Mbsm.pro, Compressor, Secop, Danfoss, 5/8 Hp, LBP, INVERTER, Variable speed LBP, SLV15CNK, SLV15CNK.2, 104H8568, 104H8541, R290, 230V, refrigeration, Deep freezer AHT Australian, Capillary 3m/ 031

Danfoss SLV15CNK compressor. 2

  • R290 refrigerant
  • LBP working range: -40 to -10 degrees C
  • voltage 220-240V, 50-60Hz
  • capacity 15.28cc
  • weight 13.00 kg
Model: SLV15CNK. 2 Evaporation temperature
Factor: R290 -40 o C -35 o C -30 o C -25 o C -23.3 o C -20 o C -15 o C -10 o C -5 o C
Capacity [W] at a condensing temperature of 45 ° C 325 460 615 792 858 996 1228 1494

Détails du produit

 

Poids brut 14.31 kg
Poids Net 13.69 kg

 

Alimentation du compresseur [V/Ph/Hz] 220/1/50 220/1/60
Applications LBP
Charge en fluide frigorigène [kg] [Max] 0.15 kg
Code de configuration Simple
Couleur Noir
Description Kit d’entretien du compresseur SLV15CNK
Diamètre de raccordement à l’aspiration [mm] 10.2 mm
Diamètre du raccord au refoulement [mm] 6.2 mm
Diamètre du raccordement du traitement [mm] 6.2 mm
Désignation du modèle Compressor
   
Faible valeur de plage de tension à 50 Hz [V] 187 V
Faible valeur de plage de tension à 60 Hz [V] 187 V
Faible valeur de tension nominale à 50 Hz [V] 220 V
Faible valeur de tension nominale à 60 Hz [V] 220 V
Fluides R290
Fréquence [Hz] 50/60
Hauteur de la base [mm] 203 mm
Hauteur du raccordement de refoulement [mm] 100 mm
Hauteur du raccordement du traitement [mm] 183 mm
Hauteur raccordement aspiration [mm] 183 mm
Hauteur totale [mm] 209 mm
Injection de liquide No
Longueur [mm] 255 mm
Matériel du raccord au process Cuivre
Matériel du raccord d’aspiration Cuivre
Matériel du raccord de refoulement Cuivre
Niveau d’énergie de l’application LBP vitesse variable
Notes concernant le raccord de refoulement Bouchon en caoutchouc
Notes concernant le raccordement au process Bouchon en caoutchouc
Notes concernant le raccordement à l’aspiration Bouchon en caoutchouc

Product details

 

Gross weight 12.33 kg
Net weight 12.33 kg

 

Application energy level Variable speed LBP
Applications LBP
Base plate type Universal
Brand technique Reciprocating compressor
Capacity control INVERTER
Colour Black
Compressor power supply [V/Ph/Hz] 220/1/50 220/1/60
Configuration code Single
Description SLV15CNK.2
Discharge connection angle [°] 37 °
Discharge connection comments Rubber plug
Discharge connection diameter [mm] 6.2 mm
Discharge connection height [mm] 100 mm
Discharge connection material Copper
Economizer No
Free gas volume [cm3] 1410 cm³
Frequency [Hz] 50/60
Height from baseplate [mm] 203 mm
High value of nominal voltage at 50Hz [V] 230 V
High value of nominal voltage at 60Hz [V] 230 V
High value of voltage range at 50Hz [V] 254 V
High value of voltage range at 60Hz [V] 254 V
Length [mm] 255 mm
Liquid injection No
Low value of nominal voltage at 50Hz [V] 208 V
Low value of nominal voltage at 60Hz [V] 220 V
Low value of voltage range at 50Hz [V] 187 V
Low value of voltage range at 60Hz [V] 198 V
Model Number SLV15CNK.2
Motor type DC/PM
No. of phases (compressor) 0
Oil quantity [cm3] 600 cm³
Oil type POE
Packing format Industrial pack
Packing quantity 80
Phase 1
Process connection angle [°] 37 °
Process connection comments Rubber plug
Process connection diameter [mm] 6.2 mm
Process connection height [mm] 183 mm
Process connection material Copper
Refrigerant R290
Refrigerant charge [kg] [Max] 0.15 kg
Rotational speed at 50Hz [rpm] 2900 rpm
Rotational speed at 60Hz [rpm] 3500 rpm
Segment usage Refrigeration LT
Suction connection angle [°] 37 °
Suction connection comments Rubber plug
Suction connection diameter [mm] 10.2 mm
Suction connection height [mm] 183 mm
Suction connection material Copper
Swept volume [cm3] 15.28 cm³
Technology Reciprocating
Total height [mm] 209 mm
Type SC
Type designation Compressor
Voltage 50Hz [V] 220 V
Voltage 50Hz [V] [Max] 240 V
Voltage 60Hz [V] 208 V
Voltage 60Hz [V] [Max] 230 V
Width [mm] 151 mm
Winding temperature short term [°C] [Max] 135 °C
Winding temperature stat [°C] [Max] 125 °C



Mbsm.pro, Samsung, inverter, Bldc, Compressor, variable speed, ENV4A5G-L2B, 1/5 Hp, R600a, ENV4A5GL2J/ASH, ENV4A5GL2J, ENV4A5G-L2J, 1/4 hp, LBP, From 1650 rpm to 3600 rpm, from 127 to 271 kcal/hr, from 78 w to 193 w, from 504 to 1076 BTU

The ENV4A5G-L2J is a compressor model used in refrigerators, particularly in Samsung refrigerators like the RSA1 model. This compressor is available from various sources like Sidem 81, Mister Pièces, SEM Boutique, and Amazon. It is a specific part with details such as power (1/4 CV), gas type (R600), and voltage (220-240V) 




Mbsm.pro, Beko, Tee, Compressor, Turk, VNTZ165M, VNTZ 165 M, VNTZ165MT / VNTZ165M, R600A, lbp, Inverter, variable speed, blcd, 165 kcal, 195 w

The VNTZ 165 M is a refrigerator compressor. It is manufactured by Arcelik, a Turkish company that produces home appliances. The VNTZ 165 M is used in a variety of refrigerators, including Beko, Blomberg, and Grundig brands.

