What sets Vilter industrial heat pumps apart
Proven industrial technology, application expertise and the industry’s broadest portfolio help take the uncertainty out of heat pump projects and deliver reliable performance for demanding industrial applications.

Durability for demanding markets
Built on decades of industrial compression experience, Vilter heat pumps are engineered for long-term, continuous-duty operation in demanding environments.
Optimized temperature lift
Vilter high-temperature heat pumps are designed to efficiently elevate available heat to required temperatures, helping maximize system performance and reduce operating costs.
Flexible operation
Our experts help design systems to accommodate varying loads and temperature requirements help maintain efficient performance as operating conditions change.
High capacity. Compact footprint.
Deliver substantial heating capacity through robust system architectures built to simplify integration while supporting consistent performance.
Experience-driven engineering support
Vilter works with customers to understand application requirements, model system performance and identify the right solution, helping build confidence in project feasibility, ROI and long-term performance.
One VQ platform. Every industrial heat application.
From lower-temperature applications to high-temperature process heat and steam, the Vilter VQ Series provides the broadest range of industrial heat pump solutions designed around different capacity, temperature and operational requirements. With single screw and reciprocating compression technologies, the portfolio gives customers greater flexibility to match the right solution to the application while optimizing efficiency, reliability and total cost of ownership.
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| Product Name | VQ95 | VQ145 | VQ180 |
| Heating Range | 1 to 7 MW | 1 to 3 MW | 0.3 to 2.5 MW |
| Liquid Sink Max | 95° C | 145° C | 180° C |
| Steam Sink Max | n/a | 117°C (1.8 barA) | 8.9 to (9 barA) |
| Liquid Source Range | -10 to 50° C | 45 to 90° C | 5 to 150° C |
| Max Temperature Lift | 85 K | 110 K | 80 K (single stage) |
| Stage Compression | Single | Single | Single or Two |
| Compressor Type | Single screw | Single screw | Reciprocating |
| Part Load | 20% | 50% | 33% |
| Refrigerant | Ammonia (NH3) | Ammonia (NH3) | HC or HFO |
| System PS | 60 bar | 120 bar | 35 bar |
Why choose Vilter for industrial heating applications?
Vilter brings together proven industrial compression technology, application expertise and lifecycle support to help customers move from evaluating heat pumps to implementing the right solution with greater confidence.
Key differentiators:
Industrial heritage and reliability
Vilter brings decades of industrial compression experience to heat pump applications, with technologies engineered for demanding, continuous-duty operation where reliability and uptime are critical.
Proven industrial heating experience
Experience across 170+ industrial heating projects, more than 11 million operating hours and over 10,000 compressors provides a proven foundation for solving complex industrial heating challenges.
Global scale
Backed by Copeland, Vilter provides engineering, application and support resources across more than 60 countries, combining specialized industrial expertise with global reach.
Lifecycle partnership
Vilter supports customers beyond equipment selection, with expertise spanning system design, installation and startup through training, service, genuine OEM parts and long-term operation.
Technical expertise
Every heat pump application is different. Vilter works with customers to define system requirements, evaluate real application data and model performance to identify a solution tailored to temperature, capacity and operational requirements.
The result is a more confidence-driven path to industrial electrification, with heat pump solutions designed to deliver sustainable performance without compromising productivity or profitability. Fill out the below to start the conversation with Vilter experts.

Industry-leading single screw compression
The VQ95 and VQ145 industrial heat pumps are built around Vilter single screw compression technology, proven in demanding industrial applications where uptime, efficiency and long equipment life matter.
- Balanced axial and radial loading helps reduce bearing wear and support long-term reliability.
- Parallex™ slides provide precise capacity and volume-ratio control for efficient operation across changing conditions.
- Liquid tolerance helps eliminate the need for superheat, supporting higher system efficiency and COP.
- A simple, serviceable design helps streamline maintenance and support long equipment life.
- Proven heat pump experience demonstrates consistent performance in continuous-duty applications.

Best-in-class reciprocating compression
The VQ180 extends Vilter heat pump capabilities into demanding high-temperature applications, using reciprocating compression technology engineered to deliver hot water temperatures up to 180°C and steam temperatures up to 175°C.
Designed to optimize temperature lift and system efficiency, the VQ180 delivers best-in-class COP to help customers recover more useful heat, reduce energy consumption and lower the carbon intensity of industrial heating.
