IQ Glass - Specialist Glaziers
Architectural Glazing Specialists
Sky House Design Centre is home to a large range of slim framed aluminium sliding door systems, all on show throughout our building. That, paired with the expert architects and developers that visit us on a weekly basis, places us in a unique position to be able to be an excellent and objective third-party verifier and assessor of slim sliding doors across the market.
We are often asked by our visitors “what is the difference between this one and that one?” or “I’ve had a cost for this sliding door, how does this one compare?”. So we thought it was about time we brought together all our expertise, experiences, knowledge and technical know-how to create this guide to help you to pick the right slim sliding glass door for your project.
This article is only looking at slim framed external aluminium systems. We are not looking at steel and timber sliders and are only looking at external systems with with sightlines no larger than 26mm. Anything larger than 26mm would no longer be classed as ‘slim’.
The purpose of this article is to create a factual and explicit comparison of the systems we have on show at Sky House and others on the market, to provide homeowners and local architects with an independent guide to help their selection and specification.
Whether you’re an architect refining a glazing specification, a developer comparing performance against budget, or a homeowner trying to understand what you’re actually being quoted, this guide is designed to give you a clear, independent view of the leading slim sliding door systems on the market.
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This article is only looking at slim framed external aluminium systems. We are not looking at steel and timber sliders and are only looking at external systems with with sightlines no larger than 26mm. Anything larger than 26mm would no longer be classed as ‘slim’.
As all the slim sliders in this article are aluminium framed and have narrow sightlines and minimal framing, we are not comparing sightlines or materials too extensively. All sliders in this comparison have a vertical sightline (where the sliding panes meet) of between 20-26mm.
Similarly, all these slim sliders have a flush threshold, so this is not part of the comparison.
We have broken the comparison into the below sections. Feel free to click on these and jump to the place in the article you want to explore.
Design & Aesthetics
Configuration & Design Flexibility
Security & Locking Systems
Thermal Performance
Thresholds & Accessibility
Panel Sizes & Engineering Capability
Weather & Acoustic Performance
Glass & Finish Options
Which system is right for your project?
This means the comparison focuses on the areas that most directly affect how the doors look, perform and function on a real project.
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This is particularly important when comparing quotes, as different suppliers may present the same system under different names, leading to misleading price or performance differences.
It is common practice for some glazing companies to re-brand their slim sliding door systems in order to limit their competition. This is standard practice when a glazier; is not offering a unique system, they do not have exclusivity for that system or they know the system is offered by multiple other competitors.
In order to keep this comparison simple, below is an overview of all of the minimally framed sliding door systems we are aware of and what the true product is. That way, you can ensure you are comparing costs and performance properly (rather than just comparing different costs for the same system!).
|
Base System |
Rebranded as... |
|
Cortizo COR Vision |
This is the most re-branded system we have come across. Below are just some of them we are aware of: SL320 from ODC PanoLUX from Cherwell Origin Inifiglide from FinePoint |
|
Cortizo COR Vision+ |
Heavily rebranded by multiple companies including: SL700 from ODC PanoLUX+ from Cherwell |
|
Solarlux Cero III |
SL800 from ODC |
|
Ultraline |
Sightline Aluminium Glazing minima sliding |
|
Sunflex SF60 and SF80 |
SF60 and SF80 from ID Systems |
|
Orama Omicron |
Infiniglide 6 from Finepoint |
The below products do not allow their systems to be re-branded, therefore if you see someone selling these sliding doors, you know exactly what system that is.
|
Sliding Door Range / System |
Available from? |
|
Keller minimal windows |
Only available from IQ Glass in the UK, they have had exclusivity since 2011. |
|
Sky-Frame |
Various dealers in the UK including Crest Architectural Glazing, Alco Glass Systems, Cantifix and Clear Living. |
|
panoramah! |
Various dealers in the UK including HBD Systems, Camel Glass, John Knight and Fusion Glazing. |
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At Sky House we have a large number of systems and manufacturers on show throughout the building. We have included all of these systems in our comparison. (Come and visit us to see any of these in person.)
Keller minimal windows sliding door
Keller minimal windows 4+
Keller minimal windows NGS
panoramah ah!38
Orama Omicron
Sieger Slim Sliding Doors
Sieger XL Sliding Doors
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In addition to the above, we are also going to compare the below systems as these are common systems our visitors mention when coming to us to explore slim framed sliding doors:
Sky-Frame 2 and 3
RCN EXP36 and EXP54
Hyline HY40
Cortizo COR vision
Cortizo COR vision plus
Solarlux Cero III
Maxlight
Ultraline
Vitrocsa
Sunflex SF60 and SF80
Before we start, we want to clarify by what we are classing a ‘slim sliding glass door’.
There are many systems on the market that claim the title ‘slim’, however for us to consider a sliding door ‘slim’ we are looking for a slim vertical profile (no larger than 26mm) and minimal visible frame at the head, base and sides.
For example, the Sunflex SVG20 (sold by ID Systems as the EDGE2.0) is often mentioned by our visitors as a patio door they are considering for their project however, the EDGE2.0 is not a true slim sliding door. Although the interlocks are narrow, the system has a large surrounding frame at the head, base and the outer edge of the sliding door aperture.
Whilst this may be a cost-effective alternative for those looking for a patio door, the system is not a true ‘ultra-slim sliding door’ as ID Systems marketing suggests.
Similarly, the SCG30 from Sunflex has a 30mm sightline so has not been included.
We regularly see these systems mentioned by visitors when they first come to Sky House, so it is important to clarify how they differ from true slim sliding systems.
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The visual appeal and minimalism of these slim sliders is often the primary drive for most buyers. For homeowners and designers, this is often the most important factor, as it directly impacts how open, minimal and connected the space feels.
For clarity, below are the definitions of what each bit of a frame is called:
Interlock, the vertical sightline where two sliding panes (or a fixed and sliding pane) meet.
Base frame, the visible frame above the finished floor level (FFL)
Head frame, the visible frame below the interior / exterior ceiling finish
Side frame, the visible frame at the side of the whole sliding door opening
The most important measurements to create that true merging of internal and external spaces is the vertical sightline and the base frame.
A small base frame means that there is no visible division between the internal and external floors, and the eye is drawn outwards.
A narrow sightline makes the thermal barrier between inside and out nearly invisible, creating the indoor-outdoor aesthetic most common in modern living and architecture.
|
System |
Interlock Size (mm) |
Base Frame Visibility Above FFL (mm) |
|
Keller minimal windows |
21 |
~8 |
|
Keller minimal windows NGS |
26 |
0 (fully concealed option) |
|
panoramah ah!38 |
20 |
~8 |
|
Orama Omicron |
~24+ (varies with height) |
0 |
|
Orama Omega |
~24+ (varies with height) |
0 |
|
Sieger Slim |
20 |
~6 |
|
Sky-Frame 2 |
20 |
~5 |
|
Sky-Frame 3 |
20 |
~5 |
|
RCN (EXP36 / EXP54) |
21 |
~9 |
|
Hyline HY40 |
18 |
~18 |
|
Cortizo COR Vision |
20 |
~6 |
|
Cortizo COR Vision Plus |
25 |
~6 |
|
Solarlux Cero III |
34 |
~34 |
|
Maxlight |
20 |
~100+ |
|
Ultraline |
20 |
~20 |
|
Vitrocsa |
22 |
~18 |
|
Sunflex SF60 |
30 |
~37–55 |
While many systems achieve similar interlock sizes of around 20mm, the biggest visual difference often comes from how the base frame is installed. Fully concealed thresholds (0mm visible frame) deliver the cleanest architectural result, but may involve more complex installation.
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Keller minimal windows
NGS
panoramah
Sky-Frame
Sieger Slim
Cortizo
RCN
Vitrocsa
Orama
Sunflex
Ultraline
Maxlight
Cero
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When comparing slim sliding door systems, configuration flexibility is where many products begin to separate.
At a basic level, most systems allow sliding panels across multiple tracks with options for fixed panes, pocketing into walls, and standard corner openings.
However, more advanced systems go much further, offering architectural freedom such as curved glazing, multi-axis openings, façade integration, and complex combinations of fixed and sliding elements.
This is where architects and developers will see the biggest differences between systems, particularly on more complex or design-led projects.
