1461159015-d0b7231d-6217-4f96-a9c5-848a21a3ceb0

1. A digital projection display system comprising a digital projection display, wherein the digital projection display comprises:
an external light source producing as an output a light beam;
an internal optics system including
an integrator that receives the light beam from the light source,
an illumination lens that receives the light beam from the integrator,
an illumination fold mirror that receives the light beam from the illumination lens,
a light director that receives the light beam from the illumination fold mirror,
a digital light modulator that receives the light beam from the light director and spatially modulates the light beam,
a projection lens that receives the light beam in the spatially modulated form from the light director, wherein the projection lens has at least a first projection lens element and a second projection lens element spaced apart from the fist projection lens element,
a projection lens fold mirror disposed between the first projection lens element and the second projection lens element, wherein the light beam passes through the first projection lens element, reflects from the projection lens fold minor, and passes through the second projection lens element, and
a projection fold mirror that receives the light beam from the projection lens and redirects the light beam;

a housing in which the internal optics system is received, but wherein the external light source is located external to the housing; and
a display screen that receives the light beam from the projection fold mirror, wherein the display screen forms a face of the housing.
2. The digital projection display system of claim 1, wherein the light director comprises a TIR prism.
3. The digital projection device of claim 1, wherein the light bean is incident upon the display screen substantially perpendicularly to the display screen.
4. The digital projection display system of claim 1, wherein the display screen has a display screen diagonal dimension DD, wherein the housing has a housing envelope depth HD and a housing envelope volume V, and wherein a quantity (DDHD)V is at least 2\xd710\u22123 in\u22123.
5. The digital projection display system of claim 1, further including
a color wheel positioned to intercept the light beam.
6. The digital projection display system of claim 1, wherein the digital light modulator is a digital micromirror device.
7. The digital projection display system of claim 1 wherein the illumination fold mirror reflects the light beam through an angle of about 80 degrees, the projection lens fold mirror reflects the light beam through an angle of about 90 degrees, the projection fold mirror reflects the light beam through an angle of about 72 degrees, and a throw ratio is about 1.1.
8. The digital projection display system of claim 1, including
an optical fiber extending from the output of the external light source to an input of the internal optics system.
9. The digital projection display system of claim 8, wherein the integrator has an input of an integrator input size and shape, and the optical fiber has an output end size and shape the same as the integrator input size and shape.
10. The digital projection display system of claim 1, wherein the external light source includes at least two light sources, and wherein the digital projection display further includes
an optical fiber extending from the output of each of the external light sources to an input of the internal optics system.
11. The digital projection display system of claim 10, wherein the outputs of the light sources are of different wavelengths.
12. The digital projection display system of claim 1, further including
a second digital projection display having the internal optics system as set forth in claim 1, and wherein both the integrator of the digital projection display and the integrator of the second digital projection display receive their light beams from the external light source.
13. A digital projection display system comprising a digital projection display, wherein the digital projection display comprises:
an external light source producing as an output a light beam;
an internal optics system including
an integrator that receives the light beam from the light source,
an illumination lens that receives the light beam from the integrator,
an illumination fold mirror that receives the light beam from the illumination lens, wherein the illumination fold mirror reflects the light beam through an angle of about 80 degrees,
a TIR prism that receives the light beam from the illumination fold mirror,
a digital micromirror device that receives the light beam from the TIR prism, spatially modulates the light beam, and sends the light beam back to the TIR prism in a spatially modulated form,
a projection lens that receives the light beam in the spatially modulated form from the TIR prism, wherein the projection lens has at least a first projection lens element and a second projection lens element spaced apart from the first projection lens element,
a projection lens fold mirror disposed between the first projection lens element and the second projection lens element, wherein the light beam passes through the first projection lens element, reflects from the projection lens fold minor, and passes though the second projection lens element, and wherein the projection lens fold mirror reflects the light beam through an angle of about 90 degrees, and
a projection fold mirror that receives the light beam from the projection lens and redirects the light beam, wherein the projection fold mirror reflects the light beam through an angle of about 72 degrees;

