TWI599707B - Friction damping support pad - Google Patents

Friction damping support pad Download PDF

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TWI599707B
TWI599707B TW105130509A TW105130509A TWI599707B TW I599707 B TWI599707 B TW I599707B TW 105130509 A TW105130509 A TW 105130509A TW 105130509 A TW105130509 A TW 105130509A TW I599707 B TWI599707 B TW I599707B
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friction
support pad
core
post
damped support
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TW105130509A
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TW201643305A (en
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Chong-Shien Tsai
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Chong-Shien Tsai
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摩擦阻尼式支承墊Friction damped support pad

本發明係關於一種支承墊,尤指一種設置於建築物或橋樑等大型物體上或儀器設備上用以吸收地震及環境震動的能量,並能防止溫度上升及具有自動調整阻尼及勁度功能之摩擦阻尼式支承墊。The invention relates to a support pad, in particular to a large object such as a building or a bridge or an instrument for absorbing energy of earthquakes and environmental vibrations, and capable of preventing temperature rise and having automatic adjustment of damping and stiffness. Friction damped support pad.

按,現有的建築物、橋樑或機器等大型物體上,大都會設置有具吸震及隔震效果的支承墊,來吸收地震時所產生的能量與震動,如美國第5,655,756號專利案(以下簡稱為參考案)即揭示一種現有的支承墊結構,該參考案的支承墊(Lead Rubber Bearing,LRB,鉛心橡膠支承墊)主要係包含有一核心柱,於該核心柱的兩端分別設置有一支撐板,而兩支撐板係分別固設於地面及一大型物體上,並於兩支撐板間設置有多數個間隔交錯設置的金屬層及橡膠層,當地震發生時,可藉由交錯設置的橡膠層、金屬層及核心柱的變形來達到吸震的效果,進而降低地震所產生的傷害。According to the existing large buildings such as buildings, bridges or machines, the metropolitan area is equipped with support pads with shock absorption and isolation effects to absorb the energy and vibration generated during the earthquake, such as the US Patent No. 5,655,756 (hereinafter referred to as the US Patent No. 5,655,756). For reference, a prior art support pad structure is disclosed. The reference support pad (Lead Rubber Bearing, LRB, lead rubber support pad) mainly comprises a core column, and a support is respectively arranged at two ends of the core column. a plate, and the two supporting plates are respectively fixed on the ground and a large object, and a plurality of metal layers and a rubber layer which are alternately arranged at intervals are arranged between the two supporting plates, and when the earthquake occurs, the rubber is interlaced The deformation of the layer, the metal layer and the core column to achieve the shock absorption effect, thereby reducing the damage caused by the earthquake.

然而,現有如參考案的支承墊,其核心柱係以鉛所製成,該鉛製的核心柱雖具彎曲變形的效果,以吸收地震的能量,但因鉛為有毒的重金屬且其熔點約327℃,不僅會對於環境汙染造成重大影響,且鉛製的核心柱在地震中經反覆的彎曲變形時容易產生高熱,又因鉛的比熱低,故現有支承墊在吸震過程中所產生的熱很容易使核心柱超過300℃。如此容易導致核心柱及橡膠層的功能受損甚至熔化,造成支承墊功能受損,吸能效益降低,甚至造成支承墊的破壞,進而破壞現有支承墊的結構而影響其支撐強度。又縱然現有支承墊之溫度並未達到鉛的熔點,亦會因高溫造成支承墊的材料(包括鉛及橡膠材料)軟化,使現有支承墊的強度大幅降低,同時降低了支承墊的支撐能力及吸震效果。However, in the prior art support pads, the core column is made of lead, and the lead core column has a bending deformation effect to absorb the energy of the earthquake, but the lead is a toxic heavy metal and its melting point is about 327 °C, not only will have a major impact on environmental pollution, and the lead core column is prone to high heat during repeated bending deformation in the earthquake, and the specific heat of lead is low, so the heat generated by the existing support pad during the shock absorption process It is easy to make the core column exceed 300 °C. This easily causes the function of the core column and the rubber layer to be damaged or even melted, resulting in impaired function of the support pad, reduced energy absorption efficiency, and even damage of the support pad, thereby destroying the structure of the existing support pad and affecting its support strength. Even if the temperature of the existing support pad does not reach the melting point of lead, the material of the support pad (including lead and rubber material) is softened due to high temperature, the strength of the existing support pad is greatly reduced, and the support capacity of the support pad is reduced. Shock absorption effect.

有鑑於上述現有支承墊所存在的問題與不足,現有鉛製的支承墊已逐漸被禁止使用或者放棄使用,故世界各國極力思考其他吸震的材料或吸能機制,藉以解決吸能需求及環保等問題,其中一個方法是拿掉鉛製的核心柱,但其結果是所產生的阻尼效果不足,會造成現有支承墊太大的位移量,如果與油壓阻尼器等其他阻尼器結合使用時,其所需之費用昂貴,其不僅不符合經濟效益,而且需要較大的空間以同時容納阻尼器及支承墊,相對會造成使用上的困擾,誠有加以改進之處。In view of the problems and deficiencies of the above-mentioned existing support pads, the existing lead support pads have been gradually banned or abandoned, so countries around the world are thinking hard about other shock absorbing materials or energy absorbing mechanisms to solve energy absorption requirements and environmental protection. One of the problems is to remove the lead core column, but the result is insufficient damping effect, which will cause the existing support pad to be too large, if combined with other dampers such as oil dampers, The cost is expensive, and it is not only inconsistent with economic benefits, but also requires a large space to accommodate the damper and the support pad at the same time, which is relatively confusing in use and has been improved.

因此,本發明人有鑑於現有支承墊結構及使用上的缺失及不足,特經過不斷的研究與試驗,終於發展出一種可改進現有缺失之本發明。Therefore, the present inventors have finally developed a present invention which can improve the existing defects in view of the existing support pad structure and the lack and deficiency in use thereof, and through continuous research and experimentation.

本發明之主要目的在於提供一種摩擦阻尼式支承墊,其中所述核心柱設有複數個滑動片,且所述複數個滑動片以上、下堆疊方式進行排列,藉此透過所述核心柱的滑動片相對滑動及摩擦,以及所述第一、二材料層的變形來達到吸震的效果,且非鉛製的滑動片可避免因反覆的彎曲變形時所產生高熱及高溫對於核心柱產生功能受損甚至熔化,而對於環境汙染造成重大影響,以提供一種結構穩定性及三向度吸震效果佳之支承墊者之目的者。The main object of the present invention is to provide a friction-damped support pad, wherein the core post is provided with a plurality of sliding sheets, and the plurality of sliding sheets are arranged in a stacked manner above and below, thereby sliding through the core column. The relative sliding and friction of the sheet, and the deformation of the first and second material layers to achieve the shock absorbing effect, and the non-lead sliding sheet can avoid the high heat and high temperature generated by the repeated bending deformation, thereby impairing the function of the core column. It even melts and has a major impact on environmental pollution to provide a support cushion for structural stability and three-way shock absorption.

再者,利用上、下堆疊滑動片的垂直勁度以及第一、二材料層的垂直勁度的比值進行垂直載重的分配,進而調整滑動片摩擦力及阻尼的大小。進一步,亦可利用具有不同摩擦係數的滑動片,形成所述滑動片可在不同摩擦力及不同時間點的情況下進行相對滑動,以達到摩擦阻尼式支承墊可自動調整阻尼及勁度的功能。Furthermore, the vertical load is distributed by the ratio of the vertical stiffness of the upper and lower stacked sliding sheets and the vertical stiffness of the first and second material layers, thereby adjusting the frictional force and the damping of the sliding sheet. Further, the sliding piece having different friction coefficients can also be used to form the sliding piece to perform relative sliding under different frictional forces and different time points, so as to achieve the function of automatically adjusting the damping and the stiffness of the friction damping type supporting pad. .

更進一步,將所述滑動片局限於上、下兩相鄰的第二材料層之間,藉以減少核心柱與第一、二材料層在垂直方向變形的差異性,使得所述滑動片在水平方向的滑動更為順利,另外,透過該核心柱的高度略低於第一、二材料層總高度的方式,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成垂直方向的高度差,使得滑動片在水平方向的滑動更加順利。Further, the sliding sheet is limited between the upper and lower adjacent second material layers, thereby reducing the difference between the core pillar and the first and second material layers in the vertical direction, so that the sliding sheet is horizontal The sliding direction is smoother. In addition, the height of the core column is slightly lower than the total height of the first and second material layers, so as to adjust the vertical direction of the core column and the first and second material layers due to the horizontal displacement of the support pad. The height difference makes the sliding of the sliding sheet smoother in the horizontal direction.

並且利用支承墊材料的力學特性加以並聯及串聯,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度變化可以非常平順,不會因激烈的變化而造成可能的高頻率震盪。再者,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,使支承墊的材料有較佳的組合與應用。And the mechanical properties of the support pad material are used in parallel and series, so that the stiffness change of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be very smooth, and it is not possible due to drastic changes. High frequency oscillations. Moreover, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, so that the material of the support pad has a better combination and application.

另外,利用具有複數個滑動片之核心柱的物理及力學特性與其他種類的核心柱(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯或串聯,可以掌控其他種類的核心柱變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。In addition, the physical and mechanical properties of a core column with a plurality of sliding sheets can be controlled in parallel or in series with other types of core columns (for example, LRBs in the reference case are made of lead material or core columns made of high damping material). The position and time point of deformation of other kinds of core columns make the stiffness and frequency change of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically controlled, thereby improving the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

為達上述目的,本發明主要係提供一種摩擦阻尼式支承墊,其包含有: 至少一核心柱,該至少一核心柱設有複數個滑動片,其中所述複數滑動片以上、下堆疊方式進行排列; 兩支撐板分別設置於該摩擦阻尼式支承墊的兩端;以及 複數個相互交錯設置於兩支撐板之間並包圍套設該至少一核心柱的第一材料層與第二材料層。In order to achieve the above object, the present invention mainly provides a friction damping type support pad, comprising: at least one core column, wherein the at least one core column is provided with a plurality of sliding sheets, wherein the plurality of sliding sheets are stacked above and below Arranging; two support plates are respectively disposed at two ends of the friction damper support pad; and a plurality of first material layers and a second material layer interlaced between the two support plates and surrounding the at least one core post.

進一步,所述的摩擦阻尼式支承墊於所述核心柱及兩材料層之間分別設有一包覆於所述滑動片外部的束制單元。Further, the friction-damped support pad is respectively provided with a beam unit covering the outside of the sliding piece between the core column and the two material layers.

再進一步,所述的摩擦阻尼式支承墊於所述核心柱的滑動片內設有至少一冷卻單元,所述冷卻單元設有一密封管及一冷卻劑,該密封管為一中框管體且貫穿相對應核心柱的滑動片,該冷卻劑填注於該密封管內。Further, the friction-damped support pad is provided with at least one cooling unit in the sliding piece of the core column, the cooling unit is provided with a sealing tube and a coolant, and the sealing tube is a middle frame tube body and The coolant is filled in the sealing tube through the sliding piece corresponding to the core column.

較佳的是,所述的摩擦阻尼式支承墊於所述核心柱於束制單元的外部設有至少一冷卻單元,所述冷卻單元有一密封管及一冷卻劑,該密封管套設於該束制單元的外部,而該冷卻劑位於該密封管及該束制單元之間。Preferably, the friction-damped support pad is provided with at least one cooling unit on the outside of the beam unit, the cooling unit has a sealing tube and a coolant, and the sealing tube is sleeved on the The exterior of the bundle unit is located between the seal tube and the bundle unit.

較佳的是,所述的摩擦阻尼式支承墊於所述核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與該核心柱的滑動片相疊合,藉以調整該核心柱的載重量,進而調整滑動片摩擦力及阻尼的大小,以及調適由於支承墊水平位移時,該核心柱與第一、二材料層造成垂直方向的高度差,使所述滑動片在水平方向的滑動更加順利。Preferably, the friction-damped support pad is provided with at least one deformable stiffness adjustment post on the core post, and the at least one stiffness adjustment post is overlapped with the sliding piece of the core post to adjust The load capacity of the core column, thereby adjusting the frictional force and the damping of the sliding piece, and adjusting the height difference between the core column and the first and second material layers due to the horizontal displacement of the support pad, so that the sliding piece is The horizontal direction slides more smoothly.

較佳的是,所述的摩擦阻尼式支承墊於所述核心柱兩端分別設置有一用以封閉核心柱端部開口的端蓋,並於兩支撐板上設置有對應容置所述核心柱端部之端蓋的容置孔。Preferably, the friction-damped support pad is respectively provided with an end cover for closing the opening of the end of the core column at the two ends of the core column, and the core plate is disposed correspondingly on the two support plates. The receiving hole of the end cap of the end.

較佳的是,所述的摩擦阻尼式支承墊的兩支撐板係分別直接封閉各核心柱兩端的開口。Preferably, the two support plates of the friction-damped support pad directly close the openings at the two ends of each core column.

較佳的是,所述的摩擦阻尼式支承墊利用上、下堆疊滑動片的垂直勁度以及第一、二材料層的垂直勁度的比值進行垂直載重的分配,進而調整滑動片摩擦力及阻尼的大小,以及調適由於支承墊水平位移時核心柱與第一、二材料層造成垂直方向的高度差,使得滑動片在水平方向的滑動更加順利。Preferably, the friction-damped support pad utilizes the vertical stiffness of the upper and lower stacked sliding sheets and the ratio of the vertical stiffness of the first and second material layers to distribute the vertical load, thereby adjusting the friction of the sliding sheet and The size of the damping, as well as the height difference between the core column and the first and second material layers due to the horizontal displacement of the support pad, makes the sliding of the sliding plate smoother in the horizontal direction.

較佳的是,所述的摩擦阻尼式支承墊透過該核心柱的高度略低於第一、二材料層總高度的方式,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成垂直方向的高度差,使得滑動片在水平方向的滑動更加順利,以及具有自動調整阻尼及勁度的功能。Preferably, the friction-damped support pad passes through the core column at a height slightly lower than the total height of the first and second material layers, thereby adjusting the core column and the first and second material layers due to the horizontal displacement of the support pad. The difference in height in the vertical direction makes the sliding of the sliding sheet smoother in the horizontal direction, and has the function of automatically adjusting the damping and the stiffness.

較佳的是,所述的摩擦阻尼式支承墊部分的第一材料層及第二材料層延伸設於該核心柱,使第一材料層、第二材料層及滑動片產生並聯及串聯的效果,使該支承墊由小水平力(小位移)到大水平力(大位移)的勁度變化可以非常平順,不會因激烈的變化而造成可能的高頻率的震盪,再者,該支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,使支承墊的材料有較佳的組合與應用。Preferably, the first material layer and the second material layer of the friction-damped support pad portion are extended on the core column, so that the first material layer, the second material layer and the sliding sheet have the effects of parallel connection and series connection. The stiffness of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) can be very smooth, without causing possible high frequency oscillation due to drastic changes, and further, the support pad The damping ratio reduction from small horizontal force (small displacement) to large horizontal force (large displacement) is also relatively gentle, so that the material of the support pad has a better combination and application.

較佳的是,所述的摩擦阻尼式支承墊之具有複數個滑動片的核心柱的物理及力學特性與其他種類的核心柱(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯或串聯,可以掌控其他種類的核心柱變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。Preferably, the friction-damped support pad has physical and mechanical properties of a core column having a plurality of sliding sheets and other types of core columns (for example, the LRB in the reference is made of lead material or with high damping material). The core column) is connected in parallel or in series, which can control the position and time point of deformation of other kinds of core columns, so that the stiffness and frequency change of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically changed. Control to improve the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

