• Title/Summary/Keyword: 1mm 응력

검색결과 539건 처리시간 0.03초

강용접부의 표면균열 성장거동에 관한 연구 1

  • 정세희;박재규;이종기
    • Journal of Welding and Joining
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    • 제6권2호
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    • pp.30-39
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    • 1988
  • Generally, as the welded region of weld structures has the incomplete bead and welded deposit which are able to behave like the surface cracks occasinally, there is a high possibility that the fatigue fracture of the weld structures is due to the surface cracks on the wlded region. This study was done to investigate the effects of post weld heat treatment (PWHT) on the fatigue behaviors of the surface crack of the heat affected zone (HAZ) for the multi-pass welds under the repetitive pure bending moment. The obtained results are summarized as follows : 1. The crack grows to the depth direction initially as the number of cylces increase, the amount of crack length is increased for the surface dir3ction and cive versa for the depth direction. 2. The fatigue life is increased in a order of as weld, PWHT specimens and parent. 3. As the number of cycles increase, the crack length is increased to th surface direction. The increase of the depth length is blunted at the center of specimen thickness. 4. The fatigue crack growth of PWHT specimens to the surface direction is dependent upon the holding time and applied stress during PWHT. In order words, the crack growth rate decreases with the holding time and increases with the applied stress during PWHT. 5. As the crack grows, the aspect formed in the course of crack propagation approaches to semicircle for parent and ellipse with the largest semidiameter for PWHT ($1/4hr, 15kgf/mm^2$) 6. At depth direction, it is difficult to apply to the paris' equation because of the scattered data between the crack growth rate and the stress intensity factor range.

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양측성 및 편측성 이악물기시 상하악골 응력변화 및 변위에 관한 3차원 유한요소법적 연구 (THREE-DIMENSIONAL FINITE ELEMENT STRESS ANALYSIS OF THE JAWS AT THE SIMULATED BILATERAL AND UNILATERAL CLENCHINGS)

  • 허훈;강동완
    • 대한치과보철학회지
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    • 제37권1호
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    • pp.71-92
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    • 1999
  • This study is to analyze the stress and displacement on the jaws during the bilateral and unilateral clenching task on three dimensional finite element model of the dentated skull. For this study, the computed tomography(G.E.8800 Quick, USA) was used to scan the total length of human skull in the frontal plane at 1.9mm intervals. The CAD data were extracted from the tomograms through digitizer(Summa Sketch III, USA) and then reconstructed by means of the spline method in the CAD program. In this project, a commercial software I-DEAS(Master Series ver-sion 3.0, SDRC Inc, USA) was used for three-dimensional stress analysis on the finite element model. which consists of articular disc, maxilla, mandible, teeth, periodontal ligament and cranium. The results are as follows. ; 1. During the bilateral clenching, each major muscle forces caused high stresses on various areas of skull: masseter muscle on articular disc and teeth ; temporal muscle on mandible and periodontal ligament ; medial pterygoid muscle on the temporomandibular joint. During the unilateral clenching, masseter muscle induced the maximum stress ; medial pterygoid muscle the minimum stress. 2. During the bilateral clenching, higher compressive stresses on articular disc were generated by the masseter muscle and higher deformation occurred on the most front outer sites. And during the unilateral clenching, temporal muscle and medial pterygoid muscle exerted their forces to twist temporomandibular joint area of the balancing side and induced a higher compressive stresses on the front outer sites of articular disc. 3. During the bilateral clenching, the masseter muscle bended the mandible outwardly, and then caused tensile stresses on the lingual surface of mandibular symphysis. And the medial pterygoid muscle caused tensile stresses on the labial surface of mandibular symphysis. 4. When each muscles were simultaneously applied on jaws, a high stress and displacement took place on mandible rather than on the maxilla. Also, a high stress and displacement took place during the unilateral clenching rather than during the bilateral clenching.