a housing in which the internal optics system is received, but wherein the external light source is located external to the housing; and
a display screen that receives the light beam from the projection fold mirror, wherein the display screen forms a face of the housing, and wherein the light beam is incident upon the display screen substantially perpendicularly to the display screen.
14. The digital projection display system of claim 13, wherein the display screen has a display screen diagonal dimension DD, wherein the housing has a housing envelope depth HD and a housing envelope volume V, and wherein a quantity (DDHD)V is at least 2\xd710\u22123 in\u22123.
15. The digital projection display system of claim 13, further including
a color wheel positioned to intercept the light beam.
16. The digital projection display system of claim 13, further including
an optical fiber extending from the output of the external light source to an input of the internal optics system.
17. The digital projection display system of claim 16, wherein the integrator has an input of an integrator input size and shape, and the optical fiber has an output end size and shape the same as the integrator input size and shape.
18. The digital projection display system of claim 13, wherein the external light source includes at least two light sources, and wherein the digital projection display further includes
an optical fiber extending from the output of each of the external light sources to an input of the internal otics system.
19. The digital projection display system of claim 18, wherein the outputs of the light sources are of different wavelengths.
20. The digital projection display system of claim 13, further including
a second digital projection display having the internal optics system as set forth in claim 14, and wherein both the integrator of the digital projection display and the integrator of the second digital projection display receive their light beams from the external light source.
21. A digital projection display system, comprising
a single external light source producing as an output a light beam;
at least two digital projection displays, wherein each digital projection display an internal optics system, and
a housing in which the internal optics system is received, but wherein the external light source is located external to the housing
a display screen that receives the light beam from the internal optics system, wherein the display screen forms a face of the housing; and

an optical fiber extending from the output of the external light source to an input of each of the internal optics systems, wherein each optical fiber conveys a portion of the light beam to the internal optics system of each of the digital projection displays.
22. The digital projection display system of claim 21, wherein the display screen has a display screen diagonal dimension DD, wherein the housing has
a housing envelope depth HD and a housing envelope volume V, and wherein a quantity (DDHD)V is at least 2\xd710\u22123 in\u22123.
23. A digital projection display system, comprising
a single external light source producing as an output a light beam;
at least two digital projection displays, wherein each digital projection display comprises
a internal optics system, wherein the internal optics system comprises:
an integrator that receives the light beam from the light source,
an illumination lens that receives the light beam from the integrator,
an illumination fold mirror that receives the light beam from the illumination lens,
a light director that receives the light beam from the illumination fold mirror,
a digital lit modulator that receives the light beam from the light director and spatially modulates the light beam,
a projection lens that receives the light beam in the spatially modulated form from the light director, wherein the projection lens has at least a first projection lens element and a second projection lens element spaced apart from the first projection lens element,
a projection lens fold mirror disposed between the first projection lens element and the second projection lens element, wherein the light beam passes through the first projection lens element, reflects from the projection lens fold mirror, and passes through the second projection lens element, and
a projection fold mirror that receives the light beam from the projection lens and redirects the light beam, and

a housing in which the internal optics system is received, but wherein the external light source is located external to the housing; and

an optical fiber extending from the output of the external light source to an input of each of the internal optics systems, wherein each optical fiber conveys a portion of the light beam to the internal optics system of each of the digital projection displays.
24. The digital projection display system of claim 23, wherein the illumination fold minor reflects the light beam through an angle of about 80 degrees, the projection lens fold mirror reflects the light beam through an angle of about 90 degrees, the projection fold mirror reflects the light beam through an angle of about 72 degrees, and a throw ratio is about 1.1.
25. The digital projection display system of claim 23, wherein each of the digital projection displays further comprises:
a display screen that receives the light beam from the internal optics system, wherein the display screen forms a face of the housing.
26. The digital projection display system of claim 25, wherein the display screen has a display screen diagonal dimension DD, wherein the housing has a housing envelope depth HD and a housing envelope volume V, and wherein a quantity (DDHD)V is at least 2\xd710\u22123 in\u22123.

