
  • the rotor 28 rotates once per minute on electrical signals from CMOS-IC 20.
  • the chronograph minute wheel 30 rotates 12° per minute, or once every half hour, thus realising a chronograph minute indication of 30 minutes.
  • the wheel 30 has a nose projecting through the watch face 41 and carrying a chronograph minute hand 31 for chronograph minute indication.
  • the rotor 28 rotates counter to that of chronograph mode once every two seconds on electrical signals from CMOS-IC 20.
  • the chronograph minute hand 31 rotates once counter-­clockwise every 60 seconds in steps of one second, thus indicating seconds of an elapsed time of the timer in a 60 seconds rotation.
  • the rotor 16 rotates two and a half times per minute counter to that of chronograph mode on electrical signals from the CMOS-­IC 20.
  • the central chronograph hand 21 turns counter clockwise at 6° per minute, thus indicating minutes of elapsed time of the timer.
  • the CG minute hand 31 driven by the step motor 27 acts as the 1/100 second hand referred to in connection with Figure 2, when controlled by software.
  • the watch has first and second manually operable stems 22 and 23 ( Figure 17) and three switch operating buttons 24, 25 and 26.
  • the second stem 23 is placed in a first state and the rotor 16 rotates through 180° in five steps whenever a button 25 is pushed once to close the switch connected to terminal B, so that the chronograph hand 31 turns 6° representing one minute.
  • a timer set time as long as 60 minutes can be shown.
  • the step motor 32 ( Figure 10) comprises a magnetic core 32a of high permeability material, a coil block 32b consisting of a coil wound on the magnetic core 32a, a coil lead substrate with the opposite ends processed to be conductive and a coil frame, a stator 32c consisting of high permeability material, and a rotor 33 consisting of a rotor magnet and a rotor pinion 33a (Figure 15).
  • the rotor pinion 33a is engaged by a gear 34a of an alarm intermediate wheel 34 having a pinion 34b engaged by a gear 35a of an alarm minute wheel 35.
  • the wheel 35 has a pinion 35b engaged by a gear 36a of a third alarm wheel 36 having a pinion 36b engaged by an alarm hour wheel 37.
  • the reduction ratio between the rotor pinion 33a and the alarm minute gear 35a is 1/30, and the reduction ratio between the alarm minute pinion 35b and the alarm hour wheel 37 is 1/12.
  • the wheels 35 and 37 rotate about a common axis disposed eccentrically of the watch face along the position of the hour hand at 6 o'clock.
  • the wheel 35 carries an alarm minute hand 38 and the wheel 37 carries an alarm hand 39.
  • the rotor 33 When the second stem 23 is in the first state to select a timer set or alarm mode, the rotor 33 is rotated through 180° on an electrical signal from the CMOS-IC 20 by pushing the button 26 once to close the switch connected to terminal C.
  • the alarm minute hand 38 turns through 6° representing 1 minute
  • the alarm hour hand 39 turns through 0.5°.
  • the alarm time can be set at minute intervals up to 12 hours. For this, if the button 26 is pressed continuously, the alarm minute hand 38 and the alarm hour hand 39 rotate rapidly, thus setting the alarm time in a short time. When the set alarm time and the ordinary time coincide, an alarm rings.
  • the rotor 33 is rotated in steps of 180° at every minute on an electrical signal from CMOS-IC 20.
  • the CMOS-IC 20 is connected with other electric elements as shown in the circuit diagram of Figure 16. These other elements include buzzer driving elements consisting of a boosting coil 55, a mini-mold, or small sized surface coupling, transistor 56 with protective diode and a piezo-electric buzzer 64 applied to a back cover of the watch case.
  • a 1uF chip capacitor 57 suppresses voltage fluctuations of the constant voltage circuit 200.
  • a micro tuning fork type crystal oscillator 58 is the source for the oscillator circuit 206 through terminals Xin and Xout .
  • a three position switch 46a can be closed on terminal RA1 or on terminal RA2 or be open.
  • a similar three position switch 59a can be closed on terminal RB1 or on terminal RB2 or be open.
  • the buttons 24, 25 and 26 are spring-biased and can only close their switches when pushed.
  • the switch 46a is on a yoke 46 engaged with the first stem 22, so as to close with terminal RA1 in a first state of the first stem 22, to close with terminal RA2 in a second state and to open normally.
  • the switch 59a is on a lever 59 engaged with the second stem 23, so as to close with terminal RB1 in a first state of the second stem 23, to close with terminal RB2 in a second state, and to open normally.
  • the watch has a case 40.
  • On the watch face 41 are indicia 42 for ordinary second time, indicia 43 for a chronograph minute and timer elapsed time second indication, and indicia 44 for an alarm set time indication.
  • the gear 8a of the minute wheel 8 is coupled to the wheel 8 and pinion 8b with constant sliding torque, so that relative rotation can occur under the torque applied manually through the stem 22 because the stopping of the fourth wheel 6 also stops the third wheel 7 and gear 8a.
  • the rotor 4 also stops and the second wheel 13 ( Figure 12) also stops.
  • CG is used as an abbre­viation for chronograph.
  • a switch input to the circuit 217 it is first determined whether the second stem 23 is not in the first or second state, so that the switch 59a is not on the terminal RB1 or RB2. If the switch 59a is not on either terminal, then it is determined whether the switch input comes from pushing the button 24 to connect to terminal A. If so, the data memory is read to determine if CGreset or CGstop is stored therein. If so, then the CG circuit is started and CGstart is written into the memory in place of CGreset or CGstop .