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골유착성 임플랜트 보철물의 캔틸레버 위치와 길이변화에 따른 삼차원 유한요소법적 응력분석 (A THREE DIMENSIONAL FINITE ELEMENT STRESS ANALYSIS OF OSSEOINTEGRATED PROSTHESIS ACCORDING TO THE LOCATION AND LENGTH OF CANTILEVER)

  • 장복숙;김창회;김영수
    • 대한치과보철학회지
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    • 제34권3호
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    • pp.501-532
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    • 1996
  • This study investigated the effects of cantilever length, location and load condition on stress distribution developed in the implants, prostheses and supporting tissues. The osseointegrated prostheses with two 10mm Branemark implants at 2nd premolar and 1st molar sites with cantilever extensions at 1st premolar, 2nd and 3rd molar sites were constructed. Under 100N, 200N of vertical and $45^{\circ}$ oblique loads at the cantilever pontics, stress distribution patterns and displacement were analyzed with three dimensional finite element method. The results were as follows : 1. The stress was concentrated at the joint of the cantilever pontic and implant superstructure, the neck of implant and the ridge crest near the cantilever But there was little load transfer to the lower supporting tissues of implants. 2. The implant near the cantilever was displaced inferiorly while the implant far from the cantilever was displaced superiorly. In horizontal direction the implants were displaced to the direction where the loads were applied, except the apexes of the implants. 3. In case of anterior cantilever, the stress and displacement were higher than the prosthesis connected with natural tooth. 4. The stress developed in the posterior cantilevered type was higher than in the anterior cantilevered type. The greastest stress was concentrated at the ridge crest near the posterior cantilever. 5. The longer the cantilever, the more the stress was developed and was concentrated at the joint of the cantilever pontic and implant superstructure. 6. Under oblique load, the stress was concentrated at the necks of implants and the ridge crests, but decreased at the joint of the cantilever pontic and implant superstructure than under vertical load.

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Asymmetric Head-Gear의 견인력의 차이에 따른 상악 제 1 대구치에 나타나는 힘과 변위 및 초기 응력분포에 관한 유한요소법적 비교 연구 (A FEM comparison study about the force, displacement and initial stress distribution on the maxillary first molars by the application of Asymmetric Head-Gears with the different traction forces)

  • 차경석
    • 대한치과교정학회지
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    • 제31권3호
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    • pp.311-323
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    • 2001
  • 편측성 II급 부정교합의 치료 시 다양한 mechanics가 사용되어지는데 그중 한가지가 asymmetric face-bow를 가진 head gear이다. 이 asymmetric head gear의 편측 효과에 대해 다양한 연구결과를 보고하고 있는데 이에 저자는 편측성 II급 부정교합의 상악 치열 모델링과 임상에서 자주 사용되는 Power arm asymmetric face-bow를 모델링하고, 견인력을 달리하여 유한 요소법을 통해 치근막에서 발생되는 응력의 분포와 그에 따른 각 방향의 반력, 그리고 그로 인한 변위를 관찰하여 역계를 이해하고 치료효과를 예견하고자 실험을 고안하였다. 발치나 교정치료의 경험이 없는 25세 남자 정상 교합자를 대상으로 컴퓨터 단층 촬영을 시행하여 얻은 방사선필름을 기초로 하여 유한 요소 상악 모델과 치주인대 모델을 제작하고 그후 다시 좌측 제 1 대구치가 근심 편위되어있는 편측성 상악 II급 부정교합 모델로 제작하고, RMO 사의 Face-bow (Penta-$^{TM}$/Medium size)를 기본 모델로 0.045 inch 직경의 inner-bow와 0.072 inch 직경의 outer-bow를 가지는 asymmetric face-bow를 우측을 25mm 짧게 하여 모델링한 후, 좌우측 제 1 대구치에 각각, 250g, 300g, 350g 씩 견인력을 부여하여 다음과 같은 결론을 얻었다. 1. 양쪽 제1 대구치가 받는 힘의 총합은 견인력이 증가함에 따라 증가하는 경향을 보였는데 대체로 근심위치된 치아가 정상 위치한 치아보다 더 많은 힘을 받는 것으로 나타났으며, 두치아 모두 윈심으로의 힘을 받으며, 원심으로 이동하는 양상을 보여주었다. 2. 측방력은 두 치아 모두 협측으로의 힘을 받는 것으로 나타났는데, 힘의 성분을 분석하여 보면 견인력이 증가함에 따라 X축으로의 힘이 근심 위치된 치아에서 점점 작아지며, 정상 위치한 치아에서 점점 증가하여 측방력의 성분이 힘을 많이 받는 쪽에서 적게 받는 쪽으로 이동하는 양상을 보여주었다. 3. 원심으로의 이동과 동시에 회전과 경사이동 양상을 보여주었는데 견인력의 증가시 함께 증가하는 양상을 보였고, 힘을 많이 받는 쪽, 즉 근심 위치된 치아가 더 많은 회전과 경사이동을 보였으며 적은 양이나마 정상 위치된 치아에 서도 같은 양상의 변위를 보였다.

