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A horizontal fan coil unit is a room-side terminal in an HVAC system, often installed above a suspended ceiling where a “low profile” or “low-profile cabinet” label does not by itself prove installation fit. A workable horizontal fan coil unit project also proves the air duty, water pipe circuit, drain route, control sequence and service-removal path. Beyond that, it needs a proven ventilation boundary and acceptance records. This manual illustrates these requirements as they appear in the design basis, as well as throughout the process of ceiling coordination, commissioning, handover, and the replacement survey.
Project rule: treat the fan coil, ceiling, ducts, pipes, drain, power and controls as one interface package. The selected-unit instructions, adopted code and project specification remain the acceptance authorities.
- What must be fixed before design release?
- Can every service item move through the finished ceiling?
- Which trade owns each air, water, drain and control interface?
- What evidence permits ceiling closure and final acceptance?
- When is a replacement truly reusable, adaptable or a redesign?
What Changes When a Horizontal Fan Coil Is Installed Above a Ceiling?

Moving the service line out of the occupied space does not remove the service problem; the horizontal unit still needs an access route in place. The filter still needs to be able to slide out. The motor or blower assembly still needs a removal route. Valves, strainers, vents, electrical terminals and the drain connection must remain reachable after the grid, lights, sprinklers and cable trays are installed.
This distinction differentiates this field manual from product catalogs. If you want current product models, factory options or engineering data, please visit the horizontal fan coil unit model page. If you’re comparing how horizontal fan coil units work in a hotel, residential building or another indoor climate control application, the fan coil types and operating basics belong in the broader manual.
Those figures come from a Nailor horizontal fan-coil catalog and illustrate variation within that catalog family; labels such as “horizontal low-profile fan coil,” “horizontal high-performance fan coil” and “energy-efficient” still need a stated rating basis. A galvanized steel cabinet description and those figures are not Koven Air specifications or selection shortcuts. A Price Industries catalog reviewed for this manual lists units with 600 to 4,400 CFM airflow and 1.6 to 15 tons of capacity in a different product family. Therefore, a generic size can’t replace the selected operating point and its rating conditions.
A ceiling-concealed horizontal fan coil is an overhead service system. Cabinet fit is only one acceptance input; interfaces and removal paths decide whether the installation remains operable.
Freeze the 12-Field Horizontal FCU Design-Basis Record Before Coordination

A model number is too far along in the decision chain to carry the entire project. The design-basis record keeps three responsibilities separate: the designer’s calculation, the supplier’s selection and the installing trades’ field proof. “Freeze” means controlled for release: a later change requires a redline, named reviewer and a revised acceptance basis.
This isn’t the final asset record. NIBS COBie V3 separates product-type information from installed-component information. Serial number, final room, installation date and warranty start may not exist until implementation or handover, so they belong in the later packet.
| Field | Decision owner | Evidence at release | Reject the record when |
|---|---|---|---|
| 1. Zone load and mode | Mechanical designer | Sensible/total duty and heating duty at stated conditions | The load basis or occupied mode is absent |
| 2. Scheduled airflow | Designer | CFM or m³/h at the design mode | Only a nominal unit size is shown |
| 3. External static duty | Airside designer | Pa or in. w.g. with included components listed | The value is “free delivery” or its boundary is unknown |
| 4. Water design point | Hydronic designer | Entering/leaving temperature, flow and available pressure | Temperature or flow basis conflicts with the coil selection |
| 5. Circuit and coil | Designer/supplier | 2-pipe or 4-pipe duty, rows and connection schedule | Plant sequence and terminal circuit disagree |
| 6. Connection handing | Supplier/coordinator | View direction plus left/right pipe, drain and control-box locations | “Left hand” is written without a viewing convention |
| 7. Electrical supply | Electrical designer | Voltage, phase, frequency, protection and isolator location | Supply and selected motor/control package do not match |
| 8. Controls and points | Controls designer | Valve/fan sequence, sensor location, interlocks and point list | A thermostat symbol is the only control definition |
| 9. Sound and vibration | Acoustic/mechanical designer | Project criterion, rating basis, isolator and flexible-connection intent | “Quiet” appears without a criterion or operating point |
| 10. Cabinet and service route | Architect/coordinator | Selected-unit dimensions plus filter, blower, coil and valve access paths | The cabinet fits but a service item cannot move |
| 11. Condensate chain | Mechanical/plumbing trades | Pan outlet, trap or pump, fall, overflow response and termination | The downstream route or operating-pressure basis is missing |
| 12. Ventilation and filtration boundary | Mechanical designer | Recirculation, outdoor-air source, filter duty and room-pressure owner | The unit label is assumed to prove fresh-air compliance |
Worked record example: a designer might issue 5.0 kW sensible and 6.2 kW total cooling at 850 m³/h, with 7 °C entering and 12 °C leaving water, a documented external-static duty, 230 V single-phase power at 50 Hz, and measured 450 mm and 600 mm service-removal paths. Those figures only show what a complete unit record line looks like. They must be replaced with values from the project calculation, selected unit data and surveyed ceiling geometry. Thermal comfort and operating efficiency can’t be inferred from nominal capacity alone.
The design-basis record only refers to the commercial page when the project inputs are controlled. This keeps model and quotation content on the horizontal fan coil product page, while this guide keeps the coordination evidence.
Coordinate a Controlled Ceiling Baseline Before the Horizontal Unit Reaches Site

