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myGeobrugg

기후 변화로 인해 낙석 발생 위험이 증가하고 있습니다. 과거에는 주로 산악 지역에만 발생되었던 낙석이 도시 인근 비탈면에서도 발생하면서 사람들의 안전을 위협하는 상황이 늘어나고 있습니다. 기존의 재래 공법들은 낙석 방호에 대한 충분한 기능을 하지 못할 때가 많습니다. 우리는 낮은 충격 에너지 부터 높은 충격 에너지 등급까지 낙석 위험의 모든 범위에 대한 솔루션들을 보유하고 있습니다.
 

낙석방호시스템

낙석방호시스템

기후 변화로 인해 낙석 발생 위험이 증가하고 있습니다. 과거에는 주로 산악 지역에만 발생되었던 낙석이 도시 인근 비탈면에서도 발생하면서 사람들의 안전을 위협하는 상황이 늘어나고 있습니다. 기존의 재래 공법들은 낙석 방호에 대한 충분한 기능을 하지 못할 때가 많습니다. 우리는 낮은 충격 에너지 부터 높은 충격 에너지 등급까지 낙석 위험의 모든 범위에 대한 솔루션들을 보유하고 있습니다.

Systems

GBE 낙석 방호 시스템

GBE 낙석 방호 시스템

GBE 낙석 방호 시스템은 비용 효율적이며 신뢰할 수 있는 낙석 대응 솔루션입니다.
RXE 낙석 방호 시스템

RXE 낙석 방호 시스템

RXE 낙석 방호 시스템은 협소한 공간에서도 최고의 안전보장 기능을 발휘합니다. 이 방호 시스템은 최대 10,000kJ 수준의 충격 에너지를 흡수할 수 있습니다.
ROCCO(로코) 낙석 방호 시스템

ROCCO(로코) 낙석 방호 시스템

ROCCO 낙석 방호 시스템은 기존 안전 기준 요건을 훨씬 뛰어넘습니다.
유도 감쇠(ATTENUATOR) 낙석 방호 시스템

유도 감쇠(ATTENUATOR) 낙석 방호 시스템

유도 감쇠(ATTENUATOR) 낙석 방호 시스템은 낙석의 에너지를 감쇠시키면서 낙석을 의도한 정착 위치로 유도합니다. 낙석 제거 비용과 시간을 절감할 수 있습니다.
캐노피 낙석 방호 시스템

캐노피 낙석 방호 시스템

낙석 방호 후 낙석이 방호책에 잔존하지 않기 때문에 낙석 제거 등의 유지보수 비용이 크게 절감됩니다.
낙석 커튼

낙석 커튼

고강도 스틸 와이어로 제작된 낙석 커튼은 경제적이면서 안전하게 낙석의 운동에너지에 대응할 수 있는 솔루션입니다.
락폴-X

락폴-X

모듈 방식으로 무게가 가벼워 구조물이 받는 정하중을 줄였습니다. 설치가 쉽고 낙석 발생 후 유지보수 작업도 간단합니다.
이동식 도로 펜스

이동식 도로 펜스

도로 펜스: 임시 사용 안전 펜스
지오브르그 가드

지오브르그 가드

낙석, 토석류, 눈사태 등 가장 열악한 환경에도 모니터링 장치부터 대시보드까지 점검의 횟수는 줄이고 안전은 강화할 수 있습니다.

FAQ

Do you have an example how rockfall ringnets work?

Yes. A spectacular example of how a Geobrugg Rockfall Barrier can stop even the most powerful rockfalls. In February 2026, the N-634 national road along the Basque coast, between Zumaia and Getaria (km 23+500), suffered a major rockfall involving a block of considerable size.
Thanks to the RXE-500 barrier — with an energy absorption capacity of 500 kJ — the falling mass was fully contained, preventing a massive block from reaching the road surface. 

What energy levels can rockfall barriers absorb?

Modern flexible barriers cover a wide range:

  • GBE line: ~100 kJ to 5000 kJ

  • ROCCO line: ~500 kJ to 3000 kJ

  • RXE line: up to 12500 kJ (tested with 25-ton block at 115 km/h / total absorbed energy 14100 kJ). Energy class selection depends on block size, fall height, and site risk assessment.

Ref: EAD 340059-00-0106, Geobrugg Technical Data

What are typical barrier heights?

Heights: 2 m to 6 m, sometimes more.

This depends on project requirements.

Higher systems are possible. In practice, heights of up to 10 meters have already been installed. However, it is not only the height that is important, but also how the barrier has been tested and what energy absorption is possible in the upper area. Systems that have only been tested according to EAD generally have a significantly lower energy absorption capacity in the upper barrier area.

What design standards apply to flexible rockfall barriers?

A frequently used standard is EAD 340059-00-0106.
However, additional local requirements are often required, as EAD only covers minimum requirements.

What are typical barrier deflections?

Deflection varies by system and energy class; low-deflection systems (e.g., RXE) are ideal for tight spaces. Lower deflection usually means higher anchor forces. Deflection is specified by the SEL (Elongation on 30% of test energy) and MEL (Elongation on 100% of test energy).  It makes sense to consider this on a project-by-project basis so that the ideal barrier type (GBE, RXE or ROCCO) can be used for the project in question.

What does MEL stand for?

