US2954022A - Split engine - Google Patents

Split engine Download PDF

Info

Publication number
US2954022A
US2954022A US736915A US73691558A US2954022A US 2954022 A US2954022 A US 2954022A US 736915 A US736915 A US 736915A US 73691558 A US73691558 A US 73691558A US 2954022 A US2954022 A US 2954022A
Authority
US
United States
Prior art keywords
throttle
engine
vacuum
air
inactive
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US736915A
Inventor
Stanley H Mick
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Motors Liquidation Co
Original Assignee
Motors Liquidation Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Motors Liquidation Co filed Critical Motors Liquidation Co
Priority to US736915A priority Critical patent/US2954022A/en
Application granted granted Critical
Publication of US2954022A publication Critical patent/US2954022A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M69/00Low-pressure fuel-injection apparatus ; Apparatus with both continuous and intermittent injection; Apparatus injecting different types of fuel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M2700/00Supplying, feeding or preparing air, fuel, fuel air mixtures or auxiliary fluids for a combustion engine; Use of exhaust gas; Compressors for piston engines
    • F02M2700/43Arrangements for supplying air, fuel or auxiliary fluids to a combustion space of mixture compressing engines working with liquid fuel
    • F02M2700/4397Arrangements for supplying air, fuel or auxiliary fluids to a combustion space of mixture compressing engines working with liquid fuel whereby air or fuel are admitted in the mixture conduit by means other than vacuum or an acceleration pump

