Orbiting scroll structure and scroll compressor

By setting a sealing ring in the annular mounting groove of the moving scroll plate to form different back pressure chambers, the problem of unbalanced force on the moving scroll plate is solved, and the force balance of the moving scroll plate and the sealing effect are improved.

WO2026152963A1PCT designated stage Publication Date: 2026-07-23GD MIDEA AIR CONDITIONING EQUIP CO LTD +2
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
GD MIDEA AIR CONDITIONING EQUIP CO LTD
Filing Date
2025-12-12
Publication Date
2026-07-23

AI Technical Summary

Technical Problem

In existing scroll compressors, the unbalanced force on the moving scroll disc causes it to tilt, affecting sealing performance and power consumption.

Method used

An annular mounting groove is provided at the second end of the moving scroll plate, and a sealing ring is placed in the groove to form different back pressure cavities to balance the force on the moving scroll plate. The sealing ring moves synchronously with the moving scroll plate to reduce the tilting torque.

Benefits of technology

It effectively reduces the tilt of the moving scroll plate, reduces the contact force on the plate surface, reduces compressor power consumption, and improves sealing performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application discloses an orbiting scroll structure and a scroll compressor. The orbiting scroll structure comprises an orbiting scroll and a sealing ring. The orbiting scroll has a first end and a second end that are opposite to each other. The first end is configured to be fittingly mounted on a fixed scroll, and the second end is configured to be fittingly mounted on a main frame. A first partition, a second partition, and a third partition are sequentially formed on an end surface of the second end in the radial direction thereof from inside to outside, and each partition located on the outer side is arranged to surround the partition on the inner side. The first partition is configured to be arranged corresponding to a back pressure chamber formed in a middle portion of the main frame. The second partition is configured to be arranged corresponding to a thrust portion provided on the main frame. The third partition is configured to be arranged corresponding to the periphery of the fixed scroll. The end surface of the second end is correspondingly provided with an annular mounting groove in the second partition. The sealing ring is provided in the annular mounting groove so as to surround the back pressure chamber formed in the main frame.
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Description

Moving scroll structure and scroll compressor

[0001] Related applications

[0002] This application claims priority to Chinese patent application No. 202510091748.5, filed on January 20, 2025, the entire contents of which are incorporated herein by reference. Technical Field

[0003] This application relates to the field of compressor technology, and in particular to a moving scroll structure and a scroll compressor. Background Technology

[0004] Currently, scroll compressors consist of a stationary scroll, a moving scroll, and a crankshaft. The moving scroll is mounted on the crankshaft and is assembled with the stationary scroll, allowing it to move relative to it. During operation, the crankshaft undergoes eccentric motion, while the moving scroll revolves, thus realizing the compressor's intake, compression, and exhaust processes. After assembly, the stationary and moving scrolls come into contact. During compressor operation, the surfaces of the moving and stationary scrolls press and rub against each other to seal the chamber. However, the pressure on the upward-facing side of the moving scroll relative to the back pressure on its back is mismatched, causing the moving scroll to tilt. As the compressor speed increases, this tilt worsens, leading to increased contact load on the scroll surfaces and increased clearance, exacerbating refrigerant leakage and reducing performance. Summary of the Invention

[0005] The main purpose of this application is to propose a moving scroll disk structure and a scroll compressor, which aims to solve the problem of unbalanced forces on the existing moving scroll disk, causing the moving scroll disk to tilt.

[0006] To achieve the above objectives, the dynamic scroll disk structure proposed in this application includes:

[0007] A moving scroll plate has a first end and a second end. The first end is used to mate with a stationary scroll plate, and the second end is used to mate with a main frame. The end face of the second end has a first section, a second section, and a third section formed radially from the inside out, with the outer section surrounding the inner section. The first section corresponds to a back pressure cavity formed in the middle of the main frame, the second section corresponds to a thrust section provided on the main frame, and the third section corresponds to the periphery of the stationary scroll plate. The end face of the second end has an annular mounting groove corresponding to the second section.

[0008] A sealing ring is disposed within the annular mounting groove and is used to surround the back pressure cavity formed in the main frame.

[0009] In one embodiment, the sealing ring is concentrically arranged with the rotation center of the moving scroll disk.

