[go: up one dir, main page]

WO2002034539A1 - Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator - Google Patents

Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator Download PDF

Info

Publication number
WO2002034539A1
WO2002034539A1 PCT/US2000/041573 US0041573W WO0234539A1 WO 2002034539 A1 WO2002034539 A1 WO 2002034539A1 US 0041573 W US0041573 W US 0041573W WO 0234539 A1 WO0234539 A1 WO 0234539A1
Authority
WO
WIPO (PCT)
Prior art keywords
keys
operator
electronic computer
keystroke
keyboard
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.)
Ceased
Application number
PCT/US2000/041573
Other languages
French (fr)
Inventor
Alan K. Uke
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Priority to PCT/US2000/041573 priority Critical patent/WO2002034539A1/en
Priority to AU2001249016A priority patent/AU2001249016A1/en
Publication of WO2002034539A1 publication Critical patent/WO2002034539A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G06COMPUTING OR CALCULATING; COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/02Input arrangements using manually operated switches, e.g. using keyboards or dials
    • G06F3/0202Constructional details or processes of manufacture of the input device
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H13/00Switches having rectilinearly-movable operating part or parts adapted for pushing or pulling in one direction only, e.g. push-button switch
    • H01H13/70Switches having rectilinearly-movable operating part or parts adapted for pushing or pulling in one direction only, e.g. push-button switch having a plurality of operating members associated with different sets of contacts, e.g. keyboard
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2217/00Facilitation of operation; Human engineering
    • H01H2217/044Repetitive strain injury [RSI] considerations
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2223/00Casings
    • H01H2223/054Mounting of key housings on same printed circuit
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2227/00Dimensions; Characteristics
    • H01H2227/028Key stroke
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2227/00Dimensions; Characteristics
    • H01H2227/032Operating force
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2227/00Dimensions; Characteristics
    • H01H2227/032Operating force
    • H01H2227/034Regulation of operating force
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2229/00Manufacturing
    • H01H2229/062Maintenance or repair facilities
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2235/00Springs
    • H01H2235/002Linear coil spring combined with dome spring

