Des composants Exxelia à bord du Rover Perseverance

Après la sonde InSight qui s'est posée sur la planète rouge le 26 novembre 2018 avec à son bord nos condensateurs film, c'est à bord du robot Perseverance qu'Exxelia fait son retour sur Mars !


 

Au terme d’un voyage de sept mois, le robot Perseverance de la NASA s'est posé sur Mars, hier à 21h55 heure Française. L'objectif de sa mission consiste à rechercher des traces de vie primitive ancienne sur la Planète rouge. 

Le robot est équipé de plusieurs instruments de mesure et de prélèvement, dont SuperCam, MEDA et PIXL sur lesquels nos composants sont embarqués:

  • Transformateurs et inductances: SESI, CMC et MPCI
  • Condensateurs film PM94
  • Condensateurs tantale solide CTC21
  • Résistances Ohmcraft HVD, HVR and CN 

L'objectif principal de SuperCam est de caractériser les roches présentes sur le sol Martien. L'instrument peut effectuer des analyses à distance grâce à son laser et à ses spectomètres, sans attendre le retour des échantillons sur terre.

L'analyseur dynamique, connu sous le nom de MEDA (Mars Environmental Dynamics Analyzer), effectue des mesures météorologiques, notamment la vitesse et la direction du vent, la température et l'humidité. Il mesure également la quantité et la taille des particules de poussière dans l'atmopshère martienne. 

PIXL est un spectromètre à fluorescence X qui fournira une détection et une analyse à échelle fine des éléments chimiques dans les roches et le sol.

 

 

Published on 19 Feb 2021 by Stephane PERES

High-Performance Resistors For Mission-Critical Applications

High-Performance Resistors For Mission-Critical Applications Exxelia Ohmcraft meets the needs of modern electronic warfare, weapons platforms, and military professionals, recognizing innovation as an essential element of being successful as a supplier to today’s military. Exxelia Ohmcraft has served the military market for over two decades, reliably supporting a wide range of products, programs, and applications. Our custom and standard resistor products are well positioned to support the rigorous specifications required by military suppliers in this technology-driven market. Custom Designs For Military Applications Exxelia Ohmcraft’s ability to design and deliver custom resistors is essential for military suppliers. Our engineers work closely with you to design resistors that match your exact specifications. • Surface-mount resistors, dividers, and networks • Extensive experience designing custom resistors and supporting source control drawings (SCD) for existing and new designs • Small runs to support prototypes to large volume manufacturing Exxelia Ohmcraft can test parts using a number of military specs, including: • MIL-PRF-55342, 83401, 55182H, 914B, and 49462B • MIL-STD-129, 1276F, and 1285F • MIL-STD-202 • Space-grade resistors • Extended temperature range • Rapid prototyping Our products suggestion Exxelia Ohmcraft’s we have a wide array of rugged, high-quality resistor products. Here some suggestions :  - HIGH VOLTAGE LEADED DIVIDERS (HVD SERIES) - HIGH VOLTAGE AXIAL RESISTORS (HVA SERIES) - MILITARY GRADE HIGH VOLTAGE CHIP RESISTORS (MCH SERIES)   Want to learn more about our military products ? DOWNLOAD OUR FLYER HERE

Countering Threats from Transients in Magnetics

Understanding Electrical Transients in Magnetics Electrical transients are sudden, short-duration spikes in voltage or current. They can arise from various sources such as lightning strikes, switching operations, or inherent instabilities within the system. These transients can cause severe stress on magnetic components, leading to potential malfunctions or catastrophic failures.   Causes of Electrical Transients Electrical transients can originate from external factors like environmental conditions or input/output operations. Internally, they can be caused by the natural response of the system's reactive components: resistors, inductors, and capacitors. These components, governed by the laws of physics, react to changes in state variables, resulting in oscillations, amplification, or decay of signals.   Effects on Magnetic Components Magnetic components, such as transformers and inductors, are particularly susceptible to transients. For instance, transformers can exhibit parasitic components that affect their response to sudden voltage or current changes. These parasitic elements can cause amplification, oscillation, or even breakdown under transient conditions.   Mitigating Transient Threats Effective mitigation of transient threats involves understanding the behavior of magnetic components under dynamic conditions and implementing design strategies to counteract these effects.   Component Functions and Response Resistors: Dissipate energy to manage power levels. Inductors: Generate opposing voltages to slow current changes. Capacitors: Absorb or release charge to stabilize voltage changes. The induced voltage and current in inductors and capacitors are inversely proportional to the circuit's time constant. A smaller time constant means faster energy transfer, which can lead to higher transient voltages or currents.   Transformer Design Considerations Transformers must be designed to handle dynamic impedance transformations and provide necessary isolation. Realistic transformer models must account for parasitic components, which can significantly influence their behavior during transients. High voltage transformers, for instance, are prone to series resonance due to leakage inductance and self-capacitance, leading to oscillations and potential saturation.   Practical Mitigation Techniques High Bandwidth Instruments: Use to detect latent transient amplification and persistent ringing during normal operations. Worst Case Analysis: Evaluate bias currents and flux density for worst-case scenarios, including maximum voltage and temperature conditions. Current Transformer Verification: Ensure that protection circuits can detect transient overcurrents despite reduced output due to saturation. Residual Magnetization Control: Verify that residual magnetization does not impair operation, ensuring sufficient headroom for magnetization. Design of Experiments (DOEs), Risk Reduction Tests (RRTs), and Accelerated Stress Tests (ASTs): Implement these throughout the design stages to mitigate risks effectively. Protective Components: Use components like MOVs (Metal Oxide Varistors) to safeguard circuits from lightning-induced transients.   Countering threats from transients in magnetics requires a thorough understanding of the underlying causes and the implementation of robust design strategies. By employing high bandwidth detection instruments, performing worst-case analyses, and integrating protective measures, engineers can significantly reduce the risk of transient-induced failures in magnetic components. Adopting a proactive approach to design and testing ensures the resilience and reliability of electrical systems in the face of transient threats.