To make this easier to understand, the systems are grouped into:
Basic systems which are suitable for most residential and straightforward architectural projects
Advanced systems are designed for large-scale, complex, or highly bespoke architectural designs
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These systems offer the core configurations expected from a modern slim sliding door, including linear sliding, pocket doors, and standard corner openings. They are typically best suited to residential extensions, new builds, and projects where simplicity, cost control and reliability are priorities.
|
System |
Sliding Types |
Tracks |
Corner Options |
Pocket Capability |
Special Systems |
|
Sieger Slim |
Linear sliding, sliding + fixed |
Up to 3 tracks (up to 6 sashes) |
90° corner opening |
Yes |
— |
|
Cortizo COR Vision |
Sliding (multi-panel), fixed + sliding |
1–3 tracks |
90° corner (track-dependent) |
Yes (minimum 2 tracks) |
— |
|
Cortizo COR Vision Plus |
Sliding (multi-panel), fixed + sliding |
1–4 tracks |
90° corner (no mullion) |
Yes (minimum 2 tracks) |
— |
|
Sunflex SF60 |
Sliding, fixed + sliding |
2–3 tracks |
Corner options available |
Not clearly stated |
— |
|
Orama Omicron |
Sliding, fixed + sliding |
Up to 3 tracks |
Corner opening |
Yes |
— |
|
Orama Omega |
Sliding, fixed + sliding |
Up to 3 tracks |
Corner opening |
Yes |
— |
|
Maxlight |
Sliding, bi-parting |
Limited configurations |
90° corner opening |
Yes |
— |
|
Ultraline |
Sliding (multi-panel), fixed + corner |
1–4 tracks |
Glass-to-glass corners |
Yes |
— |
These systems typically provide:
Straightforward linear sliding layouts
Optional pocket sliding for full openings
Standard 90° corner openings
However, they are generally limited to:
Rectilinear designs (no curves or complex geometry)
Fewer track and stacking variations
No integration into full façade systems
Advanced sliding door systems are designed as modular architectural systems, rather than just doors. They allow far greater design freedom, enabling large-scale glazing concepts and technically complex installations.
These systems are typically used in:
High-end residential architecture
Landmark projects
Large-span glazing
Structural glass façades
|
System |
Sliding Types |
Tracks |
Corner Options |
Pocket Capability |
Special Systems |
|
Keller minimal windows |
Linear, pocket, curved, vertical sliding |
Multi-track |
Any angle (65°–177°), opening or fixed frameless. |
Yes |
Curved sliding, vertical sliding, façade (Highline), integrated pivot, shaped sliders, inclined sliders, biparting |
|
Keller NGS |
Sliding + fixed combinations, automated sliding |
Up to 5 tracks |
Opening or fixed frameless |
Yes |
Highline façade integration, advanced automation Curved sliding, integrated pivot, shaped sliders, inclined sliders
|
|
panoramah ah!38 |
Sliding, fixed, pocket |
Unlimited track configurations |
90° / 270° corners |
Yes |
Curved layouts, inclined/sloped glazing, automation |
|
Sky-Frame 2 / 3 |
Classic sliding, pivot, sloped systems |
Multi-track |
Corner options |
Yes |
Arc (curved), slope systems, pivot integration |
|
Vitrocsa |
Sliding, pocket, curved, inclined |
Multi-track |
Corner opening |
Yes |
Curved sliding, inclined glazing |
|
RCN (EXP36 / EXP54) |
Sliding, fixed + sliding, multi-panel stacking |
1–4+ tracks |
90° corner opening |
Yes |
Central/inverted openings |
|
Hyline HY40 |
Sliding, motorised sliding |
Multi-rail (mono–quad) |
Corner opening |
Yes |
Motorisation systems |
|
SolarluxCero III |
Sliding, fixed + sliding |
Multi-track |
Corner opening |
Yes |
Motorisation and control integration |
These systems offer:
Fully modular configuration design
Greater variation in:
Track numbers
Panel stacking
Opening directions
Advanced options such as:
Curved sliding doors
Inclined or sloped glazing
Façade integration (glass walls rather than doors)
Automated movement systems
While many slim sliding doors appear similar visually, their configuration capability can be dramatically different.
Basic systems provide reliable, clean design solutions for most residential projects
Advanced systems act as architectural tools, capable of creating complex glazed structures that go far beyond standard sliding doors
In practice, the right choice depends on the ambition of the design:
For straightforward openings and value-led projects, basic systems are often sufficient
For large-scale, bespoke, or design-led architecture, advanced systems offer significantly more flexibility
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Security in slim sliding doors varies significantly, not just in certification (RC2, RC3, PAS24), but in how the doors physically lock. While many systems use multi-point locking, higher-end systems often use vertical rod systems engaging into the floor and ceiling, which provide a more robust structural lock.
While many systems quote similar security ratings, the way the door actually locks — and how the user interacts with it — can vary significantly. These differences affect not just security, but also usability and visible design details. For homeowners, the way a system locks and operates day-to-day can be just as important as its certification rating.
