1. Field of the Invention
The present invention relates to a building's seismic isolation and snubber system with a seismic wave detection system installed in any building within a seismic region in which there are sensors and a processing unit for a seismic wave signal emitted (or transmitted) from the seismic wave detection system and simultaneously received by the processing unit, pressure relieved by activating previously-installed hydraulic oil pressure systems in a building, a building's weight sustained by the previously designed and installed seismic isolation and snubber system, and any earthquake-induced stress scattered or absorbed for a building's equilibrium. In detail, any information, for instance, a building's strike, dip or horizontal change detected by sensors could be transferred to the processing unit for further interpretation or calculation in which any change of an oblique angle or in a horizontal direction of any quadrant of operation is transferred to the hydraulic oil pressure system's coefficient of damping and the corresponding damping force is regulated by the hydraulic oil pressure system to adjust and distribute a building's equilibrium, so as to deliver any earthquake-induced stress properly controlled and distributed for complete yielding, seismic energy totally absorbed by the absorber systems, and seismic isolation of a building without shaking.
2. Description of the Prior Art
For a long time, the Earth we live is a turbulent environment rich in typhoons and earthquakes.
As a result of uncertain earthquakes with different magnitudes annually raging in any country or region of the top three seismic belts on the Earth, any pitiful sight such as collapsed buildings and wounds attributed to an earthquake (especially a strong destructive earthquake) has been repeatedly displayed to us.
Facing unavoidable acts of God, e.g., earthquakes, people must properly bring their wisdom into full play and combine any accessible technologies such as advanced civil engineering and modern architectural techniques to skillfully develop any earthquake-free building without damage, or the said disasters still threaten living people and become our nightmares. Despite lots of solutions for overcoming earthquake-induced hazards to buildings, human lives or assets offered by skilled persons nowadays, there are still some stubborn defects in their inventions thus far. Before and during development of the present invention, the inventor has collected a great deal of knowledge about root causes of earthquakes, earthquake protection, and multiple earthquake-related technologies or information such as seismic protection, seismic endurance, seismic reduction, seismic prevention, seismic restraint, seismic control, seismic separation, seismic isolation, or seismic absorption, especially all similar inventions or utility model patents declared by patent offices abroad, for further studies, analyses and comparisons. In view of each person's distinct intelligence, specialty, or accumulated experience, each inventor has his (her) own thinking while seeking any consequent solution for the same problem. Undeniably, each invention or innovative design accessible, oncoming, or unavailable but collected in various journals or media (including any theoretical idea significantly different from an actual solution) is worthful so far or applicable to some issues partially; for the earthquake-induced problems, comprehensive and detailed, there are still strong and weak points (or advantages and disadvantages) existing in these disclosed dazzling inventions or innovative designs or among these competitors featuring seismic protection, seismic reduction, seismic prevention, seismic restraint, seismic endurance, seismic separation, seismic isolation, etc. Among all inventions, each of them taking temporary solutions not effecting a permanent cure, effecting a permanent cure not taking temporary solutions, applying wrong methods to any temporary solution and permanent cure, or employing right methods restricted to existing material technologies or external environment cannot keep up with things.
