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From Technologies to Markets
© 2020
High-End
Inertial Sensors for
Defense,Aerospace
& Industrial
Applications
Market and Technology
Report 2020
2High-End Inertial Sensors 2020 | Report | www.yole.fr | ©2020
GLOSSARY:ACRONYMS & DEFINITIONS
Acronym Definition
AHRS Attitude-Heading Reference System
ASP Average Selling Price
AUV Autonomous UnderwaterVehicle
CAGR Compound Annual Growth Rate
DTG DynamicallyTuned Gyroscope
FOG Fiber Optical Gyroscope
HRG Hemispheric Resonator Gyroscope
IC Integrated Circuit
IMU Inertial Measurement Unit
INS Inertial Navigation System
IRU Inertial Reference Unit
Acronym Definition
LAV Light ArmoredVehicle
M&A Merger & Acquisition
MAV Medium ArmoredVehicle
MEMS Micro-Electro-Mechanical System
OEM Original Equipment Manufacturer
PCB Printed Circuit Board
RLG Ring Laser Gyroscope
ROV Remotely OperatedVehicle
UAV Unmanned AerialVehicle
UGV Unmanned GroundVehicle
UUV Unmanned UnderwaterVehicle
3
 Glossary and definition 2
 Table of contents 3
 Report scope 4
 Methodologies & Definitions 7
 About the authors 8
 Companies cited in this report 9
 Why this report? 11
 What we got right, What we got wrong 12
 3-page Summary 14
 Executive Summary 18
 Context 46
 Market forecasts (value & units) 69
o Industrial
o Commercial naval & offshore
o Commercial Aerospace
o Defense & Military
 Market trends 100
o Industrial & commercial naval
o Commercial Aerospace & Space
o Defense
o Robotic applications & new mobility
 Market shares and supply chain 154
o Players’ overview
o Player market shares by technology (FOG, RLG, HRG,
Si-MEMS, Q-MEMS, DTG & others)
High End Inertial Sensors 2020 | Report | www.yole.fr | ©2019
TABLE OF CONTENTS
o Player market shares by application grade (industrial,
tactical, navigation, strategic)
o Supply chain by application
o Supply chain by technology (FOG, RLG, HRG,
Si-MEMS, Q-MEMS, DTG & others)
 Technology trends 226
o Gyroscopes (FOG, RLG, HRG, Si-MEMS, Q-MEMS,
DTG & others)
o Accelerometers
o Inertial R&D concepts
 Cost & manufacturing 295
o Gyroscope cost per axe and per IMU (FOG, RLG,
HRG, Si-MEMS, Q-MEMS, DTG & others)
o Accelerometers
o Cost evolution
 Conclusions 325
 Reverse Costing® - Structure, Process and Cost analyses 331
 Related reports 337
 Appendix 338
o Application description, key specifications, main players,
techno trends,main drivers
 How to use our data? 366
 Yole Corporate Presentation 367
4
Dimitrios DAMIANOS, Market &Technology Analyst
Dimitrios Damianos, PhD, joinedYole Développement (Yole) as a Technology and Market Analyst in the Photonics & Sensing division. Dimitrios works
daily with his team to deliver valuable technology & market reports regarding the imaging and sensor industry, including photonics & MEMS. He holds
a BSc in Physics and an MSc in Photonics from the University of Patras (Greece).After his research on theoretical and experimental quantum optics
and laser light generation, Dimitrios pursued a Ph.D. at Grenoble University (France) in optics and microelectronics. He has authored and co-authored
several scientific papers in international peer-reviewed journals.
Contact: dimitrios.damianos@yole.fr
Guillaume GIRARDIN, Division Director
Guillaume Girardin, PhD, is Director of the Photonics, Sensing & Display Division atYole Développement, member ofYole Group of Companies.As
director, he also performs several technical activities covering sensing technologies, including solid-state lighting & display, MEMS, sensors, actuators,
imaging, photonics and optoelectronics fields. Based on his valuable experience in the semiconductor industry, Guillaume manages the expansion of
the technical and market expertise of his team by increasing synergies around imaging, lighting and display, and enlarging the optoelectronics scope.The
team interacts daily with leading companies allowing the analysts to collect a large amount of data and to integrate their understanding of the
evolution of the market with technology breakthroughs. In parallel, Guillaume’s mission is focused on the management of business relationships with
leaders in the industry and the development of market research and strategy consulting activities within theYole Group. Dr Girardin holds a Ph.D. in
Physics and Nanotechnology from the Claude Bernard University Lyon 1 (Lyon, France) and an M.Sc. in Technology and Innovation Management from
EM Lyon School of Business (Lyon, France).
Contact: guillaume.girardin@yole.fr
High-End Inertial Sensors 2020 | Report | www.yole.fr | ©2020
Biographies & contacts
ABOUT THE AUTHORS
5High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
SCOPE OFTHE REPORT
Yours needs are
out of the report’
scope?
