Ergonomics of a data-input device
09939933 ยท 2018-04-10
Assignee
Inventors
Cpc classification
H01H25/065
ELECTRICITY
B60K2360/11
PERFORMING OPERATIONS; TRANSPORTING
B60K35/00
PERFORMING OPERATIONS; TRANSPORTING
B60K35/10
PERFORMING OPERATIONS; TRANSPORTING
G06F3/033
PHYSICS
G06F3/0362
PHYSICS
International classification
G06F3/033
PHYSICS
G06F3/0354
PHYSICS
G06F3/0362
PHYSICS
H01H25/06
ELECTRICITY
Abstract
A data-input device comprises a designator able to point to a position on a screen of a computer system to which the device is intended to be connected and a body intended to be fixed to a workstation, the body comprising a support zone intended to support the hand of an operator as he manipulates the designator. The device further comprises a knob arranged in such a way that it can be manipulated by the fingers of the operator, his hand remaining supported on the support zone. The knob is configured to allow at least two distinct data selections of which one is a choice of values in a series and one is a binary acquisition in relation to the chosen value.
Claims
1. A data-input device comprising a designator able to point to a position on a screen of a computer system to which the device is intended to be connected and a body intended to be fixed to a workstation, the body comprising a base defining a base plane and a support zone intended to support the hand of an operator as he manipulates the designator, the device further comprising two knobs, each of the knobs being configured to rotate about a respective axis of knob rotation, the designator being disposed at the base plane and between the two knobs, the two knobs being disposed on the body and above the designator, wherein the two axes of knob rotation are disposed at an angle relatively closer to parallel to the base plane than perpendicular to the base pane and the two axes of knob rotation are disposed at an angle relatively closer to parallel to each other, the two knobs being arranged in such a way that each knob can be manipulated by the fingers of the operator, his hand remaining supported on the support zone, each knob being configured to allow at least two distinct data selections of which one is a choice of values in a series and one is a binary acquisition in relation to the chosen value, each knob comprising a rotary ring rotating about an axis and allowing the choice of values in a series, the ring having a first zone and a second zone which are joined together and both having a substantially frustoconical shape extending around the axis and on which zones the operator can place his fingers, a smaller diameter (d) of the first zone about the axis being greater than or equal to a larger diameter (d) of the second zone about the axis, in which a vertex angle ?2 of the first zone and a vertex angle ?1 of the second zone are defined and in which the vertex angles satisfy the relationship:
0???.sub.1<?.sub.2?90?.
2. The device according to claim 1, in which the knob comprises a push-button switch configured for the binary acquisition.
3. The device according to claim 2, in which the switch is arranged at the center of the ring and the switch is configured to be manipulated in a translational movement along the axis of the ring.
4. The device according to claim 1, in which the knob is configured to allow an additional first data input by means of a rotation of the knob about a first axis perpendicular to the axis of rotation of the ring.
5. The device according to claim 4, in which the knob is configured to allow a second additional data input by means of a rotation of the knob about a second axis perpendicular to the axis of rotation of the ring and perpendicular to first axis.
6. The device according to claim 4, in which the additional data input or inputs allow acquisition of a choice of value in a given series.
7. The device according to claim 4, in which the additional data input or inputs allow access to binary data.
8. The device according to claim 1 further comprising a palm rest on which the support zone is provided, in which device the palm rest extends mainly in an arc closing up toward a zone intended to accept the fingers of that hand of the operator that is manipulating the designator.
9. The device according to claim 8, in which the arc has two ends and the knob is arranged at one of the ends of the arc.
10. The device according to claim 9 further comprising two knobs, each one arranged at one of the ends of the arc and the two knobs are intended to be manipulated either by one and the same operator or by two operators positioned differently in relation to the designator.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The invention will be better understood and other advantages will become apparent from reading the detailed description of one embodiment given by way of example, which description is illustrated by the attached drawing in which:
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(11) For the sake of clarity, in the various figures the same elements will bear the same references.
