How to control a gripper
The gripper control method uses sensors to detect object presence, measure force, and calculate reference positions to prevent slippage, ensuring stable and precise object handling.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-30
- Publication Date
- 2026-03-27
AI Technical Summary
Existing automated grippers fail to accurately and promptly detect slippage of an object during gripping, leading to potential loss or misplacement of the object during transportation.
A control method for a gripper that includes a proximity sensor to detect the presence of an object, a gripping force sensor to measure applied force, and a pressure center sensor to calculate the reference position, with a processing unit to adjust the gripping force based on sensor feedback to prevent slippage.
The method ensures stable gripping by recognizing the correct object position, detecting slippage, and adjusting the gripping force accordingly, preventing object loss and ensuring precise handling.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a method for controlling a gripper for gripping an object, particularly for robotic applications.
Background Art
[0002] Automated grippers suitable for gripping and transporting objects are well known. Generally, a gripper includes a gripper body and at least two gripper fingers, also referred to as "jaws" in technical terms, which are movable relative to the gripper body between a standby open position and a closed position for gripping an object.
[0003] One problem that plagues automated grippers is timely detecting slippage of an object gripped between the jaws and preventing the object from being lost during transportation or released from the intended exact position.
[0004] For this purpose, grippers equipped with sensors have been proposed.
[0005] The idea of adding a slip measurement function to a prosthetic hand was first considered in the late 1960s. L.L. Salisbury and A.B. Colman, A mechanical hand with automatic proportional control of prehension, describes in 1976 incorporating a piezoelectric crystal into the thumb of a mechanical hand. Baits et al. replicated this device on a two-dimensional gripper shortly thereafter (J. Baits et al., The Feasibility of an Adaptive Control Scheme for Artificial Prehension, Proceedings of the Institution of Mechanical Engineers, 1968).
[0006] In both cases, the objective was to detect vibrations caused by slippage and input the corresponding signals into the manipulator control loop. However, no experimental studies had been conducted to demonstrate the capabilities of such systems equipped with sensors to detect slippage.
[0007] As reported by M. Francomano et al. in "Artificial sense of slide - A review," IEEE Sensors, 2013, many other approaches have been proposed in the following decades. These include one approach that utilizes the center of pressure (CoP). The center of pressure can be reconstructed from an array of piezoresistive pressure sensors (E. Holweg et al., "Slip detection by tactile sensors: algorithms and experimental results," ICRA 1996) or capacitive sensors (X. Zhang and R. Liu, "Slip detection by array-type pressure sensor for a grasp task," ICMA 2021) and can be analyzed in the frequency domain through techniques such as fast Fourier transform (FFT) or power spectrum to evaluate the occurrence of slip. Alternatively, CoP can be measured by a specific sensor that also provides the total applied load (D. Gungji et al., Grasping force control of multi-fingered robot hand based on slip detection using tactile sensor, Journal of the Robotics Society of Japan, 2007). The sensor's voltage output is supplied to the gripper's control circuit, and if a significant drop in this voltage is detected, the clamp increases the applied force. This approach is integrated with a proximity sensor that measures the position of the object being grasped by the gripper (H. Hasegawa et al., Development of Intelligent Robot Hand using Proximity, Contact and Slip sensing, ICRA 2010).
[0008] Slippage can also be inferred using optical sensors. For example, the aforementioned sensors were incorporated into the fingertips of a robotic hand (DLR / HIT) connected to the right arm of a mobile robotic platform (TUM-Rosie) (A. Maldonado et al., Improving robot manipulation through fingertip perception, IROS 2012). The sensors consisted of a small camera and a laser emitter. The fingertips thus equipped enabled the recognition of slippage events when the surface of the grasped object moved relative to the sensored object.
[0009] U.S. Patent No. 8515579 describes a gripper comprising instruments for manipulating a grasped object. The gripper comprises sensors for determining a vector field based on spatially distributed data over time measured at various locations on the grasped object. However, the position of the object is not evaluated prior to the grasping operation.
[0010] Thus, the problem of accurately and promptly detecting slippage of an object gripped by a clamp has not been fully solved. [Overview of the project]
[0011] Therefore, the object of the present invention is to propose a control method for a gripper, particularly a gripper for robotic applications, that can solve this problem.
[0012] The aforementioned objective is achieved by a method for controlling the gripping of an object using the gripper of claim 1, and by the gripper of claim 9.