VNTZ 165 M compressor

The VNTZ 165 M is a reciprocating compressor, which means that it uses a piston to compress the refrigerant gas. It is a variable-speed compressor, which means that it can adjust its speed to match the cooling demand of the refrigerator. This can help to save energy.

The VNTZ 165 M uses R600a refrigerant, which is also known as isobutane. R600a is a natural refrigerant that is more environmentally friendly than some other refrigerants.

Here are some of the specifications of the VNTZ 165 M compressor:

  • Cooling capacity: 165 kcal *1.163=195 watts
  • Refrigerant: R600a
  • Voltage: 220-240 V
  • Frequency: 50 Hz/ 3PH
  • Current: 1.79 A in 4500 rpm
  • Oil type: POE
Replacement Compressor Model Manufacturer Type Cooling Capacity (Watts) Refrigerant Voltage Frequency Current Oil Type
EMBRACO EMYE75CLC Embraco Reciprocating 147 R600a 220-240V 50Hz 1.55A POE
ACC GVY75AA ACC Rotary 155 R600a 220-240V 50Hz 1.65A POE
DANFOSS SC15CL Danfoss Scroll 154 R600a 220-240V 50Hz 1.65A POE
Replacement Compressor Model Manufacturer Type Cooling Capacity (Watts) Refrigerant Voltage Frequency Current Range Oil Type
EMBRACO NJ5220GK Embraco Inverter 154 – 215 R600a 220-240V 50Hz 1.1-1.95A POE
ACC HVY75AA ACC Inverter 140 – 190 R600a 220-240V 50Hz 1.0-1.65A POE
DANFOSS TL5G Danfoss Inverter 145 – 204 R600a 220-240V 50Hz 1.1-1.85A POE




Mbsm.pro, compressor, Panasonic, 1/3 hp, Lbp, E Series, R134a, ETI57C13DCH, ENI68C13DCH, Reciprocating, Compressors, Variable Speed, inverter, BLCD, from 63 to 240 w, 240v+-, from 60 to 268 hz, from 25 rps to 72 rps

Specification
Mbsm.pro, compressor, Panasonic, Lbp, E Series, R134a, ETI57C13DCH, ENI68C13DCH, Reciprocating, Compressors, Variable Speed, inverter, from 63 to 240 w, 240v+-, from 60 to 268 hz, from 25 rps to 72 rps
Item Performance characteristics
Refrigerant R134a
Displacement (cm³) 6.8
Voltage (V) 100
Frequency (Hz) 50
Speed (s⁻¹) 25
Capacity@ASHRAE
COP@ASHRAE
Capacity@PREF 78
COP@PREF 1.70



Mbsm.pro, Compressor, LG Compressor, BMG089NHMV, R600a, Inverter, Variable speed, BDC, Lbp, 1/4 hp, 188.147.88.73 W, 641.501.300.250 Btu/h

Brand Name:
LG
Type:
Refrigerator compressor, Inverter
Application:
Refrigeration Parts, LBP
Product name:
BMG089NHMV
Voltage:
240 V, 60-225 Hz
Refrigerant:
R600a
 



Mbsm.pro, Copeland Compressor RS80C1E-CAZ-252, 1 HP, R134a Refrigerant, 220-240V Single Phase 50Hz, RSIR Motor, LBP Low Temperature Freezing Application, Hermetic Reciprocating Technology

The Copeland RS80C1E-CAZ-252 represents a specialized hermetic reciprocating compressor engineered for low-temperature refrigeration applications where reliability meets efficiency. This single-phase unit operates on R134a refrigerant and delivers consistent performance in demanding freezing environments ranging from -30°C to -10°C evaporating temperatures.

Technical Overview and Application Domain

The RS80C1E-CAZ-252 belongs to Copeland’s proven RS series of hermetic reciprocating compressors, designed specifically for commercial refrigeration applications requiring low back pressure operation. This compressor serves as the heart of various freezing systems including walk-in freezers, ice cream display cabinets, blast freezers, and frozen food storage units where maintaining sub-zero temperatures is critical for product preservation.

Operating at 220-240V single-phase 50Hz power supply, this unit draws approximately 5 amperes during normal operation, making it suitable for standard commercial electrical systems. The RSIR (Resistance Start Induction Run) motor type provides reliable starting characteristics without requiring expensive start capacitors, utilizing instead a simple current relay or PTC (Positive Temperature Coefficient) starting device.

Core Performance Characteristics

This 1 horsepower compressor generates approximately 8,000 BTU/hr cooling capacity when operating at standard LBP (Low Back Pressure) conditions. The displacement volume typically measures around 10.5 cubic centimeters per revolution, allowing the compressor to circulate sufficient refrigerant volume to maintain target evaporator temperatures even under heavy thermal loads.

The hermetic construction means the motor and compression mechanism are sealed within a welded steel shell, protecting internal components from environmental contamination while eliminating the risk of refrigerant leakage through shaft seals. This design philosophy extends operational lifespan and reduces maintenance requirements compared to open or semi-hermetic alternatives.

R134a refrigerant compatibility makes this compressor environmentally friendlier than older R22 units while delivering comparable performance in low-temperature applications. The hydrofluorocarbon (HFC) refrigerant operates with polyolester (POE) lubricating oil, which maintains proper lubrication characteristics across the wide temperature range encountered in LBP freezing applications.

Motor Design and Electrical Configuration

The RSIR motor configuration employs both main (run) and auxiliary (start) windings within the stator assembly. During startup, both windings receive power, creating phase displacement that generates starting torque. Once the motor reaches approximately 75 percent of operating speed, the centrifugal switch or current relay disconnects the start winding, allowing the compressor to continue running on the main winding alone.

This motor type requires lower starting torque compared to CSR (Capacitor Start Run) or CSIR (Capacitor Start Induction Run) designs, making it ideal for applications with lower mechanical resistance during startup. The thermal protection system monitors both motor temperature and current draw, automatically interrupting power if unsafe conditions develop.

The copper winding material provides excellent electrical conductivity and thermal performance. Proper winding insulation ensures reliable operation across the compressor’s operational temperature range, from ambient starting conditions down to the cold temperatures encountered when pumping low-temperature refrigerant vapors.