Definitions

  • the present invention relates generally to keyboards for computers, electric typewriters and similar manual data input devices utilizing the standard QWERTY key format, and more particularly, to an electronic computer keyboard with enhanced ergonomic properties for preventing and/or alleviating injury to the forearms, wrists and hands of an operator normally associated with repetitive use.
  • keyboards for computers, typewriters, or similar machines typically have a set of keys arranged substantially in a single plane that may be flat or slightly tilted toward the operator.
  • the standard key arrangement used by a majority of keyboard manufacturers throughout the world has at least three parallel rows of ten or more keys.
  • the keys of one row are staggered relative to the keys of an adjacent row.
  • the keys typically include the twenty-six letter keys arranged in the standard QWERTY format and four punctuation keys.
  • numeric keys and function keys which are typically located above, below, or on one or both sides of the alphabetic keys.
  • the function keys typically include, for example, the tab, shift, and return keys as well as the alt, control, and option keys.
  • the operator's forearms are positioned at inwardly directed angles from the operator's sides toward the keyboard, with the palms down and the hands generally flat.
  • the wrists are bent and the hands are angled outwardly relative to the forearms in order to align the operator's fingers in directions running from the front to the back of the keyboard.
  • the operator repeatedly pivots his or her hands at the wrist joints side- to-side over the keyboard in order to select and actuate the individual keys.
  • an electronic computer keyboard is constructed to provide the minimum keystroke resistance sufficient to prevent accidental switch closures otherwise resulting from the weight of the operator's fingers resting on the keys. This forces the operator to move his or her hands over the keyboard with locked wrists. It also eliminates the need for the operator to hold his or her hands up to prevent inadvertent key depressions thereby reducing stress and fatigue on the operator's shoulders, forearms, wrists and hands.
  • Fig. 1 is a simplified plan view illustrating an operator's left forearm, wrist and hand actuating a conventional electronic computer keyboard. The hand is shown in two different positions in solid lines and phantom lines.
  • Fig. 2 is an enlarged diagrammatic vertical sectional view of a portion of an electronic computer keyboard that may be utilized to carry out the method of the present invention.
  • Fig. 3 is a simplified plan view similar to Fig. 1 illustrating an operator's left forearm, wrist and hand actuating an electronic computer keyboard that may be utilized to carry out the method of the present invention. The hand, wrist and forearm are shown in a first position in solid lines and in a second position in phantom lines.
  • Fig. 4 is an enlarged partially exploded and partially vertical sectional view through a portion of an electronic computer keyboard illustrating the manner in which its individual key support assemblies can be retrofitted with elastomeric booster springs to increase keystroke resistance.
  • Fig. 5 is a top plan view of the key support assembly illustrated in Fig. 4.
  • Fig. 6 is a bottom plan view of the key illustrated in Fig. 4.
  • Fig. 7 is a perspective view of the elastomeric booster spring illustrated in Fig. 4 showing its rib receiving slits.
  • Fig. 8 is side elevation view of the booster spring of Fig. 7.
  • Fig. 9 is a vertical sectional view through the key and elastomeric booster spring of Fig. 4 showing, the manner in which they mate.
  • the associated key support assembly is shown in phantom lines.
  • Fig. 12 is a fragmentary perspective view of a plurality of cylindrical booster springs made of an elastomeric material interconnected by an elastomeric tree structure.
  • the conventional electronic computer keyboard KB also includes a space bar (not illustrated) adjacent the lower edge, function keys (not illustrated) adjacent the upper edge and other command keys (not illustrated).
  • the conventional electronic computer keyboard KB is constructed in well known fashion and includes an outer frame, a plurality of keys each having guide posts received in corresponding guide mechanisms mounted in the frame. Springs normally surround the guide posts and bias the keys upwardly. The lower ends of the guide posts are located above corresponding switches which may have a laminated membrane-type construction, for example. Typically the springs are selected so that the keystroke resistance force is approximately seventy grams. This is the average approximate force required to be applied by the operator's fingers to depress a key sufficiently to cause the lower end of its associated guide post to actuate the corresponding switch and close electrical contacts therein.
  • an electronic computer keyboard 10 includes a plurality of keys 14. Each key 14 is connected to or formed with, such as by injection molding, a downwardly extending guide post 16. Only the center key 14 is shown with its guide post 16 in Fig. 2.
  • the electronic computer keyboard 10 further includes one or more vertically spaced guide plates 18 having holes for slidably receiving the guide post 16 of each of the keys 14. Only one hole is shown in the guide plate 18 for the sake of clarity. For simplicity, only the structure associated with the center key 14 will be described. It will be understood that all the other keys 14 have similar guide posts, guide mechanisms and associated switches.
  • the guide post 16 and guide plate 18 form a guide mechanism for permitting vertical reciprocal movement of the key 14.
  • Beneath the lower end of the guide post 16 is a laminated membrane-type switch assembly 20 including a plurality of electrical switches. Each of these switches is located directly beneath the curved lower end of a corresponding guide post 16.
  • a coil spring 22 surrounds the guide post 16 of the key 14. The spring 22 is compressed between the key 14 and the guide plate 18.
  • a retainer 24 surrounds the lower end of the guide post 16 to prevent the key 14 from falling out of the keyboard 10.
  • the foregoing components are all mounted in, and supported by, a surrounding plastic frame illustrated diagrammatically by phantom line 26.
  • the key 14 is normally biased upwardly to its at rest position by the spring 22.
  • the key 14 can be pushed downwardly by an operator's finger through a predetermined keystroke length SL to cause the lower rounded end of the guide post 16 to engage and close the associated electrical switch in the laminated switch assembly 20.
  • the compressive strength of the spring 22 is selected to provide the minimum keystroke resistance sufficient to prevent accidental switch closures from the weight of the operator's fingers resting on the alphanumeric keys.
  • This keystroke resistance will typically be a minimum of about seventy grams.
  • the keystroke resistance is the amount of force that must be applied by an operator's finger in a downward direction to cause the lower end of the guide post 16 to close the associated switch in the switch assembly 20.
  • the keystroke length SL may also be selected to achieve therapeutic results in combination with the increase in keystroke resistance.
  • a keystroke length SL of greater than about five millimeters, and more preferably, greater than about ten millimeters may be beneficial.
  • the keystroke length SL is defined as the distance that the key 14 must travel from its uppermost, at rest position, to its lowermost position in which the lower end of the guide post 16 engages and closes the corresponding switch in the switch assembly 20.
  • the effective upper limit for both the keystroke resistance and keystroke length would in all likelihood be those exhibited by conventional, non-electric typewriters, such as those sold for many years in the United States prior to 1960 under the Trademarks UNDERWOOD, SMITH CORONA and others. Most electronic computer keyboard operators would probably dislike a keystroke resistance higher than three hundred grams. A preferred range would be between seventy grams and two-hundred twenty grams, and more preferably, between about ninety grams and one hundred and twenty grams. Of course large keys, such as the space bar, preferably have a higher keystroke resistance than that of the alphanumeric keys since the weight of more than one finger will normally rest on the same.
