[0001] The present invention relates generally to a hybrid power system for generating pressurized
hydraulic power and, more particularly, to free piston engine pumps in which energy
of combustion in a power cylinder is converted into hydraulic energy.
[0002] In a free piston engine pump (hereinafter abbreviated FPEP) the motion of the engine
piston(s) is at least substantially directly delivered to hydraulic pumping elements,
usually, without crankshaft and connecting rod arrangements of conventional rotary
engines. The hydraulic power developed may be used for vehicle propulsion and auxiliary
equipment operation as well as for other purposes.
[0003] It is generally known from US-A-4 307 999 to provide a free piston engine pump including
a primary piston movable in pump chambers and valve means (13, 15, 17) for controlling
the flow of fluid into and out of the pump chambers, said valve means comprising first
check valve means (17) for passing inlet flow of relatively low pressure fluid to
the first pump chamber (4i), and second check valve means (15) for passing outlet
flow of relatively high pressure fluid from the first pump chamber. Also, the valve
means (13) of US-A-4 307 999 generally corresponds to the valve means (69) and check
valve means (65) of the present invention in combination.
[0004] The present invention is concerned with optimizing the efficiency of a FPEP and providing
versatility and facility of operation and use thereof. The FPEP of the present invention
includes an engine for producing mechanical work during a power stroke and a pump
responsive to the engine work for pumping fluid during the power stroke. The intake
ports and exhaust ports of the engine combustion chamber are at opposite ends thereof
resulting in unidirectional or uniflow scavenging of the engine cylinder. Valving
controls hydraulic input and output paths of the pump to permit selective operation
in a primary high flow and a secondary high pressure mode of operation, preferably
while maintaining substantially constant the product of output pressure and flow;
the valving also may be employed selectively to control cycle rate, i.e. the number
of cycles per unit time, starting either in the primary mode or secondary mode, intermittent
cycling, and compression energy boost. Pumping may be effected during the entire power
stroke and in the normal operating region compression energy is supplied during the
entire compression stroke.
[0005] According to the present invention there is provided an in line opposed piston free
piston engine pump system comprising a free piston engine including an engine cylinder
having a linear axis, a pair of engine pistons movable in said engine cylinder along
such axis toward each other during a compression stroke and away from each other during
a power stroke; a separate pump means associated with each engine piston for pumping
fluid, each pump means including a pump cylinder axially aligned with said engine
cylinder, a pump piston coupled to a respective engine piston for movement therewith
and forming first and second pump chambers within said pump cylinder, valve means
being provided for controlling flow of fluid into and out of said pump chambers, said
valve means comprising first check valve means for passing inlet flow of relatively
low pressure fluid to said first pump chamber, and second check valve means for passing
outlet flow of relatively high pressure fluid from said first pump chamber, characterized
in that a first selectively operable valve means is arranged in parallel with said
second check valve means for selectively bypassing the latter, third and fourth check
valve means respectively for passing inlet flow of relatively low pressure fluid to
said second pump chamber and outlet flow of relatively high pressure fluid from said
second pump chamber, second selectively operable valve means arranged in parallel
with said third check valve means for selectively bypassing the latter, and third
selectively operable valve means arranged in series with said fourth check valve means
for selectively controlling fluid flow through the latter.
[0006] A deformable bladder-type compression accumulator may be used for storing energy
during the power stroke and returning the same for compression; such accumulator contains
a compressible fluid the pressure of which is con- trollably adjustable to control
compression energy. Total control of the energy put into compression to establish
compression ratio and the related pressure and temperature condition in the cylinder
enable optimization of engine efficiency minimizing compression losses and controlling
operating pressure profile in the engine cylinder; moreover, the rate at which compression
energy is applied may be controlled to establish the velocity and acceleration profiles
of the engine pistons during compression stroke enabling cycle rate variability.
[0007] Other aspects of the invention include synchronizing the pistons of an opposed piston
type of FPEP preferably without ordinarily substantially loading the synchronization
apparatus; acceleration boost of the pistons at the start of a compression stroke;
an energy absorber for excessive energy during an abnormal power stroke; and a reset
valve and actuator arrangement for a FPEP. Still additional aspects relate to control
features whereby a plurality of engine and/or pump parameters may be monitored electronically
and operation accordingly electronically controlled and to the interfacing or pairing
of plural FPEP's resulting in reduced pressure pulsations, versatility allowing less
than all of the FPEP's to operate at a given time, and general efficiency by combining
elements and functions.
[0008] Several embodiments of the invention will now be described, by way of examples, with
reference to the accompanying drawings, in which:
Figure 1 is a schematic diagram of a FPEP in accordance with the present invention;
Figure 2A and 2B are fragmentary schematic illustrations of the FPEP of Figure 1 operative
in compression and power strokes in the primary high flow rate mode;
Figures 3A and 3B are fragmentary schematic illustrations of the FPEP of Figure 1
operative in compression and power strokes in the secondary high pressure mode;
Figure 4 is a fragmentary schematic view of the FPEP of Figure 1 in combination with
a reset valve and actuator;
Figures 5A and 5B are fragmentary schematic views of the FPEP of Figure 1 illustrating
acceleration boost and energy absorber features;
Figure 6 is a fragmentary schematic view of a pair of FPEP's interfaced for operation
together in the primary mode, although adjustable by appropriate valve adjustments
to operate in the secondary mode;
Figures 7-12 are graphs showing characteristics of diesel engines;
Figure 13 is a schematic illustration of a FPEP in accordance with the invention and
a schematic block diagram of an electronic monitoring and control system in accordance
with the present invention; and
Figure 14 is a graph representing operational constraints of the FPEP and electronic
system of Figure 13.
[0009] Referring now in detail to the drawings, wherein like reference numerals designate
like parts in the several figures, and initially to Figure 1, a FPEP in accordance
with the invention is generally illustrated at 1. The FPEP 1 has an engine portion
2 and hydraulic pump portion 3.
[0010] The engine portion 2 includes an engine cylinder 4 in which a pair of engine pistons
5, 6 move linearly or axially and between which a combustion chamber 7 is formed.
In the course of a compression stroke a fuel injector 10 injects fuel into the combustion
chamber 7. Air intake ports 11 at the righthand end of the combustion chamber 7 provide
passage for air into the same, and exhaust ports 12 at the opposite end of the combustion
chamber 7 permit exhaust gases to exit via an exhaust line 13. With the intake and
exhaust ports 11, 12 located at opposite ends of the combustion chamber 7, uniflow
or unidirectional scavenging is achieved.
[0011] The engine portion 2 is of the opposed piston type, whereby during a compression
stroke the engine pistons 5, 6 are urged toward each other in the cylinder 4 reducing
the size of the combustion chamber 7 and, therefore, increasing the pressure and temperature
therein to effect compression ignition of the fuel injected by the fuel injector 10,
thereby to initiate a power stroke. During the power stroke, the engine pistons 5,
6 are driven by the energy of combustion oppositely axially in the cylinder 4. When
the engine piston 6 opens the exhaust ports 12, the exhaust products will exit the
combustion chamber 7 via the exhaust line 13, and when the engine piston 5 subsequently
opens the intake ports 11, air will enter the combustion chamber 7 to effect the desired
scavenging after which the next compression stroke usually will commence.
[0012] Preferably the engine pistons 5, 6 are of equal mass and those parts of the engine
portion '2 movable with the engine piston 5 are of a mass equal to those parts movable
with the engine piston 6 thereby effectively naturally to mass balance the engine
portion 2 about a centerline 14, which is perpendicular to the linear axis 15 of the
engine portion. Further assisting in the mass balancing of the engine portion 2 and
maintaining substantial uniformity in operation thereof are synchronizers 16 mechanically
interconnecting the engine pistons 5, 6. Each synchronizer 16 includes a pair of racks
17, 18 connected to the engine piston 6 for linear movement therewith and a pair of
pinion gears 19, 20 for rotation by the respective racks 17, 18. The pinion gears
19, 20 are coupled by a shaft 21, which rotates with the pinion gears and is in turn
coupled via a pair of bevel gears 22, 23 to turn a coupling shaft 24. The coupling
shaft 24 in turn is connected to a similar arrangement of racks, pinion gears, shaft
and bevel gears (not shown) like those identified by the reference numerals 17-23
associated with the engine piston 5. Compression energy during a compression stroke
is preferably applied by both engine pistons 5, 6 independently of the synchronizer
16, and during a power stroke the energy of combustion directly urges both engine
pistons 5, 6 relatively outwardly in the cylinder 4. The synchronizer 16 desirably
effects its synchronizing operation generally maintaining a balanced uniform operation
and movement of the engine pistons 5, 6 usually without any appreciable mechanical
loading or forces on the various components of the synchronizer 16.