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유한요소분석법을 이용한 치근형 임플랜트의 응력분포에 관한 연구 (A STUDY ON THE STRESS ANALYSIS OF THREE ROOT-FORM IMPLANTS WITH FNITE ELEMENT ANALYSIS)

  • 문병화;양재호
    • 대한치과보철학회지
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    • 제31권1호
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    • pp.129-150
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    • 1993
  • Since the restoration or masticatory function is the most important aim of implants, it should be substituted for the role of natural teeth and deliver the stress to the bone under the continous load during function. In natural teeth, stress distribution can be obtained through enamel, dentin and cementum and the elasticity of the periodontal ligament play a role of buffering action. In contrast, implant prosthesis has a very unique characteristics that it delvers the load directly to bone through the implant and superstructure. This fact arise the needs to evaluate the stress distribution of the implant in the mechnical aspects, which has a similar role of natural teeth but different pathway of stress. With 3 kinds of implant in prevalent use, 2 types of experimental PEA implant models were made, axisymmetric and 2-dimensional type. In axisymmetric model, the stiffness of the part including the prosthesis and implant which extrude out of bony surface could be calculated with displacement of the superstructure un er 100N vertical load and then damping effects could be determined through this stiffness. In axisymmetric FEA model, load to the bone could be deduced by evaluation the stress distribution of the designed surface under the 100N vertical force and in 2-dimensional model, 100N eccentric vertical load and 20N horizontal loda. The result are as follows. 1. In every implant, stress to the bone tends to be concenturated on the cortical bone. 2. Though the stress of the cancellous bone is larger at the apex of implants, it is less compared with cortical bone. 3. Under 20N horizontal load, stress of the left and right sides of implant shows a symmetrical pattern. But under 100N eccentric vertical load, loaded side shows much larger stress value. 4. In the 1mm interface, stress distribution among implants tend to have a similar pattern. But under 20N horizontal load apposite side of being loaded shows less stress in IMZ. 5. In the case of screw type implant, stress tends to vary along with screw shape. 6. According to the result determined with microstrain, cancellous bone id generally under the condition of overload, while cortical bone is usually within the limitation of physiologic load. 7. In the Branemark implant, maximum stress to the cortical bone is larger than any other implant except for the condition of 20N horizontal force and 0.05mm interface. 8. Damping effects of implants is maximum in IMZ.

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변형경화형 시멘트 복합체의 인장성능에 따른 끼움벽의 내진성능 (Influence of Strain-Hardening Cement Composite's Tensile Properties on the Seismic Performance of Infill Walls)

  • 차준호;윤현도
    • 콘크리트학회논문집
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    • 제24권1호
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    • pp.3-14
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    • 2012
  • 이 논문에서는 비내진상세 골조의 손상완화능력 향상을 위한 연구의 일환으로 변형경화형 시멘트 복합체 끼움벽의 내진성능을 실험적으로 평가하였다. SHCC의 인장변형능력 및 균열거동 특성이 끼움벽의 전단 거동에 미치는 영향을 구명하기위해 총 3개의 끼움벽 실험체를 제작하여 반복하중 하에서 실험을 실시하였다. 이 연구에서 사용된 시멘트 복합체의 종류는 콘크리트와 SHCC로 하였다. SHCC는 인장 특성에 따른 영향을 검토하기위해 PVA1.3%+PE0.2% 및 PVA0.75%+PE0.75%로 두 종류의 배합조건을 갖도록 계획하였다. 끼움벽의 균열손상 발생 부위를 중앙부로 유도하기위해 모든 끼움벽 실험체의 좌 우측면에 100 mm 깊이의 노치를 설치하였다. 실험 결과, SHCC 끼움벽의 경우 철근 콘크리트 끼움벽에 비해 우수한 균열제어성능을 나타냈으며, 최대하중 도달 시점에서의 층간변위 또한 높게 나타났다. 특히, 초기 경사균열 발생 이후에도 SHCC 내의 보강 섬유간 섬유가교작용에 기인하여 완만한 강성 저하 양상을 나타냈다. 게다가 끼움벽의 균열폭을 기준으로 손상 식별 단계를 분석한 결과, PIW-SHD 실험체가 PIW-SLD 실험체에 비해 약 3배에 해당하는 우수한 내진성능을 나타냈다. 또한 대각 보강근의 변형률 진전 양상을 비교한 결과, 우수한 균열분산 특성에 기인하여 철근에 집중되는 인장응력을 SHCC 매트릭스가 일정 부분 부담하는 것으로 나타났다.