Contact us for a custom:
Technology ApplicationsMarkets
Trends
& players
Forecasts
Units
$US Dollar
Military/Defense
Accelerometer
Gyroscope
IMU
Industrial
Commercial Aerospace
INS
Players and ranking
Trends
Forecasts
Agriculture
AUVs
Freight transport ship
High speed train
Inclinometers
Oil drilling heads
ROV
Satcom antenna stab
Platform stabilization
UGVs
Vibration monitoring
Structural health monitoring
Machine health monitoring
Business Jets
Civil aircraft
Civil helicopters
Civil and paramilitary UAVs
General aviation
Satellites
Space crafts & rockets
Defense ships
Defense transport aircraft
Defense UAVs
Guided munitions
Soldier navigation
LAV/Artillery Guns
MAV/Tanks
Military & special mission helicopters
Military fighters
Military submarines
Nuclear missiles
Short, medium and long range missiles
…
+
+ +
GPS
Commercial Maritime
6High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
METHODOLOGIES & DEFINITIONS
Market
Volume (in Munits)
ASP (in $)
Revenue (in $M)
Yole’s market forecast model is based on the matching of several sources:
Information
Aggregation
Preexisting
information
7
Gyroscope
In-Run bias stability (for industrial / tactical)
or day to day bias Stability (for navigation
/ strategic)
Corresponding Grade
100°/h
5°/h
1°/h
0.5°/h
0.1°/h
0.05°/h
0.01°/h
0.001°/h
High-end
navigation
& strategic
Definition of application grades
Tactical
Mid-term
Navigation
Industrial
« High-performance » inertial sensors
o  With regard to the applications: we consider all inertial sensors except for the
consumer / mobile and automotive applications.
o We take into account industrial, aerospace, defense applications (even industrial
applications are considered as “high-performance” applications, as opposed to consumer
ones).
o In some cases: « consumer-grade » MEMS gyroscopes (for instance few °/s bias stability)
are used in industrial applications.
To simplify representation, performance has been divided into 4 segments:
o The only parameter which is considered is the bias stability:
• >5°/h range: « industrial » grade (but it doesn’t mean that this is an industrial
application: for instance, often missile and bomb guidance require moderate bias
stability and fall in this category)  ability to get data on angular rates / on
motion.
• 0.1-5°/h range: « tactical» grade  possibility to get angles.
• 0.01-0.1°/h range: « mid-term navigation » grade  possibility for mid-term
navigation (for GPS outage) and azimuth detection.
• <0.01°/h range: « high-end navigation & strategic » grade ability to navigate.
o Day to day bias stability is considered for navigation grade; this is the most significant
parameter in characterizing a navigation system.
o In-run bias stability is used for industrial and tactical grade because:
• In the past 20 years, MEMS have appeared and delivered performance in terms of
« in-run » parameters.
• Use of inertial sensors is now frequently used in conjunction with GPS, meaning
that day-to-day bias repeatability is no longer significant (for tactical / industrial
grade).
o Other parameters may need to be considered as well, depending on the application.
Parameters such as angular random walk or scale factor may be more important than
just bias stability.
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
SCOPE OFTHE REPORT
8
Airbus,Al Cielo,Analog Devices, AOSense,Astrium,Autoflug, Boeing, CASC China
Aerospace, Civitanavi, Colibrys, ColdQuanta, Doosan, ElbitSystems(Elop),
Elektropribor, Emcore, Endevco, Epson Toyocom, FiberPro, Fizoptika, Freescale, GEM
Elettronica, Gladiator Technologies, Hitachi, Honeywell, IAI, iMAR, Innalabs, iXBlue,
JAE, Kearfott, Kongsberg, KVH, L3 Harris, LordMicrostrain, Lumedyne Technologies,
MEMSense, Moog/Crossbow, MTMicrosystems, Murata, Navtech, Northrop
Grumman, Litef, Optolink, Oshkosh, PCB Piezo, Perm, Physical Logic, Raytheon, Saab,
Safran, Si-Ware, SBG Systems, Schlumberger, Sensonor, Sensorex/Meggitt, Silicon
Design, Silicon Sensing System, Sensors in Motion, StarNeto, Systron Donner
Inertial,Tamagawa,TDK/Tronics,TeledyneTSS,Teknol,Thales,Tokyo Keiki, UTC
Aerospace/AIS Goodrich,VectorNav,Watson Instruments, XSens…
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
COMPANIES CITED IN THIS REPORT
Non-exhaustive list
9
This report is an update of Yole’s best-selling “IMU Markets” report, which was first released in 2008. This latest edition
is an updated version with some major changes since the last edition:
• The market is quantified for each gyroscope technology, and each company’s yearly shipments are estimated.
• Market metrics are provided for each grade of gyroscopes: each application is positioned according to performance level and
corresponding market size.
• Applications are described in a synthetic way in order to provide rapid access to key information (functions, specification,
technical solution, geography, trends, and market evolution) and graphical representation of the industrial chain.
The high-end inertial business is a tough market, between the different technologies, the different level of integration, at
different performances and the numerous applications of major markets which lead to a complex description of this
broad market. Added to that, as we deal with critical applications (defense & aerospace), the availability of various data is
limited since many players are reluctant to discuss and disclose information about these sensitive markets.
Therefore, the data that you will find in this report is the best available data according to our hypotheses. If you have
other arguments and want to react to something, or have an open discussion, please feel free to contact us.
This report combines the best of Yole’s knowledge in the high-performance inertial sensor industry.
Yole regularly participates in industry conferences and tradeshows worldwide and has close relations with most market
leaders.This report synthetizes the status of the 2019 inertial sensor industry in a thorough manner.
