WO2017213546A1 - Machine rotative (et variantes) - Google Patents

Machine rotative (et variantes) Download PDF

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Publication number
WO2017213546A1
WO2017213546A1 PCT/RU2017/000224 RU2017000224W WO2017213546A1 WO 2017213546 A1 WO2017213546 A1 WO 2017213546A1 RU 2017000224 W RU2017000224 W RU 2017000224W WO 2017213546 A1 WO2017213546 A1 WO 2017213546A1
Authority
WO
WIPO (PCT)
Prior art keywords
rotor
protrusion
blade
axis
rotary machine
Prior art date
Application number
PCT/RU2017/000224
Other languages
English (en)
Russian (ru)
Inventor
Вячеслав Иванович НЕГРУЦА
Original Assignee
Вячеслав Иванович НЕГРУЦА
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 Вячеслав Иванович НЕГРУЦА filed Critical Вячеслав Иванович НЕГРУЦА
Publication of WO2017213546A1 publication Critical patent/WO2017213546A1/fr

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04CROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
    • F04C2/00Rotary-piston machines or pumps
    • F04C2/02Rotary-piston machines or pumps of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents
    • F04C2/063Rotary-piston machines or pumps of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents with coaxially-mounted members having continuously-changing circumferential spacing between them
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01CROTARY-PISTON OR OSCILLATING-PISTON MACHINES OR ENGINES
    • F01C1/00Rotary-piston machines or engines
    • F01C1/02Rotary-piston machines or engines of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents
    • F01C1/063Rotary-piston machines or engines of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents with coaxially-mounted members having continuously-changing circumferential spacing between them

