C osmic R Ay T elescope for the E ffects of R adiation CDR v1 Telescope Mechanical Design Albert Lin The Aerospace Corporation Mechanical Engineer (310)

Slides:



Advertisements
Similar presentations
GLAST LAT ProjectMarch 24, 2003 HPS Tracker Peer Review, WBS Section 2-D 1 GLAST Large Area Telescope: Tracker Subsystem WBS Structural.
Advertisements

Design and Simulation of a MEMS Piezoelectric Micropump Alarbi Elhashmi, Salah Al-Zghoul, Advisor: Prof. Xingguo Xiong Department of Biomedical Engineering,
C osmic R Ay T elescope for the E ffects of R adiation CRaTER PDR Mechanical Design Mechanical Design, CRaTER Assembly and Electronics Assembly Preliminary.
April 7, 2008University of Minnesota PDR Satellite Structure Subsystem Structural and Vibrational Stress Analysis Presented By: Chris Matthews.
SPP FIELDS V5 Antenna Mechanical Peer Review David Glaser, Paul Turin, Jeremy McCauley, John Bonnell, Dennis Seitz SSL UCB 7/17/13.
SPP FIELDS V5 Antenna Mechanical Peer Review Draft 2 David Glaser, Paul Turin, Jeremy McCauley, John Bonnell, Dennis Seitz SSL UCB 7/17/13.
1 NASA’s Goddard Space Flight Center 2005/4/14 LRO/CRaTER Technical Interchange Meeting LRO Mechanical Systems Giulio Rosanova / /
VC Training Table Setup and Floating Agenda General –Air Supply Requirements Assembly –Assembling the System –Leveling the Table –Isolating.
C osmic R Ay T elescope for the E ffects of R adiation Telescope Mechanical Design Albert Lin The Aerospace Corporation Mechanical Engineer (310)
LISA STUDIES AT THE UNIVERSITY OF COLORADO Michael J. Nickerson, Ellery B. Ames, John L. Hall, and Peter L. Bender JILA, University of Colorado and NIST,
ZTF Cryostat Finite Element Analysis Andrew Lambert ZTF Technical Meeting 1.
GLAST LAT ProjectDOE/NASA Mechanical Systems Peer Review, March 27, 2003 Section Mechanical Systems X-LAT Assy1 GLAST Large Area Telescope: Mechanical.
GLAST LAT ProjectDOE/NASA Mechanical Systems Peer Review, March 27, 2003 Document: LAT-PR-0XXXX Section 5.1 Grid Box Design 1 GLAST Large Area Telescope:
GLAST LAT ProjectDOE/NASA Mechanical Systems Peer Review, March 27, 2003 Document: LAT-PR-0XXXX Section 6.0 Subsystem Verif. Test Plan 1 GLAST Large Area.
1 PFP Peer iCDR /9-11 Particles and Fields Package (PFP) Peer Instrument Critical Design Review SWIA Mechanical Gregory Dalton Gregory Johnson UCB-SSL.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Data Products & Production Pipeline Larry Kepko Boston University Center for Space Physics.
MERLIN BEAMLINE RIXS refocusing mirror system D. Yegian
C osmic R Ay T elescope for the E ffects of R adiation PERFORMANCE ASSURANCE BRIAN KLATT MISSION ASSURANCE MANAGER.
C osmic R Ay T elescope for the E ffects of R adiation 6/27/06 Telescope Mechanical Design1 Albert Lin The Aerospace Corporation (310)
1 Structure (STR) Subsystem Overview Jonah White – STR Co-Lead.
Cavity support scheme options Thomas Jones 25/06/15 to 06/07/15 1.
C osmic R Ay T elescope for the E ffects of R adiation Mechanical Design CRaTER and the Electronics Assembly Matthew Smith Mechanical Engineer (617)
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Environmental Review (I-PER) Environmental Test Planing Bob Goeke September 10-11, 2008.
Sept. 2008EFW INST+SOC PDR IDPU Chassis Mechanical Design and Development Bill Donakowski Mechanical Engineer UCB/SSL
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Environmental Review (I-PER) Project and Independent Review Activity R. Foster September.
Cosmic Ray Telescope for the Effects of Radiation (CRaTER) Instrument Requirements Justin Kasper CRaTER Instrument Scientist MIT & Boston University.
An alternative spectrograph mount Bruce C. Bigelow University of Michigan Department of Physics 5/14/04.
Calculation of Beam loss on foil septa C. Pai Brookhaven National Laboratory Collider-Accelerator Department
