• 제목/요약/키워드: Load-bearing capacity

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자기연성을 이용한 동극형 자기베어링의 고장강건 제어 (Fault Tolerant Homopolar Magnetic Bearings with Flux Coupling)

  • 나언주
    • 한국정밀공학회지
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    • 제25권3호
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    • pp.83-92
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    • 2008
  • This paper develops the theory for a fault-tolerant, permanent magnet biased, homopolar magnetic bearing. If some of the coils or power amplifiers suddenly fail, the remaining coil currents change via a novel distribution matrix such that the same magnetic forces are maintained before and after failure. Lagrange multiplier optimization with equality constraints is utilized to calculate the optimal distribution matrix that maximizes the load capacity of the failed bearing. Some numerical examples of distribution matrices are provided to illustrate the theory. Simulations show that very much the same dynamic responses (orbits or displacements) are maintained throughout failure events (up to any combination of 3 coils failed for the 6 pole magnetic bearing) while currents and fluxes change significantly. The overall load capacity of the bearing actuator is reduced as coils fail. The same magnetic forces are then preserved up to the load capacity of the failed.

유전자 알고리즘을 이용한 깊은 홈 볼 베어링의 고부하용량 설계 (Genetic Algorithm Based Design of Beep Groove Ball Bearing for High-Load Capacity)

  • 윤기찬;조영석;최동훈
    • 한국윤활학회:학술대회논문집
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    • 한국윤활학회 1999년도 제30회 추계학술대회
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    • pp.167-173
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    • 1999
  • This paper suggests a method to design the deep groove ball bearing for high-load capacity by using a genetic algorithm. The design problem of ball bearings is a typical discrete/continuous optimization problem because the deep groove ball bearing has discrete variables, such as ball size and number of balls. Thus, a genetic algorithm is employed to find the optimum values from a set of discrete design variables. The ranking process is proposed to effectively deal with the constraints in genetic algorithm. Results obtained fer several 63 series deep groove ball bearings demonstrated the effectiveness of the proposed design methodology by showing that the average basic dynamic capacities of optimally designed bearings increase about 9~34% compared with the standard ones.

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Improvement of tip analysis model for drilled shafts in cohesionless soils

  • Chen, Yit-Jin;Wu, Hao-Wei;Marcos, Maria Cecilia M.;Lin, Shiu-Shin
    • Geomechanics and Engineering
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    • 제5권5호
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    • pp.447-462
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    • 2013
  • An analysis model for predicting the tip bearing capacity of drilled shafts in cohesionless soils is improved in this study. The evaluation is based on large amounts of drilled shaft load test data. Assessment on the analysis model reveals a greater variation in two coefficients, namely, the overburden bearing capacity factor ($N_q$) and the bearing capacity modifier for soil rigidity (${\zeta}_{qr}$). These factors are modified from the back analysis of drilled shaft load test results. Different effective shaft depths and interpreted capacities at various loading stages (i.e., low, middle, and high) are adopted for the back calculation. Results show that the modified bearing capacity coefficients maintain their basic relationship with soil effective friction angle ($\bar{\phi}$), in which the $N_q$ increases and ${\zeta}_{qr}$ decreases as $\bar{\phi}$ increases. The suggested effective shaft depth is limited to 15B (B = shaft diameter) for the evaluation of effective overburden pressure. Specific design recommendations for the tip bearing capacity analysis of drilled shafts in cohesionless soils are given for engineering practice.

원심모형 실험과 수치해석을 이용한 과압밀 지반에서의 piled raft 기초의 지지력 평가 (Evaluation of Bearing Capacity of Piled Raft Foundation on OC Clay using Centrifuge and Numerical Modeling)

  • 박진오;추연욱;김동수
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.376-387
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    • 2009
  • Piled raft foundation is a geotechnical composite construction to support the superstructure by pile-soil-raft interaction. General conventional design for piled raft doesn't consider the contribution of a raft. This is very conservative and requires more piles to satisfy the factor of safety. It is important to evaluate the load sharing features of piled raft. In this research, this characteristics of piled raft evaluated using both centrifuge and numerical modelings. The ultimate bearing capacity of piled raft foundation was also evaluated and predicted through comparisons of ultimate bearing capacity of single pile (SP), unpiled raft (UR), freestanding pile group (FPG) and piled raft (PR). $\xi_{pr}$ and $\eta$ were determined by centrifuge model tests to simply evaluate the ultimate bearing capacity of piled raft and bearing capacity of piled raft was predicted using the calibrated numerical model based on the centrifuge tests and laboratory tests data.