3D 프린팅과 구조해석을 이용한 맨홀의 부양장치 설계 및 제작 (Design and Prototyping of Lifting Devices for Manhole Cover using Structural Analysis and 3D Printing)

  • 이형욱
    • 한국산학기술학회논문지
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    • 제19권10호
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    • pp.648-654
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    • 2018
  • 본 노면에 설치되어있는 맨홀의 지속적인 관리를 위해서는 맨홀의 개폐가 쉬워야 한다. 가혹한 조건하에 있는 맨홀은 틀과 커버가 고착되어 개폐가 어렵기 때문에 맨홀을 열 때 부양이 가능한 맨홀이 요구된다. 본 연구에서는 잠금식 맨홀을 부양식 맨홀로 개선하기 위한 부양 기구의 설계를 진행하였다. 잠금식 맨홀의 기구는 중앙에 위치한 볼트를 돌리면 볼트와 연결된 허브가 하강하고, 허브와 연결되어 있는 후크를 회전시키게 된다. 후크의 끝단이 맨홀 틀에 걸리도록 되어있다. 본 연구에서는 맨홀의 부양이 가능하도록 후크에 보조장치를 설치하도록 하였다. 부양 기능을 수행할 후크의 항복응력의 70%를 기준으로 약 300kg의 부양력을 지지할 수 있도록 구조를 설계하였다. 유한요소법을 이용한 구조해석을 통하여 형상 설계를 수행하였다. 우선 단순화된 2차원 모델로 1차 기초설계를 수행하고, 3차원 모델을 통하여 부착위치와 형상을 설계하였다. 설계된 형상에 대하여 구조적 문제점을 찾아보기 위하여 3D 프린팅을 통하여 축소 모델을 출력하였고, 기능이 작동함을 확인하였다. 최종적으로 가공을 통하여 부양 기구를 제작하여 기존의 잠금식 맨홀에 적용한 결과 평균 6.1 mm 정도의 부양이 가능함을 확인하였다.

하악 구치부에서 임플랜트 배열방식에 따른 임플랜트지지 고정성 국소의치의 광탄성 응력 분석 (PHOTOELASTIC STRESS ANALYSIS OF IMPLANT SUPPORTED FIXED PROSTHESES WITH DIFFERENT PLACEMENT CONFIGURATIONS IN MANDIBULAR POSTERIOR REGION)

  • 조혜원;김난영;김유리
    • 대한치과보철학회지
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    • 제43권1호
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    • pp.120-131
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    • 2005
  • Statement of problem. More than 70% of patients who need the implant supported restoration are parially edentulous. The principles of design for implant supported fixed partial denture in mandibular posterior region are many and varied. Jurisdiction for their use is usually based on clinical evaluation. There are several areas or interest regarding the design of implant supported fixed partial denture in mandibular posterior region. 1) Straight and tripod configuration in implant placement, 2) Two restoration types such as individualized and splinted restorations. Purpose. The purpose of this study was to compare the amount and distribution of stress around the implant fixtures placed in the mandibular posterior region with two different arrangements and to evaluate the effects of splinting using the photoelastic stress analysis. Material & methods. 1) Production of study model: Mandibular partially edentulous model was waxed-up and duplicated with silicone and two models were poured in stone. 2) Fixture installation and photoelastic model construction: Using surveyor(Ney, USh), 3 fixtures(two 4.0 $\times$13 mm, one 5.0$\times$10 mm, Lifecore, USA) were insta)led in straight & tripod configurations. Silicone molds were made and poured in photoelastic resin (PL-2. Measurements group, USA). 3) Prostheses construction: Four 3-unit bridges (Type III gold alloy, Dongmyung co., Korea) were produced with nonhexed and hexed UCLA abutments and fitted with conventional methods. The abutments were tightened with 30 Ncm torque and the static loads were applied at 12 points of the occlusal surface. 4) Photoelastic stress analysis : The polarizer analyzer system with digital camera(S-2 Pro, Fujifilm, Japan) was used to take the photoelastic fringes and analysed using computer analysis program. Results. Solitary hexed UCLA restoration developed different stress patterns between two implant arrangement configurations, but there were no stress transfer to adjacent implants from the loaded implant in both configurations. However splinted restorations showed lesser amount of stresses in the loaded implants and showed stress transfer to adjacent implants in both configurations. Solitary hexed UCLA restoration with tripod configuration developed higher stresses in anterior and middle implants under loading than implants with straight configurations. Splintied 3 unit fixed partial dentures with tripod configuration showed higher stress development in posterior implant under loading but there were no obvious differences between two configurations. Conclusions. The tripod configuration of implant arrangement didn't show any advantages over the straight configuration. Splinting of 3 unit bridges with nonhexed UCLA abutments showed less stress development around the fixtures. Solitary hexed UCLA restoration developed tilting of implant fixture under offset loads.