[0013] Air to support combustion passes through the air filter 25, is compressed by a compressor
26 and is delivered usually at several, preferably as much as three, atmospheres pressure
via air line 27 and intake ports 11 into the combustion chamber 7. An after cooler
28 in the air line 27 provides a cooling or heat exchange function, visa-vis the inlet
air and the combustion chamber. Moreover, air entering the air filter 25 also may
pass via air line 29 and one or more reed check valves 30 to the back side chamber
31, 32 of each engine piston 5, 6, being drawn there during a compression stroke and
being pressurized during a power stroke and, accordingly, forced at the end of a power
stroke through the intake ports 11 further supercharging operation of the engine portion
2 in cooperation with the pressurizing function of the compressor 26.
[0014] The exhaust products of combustion exiting the combustion chamber 7 via the exhaust
line 13 pass through an exhaust control valve 34, exhaust turbine 35 and exhaust line
36 for discharge in conventional manner. The exhaust turbine 35 drives the compressor
26 via the shaft 37, as shown. Moreover, as will be described further below, in the
preferred embodiment each cycle of operation of the engine portion 2, including a
compression stroke and a power stroke, preferably is substantially uniform to enable
relative tuning of the exhaust system 38 for optimum utilization of the energy contained
in the exhaust products of combustion.
[0015] For efficiency and facility of description, only the righthand half 3R of the hydraulic
pump portion 3 is illustrated in Fig. 1 and will be described in detail below associated
with the engine piston 5; the other half 3L of the hydraulic pump portion 3, schematically
shown in Fig. 13, may be substantially identiacl to that described. control of both
halves of the hydraulic pump portion 3 preferably will be simultaneously parallel.
The inlet hydraulic fluid line 40 and the outlet hydraulic fluid line 41 associated
with the righthand pump half 3R preferably would be coupled to a hydraulic system,
not shown, in parallel fluid relation with the lefthand pump half 3L. In the external
hydraulic system, not shown, relatively low pressure inlet hydraulic fluid at pressure
P is directed to the inlet hydraulic fluid line 40, and the hydraulic pump portion
3 pumps hydraulic fluid at relatively high pressure P. via the outlet hydraulic fluid
line 41 for use in the external hydraulic system.
[0016] Referring in detail to the illustrated pump half 3R, the same includes a pump piston
42 slidably movable in a pump cylinder 43 is sealed relation thereto using a single
conventional sliding seal 44. A rod or shaft 45 mechanically connects the pump piston
42 with the engine piston 5 for linear in-line reciprocation therewith. Also slidable
with the pump piston 42 and preferably formed, as illustrated, integrally therewith
and with the rod 45 is a compression piston 46 slidable with respect to a compression
cylinder 47. A compression fluid flow line 48 extends between the compression cylinder
47 and the compression accumulator 49. It is the purpose of the compression piston
46 and compression accumulator 49 to store compression energy, i.e. energy required
to effect a compression stroke, during a power stroke and subsequently to deliver
such compression energy to the engine piston 5 to effect such compression stroke after
a power stroke has been completed.
[0017] In the compression accumulator 49 a deformable bladder-like member 50 contains a
compressible fluid, such as an inert gas or other gas; the bladder 50 in turn is contained
in a rigid accumulator housing 51. During a power stroke hydraulic fluid in the compression
fluid flow line 48 is pumped by the compression piston 46 into the accumulator housing
51 effecting a deforming of the bladder 50 to compress the gas therein thereby storing
compression energy. During a compression stroke the compression energy stored in the
compressed gas in the bladder 50 is delivered via the hydraulic fluid in flow line
48 urging the compression piston 46 and, thus, the engine piston 5 to move toward
the left in a compression stroke. Since the cycle transfer rate of fluid into and
out of the compression accumulator 49 is very fast, the energy exchange is virtually
adiabatic and thermal losses are negligible. Additionally, only one seal 52 is needed
to isolate output pressure from compression accumulator pressure, thus reducing the
net frictional force loss per cycle due to seal requirements. The seal 52 provides
the desired isolation in that during both a normal power stroke and the compression
stroke in the secondary mode of operation the pressure in the high pressure output
accumulator 53 and compression accumulator 49 are preferably approximately equal.
Although during the compression stroke in the primary mode of operation a differential
pressure of P
c (the pressure in the bladder 50) minus P, does exist across the seal 52, such differential
pressure preferably will be relatively small and ordinarily certainly less than one
containing ambient pressure as a term.
[0018] At the front or pressure side of the pump piston 42 is a first pump chamber 60, and
at the back side of the pump piston 42 is a second pump chamber 61. Inlet check valves
62, 63 supply low pressure P, fluid in the flow direction shown from the inlet hydraulic
fluid line 40. A low pressure accumu- latory 64 coupled to the inlet hydraulic fluid
line 40 stores inlet hydraulic fluid for supply to the hydraulic pump portion 3 while
also minimizing pressure pulsations of the inlet fluid. Outlet check valves 65, 66
are coupled at chambers 60, 61 to the outlet hydraulic fluid line 41 and high pressure
accumulator 53. Three selectively operable control valves 67-69 are used to control
the operation of the hydraulic pump portion 3, as will be described in greater detail
below. The valves 67-69 preferably either are electrohydraulically or mechanically
actuated and provide large passageways through which fluid may flow thereby to effect
rapid operation to flow opening or closing and to avoid pressure losses; the preferred
valve is a ball type in-line valve. Conventional pressure control valves 70 are coupled
to the fluid flow lines illustrated to relieve excess and otherwise to alter fluid
pressure, if needed.
[0019] In the hydraulic pump portion 3 pumping preferably is accomplished during the entire
power stroke and compression energy is applied preferably during the entire compression
stroke. The primary pumping element is the pump piston 42 with the minimum number
of seals illustrated. In the most efficient mode of operating the hydraulic pump portion
3 high pressure hydraulic fluid is pumped out on the power stroke and drawn in on
the compression stroke by action of the arrangement of check valves illustrated. Check
valve closing occurs preferably only at the ends of the stroke where piston velocity
decreases uniformly to zero. As a result, the valves have a natural decreasing flow
profile so that when piston motion stops the valve is immediately seated thereby eliminating
a tendency for backflow leakage when piston motion reverses. Moreover, output and
input flow rates are continuous throughout the strokes with no discontinuity associated
with alternate techniques that change energy in discrete levels during the strokes.
Full stroke pumping also reduces the peak hydraulic flow rate passing through the
check valves and various flow passages thereby reducing hydraulic losses.
[0020] During each complete cycle of operation of the FPEP 1, the hydraulic pump portion
3 supplies energy for effecting a compression stroke to bring the engine pistons 5,
6 toward one another thereby to effect compression of fuel and air in the combustion
chamber 7. Thereafter, the energy of combustion drives the engine pistons 5, 6 relatively
outwardly to expand the combustion chamber 7 in a power stroke during which fluid
is pumped by the hydraulic pump portion, as now will be described in detail. The hydraulic
pump portion 3 has two distinct modes of operation, namely a primary high flow rate
mode, which normally is used and is the more efficient mode of operation, and a secondary
high pressure mode, depending on the setting of the control valves 67, 68 and 69.