Description

S. H. MICK SPLIT ENGINE Sept. 27, 1960 2 Sheets-Sheet 1 INVu'NTOR. I 5202/5; A? flak Filed May 21, 1958 A TTOR/VEV P 1960 s. H. MICK 2,954,022
SPLIT. ENGINE Filed May 21, 1958 2 Sheets-Sheet 2 Ill/ill lIIIiII/II IJV VEN TOR. 5::zzzayMZ/Zzck BY {51.
United States Patent O SPLIT ENGINE Stanley H. Mick, St. Clair Shores, Mich assignor to General Motors Corporation, Detroit, Mich., a corporation of Delaware Filed May 21, 1958, Ser. No. 736,915
Claims. (Cl. 123-127) .Thepresent invention relates to an engine control system in which it is possible to operate the engine on less than all of the cylinders under normal or light load conditions but in which full engine operation is possible when the engine load exceeds a given value. The present invention is an improvement over copending application Serial No. 608,828, Dolza, filed September 10, 1956, now Patent No. 2,875,742, granted Mar. '3, 1959.
As explained in the aforenoted copending application, it has been found that considerable economies can be realized when it is possible to resort to split engine operation, for example, being able to operate an eight cylinder engine on four cylinders under moderate load conditions. The economy is effected by the fact that individual cylinder efiiciency is increased when the individual cylinder load is increased during split engine operation in contrast to reduced cylinder loads as occurs with full engine operation during light or moderate load conditions.
It is an inherent characteristic of an internal combustion engine to be most efficient under high load conditions. This is attributable to the quantity of air fed to the cylinders. Maximum air is supplied to the cylinders when the throttle is open, indicative of high load, therefore, more air may be compressed in turn increasing the compression ratio. Since engine etficiency increases with compression pressure and compression pressure increases with cylinder load, the desirability of split or part cylinder engine operation as a means for maintaining high cylinder loads becomes apparent.
Split engine operation has long been recognized as a theoretically desirable goal. However, the general complication of mechanisms which have been developed to achieve this type of operation have thus far precluded its commercial feasibility. The present invention relates to a greatly simplified split engine control system which has been operated over a considerable period of time and has proved to be most satisfactory in operation.
The invention is illustrated with eight cylinders although it is apparent that it may be applied to engines having any number of cylinders in excess of one. Separate air intake passages, throttles and manifolds are provided for the active and inactive cylinders.
.It isapparent that alternate firing cylinders should be selected for active or inactive cylinders. In other words, 'a normal firing order for an eight cylinder engine might be 18-4 36-5-72. The active cylinder group might then be cylinders 1467. v
:Ingeneral, the operation of the split engine control system is such that when the manifold vacuum is above a given value, e.g., 4 inches of mercury or greater, in the manifold serving the four active cylinders, the engine is operated on these four cylinders only and controlled by an active throttle device which regulates flow through "one of the two air intake passages. When part or four cylinder operation is afiected, an inactive throttle in the other air induction passage is moved to a full open position to prevent pumping losses in the inactive cylin- 2,954,022 C Patented Sept.,27, 1960.
ders. At the same time fuel flow to the inactive noizzles is also cut oif.
Contemporaneously with the opening of the inactive throttle and the cutting olf of fuel flow to the inactive nozzles, means is provided for shifting an accelerator pedal controlled throttle linkage to a position increasing the opening of the active throttle beyond the amount which would otherwise exist during eight cylinder engine operation. This latter adjustment of the active throttle during four cylinder operation as well as its corollary in which the active throttle is moved towards a more closed position when eight cylinder operation is in effect necessary in order to provide a smooth transition between four and eight cylinder engine operation. The latter is. necessary in order to make the transition at substantially constant engine torque.
Other objects and advantages will be apparent from: a perusal of the detailed description which follows.
In the drawings:
Figure 1 is a diagrammatic representation of a fuel system embodying the subject invention; and
Figures 1a and 1b are enlargements of portion of Figure 1. Referring to the drawings, a manifold is indicated generally at 10 and is of the divided header type in which individual air induction passages 12 and 14 are adapted respectively to supply air to four of the engine cylinders through individual cylinder intake passages 16 and 18. Throttle valves 20 and 22 are disposed in each of the in duction passages as are contoured difiusers 24 and 26. The diffusers and induction passages respectively coact to define venturis 25 and 27. Fuel nozzles 28 and 29 are disposed in the individual cylinder intake passages and are adapted to supply fuel to cylinders 30 when the cylinder intake valves 32 are open.
In-the present control system, as in the aforenoted copending application, a group of cylinders and associated air intakes are always active whereas the remaining cylinders are normally inactive with the latter being activated only after the engine load exceeds a given value. In the present illustration, intake 12, throttle 20 and the four associated cylinder intake passages 16 are the active part of the system whereas intake 14, throttle 22 and intake passages 18 constitute the normally inactive part of the system.