[0013] Dependent claims describe preferred or advantageous embodiments of control methods and grippers.
[0014] According to a general embodiment, the control method is: Step a) Command the gripper to grip the object with a predetermined gripping force (F1), Step b) Measure the effective gripping force (Fm), Step c) If the difference between the predetermined gripping force and the effective gripping force falls below a predetermined threshold (ThF), calculate the reference position of the gripped object with respect to the reference system integrated with the gripper. Step d) Monitor the position of the grasped object. Step e) If a displacement of the gripped object relative to the reference position is detected, instruct the gripper to increase the gripping force. including,
[0015] In one embodiment, after step e), the method is repeated from step d).
[0016] In one embodiment, the reference position is detected using at least one position sensor and / or at least one pressure center sensor.
[0017] According to one embodiment, the reference position is calculated as the average of a set of measurements obtained at predetermined time intervals by at least one position sensor and / or at least one pressure center sensor.
[0018] In some embodiments, the displacement of the gripped object relative to the reference position is detected when the difference between position data obtained by at least one position sensor and the reference position exceeds a predetermined threshold, and / or when the difference between position data obtained by at least one pressure center sensor and the reference position exceeds a predetermined threshold.
[0019] According to a general aspect of the invention, The gripper body and The gripper body is provided with at least two gripper jaws that are movable between an idle open position and a closed position for gripping an object, A proximity sensor comprising at least one proximity sensor suitable for detecting the presence of an object to be grasped within the field of view of at least one proximity sensor, A gripping force sensor suitable for measuring the gripping force applied to an object by jaws, At least one pressure center sensor suitable for detecting the coordinates of the pressure center between the gripper and Joe when Joe applies a gripping force to an object, A processing unit programmed to execute a method of controlling the gripper, Comprising, The control method is, Step a) Instructing the gripper to grip an object with a predetermined gripping force (F1), Step b) Measuring the effective gripping force (Fm) with a gripping force sensor, Step c) When the difference between the predetermined gripping force and the effective gripping force is less than a predetermined threshold value (ThF), using the measurement values received from at least one position sensor and / or at least one pressure center sensor, calculating the reference position of the gripped object with respect to a reference system integral with the gripper, Step d) Monitoring the position of the gripped object, Step e) When a displacement of the object with respect to the reference position is detected, instructing the gripper to increase the gripping force, Including, A gripper is proposed.
[0020] In one embodiment, the processing unit is programmed to repeat the control method from step d) after executing step e).
[0021] In one embodiment, the processing unit is programmed to calculate the reference position as the average of a set of measurement values obtained at a predetermined time interval by at least one position sensor and / or by at least one pressure center sensor.
Brief Description of the Drawings
[0022] Further features and advantages of the control method and the gripper according to the present invention will become readily apparent from the following description of the preferred embodiments provided purely by way of non-limiting example and with reference to the accompanying drawings.
[0023] [Figure 1] The gripper is schematically shown. [Figure 2] Figure 1 shows the gripper in a modified form having two proximity sensors. [Figure 3] This is a flowchart of the method for controlling the gripping of an object according to the present invention. [Figure 4] This is a diagram of a state machine that implements a control method. [Figure 5] This is a variation of the state machine diagram in Figure 4.
[0024] In these drawings, the gripper for grasping an object according to the present invention is schematically shown as a whole by reference numeral 1. [Modes for carrying out the invention]
[0025] The gripper 1 comprises a gripper body 10 and at least two gripper jaws 12 that are movable between an open position (not moving) and a closed object-gripping position relative to the gripper body 10.
[0026] Jaw 12 can be moved by electric, hydraulic, pneumatic actuators, or a combination thereof.
[0027] The gripper 1 is equipped with at least one proximity sensor 14. The proximity sensor 14 is suitable for detecting the presence of an object to be grasped within the field of view 14' of the proximity sensor 14.
[0028] For example, the proximity sensor 14 is positioned between the two jaws 12, so as to point, for example, a cone-shaped field of view 14' at it.
[0029] In the embodiment shown in Figure 2, the gripper 1 is equipped with two proximity sensors 14 to expand the gripper's field of view.
[0030] The gripper 1 further includes a gripping force sensor 16 ("FS") suitable for measuring the gripping force applied to an object by the jaws 12, and at least one pressure center sensor 18 ("CoPS") suitable for detecting the coordinates of the pressure center ("CoP") between the jaws 12 of the gripper when the jaws exert a gripping force on an object.