[0021] Referring now to Figs. 2A and 2B, operation of the FPEP 1 and particularly the hydraulic
pump portion 3 in the primary high flow rate mode is illustrated. In the primary mode
the control valve 67 is open and the control valves 68, 69 are closed. During the
compression stroke shown in Fig. 2A, energy stored in the form of compressed gas in
the compression accumulator 49 is delivered via the hydraulic fluid in the compression
fluid flow line 48 to drive the compression piston portion 46 of the pump piston 42
and, thus, the engine piston 5 to the left relative to the illustration effecting
compression in the combustion chamber 7. On the compression stroke hydraulic fluid
enters the first pump chamber 60 via the inlet check valve 62 while a lesser amount
of fluid exits from the second pump chamber 61 via the open control valve 67. Subsequently
on the power stroke shown in Fig. 2B, high pressure fluid is pumped by the pump piston
42 and exits the first pump chamber 60 via the outlet check valve 65 as relatively
low pressure fluid returns to the second pump chamber 61 via the open control valve
67. The inlet fluid provided via the inlet hydraulic fluid line 40 is desirably at
relatively low pressure preferably stabilized by the low pressure accumulator 64 (Fig.
1), and the hydraulic fluid pumped from the first pump chamber 60 to the outlet hydraulic
fluid line 41 will be at relatively higher pressure and may be used to do work in
external equipment, not shown, or may be stored in the high pressure accumulator 53.
[0022] In the secondary or high pressure mode of operation illustrated in Figs. 3A and 3B,
the control valve 67 is closed and the control valves 68 and 69 are open. On the compression
stroke shown in Fig. 3A high pressure fluid enters the first pump chamber 60 through
the open control valve 69 and high pressure hydraulic fluid also exits the second
pump chamber 61 via the outlet check valve 66 and open control valve 68. Since the
area of the pump piston 42 exposed in the first pump chamber 60 exceeds that exposed
in the second pump chamber 61, the just-described flow of fluid will effect a net
energy or work input during the compression stroke to supplement the compression energy
provided by the compression accumulator 49, as was described above with reference
to Fig. 2A. However, in the secondary mode, the pressure level P
c in the compression accumulator 49 preferably would be reduced substantially in order
to minimize losses, whereupon the principal compression energy is delivered from the
outlet hydraulic fluid line 41.
[0023] On the subsequent power stroke the compression energy (less losses) is returned to
the output system by the pumping action of the piston 42. More particularly, as is
shown in Fig. 3B, during the power stroke inlet fluid enters the second pump chamber
61 through the inlet check valve 63 and high pressure fluid is transferred to the
outlet hydraulic fluid line 41, external load, not shown, and high pressure accumulator
53 as established by the volume of the first pump chamber 60. Accordingly, the net
amount of useful work produced by the combustion energy in the FPEP 1 operating in
the secondary mode is related to the net pumped high pressure fluid from the first
pump chamber 60.
[0024] The primary and secondary modes of operation may be compared assuming, for example,
equal power input level for both modes of operation whereby the net hydraulic output
work must be the same for both modes, disregarding losses. The output work in each
mode is proportional to the product of pressure times flow and input work equals output
work. Therefore, if the volume of the first pump chamber 60 is twice that of the second
pump chamber 61, the output pressure capability of the secondary mode of operation
will be twice the pressure capability in the primary mode of operation.
[0025] For starting the FPEP 1 a reset mechanism 75 associated with the pump half 3R, the
other pump half 3L also having a similar reset mechanism or connections to the one
shown, is operated to position the engine pistons 5, 6 and pump pistons 42 outward,
as is illustrated, for example, in Fig. 4. Such outward positioning is accomplished
by venting the fluid in the first pump chamber 60 to inlet pressure level P
; by a connection effected through hydraulic fluid line 76, chamber 77 of a selectively
adjustable reset spool valve 78 and fluid line connection 79, which is connected to
the low pressure accumulator 64, for example. At the same time fluid pressure in the
second pump chamber 61 is raised by supplying high pressure fluid from an external
source (not shown) via fluid line connection 80, chamber 81 of the reset spool valve
78, reset actuator 82, check valve 83 and hydraulic fluid line 84, thereby providing
adequate pressure to force the pistons outward against the resisting force of the
compression accumulator 49.
[0026] More specifically, to use the reset spool valve 78 and reset actuator 82 of the reset
mechanism 75 to effect starting of the FPEP 1, the inlet P
i, outlet P
o, and compression accumulator P
c pressure levels must first be established by conventional means which are not part
of this disclosure. In the preferred embodiment and best mode the FPEP 1 is designed
to start at minimum operating pressure level of, for example, 140 Bars (2000 psi)
or greater. After the minimum pressure level for start-up has been established, a
force level great enough to overcome the compression accumulator pressure acting overthe
surface area of the compression piston 46 as well as all frictional forces is required
to move the engine and pump pistons to the position illustrated in Fig. 4 ready for
the beginning of a compression stroke. Moreover, in order to generate a relatively
high level of compression energy for cold start requirements, a relatively high level
of compression accumulator pressure P
c is desirable. The reset actuator 82 provides the necessary force level for effecting
the desired resetting of the pistons.
[0027] The reset actuator 82 is a form of hydraulic pressure intensifier including an actuator
piston 90 movable in a stepped cylinder 91 and having a relatively large surface area
92 exposed in a fluid chamber 93 and a relatively small surface area 94 exposed in
a fluid chamber 95. A spring 96 ordinarily biases the actuator piston 90 to a righthand
position (not shown) in the stepped cylinder 91 when out of use. A fluid flow path
97 through the actuator piston 90 and a check valve 98 therein provide unidirectional
fluid flow coupling of the fluid chambers 93,95. The reset actuator 82 is sized so
that the total displaceable volume of the second pump chamber 61 is somewhat less
than the total displaceable volume of the fluid chamber 95. Additionally, the large
surface area 92 of the actuator piston 90 is greater than that of the small surface
area 94 by an amount which is adequate to overcome the load of the spring 96, frictional
forces, and the force due to pressure in the second pump chamber 61 to reset the pump
piston 42 to the position illustrated in Fig. 4, i.e. against the compression force,
i.e. the product of P
c times the area of the compression piston 46.
[0028] When resetting occurs, the reset valve 78 is positioned as shown in Fig. 4. The first
pump chamber 60 is then vented to low pressure P, and the reset actuator 82 is supplied
with high pressure P
o. The actuator piston 90 is driven toward the lefthand position shown in Fig. 4 forcing
fluid from the fluid chamber 95 into the second pump chamber 61 driving the pump piston
42 and engine piston 5 to the righthand position shown in Fig. 4. When the pump piston
42 has fully reset, as may be sensed by a position sensor described in detail below
with reference to Fig. 13, for example, the spool of the reset valve 78 is moved in
its cylinder to the right blocking communication with the first pump chamber 60 and
venting the reset actuator fluid chamber 93 to low pressure P,. The fluid flow path
97 and check valve 98 then permit the spring 96 to move the actuator piston 90 to
its maximum righthand position while the fluid chamber 95 is refilled with fluid and
the check valve 83 isolates the pump from the chamber 95.
[0029] In the reset position illustrated in Fig. 4 the FPEP 1 is ready for starting cycle
initiation. Moreover, the illustrated position and setting of the several control
valves 67-69 is the "hold" condition between cycles when the FPEP 1 is operated in
an intermittent manner.
[0030] To initiate operation of the FPEP 1, then, relative to the condition illustrated
in Fig. 4, the control valve 67 is opened quickly thereby venting the high pressure
in the second pump chamber 61 to low inlet pressure level, whereupon compression energy
from the compression accumulator 49 effects a compression stroke commencing cyclical
operation in the primary mode.
[0031] During start-up and especially when starting and "warming up" at especially cold
temperature extremes, it is desirable substantially to raise the compression energy.
Such increase in compression energy may be accomplished initially by raising pressure
P
c in the hydraulic accumulator 49, and particularly of the fluid (preferably a compressible
gas) in the bladder 50, to a predetermined level followed by the above-described resetting
sequence and operation initiation with an initial compression stroke. Furthermore,
if even higher start-up compression is desired, the control valve 69 may be opened
during the initial compression stroke and is left open until it is desired to effect
operation specifically in the primary or secondary modes described above. After normal
operation is under way and the FPEP 1 is satisfactory warm, the compression accumulator
pressure P
c may be reduced somewhat to lower unnecessary compression energy losses.
[0032] If it is desired to start operation of the FPEP 1 in the secondary mode, the above
noted resetting would be effected initially. Thereafter, to initiate a compression
stroke, while maintaining the control valve 67 closed, the control valve 68 first
is opened, and promptly thereafter the control valve 69 is opened. The FPEP 1 accordingly
would be configured for operation in the secondary mode of operation for succeeding
cycles, as is described above with reference to Figs. 3A and 3B.