Fuel is adapted to be supplied to the nozzles 2829 through a fuel injection metering device indicated generally at 34 which is shown and described in detail in copending application Serial No. 608,853, Dolza, filed September 10, 1956, now Patent No. 2,843,098, granted July 15, 1958. The fuel metering system functions in the same manner as described in the aforenoted copending application and does not, per se, constitute a part of the'present invention.
Air is drawn in through both induction passages as already noted. However, only the active induction passage 12 includes a piezometer ring 36 which transmits a vacuum signal proportional to mass air flow through conduit 38 to a metering control diaphragm 40 of the fuel control mechanism 34. Inasmuch as two intake induction passages are utilized in the subject split engine, it is possible for venturi 25 to be reduced sufliciently in size such that one-half engine operation will produce the same metering signal in piezometer ring 36 as total engine air flow would produce on the single venturi used in the aforenoted Dolza application Serial No. 608,853. Further, since venturi depression in piezometer ring 36 is .proportional to the nozzle pressure drop across all of the nozzles 28 and with equal air flow restriction in each induction passage, due to coordinated (equal opening) positioning of the throttles, the venturi signalmay be taken off from the active induction passage during all operating conditions.
Fuel control mechanism 34 is adapted to supply fuel pressure to conduit 42 in proportion to mass air flow. A branch conduit 44 is supplied from conduit 42. Conduits 42 and 44 respectively lead to distributors 46 and 48 which in turn supply the active and inactive nozzles through individual conduits 50 and 52.
Throttles 20 and 22 are interconnected through a linkage mechanism indicated generally at 54 for synchronized operation by the operator through the actuation of an accelerator pedal 56. Accelerator controlled linkage operation is, however, modified by other mechanisms to be subsequently described.
The accelerator pedal controlled linkage 54 includes an arm 58 fixed to the active throttle shaft 60. Arm 58 is articulated through a link 62 to a double articulated lever 64. The upper portion 66 of lever 64 is articulated intermediate its ends to a link 68 connected at its other end to accelerator pedal 56. The lower end of lever portion 66 is articulated at 70 to member 72 of the lever 64. The lower end of member 72 is pivotally mounted on a fixed support 74.
The pivotal connection 70 between lever portions 66 and 70 has a link 76 articulated thereto and the other end of which link is connected to a rod 78 of a servo device indicated generally at 80. Servo device 80 includes a pair of casing members 82 and 84 which peripherally clamp a flexible diaphragm 86 therebetween. Rod 78 is centrally fixed to the diaphragm and extends through an opening 88 in casing 84. A spring 89 is disposed in servo chamber 90 and tends to bias diaphragm 86 to the right. It is possible, however, to eliminate spring 89 if desired.
The upper end of lever 64 has a spring 92 connected thereto, the other end of which is grounded at 94. Assuming for the moment that all other control forces remain unchanged, it is apparent that as the accelerator pedal 56 is depressed the throttle linkage system is such that the active throttle 20 will be opened. It should be noted at this point that the pivoted connection 70 between members 66 and 72 of double articulated lever 64 may be pivoted between two positions by servo mechanism 86 in conjunction with spring 89. When, as is the case during eight cylinder operation, the vacuum forces on either side of diaphragm 86 are substantially balanced, spring 89, through rod 78 and link 76, will shift pivoted connection point 70 in a rightward direction as shown in the drawing. This action causes a counterclockwise rotation of member 66 moving throttle 20 in a closing direction. As will be subsequently considered in greater detail when the vacuum in chamber 90 overcomes spring 89 the parts will be shifted to the dotted line positions to open throttle 20. As will subsequently be more apparent, this differential movement of the active throttle 20 is for the purpose of readjusting the throttle position to facilitate a smooth transition between four and eight cylinder operation.
During this eight or full cylinder operation, actuation of accelerator pedal 56 will cause the double articulated lever 64 to pivot about support 74. As will subsequently be considered in greater detail, however, during four or part cylinder operation, lever portion 66 will pivot about point 70 thus providing differential control of throttle actuation.
Active throttle lever 58 is articulated through a link 96 to an arm 98 loosely mounted on the inactive throttle valve shaft 100 so that the actuation of the active throttle may or may not affect a similar movement of the inactive throttle 22 depending on the actuation of other devices which will be subsequently considered. A lever 102 is fixed to the inactive throttle shaft 100 and includes a tab portion 104 adapted to engage with the loosely mounted lever 98. Assuming the system control forces are such that the inactive throttle 22 is in a closed position, as shown, then the levers 98 and 102 are in operative engagement and opening movement of the active throttle 20 will likewise open the inactive throttle.