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SIP공법의 지지력 특성에 관한 연구 (Bearing Capacity Characteristics of SIP)

  • 박종배;임해식;박용부
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2002년도 기초기술학술발표회
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    • pp.57-76
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    • 2002
  • As piling works in urban area increasing, SIP which is low noise & vibration piling method is taking place of driven pile which has good bearing charateristics and economics. Since SIP has been used for more than 15 years and it's application is increasing year by year, however, accurate analysis of bearing mechanism of SIP is not enough. So the design of SIP is much more conservative than driven pile. This paper is aimed to analyse the bearing charateristics of 103 SIPs constructed in Korea to give rational design criteria. Research result shows that bearing capacity of SIP is 40% lower than that of driven pile and conservative Meyerhof(equation omitted) method produced closer result to load test results than other design method. And this result show that to use optimised design criteria for the economic SIP design, quality control criteria must be settled down to produce high in-situ bearing capacity.

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유체막에서 관성과 열 소산의 영향 (The influence of fluid inertia and heat dissipation in fluid films)

  • 김은필
    • 대한기계학회논문집B
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    • 제21권2호
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    • pp.224-234
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    • 1997
  • It was demonstrated earlier that for laminar, isothermal flow of the lubricant in long journal bearings, inertia has negligible effect on the load carrying capacity and influences only the stability characteristics of the bearing. The question in the present paper is: 'will these conclusions of the isothermal theory remain valid in the presence of significant dissipation, or will lubricant inertia and dissipation interact non-linearly to bring about qualitative changes in bearing performance\ulcorner' The results obtained here assert that the effect of lubricant inertia on load carrying capacity remains negligible, irrespective of the rate of dissipation. The stability of the bearing is, however, affected by lubricant inertia. These results, although obtained here for long bearings with Sommerfeld and Gumbel boundary conditions, are believed to be applicable to practical bearing operations and affirm that bearing load may be calculated from classical, i. e., non-inertial theory.

베어링 편심도와 자세각에 따른 저어널 베어링의 윤활효과 (Lubrication Effect of Journal Bearing according to its Eccentricity and Attitude Angle)

  • 김종도;왕일군;윤문철
    • 한국기계가공학회지
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    • 제14권5호
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    • pp.88-95
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    • 2015
  • The thickness of adsorbed molecular layers is the most critical factor in studying thin-film lubrication, and it is the most essential parameter that distinguishes thin-film from thick-film lubrication analysis. The thin film between the shaft and bearing surface within a very narrow gap was considered. The general Reynolds equation has been derived for calculating thin-film lubrication parameters affecting the performance of the circular journal bearing. Investigation of the load-carrying capacity and pressure distribution for the journal bearing considering the adsorbed layer thickness has been carried out. A Reynolds equation appropriate for the journal bearing is used in this paper for the analysis, and it is discussed using the finite difference method of the central difference scheme. The parameters, such as eccentricity and attitude angle, are used for discussing the load-carrying capacity of the journal bearing. The results reported in this paper should be applied to analysis of the journal bearing with different lubrication factors. The steady-state analysis of the journal bearing is conducted using the Reynolds model under thin-film lubrication conditions. For a journal bearing, several parameters, such as a pressure, load capacity, and pressure components of the bearing can be obtained, and these results can be stored in a sequential data file for later analysis. Finally, their distribution can be displayed and analyzed easily by using the MATLAB GUI technique. The load-carrying capability of the journal bearing is observed for the specified operating conditions. This work could be helpful for the understanding and research of the mechanism of thin-film lubrication.