[0033] The FPEP 1 can be made to vary its cycling frequency from a maximum down to rates
as low as a few cycles per minute. Such cycling frequency control is accomplished
by interrupting the normal cycling motion at the end of a power stroke with a pause
period. Each cycle in itself is a full velocity cycle in both compression and power
stroke directions. Interruption occurs at the end of a power stroke to create a pause
period until the interruption is terminated, and the interruption process is brought
about by valving operation, as will now be described.
[0034] In the primary mode, during a power stroke, the control valves 67, 68 are closed.
Therefore compression stroke motion is not permitted to begin because of the pressure
lock that is formed in the second pump chamber 61, and, accordingly, the normal cycling
frequency is interrupted. When the pump portion 3 is held in this position, pressure
in the first pump chamber 60 drops while pressure in the second pump chamber 61 increases
until a force balance is established. To initiate the next cycle, the fluid in the
second pump chamber 61 is released to low pressure by opening control valve 67. Accordingly,
intermittent cycling is accomplished in the primary mode by use of the control valve
67. Moreover, during such intermittent cycling operation, the inlet check valve 63
is active or passes fluid on the power stroke to provide a supply into the second
pump chamber 61, and, therefore, the control valve 67 does not have to close particularly
fast during the power stroke, although its closure should be completed by the end
of the power stroke.
[0035] If it is desired to reduce the cycle rate in the secondary mode of operation, both
control valves 68 and 69 must be sequentially actuated to open the same. More particularly,
on a power stroke the control valves 68 and 69 are closed and fluid fills the second
pump chamber 61 via the inlet check valve 63 and exits the first pump chamber 60 at
high pressure through the outlet check valve 65. Compression stroke motion will be
prevented by the pressure lock formed in the second pump chamber 61. To initiate the
next cycle of operation, control valve 68 is first opened followed by opening of control
valve 69 to initiate a compression stroke.
[0036] Turning now more particularly to Figs. 5A and 5B, acceleration boost and energy absorber
features of the invention are illustrated. The acceleration booster 100 includes two
substantially identical portions 100A, 100B shown in operative condition in Fig. 5A.
The acceleration booster 100B, for example, includes a boost piston 101 slidable in
a cylinder 102. When valve 103 ports chamber 104 to return pressure, output pressure
at port 105 acting on the exposed surface area of boost piston 101 in chamber 106
moves the boost piston to the lefthand position shown in Fig. 5A. At the end of a
power stroke a pad 110 on the back side of the engine piston 5 engages the rod 111
of the boost piston 101 driving the same to the right causing an outflow of high pressure
fluid from the chamber 106 via the port 105. Since the surface area of the boost piston
101 exposed in chamber 106 is larger than the surface area of the rod 111 exposed
in the back side chamber 31 of the engine portion 2, the engine piston 5 will decelerate
to zero more rapidly than would be expected to occur without the acceleration booster
100 activated. The area 107 times the pressure in the chamber 106, i.e. output pressure
P
o, will be the force tending to expedite such deceleration. The same pressure force
provides quick acceleration during the beginning of the subsequent compression stroke.
The net result is that both power and compression stroke time periods are shortened
and the resultant cycle and delivery rates are increased.
[0037] To deactivate the acceleration booster 100, the valve 103 ports the chamber 104 to
output pressure P
o urging the boost piston 101 to the right in its cylinder 102 until it engages the
energy absorber piston 112. The area of the boost pistion 101 exposed in chamber 104
is slightly larger than the area 107 exposed in chamber 106 so that the boost piston
has adequate retraction force to the position shown, for example, in Fig. 5B but does
not compress the heavy absorber piston spring 113.
[0038] Referring to Fig. 5B, there is illustrated one of the portions 100B of the acceleration
booster 100 of Fig. 5A along with the energy absorber 114, including the absorber
piston 112 and spring 113. The absorber 114 also includes a fluid-tight cylinder 115
in which the spring 113 is contained and the absorber piston 112 may slide. A fluid
passage 116 and check valve 117 are contained in the absorber piston 112, and a fluid
path 118 between the chamber 119 in the cylinder 115 and the output port 105 conducts
fluid therebetween as permitted by the absorber piston 112.
[0039] In the abnormal event that the energy of combustion substantially exceeds the amount
of hydraulic energy removed during a power stroke, the several piston elements, including
the engine pistons and pump pistons, are protected against bottoming forces that could
cause structural damage by separate energy absorbers 114 associated with each acceleration
booster portion of each engine piston 5, 6 which provide such energy absorbing function.
Each energy absorber 114 also includes a high force liquid spring to decelerate the
piston masses and absorb the excessive energy. The absorber pistons 112 are closely
fit to their respective cylinders 115. The check valve 117 and fluid passage 116 ensure
that all air is removed from the liquid spring chamber 119. The fluid path 118 includes
an orifice 120 closed by the absorber piston 112 promptly after retraction motion
of the latter commences. Accordingly, if the engine piston 5 contacts the rod 111
of the boost piston 101 on a power stroke, a resistive high rate liquid spring force
will be developed to stop the piston motion. The available travel for such energy
absorbing function is the distance X
2 shown in Fig. 5B. Such travel and energy absorption also is available after the acceleration
boost piston 101 may have traveled a distance X
1 when the acceleration booster 100 is activated.
[0040] A plurality of FPEP's may be combined to increase power output and to add flexibility
of operation. If desired, only a single FPEP of a combined group may be operated at
a time, for example when hydraulic demands are low, or all of the FPEP's may be operated.
[0041] Turning to Fig. 6, a grouped, here paired, FPEP system 130 includes a FPEP la' and
a FPEP 1b', each of which is substantially the same in form and operation as the FPEP
1 described above. In Fig. 6 primed reference numerals designate parts having the
same or similar form and function as those designated by the same unprimed reference
numerals in Fig. 1.
[0042] When pairing FPEP's in accordance with the invention, it is desirable to combine
some specific pump elements and functions to improve pumping efficiency and to reduce
pressure pulsations normally associated with piston pumps. In the system 130 of Fig.
6 the high and low pressure accumulators 53', 64' are shared to reduce flow losses
and space requirements; as a result there is a net gain in output efficiency over
a single FPEP. The FPEP's 1a', 1b' are positioned about respective centerlines 131a,
131b, which are parallel and for the sake of clarity, the line 131b appears at the
top and bottom of Fig. 6, with the pump piston and chambers of the hydraulic pump
portion 3b' thereof being divided as shown. The FPEP's la', Ib' have interacting elements,
valving and porting between the two pumps in a side-by- side installation, and such
FPEP's are made preferably to cycle alternately by the electronic control system described
below with reference to Fig. 13.
[0043] In the system 130 flow is ported directly to the adjacent pump through the control
valves 67a', 67b' interconnecting the second pump chambers 61a', 61b' allowing fluid
to pass freely between such second pump chambers with the negligible pressure losses.
Additionally, the control valves 67a', 67b' function to isolate the FPEP's 1 a', 1
b' when acting independently as well as to provide a conversion between primary and
secondary modes of operation.
[0044] In the primary mode of operation shown in Fig. 6, the inlet and outlet flow rates
are essentially continuous if power stroke time approximates the compression stroke
time. Flow will, of course, stop momentarily at the ends of the strokes at which time
the accumulators 53', 64' supply the flow demand. As shown the system 130 has the
control valves set for operation in the primary mode. The operation insofar as intermittent
cycling with a pause period, as was described above, the starting, and the general
operation of the system 130 using both FPEP's 1a', 1b' operating out of phase with
each other or using only one of them at a time will be substantially the same as is
described above, and, if desired, the acceleration boost and energy absorbing features
described above also may be included in the system 130. Furthermore, the system 130
may be operated in the manner described above in the secondary mode, for example,
by opening the ocntrol valves 68a', 68b', 69a', 69b', and closing the control valves
67a', 67b'.
[0045] To operate, for example, only the FPEP 1a', while the FPEP 1 b' is disabled, the
control valve 67b' would be closed while the control valve 67a' remains open to permit
operation, say in the primary mode, or the FPEP 1 b' is operated in the secondary
mode, as was described above.