  • Fig. 3 illustrates the movement of the operator's hand H, wrist W and forearm F when he or she uses the electronic computer keyboard apparatus 10 constructed in order to carry out the method of my invention. More particularly, when the operator wishes to depress the far right key of the set Kl with his or her ring finger, and then depress one of the keys of the set K2 with his or her middle finger, it is necessary for the operator to lock his or her wrist W.
  • the initial position of the operator's hand H, wrist W and forearm F is shown in solid lines.
  • the operator's hand, wrist and forearm move from the position PI shown in solid lines to the position P3 shown in phantom lines.
  • Figs. 4-9 illustrate another electronic computer keyboard construction which is particularly suited to retrofitting existing electronic computer keyboards to provide increased keystroke resistance. All of its keys, switches and guide mechanisms are similar so only one will be described.
  • Each key 14 is made of injection molded plastic and includes a downwardly extending cylinder 28 (Fig. 6) having a centrally located crisscross shaped hole 30.
  • the upper end 16a (Fig. 4) of the guidepost 16 has a crisscross shape so that it can be snugly received into the hole 30 in the cylinder 28.
  • a PC board 34 (Fig. 4) supports an upwardly opening box-shaped receptacle 36.
  • the receptacle 36 has a downwardly extending projection 38 which is received in a locating aperture 40 in the PC board 34.
  • Inside the receptacle 36 is a centrally located vertical guide tube 42.
  • the lower half of the coil spring 22 surrounds the guide tube 42.
  • the guide post 16 (Fig. 4) has a main body 16b from which projects a hook shaped actuator 16c.
  • the guide post 16 has a cylindrical, rounded lower segment 16d that slides upwardly and downwardly within the guide tube 42.
  • the actuator 16c moves an inverted L-shaped Copper switch element 44 into and out of contact with U-shaped Copper switch element 46. This makes and breaks a circuit connection.
  • the switch elements 44 and 46 are connected through the receptacle 36 to circuit traces (not illustrated) on the upper surface of the PC board 34.
  • a key support assembly 48 (Figs. 4, 5 and 9) is mounted over the top of the receptacle
  • the key support assembly 48 has an aperture 54 which extends vertically there through.
  • the guide post 16 reciprocates upwardly and downwardly through the aperture 54 of the key support assembly 48.
  • a rectangular elastomeric booster spring 56 is seated between the upper generally horizontal surface 48a of the key support assembly 48 and the underside 14a (Fig. 6) of the key 14.
  • the coil spring 22 serves as a base spring and the elastomeric spring 56 serves as a booster spring. Together they provide the keystroke resistance.
  • the elastomeric booster spring 56 is made of a material having a suitable durometer or hardness necessary to achieve the keystroke resistance in the ranges identified above.
  • suitable elastomeric materials include polyurethane, polypropylene, polyethylene, and various blends of these materials. Of course, synthetic and natural rubbers could also be utilized. The foregoing list of materials is meant to be exemplary, and not exclusive.
  • the booster spring 56 has an overall rectangular configuration including four sidewalls 56a, 56b, 56c, and 56d. The sidewalls 56a and 56d have inclined upper edges to ensure proper engagement with the underside 14a of the key 14 which is typically angled relative to the upper surface 48a of the key support assembly 48.
  • Each of the sidewalls has an upwardly opening vertical slit 58.
  • the slits received corresponding downwardly extending ribs 60 (Fig. 6) formed on the underside 14a of the key 14.
  • the booster spring 56 is centrally located in position between the spring 14 and the underlying key support assembly 48.
  • booster spring 9 is particularly adapted to retrofitting existing electronic computer keyboards.
  • Sets of elastomeric booster springs can be sold in packages at retail computer outlets. Individual computer owners can remove the keys from their electronic computer keyboards relatively easily, insert the booster springs in position, and replace the keys. Alternatively, this could be done as service by a retail computer outlet.
  • the booster springs would be available in range of durometers so that a user could select a particular keystroke resistance fitting his or her particularized needs. Alternatively, the booster springs could be installed by original equipment manufacturers (OEMs) of electronic computer keyboards.
  • OEMs original equipment manufacturers
  • Figs. 10 and 1 1 illustrate an alternate way to modify existing electronic computer keyboards in order to perform the method of the present invention.
  • An elastomeric template 60 is injection molded, or otherwise formed as a single unitary piece of elastomeric material having a waffle-like configuration. More particularly, as best seen in Fig. 11, a plurality of individual booster spring elements 62 are connected to one another in spaced apart, uniform fashion.
  • the upper portion 62a (Fig. 1 1) of each booster spring element 62 has the same configuration as the booster spring 56 (Figs 7 and 8).
  • the lower portion 62b of each booster spring element 62 is flared in order to fit around and enclose the corresponding key support assembly 48 (Fig. 9).
  • the template 60 may be utilized by OEMs during the fabrication of electronic computer keyboards to rapidly provide the required keystroke resistance for each of the keys, without the necessity of installing a large number of individual booster springs.
  • FIG. 12 is a fragmentary perspective view of a still further way to modify existing electronic computer keyboards so that they can be used to perform my method.
  • a lattice structure 64 includes a plurality of cylindrical booster springs 66 made of an elastomeric material interconnected by a tree structure in the form of a plurality of elastomeric ribs 68.
  • the lattice structure can be molded as one integral unit. The spacing of the cylindrical booster springs 66 is determined by the lengths of the row-oriented and column-oriented ribs
  • the ribs 68 are connected to the cylindrical booster springs 66 via L-shaped elastomeric connectors 70. This permits the booster springs 66 to sit on top of corresponding key support assembles 48.
  • the connectors 70 extend downwardly around the sides of the key support assemblies 48.
  • the ribs 68 therefore extend generally horizontally at a lower level between the keys 14 adjacent and parallel to the guide plate 18 (Figs. 4 and 5).
  • the lattice structure 64 is particularly suited for OEM manufacturing.
  • the present invention may be modified in both arrangement and detail. For example, benefits may be achieved by either increasing the keystroke resistance as indicated, increasing keystroke length as indicated, or by increasing both.
  • Multiple springs can be used to increase the keystroke resistance of the wide space bar.
  • the coil springs in the keyboard could be completely replaced with elastomeric springs or the increased keystroke resistance could come from a combination of the existing coil springs supplemented by elastomeric booster springs.
  • the booster springs could also be coil or other metal type springs.
  • a combination of base springs and booster springs, both made of suitable elastomeric material could also be used.
  • the present invention can either be designed into the electronic keyboards themselves by OEMs or can be accomplished by using a retrofit kit consisting of individual booster springs, elastomeric templates or some other convenient way of increasing the keystroke resistance into the ranges identified, without impairing switch closure capability. Versions of the computer keyboard could be produced with higher keystroke resistance for male users and a somewhat lesser keystroke resistance for female users. Therefore, the protection afforded the present invention should only be limited in accordance with the following claims.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Input From Keyboards Or The Like (AREA)
  • Push-Button Switches (AREA)

