Carrier 50VQP084-300 specifications A50-8486, Trap Condensate Drain

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a50-8486

Fig. 24 — Install Condensate Drain

Each unit must be installed with its own individual trap, vent and means to flush or blow out the condensate drain line. Do not install units with a common trap or vent. See Fig. 25.

Vent

*3/4" IPT

Trap Depth

Min 1.5"

1.5" [38mm]

[38mm]

3/4" PVC or

1/4" per foot

Copper by others

(21mm per m)

 

drain slope

NOTE: Trap should be deep enough to offset maximum unit static difference.

Fig. 25 — Trap Condensate Drain

Consider the following:

Units are typically installed directly above each other on successive floors with condensate drains located near the units.

Connect the unit condensate drain connection to the building condensate drain with a 1-in. (25 mm) drain line.

The horizontal run of a condensate hose is usually too short to cause drainage problems, however the horizontal run pitch of the condensate line should be at least 1 cm for every 50 cm of run in the direction of flow. Avoid low points and unpitched piping since dirt collects in low or level areas and may cause stoppage and overflow.

Install a condensate trap at each unit with the top of the trap positioned below the unit condensate drain connection.

Design the length of the trap (water-seal) based upon the amount of positive or negative pressure on the drain pan. As a rule, 25 mm of trap is required for each 10 Pa of negative pressure on the unit.

VENTING — A vent should be installed in the condensate line of any application which may allow dirt or air to collect in the line. Consider the following:

Always install a vent where an application requires a long horizontal run.

Always install a vent where large units are working against higher external static pressure and to allow proper drainage for multiple units connected to the same condensate main.

Be sure to support the line where anticipated sagging from the condensate or when “double trapping” may occur.

If condensate pump is present on unit, be sure drain con- nections have a check valve to prevent back flow of con- densate into other units.

Step 7 — Pipe Connections — Depending on the application, there are 3 types of WSHP piping systems to choose from: water loop, ground-water and ground loop. Refer to the Carrier System Design Manual for additional information.

All WSHP units utilize low temperature soldered female pipe thread fittings for water connections to prevent annealing and out-of-round leak problems which are typically associated with high temperature brazed connections. Refer to Table 1 for connection sizes. When making piping connections, consider the following:

A backup wrench must be used when making screw con- nections to unit to prevent internal damage to piping.

Insulation may be required on piping to avoid condensa- tion in the case where fluid in loop piping operates at temperatures below dew point of adjacent air.

Piping systems that contain steel pipes or fittings may be subject to galvanic corrosion. Dielectric fittings may be used to isolate the steel parts of the system to avoid galvanic corrosion.

WATER LOOP APPLICATIONS — Water loop applications usually include a number of units plumbed to a common pip- ing system. Maintenance to any of these units can introduce air into the piping system. Therefore, air elimination equipment comprises a major portion of the mechanical room plumbing.

The flow rate is usually set between 2.41 and 3.23 L/m per kW of cooling capacity. For proper maintenance and servicing, pressure-temperature (P/T) ports are necessary for temperature and flow verification.

In addition to complying with any applicable codes, consid- er the following for system piping:

Piping systems utilizing water temperatures below 10.0 C require 13 mm closed cell insulation on all piping

surfaces to eliminate condensation.

All plastic to metal threaded fittings should be avoided due to the potential to leak. Use a flange fitted substitute.

Teflon tape thread sealant is recommended to minimize internal fouling of the heat exchanger.

Use backup wrench. Do not overtighten connections.

Route piping to avoid service access areas to unit.

The piping system should be flushed prior to operation to remove dirt and foreign materials from the system.

GROUND-LOOP APPLICATIONS — Temperatures be- tween –3.9 and 43.3 C and a cooling capacity of 2.41 to

3.23L/s per kW are recommended. In addition to comply- ing with any applicable codes, consider the following for system piping:

Piping materials should be limited to only polyethylene fusion in the buried sections of the loop.

Galvanized or steel fittings should not be used at any time due to corrosion.

All plastic to metal threaded fittings should be avoided due to the potential to leak. Use a flange fitted substitute.