[0046] Cylinder air compression requirements are well known by those involved in the design
of diesel engines. The primary purpose of compressing the cylinder air charge is to
increase its pressure and associated temperature to an adequate level for ignition
of the diesel fuel when it is injected. This requirement varies depending on conditions
such as the initial temperature of the cylinder and air and pressure level of the
inlet air charge.
[0047] In a free piston engine, as well as in other diesel engines, the final condition
of the air charge in the cylinder when compressed is directly related to the initial
cylinder volume at the point of inlet port closing divided by the final cylinder volume.
This is termed the compression ratio of the engine and is generally fixed in the rotary
engine design or variable in some specific applications by mechanical means or by
a limited hydraulic control means in the piston proper. The mechanizations to date
have been limited in flexibility and have generally been designed for specific purposes
such as to reflect peak cylinder pressures and avoid structural failures or for experimental
purposes.
[0048] The opposed piston free piston engine pump 1 disclosed has unique capabilities and
flexibilities in this area. They are the provision of total control over the amount
of energy put into compression to establish compression ratio and related pressure
and temperature conditions within the cylinder, thereby optimizing overall efficiency
of the system, minimizing compression losses, and controlling operating pressure profile
within the cylinder, and the provision of control over the rate at which the compression
energy is applied which establishes the velocity and acceleration profiles of the
piston on the compression stroke and results in cycle rate variability.
[0049] Typical diesel engine cylinder characteristics and their relationship to compression
ratio are shown in Figs. 7-9. These are shown as background information to establish
the compression energy requirements and demonstrate the flexibility of the FPEP disclosed.
Fig. 7 shows the relationship between compression ratio and cylinder gas temperature
for cold start-up of a typical diesel cylinder. The opposed piston FPEP 1 is designed
to achieve an equivalent cold start compression ratio in the range of 20 to 30 or
higher.
[0050] The ideal thermal efficiency relationship of a typical diesel cylinder is shown in
Fig. 8. It is seen that the improvement rate in efficiency declines substantially
after a ratio of 8 or 10 is achieved.
[0051] Fig. 9 shows a plot of characteristic peak cylinder combustion pressure that can
be expected vs. compression ratio for various brake mean effective pressures. Typical
FPEP operating lines are shown. The characteristic BMEP lines show dramatically that
compression ratio has a great impact on cylinder peak pressure level. The opposed
piston FPEP 1 of the present invention compression energy implementation controls
the peak pressure levels within the limitations of the design while maintaining high
thermal efficiencies. Extremely high peak cylinder pressures can readily be supported
by the FPEP 1. The combustion chamber is structurally suited for high pressure containment.
Piston forces are transferred directly into hydraulic forces and acceleration of the
piston elements. No crank arm or other linkage exists to resist the high acceleration
forces on the piston.
[0052] Fig. 10 shows a typical FPEP plot of compression energy required vs. compression
ratio for various cylinder air charge pressures.
[0053] The compression energy is stored as compressed gas in the compression accumulator
49 (Fig. 1). The amount of energy available for compression is approximately defined
by the following relationship:

where
P = Accumulator gas pressure
V = Accumulator gas volume
n = Equivalent gas constant
and subscripts refer to initial condition (1) at start of compression stroke and final
condition (2) at end of compression stroke.
[0054] An operating line has been added to Fig. 10 showing a typical optimized control condition
for best overall efficiency. This line is established by actual test results obtained
for a specific engine application. Also shown in Fig. 10 is the cold start capability
region of the design.
[0055] The energy that is available for compression and is stored in the compression accumulator
is shown in Fig. 11. The characteristic shown is based on an accumulator gas charge
volume of 492 cm
3 (30 in3) and pre-charge pressure of 70 Bars (1000 psi). In the example shown, the
working displaced volume has been selected as 80 cm
3 (5 in3).
[0056] A pressure control valve 70 as shown in Fig. 1 establishes the nominal pressure level
of the compression accumulator. This is varied during operation so that the predetermined
performance requirements are achieved. The pressure control valve 70 receives its
information from the electronic microprocessor control centre as described below.
By raising or lowering the pressure level in the compression accumulator 49, the compression
energy is varied by as much as 3 to 1 or more, as shown in Fig. 11 for example. This
adequately covers the operating requirements indicated in Fig. 10 which varies by
approximately 2 to 1. In the secondary mode of operation, some of the energy for compression
is supplied by the output pressure accumulator 53 as explained earlier. The amount
of energy required of the compression accumulator 49 is, therefore, decreased toward
the low energy range shown in Fig. 11.
[0057] Fig. 12 shows how the pressure force applied to the piston mass (42, 46, 5) varies
with stroke and energy level. As the net energy level is raised by increasing the
working pressure of the compression accumulator 49, the initial force at the start
of the compression stroke increases significantly with respect to the final force
level. The advantageous result of this profile change is that the initial acceleration
of the piston mass increases substantially. This provides an effective acceleration
control means for "speeding up" the compression stroke time and resultant cycle rate.
[0058] In Fig. 13 the basic elements of the primary control circuit 150 are illustrated
in association with the FPEP 1. Only primary inputs to the microprocessor electronic
control center 154 are indicated along with the outputs that control FPEP operation.
Other inputs to the electronic control 154 of secondary importance also may exist;
these would be expected usually to have only low priority influence on the output
signals. The secondary inputs include such information as intake and exhaust manifold
temperatures, exhaust pressure, other oil pressures and temperatures, and failure
detection sensors.
[0059] The primary control loop accomplishes the following functions. The primary control
loop provides means of regulating the cycle-by-cycle operation of the FPEP 1 to achieve
consistent operation and optimized performance potential for all hydraulic pressure
and flow demands within its design range. The delivery of the FPEP may be controlled
in an efficient manner including cycle rate variability with turn-down ratio of 100
to 1 or greater. Also, the compression energy and resultant compression ratio required
by the engine combustion process may be controlled to achieve the most efficient operating
potential over all power output levels including inlet air supercharge pressure levels
of three atmospheres and greater. The control loop provides means of quickly positioning
the engine- pump elements for start-up as well as a method of controlling the dual
pumping feature of the pump to provide a smooth transition between primary high flow
low pressure mode of operation and secondary low flow high pressure mode of operation.
Using the primary control loop the compression energy may be substantially increased
at the first part of the compression stroke to accelerate the cycle rate and increase
the pumping rate capability of the FPEP 1. Moreover, the FPEP module cycle rate may
be synchronized with that of adjacent FPEP module cycle rates for the purpose of providing
continuous hydraulic input and output flow.
[0060] For cycle optimization the opposed piston FPEP 1 has the flexibility of varying the
bottom dead position (start of compression stroke) as required to optimize the energy
output process. Fig. 14 indicates that a control range exists around the nominal bottom
dead position of the stroke for various power levels and cycle rates when optimizing
overall performance. The interrelationship of factors that shape the combustion gas
diesel cycle such as intake and exhaust port areas, inlet air pressure level and output
power level can be optimized by varying the bottom dead position as determined by
actual test data and programmed into the logic of the electronic microprocessor control
154.
[0061] Referring further to Fig. 13, piston position, inlet air charge pressure, and output
level are the primary engine sensor inputs 151-153 to the electronic control 154.
Based on the predetermined algorithm for these system parameters, the injector fuel
delivery control 155 operation is varied as required to establish the required operational
stroke length.
[0062] For power delivery control, hydraulic power output from the FPEP 1 is regulated by
input command control 157 and output pressure level rate of decay information sensed
by pressure sensor 153. The input command 157 coming from operator or overall system
needs requests an output pressure level. As pressure falls below this level, the FPEP
1 cycles as necessary to regain the level. The electronic control 154 determines the
cycle rate, fuel delivery setting, and air charge pressure required to meet the need
based on the rate of pressure level decay by controlling the fuel delivery control
155 and fuel injector 10, the desired supercharging, and the pump control valves 160
(such as the valves 67-69, 78, and 103 of Figs. 1, 4 and 5A).
