MétaCan
Menu
Retour à la cohorte
Enregistrement W1979480196 · doi:10.1139/cgj-2015-0029

Discussion of <b>“</b>Plugging effect of open-ended piles in sandy soil”

2015· article· en· W1979480196 sur OpenAlexvenueno aff
Bengt H. Fellenius

Notice bibliographique

RevueCanadian Geotechnical Journal · 2015
Typearticle
Langueen
DomaineEngineering
ThématiqueGeotechnical Engineering and Soil Mechanics
Établissements canadiensnon disponible
Organismes subventionnairesnon disponible
Mots-clésPileGeotechnical engineeringHammerHead (geology)Strain gaugeStructural engineeringPipeEngineeringWeldingGeologyMaterials scienceComposite material

Résumé

récupéré en direct d'OpenAlex

The authors have presented an interesting account of a fullscale study of the response of a pipe pile driven with an open toe to the presence of an inside soil column in the pile (Ko and Jeong 2015). The tests consisted of dynamic measurements during the driving and static loading tests some time after the driving on double-wall pipe piles. Strain-gage measurements were used to determine the load distribution. The double-wall test piles were fabricated with the inside pipe centered in relation to the outside pipe. The steel cross section of the outside pipe was about 10% smaller than the inside pipe. The about 40 mm “gap” or void between the outside of the inner pipe and the inside of the outer pipe was welded closed at the pile toe to prevent soil from entering the “gap”. The welding resulted in a firm and fixed connection between the two pipes, ensuring that the lower ends of the two pipes moved in unison in the tests. I understand that no such fixed connection was made at the pile head. However, the lengths of the pipes were the same, which means that a plate placed on the pile head rested on both pipes enabling the upper end of both pipes to be engaged approximately simultaneously. Presumably, the dynamic gages (accelerometer and strain-gage pairs, I assume) were placed on only the outer pipe and the force delivered to the pile by the hammer impact was determined from the sum of the two pipe areas as based on the assumption of perfect connection to the pile head plate. Because the test pile was made up of a pair of pipes welded together at the lower end, I would expect that the dynamic gages will have recorded considerable reflections during the tests. I would not have expected a good correlation between the CAPWAPdetermined capacities (Table 2) and those determined by the offset limit method from the static loading tests (fig. 11). It would be interesting if the authors could provide details of the pile and soil models employed in the dynamic analyses. As reported by the authors, development of an inside soil column and plugging during the driving of open-toe pipe piles has been addressed by several researchers. All depict the forces acting on the pipe pile during driving as similar to that shown in the authors’ fig. 2, i.e., with upward-pointing shear force vectors both along the outside and inside of the pile and the inside vectors shown along the full length of the inside column. That is, the vectors indicate the forces as acting on the pipe and not on the core. The suggestion is that the open-toe pipe is forced down over the inside core. The force vectors also show soil forces acting on the steel pipe pile both at the base (Q b) and along the inside of the shaft (Qm), but the response cannot be both, it must be one or the other. That is, if the pile experiences a toe resistance, it has a rigid plug and there is no inside shaft shear (but for along a very short length of that rigid plug). If the pipe slides down over the core, there is inside shaft resistance, but no toe resistance. Apart from this minor misrepresentation, the figure represents the typical response during driving. The authors’ measurements show that the length of the inside soil column increased throughout the driving of the test piles. In driving, therefore, shaft resistance along the inside of the pipe can be assumed to be mobilized along the full soil column length as indicated in fig. 2. The full picture is a complex combination of shear forces, wave travel, wave reflections, and inertia, which I will not attempt to discuss here. However, the response of the pile to a static force is very different to that shown in fig. 2 and is more similar to what I show in Fig. D1. In static loading, the pipe is pressed down engaging shaft resistance along the outside and toe resistance on the annulus area, the relatively small area of the steel pipe wall. The inside column— the core— ismade to follow the downwardmovement, but the movement meets resistance at the pile toe, which generates a base force that compresses the core and causes a relative movement between the inside wall and the core. That relative movement only acts along a distance represented by the length of the core compressed by the total base force, the length necessary to “spend the force” in a spring actionwith the compression of the core being equal to the toe movement. The actual load values determined in the static loading test reported by the authors are impaired because of the interaction between the outside and inside pipes caused by the welding the pipe together at the lower end. This fact becomes obvious in Fig. D2, which combines the authors’ pile-head load–movement curves for pile 2 (fig. 11) with the loads separated on the outside and inside pipes measured at depths of 1.9 and 3.7 m, respectively (figs. 12a through 12f). The sumof the outer and inner pipes should be about equal to the applied load (curve labeled “Head both pipes”), but they are not. As can be expected from the response of the inner pipe, no change of resistance is likely to have developed between the pile head and the first gage level. In contrast, between the pile head and the first gage level in the outer pipe, an extrapolation indicates that up to 80 kN might have developed as shaft resistance along the outer pipe before the 1.9 m gage level. I believe the indicated about 400 kN difference between the sum of the outer and inner records of load and the 2000 kN applied load is due to the interaction between the two pipes, as follows. At the 2000 kN maximum applied test load, figs. 12c and 12d indicate the loadsmeasured at the first gage level in the inner and