Definitions

  • RM Rotary Machine (options)
  • RM relates to mechanical engineering, in particular to rotary machines, pumps, hydraulic motors and engines, can find application in hydraulic rotary motion drives used in machine tool building, press machine building (injection molding machines), agricultural machine building, road-building machines and in other industries, such as compressor engineering.
  • the task of the group of inventions is to eliminate the above disadvantages of the Rotary device.
  • “Rotary Machine (options)” the protrusions of the blades and the protrusions of the rotor are mated into a rotating disk.
  • Rotary machine (options) is aimed at expanding the fleet of rotary machines and improving performance with reducing pneumohydraulic and mechanical losses and increasing efficiency.
  • axis 6 having hinge joints 10, characterized in that the protrusions of the blades 7 and the protrusions of the rotor 8 are paired with a rotating disk 9 located (in versions at different distances between them), as well as (differing in location options) windows 12 of the working medium and the channel 13 working environments.
  • the distance between, the displacement of the circumference of the protrusion of the blade 19 relative to the circumference the protrusion of the rotor 18 is equal to the distance between, the offset of the center of the axis 16 and the center of the additional (additional) axis 17 (i.e., the eccentricity of the additional axis 6).
  • Rotary Machine in the first particular case, characterized in that the distance between the mating protrusions is equal to the distance of the eccentricity ext. axis 6, which provides rotation of the disk 360 °.
  • Rotary Machine in the second special case, characterized in that the distance between the mating protrusions is greater than the distance of the eccentricity ext. axis 6, which provides rotations of the disk up to 180 °.
  • the "Rotary Machine” contains, (Fig. 1) a fixed housing with a working chamber, the rotor 3, mounted on axis 4, as well as add. axis 6, eccentrically located relative to the axis 4 of the rotor 3, and having a blade 5 with the possibility of movable fixation to the rotor 3 and ext. axis 6 having swivel joints 10, characterized in that the protrusions of the blades 7 and the protrusions of the rotor 8 are associated with a rotating disk 9, as well as the windows 12 of the working medium and the channel 13 of the working medium located in the housing 1.
  • the "Rotary Machine” contains (Fig. 6) a stationary housing with a working chamber, the rotor 3 mounted on the axis 4, as well as add. axis 6, eccentrically located relative to the axis 4 of the rotor 3, and having a blade 5 with the possibility of movable fixation to the rotor 3 and ext. axis 6 having swivel joints 10, characterized in that the protrusions of the blades 7 and the protrusions of the rotor 8 are associated with a rotating disk 9, as well as the windows 12 of the working medium and the channel 13 of the working medium located in the additional axis 6.
  • axis 6 having swivel joints 10, characterized in that the protrusions of the blades 7 and the protrusions of the rotor 8 are associated with a rotating disk 9, as well as the window 12 of the working medium located in the additional axis 6, and the channel 13 of the working medium located in the housing 1.
  • a rotary machine comprising a stationary body 1 with a working chamber 2, a rotor 3 with a protrusion 8 mounted on an axis 4, and having blades 5 with protrusions 7 mounted on an additional axis 6 located eccentrically relative to the axis 4 of the rotor 3, characterized in that contains a rotating disk 9, which enables the movable fixing of the blade 5 with the rotor 3 by means of the protrusions of the blade 7 and the protrusion of the rotor 8, coupled with the rotating disk 9, as well as the window 12 and the working medium channel 13 are located in the housing 1.
  • a rotary machine comprising a stationary body 1 with a working chamber 2, a rotor 3 with a protrusion 8 mounted on an axis 4, and having blades 5 with protrusions 7 mounted on an additional axis 6 located eccentrically relative to the axis 4 of the rotor 3, characterized in that contains a rotating disk 9, which enables the movable fixing of the blade 5 with the rotor 3 by means of the protrusions of the blade 7 and the protrusion of the rotor 8 conjugated with the rotating disk 9, as well as the window 12 of the working medium and the channel 13 of the working medium located in the additional axis 6.
  • a rotary machine comprising a stationary body 1 with a working chamber 2, a rotor 3 with a protrusion 8 mounted on an axis 4, and having blades 5 with protrusions 7 mounted on an additional axis 6 located eccentrically relative to the axis 4 of the rotor 3, characterized in that contains a rotating disk 9, which enables the movable fixing of the blade 5 with the rotor 3 by means of the protrusions of the blade 7 and the protrusion of the rotor 8 conjugated with the rotating disk 9, and the working medium window 12 is located in the additional axis 6, and the working medium channel 13 is located in truncated 1.
  • FIG. 1 Schematic diagram of the RM according to the first embodiment, the main elements in volume (cut);
  • FIG. 2 Schematic diagram of the RM according to the first embodiment, when the disk rotates 360 °, cross section;
  • FIG. 3 Schematic diagram of the RM according to the first embodiment, with a disk rotation of up to 180 °, a cross section;
  • FIG. 4 - A longitudinal section of the RM according to the first embodiment, section AA;
  • FIG. 5 Cross section of the RM according to the first embodiment, section AA;
  • FIG. 6 Schematic diagram of the RM according to the second embodiment, the main elements in volume (cut);
  • FIG. 7 Schematic diagram of the RM according to the second embodiment, when the disk rotates 360 °, cross section;
  • FIG. 8 Schematic diagram of the RM according to the second embodiment, with disk rotation up to 180 °, cross section;
  • FIG. 9 - A longitudinal section of the RM according to the second embodiment, section BB;
  • FIG. 10 Cross section of the RM according to the second embodiment, section BB;
  • FIG. 11 Schematic diagram of the RM according to the third embodiment, the main elements in volume (cut);
  • FIG. 12 Schematic diagram of the RM according to the third embodiment, when the disk rotates 360 °, cross section;
  • FIG. 13 Schematic diagram of the RM according to the third embodiment, with a disk rotation of up to 180 °, a cross section;
  • FIG. 14 - A longitudinal section of the RM according to the third embodiment, section bb;
  • FIG. 15 Cross section of the RM according to the third embodiment, section bb;
  • the Rotary Machine contains a fixed housing 1 with an axis 4, on which ext. axis 6. On axis 4 there is a rotating rotor 3 having a protrusion of the rotor 8. On add. axis 6, on the swivel joints 10, there is a blade 5 having a protrusion of the blade 7. The protrusion of the blade 7 and the protrusion of the rotor 8 are associated with a rotating disk 9. The volume between the blades 5 form the working chamber 2. In the housing 1 there is a window 12 of the working medium and the channel 13 of the working Wednesday. The blade 5 has a springy mechanism 14. The rotor 3 interacts with an external device 11.
  • the dynamics of the Rotary Machine in the first embodiment (Fig. 1, 4, 5).
  • the working medium moves through the window 12 and the channel 13 (located in the housing 1) by the blades 5, which perform a rotational movement, as well as reciprocating movements relative to the rotor 3, when they rotate, they extend and move in, due to the presence of interacting protrusion of the blade 7 and the protrusion of the rotor 8 mated into a rotary disk 9.
  • axis 6 provides during rotation of the blades 5 a change in the volume of the working chamber 2 formed by the blades 5, from maximum to minimum.
  • the blades 5 are connected by a springy mechanism 14 to provide more stable rotation, accumulating (compressing) energy while reducing the accelerated rotation of the blade 5 and giving compressed energy (by stretching) while increasing the acceleration of their rotation.