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

What is claimed is:

1. A rear suspension system for two-wheeled vehicles, comprising:
first and second spaced apart and parallel support axle plates;
an upper arm assembly pivotally connected at a first end to a vehicle frame and a second end the first and second support axle plates;
a lower arm assembly, including a pivot arm assembly, pivotally connected at a first end to the vehicle frame and at a second end to the first and second support axle plates;
first and second control arms pivotally connected at their respective first ends to the pivot arm assembly and at respective seconds end to the upper arm assembly or support axle plates, and
a compressible shock unit associated at one end thereof with the lower arm assembly and connected at the opposite end thereof to the vehicle frame.
2. The suspension system of claim 1, wherein the system has a generally triangular configuration.
3. The suspension system of claim 1, wherein the upper arm assembly is comprised of a base pivotally connected to the vehicle frame and a first elongated arm extending from the base to a pivotal connection point at the first support axle plate, and a second elongated arm extending from the base generally parallel to the first arm to a pivotal connection point at the second support axle plate.
4. The suspension system of claim 1, wherein the lower arm assembly includes a base pivotally connected to the vehicle frame and a first elongated arm extending from the base to a pivotal connection at the first support axle plate, and a second elongated arm extending from the base generally parallel to the first arm to a pivotal connection point at the second support axle plate.
5. The suspension system of claim 4, wherein the pivot arm assembly is pivotally connected at a first end to the vehicle frame, and pivotally connected at a second end to the first and second arms of the lower arm assembly.
6. The suspension system of claim 5, wherein the pivot arm assembly comprises a pair of angular brackets spaced apart and generally parallel to one another and having a shaft extending between first ends thereof for pivotal connection to the vehicle frame, and a shaft extending through second ends thereof for pivotal connection to the first and second arms of the lower arm assembly.
7. The suspension system of claim 5, wherein the shock unit is pivotally connected to the lower arm assembly at one end thereof.
8. The suspension system of claim 7, wherein the shock unit is pivotally connected to the vehicle frame at an end of the shock unit generally opposite the lower arm assembly.
9. The suspension assembly of claim 1, wherein the first and second support axle plates include aligned apertures configured to receive an axle of a rear wheel of the two-wheeled vehicle.
10. A rear suspension system for two-wheeled vehicles, comprising:
first and second spaced apart and parallel support axle plates having aligned apertures configured to receive an axle of a rear wheel of the two-wheeled vehicle;
an upper arm assembly including a base pivotally connected to the vehicle frame, a first elongated arm extending from the base to a pivotal connection point at the first support axle plate, and a second elongated arm extending from the base generally parallel to the first arm to a pivotal connection point at the second support axle plate;
a lower arm assembly including a base pivotally connected to the vehicle frame, a first elongated arm extending from the base to a pivotal connection point at the first support axle plate, a second elongated arm extending from the base generally parallel to the first arm to a pivotal connection point at the second support axle plate, and a pivot arm assembly pivotally connected at a first end to the vehicle frame, and pivotally connected at a second end to the first and second arms of the lower arm assembly;
first and second control arms pivotally connected at their respective first ends to the pivot arm assembly and at respective seconds end to the first and second arms of the upper arm assembly, respectively; and
a compressible shock unit associated at one end thereof with the lower arm assembly and connected at the opposite end thereof to the vehicle frame.
11. The suspension system of claim 10, wherein the system has a generally triangular configuration.
12. The suspension system of claim 10, wherein the pivot arm assembly comprises a pair of angular brackets spaced apart and generally parallel to one another and having a shaft extending between first ends thereof for pivotal connection to the vehicle frame, and a shaft extending through second ends thereof for pivotal connection to the first and second arms of the lower arm assembly.