[0010] In one embodiment, a raised structure is formed in the mounting groove to guide the airflow in the back pressure chamber of the main frame to the space between the bottom wall of the mounting groove and the sealing ring.

[0011] In one embodiment, a wave spring washer is provided between the bottom wall of the mounting groove and the sealing ring;

[0012] The bolstering structure includes the wave spring washer.

[0013] In one embodiment, at least one of the bottom wall of the mounting groove and the sealing ring extends a protrusion toward the other;

[0014] The raised structure includes the protrusion.

[0015] In one embodiment, a plurality of pressure-guiding grooves are provided at intervals on the end face of the second end. The plurality of pressure-guiding grooves are located outside the mounting groove and are symmetrically arranged along the rotation center of the moving scroll disk. Each pressure-guiding groove is laterally connected to the outer periphery of the moving scroll disk.

[0016] In one embodiment, the cross-section of the pressure groove is arranged in a fan-shaped ring.

[0017] In one embodiment, the groove depth of the pressure groove is H, wherein 0.5mm≤H≤0.12mm.

[0018] Furthermore, this application also provides a scroll compressor, including a moving scroll structure, the moving scroll structure comprising:

[0019] A moving scroll plate has a first end and a second end. The first end is used to mate with a stationary scroll plate, and the second end is used to mate with a main frame. The end face of the second end has a first section, a second section, and a third section formed radially from the inside out, with the outer section surrounding the inner section. The first section corresponds to a back pressure cavity formed in the middle of the main frame, the second section corresponds to a thrust section provided on the main frame, and the third section corresponds to the periphery of the stationary scroll plate. The end face of the second end has an annular mounting groove corresponding to the second section.

[0020] A sealing ring is disposed within the annular mounting groove to seal around the back pressure cavity formed on the main frame.

[0021] In one embodiment, it further includes:

[0022] case;

[0023] A stationary scroll plate is fixedly installed inside the housing and is fitted with the first end of the moving scroll plate; and,

[0024] The main frame is located inside the housing and is installed in conjunction with the second end of the moving scroll plate. A thrust section is provided on the main frame.

[0025] In one embodiment, the main frame is provided with an annular boss at the second end facing the moving scroll disk, and the annular boss abuts against the second section of the moving scroll disk;

[0026] The thrust section includes the annular boss.

[0027] In one embodiment, the eccentricity of the rotating scroll disk is e, the inner diameter of the annular boss is d1, the outer diameter is d2, the inner diameter of the mounting groove is d, and the outer diameter is D, where: d > d1 + e; and / or, D <d2-e。

[0028] In the technical solution of this application, the first end of the moving scroll plate is fitted with the stationary scroll plate to form a compression chamber, and the second end of the moving scroll plate is fitted with the main frame to form a back pressure chamber on the back of the moving scroll plate. The sealing ring is placed in the second partition corresponding to the thrust section of the main frame to isolate the back pressure chambers in the middle and at the edge of the moving scroll plate, forming two back pressure chambers with different pressures. The back pressure chamber with lower pressure is located at the edge of the moving scroll plate, and the back pressure chamber with higher pressure is located in the middle of the moving scroll plate, thus interacting with the moving scroll plate. The pressure distribution at the first end is adapted to the dynamic scroll plate. At the same time, by placing the sealing ring on the dynamic scroll plate, the sealing ring can move synchronously with the dynamic scroll plate, so that the force on the second end of the dynamic scroll plate is at the center of the dynamic scroll plate. This prevents the back pressure from generating a tilting torque on the dynamic scroll plate, keeping the force on the dynamic scroll plate balanced. This effectively reduces the tilting torque of the dynamic scroll plate, helps to reduce the contact force on the plate surface, and reduces the power consumption of the compressor. This solves the problem of unbalanced force on the existing dynamic scroll plate, which causes the dynamic scroll plate to tilt. Attached Figure Description

[0029] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0030] Figure 1 is a schematic diagram of an embodiment of the dynamic vortex disk structure provided in this application;

[0031] Figure 2 is a schematic diagram of the main frame structure in Figure 1;

[0032] Figure 3 is a schematic diagram of the structure of the moving vortex disk in Figure 1;

[0033] Figure 4 is a schematic diagram of the raised structure of the dynamic vortex disk structure in Figure 1;

[0034] Figure 5 is a structural schematic diagram of an embodiment of a conventional scroll compressor.