[0063] Compression energy level may be controlled based on pre-programmed information stored
in the electronic control 154 in order to adjust the pressure level of the compression
accumulator 49 for optimized compression. The sensor 161 senses compression accumulator
pressure and this is correlated with the information received by the electronic control
154 from the input command 157, inlet air pressure sensor 152 and output pressure
sensor 153 to operate the pressure control valve 162 which either raises or lowers
the pressure level as required for the particular mode of operation.
[0064] For start-up, the electronic control 154 logic determines whether the FPEP 1 should
be started based on information including operator input 157, output 153 and compression
161 accumulator pressures, inlet air pressure 152 and piston positions 151. If conditions
are satisfied, the FPEP pistons 5, 6 will be reset, the reset valve 78 will be closed,
and the start cycle will be initiated.
[0065] Mode selection can be made by either external operator input 157 or by automatic
electronic control via sensors 152, 153 161 depending on hydraulic pressure/flow load
requirements. When mode changing is required, output 53 and compression 49 accumulator
pressures are sensed and inlet air charge pressure to the combustion chamber 7 must
be read; necessary adjustments are made prior to switching the control valves 67-69
by the electronic control 154, for example, which also preferably adjusts the compression
accumulator 49 pressure and appropriately controls the fuel injector 10 to accomplish
change and mode of operation.
[0066] Depending on hydraulic system needs, higher flows may be achieved by activating the
acceleration booster 100. This is accomplished automatically by the electronic control
154 if flow rate cannot keep up with demand. Accordingly, the input command 157, output
pressure and decay rate from sensor 153 and compression accumulator 49 pressure from
sensor 161 are monitored by the electronic control 154 which in turn effects appropriate
operation of the pump boost control valve 103, fuel delivery controller 155, and compression
accumulator pressure control 162.
[0067] Two or more FPEP modules 1 within an installation may be synchronized by slight piston
stroke length changes in one module as compared with another as reference. By changing
fuel delivery 155 slightly, the piston stroke length 151 is decreased or increased
as required to change the cycle rate of the module in tune with the reference module
170.
[0068] In view of the foregoing, the versatility of the FPEP 1 as used alone or in combination
with other FPEP's incorporating one or more of the various features described above
to effect pumping of hydraulic fluid to do work, for example, for a variety of purposes,
now will be appreciated.
1. An in line opposed piston free piston engine pump system comprising a free piston
engine (2) including an engine cylinder (4) having a linear axis, a pair of engine
pistons (5, 6) movable in said engine cylinder along such axis toward each other during
a compression stroke and away from each other during a power stroke; a separate pump
means (3) associated with each engine piston for pumping fluid, each pump means including
a pump cylinder (43) axially aligned with said engine cylinder, a pump piston (42)
coupled to a respective engine piston for movement therewith and forming first and
second pump chambers (60, 61) within said pump cylinder, valve means (67, 68, 69)
being provided for controlling flow of fluid into and out of said pump chambers (60,
61) said valve means comprising first check valve means (62) for passing inlet flow
of relatively low pressure fluid to said first pump chamber (60), second check valve
means (65) for passing outlet flow of relatively high pressure fluid from said first
pump chamber, characterised in that a first selectively operable valve means (69)
is arranged in parallel with said second check valve means (65) for selectively bypassing
the latter, third and fourth check valve means (63, 66) respectively for passing inlet
flow of relatively low pressure fluid to said second pump chamber and outlet flow
of relatively high pressure fluid from said second pump chamber, second selectively
operable valve means (67) arranged in parallel with said third check valve means (63)
for selectively bypassing the latter, and third selectively operable valve means (68)
arranged in series with said fourth check valve means (66) for selectively controlling
fluid flow through the latter.
2. The system of claim 1, further characterized in that said valve means is fluidically
coupled relative to said check valve means and pump chambers to enable selective operation
of said pump means in a high pressure mode and in a high flow mode, and inlet fluid
flow means (Pin) are provided for coupling to said pump means relatively low pressure
input fluid, said inlet fluid flow means being coupled to provide such input fluid
to said first check valve means (62) and to the parallel connected third check valve
means (63) and second selectively operable valve means (67), and outlet fluid flow
means (Pout) for coupling together and to a relatively high pressure fluid outlet
said parallel connected second check valve means (63) and first selectively operable
valve means (67) and said series connected fourth check valve means (66) and third
selectively operable valve means (68).
3. The free piston engine pump system of claim 1, further characterized in that sensor
means (151-153) monitor at least one parameter of said engine and pump means, and
electronic control means (154) responsive to said sensor means control at least one
operation of said engine and pump means.
4. The system of claim 3, further characterized in that selectively actuable acceleration
boost means (100) are provided for increasing initial acceleration of said engine
pistons in a compression stroke, including boost piston means (101) engageable with
said engine pistons to be moved in one dierection during a power stroke and in the
opposite direction during the beginning of a compression stroke to supply said work
to said engine pistons tending to move the later to effect compression and thereby
accelerating the compression stroke, and fluid control means (103) is selectively
operable to effect movement of said boost piston means in an activated positon to
effect such increased acceleration and to a deactivated position in which said boost
piston means ordinarily is not engaged by said engine pistons.
5. The system of claim 4, further characterized in that energy absorber means (114)
are provided for absorbing excessive energy produced by over travel of said engine
pistons, including an energy absorber piston (112) contactable with said boost piston
means (101) when the latter is deactivated or in its activated mode and has been moved
by said engine pistons at least a predetermined distance.
6. The free piston engine pump system of claim 1, further characterized in that synchronizing
means (16) are provided for maintaining synchronized movement of said engine pistons
normally without transferring substantial force therebetween thereby substantially
to maintain balanced the relatively center of mass of the engine.
7. The free piston engine pump system of claim 6, further characterized in that said
synchronizing means comprises a rack and pinion assembly (17-24).
8. The free piston engine pump system of claim 1, further characterized in that a
further free piston engine pump (1b') having inlet and outlet fluid flow lines is
coupled in parallel with the first free piston engine pump (1a'), said further free
piston engine pump including an engine cylinder (4) having a linear axis, two engine
pistons (5, 6) movable in said engine cylinder along such axis toward each other during
a compression stroke and away from each other during a power stroke, and a separate
pump means (3) associated with each engine piston for pumping fluid, and control means
(150) for controlling operation of said free piston engine pumps.
9. The free piston engine pump system of claim 1, further characterized in that there
is a compression accumulator (49) including a relativly rigid housing (51), fluid
coupling means (48) for coupling a first fluid into and out from said housing, a deformable
member (50) in said housing forming a substantially fluid-tight container therein,
and a medium in said container capable of compressing to store energy in response
to pressure exerted on such container by such first fluid during a power stroke and
of expanding to expand said container thereby to deliver energy to such first fluid
for effecting a compression stroke.
10. The free piston engine pump system of claim 1, further characterized in that there
are exhaust port means (12) in said engine cylinder (4) proximate one end thereof
relative to the ordinarily expected maximum displacement of one engine piston during
a power stroke to be opened by such displacement for discharging exhaust products
of combustion from said engine cylinder and air inlet port means (11) proximate the
opposite end of said engine cylinder relative to the ordinarily expected maximum displacement
of the other engine piston during the power stroke to be opened by the latter engine
piston to supply air for combustion in said engine cylinder, whereby said port means
provide unidirectional scavenging in said engine cylinder.