  • CGstart causes the CG second hand 21 to be driven five steps per second from the zero position from which it starts. The number of seconds is counted in both the counter 2113 and the counter 2114 and after 60 seconds, a carry causes the CG minute hand 31 to be stepped to indicate the passage of one minute of time.
  • the button 25 is pushed, then after a determination that CGstart and CGsplit are not in the memory and that CGstop is in the memory, the difference between the hand position and the zero hand position is calculated and the hands rapidly returned to the zero position as indicated in the circuit 2116, whilst CGreset is written into the memory in place of CGstop .
  • the button 24 is pushed to close the switch upon terminal A, then the hand is already stopped at the split time. The counting of seconds is stopped and the accumulated value is retained in memory. If the button 25 is again pushed to close the switch upon terminal A, counting is re­started, but the hand remains stopped.
  • the switch 59a engages the terminal RB1 and the flow chart of Figures 20 (a) and 20 (b) indicates the resultant steps in the timer set mode. If a switch input to circuit 217 is detected, it is first determined whether the terminal RB1 is connected. If so, it is determined whether the terminal A is connected due to the button 24 being pushed. If so, it is determined whether timerset or timerstop is written in the memory. There is no need to write timerset into memory, if it is determined that neither timerstart nor timerstop is written in memory, it is assumed that timerset is so written. If so, the timer is started as described in relation to Figure 20 (b) and timerstart is written into the memory. If in the previous deter­ mination, it is found that timerstart is written in the memory, then the timer is stopped and timerstop written in the memory. A further push on button 24 re­starts the timer.
  • timerset is written in the memory. If so, then this indicates that neither timerstart nor timerstop is written in the memory and that a timer operation is not in progress. Accordingly, the timer set time is increased by one minute and this is indicated by clockwise stepping of the CG second hand 21 by five steps representing 6° on the watch face 41. Repeated pushing of the button 25 causes repeated increases and stepping until the CG second hand 21 indicates the desired timer set time.
  • the maximum time that can be set is 60 minutes.
  • the 1 Hz interrupt signal with timerstart written in the memory causes a decrease of one second in the time set each second and the CG minute hand 31 is driven counter clockwise. Every minute, the CG minute hand completes a full circle and the CG second hand 21 is stepped five steps counter clockwise until only one minute remains. Then the CG minute hand 31 stops and the CG second hand 21 is stepped five steps for each second.
  • FIG. 21 (a), 21 (b) and 21 (c) A flow chart of the alarm function is illustrated in Figures 21 (a), 21 (b) and 21 (c).
  • a switch output is received in circuit 217, it is first deter­mined whether the switch 59a is on terminal RB1 due to the second stem 23 being in the first state. If so, it is determined whether the button 25 has been pushed to close on the terminal C. If so, the alarm minute hand 38 is stepped forward by one minute and the alarm hour hand 39 by a corresponding amount. This can be repeated until the desired alarm time is set or the button can be kept pushed in, in which case both hands 38 and 39 are rotated quickly to enable the alarm time to be set in a short time. At the same time, the alarm set time is written into the memory.
  • the alarm current time is increased by one second. It is then determined if the time has increased by one minute, as represented by "figure up?". If so, and it is found that the second stem is still in the first state, the alarm current time and the alarm set time are compared. If identity is found, then a command is issued to the sound generator to output the notice sound. If the second stem is not in the first state, it must be in the zero or normal position and the alarm minute hand is advanced by one step to keep pace with current time. Thereafter, the alarm minute and hour hands 38 and 39 will display the current time. However, if there is a need to correct the position of the hands, the second stem is moved to the second state and rotated to move the hands through the clutch wheel 49 and setting wheel 51 ( Figure 15).
  • FIGS 22 (a), 22 (b) and 22 (c) Various motor driving methods are illustrated in Figures 22 (a), 22 (b) and 22 (c).
  • Figure 22 (a) When motor movement is called for ( Figure 22 (a)), it is first determined if the pulses required are for reverse I or forward I drives. If so, then the reference clock is set to 64 Hz, whereas if not, it is set to 128 Hz. The selection of the correct motor to drive the hands requiring movement is then made and the number of pulses set in the motor pulse register 2261 ( Figure 9). If the drive called for is reverse I or forward I, then the necessary pulses are issued to the selected motor until the contents of the up counter 2262 counting incoming pulses is found to be equal to the contents of the register 2261 by the circuit 2263. The clock signals Cdrv arrive at 64 Hz.
  • the motor pulse register 2261 is set at 15, if there are 15 or more pulses to be issued, and forward II drive is set, 15 is then deducted from the number of output pulses.