A reflected ceiling plan can be used to show a unit rectangle and conceal a failure. The useful drawing also includes a finished grid, the structural suspension, a transition duct, water valves, the fall of the drain, an electrical isolator, a control box, light fixtures, sprinkler branches, and a service route tied to actual tasks.
The Price Industries access guidance identifies the blower/motor assembly, coils, filters and the electrical enclosure as separate access needs. Price does not give one universal access-opening size for every access need. That’s the correct boundary: prove the selected tasks against the selected unit and ceiling assembly. A removable ceiling tile may form part of the route if the opening, grid, fire rating and component movement all work; however, the drawing must show it because it can’t be assumed.
For example, a 600 mm × 600 mm ceiling module may yield only a 520 mm clear opening after allowing for its frame, while a blower module may need a 480 mm removal envelope plus a 40 mm insulated pipe crossing. A 150 mm valve-service path can disappear when a light fitting moves. The decision comes from the selected component envelope and the measured free path, not the nominal tile size.
| Trade | Show on the controlled baseline | Field proof before change approval |
|---|---|---|
| Mechanical | Cabinet, transitions, flexible connections, valve package and drain route | Measured clearances and connection orientation |
| Architecture | Ceiling grid, removable zone, finishes and fire-rating boundary | Service items can pass without damaging permanent work |
| Structure | Independent support points and allowable anchors | Support location matches the approved load path |
| Electrical and controls | Isolator, cable route, control box, sensor and actuator reach | Safe access without removing unrelated services |
| Fire/plumbing coordination | Sprinklers, sleeves, fire stopping, drain termination and overflow response | No clash interrupts removal or gravity fall |
For duct and plenum calculations, use the site’s duct and plenum checker. For early concealed-format screening, use the concealed FCU pre-specification checks. If site conditions change, mark the actual obstruction, revise the route and return the affected fields for approval. A controlled baseline is useful because it can change visibly.
Verify HVAC Air, Water, Drain and Control Interfaces Before Release