Refer to the Appendix for the patent of “Anti-earthquake structure insulating the kinetic energy of earthquake from buildings” (Taiwan Patent No. 198739; Japan Patent No. 1275821; Canada Patent No. 1323883; U.S. Pat. No. 4,881,350) provided by the inventor two decades ago. Between a building and a foundation separated each other, a supporting isolation layer with a plurality of curved ball seats on its upper and lower surfaces and a plurality of corresponding balls installed for ultra-low frictional thrust between curved ball seats and corresponding balls skillfully contributes to earthquake-induced horizontal kinetic energy from destructive horizontal shakes transferred to a building's vertical potential energy due to balls and curved ball seats reciprocally rolling during an earthquake. In virtue of a multilayer design in balls and supporting isolation layers, any earthquake-induced horizontal shakes express a bottom-up decay geometrically and little kinetic energy is transmitted to a building finally. Additionally, a plurality of linkage snubbers installed between any support isolation layer and a building are effective in earthquake-induced vertical kinetic energy transferred to sliding shoes' horizontal kinetic energy and further proportionally absorbed by bow buffer springs based on the lever principle for delivering a building's safety without direct destroy from impact of earthquake-induced vertical shakes. Defect 1: Despite a horizontal motion between ball seats and corresponding balls for generation of the minimum rolling frictional thrust and little adverse effect from earthquake-induced horizontal shakes on a building, the application of the invention is limited to a light building only rather than a large-scale building which cannot sustain huge pressures out of contact forces between balls and ball seats (point-to-point contact) or huge stress per unit area. Defect 2: In spite of an intrinsic clever design to overcome impact on a building due to earthquake-induced vertical shakes proportionally absorbed by bow buffer springs based on linkage snubbers in the invention and the lever principle, a building's huge weight is still sustained by the snubbers even without disturbance of any earthquake and consequently causes elastic fatigue of components in the linkage shock absorption system and curtails their service lives such as linkages and bow springs under huge pressures. Also, a plurality of balls and linkage snubbers designed to sustain an entire building and effective in its intrinsic seismic isolation and protection function during an earthquake usually rock and disturb residents who live above the apparatus without any extra protection mechanism designed to overcome wind pressure in one windy area with any blast raging (or any region with typhoons or hurricanes frequently occurring). Despite its obviously potential values based on the said descriptions, each earthquake-related invention or utility model patent still has any defect more or less or a blemish in an otherwise perfect thing comparatively thus far. In consideration of existing well-developed technologies and relevant information for long-term thinking and research to achieve mastery through a comprehensive study and touch the core issue from a macro view, the inventor skillfully integrate modern technologies such as electronics, communications, hydraulic crane, mechanics, etc. into the original invention herein for seismic isolation and prevention by means of these techniques thereof cooperating one another and separately developing their total functions. It is believed that the present invention with exquisite design, arrangement and planning is able to express its flawless performance and fulfill “safe residence” for people while confronting any act of God, typhoon or earthquake.
The technical philosophy and measures adopted in the invention herein have supplied reliable safety and earthquake-free protection to most buildings. However, a tiny vibration during any manufacture or process still leads to any irretrievable loss in some specific industries or locations emphasizing an ultra-high aseismatic environment such as FAB, hospital for surgery or microsurgery, critical information storage center, museum with some important cultural heritages or priceless antiques collected within, and any other high-precision high-tech industry.
Depending on spirit to strive for perfection in the principle or structure of the said invention, the inventor continues research and development in detail to create elaborate design for any hazard attributed to micro-earthquake in the said industry thoroughly excluded and no risk threatening specific industries or locations hereinabove in spite of any earthquake.
The object of the present invention is to provide a building's seismic isolation and snubber system which depends on a building separated from its foundation and hydraulic oil pressure systems sustaining the building and comprises indoor sensors detecting the building's oblique angles and a processing unit computing the building's any tilt for damping forces generated by the hydraulic oil pressure systems to distribute and control the building's equilibrium during an earthquake.
The other object of the present invention is to provide a building's seismic isolation and snubber system with the hydraulic oil pressure systems installed around a building to prevent the building from damage attributed to seismic waves.
The further object of the present invention is to provide a building's seismic isolation and snubber system with a processing unit, which automatically determines the priority of corresponding damping forces according to any strike or dip in a quadrant of operation, and deliver an equilibratory building increasingly or decreasingly in multi-frequency.