- Optimized temperature lift supports high-efficiency performance at demanding process temperatures.
- Rugged construction supports continuous-duty operation as well as frequent start/stop applications.
- Cylinder unloading provides efficient capacity control and improved part-load performance.
- Serviceable architecture supports planned maintenance and long equipment life.
A successful heat pump project extends well beyond equipment selection. Vilter supports customers throughout the system lifecycle with OEM expertise, genuine parts, training and service designed to protect uptime, maintain performance and maximize long-term equipment value.

Protect compressor performance with genuine OEM replacement parts engineered and tested for Vilter equipment.

Restore compressor performance, extend equipment life and support long-term reliability with factory-tested and certified remanufacturing.

Build operator and technician expertise through hands-on instruction in compressor operation, maintenance and troubleshooting.

Access Vilter expertise by phone or in the field for startup assistance, diagnostics, troubleshooting and system optimization.
FAQs about Vilter industrial heat pumps
What is a high-temperature industrial heat pump?
A high-temperature industrial heat pump captures heat from an available source, such as industrial waste heat, and elevates it to a temperature that can be reused for industrial processes or heating applications. Unlike conventional heat pumps designed for lower-temperature applications, high-temperature systems are engineered to deliver the temperatures and operating conditions required by industrial facilities.
By recovering energy that might otherwise be wasted, industrial heat pumps can reduce fossil fuel consumption, improve overall energy efficiency and lower CO₂ emissions while continuing to provide the heat required for production.
Vilter offers industrial heat pump solutions designed for demanding applications where high temperatures, efficiency and continuous-duty performance are critical.
How do high-temperature industrial heat pumps work?
High-temperature industrial heat pumps use a thermodynamic cycle to capture heat from a lower-temperature source and raise it to a higher, usable temperature. In industrial applications, that heat source may include process waste heat, cooling systems or other available energy streams within the facility.
The compressor is central to this process, increasing the pressure and temperature of the refrigerant so the recovered energy can be delivered at the temperature required by the application. Industrial systems use refrigerants, compressors and other components specifically designed to operate reliably at higher temperatures and pressures.
Vilter application experts help customers evaluate the heat source, required output temperature and operating conditions to identify the right industrial heat pump technology for the application.
Why is industrial heat pump adoption accelerating?
Industrial heat pumps are moving from evaluation to implementation as companies look for practical ways to reduce energy costs, electrify industrial heating and make progress toward decarbonization goals without compromising production.
Several factors are accelerating adoption, including rising and volatile energy costs, corporate carbon-reduction commitments, industrial electrification initiatives, increased focus on recovering and reusing waste heat, and incentives or funding programs that can improve project economics. At the same time, advances in high-temperature heat pump technology are expanding the range of industrial processes that can be addressed.
For companies evaluating this transition, Vilter brings industrial compression expertise, a broad heat pump portfolio and application-driven engineering support to help identify where heat pumps can deliver the strongest operational, financial and sustainability value.
How do industrial heat pumps expedite the energy transition?
Industrial facilities often reject significant amounts of usable heat while relying on fossil fuels to generate heat elsewhere in the same operation. Industrial heat pumps can change that equation by recovering available energy, elevating it to a useful temperature and returning it to the process.
This approach can reduce dependence on fossil fuels and associated greenhouse gas emissions while improving overall energy efficiency. Heat pumps can also support greater industrial electrification, take advantage of electricity generated from renewable sources, recover surplus process heat and, in appropriate applications, provide heating and cooling simultaneously.
For operators, the opportunity is not simply to use a different heating technology. It is to make better use of energy already available within the operation. Vilter helps customers evaluate those opportunities and develop industrial heat pump solutions designed to advance decarbonization without compromising production performance.
What are the main industrial heating methods?
Industrial process heating is commonly achieved using fossil fuel boilers, electric resistance heating, steam systems and industrial heat pumps. While each has its place, industrial heat pumps stand out by capturing and upgrading existing thermal energy rather than generating heat through combustion. The result is significantly greater efficiency, lower operating costs and reduced carbon emissions.
- Fossil fuel boilers – Proven technology with fuel costs and direct emissions
- Electric resistance heating – Simple design but limited to a COP of approximately 1.0
- Steam systems – Effective but often energy-intensive
- Industrial heat pumps – Deliver three to six units of heat for every unit of electricity consumed
What temperatures can industrial heat pumps reach?