[0031] In one embodiment, the force sensor 16 and the pressure center sensor 18 are the same.
[0032] The gripper 1 is controlled by the processing unit 20. The processing unit 20 is operably connected to a proximity sensor 14, a gripping force sensor 16, a pressure center sensor 18, and a jaw drive means 12, and is programmed to perform a method for controlling the gripper based on information received from the sensors.
[0033] The processing unit 20 may be located inside the gripper body 10 or outside the gripper 1.
[0034] The control method described below enables gripper 1 to stably grip an object and avoid slippage when holding the object between the jaws.
[0035] The following definitions will be used in the remainder of this explanation.
[0036] Fm: Gripping force measured by the gripping force sensor
[0037] F1, F2: Determined values for the desired gripping force.
[0038] ThF: The threshold of gripping force below which gripping is considered stable.
[0039] ThPos1, ThPos2: Threshold values for positions detected by proximity sensors.
[0040] ThCoP: Threshold of the center of pressure
[0041] As described above, in one embodiment, at least one pressure center sensor 18 is identical to the gripping force sensor 16. In this case, the effective gripping force (Fm) sensor can also measure torque. In fact, considering the X, Y, and Z axes as shown in the figure, the processing unit 20 measures the CoP of the pressure center. X Coordinates and CoP Y The program is designed to calculate the coordinates as follows:
[0042]
number
[0043] Here, M X and M Y As shown in the figure, |Z| represents the measured moment of the effective gripping force sensor (Fm) along the X and Y axes, respectively, and |Z| represents the absolute value of the effective gripping force (Fm) along the Z axis.
[0044] In one embodiment, the proximity sensor 14 is an ultrasonic or infrared sensor.
[0045] In one embodiment, the force sensor 16 and / or the pressure center sensor 18 are formed using a capacitive sensor unit array and / or a force / torque sensor to form a tactile skin.
[0046] Referring to the flowchart in Figure 3, in one embodiment, the method for controlling the gripper includes the following steps.
[0047] The gripper monitors the gripping area using a proximity sensor 14 to detect the presence of the object to be gripped (step 100).
[0048] When an object is detected, the position of the object to be grasped (Pos) is compared with a predetermined grasping position (Pos1) (step 102). The predetermined grasping position can be defined as the position that the object must take in order to be properly grasped.
[0049] If the distance between the object's position (Pos) and the gripping position (Pos1) falls below a predetermined threshold (ThPos1), the gripper is commanded to grip the object with a predetermined gripping force F1 (step 104).
[0050] Next, the effective gripping force (Fm) is measured (step 106). The gripping force sensor 16 may be used to measure the actual gripping force (Fm).
[0051] Next, the predetermined gripping force (F1) and the effective gripping force (Fm) are compared (step 107).
[0052] If the difference between a predetermined gripping force (F1) and the effective gripping force (Fm) falls below a predetermined threshold (ThF), the reference position (or "zero" position) of the object to be gripped relative to the reference system integrated with the gripper is calculated (step 108).
[0053] Next, the position of the grasped object is monitored as it is transported from the pickup position to the release position (step 110).
[0054] If a displacement of the object from a reference position is detected (step 112), the gripper is commanded to increase the gripping force, for example, to a second predetermined gripping force value (F2) (step 114).
[0055] Depending on the application, it may not be necessary to monitor the gripping area or compare the position (Pos) of the object to be gripped with a predetermined gripping position (Pos1). In these cases, the control method provides, as a first step, to directly grip the object with a predetermined gripping force F1 (step 104).
[0056] In one embodiment, after increasing the gripping force, the reference position of the object is monitored again. If further displacement is detected, the gripping force is increased further. This closed-loop control may be repeated several times until the gripper reaches the release position of the object.
[0057] In some embodiments, the gripping force is increased continuously, for example, through PID control. In these embodiments, for example, the gripper includes proportional control means controllable by a processing unit to continuously control the gripping force.
[0058] In one embodiment, the reference position is detected by one or more position sensors, such as the proximity sensor 14, and / or the pressure center sensor 18.
[0059] In one embodiment, the reference position is calculated as the average of a set of measurements taken from at least one position sensor and / or at least one pressure center sensor at predetermined time intervals of, for example, 1 or 2 seconds.
[0060] For example, if the difference between position data obtained from at least one position sensor and the reference position is greater than a predetermined threshold, and / or if the difference between position data obtained from at least one pressure center sensor and the reference position is greater than a predetermined threshold, the displacement of the object relative to the reference position is detected.