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
DISCLAIMER
2020 High End Inertial Sensors Industry
10
GYRO TECHNOLOGY OVERVIEW
3 main sensing
technologies
and 7 types of
gyros…
Gyroscopes are based on 3 sensing technologies:
o Mechanical/Vibration based gyroscopes (Coriolis
force)
o Optical gyroscopes (Sagnac effect)
o Resonating gyroscopes (Resonating mass)
7 types of gyros have been identified:
o Mechanical/ Spinning Mass gyroscopes
o Electric Suspension (electrostatic) Gyroscopes (ESG)
o Ring Laser Gyros (RLG)
o Fiber Optical Gyroscopes (FOG)
o Hemispherical Resonator Gyroscopes (HRG)
o Quartz gyroscopes (non-MEMS)
o Micro-machined gyros (MEMS): vibrating quartz or
vibrating silicon
o Old technology is mechanical dynamically tuned gyros
also called dynamically tuned gyros (DTG)
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
GYROSCOPES
Mechanical Optical
ESG
HRG
SiandQuartzMEMS
FOG
RLG
SpinningMass
DTG
Dominanttechnologies
Resonating
ESG
SpinningMass
DTG
It uses the action of the
Coriolis force to sense the
rotation.
Gyroscopes can be
activated by
• High speed rotation
• vibration
It uses the
Sagnac effect
to measure
the rotation
rate by
measuring
the phase
shift of two
counterprop
agating light
beams in an
interferomet
er.
It uses a
stationary
mass
where a
stationary
resonance
wave is
maintained
electronic
ally.
11
ACCELEROMETER DETECTION CLASSIFICATION
2 main families
5 types of
accelerometers
There are two main families (and a smaller one) of linear acceleration sensing technologies:
• Pendulous/Translational Mass displacement/rebalance
• Electrical Restraint
• Rotational Restraint
• Elastic Restraint
• Resonant Element Frequency
• Vibrating String
• Vibrating Beam
• Double EndedTuning Fork
• Thermal
5 types of accelerometers have been identified:
• Pendulous Rebalance Accelerometers (particularly PIGA)
• Force Rebalance Accelerometers
• Resonant Element Accelerometers
• Thermal Accelerometers
• MEMS Accelerometers
This has been divided in 2 sensing categories for the market detailed in this report:
MEMS: Resonant Silicon / Pendulous - Lateral Silicon + some Resonant Quartz accelerometers are counted here
(e.g. Honeywell RBA-500 which uses quartz resonator, but metal flexures and is integrated in HG1700,HG1900…)
Electromechanical, piezo & others: Pendulous - PIGA / Pendulous Force Rebalance / some Resonant Quartz Acc.
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
The 5 identified accelerometer types used in tactical grade applications
Accelerometers
Pendulous/Translational
Mass
displacement/rebalance
Resonant
Element
Frequency
ForceRebalance
Accelerometers
MEMS
Resonant
Element
Accelerometers
Thermal
Accelerometers
PIGA
Thermal
12High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
TECHNOLOGY MATURITY TAKES TIME BUT COULD BE QUITE REGULAR...
3rd
2nd
1st
MEMS
+10/20 years
4th
1960 1980 2000 2020 2030+
Techno Maturity /
Time-to-Market
First rapid advance of the technology
An even evolution of inertial technologies can be found by analyzing different stages of
development of several technologies. Indeed, every 20 years, some change seems to appear in the
market, and in the coming years, HRG could be the next technology to mature and bring
enhanced performance in a compact SWAP. MEMS could follow the same path within 10 years?
Mechanical Gyro
+20 years
RLG / FOG
+20 years
HRG
+20Years
13
PERFORMANCE CLASSES OFVARIOUS GYROS
MEMS could eat
up the FOG
market in the
future if similar
performance is
achieved at
lower price (due
to batch
manufacturing).
HRG, particularly
from Safran, is
well positioned
as costs are
decreasing.
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
Gyro bias instability (°/h)
Cost*($)
0.01 0.5 15 40 100
Consumer
Industrial
Tactical
Navigation
Strate
gic
RLG
FOG
MEMS
HRG
*Cost is indicative for comparison purposes
0.01
1
1000
10,000
50,000
100
30,000
14High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
HIGH END INERTIAL MARKET SEGMENTVALUE
~$1,550M
CAGR +3%
~$1,000M
CAGR +4.5%
~$4.26B
CAGR +4.7%
~$600M
~$800M
~$1,300M
~$3.24B
2019 2025
Total high end inertial
industry
Defense & military
Commercial aerospace
~$700M
CAGR +3%
~$950M
CAGR +10.5%
~$550M
Commercial naval
Industrial
15High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
PLAYERS IN THE HIGH END INERTIAL FIELD AND GEOGRAPHIC DOMINANCE
~$3.24B
2019Non exhaust list of companies
USA
$2.24B
Polyus R&D Institute
Asia, Russia
& RoW
$0.35B
Europe &
Middle East
$0.65B
16
PLAYERS’ MAPPING PERTECHNOLOGY (1/3)
Inertial
Landscape
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
In-house Manufacturing
Company
Technologies portfolio Grade
Accelero Gyro IMU INS SiMEMS
Quartz
MEMS
FOG RLG HRG
DTG & others
mechanical
Industrial Tactical
Mid-term
Nav.