1461159004-52ce52fd-2bed-48ad-a9a1-24b3b775adaa

What is claimed is:

1. A filtration system for use outside the body of a patient to filter bodily fluids and reinfuse said bodily fluids back into the patient, said system comprising:
a device capable of creating a pressure differential for aspirating bodily fluids from within a body lumen and further capable of expelling said aspirate from said reservoir, said suction device being operatively connected to an aspiration tube by way of a 3-way valve device;
a filter tube operatively connected to said suction device and said 3-way valve device, said filter tube having a filter element disposed therewithin;
an infusion tube operatively connected to said filter tube such that when said bodily fluids are expelled from said reservoir, said bodily fluids flow through said filter tube and said filter element and through said infusion tube.
2. A device of claim 1 wherein said infusion tube is operatively connected to an infusion reservoir by way of a 3-way valve.
3. A device of claim 1, further comprising means for at least one of:
measuring, treating, and analyzing the bodily fluids prior to reinfusion of the bodily fluids.
4. A device of claim 1, further comprising means for augmenting the bodily fluids with at least one of:
a drug, plasma, saline, and blood prior to reinfusion of the bodily fluids.
5. A method of filtering unwanted material such as clot, plaque and the like, from the blood product of a patient and reinfusing said filtered blood product back into the body of the patient, said method comprising the steps of:
providing a treatment catheter having an aspiration port and an infusion port and a lumen extending therebetween;
aspirating blood product and any unwanted material from the vessel of a patient through the aspiration port of said treatment catheter and into a reservoir;
infusing said blood product from said reservoir through a filter device to remove any unwanted material from said blood product and returning said filtered blood product back into the body of the patient through the infusion port of said treatment catheter.
6. A method of filtering unwanted material such as clot, plaque and the like, from the blood product of a patient and reinfusing said filtered blood product back into the body of the patient, said method comprising the steps of:
providing a first treatment catheter having an aspiration port on the sidewall thereof;
providing a second treatment catheter having an infusion port on the sidewall thereof;
aspirating blood product and any unwanted material from the vessel of a patient through the aspiration port of said first treatment catheter and into a reservoir;
infusing said blood product from said reservoir through a filter device to remove any unwanted material from said blood product and
returning said filtered blood product back into the body of the patient through the infusion port of said second treatment catheter.
7. The method of claim 6, further comprising augmenting the blood product with at least one of:
a drug, plasma, saline, and blood prior to returning the filtered blood products back into the body.
8. The method of claim 6, further comprising at least one of:
measuring, treating, and analyzing the blood products prior to returning the filtered blood products back into the body.
9. An aspirationreinfusion system for use with a thrombectomy catheter for removing clot from a blood vessel of a patient, the thrombectomy catheter having a proximal end, a distal end, and a clot removal lumen, the system comprising:
an aspirator in a first fluid path from the proximal end of the clot removal lumen so that the aspirator and thrombectomy catheter draw the clot and fluid from the blood vessel;