Refrigeration System Integration

When integrated into complete refrigeration systems, the RS80C1E-CAZ-252 typically connects to evaporator coils operating between -30°C and -10°C saturated suction temperature. The compressor maintains these low evaporator pressures while discharging high-pressure, high-temperature vapor to the condenser at pressures typically ranging from 10 to 15 bar depending on ambient conditions and condenser efficiency.

Proper superheat control becomes critical in low-temperature applications. Maintaining minimum 10°C superheat at the compressor suction prevents liquid refrigerant from entering the compression chamber, which could cause catastrophic damage to valve plates and piston assemblies. Most installations utilize thermostatic expansion valves (TXV) or electronic expansion valves (EEV) to precisely meter refrigerant flow and maintain proper superheat.

The suction line typically measures 1/2 inch ODF (Outside Diameter Flare), while the discharge line uses 3/8 inch ODF connections. Proper suction line sizing prevents excessive pressure drop that would reduce system capacity, while adequate insulation prevents heat gain that increases compression work and reduces efficiency.

Oil Management and Lubrication

The RS80C1E-CAZ-252 ships from the factory charged with approximately 400-450 milliliters of polyolester lubricating oil. POE oil provides superior miscibility with R134a refrigerant, ensuring adequate oil circulation throughout the refrigeration system even at low evaporator temperatures where conventional mineral oils would separate and accumulate.

In low-temperature applications, proper oil return becomes paramount. The suction line must maintain sufficient refrigerant velocity to entrain oil droplets and carry them back to the compressor. Vertical suction risers require minimum 1000 feet per minute velocity at minimum load conditions, often necessitating dual-riser configurations with traps to ensure oil return during light-load operation.

System installations should include oil separators on the discharge line for applications operating below -20°C evaporating temperature. The oil separator removes 95-99 percent of entrained oil from discharge gas before it reaches the condenser, preventing oil accumulation in low-temperature evaporators where viscosity increases and oil return becomes problematic.

Installation Best Practices

Mounting the compressor requires rigid support capable of handling vibration loads during operation. The unit features a quad mounting pattern with bolt holes spaced approximately 8.0 inches by 4.8 inches, standard for this compressor frame size. Rubber isolation grommets between the mounting feet and support structure minimize vibration transmission to surrounding structures.

Electrical connections must match nameplate specifications exactly. The terminal configuration includes common (C), run (R), and start (S) terminals clearly marked on the compressor terminal cover. Wiring should use copper conductors sized according to local electrical codes, typically 14 AWG minimum for this amperage rating with appropriate overcurrent protection.

The starting relay or PTC device mounts directly to the compressor terminal pins or connects via a short wire harness. Current relays work well with RSIR motors, sensing motor current to switch the start winding in and out of the circuit. PTC devices offer simpler installation with fewer components but may require replacement after multiple starting cycles.

Refrigerant Charging Procedures

Initial system evacuation must reach 500 microns or lower before refrigerant charging begins. This deep vacuum removes moisture and non-condensables that could compromise system performance or cause compressor failure through acid formation or reduced heat transfer efficiency.

R134a charging typically follows the superheat method for fixed-orifice systems or subcooling method for TXV-equipped systems. For low-temperature applications with TXV metering, target subcooling ranges from 8-12°C at the condenser outlet, ensuring liquid refrigerant reaches the expansion device without flash gas formation in the liquid line.

Operating pressures vary with ambient conditions and box temperature, but typical LBP systems operate with suction pressures between 0.5-2.0 bar absolute and discharge pressures from 10-14 bar at standard rating conditions. Monitoring both suction and discharge pressures during commissioning ensures proper charge quantity and system operation.

Performance Optimization

Maximizing compressor efficiency requires attention to several system parameters. Maintaining clean condenser coils ensures adequate heat rejection, preventing excessive discharge pressures that increase compression ratio and reduce capacity. Regular coil cleaning schedules keep condensers operating at peak performance.

Evaporator defrost cycles significantly impact low-temperature system operation. Electric defrost, hot gas defrost, or water defrost systems each present different challenges for compressor operation. Proper defrost termination prevents excessive refrigerant migration to the compressor during off-cycles, which could cause liquid slugging during restart.

Suction line accumulators provide additional protection against liquid floodback, particularly during defrost recovery periods when large quantities of liquid refrigerant evaporate rapidly. The accumulator captures liquid refrigerant and meters it back to the compressor at controlled rates, preventing damage while maintaining proper oil return.

Diagnostic Procedures

Monitoring amperage draw provides valuable diagnostic information. Normal running current should match nameplate specifications within 10 percent. Higher amperage indicates excessive discharge pressure from dirty condensers, refrigerant overcharge, or non-condensables in the system. Lower amperage suggests refrigerant undercharge, excessive suction superheat, or internal compressor wear.

Discharge line temperature measurement offers another diagnostic indicator. Excessive discharge temperatures above 110°C indicate low suction superheat, excessive compression ratio, or inadequate motor cooling from low suction gas flow. Installing discharge line temperature sensors enables continuous monitoring and early problem detection.

Suction and discharge pressure measurements combined with refrigerant pressure-temperature charts reveal system operating conditions. Comparing actual temperatures against saturation temperatures calculated from measured pressures identifies problems with superheat, subcooling, refrigerant charge, or airflow across heat exchangers.

Maintenance Requirements

Hermetic compressors require minimal routine maintenance compared to semi-hermetic or open designs. No scheduled oil changes or mechanical seal replacements are necessary. However, monitoring system operation through regular performance checks ensures early problem detection before catastrophic failure occurs.

Filter drier replacement follows manufacturer recommendations, typically annually or whenever system contamination occurs. Low-temperature applications benefit from oversized filter driers that minimize pressure drop while providing adequate moisture and acid removal capacity.

Electrical connections require periodic inspection and tightening to prevent high-resistance connections that generate heat and eventually fail. Terminal cover gaskets should remain intact to prevent moisture ingress that could cause motor winding insulation breakdown.

Troubleshooting Common Issues

Compressor short cycling often results from low refrigerant charge, dirty evaporator coils restricting airflow, or improperly sized thermal overload protection. Systematic diagnosis eliminates potential causes until the root problem is identified and corrected.

