1. Background and Motivation
The high cost and long development time of single-purpose CubeSats present a barrier to rapid innovation. This thesis addresses this challenge through a conceptual design study for a modular, reconfigurable 3U CubeSat platform. The core vision is to develop a single, adaptable satellite “bus” architecture where subsystems and payloads can be logically configured to support missions across three distinct domains: Internet of Things (IoT) relay, Earth Observation (EO), and Communication (Comms). The goal is not to build a flight model, but to create a comprehensive digital prototype and system design that demonstrates the feasibility and advantages of this approach.
2. Thesis Objectives
The primary goal is to create a detailed system design and a parametrized digital model for a reconfigurable 3U CubeSat. The work is purely analytical and design-oriented, focusing on:
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Mission Analysis and System Requirements: Conduct a literature review to identify the key performance metrics (e.g., data volume, power budget, downlink rate, pointing accuracy) that drive subsystem selection for IoT, EO, and Comm missions.
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Subsystem Definition and Sizing: Based on the key metrics, define the conceptual requirements and specifications for the main bus components (On-Board Computer, Electrical Power System, Attitude Determination and Control System, Communication System) for each mission type.
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Development of a Configurable CAD Master Model: Create a parametrized 3D model of the 3U CubeSat structure in SolidWorks. This model will serve as a digital twin to exemplify how different subsystem configurations and payloads can be integrated.
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Interface Standardization Proposal: Propose standardized mechanical and electrical interface concepts for the payload bay and internal components to facilitate the theoretical reconfigurability of the platform.
3. Tasks and Methodology
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Literature Review: Research state-of-the-art CubeSat missions to compile a database of key parameters and derive representative requirements for each mission type.
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System Architecture Trade-Off: Analyze how mission requirements flow down to subsystem choices. For example, contrast the need for a high-performance OBC with EdgeAI capabilities for EO against the low-power communication system suitable for IoT.
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Exemplary CAD Modeling (Digital Prototype): Using SolidWorks, the student will:
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Start from existing open-source CubeSat models.
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Create a master 3U assembly with configurable features to demonstrate how the structure adapts to different components.
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Model representative, placeholder components for each mission type to visualize the concept.
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Documentation: Compile all findings, system specifications, and the design rationale into a final thesis report, presenting the conceptual platform design and its configurable SolidWorks model.
4. Student Profile and Prerequisites
I am looking for a highly motivated student in electrical engineering, mechanical engineering, or a related field.
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Essential:
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Proven proficiency in SolidWorks (as demonstrated in the interview).
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Strong analytical skills for system-level engineering and requirement derivation.
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A structured and independent way of working.
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Advantageous:
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Basic knowledge of spacecraft systems and subsystems (e.g., ADCS, EPS, COMMS).
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Interest in system design and the NewSpace sector.
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5. Application Process
Interested candidates should submit their application to julius.pinsker@faps.fau.de including:
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Current transcript of records (grades).
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A concise CV (1 page).
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A short passage (max. 300 words) on “My Initial Approach to a Conceptual Design of a Reconfigurable CubeSat Platform.”
For the Interview:
Selected candidates will be invited for an interview. They are expected to demonstrate their SolidWorks skills live. I suggest candidates prepare by downloading and familiarizing themselves with an open-source CubeSat model (see suggested links below) and bringing a laptop with SolidWorks installed to perform a simple modeling task on the spot.
Suggested Preliminary Reading for Applicants
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Stanford Sequoia on GitHub: A practical example of an open-source CubeSat project, focusing on systems architecture.
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Open-Source satellite-to-ground laser communication: The paper presents the open-source bus design, intended for future mission reuse
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Open-Source 1U CubeSat Model (GitHub): A direct link to a simple, open-source SolidWorks model, ideal for the interview test.
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CubeSat Design Specification (CDS): The essential standard document that defines the physical and mechanical interfaces of a CubeSat.
I look forward to receiving your innovative applications.
Kategorien:
Forschungsbereich:
Engineering-SystemeArt der Arbeit:
Masterarbeit, ProjektarbeitStudiengang:
Energietechnik, Informatik, IPEM, Maschinenbau, Mechatronik, WirtschaftsingenieurwesenKontakt:
Julius Pinsker, M.Sc
Lehrstuhl für Fertigungsautomatisierung und Produktionssystematik (FAPS, Prof. Franke)
Engineering-Systeme
- E-Mail: julius.pinsker@faps.fau.de