Long term
Nav/
Strategic
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
17
PLAYERS’ MAPPING PERTECHNOLOGY (2/3)
Inertial
Landscape
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
In-house Manufacturing
Company
Technologies portfolio Grade
Accelero Gyro IMU INS SiMEMS
Quartz
MEMS
FOG RLG HRG
DTG & others
mechanical
Industrial Tactical
Mid-term
Nav.
Long term
Nav/
Strategic
✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
18
PLAYERS’ MAPPING PERTECHNOLOGY (3/3)
Inertial
Landscape
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
In-house Manufacturing
Company
Technologies portfolio Grade
Accelero Gyro IMU INS SiMEMS
Quartz
MEMS
FOG RLG HRG
DTG & others
mechanical
Industrial Tactical
Mid-term
Nav.
Long term
Nav/
Strategic
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅
✅ ✅ ✅ ✅ ✅ ✅
✅ ✅ ✅ ✅ ✅
19
PLAYERS IN THE FIELD AND RANKING – MARKETVALUE
Top 3:
• Honeywell
• Northrop
Grumman
• Safran
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
Honeywell
Northrop Grumman / Litef
Safran
Analog Devices
L3 Harris
Raytheon Anschütz
IAI (Tamam)
CASC China Aerospace
KVH
iXBlue
Emcore (Systron Donner)
Endevco Meggitt
Silicon Sensing System
UTC Aero. AIS
Thales
JAE
Sensonor
GEM Electronica
iMAR
Kearfott
Kongsberg
Navtech (Beijing Nav Tech)
StarNeto
Seiko Epson
Fizoptika
Al Cielo
Elbit Systems (Elop)
2019 High-end inertial revenues market share - % and $M
Revenues for each player regrouping stand-alone accelerometers (1/2/3-A), gyroscopes (1/2/3-A), IMU, INS
$3.24B
20High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
GYRO TECHNOLOGY BREAKDOWN EVOLUTION
SiMEMS
QMEMS
FOGRLG
HRG
DTG & Others
2025 High-end inertial technology breakdown in value - $M
SiMEMS
QMEMS
FOGRLG
HRG
DTG & Others
2019 High-end inertial technology breakdown in value - $M
Only slight changes are expected, with RLG losing some market share due to the increasing popularity of FOG and HRG,
which are approaching RLG performances and will increasingly meet the requirements in various applications.
21
10°/h MEMS Axis
1°/h QMEMS Axis
1°/h FOG Axis
0.1°/h RLG Axis
0.01°/h HRG Axis
0.001°/h HRG Axis
ASP (USD$)
Axis cost structure (USD$) (Per technology)
Sensing part Electronic Board
+ Kalman Filter
Assembly
and Test
Final
calibration
Margins
SUMMARY OF AXIS COST STRUCTURE (PER TECHNOLOGY)
Sensing part,
electronic
board,
assembly, test
and calibration
represent the
highest extra
costs of a gyro
inertial axis
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
22High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
GYRO TECHNOLOGY BREAKDOWN – PER BIAS STABILITY CATEGORIES
0%
10%
20%
30%
40%
50%
60%
70%
80%
90%
100%
Industrial >5°/h Tactical 0.5-5°/h Mid-term Nav 0.05-0.5°/h LT Nav/Strategic <0.05°/h
2019 High-end Inertial Market - Technology breakdown
23
WHAT DOES THE FUTURE HOLD? PROJECTIONTOWARD 2025
A global
CAGR of 4%
expected.
Market value
is expected to
reach $4.2B
by 2025.
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
$-
$2 500
$5 000
Industrial Maritime Aerospace Defense TOTAL
Marketvalue($M)
High-end inertial system revenues by market breakdown ($M) evolution from 2019 up to 2025
24
Vibrating silicon MEMS pushes FOG and RLG to be very competitive on the very high-end market
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
FUTURE GYRO PERFORMANCE TRENDS
2025+2019
25
Contact our
SalesTeam
for more
information
Sensors for Robotic Vehicles
2018
Status of the MEMS Industry
2019
Uncooled Infrared Imagers
and Detectors 2019
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
YOLE GROUP OF COMPANIES RELATED REPORTS
Yole Développement
26
Contact our
SalesTeam
for more
information
Analog Devices ADIS16460
IMU
Honeywell HG4930CA51 6-
Axis MEMS Inertial Sensor
Honeywell HG1120CA50 9-
Axis MEMS Inertial Sensor
Tronics GYPRO3300
Angular Rate Sensor
Safran Colibrys VS1000
Series
High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
YOLE GROUP OF COMPANIES RELATED REPORTS
System Plus Consulting
27
o CONSULTING AND SPECIFICANALYSIS, REPORT BUSINESS
• North America:
• Steve LaFerriere, Senior Sales Director forWestern US & Canada
Email: laferriere@yole.fr – + 1 310 600-8267
• ChrisYouman, Senior Sales Director for Eastern US & Canada
Email: chris.youman@yole.fr – +1 919 607 9839
• Japan & Rest of Asia:
• Takashi Onozawa, General Manager,Asia Business Development
(India & ROA)
Email: onozawa@yole.fr - +81 34405-9204
• Miho Ohtake, Account Manager (Japan)
Email: ohtake@yole.fr - +81 3 4405 9204
• Itsuyo Oshiba, Account Manager (Japan & Singapore)
Email: oshiba@yole.fr - +81-80-3577-3042
• Toru Hosaka, Business Development Manager (Japan)
Email: toru.hosaka@yole.fr - +81 90 1775 3866
• Korea: Peter Ok, Business Development Director
Email: peter.ok@yole.fr - +82 10 4089 0233
• Greater China: Mavis Wang, Director of Greater China Business
Development
Email: wang@yole.fr - +886 979 336 809 / +86 136 61566824
• Europe & RoW: Lizzie Levenez, EMEA Business Development Manager
Email: levenez@yole.fr - +49 15 123 544 182
o FINANCIAL SERVICES (in partnership withWoodside Capital