The various devices utilized to vary the subject fuel system between split and full operation will now be considered. In general, it has been found that as long as the manifold vacuum in the active portion 106 of manifold 10 is above a predetermined value, e.g., four inches of mercury, most economical engine operation will be achieved by split or four cylinder operation of the engine with the remaining cylinders being inactivated.
As already noted, in order to prevent pumping losses in the inactive engine cylinder it is desired to fully open inactive throttle 22 during split engine operation. This full opening movement of throttle 22 is achieved by a servo mechanism'110 which includes a pair of easing members 112 and 114 peripherally clamping a diaphragm 116 therebetween. A control rod 118 is centrally fixed to diaphragm 116 and projects through an opening 120 in the casing 112 and is connected to link 122 articulated to lever 102. A spring 124 disposed in chamber 125 between diaphragm 116 and casing 114 normally urges the lever 102 and throttle 22 in a counterclockwise or closing direction and under which condition, as noted, tab 104 of lever 102 is in engagement with active throttle controlled lever 98.
The actuation of servo 110 is under the control of a shift v alve device indicated generally at 126. Device 126 includes a plurality of casing members 128, 130 and 1321 Casing 132 includes a ported cylindrical opening within which a spool type valve member 134 is slidably disposed. Valve member 134 includes a stem 136 extending toward casings 128 and 130 and upon which a pair of flexible diaphragms 138 and 140 are centrally mounted. The first diaphragm 138 is peripherally clamped between casings 128 and 130 while the second and smaller diaphragm 140 is peripherally clamped by the casings 130 and 132. Chamber 142 defined by casing 128 and diaphragm 138 is connected through a passage 144 with the active manifold 106 whereby active manifold vacuum is at all times transmitted to' the chamber.
Chamber 146 defined by diaphragms 138 and 140 and. casing 130 is communicated through a conduit 148 with the inactive manifold 150 and likewise is at all times subject to the vacuum force extent therein. A spring 152 is also disposed in vacuum chamber 142 and biases spindle valve 134 in a rightward direction which, other control forces permitting, causes conduit 154 communicating with chamber 125 of servo 110 to be exhausted to the atmosphere through an exhaust port 158 in casing 132. In such case spring 124 would move inactive throttle 22 in a throttle closing direction.
So long as the vacuum in manifold 106 exceeds that in manifold 150 by a differential of four inches of mercury, the vacuum force in chamber 142 will be sufliciently strong to overcome spring 152 as well as the vacuum force in chamber 146 to shift valve 134 to the left. Under this circumstance active manifold vacuum from conduit 160 will be admitted from valve casing port 162 between the lands of valve 134 where it will act through conduit 154 on inactive throttle diaphragm 116 to shift the diaphragm to the right against the force of spring 124 to fully open the inactive throttle.
At the same time, the vacuum forces from manifolds 106 and 150 are respectively transmitted through conduits 164 and 166 to chambers 90 and 91 of accelerator control linkage servo 80. The same vacuum differential will cause diaphragm 86 of servo 80 to be shifted to the left moving the pivotal connection70 to its leftmost position in which a. stop 168 on member 72 of lever 64 abuts a fixed stop 170. The leftward movement of pivotal connection 70 causes member 66 of 5 lever 64 to be rotated in a clockwise direction increasing the opening of the active throttle in order to maintain a 'oonstant engine torque for smooth transition to four cylinder operation, supra. As noted, supra, lever 66 now pivots about point 70 providing differential control whereby the active throttle 20 open to a greater extent than during corresponding eight cylinder operation. Contemporaneously with the shifting of the throttle linkage and the opening of the inactive throttle, a servo valve device 172 is adapted to cut off the how of fuel tothe inactive nozzle distributor 48. Servo valve device 172 includes a pair of casing members 174 and 176 peripherally clamping :a diaphragm 178 therebetween and'thereby forming a pair of vacuum chambers 180 and 182. Vacuum chambers 180 and 182 in turn communicate through conduits 184 and .186 with active and inactive manifold vacuum conduits 144 and 148. A control rod 188 is centrally fixed to diaphragm -178 and terminates in a valve portion 190 which, when the predetermined vacuum differential exists between manifolds 106 and 150, is shifted to the right against the force of spring 192 to out off the flow of fuel from conduit 44 to nozzles 29-.
'Ilhe transition from split or four cylinder operation to eight or full engine operation is, as noted, affected when the vacuum in the manifold 106 drops below a predetermined value, e.g., four inches of mercury. When this happens the force of spring 152 acting on the shift valve device diaphragm 138 will cause valve 134 to be moved to the right atmospherically venting inactive throttle servo chamber 125 and causing the spring 124 to move the inactive throttle towards a closed position and operatively engaging inactive throttle levers 102 and 98 whereby synchronized operation of the throttles will thereafter take place.
T Closing the inactive throttle substantially equalizes the vacuum in manifolds 106 and 150 under which conditions the vacuum forces on either side of linkage controlling servo diaphragm 86 will be substantially equal and spring 89 will shift the active throttle 20 to a more closed position, supra. Again, the equal vacuum in manifolds 106 .and 150 will be transmitted to fuel cut-off valve servo chambers 180 and 182 permitting spring 192to open 'valve 190 and thereby initiating fuel flow to inactive nozzles 29.
