IP Library › Granted Patent US 11,352,942
Granted Patent B2
US 11,352,942 · App. 17/488,992 · Granted Jun 7, 2022

Four-stroke relative motion cylinder with dedicated compression space

Inventor: Ibrahim Hanna (Miami, FL)
F02B33/14F02B41/06F02B2075/027
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Quick Facts
Patent No.
US 11,352,942
App. No.
17/488,992
Granted
Jun 7, 2022
Kind
B2
Abstract

A mechanical engine cylinder system, includes a cylinder, an occupying structure with a cavity, and a crankshaft piston, the cylinder having a dedicated compression space and a dedicated combustion space, the occupying structure having a primary combustion space utilized during an early stage of a power stroke, wherein combustion pressure applied to the crankshaft piston during the power stroke is applied to a smaller surface area of the crankshaft piston during an early stage of the power stroke and to a larger surface area of the crankshaft piston during a later stage of the power stroke, the combustion pressure applied to the occupying structure applies a net-force to the occupying structure in the direction of the crankshaft piston during the early stage of the power stroke, and in the opposite direction of the crankshaft piston during the later stage of the power stroke.

Claims (22)

1. A mechanical engine cylinder system, comprising:

a cylinder including an internal space, an occupying structure with a cavity, and a crankshaft piston;

wherein the internal space of the cylinder is modified by the occupying structure, having a dedicated compression space and a dedicated combustion space;

wherein the occupying structure provides a surface interface with the dedicated compression space, wherein the occupying structure completely contains within the cavity a primary combustion space utilized during an early stage of a power stroke;

wherein the occupying structure has an edge that separates the primary combustion space from a secondary combustion space;

wherein combustion pressure applied to the crankshaft piston during the power stroke is applied to a smaller surface area of the crankshaft piston during an early stage of the power stroke and to a larger surface area of the crankshaft piston during a later stage of the power stroke;

wherein the combustion pressure applied to the occupying structure applies a net-force to the occupying structure in the direction of the crankshaft piston during the early stage of the power stroke, and in the opposite direction of the crankshaft piston during the later stage of the power stroke;

wherein surfaces of the occupying structure and the crankshaft piston are sized such that a disengagement occurs during the power stroke between the occupying structure and crankshaft piston;

wherein motion of the occupying structure during the early stage of the power stroke creates a suction force of compression fluid into the dedicated compression space; and

wherein the occupying structure competes with combustion fluid displacement for volume, when filling the swept volume created by the motion of the crankshaft piston during an expansion stroke, such that the combustion fluid displacement volume is less than the addition of clearance and swept volumes within the internal space of the cylinder.

2. The mechanical engine cylinder system of claim 1 , wherein fluid compression is completed during a later part of a compression stroke, by transferring partly compressed fluid from the dedicated compression space to the primary combustion space during a later part of a retraction stroke.

3. The mechanical engine cylinder system of claim 2 , wherein fluid compression is increased during the power stroke or the retraction stroke, through a dedicated connection with a supercharged or turbocharged fluid reservoir.

4. The mechanical engine cylinder system of claim 3 , further comprising a fluid inlet manifold in communication with a first source of compression fluid, and with a second source of compression charged fluid.

5. The mechanical engine cylinder system of claim 4 , wherein the fluid inlet manifold is configured to release a charged fluid into the cylinder's compression space in selective reciprocation cycles, in response to a force application mechanism requirements of higher torque or in response to throttle position.

6. The mechanical engine cylinder system of claim 5 , wherein at a beginning of the power stroke, a valve closes, thereby separating the compressed fluid into a first part within the primary combustion space, subjected to combustion, and a second part that remains within the dedicated compression space, which is subjected to fluid decompression during an early part of the power stroke.

7. The mechanical engine cylinder system of claim 6 , wherein an increase of fluid compression by the fluid reservoir causes an increase in combustion pressure during the power stroke.

8. The mechanical engine cylinder system of claim 7 , wherein the occupying structure has a surface interface with a cooling jacket.

9. The mechanical engine cylinder system of claim 8 , wherein the edge of the occupying structure, between the primary and secondary combustion spaces, creates a fluid turbulence responsible for more complete burning.

10. The mechanical engine cylinder system of claim 9 , wherein a conical shape interface of crankshaft piston is designed after a shape of an advancing combustion fluid wave during a late part of the power stroke.

11. The mechanical engine cylinder system of claim 10 , wherein a supercharged or turbocharged fluid are part of a force application mechanism.

12. The mechanical engine cylinder system of claim 11 , wherein the force application mechanism is in communication with a throttle position.

13. The mechanical engine cylinder system of claim 12 , wherein a magnetic induction device is part of the force control mechanism.

Continuity (4)
Continuation In Part 16998771 · Aug 20, 2020
Continuation In Part 16235272 · Dec 28, 2018
Continuation In Part 15847711 · Dec 19, 2017
Related Publication 20220018280A1 · Jan 20, 2022
Cited By (1)
US 12,372,016