Partners)
o Jean-Christophe Eloy, CEO & President
Email: eloy@yole.fr - +33 4 72 83 01 80
o Ivan Donaldson,VP of Financial Market Development
Email: ivan.donaldson@yole.fr - +1 208 850 3914
o CUSTOM PROJECT SERVICES
o Jérome Azémar,Technical Project Development Director
Email: azemar@yole.fr - +33 6 27 68 69 33
o GENERAL
o CamilleVeyrier, Director, Marketing & Communication
Email: veyrier@yole.fr - +33 472 83 01 01
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High-End Inertial Sensors for Defense, Aerospace and Industrial Applications 2020

  • 1. From Technologies to Markets © 2020 High-End Inertial Sensors for Defense,Aerospace & Industrial Applications Market and Technology Report 2020
  • 2. 2High-End Inertial Sensors 2020 | Report | www.yole.fr | ©2020 GLOSSARY:ACRONYMS & DEFINITIONS Acronym Definition AHRS Attitude-Heading Reference System ASP Average Selling Price AUV Autonomous UnderwaterVehicle CAGR Compound Annual Growth Rate DTG DynamicallyTuned Gyroscope FOG Fiber Optical Gyroscope HRG Hemispheric Resonator Gyroscope IC Integrated Circuit IMU Inertial Measurement Unit INS Inertial Navigation System IRU Inertial Reference Unit Acronym Definition LAV Light ArmoredVehicle M&A Merger & Acquisition MAV Medium ArmoredVehicle MEMS Micro-Electro-Mechanical System OEM Original Equipment Manufacturer PCB Printed Circuit Board RLG Ring Laser Gyroscope ROV Remotely OperatedVehicle UAV Unmanned AerialVehicle UGV Unmanned GroundVehicle UUV Unmanned UnderwaterVehicle
  • 3. 3  Glossary and definition 2  Table of contents 3  Report scope 4  Methodologies & Definitions 7  About the authors 8  Companies cited in this report 9  Why this report? 11  What we got right, What we got wrong 12  3-page Summary 14  Executive Summary 18  Context 46  Market forecasts (value & units) 69 o Industrial o Commercial naval & offshore o Commercial Aerospace o Defense & Military  Market trends 100 o Industrial & commercial naval o Commercial Aerospace & Space o Defense o Robotic applications & new mobility  Market shares and supply chain 154 o Players’ overview o Player market shares by technology (FOG, RLG, HRG, Si-MEMS, Q-MEMS, DTG & others) High End Inertial Sensors 2020 | Report | www.yole.fr | ©2019 TABLE OF CONTENTS o Player market shares by application grade (industrial, tactical, navigation, strategic) o Supply chain by application o Supply chain by technology (FOG, RLG, HRG, Si-MEMS, Q-MEMS, DTG & others)  Technology trends 226 o Gyroscopes (FOG, RLG, HRG, Si-MEMS, Q-MEMS, DTG & others) o Accelerometers o Inertial R&D concepts  Cost & manufacturing 295 o Gyroscope cost per axe and per IMU (FOG, RLG, HRG, Si-MEMS, Q-MEMS, DTG & others) o Accelerometers o Cost evolution  Conclusions 325  Reverse Costing® - Structure, Process and Cost analyses 331  Related reports 337  Appendix 338 o Application description, key specifications, main players, techno trends,main drivers  How to use our data? 366  Yole Corporate Presentation 367
  • 4. 4 Dimitrios DAMIANOS, Market &Technology Analyst Dimitrios Damianos, PhD, joinedYole Développement (Yole) as a Technology and Market Analyst in the Photonics & Sensing division. Dimitrios works daily with his team to deliver valuable technology & market reports regarding the imaging and sensor industry, including photonics & MEMS. He holds a BSc in Physics and an MSc in Photonics from the University of Patras (Greece).After his research on theoretical and experimental quantum optics and laser light generation, Dimitrios pursued a Ph.D. at Grenoble University (France) in optics and microelectronics. He has authored and co-authored several scientific papers in international peer-reviewed journals. Contact: dimitrios.damianos@yole.fr Guillaume GIRARDIN, Division Director Guillaume Girardin, PhD, is Director of the Photonics, Sensing & Display Division atYole Développement, member ofYole Group of Companies.As director, he also performs several technical activities covering sensing technologies, including solid-state lighting & display, MEMS, sensors, actuators, imaging, photonics and optoelectronics fields. Based on his valuable experience in the semiconductor industry, Guillaume manages the expansion of the technical and market expertise of his team by increasing synergies around imaging, lighting and display, and enlarging the optoelectronics scope.The team interacts daily with leading companies allowing the analysts to collect a large amount of data and to integrate their understanding of the evolution of the market with technology breakthroughs. In parallel, Guillaume’s mission is focused on the management of business relationships with leaders in the industry and the development of market research and strategy consulting activities within theYole Group. Dr Girardin holds a Ph.D. in Physics and Nanotechnology from the Claude Bernard University Lyon 1 (Lyon, France) and an M.Sc. in Technology and Innovation Management from EM Lyon School of Business (Lyon, France). Contact: guillaume.girardin@yole.fr High-End Inertial Sensors 2020 | Report | www.yole.fr | ©2020 Biographies & contacts ABOUT THE AUTHORS