MEL stands for maximum energy level and indicates how many kJ a barrier has been tested with. In addition to the MEL, it is also specified where this was tested on a rockfall barrier. MEL without designation is always in the middle of a midfield (less critical symmetrical impact). There are also MEL tests that are performed asymmetrically, designated MEL-E, and those that test single-field barriers and edge fields, designated MEL-S.

What is the difference between MEL and SEL energy levels?
  • MEL defines maximum impact capacity (100%).
  • SEL defines serviceability after impact (30%).
How is certification handled and what does it cover?

Certification follows EAD 340059-00-0106 (formerly ETAG 027). Tests include Maximum Energy Level (MEL) and Service Energy Level (SEL) impacts. Certification guarantees tested performance under controlled conditions in the middle of a middle field. It does not cover any site-specific hazards.

The test procedure is purely a comparative test with a load placed in the center of a midfield. This is the least critical case, as the load case is symmetrical and there is net and rope buffer in the center, where the system can dissipate energy. This certification is only required to trade materials in the EU. However, it has nothing to do with practical application in the field. To ensure practical suitability, it makes sense to require additional tests outside of the idealized test procedure in tenders in order to guarantee functionality in practice.

What is the expected lifespan of a rockfall barrier?

The EAD defines a service life of 25 years for corrosion class C2. For corrosion class C3, the EAD defines a minimum of 10 years. These values represent minimum approval requirements. In practice, they are not sufficient.
Modern rockfall barriers are designed for much longer lifespans. At Geobrugg, components are coordinated to achieve minimum 70 to 80 years in C2 environments. In C3 environments, practical experience shows a minimum lifespan of around 25 years. This is a minimum value. In many cases, the actual lifespan is significantly longer.
The decisive factor is consistent coordination of all components. No single component may have a significantly shorter lifespan than the system. It makes little sense to e.g.  specify the highest corrosion protection for the mesh while selecting lower protection levels for ropes or shackles. Shackles, wire rope clips, and bolts are especially critical components. Some suppliers use low quality parts. This can reduce the overall lifespan by up to a factor of eight.

Ref: EAD 340059-00-0106, Geobrugg Technical Recommendations

How often should barriers be inspected?

After installation, an initial inspection is required. At least one inspection per year is recommended. Additional inspections are required after significant rockfall or severe weather.
Inspection frequency depends on the location of the structure. In areas with high rockfall activity, multiple inspections per year are advisable. Many regulations require inspections after every heavy rainfall event, because intense rainfall can trigger rockfall. In practice, this approach is often not feasible. Access is limited or costs become disproportionate. Monitoring technologies such as Geobrugg GUARD can support this challenge. This reduces the need for site visits after every heavy rainfall. A physical on-site inspection remains strongly recommended. Final inspection requirements usually depend on local regulations and authorities.

What does maintenance involve?

Check ropes, brakes, mesh for deformation or corrosion. Remove debris and vegetation. Replace damaged components, re-tension ropes if needed. Use only certified spare parts to maintain CE compliance.

Ref: Geobrugg Maintenance Guidelines

Can damaged parts be replaced individually?

Yes. Components like mesh panels, ropes, and brake elements, posts can be replaced without dismantling the entire barrier. Geobrugg has since 2025 set up a modular barrier design, which is done to replace parts easier to save costs. If necessary, it makes sense to consult with a Geobrugg specialist to implement this quickly and cost-effectively.

How do barriers perform under repeated impacts?

Flexible barriers are designed for multiple events. After major impacts, the remaining capacity is reduced. Inspection and possible component replacement restore full performance.
Current certification covers multiple events only in a limited way. The EAD considers successive SEL1 and SEL2 impacts. Both impacts occur in the center of the same middle field. The energy level is limited to 30 percent of the maximum energy.
Real events rarely occur in the center of a middle field. Impacts often occur near posts or in edge fields. Asymmetric load cases are common. To address these realities, advanced systems are required. Barriers such as the ROCCO line are explicitly tested for this purpose. Testing includes multiple SEL impacts at different locations. Maximum energy impacts in edge fields are also verified. Asymmetric impact scenarios are covered. In addition, some designs are tested for simultaneous impacts. Two rocks hitting the barrier at the same time are proven to function. For real projects, minimum EAD requirements are often not sufficient. Specifying higher performance criteria increases safety and reliability.

Are the barriers recyclable and sustainable?

Yes. Steel components are recyclable; EPDs show high scrap content. Sustainability is increasingly documented in product declarations.

Ref: EPD Documentation

What monitoring options exist?

IoT-based systems like Geobrugg GUARD provide real-time data on rope tension, corrosion, and impact events, reducing manual inspections and improving safety.

Ref: Geobrugg GUARD Brochure

What happens if the barrier is overloaded?

Exceeding design energy may cause structural failure or excessive deformation. Preventive measures include hazard reassessment and installing higher-class barriers or hybrid solutions.

Ref: ETA Guidelines

Contacts

Saleh Feidi
   

Saleh Feidi

자연 재해
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Bryant Jackson
   

Bryant Jackson

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John Kalejta
   

John Kalejta

Regional Manager Rocky Mountains / Central USA

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Robert Long
   

Robert Long

Regional Sales Manager Southeast

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Pierce Runnels, Civil Engineer
     

Pierce Runnels, Civil Engineer

Sales Director North America

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Tim Shevlin
   

Tim Shevlin

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