High temperature
for porous loads
Manufacturing components such as stoppers, filters, garments and silicone tubing requires more than achieving sterility. Manufacturers must be able to consistently demonstrate that every critical surface has been effectively sterilized, batch after batch, providing objective evidence for process validation and regulatory confidence.
Residual air can prevent saturated steam from reaching every critical surface. For this reason EU GMP Annex 1 and EN ISO 17665 require validated assurance of air removal whenever porous-load sterilization relies on air purging, ensuring validation is supported by objective process evidence rather than assumptions.
VALIDATED AIR REMOVAL IS MORE THAN A PROCESS PHASE. IT IS THE CONDITION THAT MAKES POROUS-LOAD STERILIZATION POSSIBLE.
Fedegari doesn't simply expose porous loads to saturated steam. We demonstrate, on every production cycle, that the physical conditions required for effective steam penetration have been achieved before sterilization begins.
This is why Fedegari governs air removal, steam penetration and drying as one continuous process, transforming regulatory expectations into objective process evidence for every production cycle.

VALIDATED CYCLES FOR EVERY POROUS LOAD
Fast, slow and modulated vacuum pulse strategies are configured according to load permeability, packaging configuration and air-retention behaviour.
BATCH FAILURE PREVENTED BEFORE STERILIZATION BEGINS
The sterilization phase cannot start until effective air removal has been demonstrated.
EXCEPTIONALLY LOW RESIDUAL HUMIDITY
Optimized drying phases deliver consistently low residual moisture while preserving load and packaging integrity.
emerge sterile, dry and ready for immediate use.
DEDICATED PROCESS CONTROL FUNCTIONS
Fedegari's Process Control architecture integrates dedicated functions specifically developed for porous-load sterilization:
- Integrated Air Detector
- Fast, slow and modulated vacuum pulse strategies
- F₀ calculation
- Sterilization Time (ts) calculation
- Continuous recording of temperatures, pressures and phase transitions
Together, these functions provide objective evidence that air removal, steam penetration and drying have been performed under validated process conditions throughout every production cycle.
COMPLEX POROUS PACKAGING
Processes involving different packaging configurations, variable permeability or multiple porous layers require dedicated air removal and drying strategies to ensure repeatable sterilization performance.
CANISTER STERILIZATION
Canister sterilization combines porous filters, confined internal geometries and demanding drying requirements within a single process.
BETABAG STOPPER STERILIZATION
Sterilization of stoppers within BetaBags requires dedicated air removal, controlled steam penetration and optimized drying to achieve exceptionally low residual humidity while preserving packaging integrity and supporting immediate aseptic use.
Why isn't F₀ sufficient for porous-load sterilization?
Unlike liquid loads, porous-load sterilization also requires saturated steam to reach every critical surface. Effective air removal is therefore essential to establish the conditions required for sterilization. This distinction is reflected in EU GMP Annex 1 (§§8.57–8.59), where F₀ is recognized as a validation parameter for aqueous solutions, while porous loads require effective steam penetration.
Why is validated air removal required?
Residual air and non-condensable gases can prevent direct steam contact within porous materials. EU GMP Annex 1 (§8.61) and EN ISO 17665:2024 require validated assurance of air removal whenever porous-load sterilization relies on air purging, making validated air removal a prerequisite for demonstrating effective steam penetration.
Why are different vacuum pulse strategies required?
Different porous materials and packaging configurations retain air differently. Fast, slow and modulated vacuum pulse strategies are selected according to the physical behaviour of each load, ensuring repeatable air removal, steam penetration and drying across different porous applications.
How does the integrated air detector support process control?
The integrated air detector verifies that effective air removal has been achieved before the sterilization phase begins, providing continuous in-process evidence on every production cycle. This approach is recognized by EN ISO 17665:2024, EN 285:2015, PDA Technical Report No. 1 and EU GMP Annex 1 (§8.61) as a validated means of providing assurance of air removal.
How is low residual humidity achieved?
Dedicated drying phases remove residual moisture while preserving the integrity of both the load and its packaging.
Which applications is this technology designed for?
Typical applications include sterilizing filters, stoppers in bags, garments, silicone tubing, canisters and other porous loads used in pharmaceutical and biotechnology manufacturing.
What's the difference between a pressure-based and a temperature-based air detector?
Temperature-based air detectors infer the presence of residual air from temperature measurements. Pressure-based systems assess whether chamber conditions correspond to saturated steam conditions, allowing the presence of residual non-condensable gases to be identified using a different physical principle. Both approaches support air removal monitoring, but they rely on different methods of detection.
ASEPTIC TRANSFER
Aseptic manufacturing depends on preserving the required state of every material until its point of use. Yet reusable parts, pre-sterilized components, bulk closures, tools and auxiliary materials enter the process from different conditions, through different routes and with different vulnerabilities.
Treatment alone does not secure the flow: unloading, transport, storage, manipulation and connection create critical interfaces where control can be lost. As manufacturing architectures become more closed, integrated and automated, aseptic transfer becomes a system-level responsibility.
RTU CARTRIDGES
RTU manufacturing carries more value - and more responsibility.