We have looked at:
How the lock physically works
Where it is located
User experience + design implications
Any hidden limitations
|
System |
Certification |
Lock Type & Operation |
Location & User Interaction |
Important Notes / Limitations |
|
Keller minimal windows |
PAS24 / RC2 |
Vertical rod locking (shoot bolts engage into floor and ceiling) via handle or key |
Handle or key integrated into 21mm interlock (standard or fully hidden) at any height on the sliding leaf |
Highly engineered system, adjustable handle height, clean design integration. Electronic locking and key locking also possible. |
|
Keller NGS |
RC3 + PAS24 |
Same vertical rod locking system (top + bottom engagement) |
Hidden or minimal handle or key, can fully disappear into wall on closing edge. Locking point at any height on the sliding door. |
One of the most secure + discreet systems available Electronic locking and key locking also possible. |
|
Cero III |
RC2 / RC3 |
Rod-based locking system engaging vertically |
Handle operated within profile |
Strong mechanical locking aligned with system engineering |
|
Sky-Frame 2 / 3 |
RC2 (upgradeable) |
Multi-point locking integrated into vertical profile |
Conventional handle operation within frame |
Can upgrade security, but locking is side-based rather than vertical |
|
Vitrocsa |
RC2 |
Multi-point locking (various options including electric) |
Typically side-profile handle or integrated controls |
Flexible but less standardised approach |
|
RCN |
RC2 |
Interlock-based multi-point locking operated via sliding block |
Small control block on interlock |
Similar to panoramah; minimal but less tactile and less premium feel |
|
panoramah ah!38 |
RC2 |
Multi-point mushroom locking operated by sliding plastic block |
Plastic block located in interlock, manually slid up/down |
Key limitation: plastic component, limited colour options (typically black), visible within minimal sightline which can affect design consistency |
|
Hyline HY40 |
Not stated |
Concealed locking system (unclear mechanism) |
Appears hidden within wall/frame system |
Lack of clear technical detail on operation or certification |
|
Sieger Slim |
PAS24 |
Multi-point mushroom locking activated by flipping integrated lever |
Small lever on lead edge of sliding panel |
Clean visually but conventional system logic |
|
Cortizo Vision / Plus |
PAS24 / RC2 |
Multi-point mushroom locking via lever |
Lever integrated into lead panel |
Typical system, reliable but not advanced |
|
Sunflex SF60 |
RC2 |
Multi-point locking with mushroom bolts |
Handle-operated within frame |
Conventional engineered system |
|
Ultraline |
PAS24 |
Fully electronic head locking system |
Operated via wall switch or keypad; no traditional handle |
Major difference: no mechanical handle, reliance on electronics, manual override required via hidden access panel |
|
Maxlight |
Part Q / PAS24 (lock only) |
Either base-mounted deadlock or 3-point side lock |
Key-operated cylinder (side or base) |
Lock is compliant, but full system not tested; more residential-grade solution |
|
Orama Omicron / Omega |
RC2 |
Locking system not clearly documented |
Limited available detail |
Lack of clarity on operation and user interface |
Two systems with the same security rating can feel completely different in use. Systems with vertical locking rods engaging into the floor and ceiling generally provide a more robust and engineered solution, while interlock or side-based locking systems are simpler but often more visible and less refined in operation.
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This is a key area for developers and architects working to meet Building Regulations and future energy standards. Thermal performance is heavily influenced by glazing thickness and frame design. While many systems quote strong Uw values, these are often dependent on specific glass build-ups. For most homeowners and many developers, this can be one of the hardest areas to interpret, as headline figures do not always reflect real-world performance.
When comparing slim sliding doors, thermal performance is often reduced to a single number, the Uw value. However, this figure on its own does not always give the full picture.
The Uw value represents the overall heat loss through the combined frame and glass, but it is heavily influenced by glass specification, panel size and calculation method. This means two systems with similar quoted Uw values may perform very differently in real-world conditions.
Your glazier will be able to give you an exact Uw value for your exact size, shape and configuration of doors quoted. You can then use this to ensure that the thermal performance of your intended door meets the thermal performance requirements of your project.
On the table below you will see we have investigated where in the sliding door frame the thermal break is. You might wonder why. This is because, whilst all these systems are ‘thermally broken’ (meaning there is a strip of material that doesn’t conduct heat, normally a polyamide, in the frame, limiting heat energy movement through the metal frame) where the thermal break sits in the frame can limit its effectiveness.