藉由上述之技術手段,本發明摩擦阻尼式支承墊係至少具有以下的優點及功效: 一、摩擦阻尼效果:本發明的摩擦阻尼式支承墊藉由在所述核心柱內設置複數個上、下堆疊的滑動片的方式,使所述滑動片可在地震發生時彼此之間產生相對滑動以及摩擦,進而提供一摩擦阻尼的效果,而且同時配合所述第一、二材料層的變形來達到一較佳的吸震效果,避免地震的震動及能量直接傳遞至大型物體上而對物體造成損壞。 二、符合環保:本發明的摩擦阻尼式支承墊使用非鉛製的滑動片,可避免因反覆的彎曲變形時所產生高熱,對於所述核心柱產生高溫致使鉛製核心柱的降伏點(Yield Point)降低進而導致吸能的功能受損,甚至造成材料的熔化而對於環境汙染造成重大影響。 三、束制、冷卻以及調整載重效果:本發明進一步於所述核心柱內設置該束制單元,藉以提供所述滑動片一束制功能以及一變形的空間,並且透過於所述核心柱內設置至少一冷卻單元的方式,可有效降低所述核心柱及整個支承墊的溫度,有效防止支承墊溫度上升而導致所述核心柱或第一、二材料層發生功能受損甚至熔化等現象,並且藉由於所述核心柱內設置至少一可變形的勁度調整柱的方式,調整所述核心柱的載重量,進而調整所述滑動片摩擦力的大小與摩擦阻尼式支承墊的阻尼大小以及減少核心柱與第一、二材料層在垂直方向變形的差異性,使得滑動片在水平方向的滑動更順利。另外,可透過搭配不同厚度、內徑及外徑的滑動片,讓所述核心柱與兩材料層間具有環形間隙,且可於所述環形間隙中填注一氣體,進而提供所述滑動片一束制的效果。 四、自動調整阻尼及勁度的功能﹕本發明進一步利用不同摩擦係數的滑動片,形成所述滑動片可在不同摩擦力及不同時間點的情況下進行相對滑動,以達到摩擦阻尼式支承墊可自動調整阻尼及勁度的功能,以解決近層地震可能造成一般的支承墊有太大位移的問題。 五、滑動片在水平方向的滑動更順利的功能:本發明將至少一部份的滑動片局限於上、下兩相鄰的第二材料層之間,藉以減少核心柱與第一、二材料層在垂直方向變形的差異性,使得所述滑動片在水平方向的滑動更為順利。 六、調適因水平位移造成的高度差:本發明利用所述核心柱的高度略低於第一、二材料層總高度的方式,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成的高度差,使得所述滑動片在水平方向的滑動更加順利。 七、支承墊的材料有較佳的組合與應用:本發明利用支承墊材料的力學特性加以並聯及串聯,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度變化可以非常平順,不會因激烈的變化而造成可能的高頻率的震盪,再者,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,使支承墊的材料有較佳的組合與應用。 八、支承墊的隔震效能之提升:利用具有複數個滑動片之核心柱的物理及力學特性與其他種類的核心柱(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯或串聯,可以掌控其他種類的核心柱變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。According to the above technical means, the friction-damped support pad of the present invention has at least the following advantages and effects: 1. Friction damping effect: the friction-damped support pad of the present invention is provided by a plurality of holes in the core column, The manner in which the sliding sheets are stacked so that the sliding sheets can be relatively slid and rubbed against each other when an earthquake occurs, thereby providing a friction damping effect, and simultaneously achieving deformation of the first and second material layers to achieve A better shock absorbing effect prevents earthquake vibration and energy from being directly transmitted to large objects and causing damage to objects. Second, it is environmentally friendly: the friction-damped support pad of the present invention uses a non-lead sliding piece to avoid high heat generated by repeated bending deformation, and the high temperature of the core column causes the drop point of the lead core column (Yield) Point) The function of lowering the energy absorption is impaired, and even the melting of the material has a major impact on environmental pollution. Third, the beaming, cooling and adjusting the load effect: the present invention further provides the beam unit in the core column, thereby providing the sliding piece bundle function and a deformed space, and passing through the core column The method of providing at least one cooling unit can effectively reduce the temperature of the core column and the entire support pad, and effectively prevent the temperature of the support pad from rising, thereby causing the function of the core column or the first and second material layers to be damaged or even melted. And adjusting the load of the core column by adjusting at least one deformable stiffness adjusting column in the core column, thereby adjusting the frictional force of the sliding piece and the damping amount of the friction damping supporting pad and The difference between the core column and the first and second material layers in the vertical direction is reduced, so that the sliding of the sliding sheet in the horizontal direction is smoother. In addition, through the sliding sheets with different thicknesses, inner diameters and outer diameters, the core column and the two material layers have an annular gap, and a gas can be filled in the annular gap to provide the sliding sheet. The effect of the bundle. 4. The function of automatically adjusting the damping and the stiffness: the invention further utilizes the sliding sheets with different friction coefficients, and the sliding sheets can be relatively slid under different frictional forces and different time points to achieve the friction damping type supporting cushion. The function of damping and stiffness can be automatically adjusted to solve the problem that the near-layer earthquake may cause the displacement of the general support pad to be too large. 5. The function of sliding the sliding sheet in the horizontal direction is smoother: the invention limits at least a part of the sliding sheet between the upper and lower adjacent second material layers, thereby reducing the core column and the first and second materials. The difference in the deformation of the layer in the vertical direction makes the sliding of the sliding sheet in the horizontal direction smoother. 6. Adjusting the height difference caused by the horizontal displacement: the invention utilizes the height of the core column to be slightly lower than the total height of the first and second material layers, thereby adjusting the core column and the first and second materials due to the horizontal displacement of the support pad The height difference caused by the layers makes the sliding of the sliding sheet smoother in the horizontal direction. 7. The material of the support pad has a better combination and application: the invention utilizes the mechanical properties of the support pad material to be connected in parallel and in series, so that the support pad has a stiffness from a small horizontal force (small displacement) to a large horizontal force (large displacement). The change can be very smooth, and there is no possibility of high frequency oscillation due to drastic changes. Furthermore, the damping ratio of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) is also relatively gentle, so that The materials of the support pads are preferably combined and applied. 8. Improvement of the isolation performance of the support pad: the physical and mechanical properties of the core column with a plurality of sliding plates and other types of core columns (for example, the LRB in the reference case is made of lead material or high damping material) The core column) can be controlled in parallel or in series to control the position and time point of deformation of other kinds of core columns, so that the stiffness and frequency variation of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically controlled. In order to improve the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

為能詳細瞭解本發明的技術特徵及實用功效並可依照說明書的內容來實現,玆進一步以如圖式所示的較佳實施例,詳細說明如后:In order to understand the technical features and practical functions of the present invention in detail and can be implemented in accordance with the contents of the specification, the detailed description is as follows:

本發明是一種安裝運用於建築物、橋樑、機器或儀器設備等物體上的摩擦阻尼式支承墊,如各圖式所揭露的實施例所示,請配合參看如圖1至3所示之第一較佳實施例,本發明的摩擦阻尼式支承墊主要係包含有一核心柱10、兩支撐板20、複數個第一材料層30以及複數個第二材料層40,其中該核心柱10可呈圓形、方形及其他任何可能的幾何形狀截面,該核心柱10設有複數個滑動片11,各滑動片11可由相同或不相同硬材料所製成,其可為鐵、鋁或銅等金屬所製成,亦可由硬橡膠、塑鋼(POM)、聚酮材料(Polyether Ether Ketone─PEEK)、高分子材料(Polymeric Materials)或硬塑膠等材料所製成,所述複數個滑動片11係以上、下堆疊的方式進行排列而形成該核心柱10,且各滑動片11的厚度可相同或不同,於第一較佳實施例中,各滑動片11具有相同的厚度,較佳的是,各滑動片11可使用高摩擦係數的材料製成或於各滑動片11的上表面、下表面或外表面塗佈一如鐵氟龍等的助滑材料層,進一步,該核心柱10於兩端分別設置有一用以封閉該核心柱10端部開口的端蓋12。The present invention is a friction-damped support pad for installation on objects such as buildings, bridges, machines or instruments, as shown in the embodiments disclosed in the drawings, please refer to the figures shown in Figures 1 to 3. In a preferred embodiment, the friction-damped support pad of the present invention mainly comprises a core column 10, two support plates 20, a plurality of first material layers 30, and a plurality of second material layers 40, wherein the core columns 10 can be Circular, square and any other possible geometric cross-section, the core column 10 is provided with a plurality of sliding sheets 11, each of which may be made of the same or different hard materials, which may be metal such as iron, aluminum or copper. It can also be made of materials such as hard rubber, plastic steel (POM), polyether material (Polyether Ether Ketone-PEEK), polymer material (Polymeric Materials) or hard plastic, and the plurality of sliding sheets 11 are more than The core pillars 10 are arranged in a stacked manner, and the thickness of each of the sliding sheets 11 may be the same or different. In the first preferred embodiment, each of the sliding sheets 11 has the same thickness, preferably, each Slide 11 can be used high A friction coefficient material is formed or coated on the upper surface, the lower surface or the outer surface of each sliding sheet 11 with a layer of a sliding material such as Teflon. Further, the core column 10 is respectively provided at both ends for closing. The end cap 12 of the core post 10 is open at the end.

前述的兩支撐板20分別設於該摩擦阻尼式支承墊的兩端且相互平行設置,又兩支撐板20可呈圓形、方形及其他任何可能的幾何形狀,其分別可與地面及建築物、橋樑或機器等大型物體或儀器設備等小型物體相結合,並於兩支撐板20中心處分別設置有一對應容置該核心柱10端部或端蓋12的容置孔21。The two supporting plates 20 are respectively disposed at two ends of the friction damping type supporting pad and disposed parallel to each other, and the two supporting plates 20 can be circular, square and any other possible geometric shapes, which can be respectively connected with the ground and the building. A large object such as a bridge or a machine or a small object such as an instrument is combined, and a receiving hole 21 corresponding to the end of the core post 10 or the end cover 12 is respectively disposed at the center of the two supporting plates 20.

前述的第一材料層30與第二材料層40係相互交錯地設置於兩支撐板20之間並包圍套設該核心柱10,且各材料層30、40與該核心柱10的各滑動片11呈交錯配置,亦即該核心柱10的各滑動片11係與至少兩材料層30、40相面對,其中各第一、二材料層30、40可為配合兩支撐板20呈圓形、方形或其他任何可能的幾何形狀之片體,亦可與兩支撐板20呈不同形狀,如兩支撐板20可呈方形,而第一、二材料層30、40可呈圓形,其中各第一材料層30與各第二材料層40係由可變形的材料所製成,並可選用不同的材料,較佳的是,各第一材料層30可為橡膠、金屬或複合材料等材質所製成,而各第二材料層40則可為金屬、橡膠或複合材料等材質所製成,進一步,該核心柱10的滑動片11數量及厚度與兩材料層30、40的數量及厚度相同或不相同,於第一較佳實施中,該核心柱10各滑動片11的厚度介於兩材料層30、40的厚度之間。再者,端蓋12可使用材質比兩支撐板20較軟的可變形材料或使核心柱10的高度略低於第一、二材料層30、40的總高度,藉以減少因水平方向的運動而造成核心柱10與第一、二材料層30、40在垂直方向變形的差異性,使得各滑動片11在水平方向的滑動更順利。The first material layer 30 and the second material layer 40 are disposed alternately between the two support plates 20 and surround the core pillars 10 , and the respective material layers 30 , 40 and the sliding blocks of the core pillars 10 . 11 is in a staggered configuration, that is, each sliding piece 11 of the core column 10 faces at least two material layers 30, 40, wherein each of the first and second material layers 30, 40 can be rounded to match the two supporting plates 20. The square, or any other possible geometric shape, may also have a different shape from the two support plates 20, for example, the two support plates 20 may be square, and the first and second material layers 30, 40 may be circular, each of which The first material layer 30 and each of the second material layers 40 are made of a deformable material, and different materials may be selected. Preferably, each of the first material layers 30 may be made of rubber, metal or composite material. The second material layer 40 can be made of a material such as metal, rubber or composite material. Further, the number and thickness of the sliding sheets 11 of the core column 10 and the number and thickness of the two material layers 30 and 40. The same or different, in the first preferred embodiment, the thickness of each sliding piece 11 of the core column 10 is Between the thicknesses of the two material layers 30,40. Furthermore, the end cap 12 can use a deformable material that is softer than the two support plates 20 or the height of the core post 10 is slightly lower than the total height of the first and second material layers 30, 40, thereby reducing the horizontal movement. The difference in the vertical deformation of the core post 10 and the first and second material layers 30, 40 causes the sliding of each of the sliding sheets 11 in the horizontal direction to be smoother.

藉此本發明摩擦阻尼式支承墊於使用時,兩支撐板20係分別固設於地面及物體上,當地震發生時,可透過該核心柱10的各滑動片11相對滑動及摩擦,以及各第一、二材料層30、40的變形來達到吸震的效果,不僅可有效避免地震或環境的震動及能量直接傳遞至大型物體上而對物體造成損壞,以提供建築物、橋樑或機器等大型物體一吸震的效果,且由複數個上、下層疊的非鉛製的滑動片11所組成之核心柱10,可避免因反覆的彎曲變形時所產生高熱對於核心柱10產生功能受損甚至熔化,而對於環境汙染造成重大影響。另外,本發明不需與油壓阻尼器等其他阻尼器結合使用,即可提供足夠的阻尼效果,可大幅降低所需之費用而符合經濟效益,而且不需要額外的空間即可進行安裝,使用上相對方便。再者,利用上、下堆疊的滑動片11的垂直勁度以及第一、二材料層30、40的垂直勁度的比值進行垂直載重的分配,進而調整滑動片11摩擦力及阻尼的大小。進一步,利用不同摩擦係數的滑動片11,形成各滑動片11可在不同摩擦力及不同時間點的情況下進行相對滑動,以達到摩擦阻尼式支承墊可自動調整阻尼及勁度的功能,以強化摩擦阻尼式支承墊的減震功效。Therefore, when the friction damping type support pad of the present invention is used, the two support plates 20 are respectively fixed on the ground and the objects, and when the earthquake occurs, the sliding pieces 11 of the core column 10 can be relatively slid and rubbed, and each The deformation of the first and second material layers 30, 40 to achieve the shock absorbing effect, not only can effectively avoid earthquake or environmental vibration and energy directly transmitted to large objects and cause damage to the object, so as to provide large buildings, bridges or machines. The core column 10 composed of a plurality of upper and lower laminated non-lead sliding sheets 11 can prevent the high heat generated by the repeated bending deformation from being damaged or even melted on the core column 10 by the effect of shock absorption of the object. And has a major impact on environmental pollution. In addition, the present invention does not need to be combined with other dampers such as hydraulic dampers to provide sufficient damping effect, which can greatly reduce the cost required and is economical, and requires no additional space for installation and use. It is relatively convenient. Further, the vertical load is distributed by the vertical stiffness of the upper and lower stacked sliding sheets 11 and the vertical stiffness of the first and second material layers 30 and 40, and the frictional force and the damping amount of the sliding sheet 11 are adjusted. Further, by using the sliding sheets 11 with different friction coefficients, the sliding sheets 11 can be relatively slid under different frictional forces and different time points, so as to achieve the function of automatically adjusting the damping and the stiffness of the friction damping type supporting pads. Enhanced damping effect of friction-damped support pads.

如圖4所示的第二較佳實施例,該第二較佳實施例與圖1至3所示第一較佳實施例的差別在於:本較佳實施例的摩擦阻尼式支承墊可設置有複數個核心柱10,其中各核心柱10可相對支承墊的圓心呈間隔等距排列,藉由各核心柱10內的滑動片11,提供一摩擦的阻尼效果。As shown in the second preferred embodiment of FIG. 4, the difference between the second preferred embodiment and the first preferred embodiment shown in FIGS. 1 to 3 is that the friction damper support pad of the preferred embodiment can be set. There are a plurality of core pillars 10, wherein each of the core pillars 10 can be arranged at equal intervals with respect to the center of the support pad, and a friction damping effect is provided by the sliding sheets 11 in the core pillars 10.

如圖5及6所示的第三較佳實施例,該第三較佳實施例與圖1至3所示第一較佳實施例的差別在於:貼靠兩端蓋12的兩滑動片11A的厚度小於該核心柱10其他滑動片11B的厚度,且除了兩貼靠兩端蓋12的兩滑動片11A外,該核心柱10的各滑動片11B的厚度大於兩材料層30、40的厚度。再者,兩滑動片11A的材質可使用比滑動片11B較軟的可變形材料、或使用材質比兩支撐板20較軟的可變形的端蓋12,藉以減少因水平方向的運動而造成核心柱10與第一、二材料層30、40在垂直方向變形的差異性,使得滑動片11B在水平方向的滑動更順利。As shown in the third preferred embodiment shown in FIGS. 5 and 6, the third preferred embodiment differs from the first preferred embodiment shown in FIGS. 1 to 3 in that the two sliding sheets 11A are abutted against the end covers 12 The thickness of the sliding sheet 11B of the core post 10 is greater than the thickness of the two sliding layers 11B of the core post 10, and the thickness of each sliding piece 11B of the core post 10 is greater than the thickness of the two material layers 30, 40. . Furthermore, the material of the two sliding sheets 11A can use a deformable material softer than the sliding sheet 11B or a deformable end cover 12 which is softer than the two supporting plates 20, thereby reducing the core caused by the horizontal movement. The difference in deformation of the column 10 from the first and second material layers 30, 40 in the vertical direction makes the sliding of the sliding sheet 11B smoother in the horizontal direction.

如圖7至9所示的第四較佳實施例,該第四較佳實施例與圖5及6所示第三較佳實施例的差別在於:於該核心柱10、兩材料層30、40及兩端蓋12之間設有一包覆於各滑動片11A、11B外部的束制單元50,其中該束制單元50由一可變形的材料所製成,藉以對於該核心柱10的各滑動片11A、11B一束制功能以及一變形的空間,較佳的是,該束制單元50可為一可變形的軟質材料、一中空筒體或者一螺旋彈簧。As shown in the fourth preferred embodiment of FIGS. 7-9, the fourth preferred embodiment differs from the third preferred embodiment shown in FIGS. 5 and 6 in that the core post 10, the two material layers 30, 40 and a bundle unit 50 covering the outside of each of the sliding sheets 11A, 11B, wherein the bundle unit 50 is made of a deformable material, thereby for each of the core pillars 10 The sliding sheet 11A, 11B has a bundle function and a deformed space. Preferably, the bundle unit 50 can be a deformable soft material, a hollow cylinder or a coil spring.

如圖10所示的第五較佳實施例,該第五較佳實施例與圖7至9所示第四較佳實施例的差別在於:本較佳實施例的支承墊可設置有複數個核心柱10,其中各核心柱10可相對支承墊的圓心呈間隔等距排列,藉由各核心柱10內的滑動片11A、11B,提供一摩擦的阻尼效果。As shown in the fifth preferred embodiment of FIG. 10, the fifth preferred embodiment differs from the fourth preferred embodiment shown in FIGS. 7-9 in that the support pad of the preferred embodiment can be provided with a plurality of The core column 10, wherein each of the core columns 10 is arranged at equal intervals with respect to the center of the support pad, provides a frictional damping effect by the sliding sheets 11A, 11B in each core column 10.