  • 5. 5High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 SCOPE OFTHE REPORT Yours needs are out of the report’ scope? Contact us for a custom: Technology ApplicationsMarkets Trends & players Forecasts Units $US Dollar Military/Defense Accelerometer Gyroscope IMU Industrial Commercial Aerospace INS Players and ranking Trends Forecasts Agriculture AUVs Freight transport ship High speed train Inclinometers Oil drilling heads ROV Satcom antenna stab Platform stabilization UGVs Vibration monitoring Structural health monitoring Machine health monitoring Business Jets Civil aircraft Civil helicopters Civil and paramilitary UAVs General aviation Satellites Space crafts & rockets Defense ships Defense transport aircraft Defense UAVs Guided munitions Soldier navigation LAV/Artillery Guns MAV/Tanks Military & special mission helicopters Military fighters Military submarines Nuclear missiles Short, medium and long range missiles … + + + GPS Commercial Maritime
  • 6. 6High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 METHODOLOGIES & DEFINITIONS Market Volume (in Munits) ASP (in $) Revenue (in $M) Yole’s market forecast model is based on the matching of several sources: Information Aggregation Preexisting information
  • 7. 7 Gyroscope In-Run bias stability (for industrial / tactical) or day to day bias Stability (for navigation / strategic) Corresponding Grade 100°/h 5°/h 1°/h 0.5°/h 0.1°/h 0.05°/h 0.01°/h 0.001°/h High-end navigation & strategic Definition of application grades Tactical Mid-term Navigation Industrial « High-performance » inertial sensors o  With regard to the applications: we consider all inertial sensors except for the consumer / mobile and automotive applications. o We take into account industrial, aerospace, defense applications (even industrial applications are considered as “high-performance” applications, as opposed to consumer ones). o In some cases: « consumer-grade » MEMS gyroscopes (for instance few °/s bias stability) are used in industrial applications. To simplify representation, performance has been divided into 4 segments: o The only parameter which is considered is the bias stability: • >5°/h range: « industrial » grade (but it doesn’t mean that this is an industrial application: for instance, often missile and bomb guidance require moderate bias stability and fall in this category)  ability to get data on angular rates / on motion. • 0.1-5°/h range: « tactical» grade  possibility to get angles. • 0.01-0.1°/h range: « mid-term navigation » grade  possibility for mid-term navigation (for GPS outage) and azimuth detection. • <0.01°/h range: « high-end navigation & strategic » grade ability to navigate. o Day to day bias stability is considered for navigation grade; this is the most significant parameter in characterizing a navigation system. o In-run bias stability is used for industrial and tactical grade because: • In the past 20 years, MEMS have appeared and delivered performance in terms of « in-run » parameters. • Use of inertial sensors is now frequently used in conjunction with GPS, meaning that day-to-day bias repeatability is no longer significant (for tactical / industrial grade). o Other parameters may need to be considered as well, depending on the application. Parameters such as angular random walk or scale factor may be more important than just bias stability. High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 SCOPE OFTHE REPORT
  • 8. 8 Airbus,Al Cielo,Analog Devices, AOSense,Astrium,Autoflug, Boeing, CASC China Aerospace, Civitanavi, Colibrys, ColdQuanta, Doosan, ElbitSystems(Elop), Elektropribor, Emcore, Endevco, Epson Toyocom, FiberPro, Fizoptika, Freescale, GEM Elettronica, Gladiator Technologies, Hitachi, Honeywell, IAI, iMAR, Innalabs, iXBlue, JAE, Kearfott, Kongsberg, KVH, L3 Harris, LordMicrostrain, Lumedyne Technologies, MEMSense, Moog/Crossbow, MTMicrosystems, Murata, Navtech, Northrop Grumman, Litef, Optolink, Oshkosh, PCB Piezo, Perm, Physical Logic, Raytheon, Saab, Safran, Si-Ware, SBG Systems, Schlumberger, Sensonor, Sensorex/Meggitt, Silicon Design, Silicon Sensing System, Sensors in Motion, StarNeto, Systron Donner Inertial,Tamagawa,TDK/Tronics,TeledyneTSS,Teknol,Thales,Tokyo Keiki, UTC Aerospace/AIS Goodrich,VectorNav,Watson Instruments, XSens… High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 COMPANIES CITED IN THIS REPORT Non-exhaustive list