The most effective design for a thermal break is for the thermal break of the fixed frame and sliding sash to completely line up, creating a solid and continuous thermal break throughout the entire system. This should then line up with the insulating layer of gas within the glass unit.
In practice, the most effective thermal break design is a continuous, aligned barrier that runs through the entire frame and sliding sash, and connects directly with the insulating gas layer of the glass.
Systems that only include thermal breaks within the tracks or use segmented inserts allow heat to bypass the insulation layer more easily, resulting in weaker real-world performance compared to systems with true continuous thermal separation.
|
System |
Typical Uw Value |
Thermal Break Type |
Thermal Break Design & Alignment |
Key Notes |
|
Keller minimal windows |
≥1.1 W/m²K |
Fully continuous (optimal) |
Continuous thermal break through frame and sash, aligned with insulating glass cavity |
Consistent real-world performance |
|
Keller NGS |
From ~0.6 W/m²K |
Fully continuous (deep, optimal) |
Deep continuous thermal break through frame, sash and glass line (increased depth across NGS variants) |
One of the most advanced thermal systems |
|
Cero III |
≤0.8 W/m²K |
Fully continuous (optimal) |
Continuous thermal separation aligned across full system depth and glazing line |
High-performance engineered system |
|
Ultraline |
~1.17 → 0.73 W/m²K |
Continuous (good) |
Continuous thermal break through frame and sash, aligned reasonably well with glass |
Strong for system type |
|
panoramah ah!38 |
~1.16 W/m²K |
Partially continuous |
Thermal break within frame and profiles, but not fully aligned through system depth |
Improved in triple-glazed variant |
|
Sky-Frame 2 / 3 |
~1.15 → 0.66 W/m²K |
Segmented |
Thermal breaks between tracks and in frame sections, not fully continuous through sash–glass alignment |
Good performance, not fully aligned |
|
Vitrocsa |
~0.97 W/m²K |
Segmented |
Thermal breaks in frame and sash, but discontinuous across full system line |
Performance varies by configuration |
|
RCN (EXP36 / EXP54) |
~0.8 W/m²K |
Segmented |
Thermal breaks in sash and between tracks, deeper for triple systems but not fully continuous |
Dependent on correct glass |
|
Sieger Slim |
~1.3 / ~0.9 W/m²K |
Segmented |
Thermal breaks within sash and fixed frame between tracks |
Good mid-range performance |
|
Cortizo COR Vision Plus |
≥0.9 W/m²K |
Segmented |
Thermal breaks between tracks and within sash profiles |
Limited by system depth |
|
Cortizo COR Vision |
≥1.3 W/m²K |
Segmented |
Shallow thermal breaks in frame and sash |
Entry-level thermal performance |
|
Sunflex SF60 |
~0.8 W/m²K (nominal) |
Claimed continuous (limited) |
Continuous break claimed, but shallow system limits alignment with glass cavity |
Real-world performance limited |
|
Orama Omicron |
~1.2 W/m²K |
Discontinuous |
Small polyamide breaks in centre of tracks and at junctions only |
Heat can bypass break easily |
|
Orama Omega |
~1.2 W/m²K |
Discontinuous |
Similar segmented breaks at track centres and junctions |
Limited thermal efficiency |
|
Hyline HY40 |
Not stated |
Unknown |
No clear published information on full thermal break alignment |
Lack of transparency |
|
Maxlight |
Not stated |
Basic segmented |
Thermal breaks in frame and sash but with no detailed alignment info |
No verified performance |
While Uw values are often used as the headline comparison, the location and continuity of the thermal break is a better indicator of real thermal performance. Systems with continuous thermal separation through the full frame and glass line typically perform more consistently than those relying on segmented or track-only thermal breaks.
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For homeowners and end users, this has a direct impact on day-to-day usability, maintenance and long-term performance.
Threshold design plays a major role in both the appearance and everyday usability of a slim sliding door system. While many products can achieve a flush internal floor level, the way the threshold is detailed below the surface can vary significantly.
At a basic level, most systems offer a standard flush threshold suitable for residential use. However, more advanced systems provide fully concealed or “invisible” base details, alongside accessible, barrier-free options designed for seamless indoor–outdoor transitions.
The key differences come down to how each system balances aesthetics, drainage, accessibility and long-term practicality, particularly in climates where weather performance and maintenance need to be carefully considered.
This is one of the most common questions we are asked by visitors at Sky House, particularly on contemporary residential projects.