如圖11至13所示的第六較佳實施例,該第六較佳實施例與圖1至3所示第一較佳實施例的差別在於:於該核心柱10內設有一位於兩端蓋12之間的冷卻單元60,其中該冷卻單元60設有一密封管61及一冷卻劑62,該密封管61為一中框管體且貫穿該核心柱10的各滑動片11,且該密封管61的兩端分別由兩端蓋12所封閉,該冷卻劑62填注於該密封管61內,較佳的是,該冷卻劑62可為氣體、液體或固體等型態的冷卻劑,藉以有效降低核心柱10及整個支承墊的溫度,防止支承墊溫度上升而導致核心柱10或第一、二材料層30、40功能受損甚至發生熔化等現象,可維持支承墊整體的結構強度及吸震效果,提高支承墊的整體使用效能。The difference between the sixth preferred embodiment and the first preferred embodiment shown in FIGS. 1 to 3 is that the core column 10 is provided at both ends. a cooling unit 60 between the cover 12, wherein the cooling unit 60 is provided with a sealing tube 61 and a coolant 62. The sealing tube 61 is a middle frame tube and penetrates each sliding piece 11 of the core column 10, and the sealing unit The two ends of the tube 61 are respectively closed by the two ends of the cover 12, and the coolant 62 is filled in the sealing tube 61. Preferably, the coolant 62 can be a gas, a liquid or a solid type of coolant. In order to effectively reduce the temperature of the core column 10 and the entire support pad, the temperature of the support pad is prevented from rising, and the core column 10 or the first and second material layers 30, 40 are damaged or even melted, and the structural strength of the support pad as a whole can be maintained. And shock absorption effect, improve the overall performance of the support pad.

如圖14所示的第七較佳實施例,該第七較佳實施例與圖11至13所示第六較佳實施例的差別在於:本較佳實施例的支承墊可設置有複數個核心柱10,其中各核心柱10可相對支承墊的圓心呈間隔等距排列,藉由各核心柱10內的滑動片11,提供一摩擦的阻尼效果。As shown in the seventh preferred embodiment of FIG. 14, the seventh preferred embodiment is different from the sixth preferred embodiment shown in FIGS. 11 to 13 in that the support pad of the preferred embodiment can be provided with a plurality of The core column 10, wherein each of the core columns 10 is arranged at equal intervals with respect to the center of the support pad, provides a frictional damping effect by the sliding sheets 11 in each of the core columns 10.

如圖15及16所示的第八較佳實施例,該第八較佳實施例與圖7及8所示第四較佳實施例以及圖11至13所示第六較佳實施例的差別在於:本較佳實施例於兩材料層30、40、該核心柱10及兩端蓋12之間同時具有該束制單元50及該冷卻單元60,藉以對於該核心柱10的各滑動片11一束制功能以及一變形的空間,以及有效降低核心柱10及整個支承墊的溫度,防止支承墊溫度上升而導致核心柱10或第一、二材料層30、40功能受損甚至發生熔化等現象。The difference between the eighth preferred embodiment shown in FIGS. 15 and 16 and the fourth preferred embodiment shown in FIGS. 7 and 8 and the sixth preferred embodiment shown in FIGS. 11 to 13 The present invention has the bundle unit 50 and the cooling unit 60 between the two material layers 30, 40, the core column 10 and the two end covers 12, whereby the sliding sheets 11 for the core column 10 are provided. a bundle function and a deformed space, and effectively reducing the temperature of the core column 10 and the entire support pad, preventing the temperature of the support pad from rising, resulting in damage to the core column 10 or the first and second material layers 30, 40, or even melting, etc. phenomenon.

如圖17所示的第九較佳實施例,該第九較佳實施例與圖15及16所示第八較佳實施例的差別在於:本較佳實施例的支承墊可設置有複數個核心柱10,其中各核心柱10可相對支承墊的圓心呈間隔等距排列,藉由各核心柱10內的滑動片11,提供一摩擦的阻尼效果。The ninth preferred embodiment shown in FIG. 17 differs from the eighth preferred embodiment shown in FIGS. 15 and 16 in that the support pad of the preferred embodiment can be provided with a plurality of The core column 10, wherein each of the core columns 10 is arranged at equal intervals with respect to the center of the support pad, provides a frictional damping effect by the sliding sheets 11 in each of the core columns 10.

如圖18所示的第十較佳實施例,該第十較佳實施例與圖15及16所示第八較佳實施例的差別在於:本較佳實施例冷卻單元60的密封管61套設於該束制單元50的外部,使該冷卻劑62位於該密封管61及該束制單元50之間,藉以對於該核心柱10的各滑動片11一束制功能以及一變形的空間,以及有效降低核心柱10及整個支承墊的溫度,防止支承墊溫度上升而導致核心柱10或第一、二材料層30、40功能受損甚至發生熔化等現象。As shown in the tenth preferred embodiment of FIG. 18, the difference between the tenth preferred embodiment and the eighth preferred embodiment shown in FIGS. 15 and 16 is that the sealing tube 61 of the cooling unit 60 of the preferred embodiment is provided. Provided on the outside of the bundle unit 50, the coolant 62 is located between the sealing tube 61 and the bundle unit 50, thereby providing a function of a bundle and a deformation space for each sliding piece 11 of the core column 10. And effectively reducing the temperature of the core column 10 and the entire support pad, preventing the temperature of the support pad from rising, resulting in damage to the core column 10 or the first and second material layers 30, 40 or even melting.

如圖19及20所示的第十一較佳實施例、如圖21及22所示之第十二較佳實施例、如圖23及24所示之第十三較佳實施例、如圖25所示之第十四較佳實施例以及如圖26所示之第十五較佳實施例,其分別與圖1至3所示第一較佳實施例、圖7及8所示的第四較佳實施例、圖11至13的第六較佳實施例、圖15及16的第八較佳實施例以及圖18的第十較佳實施例的差別在於:該核心柱10並未另外設置兩端蓋12以封閉兩端的開口,而係以兩支撐板20A直接封閉該核心柱10兩端的開口,可簡化支承墊的整體結構。The eleventh preferred embodiment shown in FIGS. 19 and 20, the twelfth preferred embodiment shown in FIGS. 21 and 22, and the thirteenth preferred embodiment shown in FIGS. 23 and 24, The fourteenth preferred embodiment shown in FIG. 25 and the fifteenth preferred embodiment shown in FIG. 26 are respectively shown in the first preferred embodiment shown in FIGS. 1 to 3 and the first embodiment shown in FIGS. 7 and 8. The difference between the fourth preferred embodiment, the sixth preferred embodiment of FIGS. 11 to 13, the eighth preferred embodiment of FIGS. 15 and 16, and the tenth preferred embodiment of FIG. 18 is that the core post 10 has no additional The two end covers 12 are provided to close the openings at both ends, and the two support plates 20A directly close the openings at both ends of the core post 10, which simplifies the overall structure of the support pads.

如圖27所示的第十六較佳實施例、如圖28所示之第十七較佳實施例、如圖29所示之第十八較佳實施例、如圖30所示之第十九較佳實施例以及如圖31所示之第二十較佳實施例,其分別與圖1至3所示第一較佳實施例、圖7及8所示的第四較佳實施例、圖11至13的第六較佳實施例、圖15及16的第八較佳實施例以及圖18的第十較佳實施例的差別在於:各第一材料層30與該核心柱10的各滑動片11平行設置且厚度相同,且各第二材料層40A延伸設於兩相鄰的滑動片11之間,再者,可在各第二材料層40A位於滑動片11位置的上表面或下表面塗佈一如鐵氟龍等的助滑材料層。進一步,各滑動片11局限於上、下兩相鄰的第二材料層40A之間,藉以減少核心柱10與第一、二材料層30、40A在垂直方向變形的差異性,使得各滑動片11在水平方向的滑動更順利。更進一步,將該核心柱10的高度略低於第一、二材料層30、40A的總高度,藉以調適由於支承墊水平位移時,該核心柱10與第一、二材料層30、40A造成的高度差,使得各滑動片11在水平方向的滑動更加順利。另外,端蓋12可使用材質比兩支撐板20較軟的可變形材料,藉以減少因水平方向的運動而造成該核心柱10與第一、二材料層30、40A在垂直方向變形的差異性,使得各滑動片11在水平方向的滑動更順利。The sixteenth preferred embodiment shown in FIG. 27, the seventeenth preferred embodiment shown in FIG. 28, the eighteenth preferred embodiment shown in FIG. 29, and the tenth shown in FIG. a preferred embodiment and a twentieth preferred embodiment as shown in FIG. 31, which are respectively associated with the first preferred embodiment shown in FIGS. 1 to 3 and the fourth preferred embodiment shown in FIGS. 7 and 8. The difference between the sixth preferred embodiment of FIGS. 11 to 13 , the eighth preferred embodiment of FIGS. 15 and 16 and the tenth preferred embodiment of FIG. 18 is that each of the first material layer 30 and the core pillar 10 The sliding sheets 11 are arranged in parallel and have the same thickness, and each of the second material layers 40A is extended between the two adjacent sliding sheets 11, and further, the second material layer 40A may be located on the upper surface or the lower surface of the sliding sheet 11 The surface is coated with a layer of a sliding material such as Teflon. Further, each of the sliding sheets 11 is limited to between the upper and lower adjacent second material layers 40A, thereby reducing the difference between the core pillars 10 and the first and second material layers 30, 40A in the vertical direction, so that the sliding sheets 11 sliding in the horizontal direction is smoother. Further, the height of the core pillar 10 is slightly lower than the total height of the first and second material layers 30, 40A, thereby adjusting the core pillar 10 and the first and second material layers 30, 40A due to horizontal displacement of the support mat. The height difference makes the sliding of each of the sliding sheets 11 in the horizontal direction smoother. In addition, the end cover 12 can use a deformable material that is softer than the two support plates 20, thereby reducing the difference in the vertical direction deformation of the core post 10 and the first and second material layers 30, 40A due to the horizontal movement. Therefore, the sliding of each of the sliding sheets 11 in the horizontal direction is smoother.

如圖32所示的第二十一較佳實施例、如圖33所示之第二十二較佳實施例、如圖34所示之第二十三較佳實施例、如圖35所示之第二十四較佳實施例以及如圖36所示之第二十五較佳實施例,其分別與圖27所示的第十六較佳實施例、圖28所示之第十七較佳實施例、圖29所示之第十八較佳實施例、圖30所示之第十九較佳實施例以及圖31所示之第二十較佳實施例的差別在於:該核心柱10並未另外設置兩端蓋12以封閉兩端的開口,而係以兩支撐板20A直接封閉該核心柱10兩端的開口,可簡化支承墊的整體結構。The twenty-first preferred embodiment shown in FIG. 32, the twenty-second preferred embodiment shown in FIG. 33, and the twenty-third preferred embodiment shown in FIG. 34, as shown in FIG. The twenty-fourth preferred embodiment and the twenty-fifth preferred embodiment shown in FIG. 36 are respectively compared with the sixteenth preferred embodiment shown in FIG. 27 and the seventeenth embodiment shown in FIG. The difference between the preferred embodiment, the eighteenth preferred embodiment shown in FIG. 29, the nineteenth preferred embodiment shown in FIG. 30, and the twentieth preferred embodiment shown in FIG. 31 is that the core post 10 The two end covers 12 are not separately provided to close the openings at both ends, and the two support plates 20A directly close the openings at both ends of the core post 10, which simplifies the overall structure of the support pads.

如圖37及38所示的第二十六較佳實施例,其與圖1至3所示的第一較佳實施例的差別在於:該核心柱10兩相鄰的滑動片11C、11D具有不同的外徑,使兩相鄰的滑動片11C、11D與兩材料層30、40間具有一環形間隙13,各環形間隙13中可填注一氣體,藉以提供各滑動片11C、11D一束制的效果。A difference between the twenty-sixth preferred embodiment shown in FIGS. 37 and 38 and the first preferred embodiment shown in FIGS. 1 to 3 is that the two adjacent sliding sheets 11C, 11D of the core post 10 have Different outer diameters have an annular gap 13 between the two adjacent sliding sheets 11C, 11D and the two material layers 30, 40. Each annular gap 13 can be filled with a gas, thereby providing a bundle of the sliding sheets 11C, 11D. The effect of the system.

如圖39所示的第二十七較佳實施例,其與圖5及6所示的第三較佳實施例的差別在於:該核心柱10各滑動片11E的內徑小於兩端蓋12的內徑,且各滑動片11E於外表面環形凸設有一厚度小於滑動片11E的凸緣111E,各凸緣111E與至少兩材料層30、40相貼靠,且該核心柱10於各滑動片11E的凸緣111E以及各材料層30、40間具有一環形間隙13E,各環形間隙13E中可填注一氣體,藉以提供各滑動片11E一束制的效果及滑動空間。The difference between the twenty-seventh preferred embodiment shown in FIG. 39 and the third preferred embodiment shown in FIGS. 5 and 6 is that the inner diameter of each sliding piece 11E of the core post 10 is smaller than the end cover 12 The inner diameter of each of the sliding sheets 11E is annularly convexly formed on the outer surface by a flange 111E having a thickness smaller than that of the sliding piece 11E. Each of the flanges 111E is in contact with at least two material layers 30 and 40, and the core column 10 is slidable. The flange 111E of the sheet 11E and the material layers 30, 40 have an annular gap 13E, and each of the annular gaps 13E can be filled with a gas, thereby providing the effect of each of the sliding sheets 11E and the sliding space.

如圖40所示的第二十八較佳實施例,其與圖5及6所示的第三較佳實施例的差別在於:該核心柱10進一步設有一實心可變形的勁度(stiffness)調整柱70,該勁度調整柱70設於該核心柱10的上半部而位於各滑動片11A、11B的上方與其中一端蓋12之間,其中該勁度調整柱70可由銅、錫、鉛、鋁、軟鋼、高分子材料、塑鋼或橡膠等材料所製成,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The twenty-eighth preferred embodiment shown in FIG. 40 differs from the third preferred embodiment shown in FIGS. 5 and 6 in that the core post 10 is further provided with a solid deformable stiffness. The adjustment column 70 is disposed on the upper half of the core column 10 and located between each of the sliding sheets 11A, 11B and the one end cover 12 thereof. The stiffness adjustment column 70 can be made of copper, tin, It is made of lead, aluminum, mild steel, polymer material, plastic steel or rubber to adjust the load capacity of the core column 10, thereby adjusting the friction and damping of each sliding piece 11A, 11B, and adjusting the horizontal displacement. The height difference between the core column 10 and the material layers 30 and 40 allows the sliding sheets 11A and 11B to slide smoothly.

如圖41所示的第二十九較佳實施例,其與圖40所示的第二十八較佳實施例的差別在於:該勁度調整柱70設於該核心柱10的下半部而位於各滑動片11A、11B的下方與其中一端蓋12之間,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The difference between the twenty-ninth preferred embodiment shown in FIG. 41 and the twenty-eighth preferred embodiment shown in FIG. 40 is that the stiffness adjusting post 70 is disposed in the lower half of the core post 10. And between the lower side of each of the sliding sheets 11A, 11B and the one end cover 12, thereby adjusting the load of the core column 10, thereby adjusting the friction and damping of each of the sliding pieces 11A, 11B, and adjusting the horizontal displacement The difference in height between the core column 10 and the material layers 30 and 40 allows the sliding sheets 11A and 11B to slide smoothly.

如圖42所示的第三十較佳實施例,其與圖40所示的第二十八較佳實施例的差別在於:該勁度調整柱70設於該核心柱10的中段部而位於各滑動片11A、11B之間,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The difference between the thirty-first preferred embodiment shown in FIG. 42 and the twenty-eighth preferred embodiment shown in FIG. 40 is that the stiffness adjusting post 70 is located at the middle portion of the core post 10 and is located. Between each of the sliding sheets 11A, 11B, the load of the core column 10 is adjusted, thereby adjusting the friction and damping of each of the sliding sheets 11A, 11B, and adjusting the core column 10 and the material layers 30, 40 due to horizontal displacement. The difference in height between the sliders 11A and 11B allows the sliders 11A and 11B to slide smoothly.

如圖43所示的第三十一較佳實施例,其與圖5及6所示的第三較佳實施例的差別在於:該核心柱10設有兩分別與兩端蓋12相貼靠的勁度調整柱70,藉以將各滑動片11B設於兩勁度調整柱70之間,藉以調整該核心柱10的載重量,進而調整各滑動片11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11B能夠滑動順暢。The difference between the thirty-first preferred embodiment shown in FIG. 43 and the third preferred embodiment shown in FIGS. 5 and 6 is that the core post 10 is provided with two opposite ends 12 respectively. The stiffness adjustment column 70 is provided between the two stiffness adjustment columns 70 to adjust the load of the core column 10, thereby adjusting the friction and damping of each slide piece 11B, and adjusting the cause The horizontal displacement causes a difference in height between the core post 10 and the material layers 30, 40, so that each of the sliding sheets 11B can slide smoothly.

如圖44所示的第三十二較佳實施例,其與圖11至13所示的第六較佳實施例的差別在於:該核心柱10於下半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11位於該勁度調整柱70的上方,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢,且該密封管61的兩端分別設有一封蓋611。The thirty-second preferred embodiment shown in FIG. 44 differs from the sixth preferred embodiment shown in FIGS. 11 to 13 in that the core post 10 is provided with a one end cover 12 in the lower half. The deformable stiffness adjusting column 70 is disposed such that each sliding piece 11 is located above the stiffness adjusting column 70, thereby adjusting the load capacity of the core column 10, thereby adjusting the friction and damping of each sliding piece 11. And adjusting the height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement, so that the sliding sheets 11 can slide smoothly, and a cover 611 is respectively disposed at both ends of the sealing tube 61.

如圖45所示的第三十三較佳實施例,其與圖44所示的第三十二較佳實施例的差別在於:該核心柱10於上半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11位於該勁度調整柱70的下方,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小。The thirty-third preferred embodiment shown in FIG. 45 differs from the thirty-second preferred embodiment shown in FIG. 44 in that the core post 10 is provided with an end cap 12 in the upper half. The deformable stiffness adjusting column 70 is placed so that each sliding piece 11 is positioned below the stiffness adjusting column 70, thereby adjusting the load capacity of the core column 10, thereby adjusting the frictional force and damping of each sliding piece 11.