a filter in a second fluid path from the aspirator, the second fluid path extending from the aspirator to the patient;
an infusor disposed along the second fluid path for reintroducing the filtered fluid from the filter into the patient.
10. The system of claim 9, further comprising means for at least one of: measuring, treating, and analyzing the fluid prior to reinfusion of the fluid.
11. The system of claim 9, further comprising means for augmenting the fluid with at least one of: a drug, plasma, saline, and blood prior to reinfusion of the fluid.
12. The system of claim 9, wherein the aspirator comprises a vacuum source coupled to a reservoir.
13. The system of claim 12, wherein the aspirator comprises a syringe, the vacuum source comprising a piston of the syringe and the reservoir comprising the cylinder of the syringe.
14. The system of claim 9, further comprising at least one valve disposed along at least one of the first fluid path and the second fluid path.
15. The system of claim 14, wherein the at least one valve can inhibit flow from the second fluid path toward the aspirator during aspiration of the clot and fluid along the first fluid path.
16. The system of 14, wherein the at least one valve can inhibit flow from the infusor toward the aspirator during reintroduction of the filtered fluid.
17. The system of claim 15, further comprising:
a first 3-way valve arranged to provide selective fluid communication between:
a reservoir of the aspirator and the first fluid path, or
the reservoir of the aspirator and the second fluid path; and
a second 3-way valve arranged to provide selective fluid communication between:
a reservoir of the infusor and the reservoir of the aspirator, or
the reservoir of the infusor and the patient along the second fluid path.
18. The system of claim 9, wherein the infusor comprises a displacement pump.
19. The system of claim 18, wherein the filter is disposed along the second fluid flow path between the aspirator and the infusor.
20. The system of claim 9, further comprising an infusion catheter for providing fluid communication between the infusor and a vein of the patient when the thrombectomy catheter extends into an artery of the patient.
21. An aspirationreinfusion system for use with a catheter for removing solid material including clot or plaque from a body lumen of a patient, the catheter having a proximal end, a distal end, and a removal lumen, the system comprising:
aspiration means in fluid communication with the proximal end of the removal lumen for drawing the solid material and fluid from the catheter;
a filter disposed along a fluid path from the aspirator;
infusion means for reintroducing the filtered fluid from the filter into the patient along the fluid flow path.
22. The system of claim 21, further comprising means for at least one of: measuring, treating, and analyzing the fluid prior to reinfusion of the fluid.
23. The system of claim 21, further comprising means for augmenting the fluid with at least one of: a drug, plasma, saline, and blood prior to reinfusion of the fluid.
24. A method for reinfusing fluid removed from a blood vessel of a patient, wherein the fluid is removed with clot during a thrombectomy by a catheter, the method comprising:
drawing the clot and fluid from the catheter;
filtering the fluid from the clot outside the patient; and
introducing the filtered fluid back into the patient.
25. The system of claim 24, further comprising augmenting the fluid with at least one of: a drug, plasma, saline, and blood prior to reintroducing the filtered fluid.
26. The system of claim 24, further comprising at least one of: measuring, treating, and analyzing the fluid prior to reintroducing the filtered fluid.