While many systems promote an “invisible threshold” as the ultimate minimal design feature, it’s important to approach this option with caution, particularly for UK projects.
Visually, the concept is appealing. The entire base frame is concealed below the finished floor level, creating a seamless transition between inside and out. However, this comes with trade-offs that are not always clearly explained.
By burying the sliding mechanism below the floor, the system becomes far less accessible. This can lead to practical issues over time, especially in external environments. For example, debris such as stones or dirt can enter the track, and in some cases the finished floor has had to be removed to access and resolve relatively minor issues.
There are also performance considerations. Fully recessed systems can, in some cases, compromise drainage, air tightness and thermal performance compared to more accessible threshold designs.
For this reason, while invisible thresholds can work well in certain controlled environments, they are not always the most robust or practical solution for everyday use in the UK climate. You can always visit Sky House and speak to one of our team if you are unsure or want some advice.
|
System |
Flush Threshold |
Invisible Threshold |
Accessibility Notes |
|
Keller minimal windows |
Yes |
No |
Tested to DIN 18040-1, DIN 18040-2 showcasing strong barrier-free compliance |
|
Keller NGS |
Yes |
Yes (the Floor base option is invisible AND still accessible so removes the maintenance issues of the invisible threshold) |
Tested to DIN 18040-1, DIN 18040-2 showcasing strong barrier-free compliance. Best balanced invisible solution |
|
panoramah |
Yes |
Yes |
|
|
Sky-Frame |
Yes |
Yes |
|
|
Vitrocsa |
Yes |
Yes |
|
|
RCN |
Yes |
Yes |
|
|
Cero III |
Yes |
No |
Visible but engineered |
|
Sieger Slim |
Yes |
No |
|
|
Cortizo Vision |
Yes |
Limited |
|
|
Sunflex SF60 |
Yes |
Raised option |
Visible frame often higher |
|
Ultraline |
Yes |
No |
|
|
Hyline |
Yes |
Yes |
|
|
Maxlight |
Yes |
No |
|
|
Orama systems |
Yes |
Yes |
|
Best invisible thresholds: Keller NGS, Vitrocsa, panoramah, Sky-Frame
Best practical UK solution: Keller standard system
Simplest solutions: Sieger Slim, Cortizo
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Panel size is one of the clearest indicators of how engineered a sliding door system really is. While many products appear similar visually, their ability to support large, heavy glass panels varies significantly. For architects designing large openings, this often determines what is physically achievable within the project.
At a basic level, most systems can handle standard residential panel sizes, typically up to around 3–4 metres in width or height. However, higher-end systems are designed to support much larger panels, enabling full-height glazing, wider openings and fewer visible divisions.
The key differences come down to weight capacity, structural design and how well the system distributes load, which ultimately determines whether a system can achieve true large-format glazing or remains limited to more conventional sizes.
|
System |
Max Panel Weight |
Max Size |
Notable Capability |
|
Keller minimal windows |
~500kg |
Tested to 8.5m² per sliding panel and 4m tall, but evidence of significantly larger installations depending on project engineering |
Highly adaptable |
|
Keller NGS |
1500kg |
Up to 6m+ tall / up to 18m² per panel |
Market-leading |
|
panoramah ah!38 |
1000kg |
Max leaf height 6m, max leaf width 6m, max area 19m² (double glazing) or 6m² (triple glazing) |
Strong flexibility |
|
Orama Omicron |
1000kg |
Max sliding leaf area 12m², max fixed leaf area 19.5m², panel height dependent on specification |
Balanced system capability |
|
Orama Omega |
1000kg |
Max sliding leaf area 12m², max fixed leaf area 19.5m², panel height dependent on specification |
Strong acoustic + thermal variant |
|
Sky-Frame 2 / 3 |
Not explicitly stated |
Typical tested size ~2.3m × 4m, larger available on request depending on project engineering |
Design-led system |
|
Vitrocsa |
Not explicitly stated |
Max panel area ~18m²+, size dependent on configuration and engineering |
Proven large-format system |
|
RCN (EXP36 / EXP54) |
Not explicitly stated |
EXP36: up to 5m tall / 12m² per panel; EXP54: up to 6m tall / 18m² per panel |
High-performance large panels |
|
Solarlux Cero III |
1000kg |
Panels up to ~4m × 6m, large-format glazing depending on configuration |
Structural system |
|
Hyline HY40 |
Not explicitly stated |
Panel size up to ~18m², height up to 6m (subject to engineering) |
Large panels with ultra-slim sightline |
|
Sunflex SF60 |
~800kg |
Panel sizes dependent on configuration, typically mid-to-large format sliding panels |
Balanced engineering system |
|
Cortizo COR Vision Plus |
700kg |
Max panel size approx. 4m × 4m |
Larger panels in mid-tier range |
|
Sieger Slim (XL) |
400kg manual / 700kg motorised |
Up to 4m width × 4m height, max ~14m² |
Strong for mid-tier system |
|
Cortizo COR Vision |
~320kg |
Max panel size approx. 2.5m width × 3.0m height |
Smaller-format system |
|
Ultraline |
225–340kg |
Max panel area ~9m² (double) / ~5.4m² (triple) |
Limited structural capability |
|
Maxlight |
Not stated |
No confirmed panel size or weight data provided |
Limited technical transparency |
While several systems claim large panel sizes, the key difference is whether those sizes are fully tested, routinely achievable, or dependent on project-specific engineering.
