Portable computer vehicle dock
09557768 ยท 2017-01-31
Inventors
Cpc classification
G06F1/1656
PHYSICS
F16B2/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T403/595
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16B2/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An automatically-lockable, shock absorbing dock for a portable computer, the dock comprising: a top plate configured to receive a portable computer, said top plate comprising: an automatic locking mechanism for securing the portable computer to said top plate, a set of connectivity ports, and a port replicator configured to connect the portable computer to the set of connectivity ports; and multiple pairs of shock absorbers connected to a bottom surface of said top plate and configured to connect to a target surface, wherein each pair of shock absorbers is coaxially-positioned and connected to opposite sides of said bottom surface, and wherein each shock absorber has an essentially equal resiliency in its x, y and z axes.
Claims
1. A shock absorbing device for essentially isotropic resiliency, comprising: an upper part comprising an interface orifice and at least one upper attachment element that is disposed at a top surface of said upper part, wherein a central axis of said interface orifice is in a horizontal Y direction; at least one lower part, each comprising: (a) a base plate comprising at least one lower attachment element disposed at a bottom surface of said base plate, wherein said bottom surface is substantially parallel to said top surface of said upper part, and (b) an upright plate comprising a hinge securing element, wherein said upright plate is substantially perpendicular to said bottom surface, and wherein said hinge securing element is substantially coaxial with said interface orifice of said upper part; a hinge secured to said hinge securing element, wherein said hinge is substantially coaxial with said interface orifice and said hinge securing element; and a flexible interface element comprising: (i) a hinge orifice, wherein said hinge is positioned through said hinge orifice, (ii) at least one flat side flush with said upright plate and being perpendicular to said horizontal Y direction, and (iii) an annular recess flush with said interface orifice of said upper part; wherein said flexible interface element is positioned within said interface orifice to flexibly couple said upper part to said at least one lower part with essentially isotropic resiliency.
2. A computer dock for a portable computer comprising a pair of said shock absorbing device according to claim 1, wherein said computer dock comprises a top plate, configured to receive and suspend a portable computer, attached to said at least one upper attachment element, wherein said top plate comprises: (a) an automatic locking mechanism for securing the portable computer to said top plate, (b) a set of connectivity ports, and (c) a port replicator configured to connect the portable computer to the set of connectivity ports; wherein said at least one lower attachment element is configured to attach to a target surface, wherein said horizontal Y directions of said pair are substantially aligned.
3. The computer dock of claim 2, further comprising a second pair of said shock absorbing device, wherein said horizontal Y directions of said second pair are substantially aligned.
4. The computer dock of claim 3, wherein said pair and said second pair are positioned on said top plate such that a center of gravity of the suspended portable computer is essentially at an intersection of said horizontal Y directions.
5. The computer dock of claim 3, wherein said pair and said second pair are positioned on said top plate such that a center of gravity of a combination of the suspended portable computer and the computer dock is essentially at an intersection of said horizontal Y directions.
6. The shock absorbing device of claim 1, wherein said hinge is configured to secure said upper part and at least one lower part upon structural failure of said flexible interface element.
7. The shock absorbing device of claim 1, wherein said flexible interface comprises at least one layer of flexible material from a group comprising a rubber material, a natural rubber material, a synthetic rubber material, a latex material, an elastomeric material, a latex material, a synthetic viscoelastic urethane polymer material, Sorbothane, and an elastic polymer material.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Exemplary embodiments are illustrated in referenced figures. Dimensions of components and features shown in the figures are generally chosen for convenience and clarity of presentation and are not necessarily shown to scale. The figures are listed below.
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DETAILED DESCRIPTION
(18) An aspect of some embodiments relates to a field-usable dock (or a docking station) for a portable computer, which includes a suspension mechanism configured to protect the computer from shocks resulting, for example, from driving through rough terrain and/or the like. Additionally or alternatively, the dock may include an automatic locking mechanism for securing the computer to the dock in a convenient yet forceful manner. A port replicator may be included in the dock, enabling connection between the portable computer and a set of connectivity ports provided in or on the dock.
(19) The portable computer, in an embodiment, may be a rugged computer adapted for field use. Such computers are widely used today as tactical aids for security forces. An example of one widely-used rugged computer is the Panasonic Toughbook CF19, which is a fully-rugged, convertible tablet PC having a 10.1 display. However, even rugged computers, not to mention regular computers, may be damaged if used extensively in vehicles travelling through hard terrains or suffering from various shocks or impacts. The present field-usable dock provides for excellent shock absorption in such scenarios.
(20) Reference is now made to
(21) Dock 100 may include a top plate 102 which is configured to receive a portable computer. An optional skirt 104 may be connected to, attached to or integrally formed with top plate 102, for covering one or more sides of dock 100 for aesthetic and/or protection reasons. Furthermore, optional skirt 104 may include a bottom cover (for example, a guard plate 174 shown in
(22) Manufacturing dock 100 using CNC techniques may further contribute to the dock's cooling properties. Since CNC manufacturing means that dock 100 is made of only a few pieces of material, such as Aluminum, the material is able to effectively conduct heat out of the dock. Optionally, this spares the need for a fan in dock 100.
(23) Multiple elevation elements, such as four elevation elements 180a, 180b, 180c and 180d may be disposed on top plate 102. Elevation elements 180a, 180b, 180c and 180d may be made of a rigid or semi-rigid material, optionally polymeric. With reference to
(24) Locking Mechanism
(25) An automatic locking mechanism may be provided on top plate 102. The automatic locking mechanism may include one or more, for example two hooks 110a-b for containing and securing one or more sides of the computer. An automatically-lockable handle 112 may be positioned essentially opposite of at least one of two hooks 110a-b.