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 fuel composition comprising a major amount of hydrocarbons boiling in the gasoline or diesel range and an alkylene oxide-adducted hydrocarbyl amide reaction product having from about 3 to 50 moles of alkylene oxide per mole of hydrocarbyl amide, wherein the reaction product is prepared by (a) first reacting a fatty acid or fatty acid lower alkyl ester with ammonia or a mono- or di-hydroxy hydrocarbyl amine and (b) subsequently reacting the resulting intermediate with an alkylene oxide to provide a reaction product comprising the alkylene oxide-adducted hydrocarbyl amide, a mixture of mono- and di-ester products, and amine by-products, wherein the amount of amine by-products in the reaction product is less than 7 wt %, based on the total weight of the alkylene oxide-adducted hydrocarbyl amide reaction product, and the amide:ester ratio in the reaction product is in the range of from about 0.1:1 to 1.1:1.
2. The fuel composition according to claim 1, wherein the alkylene oxide-adducted hydrocarbyl amide has from about 3 to 20 moles of alkylene oxide per mole of hydrocarbyl amide.
3. The fuel composition according to claim 2, wherein the alkylene oxide-adducted hydrocarbyl amide has from about 4 to 15 moles of alkylene oxide per mole of hydrocarbyl amide.
4. The fuel composition according to claim 1, wherein the alkylene oxide-adducted hydrocarbyl amide is derived from an alkyl or alkenyl amide having from about 4 to 30 carbon atoms.
5. The fuel composition according to claim 4, wherein the alkylene oxide-adducted hydrocarbyl amide is derived from an alkyl or alkenyl amide having from about 6 to 24 carbon atoms.
6. The fuel composition according to claim 5, wherein the alkyl or alkenyl amide is a coconut oil fatty acid amide.
7. The fuel composition according to claim 6, wherein the coconut oil fatty acid amide is obtained by the reaction of coconut oil fatty acid or ester and diethanolamine.
8. The fuel composition according to claim 1, wherein the fatty acid is a C4 to C30 fatty acid.
9. The fuel composition according to claim 1, wherein the fatty acid is a C6 to C24 fatty acid.
10. The fuel composition according to claim 9, wherein the fatty acid is a C6 to C20 fatty acid.
11. The fuel composition according to claim 10, wherein the fatty acid is coconut oil fatty acid.
12. The fuel composition according to claim 1, wherein the lower alkyl group of the fatty acid lower alkyl ester has from about 1 to 6 carbon atoms.
13. The fuel composition according to claim 12, wherein the lower alkyl group of the fatty acid lower alkyl ester has from about 1 to 4 carbon atoms.
14. The fuel composition according to claim 13, wherein the lower alkyl group of the fatty acid lower alkyl ester has from about 1 to 2 carbon atoms.
15. The fuel composition according to claim 1, wherein the lower alkyl ester is a methyl ester.
16. The fuel composition according to claim 1, wherein the mono- or di-hydroxy hydrocarbyl amine is selected from the group consisting of thenaolamine, diethanolamine, propanolamine and dipropanolamine.
17. The fuel composition according to claim 16, wherein the hydrocarbyl amine is a di-hydroxy hydrocarbyl amine.
18. The fuel composition according to claim 17, wherein the di-hydroxyl hydrocarbyl amine is diethanolamine.
19. The fuel composition according to claim 1, wherein the alkylene oxide is selected from the group consisting of ethylene oxide, propylene oxide, butylene oxide, pentylene oxide, or mixtures thereof.
20. The fuel composition according to claim 19, wherein the alkylene oxide is selected from the group consisting of ethylene oxide, propylene oxide, or mixtures thereof.
21. The fuel composition according to claim 1, wherein the alkylene oxide-adducted hydrocarbyl amide is derived from the reaction of a coconut oil fatty acid amide with ethylene oxide or propylene oxide.
22. The fuel composition according to claim 21, wherein the alkylene oxide-adducted hydrocarbyl amide is derived from the reaction of a coconut oil fatty acid amide with propylene oxide.
23. The fuel composition according to claim 1, wherein the alkylene oxide-adducted hydrocarbyl amide is present in the fuel in the range of from about 10 to 10,000 ppm by weight.
24. The fuel composition according to claim 23, wherein the alkylene oxide-adducted hydrocarbyl amide is present in the fuel in the range of from about 10 to 5,000 ppm by weight.
25. The fuel composition according to claim 24, wherein the alkylene oxide-adducted hydrocarbyl amide is present in the fuel in the range of from about 10 to 1,000 ppm by weight.
26. The fuel composition according to claim 25, wherein the alkylene oxide-adducted hydrocarbyl amide is present in the fuel in the range of from about 50 to 500 ppm by weight.
27. The fuel composition according to claim 1, wherein the amine by-products are less than 4 wt %, based on the total weight of the alkylene oxide-adducted hydrocarbyl amide reaction product.
28. The fuel composition according to claim 1, wherein the amine by-products are less than 2 wt %, based on the total weight of the alkylene oxide-adducted hydrocarbyl amide reaction product.
29. The fuel composition according to claim 1, wherein the amine by-product is diethanolamine, alkoxylated diethanolamine or mixtures thereof.
30. The fuel composition according to claim 29, wherein the amine by-products is an alkoxylated diethanolamine.
31. The fuel composition according to claim 30, wherein the alkoxylated diethanolamine is propoxylated diethanolamine.
32. The fuel composition according to claim 1, wherein the amide to ester ratio is in the range of from about 0.3:1 to 0.9:1.
33. The fuel composition according to claim 32, wherein the amide to ester ratio is in the range of from about 0.5:1 to 0.7:1.
34. A method of improving the demulsibility and lubricating oil compatibility of a fuel composition in an internal combustion engine, said method comprising operating the internal combustion engine with the fuel composition of claim 1.