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Weather performance is one of the most important but often overlooked factors when comparing slim sliding door systems. While many products achieve similar air tightness ratings, the real differences begin to appear when looking at water resistance and wind performance.
At a basic level, most modern systems reach high standards for air permeability and are suitable for high performance residential builds. However, performance under driving rain and high wind loads can vary significantly depending on how the system is engineered and installed. This is particularly relevant for exposed sites or urban locations where performance consistency is critical.
Acoustic performance also plays a growing role, particularly in urban environments, where thicker glass and better sealing can noticeably reduce external noise. Higher-end systems typically combine stronger weather resistance with improved acoustic insulation, while more simplified systems may offer solid performance but with greater variation depending on configuration.
|
System |
Air |
Water |
Wind |
Acoustic |
|
Keller minimal windows |
Class 4 |
7A–8A+ |
C4–C5 |
39–43 dB |
|
Keller NGS |
Class 4 |
8A+ |
C5 |
~44 dB |
|
panoramah |
Class 4 |
E900 |
C5 |
~41 dB |
|
Sky-Frame 3 |
Class 4 |
E900 |
C5 |
~44 dB |
|
RCN |
Class 4 |
E1200+ |
C5 |
41–44 dB |
|
Cero III |
Class 4 |
E750 |
C5 |
~44 dB |
|
Sieger Slim |
Class 4 |
7A |
C5 |
~41 dB |
|
Cortizo Vision |
Class 4 |
7A |
C5 |
~41 dB |
|
Cortizo Vision Plus |
Class 4 |
7A–9A |
C3–C4 |
~43 dB |
|
Sunflex SF60 |
Class 4 |
9A |
C3 |
— |
|
Ultraline |
Class 4 |
9A |
C3 |
35–41 dB |
|
Vitrocsa |
Class 3–4 |
7A–9A |
C3–B5 |
~36 dB |
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Glass specification and frame finishes play a key role in both the performance and appearance of a slim sliding door, but they are often less straightforward to compare than headline figures like sightlines or Uw values.
While most systems offer a similar palette of powder-coated and anodised finishes, the real differences lie in glass thickness, the ability to accommodate high-performance triple glazing, and how the glass integrates with the frame. Higher-end systems tend to support significantly thicker glass units, enabling improved thermal performance, larger panel sizes and better acoustic control, whereas more entry-level systems are often limited to thinner double-glazed units and more standardised finish options.
This becomes increasingly important on larger, higher-performance projects where glass specification directly affects both performance and design.
This might seem like a strange thing to compare. Why do I care how thick my glass unit is? However, if you want higher performance, taller sliding doors or more complex glass designs, you need a thicker glass unit. If your sliding door frame cannot hold that glass thickness you will need to make compromises on the design or performance.
Additional layers into a glass unit increase the thickness. I am not just talking about double or triple glazing, I am also talking about laminates. Laminates can be added into a glass specification to increase security, acoustic performance or change the visual appearance of the glass.
Taller doors or areas of higher wind load will need a thicker glass unit to allow for a larger gas cavity which acts as a deflection zone for the external glass to flex and move naturally without damaging the glass unit.
It is also really useful to understand max glass thickness in order to professionally assess the validity of some supplier’s thermal performance claims.
