Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance
This paper presents possibilities for anti-seismic improvement of traditional timber carpentry joints. It is known that the structural response of historical roof frameworks is highly dependent on the behavior of their joints, particularly, their capacity for rotation and energy dissipation. Any str...
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Online Access: | https://www.mdpi.com/2075-5309/9/2/48 |
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doaj-80bb7336240240d791a06af501b662232020-11-25T01:06:41ZengMDPI AGBuildings2075-53092019-02-01924810.3390/buildings9020048buildings9020048Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic ResistanceMiloš Drdácký0Shota Urushadze1Institute of Theoretical and Applied Mechanics of the Czech Academy of Sciences, 190 00 Prague, Czech RepublicInstitute of Theoretical and Applied Mechanics of the Czech Academy of Sciences, 190 00 Prague, Czech RepublicThis paper presents possibilities for anti-seismic improvement of traditional timber carpentry joints. It is known that the structural response of historical roof frameworks is highly dependent on the behavior of their joints, particularly, their capacity for rotation and energy dissipation. Any strengthening, or retrofitting, approach must take into account conservation requirements, usually expressed as conditions involving minimal intervention. Several retrofitting methods were tested on replicas of historical halved joints within various national and international research projects. The joints were produced with traditional hand tools, and made using aged material taken from a demolished building. The paper presents two approaches, each utilizing different retrofitting technologies that avoid completely dismantling the joint and consequently conserve frame integrity. The energy dissipation capacity is increased by inserting mild steel nails around a wooden pin, and connecting the two parts of the halved joint. In the second case, two thin plates made of a material with a high friction coefficient are inserted into the joint and fastened to the wooden elements. This is done by removing the wooden connecting pin and slightly opening a slot for the plates between the halved parts. In addition, the paper presents an application for disc brake plates, as well as thin plates made of oak.https://www.mdpi.com/2075-5309/9/2/48carpentry halved jointenergy dissipationseismic retrofitting |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Miloš Drdácký Shota Urushadze |
spellingShingle |
Miloš Drdácký Shota Urushadze Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance Buildings carpentry halved joint energy dissipation seismic retrofitting |
author_facet |
Miloš Drdácký Shota Urushadze |
author_sort |
Miloš Drdácký |
title |
Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance |
title_short |
Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance |
title_full |
Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance |
title_fullStr |
Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance |
title_full_unstemmed |
Retrofitting of Imperfect Halved Dovetail Carpentry Joints for Increased Seismic Resistance |
title_sort |
retrofitting of imperfect halved dovetail carpentry joints for increased seismic resistance |
publisher |
MDPI AG |
series |
Buildings |
issn |
2075-5309 |
publishDate |
2019-02-01 |
description |
This paper presents possibilities for anti-seismic improvement of traditional timber carpentry joints. It is known that the structural response of historical roof frameworks is highly dependent on the behavior of their joints, particularly, their capacity for rotation and energy dissipation. Any strengthening, or retrofitting, approach must take into account conservation requirements, usually expressed as conditions involving minimal intervention. Several retrofitting methods were tested on replicas of historical halved joints within various national and international research projects. The joints were produced with traditional hand tools, and made using aged material taken from a demolished building. The paper presents two approaches, each utilizing different retrofitting technologies that avoid completely dismantling the joint and consequently conserve frame integrity. The energy dissipation capacity is increased by inserting mild steel nails around a wooden pin, and connecting the two parts of the halved joint. In the second case, two thin plates made of a material with a high friction coefficient are inserted into the joint and fastened to the wooden elements. This is done by removing the wooden connecting pin and slightly opening a slot for the plates between the halved parts. In addition, the paper presents an application for disc brake plates, as well as thin plates made of oak. |
topic |
carpentry halved joint energy dissipation seismic retrofitting |
url |
https://www.mdpi.com/2075-5309/9/2/48 |
work_keys_str_mv |
AT milosdrdacky retrofittingofimperfecthalveddovetailcarpentryjointsforincreasedseismicresistance AT shotaurushadze retrofittingofimperfecthalveddovetailcarpentryjointsforincreasedseismicresistance |
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