The schedule may show access, but the release question is not “Does the schedule show capacity?” It is “Do the air, water, drain, electrical and control records describe the same installed operating mode?” One unresolved boundary can move the duty point or leave another trade holding an unowned task.
AAON defines external static pressure as the combined return-side and supply-side pressure reading on a manometer. Resistance from ducts and components affects airflow, sound and component load. That is why free-delivery airflow cannot serve as installed-airflow evidence.
| Interface | Required input | Evidence owner | Consequence if open |
|---|---|---|---|
| 1. Air volume | Design CFM or m³/h by mode | Designer | Coil and fan selection cannot be checked |
| 2. External static | Pa or in. w.g. at the unit boundary | Airside designer | Installed airflow remains unknown |
| 3. Filter duty | Class, clean/dirty pressure basis and removal direction | Designer/supplier | Fan duty and access may both change |
| 4. Supply path | Duct, plenum, terminal and balancing-device losses | Duct contractor/designer | Room delivery and sound path are unproven |
| 5. Return path | Ducted return or ceiling-plenum boundary and leakage control | Designer/architect | Pressure relationship can depart from selection |
| 6. Outdoor air | Separate or integrated source, quantity and interlock | Ventilation designer | Room ventilation has no named system owner |
| 7. Water temperature | Entering/leaving values for cooling and heating | Hydronic designer | Published coil duty may not apply |
| 8. Water flow and pressure | Flow, available differential and coil/valve loss | Hydronic designer | Valve authority and balancing remain unresolved |
| 9. Valve package | Valve type, fail position, strainer, vent, drain and isolation | Controls/hydronic teams | Sequence and physical space can conflict |
| 10. Condensate disposal | Pan, trap or pump, fall, cleanout, overflow and termination | Mechanical/plumbing teams | Water damage route remains open |
| 11. Insulation/vapor seal | Cold pipe, valve, duct and cabinet coverage at joints | Installer | Surface condensation can occur outside the pan |
| 12. Electrical protection | Supply, local isolation, protection and earth | Electrical team | Start-up and safe service are blocked |
| 13. Controls sequence | Fan speeds, valve command, sensor, alarm and BMS points | Controls team | A powered fan may still operate incorrectly |
| 14. Sound/vibration | Rated condition, project criterion, isolation and transmission path | Designer/installer | Occupied-room performance is unbounded |
Healthcare demonstrates the significance of ventilation requirements. When referencing fan-coil units, the CDC healthcare guidance assumes these units operate as recirculating systems and assigns outdoor air to a separate, filtered system. This example isn’t intended as a general code requirement, but rather as a suggestion to identify the outdoor air pathway for each project rather than assume it’s part of the fan coil unit.
The two-pipe vs four-pipe project check can be used to make the circuit selection. For sizing, use the hydronic load and water-side design guide. This keeps the interface-acceptance question in the foreground.
Use the 4-Witness Ceiling-Closure Proof Before Installation Is Hidden

The “4-Witness Ceiling-Closure Proof” is a project control method and not a code or industry standard. This method places a visible hold point for four failure paths which become costly after being hidden. The project specifications and the installation instructions for the specified unit determine the acceptance criteria.
- Witness support — record the approved anchors, independent suspension, cabinet level and isolation arrangement.
- Witness drainage — run the specified wet or operating test and observe the pan, outlet, trap or pump, fall, overflow response and termination.
- Witness insulation — inspect vapor-sealed continuity at pipes, valves, ducts, fittings and cabinet interfaces before they disappear.
- Witness removability — demonstrate the selected filter, blower or motor, coil/valve and electrical service paths through the finished ceiling geometry.
Published evidence demonstrates that “drain connected” is not enough as proof. A Consulting-Specifying Engineer case study reports a trap with H = 0, a flooded pan, an approximate $2,000 correction and a four-inch unit lift. These values are applicable to that specific case. Your trap geometry stems from the unit pressure condition, the manufacturer’s instructions, the adopted code and the project design.
A connected drain does not account for every moisture path. The EPA illustrates condensation on an uninsulated air-conditioning duct and links cold-surface condensation to warm, humid air. Examine the vapor seal on cold pipes, valves and ducts separately from the drain pan and sloped drain test.
| Hold point | Acceptable evidence | Stop condition |
|---|---|---|
| Support points | Approved anchors photographed and tagged | Support bears on ceiling grid or unrelated service |
| Cabinet attitude | Level/slope checked against selected IOM | Pan cannot drain as intended |
| Duct support | Duct is independently supported | Transition loads the cabinet |
| Filter route | Correct filter removed and reinserted | Grid, cable or pipe blocks travel |
| Blower/motor route | Service panel opens and removal envelope is marked | Permanent work blocks the path |
| Valve/control reach | Hands/tools reach isolation, vent, actuator and terminals | Unrelated services require removal |
| Pan/outlet | Clean pan and open outlet observed | Debris or misalignment remains |
| Trap/pump route | Approved geometry, cleanout and power/alarm where used | Operating-pressure basis is unknown |
| Wet test | Water clears without pan rise or joint leak | Standing water or leakage appears |
| Overflow response | Specified alarm, shutoff or safe discharge observed | No response owner is named |
| Insulation continuity | Joints, valves and penetrations are vapor sealed | Cold metal is exposed |
| Record closure | Photos, redlines, witnesses and exceptions are filed | Evidence exists only in chat or memory |
Commission the Fan Coil at the Installed Operating Point