如圖46所示的第三十四較佳實施例,其與圖44所示的第三十二較佳實施例的差別在於:該勁度調整柱70設於該核心柱10的中段部而位於各滑動片11之間,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢。The difference between the thirty-fourth preferred embodiment shown in FIG. 46 and the thirty-second preferred embodiment shown in FIG. 44 is that the stiffness adjusting post 70 is disposed at the middle portion of the core post 10. Between each of the sliding sheets 11 to adjust the load of the core column 10, thereby adjusting the friction and damping of each sliding piece 11, and adjusting the height between the core column 10 and the material layers 30, 40 due to the horizontal displacement. Poor, the sliding sheets 11 can be smoothly slid.

如圖47所示的第三十五較佳實施例,其與圖44所示的第三十二較佳實施例的差別在於:該核心柱10設有兩分別與兩端蓋12相貼靠的可變形之勁度調整柱70,藉以將各滑動片11設於兩勁度調整柱70之間,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢。The thirty-fifth preferred embodiment shown in FIG. 47 differs from the thirty-second preferred embodiment shown in FIG. 44 in that the core post 10 is provided with two opposite ends 12 respectively. The deformable stiffness adjustment column 70 is disposed between the two stiffness adjustment columns 70 to adjust the load of the core column 10, thereby adjusting the friction and damping of each sliding piece 11. And adjusting the height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement, so that each of the sliding sheets 11 can slide smoothly.

如圖48所示的第三十六較佳實施例,其與圖18所示的第十較佳實施例的差別在於:該核心柱10於上半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11位於該勁度調整柱70的下方,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢,且該密封管61的兩端分別設有一封蓋611。The thirty-sixth preferred embodiment shown in FIG. 48 differs from the tenth preferred embodiment shown in FIG. 18 in that the core post 10 is provided with an end cap 12 in the upper half. The deformable stiffness adjusting column 70 is disposed such that each sliding piece 11 is located below the stiffness adjusting column 70, thereby adjusting the load of the core column 10, thereby adjusting the friction and damping of each sliding piece 11, and adjusting The height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement enables the sliding sheets 11 to slide smoothly, and a cover 611 is respectively disposed at both ends of the sealing tube 61.

如圖49所示的第三十七較佳實施例,其與圖48所示的第三十六較佳實施例的差別在於:該核心柱10於下半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11位於該勁度調整柱70的上方,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小。The thirty-seventh preferred embodiment shown in FIG. 49 differs from the thirty-sixth preferred embodiment shown in FIG. 48 in that the core post 10 is provided with a one end cover 12 in the lower half. The deformable stiffness adjustment column 70 is placed so that each sliding piece 11 is positioned above the stiffness adjustment column 70, thereby adjusting the load capacity of the core column 10, thereby adjusting the frictional force and damping of each sliding piece 11.

如圖50所示的第三十八較佳實施例,其與圖48所示的第三十六較佳實施例的差別在於:該核心柱10於中段部設有一可變形之勁度調整柱70,使該勁度調整柱70位於各滑動片11之間,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢。The thirty-eighth preferred embodiment shown in FIG. 50 differs from the thirty-sixth preferred embodiment shown in FIG. 48 in that the core post 10 is provided with a deformable stiffness adjustment column at the middle portion. 70, the stiffness adjustment column 70 is located between the sliding sheets 11, thereby adjusting the load of the core column 10, thereby adjusting the friction and damping of each sliding piece 11, and adjusting the core column 10 due to horizontal displacement. The difference in height from the material layers 30 and 40 allows each of the sliding sheets 11 to slide smoothly.

如圖51所示的第三十九較佳實施例,其與圖48所示的第三十六較佳實施例的差別在於:該核心柱10設有兩分別與兩端蓋12相貼靠的可變形的勁度調整柱70,將各滑動片11設於兩勁度調整柱70之間,藉以調整該核心柱10的載重量,進而調整各滑動片11摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11能夠滑動順暢。The difference between the thirty-ninth preferred embodiment shown in FIG. 51 and the thirty-sixth preferred embodiment shown in FIG. 48 is that the core post 10 is provided with two opposite ends 12 respectively. The deformable stiffness adjusting column 70 is disposed between the two stiffness adjusting columns 70 to adjust the load of the core column 10, thereby adjusting the friction and damping of each sliding piece 11, and The height difference between the core post 10 and the material layers 30, 40 due to the horizontal displacement is adjusted, so that the respective slide sheets 11 can slide smoothly.

如圖52所示的第四十較佳實施例,其與圖5及6所示的第三較佳實施例的差別在於:該核心柱10於上半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11A、11B位於該勁度調整柱70的下方,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The fourth preferred embodiment shown in FIG. 52 differs from the third preferred embodiment shown in FIGS. 5 and 6 in that the core post 10 is provided with an end cap 12 attached to the upper half. The deformable stiffness adjustment column 70 is disposed such that each of the sliding pieces 11A, 11B is located below the stiffness adjusting column 70, thereby adjusting the load of the core column 10, thereby adjusting the friction and damping of each of the sliding pieces 11A, 11B. The size and the height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement are adjusted, so that the sliding sheets 11A, 11B can slide smoothly.

如圖53所示的第四十一較佳實施例,其與圖52所示的第四十較佳實施例的差別在於:該核心柱10於下半部設有一與其中一端蓋12相貼靠的可變形之勁度調整柱70,使各滑動片11A、11B位於該勁度調整柱70的上方,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The forty-first preferred embodiment shown in FIG. 53 differs from the fortieth preferred embodiment shown in FIG. 52 in that the core post 10 is provided with a one end cover 12 attached to the lower half. The deformable stiffness adjustment column 70 is disposed such that each of the sliding pieces 11A, 11B is located above the stiffness adjusting column 70, thereby adjusting the load of the core column 10, thereby adjusting the friction and damping of each of the sliding pieces 11A, 11B. The size and the height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement are adjusted, so that the sliding sheets 11A, 11B can slide smoothly.

如圖54所示的第四十二較佳實施例,其與圖52所示的第四十較佳實施例的差別在於:該核心柱10中段部設有一可變形的勁度調整柱70,使該勁度調整柱70位於各滑動片11A、11B之間,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The difference between the forty-second preferred embodiment shown in FIG. 54 and the fortieth preferred embodiment shown in FIG. 52 is that the middle portion of the core post 10 is provided with a deformable stiffness adjusting column 70. The stiffness adjustment column 70 is positioned between the sliding sheets 11A, 11B to adjust the load of the core column 10, thereby adjusting the friction and damping of each of the sliding sheets 11A, 11B, and adjusting the core due to horizontal displacement. The difference in height between the column 10 and the material layers 30 and 40 allows the sliding sheets 11A and 11B to slide smoothly.

如圖55所示的第四十三較佳實施例,其與圖52所示的第四十較佳實施例的差別在於:該核心柱10設有兩分別與兩端蓋12相貼靠的可變形之勁度調整柱70,藉以將各滑動片11A、11B設於兩勁度調整柱70之間,藉以調整該核心柱10的載重量,進而調整各滑動片11A、11B摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11A、11B能夠滑動順暢。The difference between the forty-third preferred embodiment shown in FIG. 55 and the fortieth preferred embodiment shown in FIG. 52 is that the core post 10 is provided with two opposite ends of the cover 12 respectively. The deformable stiffness adjustment column 70 is disposed between the two stiffness adjustment columns 70 to adjust the load of the core column 10, thereby adjusting the friction and damping of each of the sliding pieces 11A and 11B. The size and the height difference between the core column 10 and the material layers 30, 40 due to the horizontal displacement are adjusted, so that the sliding sheets 11A, 11B can slide smoothly.

如圖56所示的第四十四較佳實施例,其與圖27所示的第十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,且該核心柱10於下半部設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。當水平力(小位移)比較小時,只有上半部的第一材料層30及第二材料層40A產生變形而發揮減震功能,而下半部的第一材料層30、第二材料層40及滑動片11A、11B的功能尚未啟動,故支承墊的勁度(Stiffness)及阻尼(damping)只有上半部的第一材料層30及第二材料層40A產生貢獻。而當水平力達到克服滑動片11A、11B的摩擦力時,下半部的滑動片11A、11B才開始滑動,同時下半部的第一材料層30及第二材料層40才開始產生變形而發揮減震功能,而且上半部的第一材料層30及第二材料層40A也同時產生變形而發揮減震功能,故支承墊的勁度是由上半部及下半部的第一材料層30及第二材料層40A、40的串聯結果,而阻尼是由所有第一材料層30、第二材料層40A、40的變形及滑動片11A、11B滑動摩擦產生的阻尼之總合。The fourth preferred embodiment shown in FIG. 56 differs from the sixteenth preferred embodiment shown in FIG. 27 in that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core post 10, and the core post 10 is provided with two different thickness sliding sheets 11A, 11B in the lower half, so that the two adjacent sliding sheets 11A, 11B have different thicknesses. When the horizontal force (small displacement) is relatively small, only the first material layer 30 and the second material layer 40A of the upper half are deformed to exhibit a shock absorbing function, and the first material layer 30 and the second material layer 40 of the lower half are used. Since the functions of the slide sheets 11A and 11B have not yet been activated, the stiffness and damping of the support pads contribute only to the first material layer 30 and the second material layer 40A in the upper half. When the horizontal force reaches the friction against the sliding sheets 11A, 11B, the sliding sheets 11A, 11B of the lower half start to slide, and the first material layer 30 and the second material layer 40 of the lower half begin to deform. The shock absorbing function is exerted, and the first material layer 30 and the second material layer 40A of the upper half are simultaneously deformed to exert a shock absorbing function, so the stiffness of the support pad is the first material of the upper half and the lower half. The series of results of layer 30 and second material layers 40A, 40, and damping is the sum of the damping of all first material layer 30, second material layers 40A, 40 and the sliding friction of sliding sheets 11A, 11B.

因此,支承墊由小水平力(小位移)到大水平力(大位移)的勁度變化可以非常平順,不會因激烈的變化而造成可能的高頻率的震盪。再者,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,使支承墊的材料有較佳的組合與應用。另外,利用本實施例之核心柱10的物理及力學特性與其他種類的核心柱90(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯,亦可以產生上述的功能,藉以掌控其他種類的核心柱90變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。Therefore, the stiffness change of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) can be very smooth, without causing a possible high frequency oscillation due to drastic changes. Moreover, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, so that the material of the support pad has a better combination and application. In addition, the physical and mechanical properties of the core post 10 of the present embodiment can be generated in parallel with other types of core posts 90 (for example, the LRB in the reference case is made of a lead material or a core column made of a high damping material). The function is to control the position and time point of deformation of other kinds of core columns 90, so that the stiffness and frequency variation of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically controlled, thereby improving the support. The isolation function of the mat. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

如圖57所示的第四十五較佳實施例,其與圖56所示的第四十四較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,且該核心柱10於上半部設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The forty-fifth preferred embodiment shown in FIG. 57 differs from the forty-fourth preferred embodiment shown in FIG. 56 in that a portion of the first material layer 30 and the second material layer 40A are extended. The lower half of the core post 10, and the core post 10 is provided with two different thickness sliding sheets 11A, 11B in the upper half, so that the two adjacent sliding sheets 11A, 11B have different thicknesses.

如圖58所示的第四十六較佳實施例,其與圖56所示的第四十四較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,且該核心柱10於上半部及下半部設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The forty-sixth preferred embodiment shown in FIG. 58 differs from the forty-fourth preferred embodiment shown in FIG. 56 in that a portion of the first material layer 30 and the second material layer 40A are extended. The middle portion of the core column 10, and the core column 10 is provided with two different thickness sliding sheets 11A, 11B in the upper half and the lower half, so that the two adjacent sliding sheets 11A, 11B have different thicknesses.

如圖59所示的第四十七較佳實施例,其與圖56所示的第四十四較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部及下半部,且該核心柱10於中段部設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The forty-seventh preferred embodiment shown in FIG. 59 differs from the forty-fourth preferred embodiment shown in FIG. 56 in that a portion of the first material layer 30 and the second material layer 40A are extended. The upper and lower halves of the core post 10, and the core post 10 are provided with two different thickness sliding sheets 11A, 11B at the middle portion, so that the two adjacent sliding sheets 11A, 11B have different thicknesses.

如圖60所示的第四十八較佳實施例,其與圖29所示的第十八較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,使各滑動片11位於該核心柱10的上半部,且該密封管61的兩端分別設有一封蓋611。The difference between the forty-eighth preferred embodiment shown in FIG. 60 and the eighteenth preferred embodiment shown in FIG. 29 is that a portion of the first material layer 30 and the second material layer 40A are extended. The lower half of the core column 10 is such that each sliding piece 11 is located in the upper half of the core column 10, and a cover 611 is respectively disposed at both ends of the sealing tube 61.

如圖61所示的第四十九較佳實施例,其與圖60所示的第四十八較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,使各滑動片11位於該核心柱10的下半部。The forty-ninth preferred embodiment shown in FIG. 61 differs from the forty-eighth preferred embodiment shown in FIG. 60 in that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core post 10 is such that each slide piece 11 is located in the lower half of the core post 10.

如圖62所示的第五十較佳實施例,其與圖60所示的第四十八較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,使各滑動片11位於該核心柱的上半部及下半部。The fifty-fifth preferred embodiment shown in FIG. 62 differs from the forty-eighth preferred embodiment shown in FIG. 60 in that a portion of the first material layer 30 and the second material layer 40A are extended. The middle portion of the core column 10 is such that each of the sliding sheets 11 is located in the upper half and the lower half of the core column.

如圖63所示的第五十一較佳實施例,其與圖60所示的第四十八較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部及下半部,使各滑動片11A、11B位於該核心柱10的中段部,且該核心柱10設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The difference between the fifty-first preferred embodiment shown in FIG. 63 and the forty-eighth preferred embodiment shown in FIG. 60 is that a portion of the first material layer 30 and the second material layer 40A are extended. The upper and lower halves of the core post 10 are such that the sliding sheets 11A, 11B are located in the middle portion of the core post 10, and the core post 10 is provided with two different thickness sliding sheets 11A, 11B to make two phases. The adjacent sliding sheets 11A, 11B have different thicknesses.

如圖64所示的第五十二較佳實施例,其與圖31所示的第二十較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,使各滑動片11位於該核心柱10的下半部,且該密封管61的兩端分別設有一封蓋611。The difference between the fifty-second preferred embodiment shown in FIG. 64 and the twentieth preferred embodiment shown in FIG. 31 is that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core column 10 is such that each sliding piece 11 is located at the lower half of the core column 10, and a cover 611 is respectively disposed at both ends of the sealing tube 61.

如圖65所示的第五十三較佳實施例,其與圖64所示的第五十二較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,使各滑動片11位於該核心柱10的上半部。The fifty-third preferred embodiment shown in FIG. 65 differs from the fifty-second preferred embodiment shown in FIG. 64 in that a portion of the first material layer 30 and the second material layer 40A are extended. The lower half of the core post 10 is such that each slide piece 11 is located in the upper half of the core post 10.

如圖66所示的第五十四較佳實施例,其與圖64所示的第五十二較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,使各滑動片11位於該核心柱10的上半部及下半部。The difference between the fifty-fourth preferred embodiment shown in FIG. 66 and the fifty-second preferred embodiment shown in FIG. 64 is that a portion of the first material layer 30 and the second material layer 40A are extended. The middle portion of the core column 10 is such that each of the sliding sheets 11 is located in the upper half and the lower half of the core column 10.

如圖67所示的第五十五較佳實施例,其與圖64所示的第五十二較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部及下半部,使各滑動片11位於該核心柱10的中段部。The fifty-fifth preferred embodiment shown in FIG. 67 differs from the fifty-second preferred embodiment shown in FIG. 64 in that a portion of the first material layer 30 and the second material layer 40A are extended. The upper and lower halves of the core column 10 are such that the respective sliding sheets 11 are located at the middle portion of the core column 10.

如圖68所示的第五十六較佳實施例,其與圖41所示的第二十九較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,使各滑動片11位於該核心柱10的中段部而位於該勁度調整柱70上方。The difference between the fifty-sixth preferred embodiment shown in FIG. 68 and the twenty-ninth preferred embodiment shown in FIG. 41 is that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core column 10 is such that each sliding piece 11 is located at a middle portion of the core column 10 and above the stiffness adjusting column 70.

如圖69所示的第五十七較佳實施例,其與圖68所示的第五十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,使各滑動片11位於該核心柱10的中段部而位於該勁度調整柱70下方。The fifty-seventh preferred embodiment shown in FIG. 69 differs from the fifty-sixth preferred embodiment shown in FIG. 68 in that a portion of the first material layer 30 and the second material layer 40A are extended. The lower half of the core column 10 is located at the middle portion of the core column 10 and below the stiffness adjusting column 70.

如圖70所示的第五十八較佳實施例,其與圖68所示的第五十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,使各滑動片11及該勁度調整柱70分別位於該核心柱10的上半部及下半部。The difference between the fifty-eighth preferred embodiment shown in FIG. 70 and the fifty-sixth preferred embodiment shown in FIG. 68 is that a portion of the first material layer 30 and the second material layer 40A are extended. In the middle portion of the core column 10, each of the sliding sheets 11 and the stiffness adjusting column 70 are located in the upper half and the lower half of the core column 10, respectively.

如圖71所示的第五十九較佳實施例、圖72所示的第六十較佳實施例以及圖73所示的第六十一較佳實施例,其分別與圖68所示的第五十六較佳實施例、圖69所示的第五十七較佳實施例以及圖70所示的第五十八較佳實施例的差別在於:該核心柱10設有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The fifty-ninth preferred embodiment shown in FIG. 71, the sixty-first preferred embodiment shown in FIG. 72, and the sixty-first preferred embodiment shown in FIG. 73 are respectively shown in FIG. The difference between the fifty-sixth preferred embodiment, the fifty-seventh preferred embodiment shown in FIG. 69, and the fifty-eighth preferred embodiment shown in FIG. 70 is that the core post 10 is provided with two different thicknesses. The sliding sheets 11A, 11B have two adjacent sliding sheets 11A, 11B having different thicknesses.

