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Hartmann Valves GmbH

Energy production

Valve solutions for oil and gas production under demanding operating conditions

Energy production begins in the reservoir – under geological, thermal, and pressure conditions that place the highest demands on the plant technology used. Valve solutions for oil and gas production, production-related processing, and safety-critical applications in the wellbore environment must function reliably over long operating periods, even under high pressure, varying temperatures, and in demanding media.

Valves perform central tasks in this context: they control flow rates, safeguard pressure limits, isolate plant components, and contribute significantly to operational safety. Crucial factors include permanently reliable sealing, robust construction, and a design that reduces maintenance effort and unplanned downtime.

Hartmann develops and manufactures valve solutions for these requirements – with a focus on high-pressure applications, safety-critical systems, and long-term operational safety in energy production.

Applications in Energy Production

Areas of Application Along the Production Chain

Energy production encompasses all processes from the development of a reservoir to the transfer of the extracted medium to downstream systems.

Requirements for materials and maintenance differ significantly depending on the process step. Accordingly, valves must be consistently adapted to the actual operating conditions of the respective application.

In the area of extraction, the focus is on the safe control of the wellbore. High pressures, temperature gradients, and frequently corrosive or erosive media occur here.

In this context, wellheads perform several central functions:

  • Pressure control and sealing of the wellbore
  • Mechanical support for the casing / tubing
  • Integration of shut-off valves and safety devices
  • Interface to downstream systems

After extraction, the media are processed in production plants. This includes phase separation, pressure regulation, and treatment for the further process.

In these applications, valves are primarily responsible for the safe isolation of plant components and the control of process flows.

Ball valves are used when:

  • reliable shut-off is required
  • high pressures are present
  • compact designs are necessary
  • low leakage risks and long service lives are required

The focus of energy production is on applications in extraction as well as in production-related treatment processes. Downstream process steps such as energy transport and energy storage have their own requirements for valves and are considered separately. Energy conversion applications in the power plant environment are classified under power plant technology.

For Safe Operation

Design-Relevant Requirements

The selection of suitable valves is based on defined operating parameters and safety requirements. The decisive factor is not only the nominal design, but reliable function under real operating conditions throughout the entire service life. In energy production, the focus is primarily on tightness, pressure and temperature resistance, maintenance effort, and safety-related shut-off concepts.

Typical design criteria are:

General:

  • Reliable primary and secondary sealing systems
  • Minimization of fugitive emissions
  • Stable tightness under varying pressure and temperature conditions
  • Verified sealing function under operating conditions

Implementation at Hartmann:

  • Metal-to-metal sealing systems for demanding gas and high-pressure applications
  • Structural design to minimize leakage paths
  • Tested sealing concepts for varying operating states
  • Design according to application-specific testing requirements

Technical Features:

  • Metal-to-metal sealing
  • Leak rate A according to ISO 15848
  • Optional TA-Luft compliant version

General:

  • Design for high-pressure and HPHT applications
  • Consideration of thermal load cycles
  • Suitable material selection
  • Mechanical stability under cyclic loading

Implementation at Hartmann:

  • Design for defined pressure classes and temperature ranges
  • Selection of suitable materials considering the medium and application
  • Structural consideration of thermal expansion
  • Dimensioned components for long-term mechanical stress

General:

  • Long service life under continuous load
  • Minimized maintenance effort
  • Reduced downtime
  • Lifecycle-oriented design

Implementation at Hartmann:

  • Robust constructions with reduced wear
  • Low-maintenance sealing systems
  • Minimized interventions during the operating phase
  • Design for long-term operational safety

Technical Features:

  • Maintenance-free sealing system
  • No grease-based sealing function with metal-to-metal sealing
  • Structurally designed for long service times and high availability

General:

  • Double Block & Bleed (DBB)
  • Double Isolation & Bleed (DIB)
  • Redundant sealing systems
  • Controlled pressure relief

Implementation at Hartmann:

  • Integration of DBB and DIB concepts depending on the application
  • Structural implementation of redundant sealing barriers
  • Safe relief between shut-off elements
  • Adaptation to specific plant requirements

Technical Features:

  • Double barriers for safety-critical applications
  • Fire-Safe design optional
  • Design for low leakage risks even in demanding operating states

When Gate Valves Reach Their Limits

Why Ball Valves Offer Structural Advantages in Energy Production

Energy production places different requirements on shut-off valves depending on the process, medium, and mode of operation. High pressures, heavy thermal loads, and safety-critical shut-off tasks can impair the function of conventional gate valves. Metal-to-metal sealing ball valves follow a different design principle and offer decisive advantages, particularly when there are high requirements for tightness, operational safety, and low maintenance.

Gate valves are widely used in energy production plants. However, in high-pressure applications and for safety-critical shut-off tasks, their design principle reaches fundamental limits. High differential pressures, thermal loads, and demanding operating conditions place significant strain on the valve and directly affect function, tightness, and operability.

