dc.contributor.author |
Tsilingiris, PT |
en |
dc.date.accessioned |
2014-03-01T01:09:26Z |
|
dc.date.available |
2014-03-01T01:09:26Z |
|
dc.date.issued |
1993 |
en |
dc.identifier.issn |
0306-2619 |
en |
dc.identifier.uri |
https://dspace.lib.ntua.gr/xmlui/handle/123456789/10985 |
|
dc.relation.uri |
http://www.scopus.com/inward/record.url?eid=2-s2.0-0027205837&partnerID=40&md5=c0ac5080a841c72ce53e4b05660ada8b |
en |
dc.subject.classification |
Energy & Fuels |
en |
dc.subject.classification |
Engineering, Chemical |
en |
dc.subject.other |
Radiometers |
en |
dc.subject.other |
Solar radiation |
en |
dc.subject.other |
Theory |
en |
dc.subject.other |
Thermoelectric equipment |
en |
dc.subject.other |
Pyranometer |
en |
dc.subject.other |
Radiation transmission measurements |
en |
dc.subject.other |
Solar radiation detector |
en |
dc.subject.other |
Radiation detectors |
en |
dc.title |
Low-cost, non-selective, solar-radiation detectors |
en |
heal.type |
journalArticle |
en |
heal.language |
English |
en |
heal.publicationDate |
1993 |
en |
heal.abstract |
The theory and basic design of a low-cost, flat-response thermoelectric detector is presented, which can be adapted for use as a pyranometer or net radiometer. This device can also be used as a submersible radiometer for radiation transmission measurements in water. The analysis allows the calculation of the responsivity and optimal design of a detector. Theoretical results are corroborated by experimental data obtained using a laboratory prototype. © 1993. |
en |
heal.publisher |
ELSEVIER SCI LTD |
en |
heal.journalName |
Applied Energy |
en |
dc.identifier.isi |
ISI:A1993LF93100001 |
en |
dc.identifier.volume |
45 |
en |
dc.identifier.issue |
4 |
en |
dc.identifier.spage |
283 |
en |
dc.identifier.epage |
293 |
en |