During eight or full cylinder operation the active and inactive manifold vacuums are equal resulting in no vacuum force differential acting on shift valve diaphragm 138.- However, when the vacuum in chamber 146 of the shift valve device 126exceeds a given value, e. g., .15 inches of mercury, it will act on the small diaphragm 140 with sufficient force to overcome spring 152 and shift the valve 134 to the left. This again fully opens the inactive throttle which once again causes the servos 80 and 172 to again adjust the throttle valves and fuel flow to four cylinder operation.
It is apparent that the subject invention has been diagrammatically represented in order to simplify the understanding of its operation. It is also apparent that the substance of the subject invention may be embodied in various structural arrangements within the intended scope of the hereinafter appended claims.
I claim:
1. A charge forming device for an internal combustion engine comprising a first :air induction system for supplying air to certain cylinders of the engine, a second air induction system for supplying air to the remaining cylinders of the engine, first and second throttle valve means for respectively controlling the flow of air through said first and second systems, first and second levers respectively fixed for rotating with said first and second throttle valve means, a third lever mounted on said second throttle means for rotation relative thereto, a link interconnecting said first and third levers, an accelerator pedal, accelerator pedal control means for actuating said link, spring means biasing said second and third levers into operative engagement whereby movement of the accelerator pedal will cause synchronized operation of said throttle valve means, and engine load responsive means for fully opening the second throttle valve means irrespective of the position of the first throttle valve means. 7 Y
2. A charge forming device for an internal combustion engine comprising a first air intake passage, a first manifold communicating with said intake passage and a first group of individual cylinder mixture passages leading from said manifold to certain of the cylinders of the engine, a second air induction passage, a second manifold communicating with said second induction passage, a second. group of individual cylinder mixture passages communicating with said second manifold and leading to the remainder of the engine cylinders, venturi means in each of said :air intake passages, throttle valves for respectively controlling the fiow of air through said intake passages, a fuel nozzle disposed in each of said individual cylinder mixture passages, fuel metering means for supplying fuel to said nozzles in accordance with the mass of air flow through the venturi means of one of said intake passages, linkage means interconnecting said throttle valves and adapted to synchronize operation of said valves, accelerator pedal control means adapted to actuate said linkage means, means responsive to the vacuum differential between said manifolds and adapted when said differential exceeds a predetermined value for fully opening the throttle valve associated with the lower vacuum manifold, a servo mechanism responsive to said predetermined vacuum differential to move the throttle valve associated with the higher vacuum manifold toward a more open position, and another servo operable in response to said vacuum differential to cut off the flow of fuel to those nozzles associated with the lower vacuum manifold.
3. A charge forming, device for an internal combustion engine comprising a first air intake passage, a first manifold communicating with said intake passage and a first group of individual cylinder mixture passages leading from said manifold to certain of the cylinders of the engine, a second air induction passage, a second manifold communicating with said second induction passage, a second group of individual cylinder mixture passages communicating with said second manifold and leading to the remainder of the engine cylinders, venturi means in each of said air intake passages, throttle valves for respectively controlling the flow of air through said intake passages, afuel nozzle disposedin each of said indivdual cylinder mixture passages, fuel metering means for supplying fuel to said nozzles in accordance with the mass of air flow through the venturi means of said first intake passages, linkage means interconnecting said throttle valves and adapted to synchronize operation of said valves, accelerator pedal control means adapted to actuate said linkage means, a lost motion connection between said linkage means and the throttle controlling the sec- 0nd air intake passage, means responsive to the vacuum differential between said manifolds and adapted when said differential exceeds a predetermined value for fully opening said second air intake passage throttle, a servo mechanism responsive to said predetermined vacuum differential to move the first air intake passage throttle valve toward a more open position, and another servo operable in response to said vacuum differential to cut off the flow of fuel to those nozzles associated with the second group of individual cylinder mixture passages.
