Gil-Bar Contributes to Major Energy Upgrade at Museum of the Moving Image

A major energy efficiency milestone has been reached in New York City, as the NYC Department of Citywide Administrative Services (DCAS) and the Museum of the Moving Image (MoMI) announced the completion of a multi-year infrastructure upgrade program totaling more than $7.5 million.

At the center of the latest phase is a $2.7 million HVAC modernization effort that involved replacing the old, oversized heating tanks, removing the second boiler plant, and installing an air-source heat pump. This project marks the latest milestone in DCAS and MoMI’s efforts to expand building electrification, transforming the museum into a greener, more energy-efficient facility while enhancing occupant comfort ahead of peak summer months.

Gil-Bar is proud to play a key role in this project by supplying the YORK chiller units that now serve as the backbone of the museum’s new infrastructure. The new chiller system is expected to deliver approximately $235,900 in annual energy savings while reducing emissions by roughly 400 metric tons of carbon dioxide equivalent, reinforcing New York City’s broader decarbonization goals.

YORK Chillers at MOMI

Pictured above: Completed rooftop chiller at the Museum of the Moving Image, in Astoria, Queens, New York (Credit: NYC DCAS)

The chiller replacement is part of a broader modernization strategy that also included upgrades to MoMI’s air handling systems, lighting, and building controls that collectively improve the operational efficiency and visitor experience.

City officials emphasized that projects like this demonstrate how cultural institutions can lead by example in sustainability. By investing in advanced HVAC technologies and electrification, MoMI is moving closer to reducing reliance on fossil fuels while maintaining a comfortable environment for its growing number of visitors.

For Gil-Bar, the project underscores the growing importance of high-performance HVAC systems in large-scale public infrastructure. As energy codes tighten and cities push toward carbon reduction targets, the role of efficient HVAC systems, particularly in high-occupancy cultural spaces, continues to expand.

Harnessing Earth’s Power: The Rise of Geothermal in Commerical Buildings

By Joe Kalina, Sales Engineer, Gil-Bar Industries

As the world grapples with the consequences of climate change, innovative solutions are emerging to reduce the environmental impact of traditional HVAC systems. One solution gaining serious momentum is geothermal heating and cooling. This approach taps into the Earth’s natural heat reservoirs, offering a sustainable and efficient alternative to conventional systems that continue to rely on fossil fuels.

New York City is turning to geothermal energy to tackle rising temperatures, reduce its carbon footprint, and meet carbon reduction goals set forth by the Climate Act. The development at 1 Java Street stands as one of the most visible examples of this shift in action. Enhanced drilling techniques, improved heat pump equipment, smarter controls, and a growing ecosystem of financial incentives have made commercial geothermal systems more accessible than ever.

How Commercial Geothermal Systems Work

The fundamental principle behind commercial geothermal systems is straightforward: rather than burning fuel to generate heat or using energy-intensive refrigeration cycles to create cooling, these systems move thermal energy that already exists in the ground. The Earth maintains a stable temperature below the frost line, typically between 50°F and 60°F year-round, regardless of what is happening at the surface.

The ground loop, a network of underground pipes circulating a water-based solution, connects the building to that stable thermal zone. In winter, the fluid absorbs heat from the surrounding earth. In summer, the process reverses and the system releases heat back into the ground. This seasonal flexibility is what makes geothermal heating and cooling so effective across all conditions.

Once the fluid returns from the ground loop, it passes through a heat exchanger inside the commercial geothermal heat pump, which concentrates that thermal energy and delivers it to the building’s distribution system. The efficiency of this process is measured by the coefficient of performance, or COP. A well-designed commercial geothermal heat pump can achieve a COP of 4.0 or higher, meaning it delivers four units of heating or cooling energy for every unit of electricity consumed, making it one of the most efficient heating and cooling technologies available today.

An additional advantage unique to commercial installations is the ability to provide simultaneous heating and cooling across different zones. Heat removed from one area can be redirected to warm another, rather than being rejected outdoors. This heat recovery capability significantly boosts system output without any additional energy input.

Why the Earth Is the Ideal Energy Source for Commercial Heating and Cooling

Most conventional HVAC systems fight against outdoor conditions, working hardest precisely when the weather is most extreme. Ground source heat pumps take a fundamentally different approach. Rather than exchanging heat with outdoor air that swings from scorching summer highs to bitter winter lows, these systems tap into the earth itself, where temperatures remain constant year-round regardless of what is happening at the surface.

This stability is not a coincidence. Heat radiating outward from the earth’s core, combined with solar energy absorbed by the ground during warmer months, creates a thermal reservoir just below the frost line that holds a remarkably steady temperature of 50°F to 60°F throughout the year. That constant temperature year-round is what allows geothermal systems to deliver highly efficient heating in January and reliable cooling in July without the performance penalty that outdoor-air systems experience during peak weather events.

