Huge Power Containers to Drive the Future Railgun at Sea

Similar documents
Railgun Overview & Testing Update

The University of Texas at Austin Institute for Advanced Technology, The University of Texas at Austin - AUSA - February 2006

Electromagnetic Railgun

Parametric Analyses Using a Computational System Model of an Electromagnetic Railgun

AEROTHERMODYNAMIC ASPECTS OF HYPERVELOCITY PROJECTILES. Edward M. Schmidt

Navy Fuze S&T and Acquisition Strategy

UNCLASSIFIED. UNCLASSIFIED Office of Secretary Of Defense Page 1 of 5 R-1 Line #102

Test and Evaluation of Electromagnetic Railguns

Remarks by the Honorable Ray Mabus Secretary of the Navy Directed Energy Summit Tysons Corner, Virginia Tuesday, July 28, 2015

Environmental Assessment. Advanced Gunfire. White Sands Missile Range, New Mexico

Guided Projectiles Theory of Operation Chris Geswender - Raytheon

NAVAL POSTGRADUATE SCHOOL Monterey, California THESIS. THE DESIGN AND OPTIMIZATION OF A POWER SUPPLY FOR A ONE-METER ELECTROMAGNETIC RAILGUN by

Mr. Michael B. Deitchman Deputy Chief of Naval Research Naval Air Warfare and Weapons (Code 35)

59TH ANNUAL FUZE CONFERENCE MAY 3-5, 2016 CHARLESTON, SC Fuzing Challenges for Guided Ammunition

A Comparison of Ship Self Defense Analysis Simulations. Shahrokh Hafizi

Simulating the Difference between a DES and a Simple Railgun using SPICE

PLEASE JOIN US! Abstracts & Outlines Due: 2 April 2018

13,475 credits Armor Class 4 [15]

DoD Research and Engineering Enterprise

International Armaments Technology Symposium & Exhibition NDIA

Accurate Automation Corporation. developing emerging technologies

Navy Lasers, Railgun, and Gun-Launched Guided Projectile: Background and Issues for Congress

Very Affordable Precision Projectile System and Flight Experiments

Science and Technology for Naval Warfare,

DoD Research and Engineering Enterprise

EVALUATION OF THE GENERALIZED EXPLICIT GUIDANCE LAW APPLIED TO THE BALLISTIC TRAJECTORY EXTENDED RANGE MUNITION

"OPTIMAL SIMULATION TECHNIQUES FOR DISTRIBUTED ENERGY STORE RAILGUNS WITH SOLID STATE SWITCHES"

APPLICATIONS OF GPS. The Global Positioning System, while originally a military project, is considered a

Chapter 4 Sliding Contact Coilguns

UNCLASSIFIED. UNCLASSIFIED R-1 Line Item #13 Page 1 of 11

Laboratory Project 2: Electromagnetic Projectile Launcher

Space and Missile Systems Center

New Generation Naval Fuze FREMEN Efficiency against New Threats

Copyright 2016 Raytheon Company. All rights reserved. Customer Success Is Our Mission is a registered trademark of Raytheon Company.

LABORATORY PROJECT NO. 1 ELECTROMAGNETIC PROJECTILE LAUNCHER. 350 scientists and engineers from the United States and 60 other countries attended

GUN LAUNCH SETBACK LABORATORY ACTIVATOR TESTS. Dr. Ernest L. Baker Warheads Technology TSO +32 (0)

HIGH POWER ELECTRONICS FOR ARMOR AND ARMAMENT

Tailored Tactical Surveillance

Explosive Ordnance Disposal/ Low-Intensity Conflict. Improvised Explosive Device Defeat

Engineering and Design

Science Applications International Corporation 1710 Goodridge Drive, McLean, Virginia (703) Abstract

RDT&E BUDGET ITEM JUSTIFICATION SHEET (R-2 Exhibit)

COMPANY RESTRICTED NOT EXPORT CONTROLLED NOT CLASSIFIED Your Name Document number Issue X FIGHTING THE BATTLE. Thomas Kloos, Björn Bengtsson

The Emperor Titan is the largest type of Imperial Titan, consisting of two classes: the Imperator and Warmonger.

Multi-Function Fuze Capability Against High Speed Mobile Water Attack Craft

Capability in Complexity SHOAL-REPORT J590

EAPS, Slide 1. Presented by; Phil Brislin RDECOM-ARDEC

Concordia University Department of Computer Science and Software Engineering. SOEN Software Process Fall Section H

MicroMeteroid/Orbital Debris (MMOD) Hypervelocity Impact Testing & Piggyback Sensing

STRATEGIC DEFENSE INITIATIVE ORGANIZATION (SDIO) SMALL BUSINESS INNOVATION RESEARCH PROGRAM Submitting Proposals

23 RD INTERNATIONAL SYMPOSIUM ON BALLISTICS TARRAGONA, SPAIN APRIL 2007

Dr. Barton Halpern Advanced Small Unit Small Arms Technology Concepts Project 15 May 2012

ONR Special Notice N R-SN01

DARPA SCORPION Program Transition to Army Lethality ATO Program: A Success Story

PROJECTILE-BORNE INSTRUMENTATION FOR CHARACTERIZATION OF IN-BORE ENVIRONMENTS. Philip J. Peregino II, Ed Bukowski ABSTRACT

Ultra Electronics Integrated Sonar Suite

Research on High Power Railguns at the Naval Research Laboratory

Leveraging Simulation to Create Better Software Systems in an Agile World. Jason Ard Kristine Davidsen 4/8/2013

Constructing and Testing a Permanent-Magnet Railgun

SAAB SEA POWER CAPABILITIES FOR MALAYSIA AND APAC LIMA Robert Hewson Vice President Head of Communications, Saab Asia Pacific

Chief of Naval Operations Adm. Jonathan Greenert. Sea - Air - Space Symposium Sea Service Chiefs Panel. 7 April 2014

Advanced Lethal Armaments for Small Arms

NAVSEA Technology Needs

SURVIVABILITY CONCERNS

Building the S&T Foundation for Agile Solutions

DoD / OGA NLW Advanced Planning Brief to Industry (APBI)

High Speed Imaging for Military Applications

AN electromagnetic launcher system can accelerate a projectile

Proximity Sensor for Guided Unitary Multiple Launch Rocket System

This page is blank. Sample file

0 hr: Wolves of Albion - demo document by Ryan Wolfe of 0 hr: art & technology 0-hr.com

Medium Voltage DC Solid State Circuit Protection

UC Berkeley Berkeley Scientific Journal

ARCHIVED REPORT. Marine Technology - Archived 7/2005

This announcement constitutes a Request for Information (RFI) notice for planning purposes.

[2009] IEEE. Reprinted, with permission, from Guo, Liuming; Guo, Ningning; Wang, Shuhong; Qiu, Jie; Zhu, Jianguo; Guo, Youguang; Wang, Yi.

C-Band Transmitter Experimental (CTrEX) Test at White Sands Missile Range (WSMR)

The railgun is quickly hurtling toward inclusion on future Navy

Digital Engineering. Phoenix Integration Conference Ms. Philomena Zimmerman. Deputy Director, Engineering Tools and Environments.

ACTIVITY OF RUSSIAN FEDERATION ON SPACE DEBRIS PROBLEM

ELECTROMAGNETIC FORCE, JERK, AND ELECTRIC \ GUN PROJECTILES

DEFENSE ADVANCED RESEARCH PROJECTS AGENCY. Submitting Proposals

Transformational MILSATCOM

Prediction Of Lorenz Force On The Armature Of Magnetic Railgun Through Parametric Analysis

On January 14, 2004, the President announced a new space exploration vision for NASA

The Application of Wargaming to Education in Naval Design & Survivability

Chief of Naval Operations Adm. Jonathan Greenert Delivers remarks at the Naval War College Graduation June 15, 2012

AXIS AND ALLIES 1914 OPTIONAL RULE: RESEARCH AND DEVELOPMENT

Click to edit Master title style. Joint Service Small Arms Technology Plan

The Next Generation of Secure Position, Navigation and Timing Technology

F 35C Joint Strike Fighter Additive Manufacturing Tailhook Redesign

Weapons of Mass Destruction. These slides are provided courtesy of the Naval Post-graduate School Center for Homeland Defense and Security

Small Arms Weapons & Fire Control Demonstration Project

1 INTRODUCTION. 1.1 Historical Evolution of Radar Applications

Future Technology Drivers and Creating Innovative Technology Cooperation

Platform superiority for...

Electrical Products Group Conference

DESIGN AND OPTIMIZATION OF AN ELECTROMAGNETIC RAILGUN

LINEAR INDUCTION ACCELERATOR WITH MAGNETIC STEERING FOR INERTIAL FUSION TARGET INJECTION

Rapid Reaction Technology Office (RRTO) Overview

Transcription:

Huge Power Containers to Drive the Future Railgun at Sea Defense-Update Tamir Eshel The US Navy is gearing to take its futuristic Railgun out of the lab where it has been tested for to past eight years. In the next biennium, these mighty weapons will be tested in open firing ranges and eventually at sea, where the futuristic electromagnetic gun will be able to demonstrate its full capacity to fire projectiles at targets 50-100 nautical miles (92 185 kilometers) away. The Electromagnetic Railgun is among several disruptive capabilities that the Naval Research Enterprise is championing to ensure a dominant, capable and relevant naval force for the future. Chief of Naval Research (CNR) Rear Adm. Mat Winter said. A railgun weapon system includes the launcher, projectile; high-density pulsed power, and fire control system. A railgun weapon can launch multi-mission projectiles with shorter time-totarget and greater effectiveness at longer range. The Navy is evaluating two EM Railgun models. A 32-megajoule prototype built by BAE Systems and the 32 megajoule Blitzer developed by General Atomics Electromagnetic Systems (GA-EMS). The company has also developed a 3-megajoule railgun variant. In the future, the Navy plans to deploy railguns rated to 64-megajoule. A railgun can deliver muzzle velocities greater than twice those of conventional guns. Using electromagnetic power, where magnetic fields created by strong electrical currents accelerate a sliding metal conductor between two rails, the railgun achieves muzzle speeds of more than Mach 7.5 without the use of chemical propellant.

Rear Adm. Matthew Klunder, chief of naval research, shows the Hypervelocity Projectile (HVP). The nextgeneration projectile is designed as common, low drag, guided projectile capable of completing multiple missions for gun systems such as the Navy 5-inch, 155-mm, and future railguns. Photo: US Navy by John F. Williams. That velocity allows the weapon s hyper-velocity projectiles (HVP) to rely on kinetic energy for maximum effect and reduces the number of high explosives and propellant carried on ships. Against specific threats, the cost per engagement is orders of magnitude less expensive than comparable missile engagements. It also minimizes the dangers of unexploded ordnance remaining on the battlefield. BAE Systems is developing the HVP under a separate contract awarded by the Office of Naval Research. The new low drag, guided projectile will provide lethality and performance enhancements to current and future gun systems, including Navy 5- Inch; Navy, Marine Corps, and Army 155-mm systems and railguns. The HVP s low-drag aerodynamic design enables high-velocity, maneuverability, and decreased time-to-target. HVP will have a range of more than 50 nm (93 km) from Mk 45 Mod 4 guns, and exceed 100 nm (185 km) from EM Railgun. The difficulty of deploying electromagnetic railguns might not lie in the technology necessary to build these weapons, but in producing the incredibly large amounts of electricity required for their operation and developing projectiles that can endure the enormous forces during acceleration.

https://www.youtube.com/watch?v=muiwuiisgdi In 2010 the railgun developed by BAE Systems was tested to deliver a 33-Megajoule shot, the energy equivalent of firing a projectile at a 110 nmi range. Photo: US Navy. The first step toward mobilization of the new weapon was the delivery of the Pulse Power Containers (PPC) huge banks of capacitors or rechargeable batteries packed inside standard ISO containers. Each container packs enough energy to discharge 18 kilowatts for each shot. To enable the railgun to fire ten such shots per minute the PPC must recharge from the host ship in seconds and be able to store and discharge the energy in very short time while managing the thermal load generated by the process. GE-AMS has already delivered a prototype of PPC for its weapon. Raytheon announced today the shipping of the first PPC units to the Navy. L-3 Applied Technologies is also expected to complete working on another version of PPC within a year.

Raytheon has completed the first examples of containerized pulse power packs designed to support field tests of the electromagnetic rail gun. Photo: Raytheon. Another issue the Navy has tested is the endurance of onboard navigation and guidance electronics embedded into the projectiles. When launched by the railgun these systems are subjected on launch to extremely high loads of up to 30,000 Gs and extreme electromagnetic environment generated during launch. In tests held last year projectiles loaded with live electronic circuits have been tested by GA-AMS successfully measured in-bore accelerations and projectile dynamics, for several kilometers downrange, with the integral data link continuing to operate after the projectiles impacted the desert floor.

An artist s rendering shows the Office of Naval Research-funded electromagnetic railgun installed aboard the joint high-speed vessel USNS Millinocket (JHSV 3). Illustration: U.S. Navy. The Navy plans to test the new gun on one of its naval platforms. Initially, the platform of choice for the trial was expeditionary fast transport USNS Trenton (JHSV-5). However, since the test planned for 2016 is likely to be postponed until next year, Navy officials are recommending to push back the test a year further, and install the new rail gun on the third Zumwalt-class destroyer Lyndon B. Johnson (DDG-1002) where it will be used operationally. USS Trenton is a logistical transport ship that will not become an operational platform for the new gun. Each of the three Zumwalt-class destroyers has two Advanced Gun Systems (AGS) mounting the BAE Systems 155/62 gun. The first two of the class, DDG 1000 and DDG 1001 will use the standard AGS but the last ship in this class, DDG 1002 could have the AGS in the first battery and the railgun in the second (rear). Both guns will be able to fire the hypervelocity projectiles designed for the rail gun, but the AGS will also be able to fire the Long Range Land Attack Projectile (LRLAP) a guided munition developed by Lockheed Martin, as well as standard 155mm projectiles. While the Railgun was developed for naval applications, it is also considered for coastal defense and counter rocket, artillery and missile defense (C-RAM) applications. The PPC power source could become a critical factor in a land-based deployment of the railgun, as it enables fixed system to expand both railgun energy level and shot sequence, allowing for larger systems resulting in greater effective range. In such land-based installations, it would be used in fixed installation that will provide affordable, high capacity defense against massive threat raids of ballistic and cruise missiles. As such it will be used to reinforce tiered missile defense, providing terminal defense of key fixed assets. The footprint of a land-based fixed railgun system has greater expandability than a shipboard or mobile application, allowing for larger systems resulting in greater effective range. A land-based fixed railgun

system, integrated with other national assets, provides added capability in a layered defense architecture. Illustration: General Atomics. https://www.youtube.com/watch?v=cf93sgkrzm0