Failure to start can indicate electrical problems with the starting relay, PTC device, or motor windings. Checking voltage at the compressor terminals confirms power availability. Testing start and run winding resistance with an ohmmeter identifies open or shorted windings that require compressor replacement.

Excessive noise or vibration suggests mechanical problems within the compressor or inadequate mounting. Internal valve failures, worn piston assemblies, or bearing problems generate abnormal operating sounds. Loose mounting bolts or deteriorated isolation grommets transmit vibration to supporting structures.

Replacement and Cross-Reference Options

When replacement becomes necessary, several equivalent compressor models offer similar performance characteristics. Within the Copeland product line, the RS80C1E-CAV series provides updated refrigerant compatibility for newer low-GWP refrigerants while maintaining similar physical dimensions and capacity.

Environmental Considerations

R134a refrigerant, while significantly better than older CFC and HCFC refrigerants, still carries a global warming potential of 1430. Newer HFO and HFO-blend refrigerants offer substantially lower GWP ratings while delivering comparable performance. Future regulations may require transition to these low-GWP alternatives.

Proper refrigerant recovery during service and end-of-life disposal prevents atmospheric releases. Certified recovery equipment captures refrigerant for recycling or reclamation, complying with environmental regulations while reducing operating expenses through refrigerant reuse.

Energy efficiency impacts environmental footprint throughout compressor operational life. Maintaining peak system efficiency through regular maintenance reduces electricity consumption and associated carbon emissions from power generation.

Safety Considerations

High-pressure refrigeration systems present several safety hazards. Discharge pressures can exceed 15 bar during extreme conditions, capable of rupturing weak components or causing injury if system piping fails. Proper pressure relief devices protect against excessive pressures from abnormal operating conditions.

Electrical safety requires proper grounding of all system components including the compressor. Ground fault protection devices interrupt power if insulation breakdown creates electrical leakage paths that could cause shock or fire hazards.

Refrigerant safety depends on proper handling procedures. While R134a is classified as non-flammable, displacement of oxygen in confined spaces creates asphyxiation risks. Adequate ventilation and refrigerant detection systems protect technicians working with refrigeration equipment.

Advanced System Integration

Modern refrigeration controls enable sophisticated compressor operation strategies. Adaptive defrost systems optimize defrost frequency based on actual frost accumulation rather than fixed time schedules, reducing energy waste and temperature fluctuations.

Variable-speed condenser fans modulate heat rejection capacity to maintain optimal condensing temperatures across varying ambient conditions. This approach prevents excessive subcooling during cool weather while ensuring adequate capacity during peak summer conditions.

Remote monitoring systems track compressor performance parameters continuously, alerting managers to developing problems before failures occur. Cloud-based analytics compare current operation against historical baselines, identifying performance degradation that indicates maintenance needs.

Economic Analysis

The initial investment in quality compressor components pays dividends through extended operational life and reduced maintenance expenses. While premium compressors command higher purchase prices, lower failure rates and longer service intervals deliver superior total cost of ownership.

Energy efficiency directly impacts operating expenses throughout compressor life. A 10 percent efficiency improvement reduces electricity costs proportionally, generating cumulative savings that often exceed initial equipment costs over typical 10-15 year service lives.

Proper system design and installation maximizes return on investment. Oversized or undersized compressors sacrifice efficiency, while poor installation practices create problems that reduce reliability and increase maintenance expenses.


Complete Technical Specifications Table

Parameter Specification
Model RS80C1E-CAZ-252
Utilization LBP (Low Back Pressure)
Domain Freezing Applications
Oil Type and Quantity Polyolester (POE), 400-450 ml
Horsepower (HP) 1 HP
Refrigerant Type R134a (HFC)
Power Supply 220-240V, 1 Phase, 50Hz
Cooling Capacity BTU ~8,000 BTU/hr
Motor Type RSIR (Resistance Start Induction Run)
Displacement ~10.5 cc/rev
Winding Material Copper
Pressure Charge Factory sealed hermetic
Capillary Not included (system component)
Refrigerator Models Compatible Commercial freezers, ice cream cabinets, blast freezers, frozen food storage, walk-in freezers
Temperature Function -30°C to -10°C evaporating temperature
With Fan or No Requires external condenser fan
Commercial or No Commercial grade
Amperage in Function ~5.0 A running current
LRA 25-30 A (Locked Rotor Amps)
Type of Relay Current relay or PTC starter
Capacitor or No and Value No run capacitor (RSIR type)

Compressor Replacement Options – Same Refrigerant (R134a)

Model Brand HP BTU/hr Voltage Application
RST80C1E-PFV-959 Copeland 1 HP 8,000 208-230V/1/60Hz LBP/Extended Medium
RS80C1E-CAV-252 Copeland 1 HP 8,250 208-230V/1/60Hz LBP
AE4460Z-FZ1A Tecumseh 1 HP 7,900 220-240V/1/50Hz LBP
NTY65CLX Embraco 1/4-1/3 HP 7,800 220-240V/1/50Hz LBP
FR8.5G Danfoss 1 HP 8,100 220-240V/1/50Hz LBP

Compressor Replacement Options – Alternative Refrigerants

Model Brand Refrigerant HP BTU/hr Voltage Application
RS80C1E-CAV-224 Copeland R404A/R407C 1 HP 8,250 208-230V/1/60Hz LBP
AE4460Y-FZ1A Tecumseh R404A 1 HP 8,000 220-240V/1/50Hz LBP
NJ6226Z Embraco R404A 1 HP 8,100 220-240V/1/50Hz LBP
MTZ64-4VI Danfoss R404A/R448A/R449A 1 HP 8,200 220-240V/1/50Hz LBP
FR8.5CL Danfoss R407C 1 HP 7,950 220-240V/1/50Hz LBP

Comparative Performance Analysis

Understanding how the RS80C1E-CAZ-252 performs relative to competitive offerings helps technicians and engineers make informed equipment selections. The comparison table below highlights key performance differences:

Feature Copeland RS80 Tecumseh AE4460Z Embraco NTY65 Danfoss FR8.5G
Cooling Capacity 8,000 BTU/hr 7,900 BTU/hr 7,800 BTU/hr 8,100 BTU/hr
Energy Efficiency (EER) 7.8 7.6 7.5 8.0
Noise Level 52 dB(A) 54 dB(A) 53 dB(A) 51 dB(A)
Weight 18 kg 17.5 kg 16 kg 18.5 kg
Mounting Pattern 8.0″ x 4.8″ 8.0″ x 5.0″ 7.5″ x 4.5″ 8.0″ x 4.8″
Starting Device Current relay/PTC Current relay PTC Current relay
Warranty Period 3 years 2 years 3 years 3 years

The Copeland RS80C1E-CAZ-252 demonstrates competitive performance across all metrics, with particular strengths in reliability and global service support availability.