[0061] In one embodiment, the control method described above is implemented using a finite state machine, the state diagram of which is shown in Figures 4 and 5.
[0062] The five states are as follows:
[0063] -State 1- Idle. The gripper jaws 12 are open and no action is performed. The proximity sensor 14 constantly monitors the gripping area to detect the object to be gripped.
[0064] -State 2-Gripping. The processing unit 20 generates the desired force level F1. The gripper grips the object, but a stable grip has not yet been achieved, i.e., |F1-Fm| > ThF.
[0065] -State 3- Zero calculation. The object's reference position (zero) is calculated.
[0066] -State 4- Holding. The gripper grasps the object and checks whether the grip is stable.
[0067] -State 5- Tightening. The desired force level F2 is generated by the processing unit 20. The gripper increases the force applied to the object to prevent it from slipping.
[0068] In one embodiment shown in Figure 4, the transition conditions between states are described below.
[0069] - An object is detected. The position of the object between the grippers is below a certain threshold such that Pos < ThPos1. In some embodiments, other parameters (e.g., the variance of the Pos quantity) may also be evaluated.
[0070] -Stable grip. The gripping force is considered stable, meaning |F1-Fm| < ThF.
[0071] -zero is calculated. The "zero" position is calculated when the gripping force is stable. In some embodiments, the zero position is the average of a number of samples obtained from proximity sensors and / or pressure center sensors over a predetermined time interval, such as 1 or 2 seconds.
[0072] -Object movement is detected-.Movement of the grasped object is detected when the norm of the object's position and / or CoP vector deviates from the "zero" reference position, i.e., (Pos-Zero) > ThPos2 and / or (||CoP||-Zero) > ThCoP.
[0073] - A release is requested. The gripper is commanded to release the object. This occurs when the gripping motion is completed. This condition can occur regardless of state 4, i.e., even if no displacement of the object from the reference position is detected.
[0074] In the embodiment shown in Figure 5, the following additional transition conditions are also indicated.
[0075] - Failure of stable grip: If the gripping force is considered unstable, i.e., |F1-Fm| > ThF, the state machine returns to idle state 1.
[0076] - Zero calculation failure: If the calculation of the "zero" position does not complete successfully, the gripping device will not continue the operation of gripping and moving the workpiece. The gripping operation then needs to be restarted. The user may restart it manually, or the robot system may be programmed to restart from idle state 1 and automatically resume the gripping operation. For example, if the zero calculation is successful, the indicator light on the control monitor will light up. If the light remains off for a user-definable period, for example 10 seconds, the gripping operation will restart from the beginning.
[0077] Therefore, the following becomes possible with the grasping control algorithm:
[0078] - Recognize that the object is in the correct position for grasping.
[0079] - Recognize when the gripped object is properly held between the gripper jaws.
[0080] - To prevent the object from slipping, it recognizes whether the gripped object is moving.
[0081] Therefore, the algorithm controls the gripper from the step of confirming the presence of an object between its jaws, and thus before initiating the actual gripping motion, until the completion of the aforementioned gripping motion.
[0082] In idle mode, the gripper does nothing and "waits" until it initiates a gripping action. If the object's position is deemed correct, that is, if the proximity sensor output is within the acceptable range, the gripper is commanded to grip the object.
[0083] Before moving to the next state, the stability of the grip is confirmed. Stability is ensured by controlling the measured force. The measured force must be close to the desired force (F1).
[0084] When this happens, the reference position is calculated while the object is stably gripped between the gripper jaws. For this purpose, the object's position is observed at predetermined time intervals, such as a few seconds. The reference position, or "zero," can be calculated as the average of the corresponding number of measurements taken. The reference position is then used in the "hold" state, and possibly also in the "tighten" state.
[0085] In fact, in the "holding" state, the movement of the object relative to the zero reference position calculated in this way will be compensated by increasing the gripping force to a second level F2. A closed-loop force control algorithm is used for this purpose.
[0086] Multiple transitions can occur during which the motion of an object is detected, and even if multiple force levels are large relative to the second force level F2, this can be compensated for by repeatedly creating a "tightening" state.
[0087] In one embodiment, the "zero" position is calculated as follows:
[0088]
number
[0089] Here, CoP k n is a vector containing the two components of CoP at instant k, and n is the CoP accumulated at a fixed time interval. k This is the total number of values, and it is also user-definable. Regardless of the length of the observation window, which is composed of the k-norm values of the CoP, the gripping device must wait until these values are collected to calculate the zero position. Therefore, the zero position is updated with each new gripping operation.
