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Transcription:

Monocellular PREI range 1

Design, Design, manufacturing, repair manufacturing, repair OPTIMEX is exclusively dedicated to conception, manufacturing, tests and after sales service of canned motor pumps. Created in 1998, the company has been growing since then to become a major actor in this field on the international market. This pump s technology is characterized by a compact and monobloc design, without mechanical seal. Used for dangerous, toxic or explosive liquid or for major and valuable process, canned motor pumps are reputed for their robustness, reliability and confer the safest solution on the market thanks to a double hermetically sealed containment. Among others, we design and manufacture our pumps according to the following standards: ISO 2858, ISO15783, API685, directive 2006/42/EC (Electrical machinery) directive 94/9/CE (ATEX), Ex-GOST R (Russia), directive 97/23/EC (DESP), RCCM level 3, RCCM-X level 2 and 3. OPTIMEX answers the quality management requirements established by ISO 9001 and NF EN 13980. Remaining attentive to customer needs on an international scale, OPTIMEX adapts its production to local Ex-proof directives (ATEX, GOST B, CSA, UL ). SUMMARY PREI RANGE 3 PREI RANGE DESIGNATION 4 Special specifications of design 5 MATERIALS 6 SLIDE BEARINGS 7 arrangement drawing 8 CIRCULATION PLANS 10 THRUST BALANCING SYSTEM 11 Contacts 12 2

PREI RANGE Based near Lyon, OPTIMEX has first developed a range of products dedicated to the chemical industry, to answer its nearest customers needs in leak-proof and normalized pumps. The growing demand for reliable and safer operating pumps in the oil and gas industry, gave to OPTIMEX the opportunity to develop its own range of single stage canned motor pumps adapted to this field. This was well coordinated with the emergence of the API 685 exclusively dedicated to seal-less pumps. This is how the PREI range has been designed in full compliance with this API Standard as well as with customer expectations for their critical and severe applications. 50hz Q (m 3 /h) 5 10 20 50 100 200 400 1000 1 450 rpm 300 75 50-40 H (m) 200 150 100 50 40 30 25-26 25-26A 25-20A 25-16 40-32 40-20 40-26 50-20 50-32 50-26 80-20 80-40 100-40 150-40 200-40 80-32 80-26 80-32A 80-26A 80-20A 100-32 100-26 150-32 150-20A 150-26 150-20 200-32 200-32A 200-26 200-40A 250-40 50 25 10 H (m) 20 25-16A 40-16A 40-16 50-16 250-32 5 10 2 900 rpm 1 2 3 4 5 10 20 30 40 50 100 150 200 300 400 500 1000 1500 2000 3000 2 Q (m 3 /h) 60hz: Pump also available at 3500 and 1750 rpm 3

PREI RANGE DESIGNATION Each OPTIMEX pump is identified by a unique serial number (BFXXXX) and a complete designation name that reflects all main characteristics of the pump (regarding hydraulic and motor selection, design specificities and main construction options) Additional option In: Inducer Hp: High pressure design Discharge nozzle diameter in mm Motor size PREI: range of pump name PREIH: PREI range with heating/cooling jacket Number of poles: 2: 2 poles 4: 4 poles PREI - AR 80/20 In P15F2 Bd Construction options: A: for classified area F: filtered R: cooled S: pressurized V: Vertical I: Clear liquid injection X: Special design Impeller maximum diameter in cm Terminal Box construction: Without indication: standard Deported terminal box: Bd Insulation class of the winding: F: class H (temp. liquide up to 100 C T: class C240 (temp. liquide up to 160 C) C: class C400 (temp. liquide up to 360 C) P: standard range of motor PR: motor with heating/cooling jacket Pumps are delivered with a standard documentation list and standard set of tests and inspections: Standard documentation: Vendor s data sheet curve Instrumentation list manuals General arrangement drawings Cross Sectionnal drawing with parts list Spare part list advised by OPTIMEX Operation and maintenance instruction Vendor Data Book Ex-Proof certificate (ATEX, Ex-GOST R or other upon request and confirmation by OPTIMEX) CE declaration of conformity Standard controls: Balancing test following ISO 1940 Hydrostatic tests Performance test (QHP) following ISO 9906 with API 685 tolerances (5 points) Balancing system test: axial thrust measurement Final sealless test with air Motor insulation test Other document/test/inspection or certificate can be proposed upon request and after OPTIMEX confirmation. 4