如圖74所示的第六十二較佳實施例,其與圖44所示的第三十二較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,使各滑動片11A、11B位於該核心柱10的中段部而位於該勁度調整柱70上方,且該核心柱10具有兩種不同厚度的滑動片11A、11B,使兩相鄰的滑動片11A、11B具有不同厚度。The difference between the sixty-second preferred embodiment shown in FIG. 74 and the thirty-second preferred embodiment shown in FIG. 44 is that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core column 10 is such that each of the sliding pieces 11A, 11B is located at the middle portion of the core column 10 above the stiffness adjusting column 70, and the core column 10 has two different thickness sliding sheets 11A, 11B. The two adjacent sliding sheets 11A, 11B have different thicknesses.

如圖75所示的第六十三較佳實施例,其與圖74所示的第六十二較佳實施例的差別在於:該冷卻單元60設置於各滑動片11A、11B之間且未伸設至該勁度調整柱70中。The difference between the sixty-third preferred embodiment shown in FIG. 75 and the sixty-second preferred embodiment shown in FIG. 74 is that the cooling unit 60 is disposed between the sliding sheets 11A, 11B and is not Extending into the stiffness adjustment column 70.

如圖76所示的第六十四較佳實施例,其與圖49所示的第三十七較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部,使各滑動片11位於該核心柱10的中段部而位於該勁度調整柱70上方。The sixty-fourth preferred embodiment shown in FIG. 76 differs from the thirty-seventh preferred embodiment shown in FIG. 49 in that a portion of the first material layer 30 and the second material layer 40A are extended. The upper half of the core column 10 is such that each sliding piece 11 is located at a middle portion of the core column 10 and above the stiffness adjusting column 70.

如圖77所示的第六十五較佳實施例,其與圖75所示的第六十三較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,使各滑動片11位於該核心柱10的上半部而位於該勁度調整柱70上方。The difference between the sixty-fifth preferred embodiment shown in FIG. 77 and the sixty-third preferred embodiment shown in FIG. 75 is that a portion of the first material layer 30 and the second material layer 40A are extended. The lower half of the core post 10 is such that each sliding piece 11 is located above the stiffness adjustment post 70 in the upper half of the core post 10.

如圖78所示的第六十六較佳實施例,其與圖49所示的第三十七較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,使各滑動片11及該勁度調整柱70分別位於該核心柱10的上半部及下半部。The sixth preferred embodiment shown in FIG. 78 differs from the thirty-seventh preferred embodiment shown in FIG. 49 in that a portion of the first material layer 30 and the second material layer 40A are extended. In the middle portion of the core column 10, each of the sliding sheets 11 and the stiffness adjusting column 70 are located in the upper half and the lower half of the core column 10, respectively.

如圖79所示的第六十七較佳實施例、圖80所示的第六十八較佳實施例、圖81所示的第六十九較佳實施例、圖82所示的第七十較佳實施例、圖83所示的第七十一較佳實施例、圖84所示的第七十二較佳實施例、圖85所示的第七十三較佳實施例、圖86所示的第七十四較佳實施例、圖87所示的第七十五較佳實施例以及圖88所示的第七十六較佳實施例,其分別與圖27所示的第十六較佳實施例、圖28所示的第十七較佳實施例、圖29所示的第十八較佳實施例、圖30所示的第十九較佳實施例、圖31所示的第二十較佳實施例、圖32所示的第二十一較佳實施例、圖33所示的第二十二較佳實施例、圖34所示的第二十三較佳實施例、圖35所示的第二十四較佳實施例以及圖36所示的第二十五較佳實施例的差別在於:該核心柱10於兩相鄰第二材料層40A間設有兩相貼靠的滑動片11F。The sixty-seventh preferred embodiment shown in FIG. 79, the sixty-eighth preferred embodiment shown in FIG. 80, the sixty-ninth preferred embodiment shown in FIG. 81, and the seventh shown in FIG. Ten preferred embodiments, the seventy-first preferred embodiment shown in FIG. 83, the seventy-second preferred embodiment shown in FIG. 84, the seventy-third preferred embodiment shown in FIG. 85, and FIG. The seventy-fourth preferred embodiment shown, the seventy-fifth preferred embodiment shown in FIG. 87, and the seventy-sixth preferred embodiment shown in FIG. 88 are respectively the tenth shown in FIG. Six preferred embodiments, the seventeenth preferred embodiment shown in FIG. 28, the eighteenth preferred embodiment shown in FIG. 29, the nineteenth preferred embodiment shown in FIG. 30, and the nineteenth preferred embodiment shown in FIG. 20th preferred embodiment, the twenty-first preferred embodiment shown in FIG. 32, the twenty-second preferred embodiment shown in FIG. 33, and the twenty-third preferred embodiment shown in FIG. The difference between the twenty-fourth preferred embodiment shown in FIG. 35 and the twenty-fifth preferred embodiment shown in FIG. 36 is that the core post 10 is provided with two stickers between two adjacent second material layers 40A. Slide slider 11F.

如圖89所示的第七十七較佳實施例、圖90所示的第七十八較佳實施例、圖91所示的第七十九較佳實施例、圖92所示的第八十較佳實施例、圖93所示的第八十一較佳實施例、圖94所示的第八十二較佳實施例、圖95所示的第八十三較佳實施例、圖96所示的第八十四較佳實施例、圖97所示的第八十五較佳實施例以及圖98所示的第八十六較佳實施例,其分別與圖79所示的第六十七較佳實施例、圖80所示的第六十八較佳實施例、圖81所示的第六十九較佳實施例、圖82所示的第七十較佳實施例、圖83所示的第七十一較佳實施例、圖84所示的第七十二較佳實施例、圖85所示的第七十三較佳實施例、圖86所示的第七十四較佳實施例、圖87所示的第七十五較佳實施例以及圖88所示的第七十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部。The seventy-seventh preferred embodiment shown in FIG. 89, the seventy-eighth preferred embodiment shown in FIG. 90, the seventy-ninth preferred embodiment shown in FIG. 91, and the eighth shown in FIG. Ten preferred embodiments, the eighty-first preferred embodiment shown in FIG. 93, the eighty-second preferred embodiment shown in FIG. 94, the eighty-third preferred embodiment shown in FIG. 95, and FIG. The eighty-fourth preferred embodiment shown, the eighty-fifth preferred embodiment shown in FIG. 97, and the eighty-sixth preferred embodiment shown in FIG. 98 are respectively shown in FIG. Seventeenth preferred embodiment, the sixty-eighth preferred embodiment shown in FIG. 80, the sixty-ninth preferred embodiment shown in FIG. 81, the seventieth preferred embodiment shown in FIG. 82, and FIG. The seventy-first preferred embodiment shown, the seventy-second preferred embodiment shown in FIG. 84, the seventy-third preferred embodiment shown in FIG. 85, and the seventy-fourth preferred embodiment shown in FIG. The difference between the preferred embodiment, the seventy-fifth preferred embodiment shown in FIG. 87 and the seventy-sixth preferred embodiment shown in FIG. 88 is that a portion of the first material layer 30 and the second material layer 40A are extended. In the lower half of the core column 10.

當水平力(小位移)比較小時,只有下半部的第一材料層30及第二材料層40A產生變形而發揮減震功能,而上半部的第一材料層30、第二材料層40及滑動片11F的功能尚未啟動,故支承墊的勁度(Stiffness)及阻尼(damping)只有下半部的第一材料層30及第二材料層40A產生貢獻。而當水平力達到克服滑動片11F的摩擦力時,上半部的滑動片11F才開始滑動,同時上半部的第一材料層30及第二材料層40才開始產生變形而發揮減震功能,而且下半部的第一材料層30及第二材料層40A也同時產生變形而發揮減震功能,故支承墊的勁度是由上半部及下半部的第一材料層30及第二材料層40、40A的串聯結果,而阻尼是由所有第一材料層30、第二材料層40、40A的變形及滑動片11F滑動摩擦產生的阻尼之總合。因此,支承墊由小水平力(小位移)到大水平力(大位移)的勁度變化可以非常平順,不會因激烈的變化而造成可能的高頻率的震盪。再者,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,使支承墊的材料有較佳的組合與應用。When the horizontal force (small displacement) is relatively small, only the first material layer 30 and the second material layer 40A of the lower half are deformed to exhibit a shock absorbing function, and the first material layer 30 and the second material layer 40 of the upper half are used. Since the function of the slide piece 11F has not yet been activated, the stiffness and damping of the support pad contribute only to the first material layer 30 and the second material layer 40A of the lower half. When the horizontal force reaches the friction against the sliding piece 11F, the sliding piece 11F of the upper half starts to slide, and the first material layer 30 and the second material layer 40 of the upper half begin to deform and play the shock absorbing function. And the first material layer 30 and the second material layer 40A of the lower half are simultaneously deformed to exhibit a shock absorbing function, so the stiffness of the support pad is the first material layer 30 and the first half and the lower half. The tandem results of the two material layers 40, 40A, and the damping is the sum of the damping produced by the deformation of all of the first material layer 30, the second material layers 40, 40A, and the sliding friction of the sliding sheet 11F. Therefore, the stiffness change of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) can be very smooth, without causing a possible high frequency oscillation due to drastic changes. Moreover, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, so that the material of the support pad has a better combination and application.

再者,將圖89至圖98所示的第七十七至第八十六的較佳實施例中延伸設置的兩材料層30、40A及滑動片11F的位置上、下互換也具有同樣的功能。另外,利用圖89至圖98所示的第七十七至第八十六的較佳實施例中之核心柱10的物理及力學特性與其他種類的核心柱90(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯,亦可以產生上述的功能,藉以掌控其他種類的核心柱90變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。Furthermore, the positions of the two material layers 30, 40A and the sliding sheets 11F extending in the preferred embodiments of the seventy-seventh to eighty-sixth embodiments shown in FIGS. 89 to 98 are the same. Features. In addition, the physical and mechanical properties of the core post 10 in the preferred embodiment of the seventy-seventh to eighty-sixth embodiments shown in FIGS. 89 to 98 are compared with other types of core posts 90 (for example, the LRB in the reference case) The lead material or the core column made of high damping material is connected in parallel, and the above functions can also be generated, thereby controlling the position and time point of deformation of other kinds of core columns 90, so that the support pad is from a small horizontal force (small displacement) to The stiffness and frequency variation of the large horizontal force (large displacement) can be automatically controlled to improve the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

如圖99所示的第八十七較佳實施例、圖100所示的第八十八較佳實施例、圖101所示的第八十九較佳實施例、圖102所示的第九十較佳實施例、圖103所示的第九十一較佳實施例、圖104所示的第九十二較佳實施例、圖105所示的第九十三較佳實施例、圖106所示的第九十四較佳實施例、圖107所示的第九十五較佳實施例以及圖108所示的第九十六較佳實施例,其分別與圖89所示的第七十七較佳實施例、圖90所示的第七十八較佳實施例、圖91所示的第七十九較佳實施例、圖92所示的第八十較佳實施例、圖93所示的第八十一較佳實施例、圖94所示的第八十二較佳實施例、圖95所示的第八十三較佳實施例、圖96所示的第八十四較佳實施例、圖97所示的第八十五較佳實施例以及圖98所示的第八十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的上半部及下半部,使各滑動片11F位於該核心柱10的中段部。The eighty-seventh preferred embodiment shown in FIG. 99, the eighty-eighth preferred embodiment shown in FIG. 100, the eighty-ninth preferred embodiment shown in FIG. 101, and the ninth shown in FIG. Ten preferred embodiments, the ninety-first preferred embodiment shown in FIG. 103, the ninety-second preferred embodiment shown in FIG. 104, the ninety-third preferred embodiment shown in FIG. 105, and FIG. The ninety-fourth preferred embodiment shown, the ninety-fifth preferred embodiment shown in FIG. 107, and the ninety-sixth preferred embodiment shown in FIG. 108, respectively, and the seventh shown in FIG. Seventeenth preferred embodiment, the seventy-eighth preferred embodiment shown in FIG. 90, the seventy-ninth preferred embodiment shown in FIG. 91, the eightyth preferred embodiment shown in FIG. 92, and FIG. The eighty-first preferred embodiment shown, the eighty-second preferred embodiment shown in FIG. 94, the eighty-third preferred embodiment shown in FIG. 95, and the eighty-fourth preferred embodiment shown in FIG. The difference between the preferred embodiment, the eighty-fifth preferred embodiment shown in FIG. 97, and the eighty-sixth preferred embodiment shown in FIG. 98 is that a portion of the first material layer 30 and the second material layer 40A are extended. On the core column 10 And lower half portions, each slide core 11F located in the middle portion of the pillar 10.

如圖109所示的第九十七較佳實施例、圖110所示的第九十八較佳實施例、圖111所示的第九十九較佳實施例、圖112所示的第一百較佳實施例、圖113所示的第一百零一較佳實施例、圖114所示的第一百零二較佳實施例、圖115所示的第一百零三較佳實施例、圖116所示的第一百零四較佳實施例、圖117所示的第一百零五較佳實施例以及圖118所示的第一百零六較佳實施例,其分別與圖79所示的第六十七較佳實施例、圖80所示的第六十八較佳實施例、圖81所示的第六十九較佳實施例、圖82所示的第七十較佳實施例、圖83所示的第七十一較佳實施例、圖84所示的第七十二較佳實施例、圖85所示的第七十三較佳實施例、圖86所示的第七十四較佳實施例、圖87所示的第七十五較佳實施例以及圖88所示的第七十六較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的中段部,使各滑動片11F位於該核心柱10的上半部及下半部。The ninety-seventh preferred embodiment shown in FIG. 109, the ninety-eighth preferred embodiment shown in FIG. 110, the ninety-ninth preferred embodiment shown in FIG. 111, and the first shown in FIG. 100 preferred embodiment, the first hundred and tenth preferred embodiment shown in FIG. 113, the one hundred and twenty second preferred embodiment shown in FIG. 114, and the one hundred and thirty three preferred embodiment shown in FIG. The first hundred and fourth preferred embodiment shown in FIG. 116, the first hundred and fifth preferred embodiment shown in FIG. 117, and the first one hundred and sixty preferred embodiment shown in FIG. The sixty-seventh preferred embodiment shown in FIG. 79, the sixty-eighth preferred embodiment shown in FIG. 80, the sixty-ninth preferred embodiment shown in FIG. 81, and the seventieth preferred embodiment shown in FIG. The preferred embodiment, the seventy-first preferred embodiment shown in FIG. 83, the seventy-second preferred embodiment shown in FIG. 84, the seventy-third preferred embodiment shown in FIG. 85, and FIG. The difference between the seventy-fourth preferred embodiment, the seventy-fifth preferred embodiment shown in FIG. 87, and the seventy-sixth preferred embodiment shown in FIG. 88 is that a portion of the first material layer 30 and the Two material layers 40A are extended in the In the middle portion of the core column 10, each of the sliding sheets 11F is located in the upper half and the lower half of the core column 10.

如圖119所示的第一百零七較佳實施例,其與圖11至圖13所示的第六較佳實施例的差別在於:於該核心柱10內設有複數個位於兩端蓋12之間且間隔設置的冷卻單元60。The difference between the first and seventh preferred embodiments shown in FIG. 119 and the sixth preferred embodiment shown in FIG. 11 to FIG. 13 is that a plurality of the two end covers are disposed in the core post 10. A cooling unit 60 is provided between 12 and spaced apart.

如圖120所示的第一百零八較佳實施例,其與圖15至圖16所示的第八較佳實施例的差別在於:該束制單元50的外部環設有複數個位於兩支撐板20之間的冷卻單元60。The first one hundred and eighty preferred embodiment shown in FIG. 120 differs from the eighth preferred embodiment shown in FIG. 15 to FIG. 16 in that the outer ring of the bundle unit 50 is provided with a plurality of outer rings. A cooling unit 60 between the support plates 20.

如圖121所示的第一百零九較佳實施例,其與圖4所示的第二較佳實施例的差別在於:本較佳實施例的摩擦阻尼式支承墊可設置有複數個核心柱10及複數個其他種類的核心柱90(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)而形成兩種核心柱10、90的並聯,同時利用核心柱10中不同摩擦係數的滑動片11,形成核心柱10中各滑動片11可在不同摩擦力及不同時間點的情況下進行相對滑動,並且配合他種類的核心柱90變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。The first one hundred and ninety-eight preferred embodiment shown in FIG. 121 differs from the second preferred embodiment shown in FIG. 4 in that the friction-damped support pad of the preferred embodiment can be provided with a plurality of cores. The column 10 and a plurality of other kinds of core columns 90 (for example, the LRB in the reference is made of a lead material or a core column made of a high damping material) forms a parallel connection of the two core columns 10, 90 while using the core column 10 In the sliding sheet 11 with different friction coefficients, the sliding sheets 11 forming the core column 10 can be relatively slid under different frictional forces and different time points, and the positions and time points of the deformation of the core column 90 of the same type are made. The stiffness and frequency variation of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically controlled to improve the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

如圖122所示的第一百一十較佳實施例,其與圖52所示的第四十較佳實施例的差別在於:本較佳實施例的摩擦阻尼式支承墊將其他種類的核心柱90(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)置於具有滑動片11A、11B的核心柱10之上方而形成兩種核心柱10、90的串聯,同時利用核心柱10中不同摩擦係數的滑動片11A、11B,形成核心柱10中各滑動片11A、11B可在不同摩擦力及不同時間點的情況下進行相對滑動,並且配合其他種類的核心柱90變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。再者,將圖122所示的第一百一十的較佳實施例中具滑動片11A、11B的核心柱10及其他種類的核心柱90的位置上、下互換也具有同樣的功能。The difference between the one-hundred preferred embodiment shown in FIG. 122 and the fortieth preferred embodiment shown in FIG. 52 is that the friction-damped support pad of the preferred embodiment has other kinds of cores. The column 90 (for example, the LRB in the reference case is made of a lead material or a core column made of a highly damped material) is placed over the core column 10 having the sliding sheets 11A, 11B to form a series of two core columns 10, 90. At the same time, by using the sliding sheets 11A, 11B with different friction coefficients in the core column 10, the sliding sheets 11A, 11B in the core column 10 can be relatively slid under different frictional forces and different time points, and matched with other kinds of core columns. The position and time point of the 90 deformation make the stiffness and frequency change of the support pad from small horizontal force (small displacement) to large horizontal force (large displacement) can be automatically controlled, thereby improving the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application. Further, in the preferred embodiment of the one hundred and tenth embodiment shown in Fig. 122, the positions of the core post 10 having the slide pieces 11A and 11B and the other types of the core post 90 are the same as above and below.