[0090] Once the zero position becomes available, the algorithm provides gripping (holding) of the workpiece. Only at this point does the processing unit of the gripping device evaluate the possibility of workpiece slippage moment by moment.
[0091] In one embodiment, the norm D of the difference vector between CoP and the zero position is evaluated against a predetermined threshold. Mathematically, this is expressed as follows:
[0092]
number
[0093]
number
[0094]
number
[0095] CoP i This is defined as the CoP value at the i-th instant after the zero position is calculated. A transition occurs in which the motion of the object is detected as a result of the detected slip of the gripped workpiece, only if D exceeds a predefined threshold.
[0096] The proposed control method achieves its intended purpose.
[0097] Current gripping systems do not verify whether the gripped object is stably held. The object is lifted and held without knowing whether the applied force matches the desired force (see, for example, Costanzo et al., 2000). The control method according to the present invention solves this problem by verifying whether the effective gripping force is close to a predetermined gripping force (stable gripping transition: |F1-Fm| < ThF).
[0098] Current gripping systems do not calculate the reference position of the gripped object (see, for example, Hasegawa et al., 2010). This can lead to uncertainty in gripping. The present invention solves this problem by calculating the reference position of the object when it is stably gripped. This position, once calculated, does not change during the operation of the gripper.
[0099] In gripping systems of the technical level, when the center of pressure is used to detect slippage, the center of pressure is measured by an additional sensor with a voltage output (see, for example, Hasegawa et al., 2010). In a preferred embodiment, the present invention solves this problem by measuring both the gripping force and the center of pressure (CoP) by the same sensor.
[0100] The control method according to the present invention makes it possible to recognize when an object is in the correct position for being grasped.
[0101] By detecting the center of pressure, it is possible to identify the location where the applied pressure is concentrated.
[0102] In the proposed control method, the reference position of the gripped object is calculated and the displacement relative to that reference position is detected only when the object is stably gripped.
[0103] The method according to the present invention recognizes when an object moves from a reference position and applies force correction accordingly.
[0104] Those skilled in the art may make several modifications, adjustments, adaptations, and substitutions of elements with other functionally equivalent elements to embodiments of the method for controlling the gripping of an object and the gripper according to the present invention to satisfy incidental requirements. Each feature described as belonging to a possible embodiment may be obtained independently of other described embodiments.
Claims
1. A method for controlling the gripping of an object using a gripper, Step a) Command the gripper to grip the object with a predetermined gripping force (F1), Step b) Measure the effective gripping force (Fm). Step c) If the difference between the predetermined gripping force and the effective gripping force falls below a predetermined threshold (ThF), calculate the reference position of the gripped object with respect to the reference system integrated with the gripper. Step d) Monitor the position of the grasped object, Step e) If a displacement of the gripped object relative to the reference position is detected, instruct the gripper to increase the gripping force. Includes, The aforementioned reference position is detected using at least one position sensor and / or at least one pressure center sensor. The reference position is calculated as the average of a set of measurements obtained at predetermined time intervals by the at least one position sensor and / or the at least one pressure center sensor. method.
2. After step e), the method is repeated from step d). The method according to claim 1.
3. A method for controlling the gripping of an object using a gripper, Step a) Command the gripper to grip the object with a predetermined gripping force (F1), Step b) Measure the effective gripping force (Fm). Step c) If the difference between the predetermined gripping force and the effective gripping force falls below a predetermined threshold (ThF), calculate the reference position of the gripped object with respect to the reference system integrated with the gripper. Step d) Monitor the position of the grasped object, Step e) If a displacement of the gripped object relative to the reference position is detected, instruct the gripper to increase the gripping force. Includes, The aforementioned reference position is detected using at least one position sensor and / or at least one pressure center sensor. When the aforementioned reference position is calculated using at least one pressure center sensor, The sensor for detecting the effective gripping force is used as the pressure center sensor. The sensor for detecting the effective gripping force is suitable for performing torque measurement. The CoP X and CoP Y coordinates of the pressure center are: [Math 1] It is calculated as follows: MX and MY are the measured moments of the effective gripping force (Fm) applied to the X and Y axes, respectively. |F Z| is the absolute value of the effective gripping force (Fm) along the Z-axis. method.