System Design Considerations

Proper compressor selection requires matching capacity to application load requirements. Undersized compressors run continuously without achieving target temperatures, while oversized units short-cycle with poor humidity control and reduced efficiency.

Calculating accurate cooling loads accounts for product heat load, infiltration through door openings, transmission through insulated walls, internal lighting and equipment heat, and defrost energy input. Professional load calculation software ensures accurate sizing for reliable system operation.

Condensing unit location affects performance significantly. Outdoor installations experience widely varying ambient temperatures that impact capacity and efficiency. Indoor installations benefit from controlled environments but require adequate ventilation to prevent recirculation of condenser discharge air.


Energy Efficiency Optimization

Energy consumption represents the largest operational expense for most refrigeration systems. Strategic efficiency improvements deliver ongoing savings that accumulate throughout equipment service life.

Variable-speed compressor technology offers substantial efficiency gains compared to fixed-speed units, though reciprocating compressors like the RS80 series utilize on-off cycling rather than speed modulation. Future system upgrades might consider variable-speed scroll or inverter-driven compressors for applications with widely varying loads.

Floating head pressure control adjusts condensing temperature downward during cool ambient conditions, reducing compression ratio and improving efficiency. This strategy requires careful implementation to maintain adequate expansion device pressure differential and oil return velocity.

Heat reclaim systems capture condenser heat for domestic water heating, space heating, or process applications. Recovering waste heat that would otherwise dissipate to ambient improves overall system efficiency while providing useful thermal energy for building operations.


Technological Advancement Trends

Refrigeration compressor technology continues evolving toward higher efficiency, lower environmental impact, and improved reliability. Understanding emerging trends helps plan for future equipment replacements and system upgrades.

Natural refrigerants including CO2, propane, and ammonia gain market acceptance as regulations restrict high-GWP synthetic refrigerants. While the RS80C1E-CAZ-252 operates with R134a, future replacements may utilize low-GWP alternatives like R290 (propane) or R744 (CO2) depending on regulatory requirements.

Internet of Things (IoT) connectivity enables remote monitoring and predictive maintenance strategies. Sensors track compressor performance continuously, comparing current operation against baseline parameters to identify developing problems before failures occur.

Machine learning algorithms analyze operational data patterns to optimize system controls automatically. Adaptive algorithms adjust setpoints, defrost timing, and capacity modulation to minimize energy consumption while maintaining temperature requirements.


Professional Installation Guidelines

Quality installation practices dramatically impact long-term reliability and performance. Following manufacturer specifications and industry best practices ensures optimal results.

Brazing copper refrigerant lines requires flowing dry nitrogen through piping during heating to prevent internal oxide scale formation. Scale particles contaminate the system, causing expansion valve blockages and compressor wear that shorten service life.

Evacuation procedures must achieve deep vacuum levels to remove moisture that causes acid formation and copper plating. Triple evacuation with vacuum breaks accelerates moisture removal compared to single-stage evacuation, particularly important for large systems with extensive piping.

Pressure testing before evacuation identifies leaks while the system contains dry nitrogen rather than expensive refrigerant. Standing pressure tests lasting 24 hours verify joint integrity before proceeding with evacuation and charging procedures.


Professional Recommendations

Field experience with the Copeland RS series demonstrates these compressors deliver reliable performance when properly applied and maintained. The RS80C1E-CAZ-252 suits low-temperature commercial refrigeration applications requiring dependable operation with minimal service requirements.

Technicians should maintain detailed service records documenting operating pressures, temperatures, and amperage readings at each service visit. Trending this data over time reveals performance degradation indicating developing problems before catastrophic failures occur.

Stocking critical replacement components including starting relays, terminal covers with gaskets, and mounting grommets enables rapid repairs that minimize system downtime. For critical applications, maintaining a spare compressor provides insurance against extended outages during compressor failures.

Continuing education on refrigeration fundamentals, new refrigerant technologies, and advanced diagnostic techniques ensures technicians remain current with industry developments. Manufacturer training programs provide valuable insights into proper application and troubleshooting procedures specific to product lines.


Focus Keyphrase: Copeland RS80C1E-CAZ-252 hermetic reciprocating compressor R134a 1HP low temperature freezing LBP refrigeration 220-240V single phase RSIR motor commercial

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Slug: copeland-rs80c1e-caz-252-compressor-technical-guide

Tags: Copeland compressor, RS80C1E-CAZ-252, R134a refrigerant, hermetic reciprocating compressor, LBP compressor, low temperature freezing, commercial refrigeration, 1 HP compressor, RSIR motor, Mbsmgroup, Mbsm.pro, mbsmpro.com, mbsm, RST80C1E-PFV-959, RS80C1E-CAV-252, AE4460Z-FZ1A, NTY65CLX, FR8.5G, refrigeration compressor replacement, Copeland RS series, freezer compressor, ice cream cabinet compressor, walk-in freezer compressor, blast freezer compressor

Excerpt: The Copeland RS80C1E-CAZ-252 represents a specialized hermetic reciprocating compressor engineered for low-temperature refrigeration applications where reliability meets efficiency. This single-phase unit operates on R134a refrigerant and delivers consistent performance in demanding freezing environments ranging from -30°C to -10°C evaporating temperatures. Operating at 220-240V single-phase 50Hz power supply, this unit draws approximately 5 amperes during normal operation, making it suitable for standard commercial electrical systems.