Abstract

An electronic computer keyboard (10) is constructed to provide the minimum keystroke resistance sufficient to prevent accidental switch closures otherwise resulting from the weight of the operator's fingers resting on the keys (14). This forces the operator to move his or her hands over the keyboard with locked wrists. It also eliminates the need of the operator to hold his or her hands up to prevent inadvertent key depressions thereby reducing stress and fatigue on the operator's shoulders, forearms, wrists and hands.

Description

METHOD OF PREVENTING AND/OR ALLEVIATING REPETITIVE USE INJURY TO ELECTRONIC COMPUTER KEYBOARD OPERATOR
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. Patent Application, Serial No.
08/894,112 filed August 12, 1997, which itself was a continuation-in-part, through
PCT/US96/ 18835 filed December 13, 1996, (abandoned) of U.S. Patent application Serial
No. 08/577,091 filed December 14, 1995 (now U.S. Patent No. 5,676,476, granted October 14, 1997).
BACKGROUND OF THE INVENTION
The present invention relates generally to keyboards for computers, electric typewriters and similar manual data input devices utilizing the standard QWERTY key format, and more particularly, to an electronic computer keyboard with enhanced ergonomic properties for preventing and/or alleviating injury to the forearms, wrists and hands of an operator normally associated with repetitive use.
Conventional keyboards for computers, typewriters, or similar machines typically have a set of keys arranged substantially in a single plane that may be flat or slightly tilted toward the operator. The standard key arrangement used by a majority of keyboard manufacturers throughout the world has at least three parallel rows of ten or more keys. The keys of one row are staggered relative to the keys of an adjacent row. The keys typically include the twenty-six letter keys arranged in the standard QWERTY format and four punctuation keys. In addition to the alphabetic keys, conventional keyboards specifically designed for use with computers also have numeric keys and function keys which are typically located above, below, or on one or both sides of the alphabetic keys. The function keys typically include, for example, the tab, shift, and return keys as well as the alt, control, and option keys. During typing, the operator's forearms are positioned at inwardly directed angles from the operator's sides toward the keyboard, with the palms down and the hands generally flat. The wrists are bent and the hands are angled outwardly relative to the forearms in order to align the operator's fingers in directions running from the front to the back of the keyboard. The operator repeatedly pivots his or her hands at the wrist joints side- to-side over the keyboard in order to select and actuate the individual keys.
Adverse physical conditions may arise in the operator's wrists, hands and fingers resulting from the kind of repetitive motions associated with typing on a conventional electronic computer keyboard, particularly for long periods on any given day or successive days. Such adverse conditions are compounded by the conventional design of conventional electronic keyboards which encourages the side-to-side flexing of the operator's wrists, hands and fingers into particularly awkward and unnatural angles for prolonged periods of time. Typing injuries may fall into one of a few overlapping categories: repetitive stress disorder, repetitive motion injury, cumulative trauma disorder, and carpal tunnel syndrome. These conditions often require medical attention and, in severe cases, the worker may be unable to perform normal work functions. The cost in human suffering, and on-going medical expenses may be severe.
Various wrist/arm supports, keyboard geometries and positionable desktop surfaces for preventing injury to keyboard operators have been patented in the United States. Some of these patented devices have met with limited commercial success. However, none of them has been completely successful in preventing injury to the forearms, wrists and hands of an electronic keyboard operator.
Before the advent of modern electronic computer keyboards, it was relatively rare for full time operators of manual (non-electric) typewriters to experience injury to their forearms, wrists or hands, even if they typed forty hours per week. With the advent of modem electronic computer keyboards, particularly those associated with personal computers, a common design objective has been to provide minimal keystroke length and minimal keystroke resistance. The apparent objective has been to make typing and data entry easier and faster. The primary constraint on minimizing both keystroke length and keyboard keystroke resistance has been the fact that both need to be significant enough to prevent spurious key switch closures. SUMMARY OF THE INVENTION
Accordingly, it is the object of the present invention to provide a method that uses an electronic computer keyboard with enhanced ergonomic properties to prevent and/or alleviate injury to the forearms, wrists and/or hands of an operator.
According to my invention an electronic computer keyboard is constructed to provide the minimum keystroke resistance sufficient to prevent accidental switch closures otherwise resulting from the weight of the operator's fingers resting on the keys. This forces the operator to move his or her hands over the keyboard with locked wrists. It also eliminates the need for the operator to hold his or her hands up to prevent inadvertent key depressions thereby reducing stress and fatigue on the operator's shoulders, forearms, wrists and hands.
BRIEF DESCRIPTION OF THE DRAWINGS
Fig. 1 is a simplified plan view illustrating an operator's left forearm, wrist and hand actuating a conventional electronic computer keyboard. The hand is shown in two different positions in solid lines and phantom lines.
Fig. 2 is an enlarged diagrammatic vertical sectional view of a portion of an electronic computer keyboard that may be utilized to carry out the method of the present invention. Fig. 3 is a simplified plan view similar to Fig. 1 illustrating an operator's left forearm, wrist and hand actuating an electronic computer keyboard that may be utilized to carry out the method of the present invention. The hand, wrist and forearm are shown in a first position in solid lines and in a second position in phantom lines.