For example, the RCN EXP36 sliding door has a maximum glass thickness of 36mm, so can only really take a double-glazed unit. In the RCN thermal performance information, they say they can achieve a Uw value of 1.1 W/m2K stipulating that this thermal performance is only possible with a glass unit with Ug value of 0.7 W/m2K. But a Ug value of 0.7 W/m2K is not possible from a double-glazed unit. So this thermal performance will never be actually possible in real life.
So whilst max glass thickness is less important for a standard rear patio door slider, if you are looking for a larger sliding door or better performance then it is something you should take a look at.
|
System |
Max Glass Thickness |
Glazing Unit |
Frame Finishes |
|
Keller minimal windows |
26–32mm |
Double/triple |
Wide range of options (PPC full RAL range, anodised or special) |
|
Keller NGS |
Up to 74mm |
Triple |
Wide range of options (PPC full RAL range, anodised or special) |
|
panoramah |
~38mm |
Double/triple |
Wide range of options (PPC full RAL range, anodised or special) |
|
Sky-Frame |
30–54mm |
Double/triple |
Wide range of options (PPC full RAL range, anodised or special) |
|
Vitrocsa |
32–44mm |
Double/triple |
Wide options |
|
RCN |
EXP36 = 36mm, EXP54 = 54mm |
Double/triple |
Anodised or powder coated |
|
Cero III |
48–54mm |
Triple |
Premium finishes |
|
Sieger Slim |
26–54mm |
Double/triple |
Good range (RAL, anodised) |
|
Cortizo Vision |
~30mm |
Double |
Standard / limited |
|
Cortizo Vision Plus |
~56mm |
Triple |
Standard / limited |
|
Sunflex SF60 |
~32mm |
Double |
Standard / limited |
|
Ultraline |
24–46mm |
Double/triple |
Limited palette |
|
Hyline |
~38mm |
Triple |
Standard / limited |
|
Maxlight |
No info |
Double only |
Standard / limited |
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Choosing the right slim sliding door system is less about identifying a single “best” product, and more about understanding which system aligns with the design intent, performance requirements and priorities of your project.
At Sky House, we see a wide range of projects, from design-led residential extensions through to highly engineered, large-scale homes. In many cases, homeowners, architects and developers are working together, so the right system is usually the one that balances aesthetic ambition, technical performance and practical considerations.
Below is a guide to how different systems tend to align with different project priorities.
For projects where glazing is a defining architectural feature, the capability of the system becomes critical. This typically includes large openings, minimal framing, complex geometry or bespoke detailing.
Systems such as:
Keller minimal windows
Keller NGS
Cero
panoramah
Sky-Frame
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are commonly specified on projects where the glazing is integral to the architectural concept. These systems offer advanced engineering capability, larger panel sizes and a high degree of design flexibility, making them particularly well suited to ambitious, design-led homes.
Alongside this architectural freedom, they are also designed to meet the more demanding side of modern building design. These systems are extensively tested and certified, with performance levels that go beyond standard regulatory requirements in areas such as thermal efficiency, weather resistance and structural capability.
This allows architects and clients to push the visual boundaries of a project without compromising on how the building performs in practice. The result is glazing that not only delivers a refined, minimal aesthetic, but also supports the long-term comfort, efficiency and durability expected of contemporary homes.
In some projects, the focus is on creating a clean, contemporary aesthetic with straightforward operation and reliable performance, rather than pushing the limits of engineering capability.
Systems such as:
Sieger Slim
Cortizo COR Vision
Hyline
Sunflex SF60
are often selected where the design intent is centred around simplicity, everyday usability and consistent delivery, particularly in more typical residential layouts where budgets are more constrained.
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Some systems stand out not just for performance, but for the level of design freedom they enable. This can include curved glazing, complex opening configurations, or integration into wider façade systems.
Systems such as:
panoramah
Vitrocsa
Sky-Frame
Keller systems
are often considered when flexibility is a key requirement, allowing architects to explore more complex or unconventional designs.
Many slim sliding door systems appear very similar on paper, but the differences in operation, detailing, engineering and finish become much clearer when experienced in person.
At Sky House Design Centre, you can view multiple systems side by side, compare how they feel and function, and discuss your project directly with specialists across different manufacturers.
If you are at the stage of comparing options, visiting in person is often the most effective way to understand which system is right for you.
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One of the biggest challenges when comparing slim sliding doors is that most suppliers only show one system in isolation.
At Sky House Design Centre, you can view multiple systems side by side, understand the real differences in operation and detailing, and speak directly with specialists across different manufacturers.
If you are planning a project and want to compare options in person, book a visit or get in touch with the team.