Ready-to-use cartridge manufacturers are taking on a critical role in biopharmaceutical supply chains. By supplying cartridges already washed, depyrogenated, siliconized, assembled, packaged and sterile, they enable pharma companies to outsource container preparation and the associated validation burden.
INSULIN PROCESSING
Insulin production increasingly relies on high-throughput syringes and cartridge filling lines, with cartridges serving reusable and disposable delivery pens. At these output levels, filling capacity alone does not determine production performance.
Closures and reusable filling-line parts must be washed, sterilized, handled and delivered to the filling area at the required pace and under controlled aseptic conditions. If these upstream activities are managed as separate, disconnected operations, they can become a bottleneck while increasing equipment, transfers, manual handling and operating costs.
VACCINES
Vaccine manufacturing places exceptional demands on fill-finish operations, where product sterility depends on the controlled preparation and transfer of every component entering the aseptic filling area.
Sterile vials, stoppers and product-contact machine parts must be available in step with the filling line and introduced without contamination or particle exposure. Multiple preparation systems, intermediate containers and manual transfers increase process complexity, footprint and critical interfaces. Dependence on ready-to-use components can also limit sourcing and campaign flexibility.
ALBUMIN PASTEURIZATION
Albumin is a heat-sensitive biological product. Once prepared, purified, formulated and stabilized, it is sterile-filtered and aseptically filled into final glass vials or bottles. Because it is not subjected to conventional terminal sterilization at 121°C, the filled and sealed containers undergo validated pasteurization at 60°C for at least 10 hours to support viral inactivation while preserving protein stability and product quality.
Albumin pasteurization is traditionally performed in water-bath systems. Although effective for heat transfer, this established approach requires very large quantities of process water, increasing utility consumption, wastewater generation and operating costs across a long and production-critical treatment
RADIOPHARMA
Radiopharmaceutical production combines pharmaceutical contamination control with the radiological protection of operators and the surrounding environment. The exact route varies with the radionuclide, formulation, product stability, container and intended diagnostic or therapeutic use. Some products are sterilizing-filtered and aseptically filled; others can be filled, closed and terminally sterilized. At the same time, reusable product-contact parts require controlled preparation, while radioactive wastewater cannot automatically enter the conventional drain.
STERILE POWDER MANUFACTURING
Sterile powder manufacturing presents one of the most demanding combinations of aseptic processing and high-containment production. Reusable containers, machine parts and thermosensitive materials must each follow dedicated preparation pathways before entering the filling environment, while uninterrupted production campaigns require a sufficient number of sterile containers to be available before filling can even begin. The challenge therefore extends well beyond aseptic filling itself: manufacturers must coordinate washing, depyrogenation, sterilization, material bio-decontamination, protected transfers and containment into a single validated manufacturing workflow that preserves both product sterility and operator safety.
HIGH-POTENT ASEPTIC MANUFACTURING
High-potent sterile manufacturing is one of the fastest-growing pharmaceutical sectors, driven by oncology biologics, antibody-drug conjugates (ADCs), peptides and other highly active compounds. While aseptic filling remains essential, manufacturers must simultaneously protect product sterility, operators and the surrounding environment. As occupational exposure limits decrease to the ng/m³ range, every reusable machine component leaving the filling isolator becomes a potential contamination source.
RTU VIALS
Ready-to-fill vial manufacturers supply pharmaceutical companies with primary containers that are already washed, depyrogenated, packaged and sterile, transferring container preparation and part of its qualification burden upstream. Growing demand for injectable biologics is increasing production volumes while making conventional sterilization routes more difficult to sustain. Steam may exceed the thermal limits of some packaging materials, while EtO introduces toxic-residue concerns and extended degassing times.
COMBINATION PRODUCTS
Drug-device combination products can bring together a thermosensitive drug, a complex delivery system and a protective package within a single sterilization challenge. For blistered prefilled syringes, the process must reach external surfaces, recessed areas and partially enclosed geometries without exposing the filled product to damaging temperatures. Sterilant penetration through the Tyvek® layer must therefore be demonstrated, together with microbial effectiveness inside the blister and around critical syringe components.
HIGH-VISCOSITY PRODUCTS
Hyaluronic acid pre-filled syringes combine a thermally sensitive formulation with a pressure-sensitive container-closure system. Product performance depends on the molecular weight and rheological behaviour of the formulation, while moist heat progressively reduces viscosity as exposure continues. At the same time, heating increases the internal pressure of the filled syringe through liquid expansion and vapour pressure, potentially causing plunger movement, leakage or loss of container integrity.
RTS STOPPERS
Ready-to-Sterilize (RTS) stoppers are expected to enter aseptic manufacturing immediately after sterilization through Rapid Transfer Port (RTP) systems. This requires every sterilization cycle to deliver stoppers in the same microbiological and physical condition, ensuring repeatable process performance from batch to batch.
For this reason, sterilization defines more than microbiological safety. It also determines the physical condition in which the stopper enters the filling process, influencing production readiness from the very beginning.
RTP CANISTERS FOR ASEPTIC TRANSFER
In modern aseptic manufacturing, RTP canisters are increasingly used to transfer product-contact parts and filling assemblies into Grade A isolators.
Their adoption supports a closed contamination control strategy, reduces operator intervention, and helps maintain sterility from preparation through point of use.
However, canisters introduce a unique challenge.
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