The mechanism that connects a building to this underground thermal reservoir is a system of pipes called ground loops. These underground loops circulate a water-based solution that either draws warmth from the surrounding earth during cold months or rejects excess heat from the building back into the ground during warm months. Because the ground acts as both a heat source in winter and a heat sink in summer, the same infrastructure serves the full range of a building’s heating and cooling needs across every season.

Ground source heat pumps are recognized as one of the most effective forms of renewable energy available for building climate control, precisely because they do not generate heat through combustion. They simply move thermal energy that already exists naturally underground. This distinction is what allows them to deliver highly efficient heating and cooling output for a fraction of the electricity that conventional systems require, and it is a key reason they help reduce emissions compared to fossil fuel-based alternatives.

The underground loops themselves are low maintenance by design. Once installed, whether run through horizontal trenches beneath a parking lot or campus field, or drilled vertically into the earth below an urban building footprint, the buried piping infrastructure requires virtually no ongoing service. The loops absorb and release heat passively as fluid circulates through them, with no moving parts underground to wear out or replace. This durability is one of the most underappreciated advantages of geothermal technology, and one of the reasons more businesses across a wide range of sectors are choosing it as the foundation of their long-term HVAC strategy.

The system can also be modified depending on the specific demands of the building it serves. Capacity, loop configuration, and integration with indoor distribution equipment are all variables that can be adjusted to suit buildings of different sizes, uses, and site conditions, ensuring the system is optimized for optimal performance from day one and remains adaptable as a building’s needs evolve over time.

Ground Loop Design: The Foundation of Every Geothermal System

No matter how well-engineered the mechanical equipment inside a building may be, the entire system depends on a properly designed ground loop. For commercial geothermal, loop configuration is one of the most consequential design decisions on any project. System designers select a loop type based on available land, soil and geology conditions, project budget, and the building’s thermal load requirements.

Loop Type Installation Method Best Suited For Key Consideration
Horizontal Loops Trenched 4–6 feet deep Campuses, schools, government buildings Requires significant land area
Vertical Loops Drilled 150–400+ feet deep Urban areas, office parks, dense sites Higher drilling cost, smaller footprint
Pond/Lake Loops Coiled piping in a nearby body of water Sites with on-site water access Highly efficient but site-specific

Horizontal loops are cost-effective where land is plentiful, while vertical loops are the standard choice for urban areas and space-constrained commercial sites. In the New York and New Jersey market, vertical boreholes are by far the most common configuration.

One consideration that is often overlooked is long-term thermal balance. Buildings with heavily imbalanced heating and cooling loads can gradually degrade their own borefield performance over time. A properly balanced closed loop system, when correctly designed and installed, can perform reliably for 50 years or more with minimal maintenance to the buried infrastructure.

Distributed vs. Centralized: Choosing the Right System Design

Once the ground loop is determined, the next major decision is how heat pump equipment inside the building will be arranged. There are two primary approaches, each suited to different building types and operational priorities.

Characteristic Distributed System Centralized System
Heat Pump Configuration Multiple small units, one per zone Few large chillers in mechanical room
Zone Control Excellent individual zone control Flexible via VAV or fan coil systems
Redundancy High — unit failure affects one zone only Lower — central plant impacts whole building
Noise in Occupied Spaces Higher — compressors near occupants Lower — equipment isolated in mechanical room
Best Suited For Smaller buildings, schools, retrofit projects Large offices, healthcare, campuses
Overall Efficiency High Very high

Distributed systems work well for retrofit projects, allowing installation zone by zone without overhauling the entire mechanical infrastructure. Centralized systems are better suited to new construction and larger buildings, where a central plant can be optimized around the geothermal source from the outset. Hybrid approaches also exist, combining both configurations across different wings or floors of a single building.

Integrating Geothermal Heat Pumps with Modern HVAC Infrastructure

A geothermal system does not operate in isolation. In commercial buildings, geothermal heat pumps must connect seamlessly with the broader HVAC infrastructure to deliver consistent comfort and reliable controls. This integration is where engineering expertise matters most.

The two most common configurations are:

  • Water-to-air systems, which deliver conditioned air through ductwork and are well-suited to buildings with existing forced-air infrastructure
  • Water-to-water systems, which produce heated or chilled water that feeds into hydronic distribution systems including fan coil units, radiant floor heating, or air handlers

Modern commercial geothermal systems are also designed to integrate with building automation systems, allowing facility managers to monitor energy consumption and adjust zone setpoints from a central interface. Variable air volume systems can be paired with geothermal to modulate airflow based on real-time occupancy, further reducing energy consumption beyond what the geothermal source alone provides.

Where a full geothermal conversion is not feasible in a single phase, a hybrid geothermal heating and cooling system can be paired with a conventional backup. This allows the geothermal source to handle the majority of the annual load while the backup engages only during peak conditions, making it a practical bridge strategy for many retrofit projects.