A Multi-Disciplinary Approach to Calculate Displacement Due to Random Vibration For A Space Based Focal Plane Anthony J. Davenport Senior Mechanical Engineer.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Environmental Review (I-PER) Calibration Test Planning Justin C Kasper Smithsonian Astrophysical.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Environmental Review (I-PER) Science Requirements Update Justin C Kasper Smithsonian.
1 PFDPU Mechanical Packaging PEER REVIEW MAVEN PFDPU Particle and Fields Data Processing Unit Mechanical Packaging and Design Overview May 09, 2011 Bill.
C osmic R Ay T elescope for the E ffects of R adiation Bill Crain, PDR Slide 128 September 2005 Detectors and Analog Electronics Bill Crain The Aerospace.
GLAST LAT ProjectMarch 24, 2003 HPS Tracker Peer Review, WBS Section 2-D 1 GLAST Large Area Telescope: Tracker Subsystem WBS Structural.
Another Modular Focal Plane: Part 1 – Sub-modules Bruce C. Bigelow University of Michigan Department of Physics 5/17/04.
C osmic R Ay T elescope for the E ffects of R adiation June 27, 2005Larry Kepko - Data ProcessingPage 1 CRaTER Characterization Data Products & Production.
Cosmic RAy Telescope for the Effects of Radiation (CRATER) Spacecraft Requirements Review Presentation August 2005 Justin Kasper CRaTER Instrument.
109-IDPU-Chassis-Donakowski 1 30 Sep – 01 Oct 2009DRAFT RBSP EFW ICDR 109-IDPU-Chassis-Donakowski IDPU Chassis Mechanical Design and Development Bill Donakowski.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Thermal Analysis Huade Tan 6/27/05.
STEREO IMPACT SEP Critical Design Review 2002-Nov-21/22 TvR1 SEP Mechanical Design Sandy Shuman, GSFC ) Tycho.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Ship Review (PSR) Instrument Calibration Science Requirements Compliance Justin C Kasper.
RBSP Radiation Belt Storm Probes RBSP Radiation Belt Storm Probes RBSP/EFW CDR /30-10/1 535 IDPU Chassis Bill Donakowski Mechanical Engineer UCB/SSL.
RBSP Radiation Belt Storm Probes RBSP Radiation Belt Storm Probes RBSP/EFW CDR /30-10/1 Thermal Design Christopher Smith RBSP Thermal Engineer Space.
© The Aerospace Corporation 2010 Use of Geant4 Simulations to Understand LRO/CRaTER Observations M. D. Looper, J. E. Mazur, J. B. Blake, The Aerospace.
SOIL MECHANICS AND FOUNDATION ENGINEERING-II (CE 311)
7th SRF Materials Workshop FRIB SRF Cavities 7/16/12 Chris Compton.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Ship Review (I-PSR) Thermal Analysis Christine Cottingham LM/GSFC 545 Hume Peabody GSFC.
C osmic R Ay T elescope for the E ffects of R adiation 27 June 2005 Digital Engineering Digital Sub-System Bob Goeke.
C osmic R Ay T elescope for the E ffects of R adiation CRaTER Pre-Environmental Review (I-PER) Calibration Test Planning Justin C Kasper Smithsonian Astrophysical.
Telescope - Mechanical
Optical Blocking Filter and Dust-proof Film for HXMT
Bill Donakowski Mechanical Engineer UCB/SSL
CRaTER Pre-Environmental Review (I-PER) Engineering Requirements/Design Updates Bob Goeke September 10-11, 2007.
ob-fpc: Flexible printed circuits for the alice tracker
Mini-RF Requirements Overview
Matthew Smith (617) June 27, 2006 Mechanical Design, CRaTER Assembly and Electronics Assembly Critical Design Review Matthew.
CRaTER Pre-Environmental Review (I-PER) Completed Verification Results Bob Goeke September 10-11, 2008.
CTC / MTC 222 Strength of Materials
Matthew Smith Mechanical Engineer (617)
Systems Engineering Bob Goeke.
Vibration Basics and Shaker Selection
CRaTER Science Requirements
CRaTER Science Requirements
CRaTER Pre-Environmental Review (I-PER) Science Requirements Update Justin C Kasper Smithsonian Astrophysical Observatory September 10-11, 2007.
CRaTER Pre-Environmental Review (I-PER) Completed Verification Results Bob Goeke September 10-11, 2007.
CRaTER Performance Verification
Vibration Basics and Shaker Selection
Structures March 13, 2004.
CRaTER Pre-Environmental Review (I-PER) Engineering Requirements/Design Updates Bob Goeke September 10-11, 2008.
Another Modular Focal Plane: Part 2 – FP assembly
Presentation transcript:

C osmic R Ay T elescope for the E ffects of R adiation CDR v1 Telescope Mechanical Design Albert Lin The Aerospace Corporation Mechanical Engineer (310) /1/06

C osmic R Ay T elescope for the E ffects of R adiation Overview Design Overview Instrument Requirements Mechanical Requirements Design Details Next Steps

C osmic R Ay T elescope for the E ffects of R adiation Design Overview Detectors are housed in stiff structure and decoupled from the interface circuit board TEP mounts allow for thermal expansion/contraction Instrument is shielded and electrically isolated at interface

C osmic R Ay T elescope for the E ffects of R adiation Overall Dimensions Weight = 2.89 lbs

C osmic R Ay T elescope for the E ffects of R adiation Overview Design Overview Instrument Requirements Mechanical Requirements Design Details Next Steps

C osmic R Ay T elescope for the E ffects of R adiation Instrument Requirements From Instrument Requirements Document (IRD) ItemRequirement CRaTER-L2-04TEP components of 27 mm and 54 mm in length CRaTER-L3-01Adjacent pairs of 140 micron and 1000 micron thick Si detectors CRaTER-L3-02Aluminum shielding 0.06” thick CRaTER-L ” thick aluminum on both ends of the telescope CRaTER-L3-04Telescope stack: S1, D1, D2, A1, D3, D4, A2, D5, D6, S2 CRaTER-L3-06Zenith field of view from D1D6 at 35 degrees CRaTER-L3-07Nadir field of view from D3D6 at 80 degrees All requirements incorporated into model

C osmic R Ay T elescope for the E ffects of R adiation Telescope Geometry All Requirements Met A-150 TEP of 27 mm and 54 mm in length Pairs of thin (~140 micron) and thick (~1000 micron) Si detectors used 0.060” nominal aluminum shielding 0.030” thick aluminum on top and bottom apertures Telescope stack consistent with requirement Within 35 degree Field of Regard Zenith Within 80 degree Field of Regard Nadir

C osmic R Ay T elescope for the E ffects of R adiation Overview Design Overview Instrument Requirements Mechanical Requirements Design Details Next Steps

C osmic R Ay T elescope for the E ffects of R adiation Mechanical Requirements From 431-RQMT , Mechanical System Specifications Requirement DescriptionLevels Net CG limit loads Superceded by Random Vibration 12 g Sinusoidal Vibration Loads Superceded by Random Vibration Frequency: Hz Protoflight/Qual: 8g Acceptance: 6.4g 2.5 Acoustics Enclosed box without exposed thin surfaces OASPL Protoflight/Qual: dB OASPL Acceptance: dB Random VibrationSee next slide 2.7.2Shock Environment 40 g at 100 Hz 2665 g at Hz No self induced shock Minimum Fundamental FrequencyMinimum > 35 Hz Recommended > 50 Hz Will not provide FEM model > 75 Hz

C osmic R Ay T elescope for the E ffects of R adiation Random Vibration Random Vibration will drive most of the analysis For resonances in the Random Vibration Spec, Miles’ Equation shows 3 sigma loading on the order of g Assume Q = 20

C osmic R Ay T elescope for the E ffects of R adiation Stress Margins Load levels are superceded by random vibration spec Factors of Safety used for corresponding material (MEV 5.1) –Metals: 1.25 Yield, 1.4 Ultimate –Composite: 1.5 Ultimate Margin of Safety = (Allowable Stress or Load)/(Applied Stress or Load x FS) – 1 All components have positive Margin of Safety

C osmic R Ay T elescope for the E ffects of R adiation First Fundamental Frequency First Fundamental Frequency at 1910 Hz