[0035] Explanation of icon numbers:

[0036] 100. Moving scroll plate structure; 1. Moving scroll plate; 11. First section; 12. Second section; 121. Annular mounting groove; 13. Third section; 2. Sealing ring; 3. Main frame; 4. Thrust section; 41. Annular boss; 5. Elevation structure; 51. Wave spring washer; 6. Pressure groove;

[0037] 1000, Scroll compressor; 7, Static scroll plate.

[0038] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Embodiments of the present invention

[0039] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0040] It should be noted that if the embodiments of this application involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0041] Furthermore, if the embodiments of this application involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies A and B. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed in this application.

[0042] Currently, scroll compressors consist of a stationary scroll, a moving scroll, and a crankshaft. The moving scroll is mounted on the crankshaft and is assembled with the stationary scroll, allowing it to move relative to the stationary scroll. When the scroll compressor is working, the crankshaft undergoes eccentric motion, and the moving scroll revolves, thus realizing the compressor's intake, compression, and exhaust processes. After the stationary and moving scrolls are assembled, they come into contact. During compressor operation, the surfaces of the moving and stationary scrolls press and rub against each other to achieve chamber sealing.

[0043] For scroll compressors with a high-pressure chamber structure, a sealing ring is installed on the side of the moving scroll facing away from the stationary scroll to isolate the central and peripheral back pressure chambers of the moving scroll. This confines the high-pressure area of ​​the back pressure chamber to the central region of the moving scroll, creating back pressure chambers with different pressures. Without the sealing ring, the entire back pressure chamber of the moving scroll becomes a high-pressure area, resulting in excessive contact force between the moving and stationary scroll surfaces. This leads to severe wear on the surfaces of the moving and stationary scrolls, increasing compressor power consumption. However, existing sealing rings are usually located on the main frame, keeping the pressure distribution of the back pressure chamber on the back of the moving scroll constant. As the moving scroll revolves, the pressure in the chamber changes, causing a pressure mismatch on both sides of the moving scroll. This leads to tilting of the moving scroll, which worsens with increasing compressor speed. This tilt increases the contact load on the surface and the gap between the surfaces, exacerbating refrigerant leakage and degrading performance.

[0044] Based on this, this application proposes a moving scroll disk structure for scroll compressors, aiming to solve the problem of unbalanced forces on existing moving scroll disks, which causes the moving scroll disk to tilt. Figures 1 to 4 are schematic diagrams of the moving scroll disk structure provided in this application; Figure 5 is a schematic diagram of an existing scroll compressor.

[0045] Please refer to Figures 1 to 3. In one embodiment of this application, the moving scroll disk structure 100 includes a moving scroll disk 1 and a sealing ring 2. The moving scroll disk 1 has a first end and a second end. The first end is used to cooperate with the stationary scroll disk 7 for installation, and the second end is used to cooperate with the main frame 3 for installation. The end face of the second end has a first partition 11, a second partition 12 and a third partition 13 formed sequentially from the inside to the outside in its radial direction. The partitions on the outside surround the partitions on the inside. The first partition 11 is used to correspond to the back pressure cavity formed in the middle of the main frame 3. The second partition 12 is used to correspond to the thrust part 4 provided on the main frame 3. The third partition 13 is used to correspond to the periphery of the stationary scroll disk 7. The end face of the second end has an annular mounting groove 121 corresponding to the second partition 12. The sealing ring 2 is provided in the annular mounting groove 121 to seal and surround the back pressure cavity formed on the main frame 3.

[0046] In the technical solution of this application, the first end of the moving scroll plate 1 is fitted with the stationary scroll plate 7 to form a compression chamber, and the second end of the moving scroll plate 1 is fitted with the main frame 3 to form a back pressure chamber on the back of the moving scroll plate 1. The sealing ring 2 is set in the second partition 12 corresponding to the thrust part 4 of the main frame 3 to isolate the back pressure chambers in the middle and at the edge of the moving scroll plate 1, so as to form two back pressure chambers with different pressures. The back pressure chamber with lower pressure is located at the edge of the moving scroll plate 1, and the back pressure chamber with higher pressure is located in the middle of the moving scroll plate 1, so as to interact with the moving scroll plate 7. The pressure distribution at the first end of the disk 1 is adapted to the pressure distribution. At the same time, by setting the sealing ring 2 on the moving scroll disk 1, the sealing ring 2 can move synchronously with the moving scroll disk 1, so that the force on the second end of the moving scroll disk 1 is at the center of the moving scroll disk 1. This prevents the back pressure from generating a tilting torque on the moving scroll disk 1, keeping the force on the moving scroll disk 1 balanced. This effectively reduces the tilting torque of the moving scroll disk 1, helps to reduce the contact force on the disk surface, and reduces the power consumption of the compressor. This solves the problem of the existing moving scroll disk 1 being unbalanced in force, which causes the moving scroll disk 1 to tilt.