Particularly under these conditions, it becomes clear that gate valves are only suitable to a limited extent for frequent actuation cycles and particularly high requirements for shut-off safety. As a result, the reliability of the shut-off can decrease – a critical factor for the operational safety and availability of energy plants.

At high pressures and temperatures, the guide, seat, and sealing areas of a gate valve are heavily stressed. Contamination, deposits, and thermally induced deformations can further impair the linear sliding movement of the gate.

Over time, the gate can become stiff, block, or no longer open and close completely. At the same time, the required actuation torque increases. Frequent load cycles and high differential pressures also accelerate wear on guides and sealing surfaces. This can lead to leaks, loss of sealing integrity, and a restricted or no longer reliably guaranteed shut-in capability.

Ball valves from Hartmann Valves are based on a fundamentally different design approach. Instead of a linearly moving gate, a rotating shut-off element in the form of a ball is used, which rotates within its own volume.

This eliminates many geometries and guide areas where contamination or deposits can accumulate and impair the function of the valve. The movement is not sliding along critical internal surfaces, but rotating, and is therefore structurally significantly less sensitive to high differential pressures, thermal load cycles, and demanding operating conditions.

Due to their design principle, ball valves remain reliably operational even under high pressures, heavy thermal loads, and frequent load cycles, while gate valves can reach their limits under these conditions. The metal-to-metal sealing system ensures high tightness and reliable function even with demanding media and safety-critical shut-off tasks in energy production.

Furthermore, the design allows for actuation under full differential pressure. Robustly designed actuator systems are capable of safely handling high torques and overcoming increased resistance in a controlled manner. Thus, the functional and shut-off capability of the valve is maintained even under demanding operating conditions.

For operators, the use of ball valves means: more operational safety, more reliable switching, and higher long-term functionality of the valve in demanding energy production applications. Ball valves from Hartmann Valves remain operational where conventional gate valves fail or only work to a limited extent. This reduces the risk of unplanned failures, improves reliability in shut-in phases, and supports stable plant operation even under high pressures, heavy thermal loads, and frequent load cycles.

Gas-tight, durable and maintenance-free

Ball valves with metal-to-metal sealing system

In energy production, valves must function reliably even under high pressures, with demanding media, and over long operating periods. In addition to a safe shut-off function, tightness, service life, and calculable maintenance effort are crucial.

The tightness of our valves is verified through technical testing in accordance with the relevant regulations and the applicable product standard. Our internal manufacturer standard exceeds the requirements of common testing standards such as API 598 and DIN EN 12266. In this way, we create a resilient basis for very high shut-off tightness in demanding applications. The internal definition of leak rate A is based on ISO 5208.

The design is geared towards durable and low-maintenance operation. This allows maintenance effort to be reduced, downtime risks to be limited, and availability requirements to be reliably met even in safety-critical processes.

Certified Safety for Energy Production

Our high-performance valves and wellhead solutions meet national and international requirements for safe use in energy production, including:

  • API 6A
  • SIL
  • TA-Luft
  • ISO 15848
  • Fire Safe
  • NACE

Our Solutions for Energy Production

Contact us

We support you in all project phases: from planning and design to manufacturing, installation, and regular inspection.

FAQ

Hartmann ball valves are specifically designed for abrasive and corrosive media. Their metallic sealing ensures absolute tightness (leak rate A) and reduces maintenance effort. Through decades of experience in oil, gas, and geothermal projects, they offer maximum operational safety – even under extreme conditions.

Operators report up to 10 years of maintenance-free operation. The purely metallic sealing and the maintenance-free design without grease filling minimize downtime and maintenance costs.

Hartmann Valves manufactures according to international standards such as API 6A, ISO 15848, TA-Luft, Fire Safe, and NACE. These standards ensure tested safety and the highest quality in safety-critical plants.

The ball valves are suitable for crude oil, natural gas, sour gas (H₂S), sour oil, CO₂, as well as abrasive and corrosive media. Applications with high pressures and temperatures are also safely managed.

Hartmann wellheads combine robust construction with metal-to-metal sealing ball valves. They offer gas-tight shut-off (leak rate A/0), high safety, and low maintenance effort – even with aggressive media such as H₂S, sour oil, and CO₂.

Classic wellhead designs as well as integral designs (solidblock) are available. The latter reduce flange connections, lower the leak rate risk, and shorten setup times – ideal for compact plant concepts.

The block design reduces the number of flange connections and thus potential leakage points. This increases safety and minimizes the risk of emissions or failures in critical processes.

Ball valves from Hartmann Valves are less prone to blocking, do not require grease filling, and therefore do not cause contamination of downstream systems. They wear less and can offer increased safety and service life through the DIB 2 double barrier.