  • control interrupt If a control interrupt occurs, it is first deter­mined if it is an interrupt of a quick traverse motor. If so, then it is determined whether the number of output pulses is less than 14. If so, then that number of pulses is set into register 2261 by the switch 2271. If not, then 15 is deducted from the number of output pulses.
  • the face indicia 42 (Figure 25) are similarly displaced.
  • the wheel 13 ( Figure 24) is driven through an intermediate gear wheel 60 from the wheel 6 driven by the wheel 5 from the rotor 4.
  • the gear 6a of the wheel 6 engages with a gear 60a on the intermediate gear wheel 60
  • the gear 60a engages with the gear 13a on the wheel 13 carrying the hand 14.
  • the reduction ratio between the rotor 4 and the wheel 13 is 1/30, and the second hand 14 fitted on the nose of the wheel 13 is stepped every second, thus indicating seconds of ordinary time.
  • the watch also has a chronograph function performed through step motor B 15 and step motor C 27 as in the case of the first embodiment. Further description is superfluous. As shown in Figure 25, only the first stem 22, switch button 24 and switch 25 are provided. Hour and minute indications of the ordinary time, chronograph indication and the operating method are the same as the first embodiment.
  • the multi-functional electronic watch provides an ordinary time indication and an alarm function.
  • the step motor 15 and the stem motor 27 together with related gear trains and hands, so that the chronograph and timer functions are taken away.
  • the CG first intermediate wheel 17, the CG second intermediate wheel 18, the CG wheel 19, the CG minute intermediate wheel 29 and the CG minute wheel 30 are not required.
  • the second wheel 13 is replaced by a central second wheel 62 ( Figure 27) disposed in place of the CG wheel 19, thereby indicating seconds of ordinary time in a central position of the watch.
  • the gear 6a of the wheel 6 engages a gear 61a of an intermediate wheel 61.
  • the gear 61a also engages a gear 62a of the central second wheel 62.
  • the gear train between the wheel 6 and the rotor 4 is similar to that of Figure 11.
  • the reduction ratio between the rotor 4 and the second wheel 62 is 1/30, and a central second hand 63 is fitted on a nose of the wheel 62.
  • Each second, the hand 63 is stepped over the face 41 of the watch to indicate seconds of ordinary time.
  • Hour and minute indications of ordinary time and indication of alarm time set by the step motor 32 are effected as in the case of the first embodiment, so that further description is superfluous.
  • the switch operating button 26 is the only one needed.
  • the method for indicating alarm set time and the operation thereof are the same as for the first embodiment.
  • an ordinary time and additional functions may be indicated easily at arbitrary positions of the watch by selecting the number and disposition of additional function indicating step motors, and the number and disposition of gear trains.
  • a single movement is effective in realising a multi-functional electronic watch of various specifications.
  • the main parts including base plate and step motor can be used in common, an increase in die cost due to a change in specification and also an increase in cost due to a change in part design, such as would be incurred with prior art watches, can be avoided.
  • Different specifications can be realised simply by re-writing the software of the micro-computer, so that standardisation on a common IC chip is also realisable.
  • the various faces of watch needed may be easily contrived, thus coping with diverse consumers' needs.
  • the small alarm face and hands are independent of and separate from the basic watch face and hands, alarm time and ordinary time are more definitely distinguishable, so that the chances of erroneous setting of alarm time will be reduced.
  • the small alarm hands can be used for selecting the alarm time or the ordinary time, and can be changed by the same stem, so that the function is readily combined with a basic watch to use as a composite watch, which is serviceable particularly when travelling abroad.
  • Alarm time and ordinary time of the small alarm hands are corrected by a button and a stem, so that the correcting operation is more definite, and erroneous operation is consequently less likely.
  • the chronograph second hand is disposed centrally of the watch, the time can be read easily, thus enhancing time keeping precision.
  • the timer indication is given by separate minute and second hands driven counter clockwise, which is effective in discriminating from the chronograph indication, thus facilitating reading of the timer residual time.
  • the chronograph second hand disposed centrally of the watch is driven every second for the last minute of the timer time, thus ensuring a more serviceable timer function.
  • Ordinary time indicated by the small alarm hands is corrected by turning the second stem
  • ordinary time shown by the basic watch hands is corrected by turning the first stem.
  • the first stem is intended for exclusive use on the time keeping of the basic watch
  • the second stem is intended for both mode switching and correction, errors are more easily avoided by the simple operation needed.
  • the two stems are disposed at positions away from the small face indicia over which the small hands pass, so that such a multi-functional watch can be thinner.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Electromechanical Clocks (AREA)
  • Measurement Of Unknown Time Intervals (AREA)
EP89306146A 1988-06-17 1989-06-16 Montre électronique analogique multifonctionnelle Expired - Lifetime EP0347251B1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP150862/88 1988-06-17
JP15086288 1988-06-17