Fig. 4 is an enlarged partially exploded and partially vertical sectional view through a portion of an electronic computer keyboard illustrating the manner in which its individual key support assemblies can be retrofitted with elastomeric booster springs to increase keystroke resistance.
Fig. 5 is a top plan view of the key support assembly illustrated in Fig. 4. Fig. 6 is a bottom plan view of the key illustrated in Fig. 4. Fig. 7 is a perspective view of the elastomeric booster spring illustrated in Fig. 4 showing its rib receiving slits.
Fig. 8 is side elevation view of the booster spring of Fig. 7. Fig. 9 is a vertical sectional view through the key and elastomeric booster spring of Fig. 4 showing, the manner in which they mate. The associated key support assembly is shown in phantom lines.
Fig. 10 is a plan view of an elastomeric template that may be used to simultaneously retrofit multiple keys of a conventional electronic computer keyboard.
Fig. 1 1 is an enlarged vertical sectional view of the elastomeric template taken along line 11-1 1 of Fig. 10.
Fig. 12 is a fragmentary perspective view of a plurality of cylindrical booster springs made of an elastomeric material interconnected by an elastomeric tree structure.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
Conventional electronic computer keyboards have keys that can be depressed with less than seventy grams of force and with less than five millimeters of keystroke length. The problem with this type of "light touch" design is that an operator tends to angle his or her wrists back and forth as much as thirty degrees in reaching for various keys. Furthermore, the weight of an operator's fingers combined with the natural downward flexing of the fingers is usually sufficient to depress a key. Therefore, the operator induces stress and fatigue in his or her wrists supporting the hands so that the fingers do not inadvertently depress the keys. If greater keystroke resistance and/or keystroke length were required in order to enter a particular letter, numeral, symbol or command, the operator would naturally tend to lock his or her wrists and move the hands over the keys, eliminating the severe wrist flexure. While this type of movement requires angling of the forearms by pivoting the shoulder, such angling is minimal, for example two to five degrees, and does not lead to injuries in the arms or shoulders. This may be due to the fact that the ball and socket construction of the shoulder joint is more conducive or natural to this type of side-to-side movement than the wrist joint.
Referring to Fig. 1 , a conventional electronic computer keyboard KB is illustrated which includes a first plurality of keys, including keys Kl and K2, arranged in the standard QWERTY key format, and a second plurality of keys K3 arranged to the side normally including numeral keys and command keys. The conventional electronic computer keyboard
KB also includes a space bar (not illustrated) adjacent the lower edge, function keys (not illustrated) adjacent the upper edge and other command keys (not illustrated). The conventional electronic computer keyboard KB is constructed in well known fashion and includes an outer frame, a plurality of keys each having guide posts received in corresponding guide mechanisms mounted in the frame. Springs normally surround the guide posts and bias the keys upwardly. The lower ends of the guide posts are located above corresponding switches which may have a laminated membrane-type construction, for example. Typically the springs are selected so that the keystroke resistance force is approximately seventy grams. This is the average approximate force required to be applied by the operator's fingers to depress a key sufficiently to cause the lower end of its associated guide post to actuate the corresponding switch and close electrical contacts therein. Electrical signals are generated and recognized by the mother board of the personal computer as indicating that the operator has depressed a particular key at a particular moment. Normally the guide post associated with each key and the guide mechanism associated with each guide post are configured so that the key travels less than five millimeters between its uppermost and lowermost positions. The keystroke is thus the distance a key travels from its raised at rest position to its fully depressed position in which the lower end of its guide post actuates the associated electrical switch.
Referring still to Fig. 1 , the conventional electronic computer keyboard KB has such a light touch, i.e. requires so little force and/or so little keystroke travel to actuate the associated switch, that it is only necessary for the operator's hand H to shift angularly between the position P 1 shown in solid lines in Fig. 1 and the position P2 shown in phantom lines in Fig. 1. This causes the operator's wrist W to move through a substantial angle Θ which can be as much as thirty degrees. When the operator's hand H moves between the positions PI and P2, his or her forearm F remains more or less stationary. The type of hand and wrist movement illustrated in Fig. 1 can occur, for example, when the user first depresses one key of the set Kl with his or her ring finger and then moves to depress one key of the set K2 with the same finger. It is the back and forth repetitive movement of the operator's wrist W through the angle Θ that may lead to physical injury. If the operator rests his or her hands on the keys of the keyboard KB, the weight of his/her fingers will depress the keys and close the associated switches.
Referring to Fig. 2, in accordance with my invention, an electronic computer keyboard 10 includes a plurality of keys 14. Each key 14 is connected to or formed with, such as by injection molding, a downwardly extending guide post 16. Only the center key 14 is shown with its guide post 16 in Fig. 2. The electronic computer keyboard 10 further includes one or more vertically spaced guide plates 18 having holes for slidably receiving the guide post 16 of each of the keys 14. Only one hole is shown in the guide plate 18 for the sake of clarity. For simplicity, only the structure associated with the center key 14 will be described. It will be understood that all the other keys 14 have similar guide posts, guide mechanisms and associated switches.
