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The Roswell Report: Fact vs. Fiction in the New Mexico Desert

USAF / The Black Vault · 1995 · 882 pages · text by OCR

The Roswell Report: Fact versus Fiction in the New Mexico Desert was published by Headquarters United States Air Force in 1995. The Black Vault distributes this copy. It reproduces the report by Col. Richard L. Weaver and the synopsis by 1st Lt. James McAndrew, both written after a General Accounting Office inquiry requested by Representative Steven Schiff. The Air Force search found no evidence of an extraterrestrial craft or crew. It concluded that the Roswell debris most likely came from NYU Flight No. 4, a Project MOGUL balloon train.

  • p. 12 …Fort Worth Star-Telegram, Photographs of Balloon Debris, July 9, 1947 17. Statement, Lt. Col. Sheridan…
  • p. 13 …Fort Worth Star-Telegram, Photographs of Balloon Debris, July 9, 1947 2. Organizational Chart, Watson Laboratories…
  • p. 27 …These locations include Fort Worth, Texas, the home of the Eighth Air Force Headquarters; possibly Sandia…
  • p. 31 …DC; Federal Records Center, Ft Worth, TX; the INSCOM Archives, Fort Meade, MD; National Air and…
  • p. 35 …in the famous photos (Atch 16) in Fort Worth was that of a radar target normally…
  • p. 36 …were told was a flying saucer to Fort Worth. The people on board included...and Maj…
  • p. 37 …Newton was a weather officer assigned to Fort Worth, who was on duty when the Roswell…
  • p. 42 …photographs taken at the time by the Fort Worth Star-Telegram, that depicted Ramey and Marcel…
  • p. 43 …the wreckage prior to its getting to Fort Worth. This organization reported on July 20, 1994…
  • p. 47 …After the autopsies, conspiracy theorists said the bodies were flown to Fort Worth and then to…
  • p. 65 …to Fort Worth. "Flying disc." Some of the debris was flown to Fort Worth. as where…
  • p. 84 …Center (WNRC) or the Southwest Regional Depository (Fort Worth, Texas). ## Recommendations Because the records management policy…
  • p. 131 …taken to Eighth Air Force Headquarters in Fort Worth where it was subsequently identified as a…
  • p. 138 …And I obviously...Marcel took it to Fort Worth. Yeah that's the... RW: Yeah. That…
  • p. 139 …into Wright-Pat and Kirtland, or to Fort Worth. Back and forth, loaded up, with very…
  • p. 145 …Then it said: "After Marcel had gone to Fort Worth and came back Marcel challenged the…
  • p. 147 …O.K."Marcel would take some of the sample to Fort Worth to show Ramey. In…
  • p. 150 normal course of his duty was sent to Washington not 8th Air Force in Fort Worth…
  • p. 219 …But the Roswell morning paper clearly showed that there was a knowledgeable person in Fort Worth…
  • p. 231 …Headquarters by a news photographer of the Fort Worth Star Telegram. It's four pictures that…
  • p. 263 …I was the only weather forecaster on duty in the Fort Worth base weather and flight…
  • p. 269 …flown to Eighth Air Force Headquarters at Fort Worth AAF, TX, for his personal inspection. Upon…
  • p. 277 …Before the announcement was made, the "disc" was flown to Fort Worth AAF, at the direction…
  • p. 278 …giant thermos jug" was allegedly transported from Fort Worth AAF to Wright Field. $ ^{38} $ This description…
  • p. 280 designs on it." $ ^{41} $ Furthermore, the Fort Worth Army Airfield Weather Officer, Irving Newton, who was…
  • p. 283 1 Fort Worth Star-Telegram Photographs of Balloon Debris July 9, 1947
  • p. 549 …Similarly, the Fort Worth Sub-Committee established a procedure for flights made within the Fort Worth…
  • p. 616 …Air Coordinating Committee, Fort Worth Regional Airspace Subcommittee. Subject: Obstructions to air navigation...43 5. Memorandum…
  • p. 655 …5/15/47 Office of the Secretary Fort Worth Sub-Committee on Air Space Civil Aeronautics…
  • p. 715 …Arrived in Fort Worth about 9 EDST. Off again to Big Springs, Texas, where forced to…
Temperature effects were discussed previously in this report. Those discussions on superheat and adiabatic temperature change will apply to the general equation. In general, temperature of the free air and lifting gas can be measured to a fair degree of accuracy.

Balloon volume at any time is a function of original full balloon volume plus the summation of all the changes in volume due to pressure and temperature changes and loss of lifting gas. It will also be affected by loss or gain of air by the balloon through diffusion and intake of air through the appendix. The nonextensible balloon will have a maximum volume and thus any changes tending to increase the gas volume to a value greater than the balloon volume will result in a valving of the excess lifting gas into the air, or (in the case of a balloon which will carry internal pressure) a pressure increase of the lifting gas.

It is for this reason that a non-extensible balloon is said to be in a state of stable equilibrium in a direction of greater altitude when it is full. However, in a direction of lesser altitude, and with the case of a partially full floating balloon, the system is in a state of neutral equilibrium.

Composition of the lifting gas will change due to contamination of the lifting gas by the entry of air into the balloon, either by the flow of air through the appendix opening or by diffusion of air into the balloon. We may then modify our term for density of the lifting gas to include a term for the pure gas and a term for the contaminating air. Using the method of partial volumes, we may equate the density of the lifting gas at any time by:

where:

$$
\rho_ {g} = \frac {P _ {g}}{V _ {b} T _ {g}} \left(\frac {V _ {p}}{R _ {p}} + \frac {V _ {a}}{R _ {a}}\right)
$$

$ P_{g} $ pressure of the lifting gas

$ V_{b} $ = total lifting gas volume

$ V_{\mathbf{p}} $ volume of pure lifting gas in balloon

$ V_{\sigma} $ volume of air in balloon

$ R_{g}= $ specific gas constant of pure lifting gas

$ R_{a} $ specific gas constant of air

Then, calling $ \frac{V_{p}}{V_{b}}=x_{p} $ and $ \frac{V_{a}}{V_{b}}=x_{a} $ (here we see that since

$ V_{p}+V_{a}=V_{b}, $ $ x_{p}+x_{a}=1 $ we may equate:

$$
P _ {g} = \frac {P _ {g}}{T g} \left(\frac {x _ {p}}{R _ {p}} + \frac {x _ {a}}{R _ {a}}\right)
$$

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