Explore Our Cutting-Edge Lyophilization Solutions

Unlock the Future of Lyophilization with LyoLevit™

Explore the groundbreaking advancements in lyophilization technology with our comprehensive technical brief on LyoLevit™ and Lyochrysalis™. Discover how these innovations can transform your processes and enhance efficiency.

Advanced Sublimation

Rapid Vapor Extraction

Zero-Contact Technology

In-Depth Technical Insights

Discover the Power of LyoLevit™ & Lyochrysalis™

Dive into the intricate details of LyoLevit™'s zero-contact, high-spin orbital physics method, designed to maximize sublimation and accelerate vapor extraction. Understand the science behind our innovative approach and how it can optimize your lyophilization processes.

Learn about Lyochrysalis™, our custom-engineered freeze-drying infrastructure. This system is built with advanced components like an 8-channel analog acquisition and a 16-channel Ethernet relay architecture, ensuring precision and reliability in every operation.

Our technical brief also covers the S3Pulse Control Brain, a robust Python-based system that orchestrates the entire freeze-drying process with fail-safe logic and comprehensive monitoring, guaranteeing consistent and high-quality results.

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Key Features of LyoLevit™ and Lyochrysalis™

Zero-Contact Lyophilization

Our innovative zero-contact method ensures that the lyocake remains suspended, enhancing sublimation and vapor extraction efficiency.

High-Spin Orbital Physics

Utilizing high-spin orbital physics, our technology accelerates the drying process, reducing cycle times significantly.

Advanced Monitoring and Control

Equipped with a multi-point thermocouple grid and dual pressure gauges, our system offers precise monitoring and control for optimal results.

Performance Metrics

Cycle time is governed by the formulation, the fill depth, the chamber load and by how efficiently primary drying is run — the rate-limiting stage of any freeze-drying cycle. LyoLevit™ is engineered to shorten that stage. No percentage reduction is stated here, because none has been measured under a controlled, comparable protocol.

Energy demand per batch depends on shelf area, condenser duty and cycle length, and cannot honestly be reduced to a single figure across formulations. The per-batch cost figure previously shown here has been withdrawn pending a measured, reproducible basis.

No user-satisfaction statistic is published here. LyoLevit™ runs no survey programme, and a satisfaction percentage without one would be an invented number.

Peer-reviewed references
1. Assegehegn G, et al. Freeze-drying: a relevant unit operation in the manufacture of foods, nutritional products, and pharmaceuticals. Adv Food Nutr Res. 2020. PMID 32711860 · doi:10.1016/bs.afnr.2020.04.001
2. Mehanna MM, et al. Recent advances in freeze-drying: variables, cycle optimization, and innovative techniques. Pharm Dev Technol. 2022. PMID 36174214 · doi:10.1080/10837450.2022.2129385
3. Vanbillemont B, et al. A model-based optimization strategy to achieve fast and robust freeze-drying cycles. Int J Pharm X. 2023;6:100180. PMID 37125084 · doi:10.1016/j.ijpx.2023.100180
4. Geremia M, et al. Practical use of primary drying models in an industrial environment with limited availability of equipment sensors. Int J Pharm. 2022;621:121699. PMID 35337905 · doi:10.1016/j.ijpharm.2022.121699

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