1. Field of the Invention
The present invention relates to a suction device, and in particular to a stepwise powerful suction device that is controlled to selectively generate suction forces of different magnitudes for different applications in holding panels or boards of different thicknesses.
2. The Related Arts
The conventional suction device has disadvantages. For example, the suction force so induced by the suction element is not adjustable so that it only provides a constant magnitude. This works for holding thick glass panels or thick boards that are capable to endure a large force without breaking or fracture, but when applied to a glass panel or a board of a small thickness, which is capable to sustain a large force, the fixed magnitude suction force generated by the conventional suction device may unexpectedly break the glass panel or board, leading to property loss or even damage to people.
In view of the above discussed drawbacks, it is desired to have a suction device that overcomes the above problems.
Thus, the present invention aims to solve the problem that the conventional suction device provides only a fixed-magnitude suction force by switching a lever to lift an upright post of a suction element and that the suction force is not adjustable and is thus only applicable to panels or boards of sufficient thicknesses and not applicable to panels or boards of small thicknesses that may be broken by the fixed magnitude of the suction force.
To solve such problems and drawbacks, the present invention provides a stepwise powerful suction device comprising a plurality of suction holders, a plurality of suction elements, a plurality of resilient elements, a support frame, and a plurality of rotary knobs. The support frame and the rotary knobs are integrally formed together. A portion of the support frame forms a handle. Each suction element has an upright post extending through the corresponding resilient element and the corresponding suction holder. Each suction holder forms a multi-step stepwise recess and the corresponding rotary knob has a handgrip forming a multi-step stepwise projection mating the multi-step stepwise recess in a stacked manner. Safety locking means is provided between the multi-step stepwise recess and the multi-step stepwise projection. A spacer ring and a bolt are received in a bore of the handgrip to secure the upright post of the suction element to the handgrip. The suction holder forms a stop on an outside surface thereof and the handgrip forms a corresponding raised portion. When the handgrip is switched by rotation from a neutral position to a first engaging position, the multi-step stepwise projection is caused to move respect to the multi-step stepwise recess to have steps of multi-step stepwise projection engaging different steps of the multi-step stepwise recess thereby moving the suction element upward by a first distance that induce a first magnitude of suction force. Further rotation of the handgrip toward subsequent engaging positions causes the multi-step stepwise projection to set at different steps of the multi-step stepwise recess and lifting the suction element by different distances that induces different magnitudes of the suction force. This allows the suction device of the present invention to be applicable to panels or boards of different size without applying excessive suction force thereto.
The effectiveness of the present invention is that, compared to the conventional suction device that generates only a fixed magnitude suction force that is only applicable to panels or boards of sufficient thicknesses and may break panels or boards of small thicknesses, the stepwise suction device of the present invention is controllable to provide a suction force of various magnitudes for applications to panels or boards of a wide range of thickness without applying an excessive force to undesirably cause breaking of the panel or board held thereby.
The present invention will be apparent to those skilled in the art by reading the following description of a preferred embodiment thereof, with reference to the attached drawings, wherein:
The present invention provides a stepwise powerful suction device, which is particularly illustrated in
Each suction element 22 comprises an upright post 221 from which the guide pegs 222 extend sideways to make the suction element 22 vertically movable, but not angularly movable or rotatable. A top end of the upright post 221 forms an inner-threaded hole 223. Each rotary knob 30 comprises a handgrip 31, a spacer ring 32, a bolt 33, and a cap 34. The handgrip 31 has an under surface that forms a multi-step stepwise projection 50 corresponding in geometry and size to the multi-step stepwise recess 40 of the corresponding suction holder 21. The multi-step stepwise projection 50 is comprised of two sets of a fourth step 51, which is of a greatest height, a third step 52, which is of a second greatest height, a second step 53, which is of a second lowest height, and a first step 54, which is of a lowest height. The steps 51, 52, 53, 54 of the two sets are sequentially arranged and preferably equally spaced and respectively correspond to the eight sequentially arranged position marks of the corresponding suction holder 21 in the sequence of 3, 2, 1, 0, 3, 2, 1, 0.