PHC 매입말뚝의 설계효율과 지지력 특성 사례분석 (Case Study on Design Efficiency and Bearing Capacity Characteristics of Bored PHC Piles)

  • 윤중만;여규권;김홍연;최용규
    • 한국지반신소재학회논문집
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    • 제18권3호
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    • pp.45-53
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    • 2019
  • 본 연구에서는 건축기초에 적용된 매입 PHC말뚝의 설계사례를 분석하였다. 전반적인 말뚝길이는 최대 35m 이내에서 다양하나, 지지층 조건에 따른 평균 길이는 17.0~18.9m로 큰 차이가 없었다. 지지층 소켓길이는 전체의 약 58%가 시방기준 최소길이인 1m에 따라 설계되었고, 최대 5m까지 설계되었다. 설계효율은 그 편차가 매우 크나 평균 약 70%로서 통상 알려진 범위와 일치하였다. 설계효율이 낮은 용도는 주로 설계하중이 적은 저층건물이나 놀이기구 기초 등으로 나타났다. 풍화암 지지층에서 설계하중은 설계를 지배하는 지반 허용지지력의 65~97%, 허용지지력에 대한 말뚝 허용축하중의 비는 36~115%로 광범위하게 분포하므로 설계효율과 함께 최적화 노력이 요구된다. 반면, 연 경암 지지층의 허용지지력은 대부분 말뚝 허용축하중의 90% 내외로 매우 균등했다. 설계 허용지지력은 선단지지력이 평균 75% 이상을 차지하였으나, 현장재하시험 연구결과를 보면 초기항타 조건에서는 선단지지력이 지배적이며, 재항타 조건에서는 선단지지력이 최소 25%에 불과한 경우도 있었다. 따라서, 설계시 산정된 허용지지력은 시공 초기조건만을 반영하는 것이며, 시간이 경과할수록 말뚝 주면부로의 하중전이가 증가하고, 일부는 시험시 타격에너지 부족으로 선단지지력의 확인이 이루어지지 못한다고 볼 수 있다. 균질한 지반으로 가정했을 때 근입비가 증가할수록 허용축하중이 감소하는 경향이 있었고, 이와 유사하게 지반의 허용지지력도 감소하는 경향을 보여, 큰 설계하중으로 초고강도 말뚝을 적용할 경우 지반의 지지력을 최대한 활용할 수 있음을 알 수 있었다.

싱글쉘 터널 라이닝의 파괴 메카니즘 및 지보성능에 관한 연구 (A Study on failure mechanism and load-bearing capacity of single-shell tunnel lining)

  • 신휴성;김동규;장수호;배규진
    • 한국터널지하공간학회 논문집
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    • 제8권3호
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    • pp.273-287
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    • 2006
  • 본 연구에서는 숏크리트 라이닝과 2차 콘크리트 라이닝 사이에 방수막으로 분리된 기존 이중구조의 터널 라이닝과 터널 라이닝 단면상에 전단력 전달을 저해하는 장치를 포함하지 않은 일체화 싱글쉘 구조의 터널 라이닝의 파괴양상 및 하중 지지성능에 관해 고찰한다. 하중지지력 평가를 위하여 우선적으로 수치해석적인 사전 평가가 실시되었으며, 새롭게 고안된 실대형 터널 라이닝 하중재하 실험이 실시되었다. 이때, 이완하중이나 암괴하중을 모사하기 위해 터널 천단부 집중하중이 고려되었다. 본 연구를 통하여, 동일한 터널라이닝 강도 관리기준에서 이중구조 라이닝보다 싱글쉘 라이닝 구조가 약 20%정도 높은 지지력을 보였으며, 다중 숏크리트 타설 단계마다 고성능 첨가재료 투입량의 조절로 복합재료 싱글쉘 라이닝 구조를 형성함으로써 보다 적은 고성능화 첨가재료 투입량으로 유사한 지지성능을 확보할 수 있는 가능성을 보였다.

과재하중 재하에 따른 역 T형 옹벽의 활동거동에 관한 수치해석 (A Numerical Study of Cantilever Retaining Wall Sliding Behavior due to Surcharge Loading Condition)

  • 유남재;이명욱;박병수;이승주
    • 산업기술연구
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    • 제21권B호
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    • pp.205-212
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    • 2001
  • This paper is experimental and numerical research about the sliding behavior of cantilever retaining walls resisting surcharge loads. In experimental research, centrifuge model tests at the lg and 40 g-level were performed by changing the location of model footing and its width. Bearing capacity of model footing and characteristics of load-settlement and load-lateral displacement of retaining wall were investigated. Test results of bearing capacity were compared with modified jarquio method, based on the limit equilibrium method with elasticity theory. For the numerical analysis, the commericially available program of FLAC was used by implementing the hyperbolic constitutive relationships to compare with test result about load-settlement and load-displacement of retaining wall, bearing capacity of strip footing.

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