Having a motor run confirms the motor received a command. It doesn’t confirm design airflow, water response, drainage, the sequence of valve operation, accuracy of the sensors or the behavior of the occupied space. The U.S. Department of Energy defines commissioning as a planning, documenting, scheduling, testing, adjusting, verifying and training process.
The test population is project-specific. As a project-specification example rather than a universal rule, section 3.7.A.3 of a reviewed federal commissioning specification permits a sample defined by the commissioning agent for identical, non-life-safety or noncritical equipment. If such testing fails repeatedly, the sample expands to the remaining units. Do not use that example as a standard or default. Document whether the project requires every unit, a defined sample or a risk-based sequence, along with the escalation rule.
A useful test line might state 24 °C return air, 14 °C supply air, 7 °C entering water, 12 °C leaving water, 230 V supply, 1.8 A running current, 720 rpm fan speed, 50% control command, a 25 mm drain connection, a 20 mm water connection, 40 mm insulation and a 45 min condensate observation. The numbers are illustrative. Their value is that they pin every reading to one operating mode and time window, so a failed retest can’t be hidden by mixing conditions.
| Record | Instrument or observation | Acceptance source | Population |
|---|---|---|---|
| 1. Fan and rotation | Visual/tachometer/current as specified | IOM and electrical schedule | Each or sample per plan |
| 2. Airflow | Approved traverse, hood or balancing method | Design air balance | Defined test set |
| 3. External static | Manometer at documented return/supply points | Selected fan curve and boundary | Representative configurations |
| 4. Water response | Flow/balance record and entering/leaving temperatures | Hydronic schedule | Per circuit or plan |
| 5. Condensate | Operating or approved wet test; pump/alarm where fitted | Drain design and IOM | Population set by the commissioning plan; record pre-closure drain proof where required |
| 6. Control sequence | Command/feedback, valve action, fan stages and alarms | Approved sequence and points list | Defined functional sample |
| 7. Sound/vibration | Observation plus specified measurement method | Project acoustic criterion | Worst/typical locations |
| 8. Exceptions/retest | Issue log, correction and repeated measurement | Commissioning plan | Expand after failure as specified |
CSE’s technical retro-commissioning guidance gives force to measurement points by requiring measurement of actual air and water flows, temperatures, and pressures, along with measurements of run times and inspection of ceiling void restrictions. Record the location of the probe, the operating mode, the instrument, and the acceptance reference. Without these four elements, the measurement is difficult to reconstruct, so “reliable” and “optimized performance” remain unsupported claims.
Build a Handover Packet That Keeps the Unit Serviceable

The design-basis record deliberately left a spot in the lifecycle record to be filled during handover. Product-type data records the selection and tells the owner what was selected. Component data tells the owner the specific asset, its location, and when its warranty clock began.
| Record | Minimum content | Owner check |
|---|---|---|
| Asset identity | Tag, model, serial and final space | Matches cabinet and drawing |
| Approved product record | Data sheet, options, connection handing and electrical package | Superseded submittals removed |
| As-built ceiling record | Coordinates, removable zone and service-route photos | Accessible without guesswork |
| Water and air balance | Final readings, locations, instruments and exceptions | Values trace to acceptance basis |
| Controls record | Sequence, points, setpoints, alarm logic and backups | Actual operation matches document |
| Maintenance record | Filter, pan, coil, motor/blower, valve and drain tasks | Task frequency comes from approved documents |
| Warranty and spares | Start date, contacts, exclusions and critical parts | Site team can open a traceable case |
| Training and open issues | Attendance, demonstrations, unresolved exceptions and owners | No issue disappears at practical completion |
Koven Air states that its service process starts with design and parameter verification, continues with pre-shipment testing and on-site installation and commissioning guidance, and includes lifetime technical guidance, warranty-period response and recurring training for contractors and engineers. These should be seen as first-party service assurances and the exact project description should be noted in the contract.
Troubleshoot from the Symptom to the Instrument

