• 제목/요약/키워드: Dynamic cutting force

검색결과 105건 처리시간 0.02초

신경회로망을 이용한 밀링 공정의 진동 예측 (Vibration Prediction in Milling Process by Using Neural Network)

  • 이신영
    • 한국공작기계학회논문집
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    • 제12권5호
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    • pp.1-7
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    • 2003
  • In order to predict vibrations occurred during end-milling processes, the cutting dynamics was modelled by using neural network and combined with structural dynamics by considering dynamic cutting state. Specific cutting force constants of the cutting dynamics model were obtained by averaging cutting forces. Tool diameter, cutting speed, fled, axial and radial depth of cut were considered as machining factors in neural network model of cutting dynamics. Cutting farces by test and by neural network simulation were compared and the vibration displacement during end-milling was simulated.

진동절삭을 이용한 고정도 미세가공 (High-precision Micro-machining using Vibration Cutting)

  • 손성민;임한석;안중환
    • 한국정밀공학회지
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    • 제16권3호통권96호
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    • pp.72-77
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    • 1999
  • This paper presents 2-dimensional vibration cutting increases dynamic stiffness of tool support and improves the quality of machined surface in micro-machining. 2-dimensional vibration cutting is generated by two piezo actuators arranged orthogonally. A sine-type voltage is input to one actuator and a phase-shifted sine-type voltage is input the other. Then the vibration device actuates the tool in a 2-D elliptical motion with pulsed cutting force. It is a characteristic of 2-D vibration cutting that some negative thrust force occurs as the direction of friction on a tool rake surface is reversed. It helps not only chip flow smoothly and continuously but also cutting force be reduced. The quality of machined surface by 2-D vibration cutting depends on such parameters as vibration amplitude, frequency, cutting speed, depth of cut, etc. Compared to conventional cutting through tool path simulation and experiments under several conditions, the 2-D vibration cutting is verified to bring forth a great decrease of cutting forces, much better surface roughness and moreover much less burr.

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고속 엔드밀 가공시 동적 모델에 의한 표면형상 예측 (Prediction of Surface Topography by Dynamic Model in High Speed End Milling)

  • 이기용;하건호;강명창;이득우;김정석
    • 대한기계학회논문집A
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    • 제24권7호
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    • pp.1681-1688
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    • 2000
  • A dynamic model for the prediction of surface topography in high speed end milling process is developed. In this model the effect of tool runout, tool deflection and spindle vibration were taken in to account. An equivalent diameter of end mill is obtained by finite element method and tool deflection experiment. A modal parameter of machine tool is extracted by using frequency response function. The tool deflection, spindle vibration chip thickness and cutting force were calculated in dynamic cutting condition. The tooth pass is calculated at the current angular position for each point of contact between the tool and the workpiece. The new dynamic model for surface predition are compared with several investigated model. It is shown that new dynamic model is more effective to predict surface topography than other suggested models. In high speed end milling, the tool vibration has more effect on surface topography than the tool deflection.

자동회귀-이동평균(ARMA) 모델에의한 초음파 진동 절삭 공정의 해석

  • 최인휴;김정두
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 1993년도 춘계학술대회 논문집
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    • pp.160-165
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    • 1993
  • The cutting mechanism of ultrasonic vibration machining is characterized as two phases, that is an impact at the cutting edge and a reduction of cutting force due to non-contact interval between tool and workpiece. In this paper, in order to identfy cutting dynamics of a system with ultrasonically vibrated cutting tool, an ARMA modelling is performed on experimental cutting force signals which have a dominant effect on cutting dynamics. The aim of this study is, through Dynamic Data System methodology, to find the inherent characteristics of an ultrasonic vibration cutting process by considering natural frequencyand damping coefficient. Surface roughness and stability of cutting process under ultrasonic vibration are also considered

밀링 작업에서 순간 전단면에 기초한 절삭력 모델에 관한 연구 (A Study on the Instantaneous Shear Plane Based Cutting Force Model for End Milling)

  • 홍민성
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 2002년도 춘계학술대회 논문집
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    • pp.225-260
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    • 2002
  • The purpose of this paper is to further extend the theoretical understanding of the dynamic end milling process and to derive a computational model to predict the milling force components. A comparative assessment of different cutting force models is performed to demonstrate that the instantaneous shear plane based formulation is physically sound and offers the best agreement with experimental results. The procedure for the calculation of the model parameters used in the cutting force model, based on experimental data, has been presented. The validity of the proposed computational model has been experimentally verified through a series of cutting tests.

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절삭력 진동 분석에 의한 가공조건 모니터링 (Monitoring Machining Conditions by Analyzing Cutting-Force Vibration)

  • 박춘광;김주완;김진오;신요안
    • 대한기계학회논문집A
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    • 제39권9호
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    • pp.839-849
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    • 2015
  • 본 논문은 밀링가공에서 측정되는 절삭력 진동을 분석함으로써 가공조건을 모니터링하는 실험적 기술을 다룬다. 이 기술은 앞서 보고된 절삭력 진동의 이송속도 및 절삭깊이와의 관계에 근거한다. 측정 시스템은 동적 힘 센서와 신호 증폭기로 구성되고, 분석 시스템은 오실로스코프와 LabVIEW 프로그램을 갖춘 컴퓨터를 포함한다. 가공조건 중 회전속도를 일정하게 하고 이송속도와 절삭깊이를 변화시키며 실험하였다. 절삭날 수와 회전 진동수의 곱에 해당하는 절삭력 진동 성분의 크기가 가공조건과 선형으로 관계되었다. 이로써 이송속도와 절삭깊이 중 한 가지 가공조건을 알 때 절삭력 진동 분석을 통해 다른 한 가지 가공조건을 확인할 수 있다.

엔드밀링가공시 과도 영역에서의 안정성 평가 (Stability Analysis in Transient Cut during Endmilling)

  • 강석재;조동우
    • 한국정밀공학회지
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    • 제18권3호
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    • pp.195-204
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    • 2001
  • Virtual computer numerical control(VCNC) arises from the concept that one can experience pseudo-real machining with a computer-numerically-controlled(CNC) machine before actually cutting an object. To achieve accurate VCNC, it is important to determine abnormal behavior, such as chatter, before cutting. Detecting chatter requires an understanding of the dynamic cutting force model. In general, the cutting process is a closed loop system that consists of structural and cutting dynamics. Machining instability, namely chatter, results from the interaction between these two dynamics. Several previous reports have predicted stability for a single path, using a simple cutting force model without tool runout and penetration effects. This study considers both tool runout and penetration effects, using experimental modal analysis, to obtain more accurate predictions. The machining stability in the corner cut, which is a typical transient cut, was assessed from an evaluation of the cutting configurations at the corner.

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스트레인게이지 타입 회전형 공구동력계 개발과 3축 정적 하중 검증 (Development of Strain-gauge-type Rotational Tool Dynamometer and Verification of 3-axis Static Load)

  • 이동섭;김인수;이세한;왕덕현
    • 한국기계가공학회지
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    • 제18권9호
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    • pp.72-80
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    • 2019
  • In this task, the tool dynamometer design and manufacture, and the Ansys S/W structural analysis program for tool attachment that satisfies the cutting force measurement requirements of the tool dynamometer system are used to determine the cutting force generated by metal cutting using 3-axis static structural analysis and the LabVIEW system. The cutting power in a cutting process using a milling tool for processing metals provides useful information for understanding the processing, optimization, tool status monitoring, and tool design. Thus, various methods of measuring cutting power have been proposed. The device consists of a strain-gauge-based sensor fitted to a new design force sensing element, which is then placed in a force reduction. The force-sensing element is designed as a symmetrical cross beam with four arms of a rectangular parallel line. Furthermore, data duplication is eliminated by the appropriate setting the strain gauge attachment position and the construction of a suitable Wheatstone full-bridge circuit. This device is intended for use with rotating spindles such as milling tools. Verification and machining tests were performed to determine the static and dynamic characteristics of the tool dynamometer. The verification tests were performed by analyzing the difference between strain data measured by weight and that derived by theoretical calculations. Processing test was performed by attaching a tool dynamometer to the MCT to analyze data generated by the measuring equipment during machining. To maintain high productivity and precision, the system monitors and suppresses process disturbances such as chatter vibration, imbalances, overload, collision, forced vibration due to tool failure, and excessive tool wear; additionally, a tool dynamometer with a high signal-to-noise ratio is provided.

선삭가공에 있어서 채터진동의 인프로세스 검출에 관한 연구 (I) (A Study on In-Process Detection of Chatter Vibration in a Turning Process)

  • 구연욱;정의식;남궁석
    • 한국정밀공학회지
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    • 제8권3호
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    • pp.73-81
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    • 1991
  • There have been many studies on chatter vibration in machining but there seems to be no regulations to decide the commencing point of chatter objectively. The development of an objective method which can estimate and detect chatter commencement is very much in need for automatic manufacturing systems, dynamic performance tests for machine tools, so on. In this study, therefore, the estimation and the in-process detection of chatter have been experi- mentally investigated for the turning process. As a result, the commencing point of chatter can be decided from the behavior of the maximum amplitude of the dynamic component of cutting force, where the maximum amplitude is suddenly increasing with the chatter commencement. Then the commencing point of chatter can be estimated practically by this method before the occurrence of excessive vibration. Also, it is possible to detect the occurence of chatter vibration through the in-process measurement, by monitoring the maximum amplitude of the dynamic component of cutting force.

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이송속도의 주기적 변화를 이용한 듀랄루민재의 심공가공 특성 (Chatacteristics of Deep Hole Machining for Duralumin Using Periodical Change of Feedrate)

  • 김용제
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 2000년도 춘계학술대회논문집 - 한국공작기계학회
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    • pp.240-245
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    • 2000
  • This paper presents the experimental study of drilling for duralumin A2024 with intermittently decelerated feed rate. It is achieved through a programmed periodic increase and decrease in the feed rate using a machining center. The following experimental result were performed with the objective of solving chip to disposal problems. In conventional drilling of aluminum, long continuous chips are produced that wind around the drill causing difficulties in eliminating chips from the cutting zone. In order to acquire the basic data necessary to regulate the chip profile, the relationship between cutting variables and chip shape was investigated. The following conclusions are established from the experimental results. At a suitable feed fluctuation ratio, intermittently decelerated feed drilling proved successful in breaking chips to appropriate lengths while maintaining stable cutting. Thus, it is an effective method for improving chip disposal. The amplitude of the dynamic component of cutting force in intermittent feed frilling is influenced by the feed fluctuation ratio.

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