Build Your Bioprocess with Better Control
Your Fermentation Worked in the Lab. Will It Scale?
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| fermenter systems |
A fermentation process can perform perfectly in a laboratory
and still behave differently when moved to a larger system. That is one of the
most important challenges in bioprocess development and it is easy to
underestimate.
At laboratory scale, everything is easier to observe and
control. The vessel is smaller, mixing happens quickly, temperature changes can
be managed efficiently, and oxygen can reach the culture relatively easily.
Then the volume increases, and suddenly the same process has to work under very
different physical conditions.
The biology has not changed. The environment around it
has.
That is why fermentation scale-up is not simply a matter of
increasing the working volume. It is about maintaining the conditions that
allowed the original process to succeed.
When
Laboratory Fermentation Stops Scaling
A successful laboratory batch can create the impression that
the process is already solved. But laboratory fermentation is often only the
first stage of a much larger development journey.
As the vessel becomes larger, factors such as mixing time,
oxygen transfer, heat removal, agitation and nutrient distribution can change
significantly. A microorganism that received sufficient oxygen in a small
laboratory fermenter may experience different oxygen availability at pilot
scale. Similarly, temperature and pH can become harder to maintain uniformly
throughout a larger working volume.
This is where scale-up becomes a process engineering
challenge rather than simply an increase in capacity.
The important question is not, “Can we make the vessel
bigger?” It is, “Can we maintain the same critical process conditions at the
larger scale?”
That distinction can determine whether a fermentation
process moves smoothly toward production or requires extensive redevelopment.
What
Changes Inside Fermenters
Inside a fermenter, microorganisms respond continuously to
their surrounding conditions. They do not care whether the vessel contains one
litre or several hundred litres. They respond to oxygen, temperature, pH,
nutrients, agitation and other environmental conditions available to them.
Increasing the volume can therefore change how quickly and
evenly these conditions are distributed.
Mixing becomes particularly important. A larger vessel may
require different agitation strategies to achieve effective circulation. Oxygen
transfer can also become more challenging because the culture's oxygen demand
may increase while gas-liquid transfer behaves differently at scale. Heat
generated during biological activity must be managed, while pH and nutrient
conditions need to remain within the required operating range.
This is why modern fermenter
systems are built around much more than a vessel. They combine
cultivation space with sensors, control systems, gas management, agitation and
process monitoring.
A laboratory fermenter helps establish the process. A larger
bioprocess fermenter must help maintain that process under changing physical
conditions.
Why
Pilot-Scale Fermenters Matter
This is where pilot-scale fermenters become
important. They provide an intermediate environment between laboratory
development and full production, allowing researchers and process engineers to
evaluate how a fermentation process behaves at increased volume.
Biostream systems, represented by Labquip Asia, include
pilot-scale configurations from approximately 15 L to several hundred litres,
along with larger production systems. These platforms are designed to maintain
monitoring and control as the process moves beyond laboratory scale.
For example, the BioTwin Pilot supports working volumes of
approximately 15–50 L and provides control and monitoring for parameters
including temperature, pH, dissolved oxygen, agitation, gas flow, pressure and
biomass. Larger BioPilot systems extend fermentation capabilities into
substantially higher working volumes.
The value of this approach is not simply having more litres
available. It is being able to observe how the process behaves when mixing,
oxygen transfer, heat management and control requirements become more
demanding.
That information can help identify scale-up problems before
they become production problems.
Control Matters Beyond Volume
A reliable fermentation process depends on what happens
inside the vessel, but also on how effectively those conditions are monitored
and controlled.
Modern fermenter equipment can integrate sensors, pumps, gas
flow control, agitation systems and automated process functions into one
operating environment. This allows critical parameters to be monitored
continuously rather than checked only at individual points during a batch.
Software also plays an important role. Bioprocess control
platforms such as BOS 3.0 are designed to manage recipes, process parameters,
device integration and data management across different scales. Maintaining
consistent process logic between laboratory, pilot and production systems can
make scale-up more structured and repeatable.
Ultimately, the right fermenter is not determined by
capacity alone. Working volume matters, but so do the microorganism or cell
type, oxygen requirements, agitation, monitoring requirements, sterilization
approach and future scale-up plans.
Because when fermentation moves from the laboratory to pilot
or production scale, the vessel gets bigger—but the process has to remain
under control.
Build
Your Bioprocess with Better Control
Whether you are developing a microbial fermentation process,
working with cell cultures or preparing for scale-up, the right fermenter
system can make a significant difference to process development.
Labquip Asia represents Biostream fermentation and
bioreactor systems designed for laboratory, pilot and production-scale
applications.
Talk to Labquip
Asia to discuss the fermenter configuration that fits your process and
scale-up requirements.
FAQs
What is a fermenter used for?
A fermenter provides controlled conditions for growing microorganisms or
biological cultures while managing parameters such as temperature, pH, oxygen
and agitation.
Why does fermentation change at larger scale?
Larger volumes can affect mixing, oxygen transfer, heat management, nutrient
distribution and overall process control.
What is a pilot-scale fermenter?
A pilot-scale fermenter allows a process developed at laboratory scale to be
evaluated at a larger volume before moving toward production.
Which parameters are commonly controlled?
Typical parameters include pH, temperature, dissolved oxygen, agitation, gas
flow, pressure and biomass.
How should a fermenter system be evaluated?
Consider working volume, culture type, oxygen demand, monitoring requirements,
automation, sterilization and future scale-up needs.
Are fermenters and bioreactors the same?
The terms are often used interchangeably, although “bioreactor” is a broader
term covering different types of biological cultivation systems.
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