1993Geophysical Research LettersRequires access

Excitation of Earth’s polar motion by atmospheric angular momentum variations, 1980–1990

Benjamin F. Chao

Open publisher page 47 citations

Abstract

We compute the polar‐motion excitation function due to the atmospheric angular momentum (AAM) for both IB (inverted‐barometer) and non‐IB cases, as well as the excitation function from geodetically observed Earth orientation data for the period 1980–1990. The two are then compared in studying the AAM contribution to the polar motion excitation. The polar drifts with periods longer than ∼2 years have similar characteristics, but the comparison is inconclusive because of data uncertainties. For the seasonal wobble excitation, the agreement is poor except for the prograde annual wobble, indicating the influence of other geophysical excitations than AAM. For the Chandler wobble excitation, a correlation coefficient of 0.53 for non‐IB and 0.58 for IB are found for 1986–1990. Together with a coherence spectral analysis, they clearly demonstrate a strong contribution of AAM to the Chandler wobble excitation.

About this research paper

What this paper is about

We compute the polar‐motion excitation function due to the atmospheric angular momentum (AAM) for both IB (inverted‐barometer) and non‐IB cases, as well as the excitation function from geodetically observed Earth orientation data for the period 1980–1990. The two are then compared in studying the AAM contribution to the polar motion excitation. The polar drifts with periods longer than ∼2 years have similar characteristics, but the comparison is inconclusive because of data uncertainties. For the seasonal wobble excitation, the agreement is poor except for the prograde annual wobble, indicating the influence of other geophysical excitations than AAM. For the Chandler wobble excitation, a correlation coefficient of 0.53 for non‐IB and 0.58 for IB are found for 1986–1990. Together with a coherence spectral analysis, they clearly demonstrate a strong contribution of AAM to the Chandler wobble excitation.

Why it matters

OpenAlex reports 47 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

We compute the polar‐motion excitation function due to the atmospheric angular momentum (AAM) for both IB (inverted‐barometer) and non‐IB cases, as well as the excitation function from geodetically observed Earth orientation data for the period 1980–1990. The two are then compared in studying the AAM contribution to the polar motion excitation. The polar drifts with periods longer than ∼2 years have similar characteristics, but the comparison is inconclusive because of data uncertainties. For the seasonal wobble excitation, the agreement is poor except for the prograde annual wobble, indicating the influence of other geophysical excitations than AAM. For the Chandler wobble excitation, a correlation coefficient of 0.53 for non‐IB and 0.58 for IB are found for 1986–1990. Together with a coherence spectral analysis, they clearly demonstrate a strong contribution of AAM to the Chandler wobble excitation.

Key concepts: Polar motion, Speed wobble, Excitation, Angular momentum, Physics, Earth's rotation, Polar, Coherence (philosophical gambling strategy)

Related papers

Back to paper searchBrowse research topicsOriginal source
Excitation of Earth’s polar motion by atmospheric angular momentum variations, 1980–1990 — Research Paper | ScholarLens