1. Einbaupumpsystem mit Gegenkolben-Freikolbenmotor, mit einem Freikolbenmotor (2),
welcher einen Motorzylinder (4) mit linearer Achse einschließt, einem Paar von Motorkolben
(5,6), welche in dem Motorzylinder entlang einer solchen Achse während eines Kompressionshubes
gegeneinander und während eines Arbeitshubers auseinander bewegbar sind; einem getrennten
Pumpmittel (3), welches mit jedem Motorkolben zum Pumpen von Fluid verknüpft ist,
wobei jedes Pumpmittel einen Pumpenzylinder (43) einschließt, welcher axial mit dem
Motorzylinder ausgerichtet ist, einem Pumpkolben (42) welcher mit dem entsprechenden
Motorkolben für die Bewegung mit diesem gekoppelt ist und erste und zweite Pumpenkammern
(60, 61) innerhalb des Pumpenzylinders bildet, Ventilmitteln (67, 68, 69), welche
für die Steuerung des Flusses von Fluid in die Pumpkammern (60, 61) hinein und aus
diesen heraus vorgesehen sind, wobei die Ventilmittel ein erstes Absperrventilmittel
(62) zum Durchlassen eines Einlaßflusses von Fluid unter relativ geringem Druck in
die erste Pumpkammer (60) aufweisen, sowie ein zweites Absperrventilmittel (65) zum
Durchlassen des Auslaßflusses von unter relativ hohem Druck stehendem Fluid aus der
ersten Pumpkammer, dadurch gekennzeichnet, daß ein erstes, wahlweise betreibbares
Ventilmittel (69) parallel zu dem zweiten Absperrventilmittel (65) angeordnet ist,
um letzteres wahlweise zu umgehen, dritte und vierte Absperrventilmittel (63, 66)
zum Durchlassen des Einlaßflusses von Fluid unter relativ niedrigem Druck in die zweite
Pumpe bzw. von Auslaßfluß von Fluid unter relativ hohem Druck aus der zweiten Pumpkammer,
ein zweites, wahlweise betreibbares Ventilmittel (67), welches parallel mit dem dritten
Absperrventilmittel (63) angeordnet ist zur Umgehung des letzteren, und ein drittes,
wahlweise betreibbares Ventilmittel (68), welches in Reihe mit dem vierten Absperrventilmittel
(66) angeordnet ist, um wahlweise den Fluidfluß durch das letztere zu steuern.
2. System nach Anspruch 1, weiterhin dadurch gekennzeichnet, daß das Ventilmittel
flußmäßig mit dem Absperr- bzw. Rückschlagventilmittel und den Pumpenkammern verbunden
ist, um den wahlweisen Betrieb der Pumpmittel in einer Hochdruckbetriebsart und in
einer Hochflußbetriebsart zu ermöglichen, und Einlaß-Fluidfluß-Mittel (Prn) vorgesehen sind, um an die Pumpmittel eine Fluidzufuhr mit relativ niedrigem Druck
anzuschließen, wobei die Einlaß-Fluidfluß-Mittel so verbunden sind, daß sie eine derartige
Fluidzufuhr zu dem ersten Absperr- bzw. Ruckschlagventilmittel (62) und zu dem parallel
angeschlossenen dritten Absperr- bzw. Rückschlagventilmittel (63) und dem zweiten
wahlweise betreibbaren Ventilmittel (67) vorsehen, und ein Auslaß-Fluidfluß-Mittel
(P""t) um das zweite Absperrventilmittel (63) und das erste wahlweise betreibbare Ventilmittel
(6) und das in Reihe geschaltete vierte Absperrventilmittel (66) und das dritte wahlweise
betreibbare Ventilmittel (68), (welche parallel angeschlossen sind), miteinander und
mit einem unter relativ hohem Druck stehenden Fluidauslaß zu verbinden.
3. Das Freikolbenmotor-Pumpsystem nach Anspruch 1, weiterhin dadurch gekennzeichnet,
daß Sensormittel (151-153) zumindest einen Parameter der Motor- und Pumpmittel überwachen
und daß ein elektronisches Steuermittel (154), welches auf die Sensormittel anspricht,
wenigstens eine Wirkungsweise des Motors und des Pumpmittels steuert.
4. System nach Anspruch 3, weiterhin dadurch gekennzeichnet, daß wahlweise betreibbare
Zusatzbeschleunigungsmittel (100) vorgesehen sind, für die Erhöhung der anfänglichen
Beschleunigung der Motorkolben bei einem Kompressionshub, mit einem Zusatzkolbenmittel
(101), welches mit den Motorkolben in Eingriff bringbar ist, um während eines Arbeitshubes
in eine Richtung bewegt zu werden und in die entgegengesetzte Richtung während des
Beginns eines Kompressionshubes, um den Motorkolben eine Arbeit zuzuführen, welche
dazu führt, daß die letzteren bewegt werden, um eine Kompression zu bewirken, und
dadurch der Kompressionshub beschleunigt wird, und daß das Fluidsteuermittel (103)
wahlweise betreibbar ist, um die Bewegung des Zusatzkolbenmittels in eine aktivierte
Position zu bewirken, um eine solche erhöhte Beschleunigung hervorzurufen und in eine
entaktivierte Position, in welcher das Zusatzkolbenmittel normalerweise nicht mit
den Motorkolben in Eingriff steht.
5. System nach Anspruch 4, weiterhin dadurch gekennzeichnet, daß Energieabsorbermittel
(14) vorgesehen sind zum Absorbieren überschüssiger Energie, welche durch einen Überweg
der Motorkolben erzeugt wird, mit einem Energieabsorberkolben (112), welcher mit dem
Zusatzkolbenmittel (101) in Kontakt bringbar ist, wenn das letztere entaktiviert oder
in seinem aktivierten Betriebszustand ist und von den Motorkolben zumindest um eine
vorbestimmte Strecke bewegt wurde.
6. Das Freikolbenmotor-Pumpsystem nach Anspruch 1, weiterhin dadurch gekennzeichnet,
daß Synchronisationsmittel (16) vorgesehen sind zur Aufrechterhaltung einer synchronen
Bewegung der Motorkolben normalerweise ohne wesentliche Kraft zwischen ihnen zu übertragen,
um dadurch im wesentlichen relativ zum Schwerpunkt des Motors im wesentlichen ausbalanciert
zu bleiben.
7. Das Freikolbenmotor-Pumpsystem nach Anspruch 6, weiterhin dadurch gekennzeichnet,
daß das Synchronisierungsmittel einen Zahnstangen-und Ritzelaufbau (17-24) aufweist.
8. Das Freikolbenmotor-Pumpsystem nach Anspruch 1, weiterhin dadurch gekennzeichnet,
daß eine weitere Freikolbenmotorpumpe (1 b'), welche Einlaß- und Auslaß- Fluidfließleitungen
hat, parallel mit der ersten Freikolbenmotorpumpe (1a') verbunden ist, wobei die weitere
Freikolbenmotorpumpe umfaßt: einen Motorzylinder (4) mit einer linearen Achse, zwei
Motorkolben (5, 6), welche in dem Motorzylinder entlang dieser Achse während eines
Kompressionshubes gegeneinander und während eines Arbeitshubes voneinander wegbewegbar
sind, und ein separates Pumpmittel (3), welches mit jedem Motorkolben verknüpft ist,
um Fluid zu pumpen; und daß ein Steuermittel (150) zum Steuern des Betriebes der Freikolbenmotorpumpen
vorgesehen ist.
9. Freikolbenmotor-Pumpsystem nach Anspruch 1, weiterhin dadurch gekennzeichnet, daß
ein Druckspeicher (49) vorgesehen ist, mit einem relativ festen Gehäuse (51), Fluid-Anschlußmitteln
(48), um ein erstes Fluid in das Gehäuse und aus dem Gehäuse heraus anzuschließen,
einem verformbaren Teil (50) in dem Gehaüse, welches einen im wesentlichen fluiddichten
Behälter darin bildet, und einem Medium in dem Behälter, welches zusammenpreßbar ist,
um Energie zu speichern in Abhängigkeit von dem auf den Behälter durch das erste Fluid
während eines Arbeitshubes aufgebrachten Druck, und welches ausdehnbar ist, um den
Behälter auszudehnen und dadurch Energie an das erste Fluid abzugeben, um einen Kompressionshub
zu bewirken.
10. Das Freikolbenmotor-Pumpsystem nach Anspruch 1, weiterhin dadurch gekennzeichnet,
daß Auslaßöffnungsmittel (12) vorgesehen sind in dem Motorzylinder (4) in der Nähe
eines Endes desselben, bezogen auf die normalerweise erwartete maximale Auslenkung
eines Motorkolbens während eines Arbeitshubes, um durch eine solche Auslenkung geöffnet
zu werden, um Ausstoßprodukte der Verbrennung aus dem Motorzylinder herauszulassen,
und Lufteinlaßöffnungsmittel (11) in der Nähe des entgegengesetzten Endes des Motorzylinders,
bezogen auf die normalerweise erwartete maximale Auslenkung des anderen Motorkolbens
während eines Arbeitshubes, um durch den letzteren Motorkolben geöffnet zu werden,
um Luft für die Verbrennung in dem Motorzylinder zuzuführen, wodurch die Öffnungsmittel
für ein Spülen in einer Richtung in dem Motorzylinder sorgen.