  • the rotor 3 interacts with an external device 11.
  • the rotor 3 When using the Rotary Machine, the rotor 3 is accelerated together with the blades 5 from an external source, for example, a starter (not shown in the figures), through the supply window 12 (located in the housing 1), a working mixture is supplied to the working chamber 2, rotor 3 while turning, the mixture is compressed. The compressed mixture is transferred to the area where the spark constantly sparks in the ignition chamber, the combustible mixture ignites and the process of its combustion with gas expansion takes place. There is a working move. In this case, the rotor 3 is rotated, from which the torque is removed by the external device 11 for the consumer. The waste medium is removed through the exhaust channel 13 (located in the housing 1) by centrifugal force and squeezing by the decreasing volume of the working chamber 2. When the rotor 3 moves, the working chamber 2, formed by the blades 5, are moved and each working chamber 2 sequentially carries out intake processes during one revolution of the rotor 3 , compression, combustion and expansion, exhaust, constituting a four-stroke cycle.
  • RM When using, RM, as a hydraulic or air motor.
  • the working medium through the window 12 (located in the housing 1) under pressure is supplied to the working chamber 2 in the minimum volume sector, forcing it to expand.
  • the rotor 3 When expanding the working chamber 2, through the interacting protrusions associated with the rotating disk 9, the rotor 3 is rotated, a torque is created. There is a working move.
  • the spent medium In the compression sector of the working chamber 2, the spent medium is squeezed out through the channel 13 (located in the housing 1).
  • Each working chamber 2 sequentially carries out a working stroke providing a constant rotational moment on the rotor 3 which transfers it to the external device 11.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • axis 6, - the disk 9 changes its direction of rotation in the opposite direction.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the Rotary Machine contains a fixed housing 1 with an axis 4, on which ext. axis 6.
  • axis 4 there is a rotating rotor 3 having a protrusion of the rotor 8.
  • axis 6 On add.
  • the protrusion of the blade 7 and the protrusion of the rotor 8 are associated with a rotating disk 9.
  • the volume between the blades 5 form the working chamber 2.
  • In the additional axis 6 there is a window 12 of the working medium and channel 13 working environment.
  • the blade 5 has a springy mechanism 14.
  • the rotor 3 interacts with an external device 11.
  • the working medium moves through the window 12 and the channel 13 (located in the additional axis 6) by the blades 5, which perform a rotational movement, as well as reciprocating movements relative to the rotor 3, when they rotate, extend and retract, due to the presence of interacting protrusions of the blade 7 and protrusion of the rotor 8 conjugated into a rotating disk 9.
  • axis 6 provides during rotation of the blades 5 a change in the volume of the working chamber 2 formed by the blades 5, from maximum to minimum.
  • the blades 5 are connected by a springy mechanism 14 to provide more stable rotation, accumulating (compressing) energy while reducing the accelerated rotation of the blade 5 and giving compressed energy (by stretching) while increasing the acceleration of their rotation.
  • the rotor 3 interacts with an external device 11.
  • the Rotor Machine When using, the Rotor Machine, as a hydraulic or air motor.
  • the working medium through the window 12 (located in the additional axis 6) under pressure is supplied to the working chamber 2 in the sector of minimum volume, forcing it to expand.
  • the spent medium In the compression sector of the working chamber 2, the spent medium is squeezed out through the channel 13 (located in the additional axis 6).
  • Each working chamber 2 sequentially carries out a working stroke providing a constant rotational moment on the rotor 3 which transfers it to the external device 11.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • axis 6, - the disk 9 changes its direction of rotation in the opposite direction.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • RM pump for the second special case.
  • the disk 9 changes its direction of rotation in the opposite direction.
  • the quality of the propulsion unit is from an external device 11, the rotational moment is supplied to the rotor 3, the blades 5 also rotate.
  • the volume of the working chamber 2 formed by the blades 5 changes, from minimum to maximum, the process of suction of the working medium through window 12 (located in additional axis 6).
  • the process of pumping the working medium through the channel 13 located in the additional axis 6) takes place.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the disk 9 changes its direction of rotation in the opposite direction.
  • the Rotary Machine contains a fixed housing 1 with an axis 4, on which ext. axis 6.
  • a rotating rotor 3 having a protrusion of the rotor 8.
  • the protrusion of the blade 7 and the protrusion of the rotor 8 are associated with a rotating disk 9.
  • the volume between the blades 5 form the working chamber 2.
  • In the additional axis 6 is a window 12 of the working medium, and the channel 13 of the working medium is located in the housing 1.
  • the blade 5 has a springy mechanism 14.
  • the rotor 3 interacts with an external device 11.
  • the working medium moves through the window 12 (located in the additional axis 6) and the channel 13 (located in the housing 1) by the blades 5, which perform rotational motion, as well as reciprocating movements relative to the rotor 3, when they rotate, extend and retract, due to the presence of, interacting, the protrusion of the blade 7 and the protrusion of the rotor 8 mated to the rotary disk 9.
  • the eccentric arrangement ext. axis 6 relative to the axis 4 of the rotor 3, as well as the movable fixing of the blades 5 relative to the axis 4 and add. axis 6 provides during rotation of the blades 5 a change in the volume of the working chamber 2 formed by the blades 5, from maximum to minimum.
  • the blades 5 are connected by a springy mechanism 14 to provide more stable rotation, accumulating (compressing) energy while reducing the accelerated rotation of the blade 5 and giving compressed energy (by stretching) while increasing the acceleration of their rotation.
  • the rotor 3 interacts with an external device 11.
  • RM When using, RM, as a hydraulic or air motor.
  • the working medium through the window 12 (located in the additional axis 6) under pressure is supplied to the working chamber 2 in the sector of minimum volume, forcing it to expand.
  • the rotor 3 When expanding the working chamber 2, through the interacting protrusions associated with the rotating disk 9, the rotor 3 is rotated, a torque is created. There is a working move.
  • the spent medium In the compression sector of the working chamber 2, the spent medium is squeezed out through the channel 13 (located in the housing 1).
  • Each working chamber 2 sequentially carries out a working stroke providing a constant rotational moment on the rotor 3 which transfers it to the external device 11.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.
  • Feature "PM" as a hydraulic or air motor for the second special case.
  • the blade 5 with the protrusion of the blade 7 rotates with decreasing acceleration and the angular velocity is less than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the rotor 8 overtakes the protrusion of the blade 7, and also the inertia of rotation of the disk 9 provides its rotation in one direction.
  • the blade 5 with the protrusion of the blade 7 rotates with acceleration and the angular velocity greater than that of the rotor 3 with the protrusion of the rotor 8.
  • the protrusion of the blade 7 overtakes the protrusion of the rotor 8, and the inertia of rotation of the disk 9 provides its rotation in one direction.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Rotary Pumps (AREA)