열-기계적 피로하중을 받는 균열시편 제작시간 단축에 관한 연구 (A Study on the Thermo-Mechanical Fatigue Loading for Time Reduction in Fabricating an Artificial Cracked Specimen)

  • 이규범;최주호;안대환;이보영
    • 한국전산구조공학회논문집
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    • 제21권1호
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    • pp.35-42
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    • 2008
  • 원자력발전소에서는 열교환 파이프에서 발생하는 열피로 균열을 비파괴 탐상장비를 이용하여 조기에 발견하는 것이 안전을 위해 매우 필요하며, 따라서 이를 모사한 인공균열시편 제작에 많은 노력을 기울이고 있다. 그러나 이러한 균열은 일반 기계가공으로 제작하는 것이 불가능하여 실제 조건과 유사한 열 반복하중 하에서 제작될 수밖에 없는데, 이를 위해 많은 시간이 소요된다. 본 연구에서는 크랙성장 시뮬레이션 기법을 이용하여 이러한 균열 제작시간을 단축하기 위한 최적의 열하중 조건을 찾고자 하였다. 이를 위해 임의조건에서 시뮬레이션 및 열피로균열 발생 기초실험을 수행하여 균열 초기수명과 진전수명을 검증하였고, 이를 바탕으로 다양한 가열 및 냉각시간을 시뮬레이션 함으로써 제작시간을 최소화하는 열하중 조건을 구하였다. 시뮬레이션에서는 응력해석을 위해 상용 소프트웨어 ANSYS를 초기균열수명 계산을 위해 수치계산용 소프트웨어 ZENCRACK을 이용하여 코딩을 균열진전수명 평가를 위해 ZENCRACK 소프트웨어를 이용하였다. 그 결과 1mm 균열 제작에 소요되는 시간은 초기의 418시간에서 319시간으로 24% 단축되는 것으로 예측되었다.

지대주 연결 형태와 골질에 따른 저작압이 임프란트 주위골내 응력분포에 미치는 영향 (Study on the stress distribution depending on the bone type and implant abutment connection by finite element analysis)

  • 박현수;임성빈;정진형;홍기석
    • Journal of Periodontal and Implant Science
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    • 제36권2호
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    • pp.531-554
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    • 2006
  • Oral implants must fulfill certain criteria arising from special demands of function, which include biocompatibility, adequate mechanical strength, optimum soft and hard tissue integration, and transmission of functional forces to bone within physiological limits. And one of the critical elements influencing the long-term uncompromise functioning of oral implants is load distribution at the implant- bone interface, Factors that affect the load transfer at the bone-implant interface include the type of loading, material properties of the implant and prosthesis, implant geometry, surface structure, quality and quantity of the surrounding bone, and nature of the bone-implant interface. To understand the biomechanical behavior of dental implants, validation of stress and strain measurements is required. The finite element analysis (FEA) has been applied to the dental implant field to predict stress distribution patterns in the implant-bone interface by comparison of various implant designs. This method offers the advantage of solving complex structural problems by dividing them into smaller and simpler interrelated sections by using mathematical techniques. The purpose of this study was to evaluate the stresses induced around the implants in bone using FEA, A 3D FEA computer software (SOLIDWORKS 2004, DASSO SYSTEM, France) was used for the analysis of clinical simulations. Two types (external and internal) of implants of 4.1 mm diameter, 12.0 mm length were buried in 4 types of bone modeled. Vertical and oblique forces of lOON were applied on the center of the abutment, and the values of von Mises equivalent stress at the implant-bone interface were computed. The results showed that von Mises stresses at the marginal. bone were higher under oblique load than under vertical load, and the stresses were higher at the lingual marginal bone than at the buccal marginal bone under oblique load. Under vertical and oblique load, the stress in type I, II, III bone was found to be the highest at the marginal bone and the lowest at the bone around apical portions of implant. Higher stresses occurred at the top of the crestal region and lower stresses occurred near the tip of the implant with greater thickness of the cortical shell while high stresses surrounded the fixture apex for type N. The stresses in the crestal region were higher in Model 2 than in Model 1, the stresses near the tip of the implant were higher in Model 1 than Model 2, and Model 2 showed more effective stress distribution than Model.