[0047] It should be noted that the first end of the moving scroll plate 1 cooperates with the stationary scroll plate 7 to form a compression chamber. The first partition 11, the second partition 12 and the third partition 13 are adapted to the chamber pressure of the moving scroll plate 1. The first partition 11 is the central region of the moving scroll plate 1, and its pressure is the same as the exhaust pressure, which is the high-pressure region. The third partition 13 is the edge region of the moving scroll plate 1, and its pressure is between the intake pressure and the exhaust pressure, which is the medium-pressure region. The second partition 12 is located between the first partition 11 and the third partition 13, which is the transition region. Furthermore, the moving scroll 1 is subjected to the combined action of centrifugal force, gas force, and back pressure of the back pressure chamber. The centrifugal force is distributed radially, and the gas force is divided into tangential and radial components. However, the existing sealing ring 2 is usually installed on the main frame 3 (see Figure 5). The pressure distribution of the back pressure chamber remains unchanged, but because the moving scroll 1 is in revolution, the force exerted by the back pressure chamber on the moving scroll 1 changes constantly. As a result, all forces do not act on the geometric center of the moving scroll 1, which leads to a torque relative to the center of the moving scroll 1, causing the moving scroll 1 to tilt. As the compressor speed increases, the tilting becomes more severe. This leads to increased contact load on the disc surface and increased gap between the disc surfaces, exacerbating refrigerant leakage and reducing performance. Therefore, in this embodiment, by placing the sealing ring 2 on the moving scroll 1, the sealing ring 2 can move synchronously with the moving scroll 1. This ensures that the force on the second end of the moving scroll 1 is at the center of the moving scroll 1, so that the back pressure no longer generates a tilting torque on the moving scroll 1. This balances the forces on the moving scroll 1, effectively reducing the tilting torque of the moving scroll 1, helping to reduce the disc surface contact force, and reducing compressor power consumption. This solves the problem of unbalanced forces on the existing moving scroll 1, which causes the moving scroll 1 to tilt.

[0048] In one embodiment of this application, the sealing ring 2 is concentrically arranged with the rotation center of the moving scroll plate 1, so that the center of the high-pressure area defined by the sealing ring 2 is located at the center of the moving scroll plate 1, which can reduce the tilting torque of the moving scroll plate 1.

[0049] In one embodiment of this application, referring to Figures 1 and 4, a raised structure 5 is formed in the mounting groove to guide the airflow in the back pressure chamber of the main frame 3 to the space between the bottom wall of the mounting groove and the sealing ring 2. Thus, by setting the raised structure 5, the gas in the back pressure chamber located in the middle of the moving scroll plate 1 is introduced into the mounting groove to press the sealing ring 2 against the end face of the thrust part 4, thereby helping to improve the sealing effect of the sealing ring 2.

[0050] It is understood that, in order to facilitate the flow of high-pressure gas into the mounting groove, in this embodiment, the inner diameter of the sealing ring 2 is larger than the inner diameter of the mounting groove, so that the sealing ring 2 and the mounting groove can be set with a gap, thereby facilitating the flow of high-pressure gas in the middle of the moving scroll plate 1 into the mounting groove.

[0051] Furthermore, in one embodiment, referring to Figure 4, a wave spring washer 51 is provided between the bottom wall of the mounting groove and the sealing ring 2. The shim structure 5 includes the wave spring washer 51. Thus, by providing the wave spring washer 51, an overhead space is formed between the sealing ring 2 and the bottom wall of the mounting groove, allowing the high-pressure gas in the middle of the moving scroll plate 1 to enter the mounting groove and press the sealing ring 2 against the end face of the thrust part 4 of the main frame 3.