The building's seismic isolation and snubber system delivering the said objects comprises:
Absorber systems under a building are the systems with first bearing carriers underneath and used to eliminate a building's vertical and horizontal vibrations;
Multilayer sliding systems installed under the absorber systems comprise any second bearing carrier with a sliding shoe below at which the sliding shoe's bottom contacts a multilayer stack structure composed of several units of dish gliding slabs with sizes gradually changed and concave surfaces to yield or eliminate any earthquake-induced horizontal vibrations;
Hydraulic oil pressure systems arranged with the multilayer sliding systems at regular intervals are used to sustain a building or eliminate any load applied to a building;
A processing unit electrically connected to the hydraulic oil pressure systems is used to receive seismic wave signals and activate the hydraulic oil pressure systems to eliminate any load applied to a building, and further comprises: sensors installed indoors for detecting a building's oblique angles and connected to the processing unit; the absorber systems and hydraulic oil pressure systems installed underneath to the building wherein:
The sensors installed inside a quadrant unit of a building provide information such as oblique angle to the processing unit in which any tilt is determined and controlled and any oblique angle in one quadrant of operation is transferred to one hydraulic oil pressure system's coefficient of damping for the building's equilibrium distributed and controlled by the hydraulic oil pressure systems based on corresponding damping forces in the event of any strike and dip in the building's quadrant of operation.
The drawings disclose an illustrative embodiment of the present invention which serves to exemplify the various advantages and objects hereof, and are as follows:
Referring to
The absorber systems 1 under a building are the systems comprising first bearing carriers 11 with snubbers 12 underneath used to eliminate a building's vertical and horizontal micro-vibrations; as shown in
The multilayer sliding systems 2 installed under the absorber systems 1 comprise any second bearing carrier 21 provided with a sliding shoe 22 underneath which makes its bottom contact a multilayer stack structure 23 composed of several units of dish gliding slabs 231 with the same size (
Also, the dish gliding slabs 231 are sequentially stacked and assembled to be a taper multilayer stack structure 23; in the event of any earthquake, the sliding shoe 22 reciprocally swinging in the direction of a force applied makes any two dish gliding slabs 231 mutually sliding to eliminate any earthquake-induced horizontal stress but no dish gliding slab 231 under the swinging force thereof detached due to a flange 233 on the edge of each dish gliding slab 231; the sliding shoe 22 installed in a curved space of the top dish gliding slab 231 reciprocally swings in the direction of a force applied during an earthquake and makes all dish gliding slabs 231 mutually glide to eliminate any stress.
Prepared in the said apparatus, some accommodating spaces 29 are used in storing grease or lubricant injected inside for sliding devices. Any horizontal displacement of the biconcave multilayer surface sliding device is much greater than that of a concave multilayer stack structure 23. Still, both devices thereof are effective in earthquake-induced horizontal vibrational kinetic energy transferred into a building's vertical potential energy and allow a building to return to its lowest and most stable position with an earthquake disappearing.
Referring to
As shown in
The processing unit 4 electrically connected to the hydraulic oil pressure systems 3 is used to receive any seismic wave and activate the hydraulic oil pressure systems 3 to eliminate any load applied to a building; the seismic wave detection system 5 installed at a regular interval is used to detect any seismic wave by which the system thereof generates a signal matching a time information, as shown in
The communications device further comprises a radio detection system transmitting the warning signal to the processing unit 4 via a radio transmission network such as an Ultra High Frequency (UHF), a Very High Frequency (VHF), a mobile phone communications network, and a fixed network; in practice, the communications device comprises a satellite signal detection system for the warning signal transmitted to the processing unit 4 via a satellite, for instance, a maritime satellite. The processing unit 4 is provided with a built-in reception device used in receiving any seismic signals emitted (or transmitted) from the seismic wave detection system 5 of a remote earthquake monitoring station. Transferred from an instantly arriving seismic wave detected by the seismic wave detection system 5 and emitted (or transmitted) via an emission (or transmission) device activated by the seismic wave detection system 5, the seismic wave signal is received by the processing unit 4 for both an earthquake-free building's default hydraulic oil pressure systems 3 as well as a seismic isolation mechanism enabled to ensure a building's safety.
To prevent a building from attack of consequent seismic waves and ensure safety, the seismic wave detector 41 in the processing unit 4 is one back-up system which is effective in simultaneously delivering a seismic wave signal to the hydraulic oil pressure systems 3 and activating the hydraulic oil pressure systems 3 to eliminate any load applied to a building in case of the said seismic wave detection system 5 out of order and disabled (
The processing unit 4 further comprises a configuration editor attached to the seismic wave detector 41 or the processing unit 4 and cooperating with one computer to define a specific magnitude for one building as a threshold of allowing the building's seismic isolation mechanism to be automatically activated by the processing unit 4.