如圖123所示的第一百一十一較佳實施例,其與圖122所示的第一百一十較佳實施例的差別在於:部分的第一材料層30及第二材料層40A延伸設於該核心柱10的下半部,使各滑動片11A、11B位於該核心柱10的中段部而位於其他種類的核心柱90下方。再者,將圖123所示的第一百一十一的較佳實施例中其他種類的核心柱90、滑動片11A、11B及延伸設置的兩材料層30、40A的位置以上、中、下各種形式的互換也具有同樣的功能。The first one or eleventh preferred embodiment shown in FIG. 123 differs from the one hundred and tenth preferred embodiment shown in FIG. 122 in that a portion of the first material layer 30 and the second material layer 40A The lower half of the core column 10 is extended so that the sliding pieces 11A and 11B are located at the middle portion of the core column 10 and are located below the other types of core columns 90. Furthermore, in the preferred embodiment of the one hundred and eleventh embodiment shown in FIG. 123, the other types of the core post 90, the sliding sheets 11A, 11B, and the two material layers 30, 40A extending are positioned above, below, and below. Various forms of interchange also have the same function.

如圖124所示的第一百一十二較佳實施例,其與圖15至圖16所示的第八較佳實施例的差別在於:該束制單元50僅套設於其中一滑動片11的外部。The difference between the first and second preferred embodiments shown in FIG. 124 and the eighth preferred embodiment shown in FIG. 15 to FIG. 16 is that the bundle unit 50 is only sleeved on one of the slide sheets. 11 outside.

藉由上述的技術特徵,本發明的摩擦阻尼式支承墊,主要係藉由在各核心柱10內設置複數上、下堆疊的滑動片11、11A、11B、11C、11D、11E、11F的方式,使各滑動片11、11A、11B、11C、11D、11E、11F可在地震發生時彼此之間產生相對滑動以及摩擦,進而提供一摩擦阻尼的效果,而且同時配合各第一、二材料層30、40、40A的變形來達到一較佳的吸震效果,避免地震的震動及能量直接傳遞至大型物體上及儀器設備等小型物體上而對物體造成損壞,且非鉛製的滑動片11、11A、11B、11C、11D、11E、11F可避免因反覆的彎曲變形時所產生高熱及高溫,對於各核心柱10產生功能受損甚至熔化而對於環境汙染造成重大影響。According to the above technical features, the friction-damped support pad of the present invention is mainly provided by providing a plurality of upper and lower stacked slide sheets 11, 11A, 11B, 11C, 11D, 11E, and 11F in each core column 10. Therefore, each of the sliding sheets 11, 11A, 11B, 11C, 11D, 11E, 11F can generate relative sliding and friction with each other when an earthquake occurs, thereby providing a friction damping effect, and simultaneously matching the first and second material layers. 30, 40, 40A deformation to achieve a better shock absorption effect, to avoid earthquake vibration and energy directly transmitted to large objects and small equipment such as equipment and equipment, causing damage to the object, and non-lead sliding film 11, 11A, 11B, 11C, 11D, 11E, and 11F can avoid high heat and high temperature generated by repeated bending deformation, and cause damage or even melting of each core column 10, thereby having a significant impact on environmental pollution.

另外,本發明進一步於各核心柱10內設置該束制單元50,藉以提供各滑動片11、11A、11B、11C、11D、11E、11F一束制功能以及一變形的空間,並且透過於各核心柱10內設置至少一冷卻單元60的方式,可有效降低各核心柱10及整個支承墊的溫度,有效防止支承墊溫度上升而導致各核心柱10或第一、二材料層30、40、40A功能受損甚至發生熔化等現象,並且藉由於各核心柱10內設置至少一可變形的勁度調整柱70或藉由可變形的端蓋12之方式,調整各核心柱10的載重量,進而調整各滑動片11、11A、11B、11C、11D、11E、11F摩擦力及阻尼的大小,以及調整因水平位移造成該核心柱10與材料層30、40間的高度差,使各滑動片11、11A、11B、11C、11D、11E、11F能夠滑動順暢,並且可透過搭配不同厚度、內徑及外徑的滑動片11、11A、11B、11C、11D、11E、11F,讓各核心柱10與兩材料層30、40、40A間具有環形間隙13、13E,且可於各環形間隙13、13E中填注一氣體,進而提供各滑動片11、11A、11B、11C、11D、11E、11F一束制的效果。In addition, the present invention further provides the bundle unit 50 in each core column 10, thereby providing a bundle function of each of the slide sheets 11, 11A, 11B, 11C, 11D, 11E, and 11F, and a space for deformation, and The method of providing at least one cooling unit 60 in the core column 10 can effectively reduce the temperature of each core column 10 and the entire support pad, and effectively prevent the temperature of the support pad from rising, thereby causing each core column 10 or the first and second material layers 30, 40, 40A function is impaired or even melted, and the load capacity of each core column 10 is adjusted by providing at least one deformable stiffness adjustment post 70 in each core post 10 or by means of the deformable end cap 12, Further adjusting the frictional force and damping of each of the sliding sheets 11, 11A, 11B, 11C, 11D, 11E, and 11F, and adjusting the height difference between the core column 10 and the material layers 30 and 40 due to the horizontal displacement, so that the sliding sheets are made. 11, 11A, 11B, 11C, 11D, 11E, 11F can slide smoothly, and can be made through the sliding sheets 11, 11A, 11B, 11C, 11D, 11E, 11F with different thickness, inner diameter and outer diameter, so that each core column 10 and between two material layers 30, 40, 40A 13,13E annular gap, and the annular gap can be filled in each of the injection 13,13E a gas, thereby providing the sliding plate 11,11A, 11B, 11C, 11D, 11E, 11F made of a bundle effect.

因此,本發明的摩擦阻尼式支承墊,可靈活且方便地根據使用者或者運用於建築物、橋樑或機器等大型物體上的類型及儀器設備等小型物體上的類型,搭配本發明的各種較佳實施例進行使用,藉此提供一種結構穩定性及吸震效果佳的摩擦阻尼式支承墊。進一步,利用不同摩擦係數的滑動片11、11A、11B、11C、11D、11E、11F,形成各滑動片11可在不同摩擦力及不同時間點的情況下進行相對滑動,以達到摩擦阻尼式支承墊可自動調整阻尼及勁度的功能。更進一步,各滑動片11、11A、11B、11C、11D、11E、11F局限於上下兩相鄰的第二材料層40A之間,藉以減少核心柱10與第一、二材料層30、40A在垂直方向變形的差異性,使得滑動片11、11A、11B、11C、11D、11E、11F在水平方向的滑動更順利。另外,利用具有複數個滑動片11、11A、11B、11C、11D、11E、11F之核心柱10的物理及力學特性與其他種類的核心柱90(例如參考案中的LRB以鉛材料或以高阻尼材料所做成之核心柱)並聯或串聯,藉以掌控其他種類的核心柱90變形的位置及時間點,使得支承墊由小水平力(小位移)到大水平力(大位移)的勁度及頻率變化可以自動控制,藉以提升支承墊的隔震功能。同時,支承墊從小水平力(小位移)至大水平力(大位移)的阻尼比降低量也比較和緩,藉以提升支承墊的吸能效益,使支承墊的材料有較佳的組合與應用。Therefore, the friction-damped support pad of the present invention can be flexibly and conveniently matched with various types of small objects such as types used on a large object such as a building, a bridge or a machine, and instruments, and the like. The preferred embodiment is used to provide a friction damped support pad having excellent structural stability and shock absorbing effect. Further, by using the sliding sheets 11, 11A, 11B, 11C, 11D, 11E, and 11F of different friction coefficients, each of the sliding sheets 11 can be relatively slid under different frictional forces and different time points to achieve friction-damped support. The pad automatically adjusts the damping and stiffness functions. Further, each of the sliding sheets 11, 11A, 11B, 11C, 11D, 11E, 11F is limited between the two adjacent second material layers 40A, thereby reducing the core pillar 10 and the first and second material layers 30, 40A. The difference in the deformation in the vertical direction makes the sliding of the slide sheets 11, 11A, 11B, 11C, 11D, 11E, and 11F smoother in the horizontal direction. In addition, the physical and mechanical properties of the core post 10 having a plurality of sliding sheets 11, 11A, 11B, 11C, 11D, 11E, 11F are utilized with other types of core posts 90 (for example, the LRB in the reference is lead material or high) The core column made of damping material is connected in parallel or in series to control the position and time point of deformation of other kinds of core columns 90, so that the support pad is stiff from small horizontal force (small displacement) to large horizontal force (large displacement). And the frequency change can be automatically controlled to improve the vibration isolation function of the support pad. At the same time, the damping ratio of the support pad from a small horizontal force (small displacement) to a large horizontal force (large displacement) is also relatively gentle, thereby improving the energy absorption benefit of the support pad, so that the material of the support pad has a better combination and application.

以上所述,僅是本發明的較佳實施例,並非對本發明作任何形式上的限制,任何所屬技術領域中具有通常知識者,若在不脫離本發明所提技術方案的範圍內,利用本發明所揭示技術內容所作出局部更動或修飾的等效實施例,並且未脫離本發明的技術方案內容,均仍屬於本發明技術方案的範圍內。The above is only a preferred embodiment of the present invention, and is not intended to limit the scope of the present invention. Any one of ordinary skill in the art can use the present invention without departing from the scope of the present invention. Equivalent embodiments of the invention may be made without departing from the technical scope of the present invention.

10‧‧‧核心柱
11、11A、11B、11C、11D、11E、11F‧‧‧滑動片
111E‧‧‧凸緣
12‧‧‧端蓋
13、13E‧‧‧環行間隙
20、20A‧‧‧支撐板
21‧‧‧容置孔
30‧‧‧第一材料層
40、40A‧‧‧第二材料層
50‧‧‧束制單元
60‧‧‧冷卻單元
61‧‧‧密封管
611‧‧‧封蓋
62‧‧‧冷卻劑
70‧‧‧勁度調整柱
90‧‧‧其他種類的核心柱
10‧‧‧core column
11, 11A, 11B, 11C, 11D, 11E, 11F‧‧‧ slides
111E‧‧‧Flange
12‧‧‧End cover
13, 13E‧‧‧Circle clearance
20, 20A‧‧‧ support plate
21‧‧‧ accommodating holes
30‧‧‧First material layer
40, 40A‧‧‧Second material layer
50‧‧‧Bundle unit
60‧‧‧Cooling unit
61‧‧‧Seal tube
611‧‧‧ Cover
62‧‧‧ coolant
70‧‧‧Stiffness adjustment column
90‧‧‧Other types of core columns