  • 9. 9 This report is an update of Yole’s best-selling “IMU Markets” report, which was first released in 2008. This latest edition is an updated version with some major changes since the last edition: • The market is quantified for each gyroscope technology, and each company’s yearly shipments are estimated. • Market metrics are provided for each grade of gyroscopes: each application is positioned according to performance level and corresponding market size. • Applications are described in a synthetic way in order to provide rapid access to key information (functions, specification, technical solution, geography, trends, and market evolution) and graphical representation of the industrial chain. The high-end inertial business is a tough market, between the different technologies, the different level of integration, at different performances and the numerous applications of major markets which lead to a complex description of this broad market. Added to that, as we deal with critical applications (defense & aerospace), the availability of various data is limited since many players are reluctant to discuss and disclose information about these sensitive markets. Therefore, the data that you will find in this report is the best available data according to our hypotheses. If you have other arguments and want to react to something, or have an open discussion, please feel free to contact us. This report combines the best of Yole’s knowledge in the high-performance inertial sensor industry. Yole regularly participates in industry conferences and tradeshows worldwide and has close relations with most market leaders.This report synthetizes the status of the 2019 inertial sensor industry in a thorough manner. High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 DISCLAIMER 2020 High End Inertial Sensors Industry
  • 10. 10 GYRO TECHNOLOGY OVERVIEW 3 main sensing technologies and 7 types of gyros… Gyroscopes are based on 3 sensing technologies: o Mechanical/Vibration based gyroscopes (Coriolis force) o Optical gyroscopes (Sagnac effect) o Resonating gyroscopes (Resonating mass) 7 types of gyros have been identified: o Mechanical/ Spinning Mass gyroscopes o Electric Suspension (electrostatic) Gyroscopes (ESG) o Ring Laser Gyros (RLG) o Fiber Optical Gyroscopes (FOG) o Hemispherical Resonator Gyroscopes (HRG) o Quartz gyroscopes (non-MEMS) o Micro-machined gyros (MEMS): vibrating quartz or vibrating silicon o Old technology is mechanical dynamically tuned gyros also called dynamically tuned gyros (DTG) High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 GYROSCOPES Mechanical Optical ESG HRG SiandQuartzMEMS FOG RLG SpinningMass DTG Dominanttechnologies Resonating ESG SpinningMass DTG It uses the action of the Coriolis force to sense the rotation. Gyroscopes can be activated by • High speed rotation • vibration It uses the Sagnac effect to measure the rotation rate by measuring the phase shift of two counterprop agating light beams in an interferomet er. It uses a stationary mass where a stationary resonance wave is maintained electronic ally.
  • 11. 11 ACCELEROMETER DETECTION CLASSIFICATION 2 main families 5 types of accelerometers There are two main families (and a smaller one) of linear acceleration sensing technologies: • Pendulous/Translational Mass displacement/rebalance • Electrical Restraint • Rotational Restraint • Elastic Restraint • Resonant Element Frequency • Vibrating String • Vibrating Beam • Double EndedTuning Fork • Thermal 5 types of accelerometers have been identified: • Pendulous Rebalance Accelerometers (particularly PIGA) • Force Rebalance Accelerometers • Resonant Element Accelerometers • Thermal Accelerometers • MEMS Accelerometers This has been divided in 2 sensing categories for the market detailed in this report: MEMS: Resonant Silicon / Pendulous - Lateral Silicon + some Resonant Quartz accelerometers are counted here (e.g. Honeywell RBA-500 which uses quartz resonator, but metal flexures and is integrated in HG1700,HG1900…) Electromechanical, piezo & others: Pendulous - PIGA / Pendulous Force Rebalance / some Resonant Quartz Acc. High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 The 5 identified accelerometer types used in tactical grade applications Accelerometers Pendulous/Translational Mass displacement/rebalance Resonant Element Frequency ForceRebalance Accelerometers MEMS Resonant Element Accelerometers Thermal Accelerometers PIGA Thermal
  • 12. 12High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 TECHNOLOGY MATURITY TAKES TIME BUT COULD BE QUITE REGULAR... 3rd 2nd 1st MEMS +10/20 years 4th 1960 1980 2000 2020 2030+ Techno Maturity / Time-to-Market First rapid advance of the technology An even evolution of inertial technologies can be found by analyzing different stages of development of several technologies. Indeed, every 20 years, some change seems to appear in the market, and in the coming years, HRG could be the next technology to mature and bring enhanced performance in a compact SWAP. MEMS could follow the same path within 10 years? Mechanical Gyro +20 years RLG / FOG +20 years HRG +20Years
  • 13. 13 PERFORMANCE CLASSES OFVARIOUS GYROS MEMS could eat up the FOG market in the future if similar performance is achieved at lower price (due to batch manufacturing). HRG, particularly from Safran, is well positioned as costs are decreasing. High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 Gyro bias instability (°/h) Cost*($) 0.01 0.5 15 40 100 Consumer Industrial Tactical Navigation Strate gic RLG FOG MEMS HRG *Cost is indicative for comparison purposes 0.01 1 1000 10,000 50,000 100 30,000