Industrial heat pumps can deliver process heat across a wide range of operating temperatures. Vilter VQ Series heat pumps are engineered to supply hot water between 60°C and 180°C, covering many industrial heating applications, including:
- Pasteurization
- Sterilization
- Drying
- Evaporation
- Process washing
- Industrial space and water heating
For applications requiring higher temperatures, Vilter application engineers can evaluate alternative system configurations.
How do you design a high-temperature heat pump system?
Every industrial heating application is different. Vilter engineers begin by evaluating your application requirements, available heat sources, operating temperatures and site conditions to configure the right solution.
Typical design considerations include:
- Required process temperature
- Available waste heat or other heat source
- Required heating capacity
- Refrigerant selection
- Heat exchanger sizing
- Site layout and operating conditions
The result is a system configured to maximize efficiency, reliability and long-term operating performance.
How quickly can an industrial heat pump pay for itself?
Payback depends on factors including energy prices, operating hours, available incentives and the equipment being replaced. Many industrial facilities realize payback within several years through lower energy consumption, reduced maintenance costs and improved operating efficiency.
Vilter application engineers can provide a site-specific lifecycle cost analysis to estimate expected savings and return on investment.
Which industrial processes are the best fit for a heat pump?
Industrial heat pumps are best suited for applications requiring consistent heating between 60°C and 180°C, particularly when waste heat can be recovered and reused.
Common applications include:
- Food and beverage processing
- Pulp and paper
- Chemical processing
- Automotive manufacturing
- Metal processing
Vilter application engineers can help determine whether your process is a good candidate for heat pump technology.
What compressor technologies does Vilter offer for heat pumps?
Vilter industrial heat pumps utilize proven compressor technologies selected to match application requirements. Depending on the system, Vilter offers both single-screw and reciprocating compressors, delivering reliable performance, high efficiency and long equipment life.
Benefits include:
- Proven industrial reliability
- Excellent part-load efficiency
- Reduced vibration
- Wide operating flexibility
- Long service life
Do Vilter heat pumps use water, thermal, oil or steam?
Vilter VQ Series industrial heat pumps can support water heating, thermal oil heating, and steam generation, depending on the required temperature and the selected model.
VQ95 is ideal for hot water heating up to 95°C. Water-based systems typically provide the simplest installation and operation, although the VQ95 can also be configured for other heat transfer media upon request.
VQ145 can provide hot water or thermal oil heating up to 145°C. It can also facilitate steam generation up to 117°C (1.8 barA). For steam applications, additional equipment is required to manage the expansion and flashing of the hot pressurized water used to generate steam.
VQ180 offers the greatest flexibility and can be configured for liquid heating of either water or thermal oil up to 180°C, or for direct steam generation up to 175°C (8.9 barA), making it suitable for a wide range of high-temperature industrial process applications.
In short, the VQ Series industrial heat pumps can do it all. Whether your process requires hot water, thermal oil, or steam, Vilter offers a solution tailored to the temperature, pressure, and integration requirements of your application.
Will a Vilter heat pump fit within my space?
Yes. Vilter VQ series of high-temperature heat pumps are designed for compact installation in industrial facilities. Modular skid-mounted construction simplifies installation, minimizes site work and makes it easier to integrate into existing plants.
During the quotation phase, Vilter provides detailed layout drawings to confirm system fit before installation begins.
What aftermarket services do Vilter offer for heat pumps?
Vilter supports your equipment throughout its lifecycle with comprehensive aftermarket services, including:
- Genuine OEM Parts
- Factory remanufacturing
- Preventive maintenance
- Technical training
- Service and technical support
These services help maximize uptime, extend equipment life and keep your system operating at peak performance.
What is the total cost of ownership (TCO) for Vilter heat pumps?
The total cost of ownership includes the purchase price, installation, energy consumption, maintenance and operating costs over the life of the equipment.
Because industrial heat pumps use significantly less energy than traditional heating systems, many facilities realize lower lifecycle costs while also reducing emissions and regulatory risk. Vilter application engineers can provide a customized lifecycle cost analysis for your operation.
What are the main components in Vilter heat pumps?
The Vilter VQ series of high-temperature heat pump combines a proven single-screw compressor, plate heat exchangers, controls and supporting components into a compact skid-mounted package designed for reliable industrial operation.
