Aloha Observatory Design Cabled Observatory Presentation School of Ocean and Earth Science and Technology February 2006.

Slides:



Advertisements
Similar presentations
Orion Telecom Networks Inc VCL-E3 OLTE 34Mbps Optical Line Transmission Equipment Slide 1 Updated : January 1st, , Avenue of Fountains,
Advertisements

Valiant Communications Limited Slide 1 Updated : January, 2006 V aliant C ommunications L imited Telecom Transmission Solutions VCL-E3 OLTE 34Mbps.
Orion Telecom Networks Inc Slide 1 STM-1 63 E1 (Optical / Electrical) SDH Add-Drop Multiplexer Updated: Dec, 2010Orion Telecom Networks Inc
Veilux Fiber Optic Transceiver
MIFII DIGITAL FEEDER PROTECTION A Cost Effective Protection Solution for Overcurrent Protection at Any Voltage Level GE Multilin
PowerEdge M-Series CMC Management
Orion Telecom Networks Inc Slide 1 16 Port, E1 Digital Access Cross Connect Switch VCL-MegaConnect - Jr. E1 DACS Updated : March, , Avenue.
Introduction System Schematic ~ LON-FO NC EC200 LOOPS 2-4 FIBRE OPTIC
Autonomous Helicopter: James Lyden Harris Okazaki EE 496 A project to create a system that would allow a remote- controlled helicopter to fly without user.
EUT 1040 Lecture 10: Programmable Logic Controllers.
Part 1: Introduction FRC Introduction  FRC 2907 since 2008  Each area of the robot has a team assigned  The Electronics team is headed this year.
Presents The Silver Family An Integrated Approach to Processors, Data Communication and Head End Integration.
Networking for Ocean Bottom Observatories Taken from the Cabled Observatory Presentation School of Ocean and Earth Science and Technology February 2006.
Molly, Gwyn, Sam, and Eric.  What are you expecting as a final result? Our current understanding is that we’re making a system that takes in a variable.
CR1000s are only one part of a data acquisition system. To get good data, suitable sensors and a reliable data retrieval method are required. A failure.
Aloha Proof Module Design Cabled Observatory Presentation School of Ocean and Earth Science and Technology February 2006.
CR1000s are only one part of a data acquisition system. To get good data, suitable sensors and a reliable data retrieval method are required. A failure.
Copyright : Valiant Communications Limited Slide 1 STM-1 63 E1 (Optical / Electrical) SDH Add-Drop Multiplexer Product Presentation.
David MacNair POWER SUPPLY 3/30/20061 Ethernet Power Supply Controller.
ESTeem Training Class ESTeem Overview. ESTeem Product Categories Licensed Serial – Long Range Application – Exclusive Use of FCC Frequency – PLC Emulation.
G650 Generator Protection & Control System
Geodetic Research Laboratory Department of Geodesy and Geomatics Engineering University of New Brunswick 22/02/02 Stefan.Duerauer DIPLOMA THESIS Prototype.
ECE 477 Design Review – Spring 2010 Team 15. Team Members.
Arctic Control Introduction V 1.0. Arctic Control The Arctic Control is a device with integrated wireless communications for controlling medium-voltage.
System Elements HighPoint Broadband Delivery System Sector 1 Sector 3
LION GES - Overview  Fast Ethernet Switch For easy installation of medium to large sized networks For installation of high availability networks using.