Finding the fault becomes costly when the assignment of symptoms to components occurs before measurement of operating conditions. Begin with the boundary that could create the symptom, then choose the first safe observation. The matrix below is meant to be a guide and shouldn’t be used as a substitute for the manufacturer’s instructions or a qualified technician.
| Symptom type | First safe check | Instrument/evidence | Do not assume |
|---|---|---|---|
| Low room airflow | Filter, grille, damper and fan command | Airflow method plus return/supply static | The motor is undersized |
| Low cooling capacity | Airflow and water availability at the same mode | Air/water temperatures, flow and valve command | The coil is defective |
| Pan overflow | Outlet, trap/pump, fall and operating pressure | Visual level, wet test and pressure reference | The drain only needs cleaning |
| Water below the unit | Separate pan leakage from surface condensation | Dry inspection, insulation/vapor-seal check and trace | Every drip came through the pan |
| Gurgling/knocking drain | Pressure sign, trap geometry and pump arrangement | Manometer and observed drain behavior | One trap detail fits every pressure condition |
| Short cycling | Command, feedback, sensor location and valve response | Trend log/current/time sequence | The thermostat is the only cause |
| Unexpected noise | Fan speed, static, panel, duct and structure paths | Operating mode plus specified acoustic method | Catalog sound equals room sound |
| Vibration | Support, isolation, fan condition and flexible links | Visual/approved vibration measurement | A new isolator alone will fix the path |
| Wrong heating/cooling response | Pipe circuit, valve position, sensor and plant mode | Point-to-point sequence and water temperatures | The unit received the intended water circuit |
- Record the operating mode before measuring.
- Use the instrument suited to the boundary.
- Compare readings with the approved acceptance source.
- Retest after one controlled change.
- Swap parts from a symptom alone.
- Mix readings from different fan or valve modes.
- Use forum advice as a universal dimension.
- Close an issue without a repeatable record.
Survey a Horizontal Fan Coil Replacement Before Calling It Like-for-Like

The replacement, even if it’s of nominally the same duty, may fail the tests of the ceiling route, pipe handing, drain elevation, electrical package, controls, and fan duty. Survey the installed condition prior to accepting a description of the purchase as “same as existing.”
The Boston Medical Center case reported by ACHR News included 84 fan coils: 68 vertical units, 10 horizontal units and 6 vertical hideaway units. The project also dealt with occupied-building phasing, sound, water pressure drop, special coil circuitry, piping and control extensions, warehousing and off-unit piping prefabrication. The main point of this case is that the challenges of field execution must be captured in the field replacement document.
| Survey field | Reuse | Adapt | Redesign trigger |
|---|---|---|---|
| Duty point | Measured demand and selected duty align | Documented fan/coil change | Load or system basis is unknown |
| Cabinet route | Unit and service items pass | Reversible finish work is approved | Permanent structure blocks movement |
| Support | Loads and points are verified | Engineered support alteration | Existing load path cannot be verified |
| Connections | Handing and sizes align | Approved spool/valve change | Drain or isolation becomes inaccessible |
| Air system | Measured resistance fits fan capability | Documented duct/terminal change | Required airflow cannot be proven |
| Electrical | Supply/protection match | Designed circuit modification | Unsafe or unavailable supply |
| Controls | Sequence and points map directly | Documented interface conversion | Required sequence cannot be implemented |
| Drainage | Elevation and route are proven | Approved trap/pump/route change | No safe termination or overflow response |
| Occupied work | Access and shutdown window fit | Phased/prefabricated method agreed | Safety or critical operation cannot be maintained |
If the body style itself is the problem, compare other fan coil configurations rather than forcing a nominally similar horizontal cabinet or vertical cabinet into the existing constraint.
Send a Project-Ready Horizontal Fan Coil Unit Request

A supplier can verify more when the request carries the design basis and site boundary. Fill in the following fields in the quote request. “Recommended range” means the project’s verified value or allowed envelope, not a generic default.
RFQ checklist — copy these into your quote request:
| Parameter | Recommended range | Why it matters | How to verify |
|---|---|---|---|
| Air duty | Project CFM or m³/h by mode | Sets fan and coil operating point | Load schedule and airside calculation |
| External static | Project Pa or in. w.g. boundary | Connects fan capability to installed resistance | Duct/plenum/terminal loss schedule |
| Water duty | Project °C, L/s or gpm and kPa | Defines coil and valve selection | Hydronic calculation and plant schedule |
| Pipe circuit | 2-pipe or 4-pipe project arrangement | Changes coils, valves and sequence | System diagram and controls narrative |
| Electrical | Project V/phase/Hz and protection | Defines motor and control package | Electrical schedule |
| Ceiling/service envelope | Measured mm or in. paths | Prevents a cabinet-only fit decision | Coordinated drawing and removal demonstration |
| Drain/insulation | Surveyed elevation, pressure condition and termination | Controls pan drainage and surface condensation risk | Drain sketch, IOM and closure witness |
| Controls/sound | Approved points, sequence and acoustic criterion | Defines occupied operation | Controls matrix and project specification |
Koven Air reports a 20,000 m² factory, 18 standardized production processes, 23 sheet-metal precision-machining processes, 400 manufacturing-process traceability points, 36 factory inspections and a 24-hour aging test. These are first-party manufacturing statements and can’t take the place of a project-specific submittal and witness plan.
Koven Air states that it was founded in 2007, began international brand development and exports in 2010, and has equipment operating in 35 countries. The stated application range includes hospitals, offices, industrial parks, agriculture, transportation, electronics, automobiles, semiconductors and data centers. Each scope is defined by its own specific needs for ventilation, sound, redundancy, cleanliness and service accessibility.
After the record is complete, use the KAFP selector as the model-selection handoff, or send the verified duty point to Koven Air.
Have a coordinated duty point and ceiling record?
Share the air, water, electrical, controls, drainage and service-envelope inputs for a project-specific review that checks the application, occupant needs, indoor conditions, heating and cooling duty, air pressure, sound levels, installation time, energy efficiency and contract alignment before configuration release.
Horizontal Fan Coil Unit FAQs