Abstract

La machine rotative concerne les constructions mécaniques et notamment des machines rotatives, des moteurs hydrauliques et des moteurs, et peut s'utiliser dans des entraînements hydrauliques de mouvement rotatif utilisés dans la construction de machines-outils, dans la conception de presses (automates pour thermoplastiques), dans les machines agricoles ou équipement routier ou d'autres domaines tels que les compresseurs. Le résultat technique du groupe d'inventions appelé « Machine rotative » est assuré par le fait que la machine contient un corps fixe (1) avec une chambre de travail, un rotor (3) monté sur l'axe (4) et un axe supplémentaire (désigné axe supp.) (6) monté excentrique par rapport à l'axe (4) du rotor (3) et possédant des pales (5) avec possibilité de fixation mobile au rotor (3), l'axe supp. (6) possédant des raccords par charnière (10= qui se distingue en ce que les saillies des pales (7) et les saillies des rotors (8) rejoignent le disque en rotation (9) et sont disposées (en variante, à des distances différentes entre elles) et également (différentes en fonction de la position) de l'ouverture (12) pour fluide de travail et du canal (13) pour fluide de travail.
PCT/RU2017/000224 2016-06-09 2017-04-12 Machine rotative (et variantes) WO2017213546A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
RU2016122943 2016-06-09
RU2016122943A RU2626187C1 (ru) 2016-06-09 2016-06-09 РОТОРНАЯ МАШИНА (варианты)

Publications (1)

Publication Number Publication Date
WO2017213546A1 true WO2017213546A1 (fr) 2017-12-14

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ID=59495863

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/RU2017/000224 WO2017213546A1 (fr) 2016-06-09 2017-04-12 Machine rotative (et variantes)

Country Status (2)

Country Link
RU (1) RU2626187C1 (fr)
WO (1) WO2017213546A1 (fr)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3227090A (en) * 1960-12-02 1966-01-04 Bartolozzi Luigi Engine or pump having rotors defining chambers of variable volumes
WO2006083197A1 (fr) * 2005-02-02 2006-08-10 Lev Nikolaevich Maksimov Moteur pneumatique a soufflet
RU154633U1 (ru) * 2015-02-04 2015-08-27 Вячеслав Иванович Негруца Роторное устройство

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2491438C2 (ru) * 2008-02-21 2013-08-27 Лев Николаевич Максимов Сильфонный двигатель внешнего сгорания
RU2578383C1 (ru) * 2015-02-17 2016-03-27 Вячеслав Иванович Негруца Роторно-лопастная машина

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3227090A (en) * 1960-12-02 1966-01-04 Bartolozzi Luigi Engine or pump having rotors defining chambers of variable volumes
WO2006083197A1 (fr) * 2005-02-02 2006-08-10 Lev Nikolaevich Maksimov Moteur pneumatique a soufflet
RU154633U1 (ru) * 2015-02-04 2015-08-27 Вячеслав Иванович Негруца Роторное устройство

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