A sensor 7 installed in a building's quadrant unit should provide and collect any information with respect to oblique angles (or horizontal changes) to the processing unit 4 for further determination, control and calculation in case of any strike or dip detected in the building's quadrant of operation, and the processing unit 4 should transfer any oblique angle in a quadrant of operation into a coefficient of damping for one hydraulic oil pressure system 3, which depends on a corresponding damping force to control or distribute equilibrium of a building, and automatically determine the priority of the corresponding damping forces thereof based on the strike or dip in the quadrant of operation.
The hydraulic oil pressure systems 3 vertically erected on the third bearing carrier 31 ordinarily supports and fixes a building; the processing unit 4 based on any oblique angle in a quadrant of operation controls a coefficient of damping for each hydraulic oil pressure system 3 and drives the hydraulic oil pressure systems 3 to apply corresponding damping forces used in controlling and distributing equilibrium of one building during an earthquake. Also, there are several units of horizontal hydraulic oil pressure systems 3 installed on a building's periphery or laterals for assistant support to prevent a building under effect of strong wind from any shake and distribute the said equilibrium of one building in case of an earthquake detected.
The said descriptions are one preferred embodiment of the present invention of a building's seismic isolation and snubber system for each component and installation; then, the method of employing the present invention and its characteristics are further introduced as follows:
Referring to
Referring to
Referring to
Moreover, as shown in
In case of any earthquake-induced horizontal vibration, the sliding shoes 22 on the multilayer stack structures 23 reciprocally swinging in the direction of any force applied generate lots of relative slides among dish gliding slabs 231 or between dish gliding slabs 231 and their sockets 24 to eliminate any earthquake-induced horizontal stress wherein each dish gliding slab 231 is provided with a flange 233 on its edge in favor of no dish gliding slab 231 detached under a swinging force and the absorber systems 1 alleviating or absorbing any vertical and horizontal micro-vibrations for reliable and safe protection of a building.
Also, there are some rectangular or long elliptic holes 232 without uniform sizes are distributed on each dish gliding slab 231 of a multilayer stack structure 23 wherein all rectangular or long elliptic holes on any two contiguous dish gliding slabs 231 are arranged in crisscross patterns for grease or lubricant applied or stored and uniformly permeating or lubricating all multilayer sliding systems 2 as well as all sliding elements (e.g., sliding shoes 22, dish gliding slabs 231 and sockets 24) and any coefficient of kinetic friction between any two elements in a multilayer sliding system 2 (i.e., a sliding shoe 22 and a dish gliding slab 231, any two dish gliding slabs 231, or a dish gliding slab 231 and a socket 24) substantially reduced in case of any relative replacement or reciprocal slide of the dish gliding slabs 231 attributed to earthquake-induced horizontal vibrations; in general, any kinetic energy from earthquake-induced horizontal vibrations is transmitted between the layers of low-frictional sliding elements, decayed geometrically and absorbed by any snubber 12 installed on a first bearing carrier 11 so that there is very little vibrational energy transferred to a building at which the almost earthquake-free status is delivered. Additionally, a building could still return to its originally lowest and most stable position because of any earthquake-induced horizontal kinetic energy transferred to a building's vertical potential energy by the dish gliding slabs 231 with an earthquake disappearing.