The guide post 16 and guide plate 18 form a guide mechanism for permitting vertical reciprocal movement of the key 14. Beneath the lower end of the guide post 16 is a laminated membrane-type switch assembly 20 including a plurality of electrical switches. Each of these switches is located directly beneath the curved lower end of a corresponding guide post 16. A coil spring 22 surrounds the guide post 16 of the key 14. The spring 22 is compressed between the key 14 and the guide plate 18. A retainer 24 surrounds the lower end of the guide post 16 to prevent the key 14 from falling out of the keyboard 10. The foregoing components are all mounted in, and supported by, a surrounding plastic frame illustrated diagrammatically by phantom line 26. The key 14 is normally biased upwardly to its at rest position by the spring 22. The key 14 can be pushed downwardly by an operator's finger through a predetermined keystroke length SL to cause the lower rounded end of the guide post 16 to engage and close the associated electrical switch in the laminated switch assembly 20. '
In accordance with the present invention, the compressive strength of the spring 22 is selected to provide the minimum keystroke resistance sufficient to prevent accidental switch closures from the weight of the operator's fingers resting on the alphanumeric keys. This keystroke resistance will typically be a minimum of about seventy grams. The keystroke resistance is the amount of force that must be applied by an operator's finger in a downward direction to cause the lower end of the guide post 16 to close the associated switch in the switch assembly 20. Also, in accordance with the present invention, the keystroke length SL may also be selected to achieve therapeutic results in combination with the increase in keystroke resistance. A keystroke length SL of greater than about five millimeters, and more preferably, greater than about ten millimeters may be beneficial. The keystroke length SL is defined as the distance that the key 14 must travel from its uppermost, at rest position, to its lowermost position in which the lower end of the guide post 16 engages and closes the corresponding switch in the switch assembly 20.
The effective upper limit for both the keystroke resistance and keystroke length would in all likelihood be those exhibited by conventional, non-electric typewriters, such as those sold for many years in the United States prior to 1960 under the Trademarks UNDERWOOD, SMITH CORONA and others. Most electronic computer keyboard operators would probably dislike a keystroke resistance higher than three hundred grams. A preferred range would be between seventy grams and two-hundred twenty grams, and more preferably, between about ninety grams and one hundred and twenty grams. Of course large keys, such as the space bar, preferably have a higher keystroke resistance than that of the alphanumeric keys since the weight of more than one finger will normally rest on the same.
Fig. 3 illustrates the movement of the operator's hand H, wrist W and forearm F when he or she uses the electronic computer keyboard apparatus 10 constructed in order to carry out the method of my invention. More particularly, when the operator wishes to depress the far right key of the set Kl with his or her ring finger, and then depress one of the keys of the set K2 with his or her middle finger, it is necessary for the operator to lock his or her wrist W. In Fig. 3, the initial position of the operator's hand H, wrist W and forearm F is shown in solid lines. When moving between the keys Kl and the keys K2, the operator's hand, wrist and forearm move from the position PI shown in solid lines to the position P3 shown in phantom lines. The important thing to note in this operation is that the operator's wrist is locked and no longer swings through the angle Θ. Instead, the operators forearm F moves through a much smaller angle α typically less than ten degrees. Because the operator has locked his or her wrist, the tendency to develop an injury to the shoulders, forearms, wrists or hands from repetitive movements associated with the operation of the electronic computer keyboard 10 is greatly reduced when the keyboard is operated for an extended period to enter text and/or numbers into an application on a computer associated with the keyboard compared to a conventional electronic keyboard KB (Fig. 1). The extended period could be several hours in a given day over weeks or months.
Figs. 4-9 illustrate another electronic computer keyboard construction which is particularly suited to retrofitting existing electronic computer keyboards to provide increased keystroke resistance. All of its keys, switches and guide mechanisms are similar so only one will be described. Each key 14 is made of injection molded plastic and includes a downwardly extending cylinder 28 (Fig. 6) having a centrally located crisscross shaped hole 30. The upper end 16a (Fig. 4) of the guidepost 16 has a crisscross shape so that it can be snugly received into the hole 30 in the cylinder 28. A PC board 34 (Fig. 4) supports an upwardly opening box-shaped receptacle 36. The receptacle 36 has a downwardly extending projection 38 which is received in a locating aperture 40 in the PC board 34. Inside the receptacle 36 is a centrally located vertical guide tube 42. The lower half of the coil spring 22 surrounds the guide tube 42.
The guide post 16 (Fig. 4) has a main body 16b from which projects a hook shaped actuator 16c. The guide post 16 has a cylindrical, rounded lower segment 16d that slides upwardly and downwardly within the guide tube 42. During this motion, the actuator 16c moves an inverted L-shaped Copper switch element 44 into and out of contact with U-shaped Copper switch element 46. This makes and breaks a circuit connection. The switch elements 44 and 46 are connected through the receptacle 36 to circuit traces (not illustrated) on the upper surface of the PC board 34. A key support assembly 48 (Figs. 4, 5 and 9) is mounted over the top of the receptacle
