1461158394-0e0e345b-6ec3-44f3-a5dc-6825b66ac95d

What is claimed is:

1. A linear motion guide unit, comprising a track rail to be mounted to a bed and having a pair of side walls extending lengthwise in parallel with one another, and a slider movable lengthwise along the track rail in a guiding way defined between the side walls of the track rail, wherein the side walls of the track rail are each made on sidewise outside surface thereof with a bulged portion having a width across from a lower surface of the side wall to a level above the center of gravity of the track rail, and also the bulged portion has a surface finished in a surface of reference matching a mating surface of reference on the bed.
2. A linear motion guide unit constructed as defined in claim 1 wherein the bulged portion is made on any one of the side walls of the track rail in a way extending in longitudinal direction of the track rail.
3. A linear motion guide unit constructed as defined in claim 1 wherein the bulged portion is made on either only any one or both of the side walls of the track rail.
4. A linear motion guide unit constructed as defined in claim 1 wherein the track rail is comprised of the widthwise opposing side walls and a bottom interconnecting the side walls with each other to define a recess of U-shape in cross section of the track rail.
5. A linear motion guide unit constructed as defined in claim 1 wherein the bulged portion out of the side wall has the width that spreads across the center of gravity of the track rail by more than 1 mm.
6. A linear motion guide unit constructed as defined in claim 1 wherein the bulged portion out of the side wall has the width that is at most up to half a height of the side wall of the track rail.
7. A linear motion guide unit constructed as defined in claim 1 wherein the slider has an upper seal to close a clearance left between a fore-and-aft side of the slider and a lengthwise inside surface of any one of the side walls of the track rail, while a recess is cut in the inside surface of the side wall in a way extending lengthwise of the track rail so as to allow the upper seal to come in sliding contact at a lengthwise edge thereof with the recess.
8. A linear motion guide unit, comprising a track rail to be mounted to a bed and having a pair of side walls extending lengthwise in parallel with one another, and a slider movable lengthwise along the track rail in a guiding way defined between the side walls of the track rail, wherein the slider has an upper seal to close a clearance left between a fore-and-aft side of the slider and a lengthwise inside surface of any one of the side walls of the track rail, while a recess is cut in the inside surface of the side wall in a way extending lengthwise of the track rail so as to allow the upper seal to come in sliding contact at a lip thereof with the recess.
9. A linear motion guide unit constructed as defined in claim 7 wherein the lip of the upper seal fits for sliding movement in the recess on the side wall in such a way that a lengthwise edge of the lip approaches the depth of the recesses as close as possible, with little clearance or no clearance remaining between them.
10. A linear motion guide unit constructed as defined in claim 7 wherein the recess cut in the inside surface of the side wall is defined by opposite flanks extending lengthwise of the inside surface, with askew a preselected angle with respect to the associated inside surface, and a flat merged along opposite lengthwise edges thereof with the flanks to provide a smooth surface coming into sliding engagement with the lip of the upper seal.
11. A linear motion guide unit constructed as defined in claim 1 wherein the slider is comprised of a carriage made on widthwise opposite sides thereof with raceway grooves, one to each side, which are arranged in opposition to their associated raceway grooves lying on inside surfaces of the side walls of the track rail, end caps arranged on forward and aft ends of the carriage, end seals attached on outside faces of the end caps, one to each cap, and rolling elements allowed to run through load raceways each of which is defined between any one of the raceway grooves on the carriage and the associated one of the raceway grooves on the side walls of the track rail.
12. A linear motion guide unit constructed as defined in claim 11 wherein the upper seal is comprised of a metal backing plate arranged in a manner coming in abutment against the carriage and the end caps, and an elastic member with the lip fastened to the metal backing plate.
13. A linear motion guide unit constructed as defined in claim 12 wherein the lip made on the elastic member in the upper seal gets caved at an upper surface thereof to provide a shape made tapered towards the recess on the track rail.
14. A linear motion guide unit constructed as defined in claim 12 wherein the upper seal includes a major portion extending lengthwise along by sides of the carriage and the end caps, and bent ends at forward-and-aft opposite ends of the major portion to be each placed between any one of the outside surfaces of the end caps and the associated end seal.
15. A linear motion guide unit constructed as defined in claim 14 wherein each bent end of the metal backing plate for the upper seal includes an upper area substantially identical in width with the major portion of the metal backing plate and a lower area extending downwards from the upper area, and the bent ends are brought into engagement with mating areas made on the outside surfaces of the end caps.
16. A linear motion guide unit constructed as defined in claim 7 wherein the lengthwise recesses are made in parallel with the raceway grooves on the inside surfaces of the side walls of the track rail and at the same time cutting the raceway grooves in the inside surfaces.
17. A linear motion guide unit constructed as defined in claim 1 wherein the bottom of the track rail is made therein with bolt holes, in which bolts fit to fasten the track rail to the bed, while the slider is provided at an upper surface thereof with threaded holes that are used to fasten a table thereto.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. An ungrounded type flexible fabric container with a reduced energy of electrostatic discharge for use in a combustible environment without the need for antistatic coatings comprising: a woven static dissipating fabric configured to form the flexible fabric container having side walls, a top feature and a bottom feature; and said woven static dissipating fabric comprises fabric woven of non-conductive tapes, to which a plurality of antistatic yarn segments are woven into or coated onto the fabric at a spacing of from 3 mm to 100 mm and wherein the antistatic yarn segments comprise 80% by weight non-conductive staple fibers and 20% by weight conductive staple fibers, and wherein the conductive staple fibers are fibers having a conductive constituent on an outer surface of a non-conductive constituent and wherein the conductive constituent is formed into one or more longitudinal stripes.