[0052] In another embodiment, at least one of the bottom wall of the mounting groove and the sealing ring 2 extends a protrusion toward the other, and the shim structure 5 includes the protrusion. Thus, by providing the protrusion, an overhead space is formed between the sealing ring 2 and the bottom wall of the mounting groove, allowing high-pressure gas in the middle of the moving scroll plate 1 to enter the mounting groove and press the sealing ring 2 against the end face of the thrust part 4 of the main frame 3.

[0053] In one embodiment of this application, referring to Figures 1 and 2, a plurality of pressure-guiding grooves 6 are spaced apart on the end face of the second end. The plurality of pressure-guiding grooves 6 are located outside the mounting groove and are symmetrically arranged along the rotation center of the moving scroll disk 1. Each pressure-guiding groove 6 is laterally connected to the outer periphery of the moving scroll disk 1. In this way, by setting the pressure-guiding grooves 6, the medium-pressure gas at the edge of the moving scroll disk 1 can enter the second partition 12, avoiding the second partition cavity from being affected by the pressure of the transition zone when it moves to the end face of the thrust part 4, so that the transition zone and the medium-pressure zone are both symmetrical about the center of the moving scroll disk 1.

[0054] Furthermore, the cross-section of the pressure-applying groove 6 is arranged in a fan-shaped ring to match the shape of the moving vortex disk 1, thereby helping to increase the area of ​​the pressure-applying groove 6.

[0055] In one embodiment of this application, the depth of the pressure-guiding groove 6 is H, where 0.5mm ≤ H ≤ 0.12mm. If the depth of the pressure-guiding groove 6 is too shallow, it will hinder the rapid flow of gas into the groove. Conversely, if the depth of the pressure-guiding groove 6 is too deep, it will reduce the thickness of the moving scroll plate 1, thereby affecting its strength. Therefore, 0.5mm ≤ H ≤ 2mm ensures that the strength of the moving scroll plate 1 is not affected, while also facilitating the rapid flow of gas into the pressure-guiding groove 6. It can be understood that the depth of the pressure-guiding groove 6 can be any value between 0.5mm and 2mm, such as 0.5mm, 0.8mm, 1mm, 1.5mm, 2mm, etc., all of which are within the protection scope of this application.

[0056] This application also proposes a scroll compressor 1000, which includes a moving scroll structure 100. The specific structure of the moving scroll structure 100 is as described in the above embodiments. Since the scroll compressor 1000 adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here.

[0057] In one embodiment of this application, the scroll compressor 1000 further includes a housing, a stationary scroll plate 7, and a main frame 3. The stationary scroll plate 7 is fixedly installed inside the housing and is fitted with the first end of the moving scroll plate 1. The main frame 3 is located inside the housing and is fitted with the second end of the moving scroll plate 1. A thrust part 4 is provided on the main frame 3. Thus, by setting the stationary scroll plate 7 to fit with the first end of the moving scroll plate 1, a compression chamber is formed to compress the refrigerant in the compression chamber. By setting the main frame 3 to fit with the moving scroll plate 1, a back pressure chamber is formed. At the same time, by setting the thrust part 4 to abut against the second section 12 of the moving scroll plate 1, the moving scroll plate 1 can be supported, and the sealing ring 2 can seal the gap between the moving scroll plate 1 and the thrust part 4, thereby isolating the back pressure chambers in the middle and at the edge of the moving scroll plate 1, forming two back pressure chambers with different pressures.

[0058] In one embodiment of this application, please refer to FIG2. The main frame 3 is provided with an annular boss 41 at the second end facing the moving scroll plate 1. The annular boss 41 abuts against the second section 12 of the moving scroll plate 1. The thrust part 4 includes the annular boss 41. Thus, by providing the annular boss 41 to abut against the second section 12 of the moving scroll plate 1, the moving scroll plate 1 is supported and the moving scroll plate 1 is prevented from tilting.

[0059] Since the inner diameter of the installation groove is too small, the sealing ring 2 may enter the high-pressure area in the middle of the moving scroll disk 1, resulting in a mismatch between the pressure at the second end and the first end of the moving scroll disk 1. Therefore, in this embodiment, the eccentricity of the rotation of the moving scroll disk 1 is e, the inner diameter of the annular boss 41 is d1, the outer diameter is d2, and the inner diameter of the installation groove is d, where d > d1 + e. In this way, the sealing ring 2 is prevented from entering the high-pressure area in the middle of the moving scroll disk 1, so that the pressures at both ends of the moving scroll disk 1 are adapted to each other, and the tilting torque is avoided.