A+ Guide to Managing and Maintaining Your PC Fifth Edition Chapter 22 All About SCSI.
Power Supply Controller Architecture
A modern NM registration system capable of sending data to the NMDB Helen Mavromichalaki - Christos Sarlanis NKUA TEAM National & Kapodistrian University.
Identifying SLC 500™ System Components. SLC 500 System Options  The SLC 500 line of processors comprises both fixed and modular processor styles.:
Smart transmitters.
GBT K-band Focal Plane Array Monitor and Control Interface, Cryogenic LNA Bias System February 27, 2008.
Need to enhance your network?
ETHLON LonWorks Ethernet Adapter Conventional Approach SIPAI Solution ETHLON DIRECTLY REPLACES SLTA-10 OR SLTA CONNECTIONS.
Orion Telecom Networks Inc Port E1 / T1 10BaseT Ethernet Digital Access Cross Connect STM-1 Mega Connect Slide 1 Updated : January 1st, ,
SGI Confidential Power Bay. SGI Confidential Power Bay Front View AC OK LED DC OK LED Alarm LED Release Latch Power Bay 1 Power Bay 0 Power.
IBM - CVUT Student Research Projects Remote Control of a Furby Toy with BlueTooth Tomáš Kunc
Make the most of your energy December 2008 PM8ECC Need improved Network capabilities out of your meter? PowerLogic ® PM8ECC.
TYPICAL SCADA SYSTEM FIELD UNIT SCADA H/W & S/W C TX O RX M E M Q N P
FMUX01-A Copyright (c) 2003, 2004, CTC Union. All rights reserved.
Hands-on Teleoperation TARET Winter School Villach, February 5 –16, 2007 Darko Hercog.
Acquisition Crate Design BI Technical Board 26 August 2011 Beam Loss Monitoring Section William Vigano’ 26 August
SmartMQn Motor Horner APG, LLC September 9, 2008.
Utility Engineers, PC.  Generation  Transmission  Distribution.
Local Area Networks School of Business Eastern Illinois University © Abdou Illia, Spring 2007 (Week 8, Tuesday 2/27/2007)
A+ Guide to Managing and Maintaining Your PC Fifth Edition Chapter 22 All About SCSI.
4000 Imaje 4020 – Connectivity Imaje 4020 – Content Content of Chapter Connectivity: 1. Interfaces 2. Serial connections 3. Ethernet connection.
New product introduction:
Rev Server blade enclosure overview Power backplane Signal backplane Management module Reset Bottom.
NEPTUNE Power Low Voltage Circuit Fall 2003 Quarterly Meeting Tim McGinnis Sept 11-12, 2003.
Lecture 3 EIA 449.
Vehicle Monitoring System Michael Jermann Chris Blount Team: 35 TA: Justine Fortier.
Introduction to IP Cameras Over Coax. Replacing Analog Cameras With IP Cameras Over Coax Analog Camera RG59U Coaxial Cable 18/2 Power Cable Low Voltage.
Networks Are you Wired?. Networking A network is defined as two or more computers connected together –Peer-to-peer when a server is not involved. –Client-server.
Serial/Fiber-Converter - IE-MCT-1RS232/485-1SC/ST
LECTURE 11 NET301 11/16/2015Lect IEEE LAN STANDARDS Ethernet LAN (by Xerox): Topology: Bus Transmission Media: Thick Coaxial Cable. Signal: Digital.
Modular C ontroller S eries Product Introduction.
Aloha Observatory Design
Target Network ISP Internal Network
Industrial communication networks
SCADA for Remote Industrial Plant
Expandable Seafloor Observatory
SC1R Cold Box PDR Controls
F&J SPECIALTY PRODUCTS, INC.
LRXI Industrial KVM Extender
Protection Philosophy
Ethernet Gateway EGX200 - EGX400
Local Area Networks School of Business Eastern Illinois University
Presentation transcript:

Aloha Observatory Design Cabled Observatory Presentation School of Ocean and Earth Science and Technology February 2006

Observatory Overview The observatory is to provide supervisory command, control, and engineering status on data communications and system operation. The observatory is to provide services for customers. As needed, the customer will be able to control, time stamp and retrieve data in real time (or near real time) with his instrument. The observatory is to provide timing, power, and communications for up to two remote sub- observatory nodes. The observatory is designed for high reliability and redundancy.

Observatory Chassis Circuit Comm IRIG-B FO to TP Remote Breaker TCP/IP Switch Observatory TCP/IP Switch Comm & Power Port Server (opposite side is mirror image)

Customer Capabilities The observatory is to provide power, communications and analog IRIG timing for each of six customers. The observatory is to protect/isolate each customer from failures/interference with other customers. The observatory is to connect on a predefined interface connector.

Customer Power The observatory is to provide 48VDC power up to a maximum of 75 watts (1.5 Amps) per customer. This power is a current trip level circuit breaker protected per customer. A power failure of any instrument will not effect another instrument or the system. The circuit breaker has 8 trip levels and off and is controlled by the supervisor not the customer.

Customer Power & Circuit Breaker

Customer Communication The customer’s instrument is provided one of three communications: (1) RS232, or (2) RS422, or (3) TCP/IP. The maximum rate currently is 230k baud per customer (460k baud should be available in ‘07) This communication is bidirectional and transparent to the user. Transparent: The customer can, over the internet, send and receive control and data real time with his instrument with no consideration of the medium.

Customer Communications

Port Server, Switch, & IRIG

Fiber Optic & Twisted Pair Switch

Customer Timing The observatory is to provide analog IRIG- B timing to the instrument. Usage of the IRIG-B timing is optional. For customers with time critical data, instruments must be designed to use the timing information. PC104 time card by jxi2, inc. External VCXO oscillator with 16 bit DAC for high stability

IRIG

Local Customer Connector The connector interface is an Impulse ® XSL 12 pin Dry Mate (compatible with MARS OD pin configuration.) connector. Pin configuration as follows: – 1 n/a – 2 n/a – 3 RS422 RX- (Ethernet RX-) – 4 RS422 RX+ (Ethernet RX+) – 5 IRIG B timing – 6 IRIG B Return – 7 RS422 TX- (Ethernet TX-) – 8 RS422 TX+ (Ethernet TX+) – 9 48 VDC Return (Ground) –10 48 VDC –11 n/a –12 n/a

Remote Sub-Observatory Capabilities The main observatory is to provide power, communications and timing for each remote sub-observatory. The main observatory is to protect/isolate each remote sub-observatory from failures or interference with customers. Each remote sub-observatory can be placed up to 1000 meters from the main observatory.

Remote Sub-Observatory Power The observatory is to provide 400VDC power up to a maximum of 200 watts (0.5 Amps) to the sub-observatory. This power is circuit breaker protected per remote sub-observatory. A power failure will not effect another instrument or the system. This is controlled by the supervisor not the customer.

Remote OBS & Circuit Breaker

Remote Sub-Observatory Communication The remote sub-observatory is TCP/IP. This communication is an extension of the main observatory and has the same transparent service to customers. Sub-observatories are for future expansion.

Remote Sub-Observatory Timing The observatory is to provide analog IRIG- B timing to the remote sub-observatory. The remote sub-observatory will buffer and subsequently provide analog IRIG-B timing to the remote sub-observatory customers, just as in the main observatory.

Supervisory Capabilities The observatory is to be provide continuous operational status of performance The observatory is to allocate resources for the customers. The observatory is to allocate resources for remote sub-observatories. The observatory is to allocate resources for power supply.

Supervisory Status The observatory is to provide engineering data on the observatory itself and the shunt regulator power supply. – 22 temperatures – 24 voltages – 14 currents – 8 circuit breakers status and trip levels – 8 shunt regulator operational status.

Supervisory Control The supervisor has control of customer power setting the trip level for the circuit breaker or turning off the power. The supervisor can monitor the customer’s instrument for ground faults. The supervisor can assign the primary and backup communication path The supervisor and control the operation configuration of the shunt regulator power supply. The supervisor has control of the remote observatory power setting the trip level for the circuit breaker or turning off the power.

Reliability and Redundancy The system is designed with consideration for high reliability and a reduction of single point failure. There are two 8 port TCP/IP switches or two 8 port serial communication port servers for customers. Only one of the two is sufficient for full system operation. There are two microcontrollers for each function. Only one is sufficient for full system operation. With six customer ports on each observatory, should one fail, the instrument could be moved to another port on the main or remote observatories.

Customer Redundancy Each customer has two data paths available within the observatory. A primary and a secondary. Each path going to a different port server or TCP/IP switch. The switching to the secondary path is controlled by the supervisor.

Control Redundancy The system has six microcontrollers (Rabbit 3000). – Two to control the six customers. Each controls three customers and redundant control for the other three customers. –Two for the IRIG-B timing with the high speed digital PC104 interface. One is primary and the second is redundant backup. –Two for the remote observatories. Each controls one remote observatory and redundant control for the other.

No Fiber Pair Redundancy The HAW-4 cable has three fiber pairs in the cable at each main observatory. Only one pair is this observatory. There are two very high reliable fiber to twisted pair TCP/IP switches. One on each fiber pair. All communications can pass through either switch.

Power Supply Reliability There are six active shunt regulators providing 160 watts of power each. There are two inactive backup shunt regulators that can provide 160 watts of power each. Under supervisor control the backup units can be used to functionally replace any failed active shunt regulator.