2. An ungrounded type flexible fabric container of claim 1 wherein the woven static dissipating fabric further comprises 11 of 900 denier tapesinch in the warp direction and 9 of 1300 denier tapesinch in the weft direction; wherein tapes further comprise polypropylene homopolymer with ultraviolet inhibitors.
3. An ungrounded type flexible fabric container of claim 2 wherein the conductive staple yarn is woven into the fabric at a spacing from 10 mm to 100 mm.
4. An ungrounded type flexible fabric container of claim 2 wherein the conductive staple yarn is woven into the fabric at a spacing from 10 mm to 100 mm.
5. An ungrounded type flexible fabric container of claim 2 wherein the conductive staple yarn is woven into the fabric at a spacing of 25 mm.
6. An ungrounded type flexible fabric container of claim 2 wherein the static dissipating fabric further comprises a polymeric coating.
7. An ungrounded type flexible fabric container of claim 6 wherein the polymeric coating comprises 79.5% weight polypropylene homopolymer; 19% weight low density polyethylene polymer and 1.5% weight ultraviolet inhibitors.
8. An ungrounded type flexible fabric container of claim 7 wherein the conductive staple yarn is woven into the fabric at a spacing of 25 mm.
9. An ungrounded type flexible fabric container with a reduced energy of electrostatic discharge for use in a combustible environment without the need for antistatic coatings comprising: a woven fabric configured to form the flexible fabric container having side walls, a top feature and a bottom feature; and said woven fabric made from static dissipating fabric comprising fabric woven of non-conductive tapes of polypropylene having a melt flow index of 1-6 g10 min. and wherein the tapes have a denier from 500 to 4000 and tape width from 0.07 to 0.40 inches, to which a plurality of antistatic yarn segments are woven into or coated onto the fabric at a spacing of from 3 mm to 100 mm and wherein the antistatic yarn segments comprise 80% by weight non-conductive staple fibers and 20% by weight conductive staple fibers, and wherein the conductive staple fibers are fibers having a conductive constituent on an outer surface of a non-conductive constituent and wherein the conductive constituent is formed into one or more longitudinal stripes.
10. The container of claim 9 wherein the fabric further comprises a coating layer of polypropylene polymers having a melt flow index greater than 10 g10 min.
11. An ungrounded type flexible fabric container with a reduced energy of electrostatic discharge for use in a combustible environment comprising: a woven fabric configured to form the flexible fabric container having side walls, a top feature and a bottom feature; and said woven fabric made from static dissipating fabric comprising fabric woven of non-conductive tapes, to which a plurality of antistatic yarn segments are woven into or coated onto the fabric at a spacing of from 3 mm to 100 mm and wherein the antistatic yarn segments comprise 80% by weight non-conductive staple fibers and 20% by weight conductive staple fibers, and wherein the conductive staple fibers comprise a bicomponent conductive staple fiber having 1 or more longitudinal stripes of a carbon loaded conductive constituent on an outer surface of a non-conductive constituent.
12. An ungrounded type flexible fabric container of claim 11 wherein the woven fabric further comprises 11 of 900 denier tapesinch in the warp direction and 9 of 1300 denier tapesinch in the weft direction; wherein tapes further comprise polypropylene homopolymer with ultraviolet inhibitors.
13. An ungrounded type flexible fabric container of claim 11 wherein the conductive staple yarn is woven into the fabric at a spacing of 25 mm.
14. An ungrounded type flexible fabric container of claim 11 wherein the static dissipating fabric further comprises a polymeric coating.
15. An ungrounded type flexible fabric container of claim 14 wherein the polymeric coating comprises 79.5% weight polypropylene homopolymer; 19% weight low density polyethylene polymer and 1.5% weight ultraviolet inhibitors.
16. An ungrounded type flexible fabric container of claim 15 wherein the conductive staple yarn is woven into the fabric at a spacing of 25 mm.
17. An ungrounded type flexible fabric container with a reduced energy of electrostatic discharge for use in a combustible environment without the need for antistatic coatings comprising: a woven fabric configured to form the flexible fabric container having side walls, a top feature and a bottom feature; and said woven fabric made from static dissipating fabric comprising fabric woven of non-conductive tapes of polypropylene having a melt flow index of 1-6 g10 min. and wherein the tapes have a denier from 500 to 4000 and tape width from 0.07 to 0.40 inches, to which a plurality of antistatic yarn segments are woven into or coated onto the fabric at a spacing of from 3 mm to 100 mm and wherein the antistatic yarn segments comprise yarn segments of conductive and non-conductive staple fibers and wherein the conductive staple fibers comprise a bicomponent conductive staple fiber having 1 or more longitudinal stripes of a carbon loaded conductive constituent on an outer surface of a non-conductive constituent.
18. The container of claim 17 wherein the fabric further comprises a coating layer of polypropylene polymers having a melt flow index greater than 10 g10 min.