4. A charge forming device for an internal combustion engine comprising a first air induction system for supplying air to certain cylinders of the engine, a second air induction system for supplying air to the remaining engine cylinders, first and second throttle valves for respectively controlling the flow of air through said first and second systems, means for supplying fuel to each of said air induction systems in accordance with engine demand, means for synchronizing the actuation of said throttles, means responsive to the engine vacuum differential in said air induction systems posteriorly of said throttles for fully opening one of said throttles when said differential exceeds a predetermined value, additional means responsive to said predetermined vacuum differential for moving the other throttle to a more open position when said one throttle is fully opened, and further means operable in response to said predetermined vacuum differential to cut off the flow of fuel to the air induction system associated with the fully opened throttle, said means for fully opening said one throttle comprising a first servo device connected to said one throttle, said servo including spring means normally biasing said one throttle in a closing direction, and a second servo device, said second servo device including a valve responsive to the predetermined vacuum differential between said induction systems, spring means normally biasing said valve to a position venting said first servo whereby the first servo spring means moves said one throttle in a closing direction, said second servo being adapted to shift said valve to a position admitting manifold vacuum to said first servo to fully open said one throttle when the manifold vacuum differential exceeds said predetermined value.
5. A charge forming device as set forth in claim 4 in which said second servo device comprises a first diaphragm exposed on opposite sides thereof respectively to the engine manifold vacuum extant in said first and second air induction systems, said diaphragm being adapted to shift said valve to cause the first servo to move said throttle to a fully open position when the manifold vacuum of said first induction system exceeds that of the second induction system by a predetermined amount, and a second diaphragm smaller than the first diaphragm exposed only to the manifold vacuum of said second induction system and adapted to shift said valve to vent the first servo whereby said one throttle is fully opened when the second induction system manifold vac uum exceeds a predetermined value.
6. A charge forming device as set forth in claim 5 in which said valve includes a stern centrally fixed to said first and second diaphragms.
7. A charge forming device for an internal combustion engine comprising a first air induction system for supplying air to certain cylinders of the engine, a second air induction system for supplying air to the remaining engine cylinders, first and second throttle valves for respectively controlling the flow of air through said first and second systems, means for supplying fuel to each of said air induction systems in accordance with engine demand, means for synchronizing the actuation of said throttles, means responsive to the engine vacuum differential in said air induction systems posteriorly of said throttles for fully opening one of said throttles when said differential exceeds a predetermined value, additional means responsive to said predetermined vacuum differential for moving the other throttle to a more open position when said one throttle is fully opened, and further means operable in response to said predetermined vacuum differential to cut off the flow of fuel to the air induction system associated with the fully opened throt tle, said throttle synchronizing means comprising a pair of levers respectively operatively connected to said. first and second throttle valves, a rod interconnecting. said levers, a double articulated lever means operatively connected to said pair of levers, one end of said double articulated lever mounted upon a fixed pivot, and an accelerator pedal pivotally connected to the double articulated lever for actuating said throttles.
8. A charge forming device as set forth in claim 7 in which the double articulated lever means comprises first and second lever members, a pivotal connection between said members, said' accelerator pedal being pivotally connected to one of said lever members remote from said pivotal connection.
9. A charge forming device as set forth in claim 8 in which the additional means responsive to said predetermined vacuum differential for moving the other throttle to a more open position is connected to said: double: articulated lever means for rotating the pivotal. connection of the lever members about said fixed pivot;
10. A charge forming device as set forth in claim 9 in which the accelerator. pedal connected lever member. is operatively connected at one end to said pair of throttle levers and is connected at the other end to said pivotal connection whereby rotation of said pivotal connection will cause the accelerator pedal connected lever to rotate to adjust the position of at least one of the throttle valves.
References Cited in the file of this patent UNITED STATES PATENTS 2,166,968 Rohlin July 25, 1939 2,250,814 Rohlin July'29, 1941 2,271,824 Johns Feb. 3, 1942 2,623,617 Snyder et al Dec. 30, 1952 Patent N0 2 954 O22 September 2'1 196C Stanley H. Mick certified that error appears in the-printed specification It is hereb? orrection and that the said Letters of the above numbered patent requiring 0 Patent should read as corrected below.
Column 7 line 31 after "said" insert one Signed and sealed this 25th day of April 1961.
(SEAL) Attest:
ERNEST w, SWIDER Attesting Officer DAVID L. LADD Commissioner of Patents
US736915A 1958-05-21 1958-05-21 Split engine Expired - Lifetime US2954022A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US736915A US2954022A (en) 1958-05-21 1958-05-21 Split engine

