PRIORITY
This application claims priority to Japanese Patent Application JP2012-264815 filed Dec. 3, 2012 which application is incorporated by reference herein in its entirety.
The present invention relates to a scroll liquid pump for liquids such as liquid refrigerant or oil.
A scroll liquid pump is proposed whose fixed scroll and orbiting scroll have multiple set of fixed wraps and orbiting wraps as described in International publication number WO2010/013351. An orbiting scroll orbits while its rearside is fixed to the orbiting shaft. A fixed scroll is placed movable in an axial direction. Due to the difference of the load by the pressure of the pumping chambers and the load by the discharge pressure of the rearside, the fixed scroll is pushed to the orbiting scroll, the end surface of the orbiting wraps and the floor of the fixed wraps are sealed, and the end surface of the fixed wraps and the floor of the orbiting wraps are sealed. The seal between the intake chamber (fixed body) to which fluid flows and the outside is performed by an outer peripheral wall (moving body). Since the sealing of the fluid is made between the fixed body and the moving body, the leakage of the fluid is not zero. When the outside is outside air, the fluid leaked from the sealing part outflows to the outside. When the scroll liquid pump is lubricated by oil and the outside is a space of the drive part, the fluid leaked from the sealing part flows to the space of the drive part, and dilutes the lubricant oil resulting in the lubrication failure of bearings. The orbiting scroll being fixed to the orbiting shaft cannot move to the location shifted from the turning radius of the orbiting shaft. Therefore the radial clearance gap between the orbiting wraps and the fixed wraps cannot be zero resulting in the insufficient sealing of the pumping chambers.
1. Technical Problem
The present invention addresses the aforementioned problem and an object of the present invention is to provide a scroll liquid pump having high sealing properties of the pumping chambers by preventing the leakage of the liquid leaked from the clearance gap between orbiting wraps and fixed wraps from leaking to the outside air or drive part, and by reducing any radial gap between the orbiting wraps and fixed wraps to almost zero.
2. Technical Solution
An orbiting scroll having three sets of orbiting wraps is combined to the fixed scroll integral with the frame having 3 sets of fixed wraps facing each other. Pumping chambers are formed by each wrap part. A primary bearing is placed on the center part of the fixed scroll. A secondary bearing is placed in the bearing housing integral to the fixed scroll. A rotating shaft is provided having a crank shaft supported by the primary bearing and the secondary bearing. An orbiting bearing housing open to the surface of the tip side of the orbiting wraps is placed in the center part of the orbiting scroll. An orbiting bearing is provided in the orbiting bearing housing. The orbiting bearing is fitted to the crank shaft.
A rotary ring is mounted on the crank shaft. The rotary ring has an elongate hole. The crank shaft has a flattened part fitted by loose fitting into the elongate hole. The rotary ring is finely movable in a direction of a center axis of the elongate hole against the crank shaft. The elongate hole of the rotary ring and the flattened part of the crank shaft have a receding angle against the rotating direction.
Outlet ports are placed in the center part of the orbiting wraps provided in the orbiting scroll. Seal members are provided on the location of the diameter similar to the outer diameter of the each orbiting wraps on the opposite side of the orbiting wraps. The pressure of the fluid discharged from the outlet ports is exerted in the inner space of the seal members.
Intake chamber 1a communicates only with inlet port 4 and is blocked from the other parts. So the fluid is not leaked from the intake chamber to the outside or to the space of the drive member. The orbiting scroll 3 is pressed against the fixed scroll 2 with small force so that the gap is almost zero in a radial or axial direction resulting in the improved sealing properties and higher volumetric efficiencies of the scroll liquid pump. Since the pressing force is a small force, the scroll liquid pump has less mechanical loss and less wearing.
A fixed scroll 2 is provided integrally with frame 1 as shown in
As shown in
The orbiting scroll 3 of
The fixed wraps 2a and the orbiting wraps 3a are combined as shown in
An oval elongate hole 7a is placed in the rotary ring 7 as shown in
An inner cover 8 is placed on the rearside of the orbiting scroll 3. Communicating ports 8a communicating with outlet ports 3b of the orbiting scroll 3 are placed. Seal grooves 8b are placed around the communicating ports 8a. Ring shaped seal members 9 (in
The operation is described. A rotary shaft 13 rotates driven by the motor. Accordingly, a crank shaft 13a rotates. The crank shaft 13a rotates a rotary ring 7. A rotary ring 7 drives an orbiting bearing 6 and eccentrically turns an orbiting scroll 3. Pumping chambers 5 move from the outer peripheral side toward the center side reducing the volume by the eccentric movement. The fluid is sucked from an inlet port 4, flows via an intake chamber 1a, and is pushed into the inner peripheral side of the pumping chambers 5. Then, the fluid force acts on orbiting scroll 3 from the opposite side of the orbiting direction. As shown in
A radial fluid force Fr acts toward an inside of the radial direction of the orbiting scroll 3 when the scroll liquid pump is operated. A centrifugal force Fc occurs in the orbiting scroll 3 toward the outside in the radial direction. When the orbiting scroll orbits in low speed, the radial fluid force Fr may be greater than the centrifugal force Fc. At this time, the orbiting scroll 3 is pushed by a smaller force by the resultant force toward the radial direction outside when the receding angle θ is set so that the radial force Ftr is slightly greater than the difference of the radial fluid force Fr and centrifugal force Fc. For this reason, the orbiting wraps 3a move until they contact the fixed wraps 2a thereby the clearance in the radial direction is almost 0. Therefore the sealability of the pumping chambers 5 is improved.
Based on the above evaluation, it is desired to set a receding angle θ in a range of 12° to 20°.
The pressures inside of pumping chambers 5 are equal to the discharge pressure. The cross-section area in the plane direction of pumping chambers 5 is the largest at the start of an intake, and is the minimum at the end of the discharge. In proportion to this cross section, the discharge pressure inside of the pumping chambers 5 produces the force to detach the orbiting scroll 3 from the fixed scroll 2. The pressure of the orbiting scroll backside is the discharge pressure. The area that the discharge pressure works is the area inside of the seal members 9. The inside area determines the diameter of the seal members 9 so that pumping chambers 5 are slightly bigger than the maximum cross sectional area of the horizontal direction at the start of the intake. By this, the orbiting scroll 3 is pressed against the fixed scroll 2 with a small force by a pressure difference. So, the gap in an axial direction becomes almost zero thereby improving the sealability of the pumping chambers 5.
The fluid pushed toward the inner periphery of the pumping chamber is discharged to the outside from the discharge port 14b via outlet ports 3b, communicating ports 8a, and outlet chamber 14a. A self-rotational torque is produced at the orbiting scroll 3 by the fluid force to the same direction as the rotating direction 13d of the rotary shaft 13. However, the self-rotation of the orbiting scroll 3 is prevented because the fixed wraps 2a and the orbiting wraps 3a are 3 sets at a 120° interval, and the self-rotational force of the orbiting scroll 3 is received by any of the wrap contact areas of the three sets of fixed wraps 2a and orbiting wraps 3a. So, a self-rotation prevention mechanism exclusive to the scroll liquid pump is not necessary.
Number | Date | Country | Kind |
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2012-264815 | Dec 2012 | JP | national |