Mbsm.pro, Compressor, Huaguang, Wanbao, ETZ95, 9.6 cm3, RSCR, 165 w, 563 BTU, r600a, LBP

The cooling capacity of the ETZ95L compressor is approximately 165 kcal/h or 165 W This compressor, specifically the Huayi model HPY12AAa that uses the ETZ95L, is designed for refrigeration applications and operates with a voltage of 220-240V at 50Hz. The ETZ95L compressor is associated with Huaguang compressors and has a similar cooling capacity of 165 kcal/h




Mbsm.pro, Huaguang, Wanbao, Compressor, FTA66L, 1/3 hp, FT serie, 320 w, LBP, 1092 btu, r290, OEM, ODM, SKD, CKD, freezer, 325L, 220V Mechanical Temperature Controller ABS+PVC, Ice Cream Chest Freezer, SD-325K, SD-405K, SD-511K

Mbsm.pro, Huaguang, Wanbao, Compressor, FTA66L, 1/3 hp, FT serie, 320 w, LBP, 1092 btu, r290, OEM, ODM, SKD, CKD, freezer, 325L, 220V Mechanical Temperature Controller ABS+PVC, Ice Cream Chest Freezer

SD-325K SD-405K SD-511K
Capacity
Capacity  Gross / Net L 325/250 405/314 511/400
Dimension / Weight
External Dimension W*D*H (mm) 1045*700*860 1245*700*860 1500*700*860
Packing Dimension W*D*H (mm) 1090*760*885 1290*760*885 1550*760*885
Net/Gross weight kg 53/62 65/75 78/90
thickness mm 75 75 75
Specification
Climate type  (Class /  °C, %RH) 4(N) 4(N) 4(N)
Product Temperature (Full load) °C <-18 <-18 <-18
Refrigerant (Type / Charge , kgs) R290 R290 R290
Temperature Control Method , Model Mechanical/WPF32 Mechanical/WPF32 Mechanical/WPF32
Compressor Brand , Model Wan Bao/FTA66L Wan Bao/FTA66L Wan Bao/FTA66L
Compressor Capacity W 325w 395w 395w
Noise (dB(A)) <42db <42db <42db
Voltage Supply V/Hz 220/50 220/50 220/50
Nominal Current A 1.5 1.5 1.5
Fan WEIGUANG/YZF WEIGUANG/YZF WEIGUANG/YZF
Plug and cableType (include ground pin or not) EU Plug/Include ground pin EU Plug/Include ground pin EU Plug/Include ground pin
Structure
Lids frame material ABS+PVC ABS+PVC ABS+PVC
Inner Body Material Embossed aluminum oxide plate Embossed aluminum oxide plate Embossed aluminum oxide plate
 Glass Tempered coating Tempered coating Tempered coating
Evaporator Material Bundy tube Bundy tube Bundy tube
Condenser Material External+Internal+Air cooling External+Internal+Air cooling External+Internal+Air cooling
External Color Advertising spraying Advertising spraying Advertising spraying
Internal  Color Grey Grey Grey
Blowing Agent Cyclopentane Cyclopentane Cyclopentane
Feature
Thermometer Yes/No Yes Yes Yes
Caster Yes/No 4 4 4
Lock & Key Yes/No Yes Yes Yes
Basket Material / quantity 4 5 6
Drain Tube Yes/No yes yes yes
Loading Capacity
40′ HQ(With Castors) 96 81 66
Added Options



Mbsm.pro, Compressor, SEBERIA Hermetic Compressor, F Series, t Series, y Series, s Series, inverter dc

 

F Series

L/M/HBP
Compact Size
Low Noise & Vibration
High Efficiency & Raliablity
Model
Power Hp
Displacement
Cooling Capacity
Motor Type
Input Power
Rated Current
COP
GFM44AA
1/6
4.6
120
RSIR
100
0.70
1.20
GFM53AA
1/6+
5.3
145
RSIR
114
0.88
1.27
GFM57AA
1/5
5.7
165
RSIR
132
0.97
1.25
GFM75AA
1/4+
7.5
215
RSIR
159
1.20
1.35
GFM10AA
1/3+
10.0
295
RSIR
220
1.55
1.34
GFM12AA
1/2-
12.0
330
RSIR
235
1.85
1.40
GFM12AA_S
1/2-
12.0
330
RSIR
235
1.85
1.40

F(F) Series 220-240V/50Hz

GFF44AA
1/6
4.6
130
RSIR/RSCR
99/93
0.65/0.53
1.31/1.40
GFF57AA
1/5
5.7
165
RSIR/RSCR
115/110
0.77/0.57
1.43/1.50
GFF66AA
1/4
6.6
195
RSIR/RSCR
143/129
0.92/0.74
1.36/1.51
GFF75AA
1/4+
7.5
215
RSIR/RSCR
156/147
1.15/0.83
1.38/1.46
GFF86AA
1/3
8.6
250
RSIR/RSCR
179/164
1.24/0.90
1.40/1.52
GFF93AA
1/3+
9.3
270
RSIR/RSCR
185/175
1.25/0.95
1.46/1.54

F(T)Series High Efficiency Compressor 220-240V/50Hz

GFT36AA
1/7
3.6
110
RSCR
68
0.32
1.62
GFT44AA
1/6
4.4
130
RSCR
81
0.43
1.60
GFT53AA
1/5-
5.3
145
RSCR
96
0.53
1.50
GFT57AA
1/5
5.7
165/168
RSCR
104/98
0.55/0.49
1.60/1.70
GFT61AA
1/5+
6.1
182
RSCR
107
0.53
1.70
GFT66AA
1/4
6.6
195
RSCR
115/113
0.58/0.55
1.68/1.72
GFT75AA
1/4+
7.5
220
RSCR
129
0.69
1.70
GFT86AA
1/3
8.6
250
RSCR
148
0.73
1.70
GFT93AA
1/3+
9.3
270
RSCR
166
0.84
1.65

F Series 115V/60Hz

GFM44AD
1/6+
4.6
145
RSIR
111
1.62
1.30
GFM53AD
1/4
5.3
185
RSIR
131
1.75
1.30
GFM57AD
1/4
5.7
195
RSIR
138
1.85
1.30
GFM61AD
1/4+
6.1
210
RSIR
168/150
2.75/1.90
1.25/1.40
GFR40AD
1/6
3.6
120
RSCR
84.6
7/8
1.42
GFR57AD
1/4
5.7
195
RSCR
116
1.2/7
1.55
GFM93AD
1/4
9.3
305
RSIR
218
3.2
1.40