Long-Term Cost Considerations for Commercial Buildings

Commercial geothermal systems carry higher upfront installation costs than conventional HVAC, often 30 to 50 percent more depending on site conditions. However, when evaluated over the full lifecycle of the building, the economics consistently favor geothermal for owners focused on long-term performance.

Cost Factor Conventional HVAC Commercial Geothermal
Upfront Installation Cost Lower 30–50% higher
Annual Energy Cost Higher 30–50% lower
Ground Loop Lifespan N/A 50+ years
Indoor Component Lifespan 15–20 years 20–25 years
Federal Tax Credit Available Limited Up to 30% (IRA)
Typical Payback Period N/A 5–10 years

Key financial advantages include:

  • Annual energy savings of 30 to 50 percent compared to conventional systems
  • Ground loop infrastructure lasting 50 or more years with minimal maintenance
  • Indoor components with a 20 to 25 year service life, comparable to or longer than conventional equipment
  • Federal tax credits of up to 30 percent of total system cost under the Inflation Reduction Act
  • Additional state and local utility rebates available in the New York and New Jersey market

For most qualifying commercial buildings, the payback period falls between five and ten years, after which the system continues to reduce operating costs for decades.

Common Design and Installation Pitfalls to Avoid

When commercial geothermal systems underperform, the cause is almost always traceable to avoidable mistakes made during the planning phase. The most common pitfalls include:

  • Borefield undersizing — A loop field that cannot keep pace with peak demand will cause the system to struggle during the hours it is needed most, eroding both comfort and energy efficiency gains
  • Poor HVAC coordination — The heat pump equipment, air handlers, piping, and controls must be engineered together as an integrated whole, not as separate design exercises
  • Neglecting long-term thermal balance — Buildings with imbalanced annual loads can gradually degrade borefield performance; supplemental equipment should be incorporated from the start where significant imbalance is anticipated
  • Inadequate maintenance access planning — Failing to plan for access to mechanical rooms, loop field manifolds, and control panels makes routine service more difficult and costly than it needs to be

Working with experienced system designers and a knowledgeable equipment partner from the earliest stages of a project is the most reliable way to avoid these issues.

Where Commercial Geothermal Excels: Building Types and Applications

Commercial geothermal performs best in buildings with consistent occupancy, meaningful heating and cooling loads, and owners focused on long-term cost control. The strongest candidates include:

  • K-12 schools and universities — Predictable schedules, large square footage, and long institutional ownership make the long-term savings case compelling
  • Government and municipal buildings — Long-term public ownership, energy mandates, and access to incentive programs support geothermal adoption
  • Healthcare facilities — Consistent around-the-clock climate control requirements and the redundancy advantages of distributed systems make geothermal a strong operational fit
  • Corporate campuses and office parks — Geothermal supports LEED certification, ESG reporting goals, and long-term asset value for corporate owners and developers

In the New York and New Jersey market specifically, the regulatory environment makes commercial geothermal particularly timely. New York City’s Climate Act sets aggressive carbon reduction targets for large commercial buildings, and geothermal represents one of the most effective tools available for meeting those targets. New construction projects have the clearest path to geothermal adoption, while retrofit applications are entirely feasible with the right engineering approach and are becoming increasingly common as building owners look to reduce exposure to rising energy costs.

Gil-Bar: Your Partner for Expert Guidance on Geothermal Energy

Designing and implementing a commercial geothermal system requires deep familiarity with both the geothermal source side and the HVAC systems it connects to. That is why the value of an experienced equipment partner is difficult to overstate, particularly in a market as demanding and regulation-driven as New York and New Jersey.

Gil-Bar brings decades of mechanical systems expertise to commercial geothermal projects across the New York metro area, working directly with consulting engineers, contractors, and building owners to support system design from early-stage equipment selection through commissioning. Whether a project calls for water-to-air heat pumps in a distributed configuration, water-to-water heat pump chillers for a centralized plant, dedicated outdoor air systems, or variable air volume components for the air-side distribution, Gil-Bar’s team provides the technical support needed to specify and select the right equipment for every application.

Gil-Bar’s sales engineers also help project teams navigate the incentive landscape, including federal tax credits under the Inflation Reduction Act and applicable state or utility rebate programs, to ensure the financial case for geothermal is as strong as it can be.

If you are exploring commercial geothermal for an upcoming project or looking to understand how geothermal energy fits into your building’s long-term energy strategy, Gil-Bar’s team is ready to help. Reach out to start the conversation.

Looking Ahead

Commercial geothermal systems are now a proven, scalable solution for building owners serious about long-term energy efficiency, reduced operating costs, and meeting the sustainability requirements that define today’s commercial real estate landscape. 

As technology advances, geothermal is poised to become a cornerstone of the green building revolution across the commercial sector. For those operating in the New York and New Jersey market, the regulatory environment, the available incentives, and the demonstrated success of projects like 1 Java Street all point in the same direction. Gil-Bar is here to help you get there. Let’s discuss your building’s potential.