Documents / Report
This Defense Intelligence Reference Document from the Defense Intelligence Agency, dated 6 April 2010, is one in a series of FY 2009 advanced technology reports produced under the Advanced Aerospace Weapon System Applications (AAWSA) program. It reviews the physics of zero-point field energy in the quantum vacuum and proposed schemes for extracting it, including the Casimir effect, Forward's vacuum-fluctuation battery, and resonant dielectric spheres. It notes that no practicable extraction technique has been demonstrated in the laboratory.
UNCLASSIFIED//F'iA. 'iFFllilAle 1!181! 8IU:!Y I'b 0 -+---~---------}' /'b 0 I /. - LIii/ ~o, I' Figure 5. Energy Released from Ground State Suppression of Hydrogenic Atom in a Microcavity. (ro = free-space Bohr orbit radius, n; = suppressed Bohr orbit radius,/,= resonant wavelength of Bohr orbit, and Eo,.,, = released energy). Consider the possibility that the decay to a new sub-Bohr ground state would involve gradual release of energy in the form of heat, rather than a sudden optical radiation signature. Since the binding energy of the electron is 13.6 eV, 8 it is estimated that the amount of energy released in this process could be on the order of 1 to 10 eV for injection of the hydrogen atom into a Casimir cavity of d = 250 A. Furthermore, consider the possibility that when the electron exits the cavity it would reabsorb energy from the zero-point field and be re-excited to its normal state. If these conjectures were to be verified by experiment, then the energy extracted in the process comes at the expense of the zero-point field, which in the SED interpretation propagates at the speed of light throughout the universe. In effect the energy would be extracted locally and replenished globally. The secondary consequences on other phenomena, if this energy conversion were to succeed, have not yet been investigated. However, on a cautionary note, the conflicts between SED and QED theories (discussed in Section V) raise questions as to whether the conjectured approach discussed here is viable. This issue is perhaps best addressed by experiment for its resolution. In terms of an experimental test, consider using monatomic gases or liquids flowing in a block with Casimir tunnels, which has the following attributes: 1) no dissociation process is required for monatomic gases or liquids, 2) heavier element atoms are approximately two to four times larger than hydrogen and thus can utilize and be affected by a larger Casimir cavity, 3) heavier elements have numerous outer shell electrons, several of which may be simultaneously affected by the reduction of zero- point radiation in a Casimir cavity. All of the noble gas elements contain ns electrons. He (Z = 2, r = 1.2 A) has two ls electrons. Ne (Z = 10, r = 1.3 A) has two each of ls and 2s electrons. Ar (Z = 18, r = 1.6 .l\) has two each of ls, 2s, and 3s electrons. Kr (Z = 36, r = 1.8 .l\) has two of each 8 1 eV = 1.602 x 10- 19 J. 11 UNCLASSIFIED/ /F81il Brr1e1111t ""I! OICL I
Not linked to a story yet.
Report, from the dia collection. The PDF is mirrored here; the original link is above. 57 pages are in the text index: search them above, or from the library's search.