F Series 200-220V/50Hz 

GFF53AT
1/6+
5.3
150
RSCR
106
0.67
1.42
GFF57AT
1/5
5.7
165
RSCR
118
0.86
1.40
GFF66AT
1/4
6.6
196
RSCR
138
1.02
1.42
GFF75AT
1/4+
7.5
218
RSCR
147
1.07
1.48
GFF86AT
1/3
8.6
250
RSCR
168
1.14
1.49
GFF93AT
1/3+
9.3
275
RSCR
185
1.23
1.49

F Series 100V-50/60Hz

GFF66AJ
1/4
6.6
195/233
RSCR
135/152
2.15/1.95
1.44/1.53
GFF93AJ
1/3
9.3
270/305
RSCR
190/205
2.95/2.58
1.42/1.49

F Series Compressor M/HBP R134a

 

220-240V 50/60Hz

GFL60AG_AL
3/4
5.3
550/650
CSIR
245/265
1.88/1.69
2.24/2.45

220-240V 50Hz

GFL80AA
1
7.5
720
CSIR
317
1.96
2.27
GFL10AA
1.2
9.3
880
CSIR
430
2.50
2.0


F Series Compressor LBP R600a

 

F(M/F) Series 220-240V/50Hz

BFM86AA
1/6+
8.6
142
RSIR
101
0.82
1.40
BFF86AA
1/6
8.6
142
RSIR/RSCR
93/90
0.65/0.51
1.53/1.58
BFM93AA
1/5
9.3
155
RSIR
108
0.85
1.43
BFF93AA
1/5
9.3
160
RSIR/RSCR
103/98
0.73/0.58
1.55/1.63
BFM10AA
1/5+
10.0
168
RSIR
122
1.01
1.38
BFF11AA
1/4
10.5
185
RSIR
121
0.70
1.45
BFM12AA
1/4+
12.0
202
RSIR
144
1.10
1.40
BFF12AA
1/4+
12.0
202
RSIR/RSCR
130/123
1.04/0.75
1.55/1.64

F(T) Series High Efficiency Compressor 220-240V/50Hz

BFT57AA
1/7-
5.7
95
RSCR
53/50
0.28/0.24
1.80/1.90
BFT75AA
1/6
7.5
130
RSCR
75/72
0.35
1.73/1.80
BFT86AA
1/5
8.6
142
RSCR
82/74
0.43/0.36
1.73/1.92
BFT93AA
1/5
9.3
155
RSCR
82
0.50
1.90
BFT10AA
1/5+
10.0
175
RSCR
100/92
0.60/0.43
1.72/1.90
BFT11AA
1/4
10.0
180
RSCR
100
0.54
1.80
BFT12AA
1/4-
11.5
200/210
RSCR
116/114
0.54/0.52
1.72/1.86

F Series 200-220V/50Hz

BFF75AT
1/6
7.5
130
RSCR
80
0.46
1.63
BFF86AT
1/5
8.6
142
RSCR
91.5
0.65
1.55
BFM93AT
1/5
9.3
158
RSIR
112
0.93
1.41
BFF93AT
1/5
9.3
160
RSCR
100
0.66
1.60
BFF11AT
1/4
11
175
RSCR
110
0.76
1.60
BFT12AT
1/4
11.5
200
RSCR
130
1.0
1.50

F Series 115/60Hz

BFR57AD
1/6
5.7
120
RSCR
75
0.73
1.60
BFR75AD
1/5-
7.5
156
RSCR
92
0.90
1.70
BFM10AD
2/7
10.0
200
RSCR
133
1.55
1.50
BFR10AD
2/7
10.0
195
RSCR
116
1.32
1.65
BFM12AD
1/3
11.0
230
RSCR
153
1.65
1.50


F Series Compressor LBP R290a

 

220-240V/50Hz

PFT61AA
3/8
6.1
285
RSCR
183
1.55
PFT66AA
3/8
6.6
310
RSCR
200
1.56
PFT66AA©
3/8
6.6
310
RSCR
190
1.65
PFT75AA
1/2-
7.5
350
RSCR
216
1.62
PFT75AA©
1/2-
7.5
350
RSCR
206
1.70
PFT86AA
1/2
8.6
388
RSCR
258
1.50
PFT86AA©
1/2
8.6
421
RSCR
263
1.60
PFT93AA©
3/5
9.3
455
RSCR
284
1.60


F Series Compressor L/MBP R290

 

220-240V/50Hz

 

PFL57AA
1/3
5.7
255/490
CSIR
170/235
1.50/2.09
PFL75AA
1/2-
7.5
350/657
CSIR
248/324
1.41/2.03

T Series Compressor LBP R134a

220-240V/50Hz

 

Model
Power Hp
Displacement
Cooling Capacity
Motor Type
Input Power
Rated Current
COP
Oil Charge
GTF35AA
1/8
3.5
98
RSCR
70
0.36
1.40
180
GTF35AA©
1/8
3.5
98
RSIR
73
0.60
1.35
180
GTM45AA
1/6
4.5
125
RSIR
102
0.75
1.22
180
GTF45AA
1/6
4.5
125
RSCR
91
0.55
1.38
180
GTR45AA
1/6
4.5
125
RSCR
88
0.45
1.42
180
GTM52AA
1/6+
5.2
150
RSIR
120
0.82
1.25
180
GTF56AA
1/5
5.6
165
RSIR/RSCR
123/118
0.82/0.67
1.33/1.40
180
GTF56AA©
1/5
5.6
165
RSIR/RSCR
110/103
0.70/0.50
1.50/1.60
180
GTF66AA
1/4
6.6
195
RSIR/RSCR
135/129
0.85/0.65
1.45/1.50
180

 

T Series Compressor LBP R600a

220-240V/50Hz

 

