1. A rubber crawler for traction of a tracked vehicle, said rubber crawler comprising an endless rubber belt body for revolving around first and second members that are spaced from each other, said belt body bending when revolving around the first and second members, said belt body having a length direction, said belt body comprising an outer peripheral face including a plurality of lugs that protrude outwardly from said belt body, each lug of said plurality of lugs comprising: (i) a tread surface at an outermost end of said lug; and (ii) a sidewall extending outwardly from said belt body to said tread surface, said sidewall comprising a groove extending transversely to said length direction of said belt body, said lug comprising deformable material such that, when said lug bends around a given one of the first and second members, said groove deforms to facilitate removal of soil material contained in said groove.
2. A rubber crawler as defined in claim 1, wherein said groove is a first groove, wherein said sidewall comprises a second groove extending transversely to said length direction of said belt body and being generally below said first groove, and wherein said deformable material is such that, when said lug bends around the given one of the first and second members, said first and second grooves deform to facilitate removal of soil material contained in said first and second grooves.
3. A rubber crawler as defined in claim 2, wherein said sidewall further comprises a third groove extending transversely to said length direction of said belt body and being generally below said second groove, and wherein said deformable material is such that, when said lug bends around the given one of the first and second members, said first, second, and third grooves deform to facilitate removal of soil material contained in said first, second, and third grooves.
4. A rubber crawler as defined in claim 2, wherein said first and second grooves have a combined height and said sidewall has a height, said combined height of said first and second grooves being substantially equal to said height of said sidewall along at least part of said sidewall.
5. A rubber crawler as defined in claim 1, wherein said groove has a cross-section which widens in a direction from an interior of said lug towards an exterior of said lug.
6. A rubber crawler as defined in claim 1, wherein said groove has a cross-section comprising a generally arcuate part.
7. A rubber crawler as defined in claim 6, wherein said cross-section of said groove comprises a generally linear part.
8. A rubber crawler as defined in claim 1, wherein said deformable material has a hardness between 30 durometer Shore A and 80 durometer Shore A.
9. A rubber crawler as defined in claim 1, wherein a dimension of said tread surface in said length direction of said belt body is greater than a height of said sidewall.
10. A rubber crawler as defined in claim 1, wherein said sidewall is a first sidewall, said lug further comprises a second sidewall opposite said first sidewall and, when said lug moves from the first member to the second member as said belt body revolves around the first and second members, said first sidewall faces the first member.
11. A rubber crawler for traction of a tracked vehicle, said rubber crawler comprising an endless rubber belt body for revolving around first and second members that are spaced from each other, said belt body bending when revolving around the first and second members, said belt body having a length direction, said belt body comprising an outer peripheral face including a plurality of lugs that protrude outwardly from said belt body, each lug of said plurality of lugs comprising: (i) a tread surface at an outermost end of said lug; and (ii) a sidewall extending outwardly from said belt body to said tread surface, a maximum dimension of said tread surface in said length direction of said belt body being greater than a height of said sidewall, said sidewall comprising a groove extending transversely to said length direction of said belt body, said lug comprising deformable material such that, when said lug bends around a given one of the first and second members, said groove deforms.
12. A rubber crawler for traction of a tracked vehicle, said rubber crawler being revolvable around a plurality of wheels of the tracked vehicle, said rubber crawler comprising an endless rubber belt comprising an inner side for facing the plurality of wheels and a ground-contacting outer side for contacting the ground, said ground-contacting outer side comprising a plurality of traction lugs that project outwardly and are distributed along a length direction of said rubber crawler, each traction lug of said plurality of traction lugs comprising: (a) a base; (b) a tread surface at an outermost end of said traction lug; and (c) a sidewall extending outwardly from said base to said tread surface and extending transversely to said length direction of said rubber crawler, said sidewall comprising a groove, said groove having a depth measured perpendicularly from an imaginary straight line interconnecting two points of said sidewall which delimit said groove, said traction lug comprising deformable material such that, when said traction lug bends around a wheel of the plurality of wheels, said groove deforms.
13. A rubber crawler as defined in claim 12, wherein, when said groove deforms as said traction lug bends around the wheel, said depth of said groove decreases and a bottom of said groove moves outwardly.
14. A rubber crawler as defined in claim 12, wherein, when said groove deforms as said traction lug bends around the wheel, said groove tends to push soil material contained in said groove out of said groove.
15. A rubber crawler as defined in claim 12, wherein a maximum dimension of said tread surface in said length direction of said rubber crawler is greater than a height of said sidewall.
16. A rubber crawler as defined in claim 12, wherein said groove is a first groove, said sidewall comprising a second groove extending transversely to said length direction of said rubber crawler and disposed generally below said first groove, said second groove having a depth measured perpendicularly from an imaginary straight line interconnecting two points of said sidewall which delimit said second groove, said deformable material being such that, when said traction lug bends around the wheel, said first and second grooves deform.
17. A rubber crawler as defined in claim 16, wherein said first groove and said second groove are contiguous such that a given one of said two points of said sidewall which delimit said first groove is a given one of said two points of said sidewall which delimit said second groove.
18. A rubber crawler as defined in claim 16, wherein said sidewall has a height and said first groove and said second groove have a combined height which is substantially equal to said height of said sidewall along at least part of said sidewall.
19. A rubber crawler as defined in claim 12, wherein said groove extends along substantially an entirety of a length of said sidewall.