Specifications of design 6 5 E 1 2 3 4 C B A D 7 STANDARD CONSTRUCTION 1 Standard flanges according to ASME B16.5, Class 300 RF 2 Thrust balancing system BL2 (detailed page11) 3 Loose flange: allows adaptability between different motors and hydraulics of the PREI Range 4 Motor frame with same pressure design as the pump 5 Leak proof feedthrough with same design pressure as the pump 6 Terminal box: in e protection 7 Drainable second containment CONSTRUCTION OPTIONS Welded drain with flange and valve SIC30 slide bearings: detailed page 7 Inducer: for low NPSH application Circulation plan selection: detailed page 10 Hydraulic and motor heating or cooling jacket for crystallizing or polymerizing liquids Additionnal separate instrumentation junction box INSRUMENTATION OPTIONs A Control of the liquid temperature at the hottest point of the pump. B Winding overheat protection PT100 or/and PTC C Control and monitoring of the second containment pressure: to detect the stator liner failure D Control and Monitoring of the mobile position, mounted on the rear bearing support: to detect any deviance of thrust balancing or bearings capacity. E Rotating direction indicator with local indicator: to guarantee the appropriate electrical connection Other instrumentation can be supplied for your installation, such as liquid level switch, power controller, frequency converter IMPORTANT: Minimum requirement in hazardous area is liquid level control and temperature control 5

MATERIALS In accordance with the materials classes from API685, OPTIMEX has made a standard selection that covers to its maximum your usual applications, in terms of liquid compatibility and operating temperature range. S-5 & S-6 S-8 A-8 T>-20 C -46 C<T<-20 C T>-20 C -46 C<T<-20 C T<-46 C Castings A216WCB A352LCB A216WCB A352LCB A351 GrCF3M Pressure casing Forgings A350LF2 A350LF2 Cl1 A350LF2 A350LF2 Cl1 A182 Gr F 316L Tubes A106Grb A333Gr6 A106Grb A333Gr6 A312 type 316L Impeller A890 Gr1A A890 Gr1A A890 Gr1A A890 Gr1A A890 Gr1A Casing and impeller wear rings A276 Type 410 T A276 Type 410 T A312 Type 316L A312 Type 316L A312 Type 316L Motor Casing E355 E355 E355 E355 E355 Shaft A276 Type 420 A276 Type 420 A312 Type 316L A312 Type 316L A312 Type 316L Standard flanges rating is #300 according to ASME B16.5. Maximum acceptable pressure versus the operating temperature is described with the graphic below. 55 50 GR2.2 GR1.3 GR1.1 Pressure and temperature limits Pressure rating #300 According to ASME B16.5 GR1.1 (= S5, S6 & S8 for T>-20 C) GR1.3 (= S5, S6 & S8 for T -46 <T<-20 C) GR2.2 (= A8) 45 40 Maximum allowable pressure (bar) 35 30 25 20 15 10 5 0-120 -60 0 60 120 180 240 300 360 420 480 540 600 Temperature in C 6

SLIDE BEARINGS 316L/GraphitE Slide bearings are one of the major parts that confer such a good reliability to seal-less pumps. For single stage canned motor pumps, the monobloc shaft composed of all the rotating elements of the machine is supported with 2 slide bearings that are totally submersed in the pumped liquid. Once the pump s filling is guaranteed (and controlled with appropriate instrumentation) and pump is started, the mobile rotates free from any friction and wearing thanks to a thin film Thrust 316L #323 Shaft sleeve 316L #320 Bearing FH42Z2 #313 Fixed parts 316Ti/TUNGSTEN CARBIDE COATING/SIC30 Moving parts For critical application with risk of dry running (frequent and delicate start-up or critical liquids for which full characteristics have been transmitted and approved by OPTIMEX), SIC30 bearings are advised and proposed. Parts and composition is shown above. In case of bearing capacity losses, friction between sleeve in SIC30 and specific coating on shaft sleeve is acceptable for small periods. Thrust 316L #323 Sleeve SIC30 Bracing 316L Shaft sleeve 316Ti With coating HVOF - CWNi12% Thrust insert FH42Z2 #324 #320 #313 7