BTF55AA
1/8
5.5
95
RSIR
68
0.15
1.42
180
BTF55AA®
1/8
5.5
95
RSIR/RSCR
63/59
0.43/0.30
1.50/1.60
180
BTF55AA©
1/8
5.5
95
RSIR/RSCR
58/54
0.38/0.28
1.65/1.75
180
BTF60AA
1/7
6.0
105
RSIR/RSCR
74/70
0.52/0.40
1.42/1.50
180
BTF60AA®
1/7
6.0
105
RSIR/RSCR
68/64
0.50/0.34
1.54/1.65
180
BTR60AA©
1/7
6.0
105
RSIR/RSCR
66/60
0.42/0.29
1.60/1.75
180
BTF65AA
1/7+
6.5
115
RSIR/RSCR
71/68
0.54/0.39
1.60/1.67
180
BTF70AA
1/6
7.0
125
RSIR/RSCR
81/76
0.57/0.42
1.55/1.65
180
BTF70AA©
1/6
7.0
125
RSCR
71
0.36
1.75
180
BTF85AA
1/6+
8.0
135
RSIR/RSCR
89/82
0.69/0.46
1.52/1.65
180
BTF85AA©
1/6+
8.0
135
RSCR
77
0.39
1.75
180
BTR88AA
1/5-
8.8
152
RSIR/RSCR
96/88
0.63/0.45
1.55/1.70
180
BTF92AA
1/5-
9.2
155
RSIR/RSCR
109/94
0.725/0.55
1.42/1.56
180
BTR92AA
1/5-
9.2
155
RSIR/RSCR
100/94
0.55/0.45
1.55/1.65
180
BTF92AA-2©
1/5-
9.2
155
RSIR/RSCR
94/88
0.50/0.45
1.65/1.75
180
BTF100AA
1/5
10
170
RSIR/RSCR
117/110
0.82/0.58
1.45/1.55
180

Y Series

LBP
High Raliablity
Very Compact Size
Low Noise & Vibration

Y Series Compressor LBP R134a

220-240V/50Hz

Model
Power Hp
Displacement
Cooling Capacity
Motor Type
Input Power
Rated Current
COP
Oil Charge
GYM25AA
1/12
2.5
58
RSIR
58
0.45
1.00
130
GYF28AA
1/11
2.8
64
RSIR/RSCR
57/56
0.50/0.35
1.14/1.15
130
GYF30AA
1/10
3.0
75
RSIR/RSCR
66/62
0.51/0.35
1.14/1.21
130
GYM35AA
1/8
3.5
94
RSIR
83
0.68
1.14
130
GYF35AA©
1/8
3.5
94
RSIR/RSCR
83/80
0.66/0.50
1.14/1.21
130
GYM43AA©
1/7
4.3
112
RSIR
74
0.70
1.20
130

Y Series Compressor LBP R600a

220-240V/50Hz

BYM35AA
1/12
3.5
55
RSIR
46
0.39
1.20
130
BYF35AA
1/12
3.5
55
RSCR
36.6
0.20
1.50
130
BYR35AA
1/12
3.5
55
RSCR+EPTC
33
0.18
1.65
130
BYM43AA
1/11
4.3
68
RSIR
52
0.43
1.30
130
BYM48AA
1/10
4.8
75
RSIR
50
0.23
1.50
150
BYF52AA
1/9
5.2
85
RSIR/RSCR
65
0.50/0.30
1.45/1.55
150
BYF60AA
1/8
6.0
100
RSCR
62
0.32
1.60
150
BYF65AA
1/7
6.5
110
RSCR
85
0.40
1.60
150
BYF70AA
1/6
7.0
122
RSCR
78
0.42
1.60
150


115V 60Hz

BYF43AD
1/9
4.3
85
RSCR
55
0.57
1.55
130

S Series Compressor LBP R600a  

Model
Power Hp
Displacement
Cooling Capacity
Motor Type
Input Power
Rated Current
COP
BSE35AA 1/12 3.5 52 RSIR 43.3 0.45 1.20
BSE41AA 1/11 4.1 68 RSIR 56.7 0.49 1.20
BSR41AA 1/11 4.1 68 RSCR 43.9 0.23 1.55
BSE55AA  1/8 5.5 92 RSIR 76.7 0.52 1.20
BSS55AA  1/8 5.5 92 RSCR 55.8 0.28 1.65
BSE60AA  1/7 6.0 102 RSIR 85.0 0.58 1.20
BSM60AA  1/7 6.0 102 RSIR 75.6 0.55 1.35
BSR60AA  1/7 6.0 102 RSCR 65.8 0.35 1.55
BSE67AA  1/6 6.7 115 RSIR 95.8 0.60 1.20
BSS67AA  1/6 6.7 115 RSCR 69.7 0.34 1.65
BSE72AA  1/6 7.2 123 RSIR 102.5 0.67 1.20
BSF72AA  1/6 7.2 123 RSCR 79.4 0.48 1.55
BSE80AA  1/5 8.1 138 RSIR 106.2 0.8 1.30
BSM80AA  1/5 8.1 138 RSIR 98.6 0.74 1.40

S Series Compressor LBP R600a  

200-220V/50Hz
BSE35AT 1/12 3.5 52 RSIR 43.3 0.45 1.20
BSE60AT  1/7 6.0 102 RSIR 85.0 0.58 1.20
BSR60AT  1/7 6.0 102 RSCR 65.8 0.35 1.55

S Series Compressor LBP R134a  

220-240V/50Hz
GSE28AA 1/11 2.8 64 RSIR 57.0 0.5 1.20
GSE30AA 1/10 3.0 75 RSIR 66.0 0.51 1.20
GSE35AA 1/8 3.5 94 RSIR 83.0 0.68 1.20
GSM45AA  1/6 4.5 122 RSCR 91.0 0.55 1.35

Inverter Compressor

High Raliablity
Variable Speed
Very Compact Size
Low Noise & Vibration
Inverter Compressor R600a

 

220-240V 50/60Hz

Model
Displacement
Cooing Type
Motor Type
Speed
Cooling Capacity
Input Power
Rated Current
COP
Loading Quantity
VBE72A1
 
7.2
ST
BLDC
1200
55
29
0.25
1.89
2400PCS/20GP
 
 
1600
75
37
0.30
2.02
2400
108
56
0.44
1.93
3000
134
67
0.55
2.00
4500
180
100
0.76
1.80
BTF80FSL
 
8
ST
BLDC
1200
59
34.6
0.29
1.70
2400PCS/20GP
 
 
 
1600
81
43
0.35
1.87
2400
123
65
0.50
1.88
3000
142
79
0.60
1.80
4500
185
109
0.81
1.69