Core components include:
- Single-screw and reciprocating compressors: At the heart of the Vilter VQ series of high-temperature heat pumps, these proven compressor technologies drive the refrigeration cycle while delivering reliable performance, high efficiency and application-specific flexibility.
- Evaporator (plate heat exchanger): Extracts heat from the source fluid and transfers it to the refrigerant
- Condenser (plate heat exchanger): Releases heat from the refrigerant to the process water circuit
- Expansion valve: Reduces refrigerant pressure between condenser and evaporator, controlling the thermodynamic cycle
- Electric motor and drive: Powers the compressor, with variable speed drive (VSD) enabling capacity modulation and efficiency optimization
- Controls platform: Monitors and manages system operation, COP, alarms and remote connectivity
- Skid frame: Pre-assembled structural base integrating all components for simplified site installation
All components are specified to meet the demands of continuous industrial operation and are supported by Vilter's global spare parts network.
Why is the choice of refrigerant an important decision?
Refrigerant selection determines the heat pump's efficiency, operating temperature range, environmental impact and long-term regulatory compliance. Refrigerant selection affects system efficiency, operating temperature, environmental impact and long-term operating costs.
Key reasons refrigerant choice matters:
- Efficiency: Different refrigerants carry different thermodynamic properties that directly affect achievable COP at your specific operating temperatures
- Temperature capability: The refrigerant must remain stable and efficient across your required evaporating and condensing temperature range
- Environmental impact: Global Warming Potential (GWP) determines regulatory exposure as EU F-Gas regulations tighten
- Long-term availability: Synthetic high-GWP refrigerants face accelerating phase-down schedules, creating supply and cost risk
- Safety classification: Refrigerants carry flammability and toxicity classifications that affect site permitting and handling requirements
Vilter VQ series of high-temperature heat pumps use ammonia (NH3), CO₂ (R744), hydrocarbons and hydrofluorocarbons refrigerants, delivering best-in-class thermodynamic performance for industrial process heating.
What is the difference between natural- and synthetic refrigerants?
Natural refrigerants occur in nature and have not been chemically engineered. Synthetic refrigerants are manufactured compounds, typically hydrofluorocarbons (HFCs) or hydrofluoroolefins (HFOs), developed as alternatives to ozone-depleting substances. The distinction has significant implications for environmental compliance and long-term regulatory risk.
| Characteristic | Natural refrigerants | Synthetic refrigerants |
|---|---|---|
Examples | Ammonia (NH3), CO2 (R744), propane (R290) | R134a, R410A, R32, R1234yf |
Global Warming Potential | Zero to near-zero | Low to very high |
EU regulatory outlook | Preferred and incentivized | Subject to F-Gas phase-down |
Thermodynamic efficiency | Excellent for industrial ranges | Variable |
Long-term supply security | High | Decreasing for high-GWP variants |
Vilter VQ series of high-temperature heat pumps use ammonia, CO₂ (R744), hydrocarbons and hydrofluorocarbons refrigerants. Choosing natural refrigerants today eliminates the risk of future refrigerant phase-outs disrupting your operations.
How is my plant safety impacted by installation of ammonia heat pumps?
Installing a Vilter VQ series heat pump using ammonia refrigerant requires a structured safety assessment, but with proper engineering and compliance measures, plant safety is fully manageable and well understood across European industrial facilities. Ammonia has been safely used in industrial refrigeration for over 150 years.
Safety considerations and mitigations include:
- Ammonia detection: Fixed gas detection systems with audible and visual alarms are standard practice and required by EU safety regulations
- Ventilation design: Adequate mechanical ventilation in the plant room ensures safe dispersal of any minor leak
- Pressure relief systems: Properly sized relief valves and emergency systems are integrated into VQ Series skid designs
- Operator training: Vilter provides comprehensive training on safe ammonia handling, emergency procedures and routine maintenance protocols
- Regulatory compliance: Systems are designed to comply with EN 378, the Pressure Equipment Directive (PED) and relevant ATEX requirements where applicable
- Minimal charge volume: The compact VQ Series design minimizes refrigerant charge, reducing overall risk inventory
Our Vilter engineers work with your team to help select and apply the right heat pump solution for your facility, taking into account refrigerant requirements, equipment location, ventilation, ammonia detection and applicable safety standards. With proven industrial heat pump technology and built-in safety considerations, Vilter can help you integrate a solution that supports your performance and decarbonization goals while maintaining plant safety.