20. A rubber crawler as defined in claim 12, wherein said sidewall is a first sidewall, said traction lug comprises a second sidewall opposite said first sidewall and, when said traction lug moves from a front wheel of the plurality of wheels to a back wheel of the plurality of wheels as said rubber crawler revolves around the plurality of wheels, said first sidewall faces the front wheel.
21. A crawler for propelling a tracked vehicle on a ground surface, the tracked vehicle comprising a crawler drive arrangement including at least one wheel for imparting movement to said crawler along a drive direction, said crawler comprising an endless belt for mounting on the crawler drive arrangement, said endless belt comprising a body and a plurality of traction lugs projecting from said body, each traction lug comprising (i) a base proximal to said body, (ii) an outermost surface distal to said body and defining a ground-engaging interface between said traction lug and the ground surface, and (iii) a sidewall extending between said base and the ground-engaging interface, said sidewall extending in a direction that is non-parallel to said drive direction, said sidewall including a recess configured to resiliently distort when said traction lug bends around the wheel of the crawler drive arrangement.
22. A crawler as defined in claim 21, wherein said sidewall defines an angle of at least 45\xb0 relative to a normal to said outermost surface.
23. A crawler as defined in claim 21, wherein said recess extends longitudinally along a direction that is transverse to said drive direction.
24. A crawler as defined in claim 21, wherein said recess has a cross-sectional configuration that varies when said traction lug bends around the wheel of the crawler drive arrangement.
25. A crawler as defined in claim 24, wherein said recess becomes shallower when said traction lug bends around the wheel of the crawler drive arrangement.
26. A crawler as defined in claim 24, wherein said sidewall includes a plurality of recesses, extending side-by-side, configured to resiliently distort when said traction lug bends around the wheel of the crawler drive arrangement.
27. A crawler as defined in claim 24, wherein said cross-sectional configuration of said recess has a portion that is arcuate.
28. A crawler as defined in claim 21, wherein said traction lug tapers from said base to said outermost surface.
29. A crawler as defined in claim 21, wherein the ground surface materializes an imaginary ground plane and said recess is located on said side wall such that, when said outermost surface of said traction lug rests on the ground surface, said recess is spaced apart from the imaginary ground plane.
30. A crawler as defined in claim 21, wherein a maximum dimension of said outermost surface in said drive direction is greater than a height of said sidewall.
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. A non-electrical intermetallic thermal sensor, comprising:
a hermetically sealed housing;
at least one layer of electronegative metal disposed in said housing, wherein said electronegative metal comprises tin (Sn); and
at least one layer of active lithiummagnesium alloy disposed in said housing, wherein each said layer(s) of active lithiummagnesium alloy disposed in abutting interface with each said layer(s) of electronegative metal.
2. The sensor according to claim 1, wherein each said layer(s) of said electronegative metal comprises tin (Sn), each said layer(s) of active lithiummagnesium alloy comprises about 75 weight % to about 99 weight % of Lithium (Li), and about 1 weight % to about 25 weight % Magnesium (Mg).
3. The sensor according to claim 2, wherein each said layer(s) of said electronegative metal comprises tin (Sn), each said layer(s) of active lithiummagnesium alloy comprises about 80 weight % to about 90 weight % of Lithium (Li), and about 10 weight % to about 20 weight % Magnesium (Mg).
4. The sensor according to claim 1, wherein said sensors has high trigger temperatures in a range of about 360\xb0 F. to about 430\xb0 F.
5. The sensor according to claim 4, wherein said sensors has high trigger temperatures in a range of about 380\xb0 F. to about 405\xb0 F.
6. The sensor according to claim 1, further comprising at least one diffusion barrier means for inhibiting the diffusion of said active lithiummagnesium alloy layer into said electronegative layer or vice versa.
7. The sensor according to claim 6, wherein said diffusion barrier means is disposed upon a surface of one said layers in abutting contact with a surface of other said layer.
8. The sensor according to claim 7, wherein said diffusion barrier means is an electroplated metal layer that is dissolved by active lithiummagnesium alloy upon melting.
9. The sensor according to claim 8, wherein said electroplated layer includes metal comprising of at least one of copper andor nickel.
10. The sensor according to claim 8, wherein said electroplated layer has a thickness in a range of about 0.0001 to about 0.0002 inch.
11. The sensor according to claim 6, wherein said diffusion barrier means for inhibiting the diffusion of said active lithiummagnesium alloy layer into said electronegative layer is a gaseous layer.
12. The sensor according to claim 1, wherein said layer of electronegative metal comprising tin (Sn) is substantially free of impurities.
13. The sensor according to claim 1, wherein said layer of active lithiummagnesium alloy is wafer-shaped and said layer of electronegative metal is wafer-shaped.
14. The sensor according to claim 1, wherein said layer of active lithiummagnesium alloy and said layer of electronegative metal is wafer-shaped.
15. The sensor according to claim 1, wherein said layer of active lithiummagnesium alloy is washer-shaped and said layer of electronegative metal is washer-shaped.
16. The sensor according to claim 1, wherein said housing has a centrally disposed tubular-shaped extension from one end of said housing and a continuous neck transitioning said housing into said extension or jelly roll configuration.
17. The sensor according to claim 16, further comprising a deposit of thermite within said housing extension and in abutment with the last of said layers disposed in the end of said housing adjoining said extension.
18. The sensor according to claim 17, further comprising a thermite trigger pellet disposed between said thermite and the abutting surface of said last layer disposed therein.
19. The sensor according to claim 18, wherein said pellet is composed of metallic selenium.
20. The sensor according to claim 15, wherein stacking of said washer-shaped layers in said housing defines a well.