SCROLL COMPRESSOR WITH A COMPRESSION SECTION MADE OF SOLID SOLUTION STRENGTHENED FERRITIC DUCTILE IRON
20230055808 · 2023-02-23
Inventors
- Mickael BRON (Nordborg, DK)
- YUSONG SUN (Nordborg, DK)
- Sanxiang LIU (Nordborg, DK)
- Laure FLORIMOND (Nordborg, DK)
Cpc classification
F04C2230/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05C2201/0442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A scroll compressor (1) including an enclosure (2); a compression section (6) arranged within the enclosure (2), the compression section (6) has a fixed scroll element (7) having a first baseplate (11) and a first wrap portion (12) extending from the first baseplate (11), and an orbiting scroll element (8) having a second baseplate (13) and a second wrap portion (14) extending from the second baseplate (13), the fixed and orbiting scroll elements (7, 8) being intermeshed to form compression chambers (15); and a driving section (16) coupled with the orbiting scroll element (8) for moving the orbiting scroll element (8) in an orbiting motion during operation of the scroll compressor (1). At least one of the fixed and orbiting scroll elements (7, 8) is made of solid solution strengthened ferritic ductile iron.
Claims
1. A scroll compressor comprising: an enclosure, a compression section arranged within the enclosure, the compression section comprising a fixed scroll element having a first baseplate and a first wrap portion extending from the first baseplate, and an orbiting scroll element having a second baseplate and a second wrap portion extending from the second baseplate], the fixed and orbiting scroll elements being intermeshed to form compression chambers, and a driving section coupled with the orbiting scroll element for moving the orbiting scroll element in an orbiting motion during operation of the scroll compressor, wherein at least one of the fixed and orbiting scroll elements is made of solid solution strengthened ferritic ductile iron.
2. The scroll compressor according to claim 1, wherein the solid solution strengthened ferritic ductile iron has a tensile strength Rm between 400 and 650 MPa, advantageously between 425 and 625 MPa.
3. The scroll compressor according to claim 1, wherein the solid solution strengthened ferritic ductile iron has a silicon content between 2.5% and 5%, and advantageously between 2.8 and 4.5%.
4. The scroll compressor according to claim 1, wherein the solid solution strengthened ferritic ductile iron has an elongation of at least 8%.
5. The scroll compressor according to claim 1, wherein the solid solution strengthened ferritic ductile iron has a 0.2 yield strength between 330 and 500 MPa.
6. The scroll compressor according to claim 1, wherein the matrix of the solid solution strengthened ferritic ductile iron predominantly contains ferrite.
7. The scroll compressor according to claim 6, wherein a maximum pearlite content in the matrix of the solid solution strengthened ferritic ductile iron is of 5%.
8. The scroll compressor according to claim 6, wherein the matrix of the solid solution strengthened ferritic ductile iron only contains ferrite.
9. The scroll compressor according to claim 1, wherein the solid solution strengthened ferritic ductile iron is EN-GJS-450-18, EN-GJS-500-14 or EN-GJS-600-10.
10. The scroll compressor according to claim 1, wherein both of the fixed and orbiting scroll elements are made of solid solution strengthened ferritic ductile iron.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0045] The following detailed description of one embodiment of the invention is better understood when read in conjunction with the appended drawings being understood, however, that the invention is not limited to the specific embodiment disclosed.
[0046]
DETAILED DESCRIPTION
[0047]
[0048] The scroll compressor 1 also comprises a support frame 5 arranged within the enclosure 2 and secured to the enclosure 2, and a compression section 6 also arranged within the hermetic enclosure 2 and disposed above the support frame 5. The compression section 6 is configured to compress the refrigerant supplied by the suction inlet 3, and includes a fixed scroll element 7, which is fixed in relation to the enclosure 2, and an orbiting scroll element 8 supported by and in slidable contact with a thrust bearing surface 9 provided on the support frame 5.
[0049] The fixed scroll element 7 includes a first baseplate 11 having a lower face oriented towards the orbiting scroll element 8, and an upper face opposite to the lower face of the first baseplate 11. The fixed scroll element 7 also includes a first wrap portion 12 extending from the lower face of the first baseplate 11 towards the orbiting scroll element 8.
[0050] The orbiting scroll element 8 includes a second baseplate 13 having an upper face oriented towards the fixed scroll element 7, and a lower face opposite to the upper face of the second baseplate 13 and slidably mounted on the thrust bearing surface 9. The orbiting scroll element 8 also includes a second wrap portion 14 extending from the upper face of the second baseplate 13 towards the fixed scroll element 7. The second wrap portion 14 of the orbiting scroll element 8 intermeshes with the first wrap portion 12 of the fixed scroll element 7 to form a plurality of compression chambers 15 between them. Each of the compression chambers 15 has a variable volume which decreases from the outside towards the inside, when the orbiting scroll element 8 is driven to orbit relative to the fixed scroll element 7.