How is my plant safety impacted by the installation of flammable refrigerants (HC) heat pumps?
Installing a Vilter VQ series heat pump using flammable refrigerants (HC) requires a structured safety assessment, but with proper engineering and compliance measures, plant safety is fully manageable and well understood across European industrial facilities.
Safety considerations and mitigations include:
- Gas detection: Appropriate refrigerant detection systems provide early warning of a leak, allowing ventilation, alarms or other safety measures to be activated as required.
- Ventilation design: Adequate mechanical ventilation in the plant room ensures safe dispersal of any minor leak
- Pressure relief systems: Properly sized relief valves and emergency systems are integrated into VQ Series skid designs
- Operator training: Vilter provides comprehensive training on safe refrigerant handling, emergency procedures and routine maintenance protocols
- Regulatory compliance: Systems are designed to comply with EN 378, the Pressure Equipment Directive (PED) and relevant ATEX requirements where applicable
- Minimal charge volume: The compact VQ Series design minimizes refrigerant charge, reducing overall risk inventory
Our Vilter engineers work with your team to help select and apply the right heat pump solution for your facility, taking into account refrigerant requirements, equipment location, ventilation, gas detection and applicable safety standards. With proven industrial heat pump technology and built-in safety considerations, Vilter can help you integrate a solution that supports your performance and decarbonization goals while maintaining plant safety.
How much power is required for industrial heat pumps?
Electrical requirements depend on system capacity, operating conditions and desired efficiency. Vilter application engineers provide complete electrical load information during system design to support facility planning.
For practical reference:
- A 1,000 kW heat pump operating at a COP of 4.0 requires approximately 250 kW of electrical input
- A 3,000 kW system at COP 5.0 requires approximately 600 kW of electrical input
Key electrical supply considerations include:
- Supply voltage: Vilter VQ Series units are configured for standard European industrial supply voltages (typically 400V or 690V, 3-phase, 50 Hz)
- Soft-start or variable speed drive: VSD integration reduces peak inrush current and enables capacity modulation, reducing grid impact
- Power quality: Stable supply voltage improves compressor motor performance and longevity
- Grid connection capacity: Existing electrical infrastructure should be assessed during the system design phase to confirm adequate capacity
Vilter engineers provide full electrical load data during the specification process to support site electrical planning.
What does Vilter need to know to configure a heat pump for me?
To develop an accurate VQ Series heat pump configuration, Vilter's engineering team requires a defined set of process and site parameters. Providing complete and precise data at the outset enables faster, more accurate system sizing and avoids costly redesign during project execution.
Required information includes:
- Process heat demand: Total thermal load in kW and the load profile over time (steady-state or variable)
- Process delivery temperature: The temperature at which heat must be supplied to your process
- Heat source details: Type of source (waste heat stream, cooling water, ambient air), available temperature and flow rate
- Site location: Geographic location to assess ambient conditions and regulatory context
- Available utilities: Electrical supply capacity, voltage, water supply and drainage
- Space constraints: Available floor area, ceiling height and any equipment access restrictions
- Operating hours: Annual hours of operation and any seasonal variation in load or source conditions
- Refrigerant preferences: Any site-specific constraints on refrigerant type
With this data, Vilter engineers can deliver a full system configuration, COP estimate, dimensional drawing and lifecycle cost analysis.
What does source and sink mean when talking about industrial heat pumps?
In heat pump terminology, the "source" is the low-temperature medium from which the system extracts heat, and the "sink" is the higher-temperature medium to which heat is delivered. Understanding this relationship is fundamental to system design and performance optimization.
Applied to the Vilter VQ Series:
- Source examples: Industrial waste heat streams, process cooling water, groundwater or air. A higher source temperature reduces compressor workload and improves COP.
- Sink examples: Process hot water circuits, space heating systems or any industrial process requiring heat at 60 °C to 180°C. A lower sink temperature requirement reduces the temperature lift the compressor must achieve.
The temperature difference between source and sink is called the "temperature lift." Minimizing this lift is the single most effective lever for maximizing COP and reducing operating costs. Vilter engineers assess both source and sink conditions in detail during system design to ensure the VQ Series operates at peak efficiency for your specific application.