Récupéré en direct depuis OpenAlex et désinversé. Les résumés ne sont pas conservés dans cette base de données : les index inversés représentent 8,6 Go des 9,3 Go de texte de la base, et le serveur dispose de 13 Go libres.

Comment cette classification a été obtenuedéplier

Prédiction machine sur la base complète

Imitation des enseignants

Ni prévalence calibrée, ni vérité terrain. Validation humaine à venir. Le volet Gemma est une étiquette directe du modèle pour chaque travail de la base, lue sur la notice réduite au titre. Le volet Codex est un classifieur appris des 10 348 étiquettes directes de Codex et calibré sur les taux pondérés de l'échantillon; les champs sans appui suffisant ne portent aucun appel Codex. Le mode candidate est l'union des deux volets; le consensus est leur intersection. Ces sorties portent le statut machine_predicted_unvalidated et ne sont pas des étiquettes humaines.

score de la tête « metaresearch » (Codex)0,000
score de la tête « metaresearch » (Gemma)0,001
Version: metacan-v3-hybrid-931329e0061cStatut de validation: machine_predicted_unvalidated
Catégories candidatesaucune
Catégories consensuellesaucune
DomaineSignal candidat: aucune · Signal consensuel: aucune
Devis d'étudeSignal candidat: Sans objet · Signal consensuel: aucune
GenreSignal candidat: Commentaire · Signal consensuel: aucune
Score de désaccord entre enseignants0,006
Score d'incertitude au seuil0,018

Scores du classifieur distillé par catégorie (deux têtes)

CatégorieCodexGemma
Métarecherche0,0000,001
Méta-épidémiologie (sens strict)0,0010,000
Méta-épidémiologie (sens large)0,0000,000
Bibliométrie0,0010,001
Études des sciences et des technologies0,0010,001
Communication savante0,0010,001
Science ouverte0,0010,001
Intégrité de la recherche0,0010,001
Charge utile insuffisante (le modèle a refusé de juger)0,0060,001

Scores machine (provisoires)

Les deux têtes enseignantes du modèle étudiant, lues sur ce travail. Un score ordonne la base pour la relecture; il n'affirme jamais une catégorie, et le statut de validation accompagne chaque rangée tel quel.

Scores de référence d'un modèle non mature (critères de maturité non atteints, 7 itérations). Un score ordonne; il n'affirme jamais une catégorie.

Tête enseignante Opus0,012
Tête enseignante GPT0,228
Écart entre enseignants0,216 · la distance entre les deux têtes enseignantes sur ce seul travail
Statut de validationscore_only:v0-immature-baseline · tel quel depuis la passe de notation : score_only signifie que le nombre peut ordonner les travaux, et qu'aucune étiquette de catégorie n'en découle

Classification

machine, non validée

Prédiction automatique; un appel candidat d’une seule source (Gemma direct ou Codex distillé), pas un consensus.

Les modèles n’ont appliqué aucune catégorie : rien dans la taxonomie ne correspondait à ce travail.
Devis d'étudeSans objet
Domainenon disponible
GenreCommentaire

Le détail, modèle par modèle et score par score, se trouve en fin de page sous « Comment cette classification a été obtenue ».

En bref

Citations8
Publié2015
Routes d'admission1
Résumé présentoui

Explorer davantage

Même revueCanadian Geotechnical JournalMême sujetGeotechnical Engineering and Soil MechanicsTravaux en français237 207