Split System Models

All split systems require two refrigerant lines (an insulated copper suction line and a copper liquid line) between the evaporator and the condensing unit.

Two possible methods exist for installing the copper suction and liquid lines.

1.Using an optional Sweat Adapter Kit and hard piping between the two units.

2.Using optional pre-charged line sets (for 3-ton models only).

All refrigeration piping should be installed with high temperature brazed joints. Prevailing good refrigeration practices should be employed for piping supports, leak testing, evacuation, dehydration, and charging of the refrigeration circuits. The refrigeration piping should be isolated from the building by the use of vibration isolating supports.

It is important to handle the pre-charged lines for 3-ton units with care so they will not get kinked or damaged. Use tube benders and make all bends before making connections to either end. Coil any excess tubing in a horizontal plane with the slope of the tubing toward the condensing unit.

To prevent tube damage when sealing openings in walls and to reduce vibration transmission, use a soft flexible material to pack around the tubes.

When installing remote condensing units mounted above the evaporator, the suction gas line should be trapped at the evaporator. This trap will retain refrigerant oil in the Off cycle. When the unit starts, oil in the trap is carried up the vertical riser and returns to the compressor.

Refrigerant charge requirements: Total refrigerant charge will be required only if units are evacuated during installation or maintenance. Total refrigerant charge = evaporator + lines + condensing unit.

NOTE

All condensing units and 3-ton evaporator units are fully charged with refrigerant. All 5 ton evaporator units include a nitrogen holding charge only. See Table 21 for field charge required. If field-supplied refrigerant piping is installed, refrigerant must be added to the system.

Once all piping is complete, check for leaks and dehydrate the field piping as follows:

1.Pressurize the field piping to 150 PSIG (1034 kPa) using dry nitrogen with a trace of refrigerant. Check system for leaks with a suitable leak detector.

2.After completion of leak testing, release the test pressure (per local code) and pull a deep vacuum on the field piping with a suitable pump.

3.After 15 minutes, check the pressure readings and, if they have not changed, break vacuum with dry nitrogen. Pull a second vacuum to 250 microns or less. Recheck the pressure after 15 minutes.

Table 21 Unit refrigerant charge

 

R407C Charge

Model

 

lb (kg)

 

 

 

BF/BU 036E

0.5

(0.2)

 

 

 

BF/BU 035E

0.5

(0.2)

 

 

 

BF/BU 060E

0.8

(0.4)

 

 

 

BF/BU 059E

0.8

(0.4)

 

 

MC_40/39A

12.9 (5.8)

 

 

 

MC_65/64A

26.1

(11.8)

 

 

PF_042A-_L

12.9 (5.8)

 

 

PF_041A-_L

12.9 (5.8)

 

 

 

PF_Z42A-_L

25.8

(11.7)

 

 

 

PF_Z41A-_L

25.8

(11.7)

 

 

 

 

R407C Charge

Model

 

lb (kg)

 

 

 

PF_042A-_H

25.8

(11.7)

 

 

 

PF_041A-_H

25.8

(11.7)

 

 

 

PF_067A-_L

25.8

(11.7)

 

 

 

PF_066A-_L

25.8

(11.7)

 

 

 

PF_Z67A-_L

50.1

(22.7)

 

 

 

PF_Z66A-_L

50.1

(22.7)

 

 

 

PF_067A-_H

50.1

(22.7)

 

 

 

PF_066A-_H

50.1

(22.7)

 

 

 

MC_44/43W

3.4

(1.5)

 

 

 

MC_69/68W

5.9

(2.7)

 

 

 

59

Liebert® Challenger 3000

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Emerson 3000 installation manual Unit refrigerant charge, R407C Charge, Model Lb kg

3000 specifications

The Emerson 3000 is a cutting-edge control system designed to enhance the efficiency, reliability, and precision of industrial operations. Employed across various sectors such as oil and gas, pharmaceutical, food and beverage, and power generation, the Emerson 3000 has gained recognition for its robustness and versatility.

One of the main features of the Emerson 3000 is its advanced process control capability. With integrated control algorithms, it can optimize complex processes in real-time, resulting in significant improvements in production rates and reduced operational costs. The system's predictive analytics capabilities enable operators to anticipate equipment failures and maintenance needs, allowing for proactive management and minimizing downtime.

The Emerson 3000 features a modular architecture, providing flexibility for scaling and customization. Operators can easily tailor the system to fit specific application needs, whether it requires additional control loops or integration with other systems. This adaptability is particularly beneficial for facilities planning for future expansions or modifications.

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In summary, the Emerson 3000 represents a fusion of advanced process control, modular design, IoT connectivity, robust cybersecurity, and user-centric interface, making it an ideal choice for industries seeking to enhance their operational performance while adapting to ever-evolving technological landscapes.