圖1係本發明第一較佳實施例之立體剖面圖。 圖2係本發明第一較佳實施例之側視剖面圖。 圖3係本發明第一較佳實施例沿3-3割面線的俯視剖面圖。 圖4係本發明第二較佳實施例的俯視剖面圖。 圖5係本發明第三較佳實施例之立體剖面圖。 圖6係本發明第三較佳實施例之側視剖面圖。 圖7係本發明第四較佳實施例之立體剖面圖。 圖8係本發明第四較佳實施例之側視剖面圖。 圖9係本發明第四較佳實施例沿9-9割面線的俯視剖面圖。 圖10係本發明第五較佳實施例的俯視剖面圖。 圖11係本發明第六較佳實施例之立體剖面圖。 圖12係本發明第六較佳實施例之側視剖面圖。 圖13係本發明第六較佳實施例沿13-13割面線的俯視剖面圖。 圖14係本發明第七較佳實施例的俯視剖面圖。 圖15係本發明第八較佳實施例之側視剖面圖。 圖16係本發明第八較佳實施例沿16-16割面線的俯視剖面圖。 圖17係本發明第九較佳實施例的俯視剖面圖。 圖18係本發明第十較佳實施例之側視剖面圖。 圖19係本發明第十一較佳實施例之立體剖面圖。 圖20係本發明第十一較佳實施例之側視剖面圖。 圖21係本發明第十二較佳實施例之立體剖面圖。 圖22係本發明第十二較佳實施例之側視剖面圖。 圖23係本發明第十三較佳實施例之立體剖面圖。 圖24係本發明第十三較佳實施例之側視剖面圖。 圖25係本發明第十四較佳實施例之側視剖面圖。 圖26係本發明第十五較佳實施例之側視剖面圖。 圖27係本發明第十六較佳實施例之側視剖面圖。 圖28係本發明第十七較佳實施例之側視剖面圖。 圖29係本發明第十八較佳實施例之側視剖面圖。 圖30係本發明第十九較佳實施例之側視剖面圖。 圖31係本發明第二十較佳實施例之側視剖面圖。 圖32係本發明第二十一較佳實施例之側視剖面圖。 圖33係本發明第二十二較佳實施例之側視剖面圖。 圖34係本發明第二十三較佳實施例之側視剖面圖。 圖35係本發明第二十四較佳實施例之側視剖面圖。 圖36係本發明第二十五較佳實施例之側視剖面圖。 圖37係本發明第二十六較佳實施例之立體剖面圖。 圖38係本發明第二十六較佳實施例之側視剖面圖。 圖39係本發明第二十七較佳實施例之側視剖面圖。 圖40係本發明第二十八較佳實施例之立體剖面圖。 圖41係本發明第二十九較佳實施例之立體剖面圖。 圖42係本發明第三十較佳實施例之立體剖面圖。 圖43係本發明第三十一較佳實施例之立體剖面圖。 圖44係本發明第三十二較佳實施例之立體剖面圖。 圖45係本發明第三十三較佳實施例之立體剖面圖。 圖46係本發明第三十四較佳實施例之立體剖面圖。 圖47係本發明第三十五較佳實施例之立體剖面圖。 圖48係本發明第三十六較佳實施例之立體剖面圖。 圖49係本發明第三十七較佳實施例之立體剖面圖。 圖50係本發明第三十八較佳實施例之立體剖面圖。 圖51係本發明第三十九較佳實施例之立體剖面圖。 圖52係本發明第四十較佳實施例之立體剖面圖。 圖53係本發明第四十一較佳實施例之立體剖面圖。 圖54係本發明第四十二較佳實施例之立體剖面圖。 圖55係本發明第四十三較佳實施例之立體剖面圖。 圖56係本發明第四十四較佳實施例之立體剖面圖。 圖57係本發明第四十五較佳實施例之立體剖面圖。 圖58係本發明第四十六較佳實施例之立體剖面圖。 圖59係本發明第四十七較佳實施例之立體剖面圖。 圖60係本發明第四十八較佳實施例之立體剖面圖。 圖61係本發明第四十九較佳實施例之立體剖面圖。 圖62係本發明第五十較佳實施例之立體剖面圖。 圖63係本發明第五十一較佳實施例之立體剖面圖。 圖64係本發明第五十二較佳實施例之立體剖面圖。 圖65係本發明第五十三較佳實施例之立體剖面圖。 圖66係本發明第五十四較佳實施例之立體剖面圖。 圖67係本發明第五十五較佳實施例之立體剖面圖。 圖68係本發明第五十六較佳實施例之立體剖面圖。 圖69係本發明第五十七較佳實施例之立體剖面圖。 圖70係本發明第五十八較佳實施例之立體剖面圖。 圖71係本發明第五十九較佳實施例之立體剖面圖。 圖72係本發明第六十較佳實施例之立體剖面圖。 圖73係本發明第六十一較佳實施例之立體剖面圖。 圖74係本發明第六十二較佳實施例之立體剖面圖。 圖75係本發明第六十三較佳實施例之立體剖面圖。 圖76係本發明第六十四較佳實施例之立體剖面圖。 圖77係本發明第六十五較佳實施例之立體剖面圖。 圖78係本發明第六十六較佳實施例之立體剖面圖。 圖79係本發明第六十七較佳實施例之側視剖面圖。 圖80係本發明第六十八較佳實施例之側視剖面圖。 圖81係本發明第六十九較佳實施例之側視剖面圖。 圖82係本發明第七十較佳實施例之側視剖面圖。 圖83係本發明第七十一較佳實施例之側視剖面圖。 圖84係本發明第七十二較佳實施例之側視剖面圖。 圖85係本發明第七十三較佳實施例之側視剖面圖。 圖86係本發明第七十四較佳實施例之側視剖面圖。 圖87係本發明第七十五較佳實施例之側視剖面圖。 圖88係本發明第七十六較佳實施例之側視剖面圖。 圖89係本發明第七十七較佳實施例之側視剖面圖。 圖90係本發明第七十八較佳實施例之側視剖面圖。 圖91係本發明第七十九較佳實施例之側視剖面圖。 圖92係本發明第八十較佳實施例之側視剖面圖。 圖93係本發明第八十一較佳實施例之側視剖面圖。 圖94係本發明第八十二較佳實施例之側視剖面圖。 圖95係本發明第八十三較佳實施例之側視剖面圖。 圖96係本發明第八十四較佳實施例之側視剖面圖。 圖97係本發明第八十五較佳實施例之側視剖面圖。 圖98係本發明第八十六較佳實施例之側視剖面圖。 圖99係本發明第八十七較佳實施例之側視剖面圖。 圖100係本發明第八十八較佳實施例之側視剖面圖。 圖101係本發明第八十九較佳實施例之側視剖面圖。 圖102係本發明第九十較佳實施例之側視剖面圖。 圖103係本發明第九十一較佳實施例之側視剖面圖。 圖104係本發明第九十二較佳實施例之側視剖面圖。 圖105係本發明第九十三較佳實施例之側視剖面圖。 圖106係本發明第九十四較佳實施例之側視剖面圖。 圖107係本發明第九十五較佳實施例之側視剖面圖。 圖108係本發明第九十六較佳實施例之側視剖面圖。 圖109係本發明第九十七較佳實施例之側視剖面圖。 圖110係本發明第九十八較佳實施例之側視剖面圖。 圖111係本發明第九十九較佳實施例之側視剖面圖。 圖112係本發明第一百較佳實施例之側視剖面圖。 圖113係本發明第一百零一較佳實施例之側視剖面圖。 圖114係本發明第一百零二較佳實施例之側視剖面圖。 圖115係本發明第一百零三較佳實施例之側視剖面圖。 圖116係本發明第一百零四較佳實施例之側視剖面圖。 圖117係本發明第一百零五較佳實施例之側視剖面圖。 圖118係本發明第一百零六較佳實施例之側視剖面圖。 圖119係本發明第一百零七較佳實施例之俯視剖面圖。 圖120係本發明第一百零八較佳實施例之俯視剖面圖。 圖121係本發明第一百零九較佳實施例之俯視剖面圖。 圖122係本發明第一百一十較佳實施例之立體剖面圖。 圖123係本發明第一百一十一較佳實施例之立體剖面圖。 圖124係本發明第一百一十二較佳實施例之側視剖面圖。BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 is a perspective, cross-sectional view showing a first preferred embodiment of the present invention. Figure 2 is a side cross-sectional view showing a first preferred embodiment of the present invention. Figure 3 is a top cross-sectional view of the first preferred embodiment of the present invention taken along line 3-3. Figure 4 is a top cross-sectional view of a second preferred embodiment of the present invention. Figure 5 is a perspective cross-sectional view showing a third preferred embodiment of the present invention. Figure 6 is a side cross-sectional view showing a third preferred embodiment of the present invention. Figure 7 is a perspective cross-sectional view showing a fourth preferred embodiment of the present invention. Figure 8 is a side cross-sectional view showing a fourth preferred embodiment of the present invention. Figure 9 is a top cross-sectional view of the fourth preferred embodiment of the present invention taken along line 9-9. Figure 10 is a top cross-sectional view showing a fifth preferred embodiment of the present invention. Figure 11 is a perspective cross-sectional view showing a sixth preferred embodiment of the present invention. Figure 12 is a side cross-sectional view showing a sixth preferred embodiment of the present invention. Figure 13 is a top cross-sectional view of the sixth preferred embodiment of the present invention taken along line 13-13. Figure 14 is a top cross-sectional view showing a seventh preferred embodiment of the present invention. Figure 15 is a side cross-sectional view showing an eighth preferred embodiment of the present invention. Figure 16 is a top cross-sectional view of the eighth preferred embodiment of the present invention taken along line 16-16. Figure 17 is a top cross-sectional view showing a ninth preferred embodiment of the present invention. Figure 18 is a side cross-sectional view showing a tenth preferred embodiment of the present invention. Figure 19 is a perspective cross-sectional view showing an eleventh preferred embodiment of the present invention. Figure 20 is a side cross-sectional view showing an eleventh preferred embodiment of the present invention. Figure 21 is a perspective cross-sectional view showing a twelfth preferred embodiment of the present invention. Figure 22 is a side cross-sectional view showing a twelfth preferred embodiment of the present invention. Figure 23 is a perspective cross-sectional view showing a thirteenth preferred embodiment of the present invention. Figure 24 is a side cross-sectional view showing a thirteenth preferred embodiment of the present invention. Figure 25 is a side cross-sectional view showing a fourteenth preferred embodiment of the present invention. Figure 26 is a side cross-sectional view showing a fifteenth preferred embodiment of the present invention. Figure 27 is a side cross-sectional view showing a sixteenth preferred embodiment of the present invention. Figure 28 is a side cross-sectional view showing a seventeenth preferred embodiment of the present invention. Figure 29 is a side cross-sectional view showing the eighteenth preferred embodiment of the present invention. Figure 30 is a side cross-sectional view showing a nineteenth preferred embodiment of the present invention. Figure 31 is a side cross-sectional view showing a twentieth preferred embodiment of the present invention. Figure 32 is a side cross-sectional view showing a twenty-first preferred embodiment of the present invention. Figure 33 is a side cross-sectional view showing a twenty-second preferred embodiment of the present invention. Figure 34 is a side cross-sectional view showing a twenty-third preferred embodiment of the present invention. Figure 35 is a side cross-sectional view showing a twenty-fourth preferred embodiment of the present invention. Figure 36 is a side cross-sectional view showing a twenty-fifth preferred embodiment of the present invention. Figure 37 is a perspective cross-sectional view showing a twenty-sixth preferred embodiment of the present invention. Figure 38 is a side cross-sectional view showing a twenty-sixth preferred embodiment of the present invention. Figure 39 is a side cross-sectional view showing the twenty-seventh preferred embodiment of the present invention. Figure 40 is a perspective cross-sectional view showing a twenty-eighth preferred embodiment of the present invention. Figure 41 is a perspective cross-sectional view showing a twenty-ninth preferred embodiment of the present invention. Figure 42 is a perspective cross-sectional view showing a thirtieth preferred embodiment of the present invention. Figure 43 is a perspective cross-sectional view showing a thirty-first preferred embodiment of the present invention. Figure 44 is a perspective cross-sectional view showing a thirty-second preferred embodiment of the present invention. Figure 45 is a perspective cross-sectional view showing a thirty-third preferred embodiment of the present invention. Figure 46 is a perspective cross-sectional view showing a thirty-fourth preferred embodiment of the present invention. Figure 47 is a perspective cross-sectional view showing a thirty-fifth preferred embodiment of the present invention. Figure 48 is a perspective cross-sectional view showing a thirty-sixth preferred embodiment of the present invention. Figure 49 is a perspective cross-sectional view showing a thirty-seventh preferred embodiment of the present invention. Figure 50 is a perspective cross-sectional view showing a thirty-eighth preferred embodiment of the present invention. Figure 51 is a perspective cross-sectional view showing a thirty-ninth preferred embodiment of the present invention. Figure 52 is a perspective cross-sectional view showing a fortieth preferred embodiment of the present invention. Figure 53 is a perspective cross-sectional view showing a forty-first preferred embodiment of the present invention. Figure 54 is a perspective cross-sectional view showing a forty-second preferred embodiment of the present invention. Figure 55 is a perspective cross-sectional view showing a forty-third preferred embodiment of the present invention. Figure 56 is a perspective cross-sectional view showing a forty-fourth preferred embodiment of the present invention. Figure 57 is a perspective cross-sectional view showing a forty-fifth preferred embodiment of the present invention. Figure 58 is a perspective cross-sectional view showing a forty-sixth preferred embodiment of the present invention. Figure 59 is a perspective cross-sectional view showing a forty-seventh preferred embodiment of the present invention. Figure 60 is a perspective cross-sectional view showing a forty-eighth preferred embodiment of the present invention. Figure 61 is a perspective cross-sectional view showing a forty-ninth preferred embodiment of the present invention. Figure 62 is a perspective cross-sectional view showing a fiftieth preferred embodiment of the present invention. Figure 63 is a perspective cross-sectional view showing a fifty-first preferred embodiment of the present invention. Figure 64 is a perspective cross-sectional view showing a fifty-second preferred embodiment of the present invention. Figure 65 is a perspective cross-sectional view showing a fifty-third preferred embodiment of the present invention. Figure 66 is a perspective cross-sectional view showing a fifty-fourth preferred embodiment of the present invention. Figure 67 is a perspective cross-sectional view showing a fifty-fifth preferred embodiment of the present invention. Figure 68 is a perspective cross-sectional view showing a fifty-sixth preferred embodiment of the present invention. Figure 69 is a perspective cross-sectional view showing a fifty-seventh preferred embodiment of the present invention. Figure 70 is a perspective cross-sectional view showing the fifty-eighth preferred embodiment of the present invention. Figure 71 is a perspective cross-sectional view showing a fifty-ninth preferred embodiment of the present invention. Figure 72 is a perspective cross-sectional view showing a sixtieth preferred embodiment of the present invention. Figure 73 is a perspective cross-sectional view showing a sixty-first preferred embodiment of the present invention. Figure 74 is a perspective cross-sectional view showing a sixty-second preferred embodiment of the present invention. Figure 75 is a perspective cross-sectional view showing a sixty-third preferred embodiment of the present invention. Figure 76 is a perspective cross-sectional view showing a sixty-fourth preferred embodiment of the present invention. Figure 77 is a perspective cross-sectional view showing a sixty-fifth preferred embodiment of the present invention. Figure 78 is a perspective cross-sectional view showing a sixty-sixth preferred embodiment of the present invention. Figure 79 is a side cross-sectional view showing the sixty-seventh preferred embodiment of the present invention. Figure 80 is a side cross-sectional view showing the sixty-eighth preferred embodiment of the present invention. Figure 81 is a side cross-sectional view showing a sixty-ninth preferred embodiment of the present invention. Figure 82 is a side cross-sectional view showing a seventieth preferred embodiment of the present invention. Figure 83 is a side cross-sectional view showing a seventy-first preferred embodiment of the present invention. Figure 84 is a side cross-sectional view showing the seventy-second preferred embodiment of the present invention. Figure 85 is a side cross-sectional view showing the seventy-third preferred embodiment of the present invention. Figure 86 is a side cross-sectional view showing a seventy-fourth preferred embodiment of the present invention. Figure 87 is a side cross-sectional view showing the seventy-fifth preferred embodiment of the present invention. Figure 88 is a side cross-sectional view showing the seventy-sixth preferred embodiment of the present invention. Figure 89 is a side cross-sectional view showing the seventy-seventh preferred embodiment of the present invention. Figure 90 is a side cross-sectional view showing the seventy-eighth preferred embodiment of the present invention. Figure 91 is a side cross-sectional view showing the seventy-ninth preferred embodiment of the present invention. Figure 92 is a side cross-sectional view showing the eighth preferred embodiment of the present invention. Figure 93 is a side cross-sectional view showing the eighty-first preferred embodiment of the present invention. Figure 94 is a side cross-sectional view showing the eighty-second preferred embodiment of the present invention. Figure 95 is a side cross-sectional view showing the eighty-third preferred embodiment of the present invention. Figure 96 is a side cross-sectional view showing the eighty-fourth preferred embodiment of the present invention. Figure 97 is a side cross-sectional view showing the eighty-fifth preferred embodiment of the present invention. Figure 98 is a side cross-sectional view showing the eighty-sixth preferred embodiment of the present invention. Figure 99 is a side cross-sectional view showing the eighty-seventh preferred embodiment of the present invention. Figure 100 is a side cross-sectional view showing the eighty-eighth preferred embodiment of the present invention. Figure 101 is a side cross-sectional view showing the eighty-ninth preferred embodiment of the present invention. Figure 102 is a side cross-sectional view showing a ninth preferred embodiment of the present invention. Figure 103 is a side cross-sectional view showing a nineteenth preferred embodiment of the present invention. Figure 104 is a side cross-sectional view showing the ninety-second preferred embodiment of the present invention. Figure 105 is a side cross-sectional view showing the ninety-third preferred embodiment of the present invention. Figure 106 is a side cross-sectional view showing the ninety-fourth preferred embodiment of the present invention. Figure 107 is a side cross-sectional view showing the ninety-fifth preferred embodiment of the present invention. Figure 108 is a side cross-sectional view showing the ninety-sixth preferred embodiment of the present invention. Figure 109 is a side cross-sectional view showing the ninety-seventh preferred embodiment of the present invention. Figure 110 is a side cross-sectional view showing the ninety-eighth preferred embodiment of the present invention. Figure 111 is a side cross-sectional view showing the ninety-ninth preferred embodiment of the present invention. Figure 112 is a side cross-sectional view showing the first preferred embodiment of the present invention. Figure 113 is a side cross-sectional view showing the first hundred and tenth preferred embodiment of the present invention. Figure 114 is a side cross-sectional view showing the preferred embodiment of the one hundred and twenty two of the present invention. Figure 115 is a side cross-sectional view showing the preferred embodiment of the one hundred and thirty-three preferred embodiment of the present invention. Figure 116 is a side cross-sectional view showing the first hundred and fourth preferred embodiment of the present invention. Figure 117 is a side cross-sectional view showing the preferred embodiment of the one hundred and fifty fifth of the present invention. Figure 118 is a side cross-sectional view showing the preferred embodiment of the one hundred and sixty-sixth preferred embodiment of the present invention. Figure 119 is a top cross-sectional view showing a preferred embodiment of the one hundred and seventy-seventh preferred embodiment of the present invention. Figure 120 is a top cross-sectional view of the one hundred and eighty preferred embodiment of the present invention. Figure 121 is a top cross-sectional view showing a preferred embodiment of the one hundred and ninety-ninth aspect of the present invention. Figure 122 is a perspective cross-sectional view showing the one-hundred preferred embodiment of the present invention. Figure 123 is a perspective cross-sectional view showing the one-hundred preferred embodiment of the present invention. Figure 124 is a side cross-sectional view showing the one-hundred preferred embodiment of the present invention.

10‧‧‧核心柱 10‧‧‧core column

11‧‧‧滑動片 11‧‧‧Slide

12‧‧‧端蓋 12‧‧‧End cover

20‧‧‧支撐板 20‧‧‧Support board

30‧‧‧第一材料層 30‧‧‧First material layer

40‧‧‧第二材料層 40‧‧‧Second material layer

Claims (107)

