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The Geoid Slope Validation Survey 2014 and GRAV-D airborne gravity enhanced geoid comparison results in Iowa

机译:2014年大地水准面坡度验证调查和GRAV-D空中重力增强大地水准面对比结果

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Three Geoid Slope Validation Surveys were planned by the National Geodetic Survey for validating geoid improvement gained by incorporating airborne gravity data collected by the "Gravity for the Redefinition of the American Vertical Datum" (GRAV-D) project in flat, medium and rough topographic areas, respectively. The first survey GSVS11 over a flat topographic area in Texas confirmed that a 1-cm differential accuracy geoid over baseline lengths between 0.4 and 320 km is achievable with GRAV-D data included (Smith et al. in J Geod 87:885-907, 2013). The second survey, Geoid Slope Validation Survey 2014 (GSVS14) took place in Iowa in an area with moderate topography but significant gravity variation. Two sets of geoidal heights were computed from GPS/leveling data and observed astrogeodetic deflections of the vertical at 204 GSVS14 official marks. They agree with each other at a +/- 1.2 cm level, which attests to the high quality of the GSVS14 data. In total, four geoid models were computed. Three models combined the GOCO03/5S satellite gravity model with terrestrial and GRAV-D gravity with different strategies. The fourth model, called xGEOID15A, had no airborne gravity data and served as the benchmark to quantify the contribution of GRAV-D to the geoid improvement. The comparisons show that each model agrees with the GPS/leveling geoid height by 1.5 cm in mark-by-mark comparisons. In differential comparisons, all geoid models have a predicted accuracy of 1-2 cm at baseline lengths from 1.6 to 247 km. The contribution of GRAV-D is not apparent due to a 9-cm slope in the western 50-km section of the traverse for all gravimetric geoid models, and it was determined that the slopes have been caused by a 5 mGal bias in the terrestrial gravity data. If that western 50-km section of the testing line is excluded in the comparisons, then the improvement with GRAV-D is clearly evident. In that case, 1-cm differential accuracy on baselines of any length is achieved with the GRAV-D-enhanced geoid models and exhibits a clear improvement over the geoid models without GRAV-D data. GSVS14 confirmed that the geoid differential accuracies are in the 1-2 cm range at various baseline lengths. The accuracy increases to 1 cm with GRAV-D gravity when the west 50 km line is not included. The data collected by the surveys have high accuracy and have the potential to be used for validation of other geodetic techniques, e.g., the chronometric leveling. To reach the 1-cm height differences of the GSVS data, a clock with frequency accuracy of 10-(18) is required. Using the GSVS data, the accuracy of ellipsoidal height differences can also be estimated.
机译:国家大地测量局计划进行三项大地水准面验证调查,以验证通过结合由“重定义美国垂直基准的重力”(GRAV-D)项目在平坦,中等和粗糙地形区域中收集的空中重力数据而获得的大地水准面改善。 , 分别。在德克萨斯州的平坦地形上进行的第一项GSVS11调查证实,通过包括GRAV-D数据,可以在基线长度0.4至320 km之间实现1厘米精度的大地水准面(Smith等,J Geod 87:885-907, 2013)。第二项调查是2014年大地水准面验证调查(GSVS14),该调查在爱荷华州的地势中等但重力变化显着的地区进行。根据GPS /水准仪数据计算出两组大地水准面高度,并在204 GSVS14官方标记处观测到垂直线的大地测量偏转。它们在+/- 1.2 cm的高度上彼此一致,这证明了GSVS14数据的高质量。总共计算了四个大地水准面模型。三种模型将GOCO03 / 5S卫星重力模型与地面重力和GRAV-D重力相结合,采用了不同的策略。第四个模型称为xGEOID15A,它没有空中重力数据,并用作量化GRAV-D对大地水准面改善贡献的基准。比较表明,每个模型在逐个标记的比较中与GPS /水准大地水准面高度相差1.5厘米。在差分比较中,所有大地水准面模型在从1.6到247 km的基线长度下的预测精度为1-2 cm。对于所有重力大地水准面模型来说,由于在航迹的西部50公里处有一个9厘米的坡度,因此GRAV-D的作用不明显,并且确定该坡度是由地面上的5 mGal偏差引起的重力数据。如果在比较中不包括测试线的西部50公里处,那么GRAV-D的改进是显而易见的。在这种情况下,使用GRAV-D增强的大地水准面模型可以在任何长度的基线上实现1-cm的差分精度,与没有GRAV-D数据的大地水准面模型相比,具有明显的改进。 GSVS14确认,在不同的基线长度下,大地水准面的微分精度在1-2 cm范围内。当不包括西50 km线时,使用GRAV-D重力,精度会提高到1 cm。通过调查收集的数据具有很高的准确性,并且有潜力用于验证其他大地测量技术,例如计时水准仪。为了达到GSVS数据的1厘米高度差,需要一个频率精度为10-(18)的时钟。使用GSVS数据,也可以估算椭球高度差的精度。

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