1. Système de pompe à moteur à pistons libres à pistons opposés en ligne, comprenant
un moteur à piston libre (2) comprenant un cylindre de moteur (4) ayant un axe linéaire,
une paire de pistons de moteur (5, 6) pouvant se mouvoir dans ce cylindre de moteur,
le long de cet axe, l'un vers l'autre pendant une course de compression et en s'éloignant
l'un de l'autre pendant une course motrice; un moyen à pompe séparé (3) associé à
chaque piston de moteur pour pomper du fluide, chaque moyen à pompe comprenant un
cylindre de pompe (43) aligné axialement sur le cylindre de moteur, un piston de pompe
(42) accouplé à un piston respectif de moteur pour se mouvoir avec lui et former une
première et une deuxième chambres de pompe (60, 61) à l'intérieur du cylindre, de
pompe, des moyens à valve (67, 68, 69) étant prévus pour commander l'écoulement de
fluide entrant dans les chambres de pompe (60, 61) et sortant de celles-ci, ces moyens
à valve comprenant un premier moyen à valve anti-retour (62) pour laisser arriver
à la première chambre de pompe (60) un écoulement d'entrée de fluide à pression relativement
basse, un deuxième moyen à valve anti-retour (65) pour laisser sortir de la première
chambre de pompe un écoulement de sortie de fluide à pression relativement basse,
caractérisé par le fait qu'un premier moyen à valve (69) pouvant être actionné sélectivement
est disposé en parallèle au deuxième moyen à valve anti-retour (65) pour éviter sélectivement
ce dernier, un troisième et un quatrième moyens à valve anti-retour (63, 66) respectivement
pour laisser arriver à la deuxième chambre de pompe un écoulement d'entrée de fluide
à pression relativement basse et pour laisser sortir de cette deuxième chambre de
pompe un écoulement de sortie de fluide à pression relativement élevée, un deuxième
moyen à valve (67) pouvant être actionné sélectivement, disposé en parallèle au troisième
moyen à valve anti-retour (63) pour éviter sélectivement cette dernière, et un troisième
moyen à valve (68) pouvant être actionné sélectivement, disposé en série avec le quatrième
moyen à valve anti-retour (66) pour commander sélectivement l'écoulement de fluide
à travers ce dernier.
2. Système selon la revendication 1, caractérisé en outre par le fait que le moyen
à valve est couplé fluidiquement au moyen à valve anti-retour et aux chambres de pompes
pour permettre un actionnement sélectif des moyens à pompe dans un mode de haute pression
et dans un mode de grand écoulement, et que des moyens d'écoulement de fluide d'entrée
(Pin) sont prévus pour coupler aux moyens à pompe du fluide d'entrée à pression relativement
basse, les moyens d'écoulement de fluide d'entrée étant couplés pour fournir un tel
fluide d'entrée au premier moyen à valve anti-retour (62) et au troisième moyen à
valve anti-retour (63) et au deuxième moyen à valve anti-retour (67) pouvant être
actionné sélectivement, reliés en parallèle, et des moyens d'écoulement de fluide
de sortie (P out) pour coupler, ensemble et à une sortie de fluide à pression relativement
élevée, le deuxième moyen à valve anti-retour (63) et le premier moyen à valve pouvant
être actionné sélectivement (67), reliés en parallèle, et le quatrième moyn à valve
anti-retour (66) et le troisième moyen à valve (68) pouvant être actionné sélectivement,
reliés en série.
3. Système de pompe à moteur à pistons libres selon la revendication 1, caractérisé
en outre par le fait que des moyens à capteur (151 à 153) surveillent au moins un
paramètre du moteur et des moyens à pompe, et que des moyens de commande électroniques
(154), répondant aux moyens à capteur, commandent au moins une opération du moteur
et des moyens à pompe.
4. Système selon la revendication 3, caractérisé en outre par le fait que des moyens
de renforcement d'accélération (100) pouvant être actionnés séectivement sont prévus
pour augmenter l'accélération initiale des pistons de moteur dans une course de compression,
y compris des moyens à piston de renforcement (101) pouvant coopérer avec les pistons
du moteur pour être déplacés dans un sens pendant une course motrice et dans le sens
opposé pendant le début d'une course de compression, pour fournir l'énergie aux pistons
de moteur, tendant à déplacer ces derniers pour effectuer la compression et ainsi
accélérer la course de compression, et qu'un moyen de commande de fluide (103) peut
être actionné sélectivement pour effectuer un mouvement des moyens à piston de renforcement
dans une position activée pour effectuer une telle accélération accrue, et à une position
désactivée dans laquelle les moyens à piston de renforcement ne subissent pas ordinairement
l'action des pistons de moteur.
5. Système selon la revendication 4, caractérisé en outre par le fait que des moyens
d'absorption d'énergie (114) sont prévus pour absorber de l'énergie excessive engendrée
par un excès de course des pistons de moteur, comprenant un piston absorbeur d'énergie
(112) pouvant être mis en contact avec les moyens à piston de renforcement (101) quand
ces derniers sont désactivés ou dans leur mode activé et ont été déplacés par les
pistons de moteur, au moins d'une distance prédéterminée.
6. Système de pompe à moteur à pistons libres selon la revendication 1, caractérisé
en outre par le fait que des moyens de synchronisation (16) sont prévus pour maintenir
un mouvement synchronisé des pistons de moteur, normalement sans transférer une force
appréciable entre eux, pour maintenir pratiquement équilibré le centre de gravité
relatif du moteur.
7. Système de pompe à moteur à pistons libres selon la revendication 6, caractérisé
en outre par le fait que les moyens de synchronisation comprennent un ensemble à crémaillère
et à pignon (17 à 24).
8. Système de pompe à moteur à pistons libres selon la revendication 1, caractérisé
en outre par le fait qu'une autre pompe à moteur à pistons libres (1b'), ayant des
tuyaux d'écoulement de fluide d'entrée et de sortie, est couplée en parallèle à la
première pompe à moteur à pistons libres (1a'), cette autre pompe à moteur à pistons
libres comprenant un cylindre de moteur (4) ayant un axe linéaire, deux pistons de
moteur (5, 6) pouvant se mouvoir dans ce cylindre de moteur le long de l'axe, l'un
vers l'autre pendant une course de compression et en s'éloignant l'un de l'autre pendant
une course motrice, et un moyen à pompe séparé (3) associé à chaque piston de moteur
pour pomper du fluide, et des moyens de commande (150) pour commander le fonctionnement
des pompes à moteur à pistons libres.
9. Système de pompe à moteur à pistons libres selon la revendication 1, caractérisé
en outre par le fait qu'il y a un accumulateur de compression (49) comprenant un carter
relativement rigide (51), des moyens de couplage de fluide (48) pour coupler un premier
fluide dans le carter et hors de celui-ci, un organe déformable (50) dans le carter,
formant dans celui-ci un récipient pratiquement étanche au fluide, et dans ce récipient,
un milieu capable de se comprimer pour emmagasiner de l'énergie en réponse à une pression
exercée sur le récipient par le premier fluide pendant une course motrice et de se
détendre pour détendre le récipient, de manière à fournir de l'énergie au pre- mierfluide
pour effectuer une course de compression.
10. Système de pompe à moteur à pistons libres selon la revendication 1, caractérisé
en outre par le fait qu'il y a des moyens à orifice d'échappement (12) dans le cylindre
de moteur (4), près d'une extrémité de celui-ci, relativement au déplacement maximal
ordinairement prévu d'um piston de moteur pendant une course motrice, pour être ouverts
par ce déplacement pour décharger des produits d'échappement de combustion du cylindre
de moteur, et des moyens à orifice d'échappement (11) près de l'extrémité opposé du
cylindre de moteur relativement au déplacement maximal ordinairement prévu de l'autre
piston de moteur pendant la course motrice, pour être ouverts par ce dernier piston
de moteur pour fournir de l'air pour la combustion dans le cylindre de moteur, de
sorte que les moyens à orifice assurent un balayage unidirectionnel dans le cylindre
de moteur.