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US736915A US2954022A (en) 1958-05-21 1958-05-21 Split engine

Publications (1)

Publication Number Publication Date
US2954022A true US2954022A (en) 1960-09-27

Family

ID=24961849

Family Applications (1)

Application Number Title Priority Date Filing Date
US736915A Expired - Lifetime US2954022A (en) 1958-05-21 1958-05-21 Split engine

Country Status (1)

Country Link
US (1) US2954022A (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3765394A (en) * 1972-09-05 1973-10-16 Gen Motors Corp Split engine operation
US3897524A (en) * 1974-01-04 1975-07-29 Ford Motor Co Carburetor secondary throttle shaft construction
US4037571A (en) * 1976-03-09 1977-07-26 Toyota Jidosha Kogyo Kabushiki Kaisha Multi-cylinder internal combustion engine
US4070971A (en) * 1974-06-05 1978-01-31 Alden Henry Studebaker Engine efficiency
US4098459A (en) * 1976-07-30 1978-07-04 Schmelzer Corporation Vacuum break device
US4144863A (en) * 1976-08-23 1979-03-20 Ford Motor Company Circuit for controlling the operability of one or more cylinders of a multicylinder internal combustion engine
US4204514A (en) * 1977-12-19 1980-05-27 Toyota Jidosha Kogyo Kabushiki Kaisha Split operation type multi-cylinder internal combustion engine

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2166968A (en) * 1936-12-18 1939-07-25 Karl W Rohlin Apparatus for controlling the operation of internal combustion engines of the multicylinder type
US2250814A (en) * 1937-08-30 1941-07-29 Karl W Rohlin Internal combustion engine of the multicylinder type
US2271824A (en) * 1941-05-21 1942-02-03 Godfrey Mfg Corp Pneumatic control device
US2623617A (en) * 1949-12-16 1952-12-30 Carter Carburetor Corp Half motor cutout

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2166968A (en) * 1936-12-18 1939-07-25 Karl W Rohlin Apparatus for controlling the operation of internal combustion engines of the multicylinder type
US2250814A (en) * 1937-08-30 1941-07-29 Karl W Rohlin Internal combustion engine of the multicylinder type
US2271824A (en) * 1941-05-21 1942-02-03 Godfrey Mfg Corp Pneumatic control device
US2623617A (en) * 1949-12-16 1952-12-30 Carter Carburetor Corp Half motor cutout

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3765394A (en) * 1972-09-05 1973-10-16 Gen Motors Corp Split engine operation
US3897524A (en) * 1974-01-04 1975-07-29 Ford Motor Co Carburetor secondary throttle shaft construction
US4070971A (en) * 1974-06-05 1978-01-31 Alden Henry Studebaker Engine efficiency
US4037571A (en) * 1976-03-09 1977-07-26 Toyota Jidosha Kogyo Kabushiki Kaisha Multi-cylinder internal combustion engine
US4098459A (en) * 1976-07-30 1978-07-04 Schmelzer Corporation Vacuum break device
US4144863A (en) * 1976-08-23 1979-03-20 Ford Motor Company Circuit for controlling the operability of one or more cylinders of a multicylinder internal combustion engine
US4204514A (en) * 1977-12-19 1980-05-27 Toyota Jidosha Kogyo Kabushiki Kaisha Split operation type multi-cylinder internal combustion engine

Similar Documents

Publication Publication Date Title
US2996051A (en) Carburetor
US2609806A (en) Carburetor
US3689036A (en) Air-fuel mixture enriching device for constant vacuum type carburetors
US3289659A (en) Engine control device
US2919686A (en) Split engine
US2376732A (en) Carburetor
US3741177A (en) Carburetor throttle valve positioner
US2954022A (en) Split engine
US2647502A (en) braun
US3730154A (en) Engine spark timing control
US3752450A (en) Vacuum controlled carburetor throttle valve positioner
US3139079A (en) Centrifugal distributor with integral governor control valve
US3794004A (en) Throttle pedal controlled throttle override system
GB1348757A (en) Engine carburetor with anti-running on and deceleration control
US2918047A (en) Split engine
GB1442509A (en) Engine exhaust gas recirculating system
US3021827A (en) Carburetor governor
US3712279A (en) Vacuum spark advance cutoff
US4200083A (en) Split operation type multi-cylinder internal combustion engine
US2947298A (en) Dual balanced air meter for split engine
US3638627A (en) Variable advance engine ignition timing control
US2878798A (en) Split engine
US3252450A (en) Mechanism for reducing unburned hydrocarbon emission
US3001774A (en) Carburetor
US2930368A (en) Economy control for split engine