To assemble, the upright post 221 of each suction element 22 extends through the corresponding resilient element 23 and the central bore 211 of the corresponding suction holder 21 with the guide pegs 222 slidably received in the slots 212 of the suction holder 21. The multi-step stepwise projection 50 of each handgrip 31 is set in and overlapping stacked on the multi-step stepwise recess 40 of the corresponding suction holder 21. Each handgrip 31 forms a stepped bore 312 (see
Safety locking means is provided between the multi-step stepwise recess 40 and the multi-step stepwise projection 50, comprising a groove 401 formed in each of the steps 41-44 of the multi-step stepwise recess 40 and a corresponding rib 501 formed on each of the steps 51-54 of the multi-step stepwise projection 50. When the multi-step stepwise projection 50 undergoes an angular movement with respect to the multi-step stepwise recess 40 to reach each one of a plurality predetermined engaging positions that is defined by inter-engagement between the steps 41-44 and the steps 51-54, the rib 501 of the step 51-54 of the multi-step stepwise projection 50 and the groove 401 of the inter-engaging step 41-44 of the multi-step stepwise recess 40 engage each other to lock the step 51-54 of the multi-step stepwise projection 50 with respect to the steps 41-44 of the multi-step stepwise recess 40. This prevents the handgrip 31 that forms the multi-step stepwise projection 50 from unexpectedly disengaging from and moving away from the designated engaging position.
It is apparent that the multi-step stepwise recess 40 of the suction holder 21 can be comprised of less or more steps, such as three angularly and equally spaced steps that are sequentially of a greatest depth, a second greatest depth, and a shallowest depth, or alternatively six angularly and equally spaced steps, which are sequentially of a greatest depth, a second greatest depth, a shallowest depth, the greatest depth, the second greatest depth, and the shallowest depth.
Similarly, the multi-step stepwise projection 50 formed on the under surface of the handgrip 31 corresponding to the multi-step stepwise recess 40 of the suction holder 21 can alternatively be comprised of at least three angularly and equally spaced steps that are sequentially of a greatest height, a second greatest height, and a lowest height, or further alternatively at least six angularly and equally spaced steps, which are sequentially of a greatest height, a second greatest height, a lowest height, the greatest height, the second greatest height, and the lowest height.
Referring to
Referring to
Referring to
The advantages of the stepwise powerful suction device of the present invention are:
(1) A novel structure for realizing stepwise powerful suction is provided, which may employ a suction element assembly comprising a single suction element, two suction elements, three suction elements, or more than three suction elements to provide a powerful suction force and which selectively generate a suction force of a proper magnitude in accordance with the thickness of a panel or board to be held, so that the stepwise powerful suction device is applicable to panels or boards of various thicknesses and the suction force generated thereby is of a proper magnitude that does not cause breaking or fracture of the panel or board. The operation is thus safe and risk of breaking glass panels or boards can be reduced.
(2) A unique feature of the stepwise powerful suction device of the present invention is to replace the conventional switching type suction generating operation with mated multi-step stepwise structures, which are operated through rotation of a rotary handgrip, wherein, in particular, the handgrip forms a multi-step stepwise projection that stackingly mate a multi-step stepwise recess formed in a suction holder so that the rotation of the handgrip causes the multi-step stepwise projection to climb upward the multi-step stepwise recess in a multiple step manner of which each step represents an individual magnitude of the suction force so generated. Thus, the stepwise powerful suction device is applicable to a glass panel or a board of a large thickness by generating a large suction force and is also applicable to a glass panel or a board of a small thickness by generating a small suction force. The stepwise powerful suction device is thus applicable to panels or boards of various thicknesses.
Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
2127154 | Burk | Aug 1938 | A |
2131687 | Kaplan | Sep 1938 | A |
2212755 | Solomon | Aug 1940 | A |
2287576 | Solomon | Jun 1942 | A |
2351666 | Cohen | Jun 1944 | A |
2420811 | Brewster et al. | May 1947 | A |
3219377 | Allen | Nov 1965 | A |
4932701 | Cornillier et al. | Jun 1990 | A |
5042418 | Hoover et al. | Aug 1991 | A |
5407338 | Callahan et al. | Apr 1995 | A |
Number | Date | Country | |
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20100133863 A1 | Jun 2010 | US |