REMAT glass
寸法は可変。
すぐに使用できる補強材。
当社のグラスファイバー補強メッシュは、主にコンクリートスラブの補強材として使用されます。補強バーメッシュはスラブに敷かれ、堅牢で耐久性のあるコンポーネントを形成します。
当社の補強バーマットに使用されている ECR ガラス繊維は、耐腐食性があり、非常に耐久性があります。メッシュは、リブ付きプロファイルを持つ Solidian REBAR ガラス補強バーから作られています。リブ付きプロファイルはコンクリートとの接着効果を高め、コンクリートの収縮などによって生じる可能性のある亀裂の形成を最小限に抑えます。
補強バーは溶接されておらず、耐久性があり安定した射出成形交差部によって接続され、剛性メッシュを形成します。その結果、当社の補強メッシュは、安定した補強バーと同じ機械的特性と、建設現場での堅牢なメッシュの効率的な取り扱いを兼ね備えています。
Product Features
当社の鉄筋メッシュは腐食せず、私たちの未来と子供たちの未来のために、より持続可能なコンクリート構造物を建設できる数多くの特別な特性を備えています。しかし、これは鋼鉄やステンレス鋼では提供できない特性のほんの一部にすぎません。
- 耐腐食性: コンクリートの被覆が少なく、耐用年数が長く、修理コストが低い
- 重量が軽く、引張強度が高い
- 高い引張強度: 全体的な建設コストが低い
- 電気絶縁性があり、非磁性
- 持続可能で資源を節約: 必要な建築材料が少なく、耐用年数が長くなる
- 断熱性があり、化学物質や塩化物に耐性がある
- 個別に設置する場合、他の競合する非金属補強バーよりも優れた価格/性能比
技術情報
- 直径 4 mm、6 mm、8 mm、10 mm、12 mm
- メッシュ間隔 100 mm、150 mm、200 mm、300 mm
- 直径 8 mm から歩行可能
- 標準サイズ 6.0 x 2.3 m、標準メッシュ間隔 150 mm
- 標準ポートフォリオはガラスおよびカーボン鉄筋メッシュ
- 個別の形状についてはお問い合わせください。
For our solidian glass fiber reinforcement bars, we have had environmentally relevant properties determined by neutral and objective data in an EPD. This information is available here and in the download area.
reinforcements for the future generations
Reference project
Product Applications
We transfer the properties of reinforcing bars to the mesh geometry without loss. This is why our glass fiber reinforced, corrosion-resistant reinforcing bar meshes are equally predestined for use in bridges, in maritime environments, in high-voltage or electromagnetically stressed areas, in concrete slabs such as industrial floors, parking decks and any type of modern masonry.
- Bridge construction
- High voltage or electromagnetic systems
- Concrete slabs such as industrial floors, parking decks or access roads
- Maritime applications
- Facades and balconies
- Tunnel and mining constructions
- Performance Enhancement
- Handling and Logistics
- Compliance and Compatibility
- Application and Installation
- Durability and Resistance
- Sustainability and Environmental Impact
- Is solidian GRID suitable for replacing corroded steel reinforcement?
- How does solidian GRID contribute to system durability when used with mortars?
- Can solidian GRID conform to curved surfaces during installation?
- How does the weight of solidian GRID affect transportation and installation?
- Is there an Environmental Product Declaration available for solidian GRID and solidian REBAR?
- Has solidian GRID received official building approvals?
- With which types of binders is solidian GRID compatible?
- Is solidian GRID approved for use in standard concrete applications?
- What is the minimum thickness required for concrete layers using solidian GRID?
- Can solidian GRID be used to reinforce existing concrete structures?
- What is the expected lifespan of solidian GRID in wastewater applications?
- How does solidian GRID perform in acidic environments?
- How does solidian GRID contribute to sustainable construction?
- Resource efficiency: By minimizing the need for extra concrete cover, solidian GRID conserves materials such as cement and aggregates, contributing to resource efficiency.
- Environmental Product Declarations (EPDs): solidian provides transparent data on the environmental impact of their products through EPDs, facilitating informed decision-making for sustainable building projects.
Solidian Kelteks - Reduced CO₂ emissions: The use of solidian GRID in construction can lead to significant reductions in CO₂ emissions due to decreased material usage and enhanced durability, which extends the lifespan of structures and reduces the need for repairs.
frequently asked questions
Yes, in cases where steel reinforcement has corroded, solidian GRID can serve as a substitute for structural reinforcement. The existing corroded steel can remain in place and be covered with a new layer of carbon-reinforced mortar, restoring structural integrity.
When combined with high-quality mortars, solidian GRID significantly enhances the overall durability of the system, providing a robust solution for demanding environments.
Yes, solidian GRID strikes a balance between stiffness and flexibility, allowing it to be applied to curved surfaces with diameters greater than 800mm.
The lightweight nature of solidian GRID facilitates easy transportation, even through sewage tunnels, and simplifies the installation process, reducing labor and equipment requirements.
Yes, a certified Environmental Product Declaration (EPD) is available for both solidian GRID and solidian REBAR. The EPD provides transparent and verified information about the environmental impact of these products throughout their life cycle, supporting sustainability assessments in construction projects.
Yes, solidian GRID has obtained the General Building Approval (abZ) from the German Institute for Building Technology (DIBt). This approval authorizes its use as carbon reinforcement grids in construction, ensuring compliance with national building standards.
solidian GRID is versatile and works with a range of binders, including Portland Cement, Calcium Aluminate Cements, and Geopolymer Cements.
solidian GRID holds German Approval as reinforcement for EN 206 concretes, supporting its compatibility with various mortar systems, including those adhering to DIN 19573.
Concrete layers reinforced with solidian GRID can be as thin as 20mm, as no additional concrete cover is needed to protect the reinforcement from corrosion.
Yes, solidian GRID can be applied as an additional layer over existing steel-reinforced concrete. When combined with solidian ANTICRACK, it offers enhanced crack-limiting properties, providing extra protection to the underlying steel reinforcement.
Classified under XWW4, solidian GRID ensures long-term performance for over 50 years, making it a durable choice for long-term infrastructure projects.
solidian GRID is fully resistant to severe acidic conditions, including environments with pH levels as low as 0. It has successfully passed tests in accordance with DIN 19573 standards for pH 0 and pH 1.
solidian GRID enables the design of thinner concrete layers (greater than 20mm) without requiring additional concrete cover for reinforcement protection. This reduction in material usage leads to lower resource consumption and a diminished environmental footprint, supporting more sustainable construction practices.
Additional information: