HR: 0800h
AN: C51A-0069 [Abstracts]
TI: Polar Seismic TETwalker: Integrating Engineering Teaching and Research
AU: * Gifford, C M
EM: cgifford@cresis.ku.edu
AF: Center for Remote Sensing of Ice Sheets, 316 Nichols Hall
Irving Hill Road, Lawrence, KS 66045, United States
AU: Ruiz, I
AF: University of Puerto Rico, PO Box 9021, Mayaguez, 00681, Puerto Rico
AU: Carmichael, B L
AF: Elizabeth City State University, 1704 Weeksville Rd, Elizabeth City, NC 27909, United States
AU: Wade, U B
AF: Elizabeth City State University, 1704 Weeksville Rd, Elizabeth City, NC 27909, United States
AU: Agah, A
EM: agah@ku.edu
AF: Center for Remote Sensing of Ice Sheets, 316 Nichols Hall
Irving Hill Road, Lawrence, KS 66045, United States
AB:
Based on the TETwalker robot platform at NASA/Goddard Space Flight Center, the Center for Remote Sensing of
Ice Sheets (CReSIS) has begun work on designing and modeling the integration of seismic surveying equipment
into the TETwalker robot architecture for use in polar environments. Employing multiple Seismic TETwalker
robots will allow gathering of polar seismic data in previously inaccessible or unexplored terrains, as well as help
significantly reduce human involvement in such harsh environments.
NASA's TETwalker mobile robot uses a unique form of mobility to topple across the surface and over obstacles.
This robot therefore does not suffer the fate of other wheeled and tracked robots if tipped over. It is composed of
extending struts and nodes, forming a tetrahedral shape which can be strategically adjusted to change the robot's
center of gravity for toppling. Of the many platforms the TETwalker architecture can form, the 4-TETwalker robot
(consisting of four ground nodes, a center payload node, and interconnecting struts) has been the focus of
current research.
The center node has been chosen as the geophone deployment medium, designed in such a way to allow
geophone insertion using any face of the robot's structure. As the robot comes to rest at the deployment location,
one of its faces will rest on the surface. No matter which side it is resting on, a geophone spike will be
perpendicular to its face and an extending strut will be vertical for pushing the geophone into the ground.
Lengthening and shortening struts allow the deployment node to precisely place the geophone into the ground,
as well as vertically orient the geophones for proper data acquisition on non-flat surfaces.
Power source integration has been investigated, incorporating possible combinations of solar, wind, and
vibration power devices onboard the robot models for long-term survival in a polar environment. Designs have
also been modeled for an alternate center node sensor package (e.g., broadband seismometer) and other
structures of the node-and-strut TETwalker robot architecture. It is planned to take the design models and
construct a physical prototype for future testing in Greenland and Antarctica. This work involved three
undergraduate students from underrepresented groups as part of the CReSIS Summer REU program, aimed at
involving these groups in science and engineering research.
DE: 0726 Ice sheets
DE: 0736 Snow (1827, 1863)
DE: 0758 Remote sensing
DE: 0760 Engineering
DE: 0794 Instruments and techniques
SC: Cryosphere [C]
MN: 2007 Fall Meeting