What is a horizontal fan coil unit?
Answer
A horizontal fan coil unit is a room-side HVAC terminal arranged for horizontal mounting, often above a suspended ceiling. A fan moves air across a water coil for cooling, heating or both. The unit may connect to ducts or a plenum, but its name alone doesn’t define outdoor-air delivery, filtration, available external static, controls or service access.
How much does it cost to replace a fan coil unit?
Answer
A credible replacement price needs more than the old model number. The quote should include duty, cabinet and removal route, pipe handing, drain elevation, electrical supply, controls conversion, access reinstatement, testing, occupied-work constraints and disposal. Without those inputs, a low equipment price can hide field adaptation and ceiling work. Ask suppliers to separate equipment, accessories, installation support and commissioning scope.
Does a horizontal fan coil unit need ductwork?
Answer
Some horizontal fan coils serve supply and return ducts; others use a short supply connection with a ceiling-plenum return. The selected arrangement determines the fan’s external-static duty, leakage boundary, sound path, filter location and access plan. Confirm the project configuration, fan curve and pressure boundary rather than assuming every horizontal unit is fully ducted or suitable for the same duct resistance.
Why does a horizontal fan coil unit leak water?
Answer
Trace the source of the water first: the drain, pump, pan, a pipe joint or cold-surface condensation.
What measurements prove a fan coil unit has been commissioned?
Answer
The packet should identify the operating mode, airflow method, external-static test points, water temperatures and flow/balance evidence, valve and fan sequence, condensate response, electrical observations, sound/vibration check, instrument details, acceptance source and retest status. It should also name the drawing revision, selected model, room, test date, responsible witness, calibrated instruments, unresolved exception and required retest. The commissioning plan decides whether every unit or a defined sample receives each functional test. When a sampled unit fails, follow the project’s escalation rule rather than quietly treating the rest as accepted. A fan-start check by itself doesn’t establish installed performance.
Do horizontal fan coil units use refrigerant?
Answer
Many fan coil units use chilled or hot water at the terminal, while refrigerant remains in the central chiller or heat-pump circuit. Some products marketed with similar room-unit language are direct-expansion terminals that do carry refrigerant. Verify the coil medium, pipe schedule and plant connection on the selected product rather than relying on the family name.
References & Sources
- AHRI 440/441, Performance Rating of Room Fan-Coil Units
- ASHRAE commissioning resources and Standard 202-2024
- U.S. Department of Energy, Enhancing Performance Contracts with Monitoring-Based Commissioning
- Federal Green Construction Guide, Commissioning specification
- CDC, Environmental Infection Control: Air
- U.S. EPA, Moisture, humidity and HVAC condensation guidance
- NIBS, COBie V3
- NASA UFGS 23 82 19.00 40, Fan Coil Units
- Consulting-Specifying Engineer, Cooling coil condensate system design
- Consulting-Specifying Engineer, Technical retro-commissioning
- ACHR News, Boston Medical Center fan-coil retrofit case
- Price Industries, Space requirements for fan-coil installations
- AAON, Static pressure and HVAC performance
- Chiltrix, Hydronic fan-coil installation instructions
A dependable handover does not claim that the unit works. It shows which operating mode was tested, what was measured, which acceptance source governed the result and how the ceiling still permits service.
Written by Karry for Koven Air Environment Technology Co., Ltd. This article includes first-party technology and factory statements provided by Koven Air. Project selection criteria must be checked against the selected equipment, local requirements and contract documents.
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