Publications (3)

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EP0347251A2 true EP0347251A2 (fr) 1989-12-20
EP0347251A3 EP0347251A3 (fr) 1991-03-20
EP0347251B1 EP0347251B1 (fr) 1997-05-21

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EP89306146A Expired - Lifetime EP0347251B1 (fr) 1988-06-17 1989-06-16 Montre électronique analogique multifonctionnelle

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EP (1) EP0347251B1 (fr)
JP (1) JP2628376B2 (fr)
KR (1) KR970010632B1 (fr)
CN (1) CN1025460C (fr)
DE (1) DE68928056T2 (fr)
HK (1) HK1007203A1 (fr)
SG (1) SG97740A1 (fr)

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CN109557797A (zh) * 2017-09-27 2019-04-02 卡西欧计算机株式会社 轮系装置及钟表

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DE69318575T2 (de) * 1993-11-10 1998-11-26 Citizen Watch Co Ltd Weckeruhr
JP4626970B2 (ja) * 2004-12-15 2011-02-09 セイコーインスツル株式会社 複数の扇形運針輪列レイアウトが可能な多機能時計
US7443768B2 (en) * 2004-12-15 2008-10-28 Seiko Instruments Inc. Multifunctional timepiece including plural types of hand operating train wheels
CN101080681A (zh) * 2004-12-15 2007-11-28 精工电子有限公司 能够实现多个机芯布局的多功能时钟
JP4840752B2 (ja) * 2005-02-25 2011-12-21 セイコーインスツル株式会社 小針表示機構付き機械式時計
JP5435540B2 (ja) * 2008-10-29 2014-03-05 張明輝 時計の分解・組み立て方法
JP5343670B2 (ja) * 2009-04-01 2013-11-13 セイコーエプソン株式会社 時計
EP2605087B1 (fr) * 2011-12-13 2017-07-26 ETA SA Manufacture Horlogère Suisse Ensemble modulaire d'horlogerie à modules fonctionnels
US9534029B2 (en) 2012-10-03 2017-01-03 Csl Behring Ag Method of purifying proteins
EP2884349B1 (fr) * 2013-12-13 2020-07-01 ETA SA Manufacture Horlogère Suisse Procédé de commande d'un affichage analogique équipant un mouvement horloger
CN107024853B (zh) * 2017-05-24 2023-01-17 歌尔科技有限公司 一种轻智能手表的机芯模组及其设计方法

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GB2166570A (en) * 1984-09-26 1986-05-08 Citizen Watch Co Ltd Electronic timepiece with a chronograph system
EP0247520A1 (fr) * 1986-05-29 1987-12-02 Conseilray S.A. Montre-chronographe

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CN109557797A (zh) * 2017-09-27 2019-04-02 卡西欧计算机株式会社 轮系装置及钟表
EP3470933A1 (fr) * 2017-09-27 2019-04-17 Casio Computer Co., Ltd. Dispositif de rouage et pièce d'horlogerie
US11372371B2 (en) 2017-09-27 2022-06-28 Casio Computer Co., Ltd. Wheel train device and timepiece

Also Published As

Publication number Publication date
HK1007203A1 (en) 1999-04-01
EP0347251B1 (fr) 1997-05-21
DE68928056T2 (de) 1997-08-28
KR900000739A (ko) 1990-01-31
JP2628376B2 (ja) 1997-07-09
KR970010632B1 (ko) 1997-06-28
DE68928056D1 (de) 1997-06-26
CN1040274A (zh) 1990-03-07
EP0347251A3 (fr) 1991-03-20
CN1025460C (zh) 1994-07-13
JPH0277680A (ja) 1990-03-16
SG97740A1 (en) 2003-08-20

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