一種摩擦阻尼式支承墊,其包含有:至少一核心柱,該至少一核心柱設有複數個滑動片,其中所述複數個滑動片以上、下堆疊方式進行排列;兩支撐板分別設置於該摩擦阻尼式支承墊的兩端;以及複數個相互交錯設置於兩支撐板之間並包圍套設該至少一核心柱的第一材料層與第二材料層,其中至少一第二材料層連續延伸設於該複數個滑動片之間且穿過該至少一核心柱。 A friction-damped support pad comprising: at least one core post, the at least one core post is provided with a plurality of sliding sheets, wherein the plurality of sliding sheets are arranged in a stacked manner above and below; two supporting plates are respectively disposed on the a plurality of friction damping type bearing pads; and a plurality of first material layers and a second material layer interposed between the two supporting plates and surrounding the at least one core column, wherein at least one second material layer extends continuously And disposed between the plurality of sliding sheets and passing through the at least one core column. 如請求項1所述之摩擦阻尼式支承墊,其中所述核心柱的數量為一個。 A friction-damped support pad according to claim 1, wherein the number of the core columns is one. 如請求項1所述之摩擦阻尼式支承墊,其中所述核心柱的數量為複數個,且其中至少一核心柱設有複數個滑動片,所述複數個滑動片以上、下堆疊方式進行排列。 The friction-damped support pad according to claim 1, wherein the number of the core pillars is plural, and at least one of the core pillars is provided with a plurality of sliding sheets, and the plurality of sliding sheets are arranged in a stacked manner above and below. . 如請求項1、2或3所述之摩擦阻尼式支承墊,其中該至少一核心柱的各滑動片的厚度相等。 The friction-damped support pad of claim 1, 2 or 3, wherein each of the sliding pieces of the at least one core post has the same thickness. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一滑動片的厚度不相等。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one of the at least one core post has a thickness that is not equal. 如請求項4所述之摩擦阻尼式支承墊,其中於該至少一核心柱及兩材料層之間設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 4, wherein a bundle unit covering the outside of the at least one sliding sheet is disposed between the at least one core post and the two material layers. 如請求項5所述之摩擦阻尼式支承墊,其中於該至少一核心柱及兩材料層之間設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 5, wherein a bundle unit covering the outside of the at least one sliding sheet is disposed between the at least one core post and the two material layers. 如請求項6所述之摩擦阻尼式支承墊,其中於至少一核心柱的滑動片內設有至少一冷卻單元,所述冷卻單元設有一密封管及一冷卻劑,該密封 管為一中框管體且貫穿相對應核心柱的至少一滑動片,該冷卻劑填注於該密封管內。 The friction-damped support pad of claim 6, wherein at least one cooling unit is disposed in the sliding piece of the at least one core column, the cooling unit is provided with a sealing tube and a coolant, the sealing The tube is a middle frame tube and penetrates at least one sliding piece of the corresponding core column, and the coolant is filled in the sealing tube. 如請求項7所述之摩擦阻尼式支承墊,其中於該至少一核心柱內設有至少一冷卻單元,所述冷卻單元設有一密封管及一冷卻劑,該密封管為一中框管體且貫穿相對應核心柱的至少一滑動片,該冷卻劑填注於該密封管內。 The friction-damped support pad of claim 7, wherein at least one cooling unit is disposed in the at least one core column, the cooling unit is provided with a sealing tube and a coolant, and the sealing tube is a middle frame tube And passing through at least one sliding piece of the corresponding core column, the coolant is filled in the sealing tube. 如請求項6所述之摩擦阻尼式支承墊,其中該至少一核心柱於束制單元的外部設有至少一冷卻單元,所述冷卻單元有一密封管及一冷卻劑,該密封管套設於該束制單元的外部,而該冷卻劑位於該密封管及該束制單元之間。 The friction-damped support pad of claim 6, wherein the at least one core post is provided with at least one cooling unit outside the bundle unit, the cooling unit has a sealing tube and a coolant, and the sealing tube is sleeved on The exterior of the bundle unit is located between the seal tube and the bundle unit. 如請求項7所述之摩擦阻尼式支承墊,其中該至少一核心柱於束制單元的外部設有至少一冷卻單元,所述冷卻單元有一密封管及一冷卻劑,該密封管套設於該束制單元的外部,而該冷卻劑位於該密封管及該束制單元之間。 The friction-damped support pad of claim 7, wherein the at least one core post is provided with at least one cooling unit outside the bundle unit, the cooling unit has a sealing tube and a coolant, and the sealing tube is sleeved on The exterior of the bundle unit is located between the seal tube and the bundle unit. 如請求項8所述之摩擦阻尼式支承墊,其中該至少一核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 8, wherein the at least one core post is provided with at least one stiffness adjustment post that is superimposed, and the at least one stiffness adjustment post overlaps with the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項9所述之摩擦阻尼式支承墊,其中該至少一核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 9, wherein the at least one core post is provided with at least one stiffness adjustment post that is superimposed, and the at least one stiffness adjustment post overlaps with the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項10所述之摩擦阻尼式支承墊,其中該至少一核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 10, wherein the at least one core post is provided with at least one stiffness adjustment post that is superimposed, and the at least one stiffness adjustment post overlaps with the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項11所述之摩擦阻尼式支承墊,其中該至少一核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 11, wherein the at least one core post is provided with at least one stiffness adjustment post that is superimposed, and the at least one stiffness adjustment post overlaps with the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項8所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一端設置有一用以封閉該至少一核心柱的該至少一端的端部開口的端蓋,並於其中一相對應的支撐板上設置有對應容置該至少一核心柱的該至少一端的端部之端蓋的容置孔。 The friction-damped support pad of claim 8, wherein at least one end of the at least one core post is provided with an end cap for closing the at least one end of the at least one core post, and corresponding to one of the ends The support plate is provided with a receiving hole corresponding to the end cover of the end portion of the at least one end of the at least one core post. 如請求項9所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一端設置有一用以封閉該至少一核心柱的該至少一端的端部開口的端蓋,並於其中一相對應的支撐板上設置有對應容置該至少一核心柱的該至少一端的端部之端蓋的容置孔。 The friction-damped support pad of claim 9, wherein at least one end of the at least one core post is provided with an end cap for closing the at least one end of the at least one core post, and corresponding to one of the ends The support plate is provided with a receiving hole corresponding to the end cover of the end portion of the at least one end of the at least one core post. 如請求項10所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一端設置有一用以封閉該至少一核心柱的該至少一端的端部開口的端蓋,並於其中一相對應的支撐板上設置有對應容置該至少一核心柱的該至少一端的端部之端蓋的容置孔。 The friction-damped support pad of claim 10, wherein at least one end of the at least one core post is provided with an end cap for closing the at least one end of the at least one core post, and corresponding to one of the ends The support plate is provided with a receiving hole corresponding to the end cover of the end portion of the at least one end of the at least one core post. 如請求項11所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一端設置有一用以封閉該至少一核心柱的該至少一端的端部開口的端蓋,並於其中一相對應的支撐板上設置有對應容置該至少一核心柱的該至少一端的端部之端蓋的容置孔。 The friction-damped support pad of claim 11, wherein at least one end of the at least one core post is provided with an end cap for closing the at least one end of the at least one core post, and corresponding to one of the ends The support plate is provided with a receiving hole corresponding to the end cover of the end portion of the at least one end of the at least one core post. 如請求項8所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少兩滑動片具有不同的外徑。 The friction-damped support pad of claim 8, wherein at least two of the at least one core post have different outer diameters. 如請求項9所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少兩滑動片具有不同的外徑。 The friction-damped support pad of claim 9, wherein at least two of the at least one core post have different outer diameters. 如請求項10所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少兩滑動片具有不同的外徑。 The friction-damped support pad of claim 10, wherein at least two of the at least one core post have different outer diameters. 如請求項11所述之摩擦阻尼式支承墊,其中所述核心柱的至少兩滑動片具有不同的外徑。 The friction-damped support pad of claim 11, wherein at least two of the sliding sheets of the core post have different outer diameters. 如請求項16所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一滑動片之內徑小於該至少一端蓋的內徑。 The friction-damped support pad of claim 16, wherein an inner diameter of at least one of the at least one core post is smaller than an inner diameter of the at least one end cap. 如請求項17所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一滑動片之內徑小於該至少一端蓋的內徑。 The friction-damped support pad of claim 17, wherein an inner diameter of at least one of the at least one core post is smaller than an inner diameter of the at least one end cap. 如請求項18所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少一滑動片之內徑小於該至少一端蓋的內徑。 The friction-damped support pad of claim 18, wherein an inner diameter of at least one of the at least one core post is smaller than an inner diameter of the at least one end cap. 如請求項19所述之摩擦阻尼式支承墊,其中所述核心柱的至少一滑動片之內徑小於該至少一端蓋的內徑。 The friction-damped support pad of claim 19, wherein an inner diameter of the at least one sliding piece of the core post is smaller than an inner diameter of the at least one end cover. 如請求項8所述之摩擦阻尼式支承墊,其中至少一支撐板係直接封閉該至少一核心柱相對應端的開口。 The friction-damped support pad of claim 8, wherein the at least one support plate directly closes the opening of the corresponding end of the at least one core post. 如請求項9所述之摩擦阻尼式支承墊,其中至少一支撐板係直接封閉該至少一核心柱相對應端的開口。 The friction-damped support pad of claim 9, wherein the at least one support plate directly closes the opening of the corresponding end of the at least one core post. 如請求項10所述之摩擦阻尼式支承墊,其中至少一支撐板係直接封閉該至少一核心柱相對應端的開口。 The friction-damped support pad of claim 10, wherein the at least one support plate directly closes the opening of the corresponding end of the at least one core post. 如請求項11所述之摩擦阻尼式支承墊,其中至少一支撐板係直接封閉該至少一核心柱相對應端的開口。 The friction-damped support pad of claim 11, wherein the at least one support plate directly closes the opening of the corresponding end of the at least one core post. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中於該至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one cooling unit is disposed in the at least one core post. 如請求項32所述之摩擦阻尼式支承墊,其中所述冷卻單元設有一密封管及一冷卻劑,該密封管為一中框管體且貫穿相對應核心柱的至少一滑動片,該冷卻劑填注於該密封管內。 The friction-damped support pad of claim 32, wherein the cooling unit is provided with a sealing tube and a coolant, the sealing tube is a middle frame tube body and penetrates at least one sliding piece of the corresponding core column, the cooling The agent is filled in the sealed tube. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中於該至少一核心柱及兩材料層之間設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 1, 2 or 3, wherein a bundle unit covering the outside of the at least one slide is disposed between the at least one core post and the two material layers. 如請求項34所述之摩擦阻尼式支承墊,其中於該至少一核心柱的至少一滑動片內設有至少一冷卻單元。 The friction-damped support pad of claim 34, wherein at least one cooling unit is disposed in at least one of the at least one core post. 如請求項35所述之摩擦阻尼式支承墊,其中所述冷卻單元設有一密封管及一冷卻劑,該密封管為一中框管體且貫穿相對應核心柱的至少一滑動片,該冷卻劑填注於該密封管內。 The friction damper type support pad according to claim 35, wherein the cooling unit is provided with a sealing tube and a coolant, the sealing tube is a middle frame tube body and penetrates at least one sliding piece of the corresponding core column, the cooling The agent is filled in the sealed tube. 如請求項34所述之摩擦阻尼式支承墊,其中該至少一核心柱於至少一束制單元的外部設有至少一冷卻單元。 The friction-damped support pad of claim 34, wherein the at least one core post is provided with at least one cooling unit outside the at least one bundle unit. 如請求項37所述之摩擦阻尼式支承墊,其中所述冷卻單元有一密封管及一冷卻劑,該密封管套設於該束制單元的外部,而該冷卻劑位於該密封管及該束制單元之間。 The friction-damped support pad of claim 37, wherein the cooling unit has a sealing tube and a coolant, the sealing tube is sleeved outside the bundle unit, and the coolant is located in the sealing tube and the bundle Between units. 如請求項34所述之摩擦阻尼式支承墊,其中該至少一核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與所述核心柱的滑動片相疊合,藉以調整所述核心柱的載重量。 The friction damper support pad of claim 34, wherein the at least one core post is provided with at least one deformable stiffness adjustment post, the at least one stiffness adjustment post overlapping the sliding piece of the core post, Thereby adjusting the load capacity of the core column. 如請求項35所述之摩擦阻尼式支承墊,其中該至少一核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與所述核心柱的滑動片相疊合,藉以調整所述核心柱的載重量。 The friction-damped support pad of claim 35, wherein the at least one core post is provided with at least one deformable stiffness adjustment post, the at least one stiffness adjustment post overlapping the sliding piece of the core post, Thereby adjusting the load capacity of the core column. 如請求項36所述之摩擦阻尼式支承墊,其中該至少一核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與所述核心柱的滑動片相疊合,藉以調整所述核心柱的載重量。 The friction-damped support pad of claim 36, wherein the at least one core post is provided with at least one deformable stiffness adjustment post, the at least one stiffness adjustment post overlapping the sliding piece of the core post, Thereby adjusting the load capacity of the core column. 如請求項37所述之摩擦阻尼式支承墊,其中該至少一核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 37, wherein the at least one core post is provided with at least one deformable stiffness adjustment post, the at least one stiffness adjustment post overlapping the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項38所述之摩擦阻尼式支承墊,其中該至少一核心柱設有至少一可變形的勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 38, wherein the at least one core post is provided with at least one deformable stiffness adjustment post, the at least one stiffness adjustment post overlapping the sliding piece of the at least one core post Thereby, the load of the at least one core column is adjusted. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中所述核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與所述核心柱的滑動片相疊合,藉以調整所述核心柱的載重量。 The friction damper support pad of claim 1, 2 or 3, wherein the core post is provided with at least one stiffness adjustment post that is deformable, and the at least one stiffness adjustment post and the sliding piece of the core post Superimposed to adjust the load capacity of the core column. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中該至少一核心柱設有可變形的至少一勁度調整柱,該至少一勁度調整柱與該至少一核心柱的滑動片相疊合,藉以調整該至少一核心柱的載重量。 The friction-damped support pad of claim 1, 2 or 3, wherein the at least one core post is provided with at least one stiffness adjustment post, the sliding of the at least one stiffness adjustment post and the at least one core post The sheets are stacked to adjust the load of the at least one core column. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一個滑動片的摩擦係數不一樣,藉以調整滑動片在不同摩擦力下及不同時間點滑動,以達到可自動調整阻尼及勁度的功能。 The friction damper type support pad according to claim 1, 2 or 3, wherein at least one of the sliding pieces has a different friction coefficient, thereby adjusting the sliding piece to slide under different frictional forces and at different time points, so as to automatically adjust the damping and Stiffness function. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中於至少一核心柱內設有至少一冷卻單元。 A friction-damped support pad according to claim 1, 2 or 3, wherein at least one cooling unit is provided in at least one of the core columns. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一材料層與所述核心柱的滑動片呈交錯配置。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one of the layers of material and the sliding sheets of the core post are staggered. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中所述核心柱的高度略低於第一、二材料層的總高度,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成的高度差,使得滑動片在水平方向的滑動更加順利。 The friction-damped support pad of claim 1, 2 or 3, wherein the height of the core post is slightly lower than the total height of the first and second material layers, thereby adjusting the core column and the first one due to horizontal displacement of the support pad The height difference caused by the two material layers makes the sliding of the sliding sheet smoother in the horizontal direction. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一核心柱的高度略低於第一、二材料層的總高度,藉以調適由於支承墊水平位移時核 心柱與第一、二材料層造成的高度差,使得滑動片在水平方向的滑動更加順利。 The friction-damped support pad according to claim 1, 2 or 3, wherein the height of at least one of the core columns is slightly lower than the total height of the first and second material layers, thereby adjusting the core due to horizontal displacement of the support pad The height difference between the stem and the first and second material layers makes the sliding of the sliding sheet smoother in the horizontal direction. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中所述核心柱的至少一端設置有一可變形的端蓋,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成的高度差,使得滑動片在水平方向的滑動更加順利。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one end of the core post is provided with a deformable end cap, thereby adjusting the core column and the first and second material layers due to the horizontal displacement of the support pad The resulting height difference makes the sliding of the slider in the horizontal direction smoother. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一核心柱的至少一端設置有一可變形的端蓋,藉以調適由於支承墊水平位移時核心柱與第一、二材料層造成的高度差,使得滑動片在水平方向的滑動更加順利。 The friction-damped support pad according to claim 1, 2 or 3, wherein at least one end of at least one of the core columns is provided with a deformable end cover, thereby adjusting the core column and the first and second material layers due to horizontal displacement of the support pad The resulting height difference makes the sliding of the slider in the horizontal direction smoother. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中各第二材料層延伸設於該至少一核心柱的滑動片之間。 The friction-damped support pad of claim 1, 2 or 3, wherein each of the second material layers extends between the sliding sheets of the at least one core post. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少兩相鄰第二材料層間設有至少一滑動片。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one sliding piece is disposed between at least two adjacent second material layers. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中該至少一核心柱的至少兩滑動片具有不同的外徑。 The friction-damped support pad of claim 1, 2 or 3, wherein at least two of the at least one core post have different outer diameters. 如請求項53所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 53, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一第一材料層延伸設於該至少一核心柱。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one first material layer extends over the at least one core post. 如請求項57所述之摩擦阻尼式支承墊,其中至少兩相鄰第二材料層間設有至少一滑動片。 The friction-damped support pad of claim 57, wherein at least one sliding piece is disposed between at least two adjacent second material layers. 如請求項58所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 58, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中所述核心柱的各滑動片的厚度相等。 A friction-damped support pad according to claim 1, 2 or 3, wherein each of the sliding pieces of the core post has the same thickness. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中所述核心柱的至少一滑動片的厚度不相等。 A friction-damped support pad according to claim 1, 2 or 3, wherein the thickness of at least one of the sliding sheets of the core post is not equal. 如請求項1所述之摩擦阻尼式支承墊,其中所述核心柱的數量為複數個。 A friction-damped support pad according to claim 1, wherein the number of the core columns is plural. 如請求項3或63所述之摩擦阻尼式支承墊,其中至少一核心柱設有複數個滑動片,而其餘核心柱由高阻尼材料所組成,且所述核心柱相並聯連接。 A friction-damped support pad according to claim 3, wherein at least one of the core posts is provided with a plurality of slides, and the remaining core posts are composed of a highly damped material, and the core columns are connected in parallel. 如請求項3或32所述之摩擦阻尼式支承墊,其中至少一核心柱設有複數個滑動片,而其餘核心柱由高阻尼材料所組成,且所述核心柱相串聯連接。 A friction-damped support pad according to claim 3, wherein at least one of the core posts is provided with a plurality of slides, and the remaining core posts are composed of a highly damped material, and the core columns are connected in series. 如請求項44所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction damper support pad of claim 44, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項45所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 45, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項46所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 46, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項48所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 48, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項49所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 49, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項50所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 50, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項51所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 51, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項52所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 52, wherein at least one of the core posts is provided with at least one cooling unit. 如請求項54所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 A friction-damped support pad according to claim 54, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項55所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 55, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項60所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 60, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項61所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction damper support pad of claim 61, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項62所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 62, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項63所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 A friction-damped support pad according to claim 63, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項64所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 64, wherein at least one of the core posts is provided with at least one cooling unit. 如請求項65所述之摩擦阻尼式支承墊,其中至少一核心柱內設有至少一冷卻單元。 The friction-damped support pad of claim 65, wherein at least one of the core columns is provided with at least one cooling unit. 如請求項53所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad according to claim 53, wherein at least one of the core pillars and the two material layers are respectively provided with a bundle unit covering the outside of the at least one sliding sheet. 如請求項54所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 54, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項55所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 55, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項56所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 56, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項57所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 57, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項58所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 58, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項59所述之摩擦阻尼式支承墊,其中至少一核心柱及兩材料層之間分別設有一包覆於至少一滑動片外部的束制單元。 The friction-damped support pad of claim 59, wherein at least one of the core post and the two material layers are respectively provided with a bundle unit covering the outside of the at least one slide. 如請求項1、2或3所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 1, 2 or 3, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項44所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 44, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項45所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction damper support pad of claim 45, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項46所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 46, wherein at least one cooling unit is disposed outside of the at least one core post. 如請求項47所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 47, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項49所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 49, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項50所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 50, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項51所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 51, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項52所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 52, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項54所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 54, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項55所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 55, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項56所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 56, wherein at least one cooling unit is disposed outside of the at least one core post. 如請求項59所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 59, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項60所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 60, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項61所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 61, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項62所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 62, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項63所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 63, wherein at least one cooling unit is disposed outside the at least one core post. 如請求項64所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction damped support pad of claim 64, wherein at least one cooling unit is disposed outside of the at least one core post. 如請求項65所述之摩擦阻尼式支承墊,其中於至少一核心柱外部設有至少一冷卻單元。 The friction-damped support pad of claim 65, wherein at least one cooling unit is disposed outside the at least one core post.
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Publication number Priority date Publication date Assignee Title
TWI817762B (en) * 2022-10-07 2023-10-01 崇興 蔡 Seismic isolation support pad

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
TWI817762B (en) * 2022-10-07 2023-10-01 崇興 蔡 Seismic isolation support pad

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