P2006T X-57 MAXWELL NASA

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History

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Systems

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Sensors

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Tech Specs

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NASA X-57 Maxwell

[note]SCEPTOR: Scalable Convergent Electric Propulsion Technology and Operations Research [/note]

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[animated_circle_chart width=”120″ height=”120″ percent=”60″ color=”#70c14a”]118 kts[/animated_circle_chart]

Cruise Speed

219 km/ Sea Level

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Seating

Four seats.

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Fuel Consumption

0 liters per hour

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NASA New Aviation Horizons Initiative

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Distributed Electric Propulsion (DEP) is a new technology frontier, enabling ultra-high efficiency, low carbon emissions, low community noise, and low operating costs.

When coupled with the autonomy technology frontier, will enable transformative high-speed On-Demand Mobility
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NASA-P2006T-2

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Objectives

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PRIMARY OBJECTIVE

  • Goal: 5x Lower Energy Use (Compared to Original P2006T @ 175 mph)
  • IC Engine vs Electric Propulsion Efficiency changes from 28% to 92% (~3.3x)
  • Synergistic Integration (~1.5x)

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DERIVATIVE OBJECTIVES

  • ~30% Lower Total Operating Cost
  • Zero In-flight Carbon Emissions

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SECONDARY OBJECTIVES

  • 15 dB Lower community noise
  • Flight control redundancy and robustness
  • Improved ride quality
  • Certification basis for DEP technologies

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Distributed Electric
Propulsion Wing
High-Lift Impact

[note]Lift Coefficient at 70 mph Takeoff Velocity
(with/without 220 kW power into distributed propellers)[/note]
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SCEPTOR
Wing Sizing Impact

[note]Impact:

  • Same Takeoff/Landing Speed
  • Large Reduction in Wing Area
  • Decreases the Friction Drag
  • Allows Cruise at High Lift Coefficient
  • Less Gust/Turbulence Sensitivity

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DEP Integration
Synergistic Design

NASA-P2006T-5
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Hybrid Electric Propulsion

NASA-P2006T-6
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SCEPTOR
Project Approach

NASA-P2006T-7
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Cruise Motors

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  • Air cooled, direct drive outrunner
  • Replaces 100 HP Rotax 912S engine with 60 kW Joby motor
  • Expected cruise operating point between 42 and 45 kW
  • Tailoring FAA engine design acceptance testing (Part 33) for NASA flight qualification
  • Electrodynamics, thermal and control modeling and prototyping underway

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Battery Module Configuration

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  • Electric Power Systems design
  • Organized into 8 battery modules per aircraft, split into two packs, each with 4 battery modules and a control module
  • Cooling analysis will drive module spacing, cells spaced at 4mm
  • Nickel Cobalt Aluminum 18650 cells selected; provides sufficient energy density and discharge rate for SCEPTOR mission. Cells arranged in 20p32s modules with BEP between series halves.
  • Each pack is 20p128s; 47 kWh useful capacity, 461 VDC nominal (416 to 525 across SOC range), peak discharge of 132 kW
  • Will comply with flight environment, including 18 g crash loads, -5 to +45 °C operating environment

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P2006T NASA
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We’re at the beginning of a 30-50 years propulsion revolution

Electric propulsion is not merely about propulsion, it’s about being able to apply a scale-free technology to fundamentally change how we design vehicles. Synergistic integration of Distributed Electric Propulsion will transform aircraft, and the missions they perform, and potentially society
The age of on-demand services is about to lead to On-Demand Mobility

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[quote]
[quote_content]In every branch of knowledge the progress is proportional to the amount of facts on which to build, and therefore to the facility of obtaining data.[/quote_content]
[quote_signature name=”James Clerk Maxwell”] (1851)[/quote_signature]
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James_clerk_maxwell4
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Go to P2006T page here

Technam-Upper-Limit-445-144