[0060] Since the outer diameter of the installation groove is too small, the sealing ring 2 may enter the medium-pressure area at the edge of the moving scroll disk 1, resulting in a mismatch between the pressure at the second end and the first end of the moving scroll disk 1. Therefore, in this embodiment, the eccentricity of the rotation of the moving scroll disk 1 is e, the inner diameter of the annular boss 41 is d1, the outer diameter is d2, and the outer diameter of the installation groove is D, where D < d2 - e. In this way, the sealing ring 2 is prevented from entering the medium-pressure area in the middle of the moving scroll disk 1, so that the pressures at both ends of the moving scroll disk 1 are adapted to each other, and the tilting torque is avoided.

[0061] It should be noted that the above two related technical features: "d > d1 + e" and "D < d2 - e" can be set alternatively or simultaneously. Obviously, setting them simultaneously has a better effect. <00,00128>

[0062] The above description is only an exemplary embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structural transformation made under the technical concept of the present application by using the content of the specification and drawings of the present application, or directly / indirectly applied to other related technical fields, is included in the patent protection scope of the present application.

Claims

1. A dynamic vortex disk structure, wherein, The moving scroll disk structure includes: A moving scroll plate has a first end and a second end. The first end is used to mate with a stationary scroll plate, and the second end is used to mate with a main frame. The end face of the second end has a first section, a second section, and a third section formed radially from the inside out, with the outer section surrounding the inner section. The first section corresponds to a back pressure cavity formed in the middle of the main frame, the second section corresponds to a thrust section provided on the main frame, and the third section corresponds to the periphery of the stationary scroll plate. The end face of the second end has an annular mounting groove corresponding to the second section. A sealing ring is disposed within the annular mounting groove and is used to surround the back pressure cavity formed in the middle of the main frame.

2. The moving scroll disk structure as described in claim 1, wherein, The sealing ring is concentrically arranged with the rotation center of the moving scroll.

3. The moving scroll disk structure as described in claim 1, wherein, A raised structure is formed in the mounting groove to guide the airflow in the back pressure chamber of the main frame to the space between the bottom wall of the mounting groove and the sealing ring.

4. The moving scroll disk structure as described in claim 3, wherein, A wave spring washer is provided between the bottom wall of the mounting groove and the sealing ring; The bolstering structure includes the wave spring washer.

5. The moving scroll disk structure as described in claim 3, wherein, In the bottom wall of the mounting groove and the sealing ring, at least one of them extends a protrusion toward the other; The raised structure includes the protrusion.

6. The moving scroll disk structure as described in claim 1, wherein, The second end has a plurality of pressure grooves spaced apart on its end face. The plurality of pressure grooves are located outside the mounting groove and are symmetrically arranged along the rotation center of the moving scroll disk. Each pressure groove is laterally connected to the outer periphery of the moving scroll disk.

7. The moving scroll disk structure as described in claim 6, wherein, The cross-section of the pressure-applying groove is arranged in a fan-shaped ring.

8. The moving scroll disk structure as described in claim 6, wherein, The groove depth of the pressure-applying groove is H, where 0.5mm≤H≤2mm.

9. A scroll compressor, wherein, The scroll compressor includes the moving scroll structure as described in any one of claims 1 to 8.

10. The scroll compressor as claimed in claim 9, wherein, The scroll compressor also includes: case; A stationary scroll plate is fixedly installed inside the housing and is fitted with the first end of the moving scroll plate; and, The main frame is located inside the housing and is installed in conjunction with the second end of the moving scroll plate. A thrust section is provided on the main frame.

11. The scroll compressor as claimed in claim 10, wherein, The main frame is provided with an annular boss at the second end facing the moving scroll plate, and the annular boss abuts against the second section of the moving scroll plate; The thrust section includes the annular boss.

12. The scroll compressor as claimed in claim 10, wherein, The eccentricity of the rotating scroll is e, the inner diameter of the annular boss is d1, the outer diameter is d2, the inner diameter of the mounting groove is d, and the outer diameter is D, where: d > d1 + e; and / or, D <d2-e。