ARRANGEMENT DRAWING a #DNR h2 #DNA Groundig lugs 100 C 100 L M Groundig lugs e h1 h3 L 100 M 8

HYDRAULIC DNA DNR a h2 c P4 P7 P10 P15 P30 P37 P45 P69 P80 M100 M120 25-16A 50 25 80 160 130 25-16 50 25 80 160 130 40-16 80 40 100 160 150 1100 50-16 80 50 100 180 150 1000 25-20 50 25 80 180 130 25-20A 50 25 80 180 130 1000 1100 40-20 80 40 100 200 150 1300 50-20 80 50 100 200 150 1010 1200 1310 80-20 100 80 100 225 150 1020 1210 1320 80-20A 150 80 140 250 190 1220 1330 1400 1600 1700 100-20 150 100 125 280 175 1230 1340 1410 1605 1705 1410 150-20A 150 150 160 355 210 1350 1420 1610 1710 150-20 200 150 200 355 250 1430 1500 1615 1715 1800 25-26 50 25 100 225 150 25-26A 50 25 100 225 150 1110 1220 1330 40-26 80 40 100 225 150 50-26 80 50 125 225 175 1410 1120 1360 1620 80-26 100 80 125 280 175 1720 80-26A 150 80 125 280 175 1350 1420 1625 1725 100-26 150 100 140 280 190 1610 1710 1710 1900 150-26 200 150 165 380 215 1630 1730 1910 2000 200-26 200 200 236 450 286 1635 1735 1810 1920 2010 40-32 80 40 125 250 175 1350 1440 1420 50-32 80 50 125 280 175 1625 1725 1710 80-32 100 80 125 315 175 1900 80-32A 150 80 140 315 190 1640 1740 1730 1910 2000 100-32 150 100 140 315 190 1645 1745 1800 1930 2020 150-32 200 150 170 400 220 1635 1735 1940 2010 200-32 200 200 236 450 286 1950 2030 50-40 80 50 150 335 200 80-40 100 80 140 400 190 1510 1650 1750 1820 1960 2040 100-40 150 100 170 400 220 1655 1755 1950 2030 150-40 200 150 170 450 220 1970 2050 Each combination between an hydraulic and a motor match a specific code that gives the corresponding dimensions. As an exemple, see the underlined selection. h1 L h3 M e 1000 220 1000 335 400 85 1010 220 1000 335 500 85 1020 240 1000 335 500 85 1100 220 1200 335 400 85 1110 260 1000 335 500 85 1120 260 1200 335 600 85 1200 220 1200 335 500 85 1210 240 1200 335 500 85 1220 260 1200 335 500 85 1230 280 1200 335 500 85 1300 220 1200 410 400 85 1310 220 1200 410 500 85 1320 240 1200 410 500 85 1330 260 1200 410 500 85 1340 280 1200 410 500 85 1350 280 1200 410 600 85 1360 260 1200 410 600 85 1400 260 1400 410 500 85 1410 280 1400 410 500 85 1420 280 1400 410 600 85 1430 320 1400 410 600 85 1440 280 1200 410 600 85 1500 320 1600 410 600 85 1510 220 1400 410 400 85 1600 260 1800 160 500 105 1605 280 1800 160 500 105 1610 280 2000 160 600 105 1615 320 2000 160 600 105 1620 260 1800 160 600 105 1625 280 1800 160 600 105 1630 300 2000 160 600 105 1635 340 2000 160 800 105 1640 300 1800 160 600 105 h1 L h3 M e 1645 320 1800 160 600 105 1650 360 1800 160 800 105 1655 380 2000 160 800 105 1700 260 1800 460 500 105 1705 280 1800 460 500 105 1710 280 2000 460 600 105 1715 320 2000 460 600 105 1720 260 1800 460 600 105 1725 280 1800 460 600 105 1730 300 2000 460 600 105 1735 340 2000 460 800 105 1740 300 1800 460 600 105 1745 320 1800 460 600 105 1750 360 1800 460 800 105 1755 380 2000 460 800 105 1800 320 2000 460 600 105 1810 340 2200 460 800 105 1820 360 2000 460 800 105 1900 280 2000 515 600 105 1910 300 2000 515 600 105 1920 340 2200 515 800 105 1930 320 2000 515 600 105 1940 340 2000 515 800 105 1950 380 2000 515 800 105 1960 360 2000 515 800 105 1970 380 2000 515 900 105 2000 300 2600 515 600 105 2020 320 2600 515 600 105 2030 340 2600 515 800 105 2030 380 2600 515 800 105 2040 360 2600 515 800 105 2050 380 2600 515 900 105 9