  • 14. 14High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 HIGH END INERTIAL MARKET SEGMENTVALUE ~$1,550M CAGR +3% ~$1,000M CAGR +4.5% ~$4.26B CAGR +4.7% ~$600M ~$800M ~$1,300M ~$3.24B 2019 2025 Total high end inertial industry Defense & military Commercial aerospace ~$700M CAGR +3% ~$950M CAGR +10.5% ~$550M Commercial naval Industrial
  • 15. 15High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 PLAYERS IN THE HIGH END INERTIAL FIELD AND GEOGRAPHIC DOMINANCE ~$3.24B 2019Non exhaust list of companies USA $2.24B Polyus R&D Institute Asia, Russia & RoW $0.35B Europe & Middle East $0.65B
  • 16. 16 PLAYERS’ MAPPING PERTECHNOLOGY (1/3) Inertial Landscape High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 In-house Manufacturing Company Technologies portfolio Grade Accelero Gyro IMU INS SiMEMS Quartz MEMS FOG RLG HRG DTG & others mechanical Industrial Tactical Mid-term Nav. Long term Nav/ Strategic ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
  • 17. 17 PLAYERS’ MAPPING PERTECHNOLOGY (2/3) Inertial Landscape High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 In-house Manufacturing Company Technologies portfolio Grade Accelero Gyro IMU INS SiMEMS Quartz MEMS FOG RLG HRG DTG & others mechanical Industrial Tactical Mid-term Nav. Long term Nav/ Strategic ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
  • 18. 18 PLAYERS’ MAPPING PERTECHNOLOGY (3/3) Inertial Landscape High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 In-house Manufacturing Company Technologies portfolio Grade Accelero Gyro IMU INS SiMEMS Quartz MEMS FOG RLG HRG DTG & others mechanical Industrial Tactical Mid-term Nav. Long term Nav/ Strategic ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅ ✅
  • 19. 19 PLAYERS IN THE FIELD AND RANKING – MARKETVALUE Top 3: • Honeywell • Northrop Grumman • Safran High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 Honeywell Northrop Grumman / Litef Safran Analog Devices L3 Harris Raytheon Anschütz IAI (Tamam) CASC China Aerospace KVH iXBlue Emcore (Systron Donner) Endevco Meggitt Silicon Sensing System UTC Aero. AIS Thales JAE Sensonor GEM Electronica iMAR Kearfott Kongsberg Navtech (Beijing Nav Tech) StarNeto Seiko Epson Fizoptika Al Cielo Elbit Systems (Elop) 2019 High-end inertial revenues market share - % and $M Revenues for each player regrouping stand-alone accelerometers (1/2/3-A), gyroscopes (1/2/3-A), IMU, INS $3.24B
  • 20. 20High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 GYRO TECHNOLOGY BREAKDOWN EVOLUTION SiMEMS QMEMS FOGRLG HRG DTG & Others 2025 High-end inertial technology breakdown in value - $M SiMEMS QMEMS FOGRLG HRG DTG & Others 2019 High-end inertial technology breakdown in value - $M Only slight changes are expected, with RLG losing some market share due to the increasing popularity of FOG and HRG, which are approaching RLG performances and will increasingly meet the requirements in various applications.
  • 21. 21 10°/h MEMS Axis 1°/h QMEMS Axis 1°/h FOG Axis 0.1°/h RLG Axis 0.01°/h HRG Axis 0.001°/h HRG Axis ASP (USD$) Axis cost structure (USD$) (Per technology) Sensing part Electronic Board + Kalman Filter Assembly and Test Final calibration Margins SUMMARY OF AXIS COST STRUCTURE (PER TECHNOLOGY) Sensing part, electronic board, assembly, test and calibration represent the highest extra costs of a gyro inertial axis High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020
  • 22. 22High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 GYRO TECHNOLOGY BREAKDOWN – PER BIAS STABILITY CATEGORIES 0% 10% 20% 30% 40% 50% 60% 70% 80% 90% 100% Industrial >5°/h Tactical 0.5-5°/h Mid-term Nav 0.05-0.5°/h LT Nav/Strategic <0.05°/h 2019 High-end Inertial Market - Technology breakdown
  • 23. 23 WHAT DOES THE FUTURE HOLD? PROJECTIONTOWARD 2025 A global CAGR of 4% expected. Market value is expected to reach $4.2B by 2025. High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 $- $2 500 $5 000 Industrial Maritime Aerospace Defense TOTAL Marketvalue($M) High-end inertial system revenues by market breakdown ($M) evolution from 2019 up to 2025
  • 24. 24 Vibrating silicon MEMS pushes FOG and RLG to be very competitive on the very high-end market High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 FUTURE GYRO PERFORMANCE TRENDS 2025+2019
  • 25. 25 Contact our SalesTeam for more information Sensors for Robotic Vehicles 2018 Status of the MEMS Industry 2019 Uncooled Infrared Imagers and Detectors 2019 High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 YOLE GROUP OF COMPANIES RELATED REPORTS Yole Développement
  • 26. 26 Contact our SalesTeam for more information Analog Devices ADIS16460 IMU Honeywell HG4930CA51 6- Axis MEMS Inertial Sensor Honeywell HG1120CA50 9- Axis MEMS Inertial Sensor Tronics GYPRO3300 Angular Rate Sensor Safran Colibrys VS1000 Series High End Inertial Sensors for Defense, Aerospace & Industrial Applications 2020 | Sample | www.yole.fr | ©2020 YOLE GROUP OF COMPANIES RELATED REPORTS System Plus Consulting
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