C osmic R Ay T elescope for the E ffects of R adiation Overview Design Overview Instrument Requirements Mechanical Requirements Design Details Next Steps

C osmic R Ay T elescope for the E ffects of R adiation How to Mount TEP Limited Material Properties information on A-150 TEP Need to mount TEP to –Minimize deformation of TEP during assembly –Allow for thermal contraction –Exert 40 lbs preload to withstand random vibration Springs exert 40 lbs at hot and cold cases Detectors TEP Sample Solution Oversized mounting hole to allow for changes in radial dimension Spring clamp to hold in TEP with preload at all temperatures

C osmic R Ay T elescope for the E ffects of R adiation Purging and Venting Spacers between each pair of detectors for venting No enclosed cavities Purge/vent system shown in red Internal purge line from Ebox connects to telescope purge system

C osmic R Ay T elescope for the E ffects of R adiation Overview Design Overview Telescope Requirements Mechanical Requirements Design Details Next Steps

C osmic R Ay T elescope for the E ffects of R adiation Next Steps Measure material properties for TEP Spring analysis

C osmic R Ay T elescope for the E ffects of R adiation Telescope – Mechanical Albert Lin

C osmic R Ay T elescope for the E ffects of R adiation Backup Slides

C osmic R Ay T elescope for the E ffects of R adiation CRaTER-L Requirement Break the TEP into two components, of 27 mm and 54 mm in length.

C osmic R Ay T elescope for the E ffects of R adiation 6.1 CRaTER-L3-01Thin and thick detector pairs Requirement The telescope stack will contain adjacent pairs of thin (approximately 140 micron) and thick (approximately 1000 micron) Si detectors. The thick detectors will be used to characterize energy deposition between approximately 200 keV and 100 MeV. The thin detectors will be used to characterize energy deposits between 2 MeV and 1 GeV. 6.2 CRaTER-L3-02 Nominal instrument shielding Requirement The shielding due to mechanical housing the CRaTER telescope outside of the zenith and nadir fields of view shall be no less than 0.06” of aluminum.

C osmic R Ay T elescope for the E ffects of R adiation 6.3 CRaTER-L3-03 Nadir and zenith field of view shielding Requirement The zenith and nadir sides of the telescope shall have no less than 0.03” of aluminum shielding. 6.4 CRaTER-L3-04 Telescope stack Requirement The telescope will consist of a stack of components labeled from the nadir side as zenith shield (S1), the first pair of thin (D1) and thick (D2) detectors, the first TEP absorber (A1), the second pair of thin (D3) and thick (D4) detectors, the second TEP absorber (A2), the third pair of thin (D5) and thick (D6) detectors, and the final nadir shield (S2).

C osmic R Ay T elescope for the E ffects of R adiation 6.6 CRaTER-L3-06 Zenith field of view Requirement The zenith field of view, defined as D1D6 coincident events incident from deep space, will be 35 degrees full width. 6.7 CRaTER-L3-07 Nadir field of view Requirement The nadir field of view, defined as D3D6 coincident events incident from the lunar surface, will be 75 degrees full width.

C osmic R Ay T elescope for the E ffects of R adiation Bolt Interface Loading Mechanical Engineering Design, by Shigley RP-1228 NASA Fastener Design First fundamental frequency at 1910 Hz 3 sigma load = 124g A286 CRES #6-32 Bolts at Interface

C osmic R Ay T elescope for the E ffects of R adiation Detector Board Stress See Cosmosworks report

C osmic R Ay T elescope for the E ffects of R adiation Detector Analysis Assuming Q = 15 Detector Material = Silicon Fundamental Frequency = 2130 Hz; 2000 Hz yields 3 sigma load of 105g Ultimate Margin of Safety = (17,400 psi / (1.4 * 252 psi) – 1 = 48.3

C osmic R Ay T elescope for the E ffects of R adiation Sensitivity Analysis Preceding calculations used a nominal Q of 15 This table shows how the 3 sigma g-loads vary with Fundamental Frequency and Q Most structures have Q between 10 and 20

C osmic R Ay T elescope for the E ffects of R adiation Factors of Safety Used

C osmic R Ay T elescope for the E ffects of R adiation Material Properties 1.MIL-HDBK-5J 2.Silicon as a Mechanical Material, Proceedings of the IEEE, Vol 70, No. 5, May 1982, pp Boedeker Plastics via