(26) Reference is now made to
(27) Handle 112 may include a base 150 which is connected to, attached to or integrally formed with top plate 102. In a different embodiment (not shown), a designated area, protrusion or depression in the top plate may serve as a base for the handle. A hinge 152 may be provided in base 150, over which are connected, directly or indirectly, an object locking tab 154, a handle locking tab 156 and a handle head 158. When handle 112 is in its open position, handle locking tab 156 may be pushed against a protrusion 150a in base 150 using a resilient member, such as a spring 160, provided between handle head 158 and the handle locking tab. The pushing force, whose vector is indented rearwards in relation to the axis of rotation about hinge 152, locks handle 112 in an open position, thereby preventing free motion and damage to the handle when a portable computer 130 is not docked.
(28) Reference is now made back to
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(30) In sum, the locking mechanism allows for convenient docking of computer 130, without necessitating the user's physical interaction with the mechanism; the sole action of pushing computer 130 to position indirectly causes the locking mechanism to operate.
(31) Back to
(32) In an embodiment (not shown), the locking mechanism, which includes the handle and optionally the one or more hooks, may be used for a different application. Those of skill in the art will realize the necessary adaptations of the handle, the hooks and/or their positioning, in order to suit them for securing an object, other than a portable computer, to a target surface.
(33) Suspension Mechanism and Shock Absorption
(34) Reference is now made to
(35) Shock absorbers 120, 122, 124 and 126 may be arranged as two coaxial pairsa first pair which is comprised of shock absorbers 120 and 126 positioned on the X axis, and a second pair which is comprised of shock absorbers 122 and 124 positioned on the Y axis. Each member of a pair is positioned at an opposite side of dock 100; in the exemplary configuration shown in this figure, the pairs are positioned in opposite corners of the dock. The closer shock absorbers 120, 122, 124 and 126 are to the edges of dock 100, the better the shock absorption they provide. In this exemplary configuration, shock absorbers 120, 122, 124 and 126 are positioned almost at the edge of dock 100.
(36) Optionally, shock absorbers 120, 122, 124 and 126 are also arranged such that the coaxes (which are essentially the center axes) of the pairs intersect at a point CG which is directly above, below or at a center of gravity of either the computer alone or of the combined dock and computer. Each one of the coaxial arrangement and the arrangement in relation to the CG may enhance the shock absorption qualities of dock 100. Together, these arrangements provide even better shock absorption.
(37) The advantages of the coaxial positioning of the members of each pair may be better understood by observing
(38) In this example, top part 120a is a single element connectable to top plate 102 of
(39) Furthermore, in other embodiments (not shown), a similar shock absorber is constructed using a different number of elements in its lower and/or upper parts, and/or is connected to the top plate and to the mounting surface using other meanswhile maintaining the principles laid out herein, as will be recognized by those of skill in the art.
(40) A flexible interface 120d may be provided on either side of upper part 120a, around hinge 120k, so as to interface between the upper part and lower part 120b. Flexible interface 120d may be made of one or more layers of flexible material such as rubber or the like. Flexible interface 120d exhibits such a degree of flexibility, resulting from both its material and measurements, which provides for an essentially equal degree of shock absorption on the X, Y and Z axes. This, together with the coaxial pair arrangement and optionally the arrangement in relation to the CG, provides for a balanced and efficient suspension for computer 130. In an embodiment, the term essentially equal degree of shock absorption refers to differences of 5% or less in flexibility between the X, Y and Z axes. In another embodiment, the term essentially equal degree of shock absorption refers to differences of 10% or less in flexibility between the X, Y and Z axes. In yet a further embodiment, the term essentially equal degree of shock absorption refers to differences of 15% or less in flexibility between the X, Y and Z axes. In other embodiments, the term essentially equal degree of shock absorption refers to differences of more than 15% in flexibility between the X, Y and Z axes.
(41) Advantageously, hinge 120k provides shock absorber 120 with enhanced safety qualities; the hinge ensures that if flexible interface 120d fails structurally and becomes detached or torn, upper part 120a and lower part 120b will remain secured to one another through the hinge. Detachment of flexible interface 120d may result, for example, from natural wear and/or from excessive strain exerted on it. Hinge 120k ensures the integrity of shock absorber 120 even in extreme conditions, when flexible interface 120d is unable to carry the load.
(42) In an embodiment (not shown), the suspension mechanism, which includes the arranged shock absorbers, may be used for a different application. Those of skill in the art will realize the necessary adaptations of the shock absorber arrangement in order to suit it for suspending an object other than a portable computer.
(43) Electronic Interface
(44) Reference is now made to
(45) PCB 170 and/or 172 may be of a high rigidity grade and optionally complies with rigidity standards. For example, PCB 170 and/or 172 may be thicker than non-high rigidity grade PCB's; for instance, the PCB may be between 1.2 mm and 1.8 mm thick. PCB 170 and/or 172, as well as any electronic components disposed on it, may be made of materials able to withstand relatively high temperatures, which are not common in regular operating environments of computers.
(46) An optional guard plate 174 may be positioned below top plate 102 and peripherally of otherwise connected to skirt 104 of
(47) A Faraday cage may be provided on either guard plate 174 or skirt 104 of
(48) Mounting Bracket
(49) Reference is now made to
(50) In the claims and description of the application, each of the words comprise include and have, and forms thereof, are not necessarily limited to members in a list with which the words may be associated. In addition, where there are inconsistencies between this application and any document incorporated by reference, it is hereby intended that the present application controls.