36 and held in place by four downwardly extending tabs 50. The tabs 50 have projections 52 which seat in corresponding detents (not illustrated) formed in opposite vertical sidewalls of the receptacle 36. The key support assembly 48 has an aperture 54 which extends vertically there through. The guide post 16 reciprocates upwardly and downwardly through the aperture 54 of the key support assembly 48. A rectangular elastomeric booster spring 56 is seated between the upper generally horizontal surface 48a of the key support assembly 48 and the underside 14a (Fig. 6) of the key 14. In this embodiment the coil spring 22 serves as a base spring and the elastomeric spring 56 serves as a booster spring. Together they provide the keystroke resistance. The elastomeric booster spring 56 is made of a material having a suitable durometer or hardness necessary to achieve the keystroke resistance in the ranges identified above. By way of example, suitable elastomeric materials include polyurethane, polypropylene, polyethylene, and various blends of these materials. Of course, synthetic and natural rubbers could also be utilized. The foregoing list of materials is meant to be exemplary, and not exclusive. The booster spring 56 has an overall rectangular configuration including four sidewalls 56a, 56b, 56c, and 56d. The sidewalls 56a and 56d have inclined upper edges to ensure proper engagement with the underside 14a of the key 14 which is typically angled relative to the upper surface 48a of the key support assembly 48. Each of the sidewalls has an upwardly opening vertical slit 58. The slits received corresponding downwardly extending ribs 60 (Fig. 6) formed on the underside 14a of the key 14. In this manner, the booster spring 56 is centrally located in position between the spring 14 and the underlying key support assembly 48. The electronic computer keyboard construction of my invention illustrated in Figs. 4-
9 is particularly adapted to retrofitting existing electronic computer keyboards. Sets of elastomeric booster springs can be sold in packages at retail computer outlets. Individual computer owners can remove the keys from their electronic computer keyboards relatively easily, insert the booster springs in position, and replace the keys. Alternatively, this could be done as service by a retail computer outlet. The booster springs would be available in range of durometers so that a user could select a particular keystroke resistance fitting his or her particularized needs. Alternatively, the booster springs could be installed by original equipment manufacturers (OEMs) of electronic computer keyboards.
Figs. 10 and 1 1 illustrate an alternate way to modify existing electronic computer keyboards in order to perform the method of the present invention. An elastomeric template 60 is injection molded, or otherwise formed as a single unitary piece of elastomeric material having a waffle-like configuration. More particularly, as best seen in Fig. 11, a plurality of individual booster spring elements 62 are connected to one another in spaced apart, uniform fashion. The upper portion 62a (Fig. 1 1) of each booster spring element 62 has the same configuration as the booster spring 56 (Figs 7 and 8). The lower portion 62b of each booster spring element 62 is flared in order to fit around and enclose the corresponding key support assembly 48 (Fig. 9). It will thus be understood that the template 60 may be utilized by OEMs during the fabrication of electronic computer keyboards to rapidly provide the required keystroke resistance for each of the keys, without the necessity of installing a large number of individual booster springs.
Fig. 12 is a fragmentary perspective view of a still further way to modify existing electronic computer keyboards so that they can be used to perform my method. A lattice structure 64 includes a plurality of cylindrical booster springs 66 made of an elastomeric material interconnected by a tree structure in the form of a plurality of elastomeric ribs 68. The lattice structure can be molded as one integral unit. The spacing of the cylindrical booster springs 66 is determined by the lengths of the row-oriented and column-oriented ribs
68. The ribs 68 are connected to the cylindrical booster springs 66 via L-shaped elastomeric connectors 70. This permits the booster springs 66 to sit on top of corresponding key support assembles 48. The connectors 70 extend downwardly around the sides of the key support assemblies 48. The ribs 68 therefore extend generally horizontally at a lower level between the keys 14 adjacent and parallel to the guide plate 18 (Figs. 4 and 5). The lattice structure 64 is particularly suited for OEM manufacturing.
The present invention may be modified in both arrangement and detail. For example, benefits may be achieved by either increasing the keystroke resistance as indicated, increasing keystroke length as indicated, or by increasing both. Multiple springs can be used to increase the keystroke resistance of the wide space bar. The coil springs in the keyboard could be completely replaced with elastomeric springs or the increased keystroke resistance could come from a combination of the existing coil springs supplemented by elastomeric booster springs. The booster springs could also be coil or other metal type springs. A combination of base springs and booster springs, both made of suitable elastomeric material could also be used. The present invention can either be designed into the electronic keyboards themselves by OEMs or can be accomplished by using a retrofit kit consisting of individual booster springs, elastomeric templates or some other convenient way of increasing the keystroke resistance into the ranges identified, without impairing switch closure capability. Versions of the computer keyboard could be produced with higher keystroke resistance for male users and a somewhat lesser keystroke resistance for female users. Therefore, the protection afforded the present invention should only be limited in accordance with the following claims.
I CLAIM:

Claims

1. A method of preventing and/or alleviating injury to the forearms, wrists and hands of an operator from repetitive use of an electronic computer keyboard, comprising the steps of: providing an electronic computer keyboard with a plurality of alphanumeric keys to be individually depressed by the fingers of an operator to close a plurality of switches, each associated with a corresponding one of the keys; incorporating means in the electronic computer keyboard for providing a minimum keystroke resistance for each of the keys sufficient to prevent accidental switch closures otherwise resulting from the weight of the operator's fingers resting on the keys; and operating the keyboard for an extended period by depressing the keys to enter text and/or numbers into an application on a computer associated with the keyboard.
2. The method of Claim 1 wherein the keystroke resistance is greater than about seventy grams.
3. The method of Claim 1 wherein the keystroke resistance is less than about three hundred grams.
4. The method of Claim 1 wherein the keystroke resistance is between about seventy grams and about two-hundred and twenty grams.
5. The method of Claim 1 wherein the keystroke resistance is between about ninety grams and about one-hundred and twenty grams.
6. The method of Claim 1 wherein the means for providing the minimum keystroke resistance includes coil springs.
7. The method of Claim 1 and further comprising the step of incorporating means in the electronic computer keyboard for providing a minimum keystroke length of about five millimeters.
8. The method of Claim 1 and further comprising the step of incorporating means in the electronic computer keyboard for providing a minimum keystroke length of about ten millimeters.
9. The method of Claim 7 wherein the keystroke resistance is at least seventy grams.
10. The method of Claim 7 wherein the keystroke resistance is between about ninety grams and about one hundred and twenty grams.
PCT/US2000/041573 2000-10-25 2000-10-25 Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator Ceased WO2002034539A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
PCT/US2000/041573 WO2002034539A1 (en) 2000-10-25 2000-10-25 Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator
AU2001249016A AU2001249016A1 (en) 2000-10-25 2000-10-25 Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/US2000/041573 WO2002034539A1 (en) 2000-10-25 2000-10-25 Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator

Publications (1)

Publication Number Publication Date
WO2002034539A1 true WO2002034539A1 (en) 2002-05-02

Family

ID=21742166

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2000/041573 Ceased WO2002034539A1 (en) 2000-10-25 2000-10-25 Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator

Country Status (2)

Country Link
AU (1) AU2001249016A1 (en)
WO (1) WO2002034539A1 (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6791480B1 (en) 1998-12-04 2004-09-14 Alan K. Uke Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator
US6914754B2 (en) 2001-09-14 2005-07-05 Mitsumi Electric Co., Ltd. Head feeding mechanism
US7038598B2 (en) 2002-05-29 2006-05-02 Alan K. Uke Keyboard assemblies

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5676476A (en) * 1995-12-14 1997-10-14 Uke; Alan K. Method and apparatus for preventing injury to an electronic computer keyboard operator

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5676476A (en) * 1995-12-14 1997-10-14 Uke; Alan K. Method and apparatus for preventing injury to an electronic computer keyboard operator

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6791480B1 (en) 1998-12-04 2004-09-14 Alan K. Uke Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator
US6914754B2 (en) 2001-09-14 2005-07-05 Mitsumi Electric Co., Ltd. Head feeding mechanism
US7038598B2 (en) 2002-05-29 2006-05-02 Alan K. Uke Keyboard assemblies

Also Published As

Publication number Publication date
AU2001249016A1 (en) 2002-05-06

Similar Documents

Publication Publication Date Title
US6791480B1 (en) Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator
WO1997021547A1 (en) Electronic computer keyboard with enhanced ergonomic properties
US6443643B1 (en) Ergonomic keyboard
US5673040A (en) Ergonomic keyboard apparatus
US6132118A (en) Curved mound ergonomic keyboard
US5391006A (en) Snap on ergonomic keycaps
US5503484A (en) Ergonomic keyboard apparatus and method of using same
US7182533B1 (en) Keyboard contoured to the natural shape of the hand
US4509873A (en) Alphanumeric section of office machine keyboards
US4769516A (en) Finger operated switching apparatus
US20040085716A1 (en) Modular keyboard system
US6183149B1 (en) Impact absorbing keyboard, contoured to the natural shape of the hand
EP0572487A4 (en)
US20030193477A1 (en) Hand-held, freestanding, double-sided electronic keyboard
US8008593B2 (en) Switch for seesaw key
US5476332A (en) Symmetrical keyboard apparatus
US11557445B2 (en) Keyboard device
US20020088698A1 (en) Key switch device
EP1187722A1 (en) A locating key for a keyboard or keypad
WO2002034539A1 (en) Method of preventing and/or alleviating repetitive use injury to electronic computer keyboard operator
JP3994242B2 (en) keyboard
US20190096605A1 (en) Mechanical key structure
CA2448420C (en) Ergonomic keyboard tilted forward with non-qwerty key layout
US20040090422A1 (en) Keyboard
EP0219944A2 (en) Keyboard

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application
REG Reference to national code

Ref country code: DE

Ref legal event code: 8642

122 Ep: pct application non-entry in european phase
NENP Non-entry into the national phase

Ref country code: JP