CIRCULATION PLANS According to the operating conditions and fluid properties, OPTIMEX selects the appropriate circulation plan to optimize the functioning of the pump. See above our standard circulations for normal conditions, liquefied gas (pressurized), hot liquids (cooling loop) and liquids with particles (filtered). For critical applications, OPTIMEX can develop customized circulation plan to guarantee a good lubrication and cooling of the motor. N: Normal circulation Réf. OPTIMEX Réf. API 685 Liquid in the motor Circulation description Diagram N1 Plan 1-S Pumped liquid Injection in the motor from the hydraulic casing (at the impeller periphery), circulation through the gap, and return to the pump suction via the hollow shaft. S: Overpressured circulation Réf. OPTIMEX Réf. API 685 Liquid in the motor Circulation description Diagram S1 Plan 1-SD Pumped liquid Injection in the motor from the hydraulic casing (at the impeller periphery), passage through the hollow shaft, overpressure by an auxiliary impeller, circulation through the gap and return in the hydraulic casing at the impeller periphery. S3 - Pumped liquid Injection in the motor from the discharge nozzle, overpressure by a large auxiliary impeller, passage through the gap and return to the discharge nozzle via an external pipe. S5 - Pumped liquid Injection in the motor via an external pipe from the discharge nozzle, overpressure by an auxiliary impeller, passage through the gap and return in the hydraulic casing in high pressure zone at the impeller periphery. R: Cooled circulation Réf. OPTIMEX Réf. API 685 Liquid in the motor Circulation description Diagram R1 Plan 23-S Pumped liquid Pumped liquid and motor liquid are identical and they slightly communicate in order to establish an equipressure between the 2 areas (high and low temperature). On the motor side the liquid circulates in an external heat exchanger, flow is established by an auxiliary impeller. A thermal barrier is built between the hydraulic casing and the motor (air or water). HEAT EXCHANGER R3 - Pumped liquid Pumped liquid and motor liquid are identical and they slightly communicate in order to establish an equipressure between the 2 areas (high and low temperature). On the motor side the liquid circulates in an external heat exchanger, flow is established by a large auxiliary impeller. A thermal barrier is built between the hydraulic casing and the motor (air or water). HEAT EXCHANGER F: Filtered circulation Réf. OPTIMEX Réf. API 685 Liquid in the motor Circulation description Diagram F3 - Pumped liquid Injection in the motor from the discharge nozzle through a tangential filter, overpressure by a large auxiliary impeller, passage through the gap and return to the discharge nozzle via an external pipe. FILTRE F5 - Pumped liquid Injection in the motor from the discharge nozzle through a tangenatial filter, overpressure by a large auxiliary impeller, passage through the gap and return in the hydraulic casing in high pressure zone at the impeller periphery. FILTRE 10

THRUST BALANCING SYSTEM Over the years OPTIMEX has developed a performing and reliable thrust balancing system. BL2 system is composed of two restriction, one is stable (1) the other one is variable (2). These orifices regulate the pressure into the regulating chamber (3) that insures thrust balancing of the complete mobile. If the mobile moves to the left: restriction orifice (2) is widely opened, chamber s (3) pressure is balanced with low pressure given by impeller s rear fins through the balancing hole. As a consequence resultant force is positive, and the system moves back rearwardly. If the mobile moves to the right: restriction orifice (2) is closed and prohibits any balancing with low pressure. As a consequence, pressure increases in regulating chamber (3), the resultant is negative and the mobile moves back forwardly. 1 1 3 2 3 2 In the real functioning position, pressure in the chamber is regulated between high and low pressure. Resultant force is null and the mobile is stable and perfectly balanced between both. 1 3 2 Circulation Pressure Displacement Fixed parts Moving parts 11

Moscow DENVER LYON Sao Polo Beijing Warsaw BRC 01 1 R0-09/2013 269, rue de Montepy 69210 Fleurieux sur l Arbresle France Tél : 33 (0)4 72 52 95 74 Fax : 33 (0)4 72 52 95 75 contact@optimex-pumps.com