[0051] Furthermore the scroll compressor 1 includes a driving section 16 coupled with the orbiting scroll element 8 for moving the orbiting scroll element 8 in an orbiting motion during operation of the scroll compressor 1. Particularly, the driving section 16 includes a drive shaft 17 configured to drive the orbiting scroll element 8 in an orbiting motion, and an electric motor 18, which may be a variable-speed electric motor, coupled to the drive shaft 17 and configured to drive in rotation the drive shaft 17 about a rotational axis A.
[0052] According to an embodiment of the invention, both of the fixed and orbiting scroll elements 7, 8 are made of solid solution strengthened ferritic ductile iron (SSFDI), and for example of the same solid solution strengthened ferritic ductile iron.
[0053] The matrix of the solid solution strengthened ferritic ductile iron used to manufacture the fixed and orbiting scroll elements 7, 8 predominantly contains ferrite. The matrix of the solid solution strengthened ferritic ductile iron may contain at least 95% of ferrite, and for example at least 98% of ferrite. Advantageously, the matrix of the solid solution strengthened ferritic ductile iron only contains ferrite, and the microstructure of the solid solution strengthened ferritic ductile iron has a homogenous ferritic matrix.
[0054] According to an embodiment of the invention, the solid solution strengthened ferritic ductile iron has a tensile strength Rm between 400 and 650 MPa, advantageously between 425 and 625 MPa, and an elongation between 8% and 24%, and advantageously between 8% and 20%. In addition, the solid solution strengthened ferritic ductile iron has a 0.2 yield strength between 330 and 500 MPa, and a rotation-endurance bending strength at 20° C. between 200 and 230 MPa.
[0055] According to an embodiment of the invention, the solid solution strengthened ferritic ductile iron has a silicon content between 2.5% and 5%, and advantageously between 2.8 and 4.5%, and a copper content between 0.030% and 0.050%, and advantageously between 0.032 and 0.042%. Such silicon and copper contents allow to obtain a scroll element having a homogenous structure and to ensure a good cutting tool life.
[0056] The microstructure of the solid solution strengthened ferritic ductile iron used to manufacture the fixed and orbiting scroll elements 7, 8 may have a graphite shape of type V or of type VI, and may have a nodularity of at least 75%, advantageously of at least 80%. Advantageously, the graphite size of the solid solution strengthened ferritic ductile iron is grade 6 to grade 7.
[0057] According to an embodiment of the invention, the solid solution strengthened ferritic ductile iron has a Poisson's ratio between approximately 0.28 and approximately 0.29, and has an elasticity modulus of 170 GPa.
[0058] Advantageously, the solid solution strengthened ferritic ductile iron used to manufacture the fixed and orbiting scroll elements 7, 8 is chosen among EN-GJS-450-18, EN-GJS-500-14 and EN-GJS-600-10.
[0059] Mechanical properties of the EN-GJS-450-18, EN-GJS-500-14 and EN-GJS-600-10 are mentioned in the following table:
TABLE-US-00001 EN-GJS-450-18 EN-GJS-500-14 EN-GJS-600-10 Tensile strength R.sub.m MPa 450 500 600 0.2 yield strength R.sub.p0.2 MPa 350 400 470 Elongation A.sub.5 % 18 14 10 Elastic modulus E GPa 170 170 170 Brinell hardness BHN 170-200 185-215 200-300 Density p kg/dm.sup.3 7.1 7.0 7.0 Rotation- At 20° C. MPa 210 225 258 endurance bending strength Poisson's ratio v 0.28/0.29 0.28-0.29 0.28-0.29 Silicon content % 3.20 3.80 4.2
[0060] Using solid solution strengthened ferritic ductile iron to manufacture the fixed and orbiting scroll elements 7, 8 allows to improve machinability, and thus to decrease machining time. In addition, using solid solution strengthened ferritic ductile iron to manufacture the fixed and orbiting scroll elements allows increase tool life, which leads to an improve productivity compared to the one obtained with standard ductile cast irons having a matrix made of pearlite and ferrite.
[0061] Therefore, the compression section 6 according to the present invention has an improved mechanical strength while ensuring an improved machinability.
[0062] Of course, the invention is not restricted to the embodiment described above by way of non-limiting example, but on the contrary it encompasses all embodiments thereof. Particularly, only one of the fixed and orbiting scroll elements 7, 8 could be made of solid solution strengthened ferritic ductile iron, or the fixed and orbiting scroll elements 7, 8 could be made of two different solid solution strengthened ferritic ductile irons.