Do not overtighten connections.

Route piping to avoid service access areas to unit.

Pressure-temperature (P/T) plugs should be used to mea- sure flow of pressure drop.

GROUND-WATER APPLICATIONS — Typical ground- water piping is shown in Fig. 26. In addition to complying with any applicable codes, consider the following for sys- tem piping:

Install shut-off valves for servicing.

Install pressure-temperature plugs to measure flow and temperature.

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Contents Contents Safety ConsiderationsInstallation General442 50VQP Unit Physical Data406 78250VQP084-150 Unit Dimensions A50-843650VQP168-300 Unit Dimensions A50-8437A50-8467 A50-8466A50-8468 A50-8471 A50-8469A50-8470 A50-8472A50-8478 A50-8476A50-8477 A50-8479A50-8483 A50-8482A50-8485 A50-8484A50-8486 Trap Condensate DrainField Power Supply Wiring Water Quality Guidelines A50-8438 50VQP084-168 Unit with Complete C Control TypicalA50-8439 50VQP084-168 with Deluxe D Control TypicalJ6J5 AL1J1 J8 50VQP Unit Electrical Data Dual Point Power Unit 50VQP Unit Electrical Data Standard UnitA50- 6268tf.tif Field Control WiringPRE-START-UP A50-8441Page 50VQP084 Blower Performance Data 50VQP096 Blower Performance Data 441 478 513 549 581 614 644 672 703 730 759 412 455 492 526 563 595 628 658 687 718 745421 459 499 533 569 600 633 663 691 722 749 456 495 529 561 595 625 656 685 712 741 76750VQP120 Blower Performance Data 544 575 605 633 661 691 717 742 767 794 818 842 867 890 511 544 578 608 637 668 695 722 748 776 800 825 849 874 897526 561 592 621 649 679 706 732 758 785 809 833 857 882 555 589 618 646 676 702 728 753 779 803 827 850 875 89850VQP150 Blower Performance Data 605 637 666 697 727 755 783 809 835 858 882 905 928 951 973 581 613 646 678 706 735 763 791 817 842 867 889 912 935 958598 623 656 687 715 744 772 799 825 850 872 896 919 942 963 618 647 678 708 738 766 793 819 844 867 891 914 937 959 98050VQP168 Blower Performance Data 50VQP192 Blower Performance Data BkW 3020.8 Sheave/Mtr 50VQP240 Blower Performance Data 605 633 660 689 714 739 763 790 813 836 858 882 904 50VQP300 Blower Performance Data 568 602 633 666 697 726 755 782 806 832 857 881 904 538 574 609 640 673 703 733 761 788 812 838 863 888 912553 588 620 653 685 715 744 771 796 822 847 872 896 581 613 646 678 706 735 763 791 817 842 867 889Deluxe D Control Jumper Settings See Fig Complete C Control Jumper Settings See FigField Selectable Inputs START-UP DIP Switch Block S2 Accessory 1 Relay OptionsDIP Switch Block S2 Accessory 2 Relay Options Operating LimitsWater Temperature Change Through Heat Exchanger Unit Start-Up Cooling ModeUnit Start-Up Heating Mode 50VQP Unit Operating LimitsOperation Approximate Fluid Volume L Per 30 M of PipeAntifreeze Percentages by Volume Coaxial Water Pressure DropUnits with Aquazone Deluxe D Control Units with Aquazone Complete C ControlComplete C and Deluxe D Board System Test Complete C Control LED Code Fault Descriptions Service Aquazone Deluxe D Control LED IndicaRefrigerant Charging TroubleshootingAir Coil Fan Motor Removal A50-8163 FP1 and FP2 Thermistor LocationTroubleshooting Unit Does Not Operate Page Page Copyright 2010 Carrier Corporation Catalog No Form 50VQP-C1SI 11-10Book Catalog No 50VQP START-UP ChecklistII. START-UP Form 62AQ-1SI Pg CL-1 Replaces New TabHeating Cycle Analysis Cooling Cycle Analysis