Referring to
Alternatively, the hydraulic oil pressure systems 3 and the second hydraulic units 32 between the first bearing carriers 11 (both with functions described hereinabove) are integrated to sustain a building wherein the hydraulic oil pressure systems 3 keep the building non-collapsed and the second hydraulic units 32 adjust damping in stage treatment during an earthquake, so as to deliver seismic isolation with a building's vertical and horizontal vibrations effectively eliminated via damping distributed to the hydraulic oil pressure systems 3 and the second hydraulic units 32 between the first bearing carrier 11. Furthermore, some wear-resistant sliding materials applied, plated or stuck between any two sliding contact surfaces in the multilayer sliding system 2 (i.e., between a sliding shoe 22 and a dish gliding slab 231, between any two dish gliding slabs 231 and between a dish gliding slab 231 and a socket 24) contribute to any coefficient of kinetic friction in a multilayer sliding system 2 substantially reduced; any kinetic energy coming from earthquake-induced horizontal vibrations but transmitted between the layers of low-frictional sliding elements are geometrically decayed and finally absorbed by any snubber on the top of a first bearing carrier 11 so that there is very little vibrational energy accepted by a building to realize an earthquake-free building. In addition, a building could return to its lowest and most stable position with an earthquake finished owing to earthquake-induced horizontal kinetic energy transferred to a building's vertical potential energy by the dish gliding slabs 231.
In contrast to other products manufactured in other prior arts, the present invention of a building's seismic isolation and snubber system has advantages as follows:
1. No additional crane is required during any maintenance owing to a building sustained and fixed by the hydraulic oil pressure systems 3 regularly.
2. The fact of a building's vertical and horizontal vibrations effectively reduced extends a service life of any hydraulic oil pressure system 3 because of earthquake-induced vibrational kinetic energy absorbed by snubbers 12.
3. Both horizontal and vertical seismic waves are preciously detected by sensors 7 along with the processing unit 4 which is effective in adjusting a coefficient of damping of any hydraulic oil pressure systems 3 for effective seismic isolation.
4. There is very little kinetic energy finally transmitted to a building due to damping increasingly or decreasingly adjusted by the hydraulic oil pressure systems 3 in multi-frequency and the present invention of a building's seismic isolation and snubber system ensuring a building's equilibrium without collapse and residents' lives and assets.
5. Any kinetic energy transmitted between the layers of low-frictional sliding elements have been geometrically decayed and finally absorbed by any snubber 12 on the top of one first bearing carrier 11 in design of the multilayer sliding systems 2 so that very little vibrational energy accepted by a building delivers an almost earthquake-free building.
6. Any small oblique angle coming from seismic waves or any earthquake-induced swing could be eliminated with damping forces gradually adjusted by the second hydraulic units 32, which are installed between first bearing carriers 11, in multi-frequency and stage treatment according to the priority of controlled damping forces; any damaged second hydraulic unit 32 is easily repaired or replaced.
7. With a communications device integrated, the seismic wave detection system 5 could transmit a signal to the processing unit 4 for the hydraulic oil pressure systems 3 along with a seismic isolation mechanism activated to eliminate any load applied on a building and ensure a building's safety.
Many changes and modifications in the above described embodiment of the invention can, of course, be carried out without departing from the scope thereof. Accordingly, to promote the progress in science and the useful arts, the invention is disclosed and is intended to be limited only by the scope of the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
2010 1 0209948 | Jun 2010 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
4881350 | Wu | Nov 1989 | A |
4883250 | Yano et al. | Nov 1989 | A |
5442883 | Nishimura et al. | Aug 1995 | A |
5689919 | Yano | Nov 1997 | A |
6021992 | Yen et al. | Feb 2000 | A |
6367207 | Yamaji et al. | Apr 2002 | B1 |
7472518 | Tsai | Jan 2009 | B2 |
7540117 | Yang | Jun 2009 | B2 |
7770331 | Halloran | Aug 2010 | B2 |
8371075 | Huber et al. | Feb 2013 | B2 |
8429862 | Yin | Apr 2013 | B2 |
20020166296 | Kim | Nov 2002 | A1 |
20060174555 | Zayas et al. | Aug 2006 | A1 |
20060272225 | Tsai | Dec 2006 | A1 |
20110016805 | Tsai | Jan 2011 | A1 |
20120047822 | Zeevi | Mar 2012 | A1 |
20120174500 | Yakoub | Jul 2012 | A1 |
Number | Date | Country |
---|---|---|
08277655 | Oct 1995 | JP |
Entry |
---|
Machine Translation of JP 08277655. |
Number | Date | Country | |
---|---|---|---|
20110308175 A1 | Dec 2011 | US |