DETAILED DESCRIPTION
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(13) In the example depicted, the fixed body comprises a square or rectangular plate 12 intended to be fixed to the instrument panel of an aircraft. Of course the invention is not restricted to use on an aircraft flight deck. It can be used in any other domain in which the body of the data-input device is fixed to a workstation. The fixed body may also comprise a unit situated under the plate 12, not depicted in
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(15) In addition to the designator, the device comprises at least one knob 20 arranged in such a way as to be manipulated by the fingers of the operator, his hand remaining supported on the support zone. The arc 16 has two ends and the knob 20 is positioned at one of the ends of the arc 16. In the case of an ambidextrous device, the device comprises two identical knobs 20 and 21, the knob 20 being associated with the support zone 17 and the knob 21 with the support zone 18. The two knobs 20 and 21 are each arranged at one of the ends of the arc 16.
(16) Without changing its support on the palm rest, the hand 13 of the operator can operate the designator and the knob associated with the relevant support zone. In
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(18) In one particular embodiment, the knob 21 is configured to allow two choices of values, each in a series, and binary acquisition 25 in relation to one of the chosen values. In this particular embodiment, the knob 21 comprises two concentric rings 23 and 24 on which the operator may place his fingers. The rings are each configured for selecting from a choice of values and a push-button switch 25 configured for the binary acquisition. The rings 23 and 24 can both rotate independently of one another about the same axis 26. The rings 23 and 24 are advantageously knurled or ribbed to allow better handling between the operator's fingers. Each of the rings 23 and 24 drives a rotary switch that allows a section to be made. The rotary switch may comprise several discrete positions distributed about the axis 26. Alternatively, the relevant ring may drive the wiper of a potentiometer allowing the selection of a value linearly in a continuous range.
(19) The ring 23 may take the form of a substantially flat washer the plane of which is perpendicular to the axis 26. Other shapes are of course possible, such as a frustum of axis 26 and of vertex angle ?.sub.2 or even a portion of a cylinder for example. In the case of a flat washer, the vertex angle ?.sub.2 is considered to be equal to 90?. In the example depicted, the ring 24 has a cylindrical or slightly conical shape with a vertex angle ?.sub.1 the largest diameter of which is less than or equal to the smallest diameter of the ring 23. In the case of a cylindrical shape, the vertex angle ?.sub.2 is considered to be equal to 0?. The angle ?.sub.2 is advantageously greater than the angle ?.sub.1 in order to make the knob easier for an operator to manipulate. In the example depicted, the smallest diameter d of the ring 23 coincides with the largest diameter of the ring 24. The vertex angles satisfy the relationship:
0???.sub.1<??.sub.2?90?.
(20) In the embodiment depicted, the switch 25 is arranged at the center of the ring 24. It is configured to be manipulated in a translational movement along the axis 26. The switch 25 has a circular support surface arranged at the center of the ring 24.
(21) The knob 21 may be associated with the choosing and validating of a single value. More specifically, the ring 23 may allow a coarse adjustment of or rapid scrolling through possible values. The ring 24 may allow fine adjustment or slow scrolling around the value chosen using the ring 23. Finally, the switch may allow the value to be validated once the two coarse, and fine, adjustments have been made.
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(23) In instances in which the knob 21 allows just one single choice of value in a series, the two rings 23 and 24 can be kept, these then being joined together and turning simultaneously. This ring with two zones 23 and 24 may be referred to as a fused assembly. The operator can use the zone 23 to turn the ring rapidly (
(24) In addition to these three actuators, the knob 21 may be configured to allow an additional data input by means of a rotation of the knob about an axis perpendicular to the axis 26. In other words, the knob has a joystick or rocker switch function. The joystick function allows a data item to be selected linearly from a given range and the switch function allows a binary data item to be selected. The knob 21 may be configured to pivot about one or two axes perpendicular to the axis 26. These two axes of pivoting are perpendicular to one another. They are situated in a plane positioned at the base of the ring 23.
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(28) It is of course possible for the pilot to have access to the knob 20, as depicted in
(29) In other words, the two knobs 20 and 21 are intended to be manipulated either by one and the same operator or by two operators positioned differently with respect to the sphere 11.
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