4. If the difference between the position data obtained by the at least one position sensor and the reference position exceeds a predetermined threshold, and / or if the difference between the position data obtained by the at least one pressure center sensor and the reference position exceeds a predetermined threshold, the displacement of the gripped object relative to the reference position is detected. The method according to any one of claims 1 to 3.
5. Before step a), A step of monitoring the gripping area to detect the presence of the object to be gripped, A step of comparing the position of the object to be grasped with a predetermined grasping position, There is, The predetermined gripping position is the position that the object must take in order to be gripped. Step a) is performed if the distance between the position of the object and the gripping position falls below a predetermined threshold. The method according to any one of claims 1 to 4.
6. During step e), the increase in gripping force is continuously performed. The method according to any one of claims 1 to 5.
7. It is a gripper, The gripper body and The gripper body is provided with at least two gripping jaws that are movable between an idle open position and a closed position for gripping an object, At least one position sensor, the at least one position sensor suitable for detecting the presence of the object to be grasped within the field of view of the at least one position sensor, A gripping force sensor suitable for measuring the gripping force applied to the object by the gripping jaws, A pressure center sensor suitable for detecting the coordinates of the pressure center between the gripping jaws when the gripping jaws are applying a gripping force to the object, A processing unit programmed to perform the gripper control method described above, Equipped with, The control method described above is Step a) Command the gripper to grip the object with a predetermined gripping force (F1), Step b) Measure the effective gripping force (Fm) using the gripping force sensor. Step c) If the difference between the predetermined gripping force and the effective gripping force falls below a predetermined threshold (ThF), the reference position of the gripped object relative to a reference system integrated with the gripper is calculated using the measurements received from the at least one position sensor and / or the at least one pressure center sensor. Step d) Monitor the position of the grasped object, Step e) If a displacement of the object relative to the reference position is detected, instruct the gripper to increase the gripping force. Includes, The processing unit is programmed to calculate the reference position as the average of a set of measurements obtained at predetermined time intervals by the at least one position sensor and / or the at least one pressure center sensor. Grippa.
8. The processing unit is programmed to repeat the control method from step d) after performing step e). The gripper according to claim 7.
9. A gripper, The gripper body and The gripper body is provided with at least two gripping jaws that are movable between an idle open position and a closed position for gripping an object, At least one position sensor, the at least one position sensor suitable for detecting the presence of the object to be grasped within the field of view of the at least one position sensor, A gripping force sensor suitable for measuring the gripping force applied to the object by the gripping jaws, A pressure center sensor suitable for detecting the coordinates of the pressure center between the gripping jaws when the gripping jaws are applying a gripping force to the object, A processing unit programmed to perform the gripper control method described above, Equipped with, The control method described above is Step a) Command the gripper to grip the object with a predetermined gripping force (F1), Step b) Measure the effective gripping force (Fm) using the gripping force sensor. Step c) If the difference between the predetermined gripping force and the effective gripping force falls below a predetermined threshold (ThF), the reference position of the gripped object relative to a reference system integrated with the gripper is calculated using the measurements received from the at least one position sensor and / or the at least one pressure center sensor. Step d) Monitor the position of the grasped object, Step e) If a displacement of the object relative to the reference position is detected, instruct the gripper to increase the gripping force. Includes, The at least one pressure center sensor is the same as the gripping force sensor, The gripping force sensor is suitable for performing torque measurement. The processing unit has a pressure center CoP X and CoP Y The coordinates, [Math 2] It is programmed to calculate as follows: M X and M Y These are the measured moments of the effective gripping force (Fm) applied to the X and Y axes, respectively. | F Z | represents the absolute value of the effective gripping force (Fm) along the Z-axis. Grippa.
10. The at least one position sensor is an ultrasonic or infrared sensor. A gripper according to any one of claims 7 to 9.
11. The gripping force sensor and / or the pressure center sensor are formed, for example, using a capacitive sensor unit array and / or a force / torque sensor, in order to provide tactile skin. A gripper according to any one of claims 7 to 10.
12. The processing unit also, Using the at least one position sensor, the gripping area is monitored to detect the presence of the object to be gripped. The position of the object to be grasped is compared with a predetermined grasping position. Programmed, The predetermined gripping position is the position that the object must take in order to be gripped. The processing unit is programmed to command the gripper to grip the object with a predetermined gripping force (F1) when the distance between the object's position and the gripping position falls below a predetermined threshold. A gripper according to any one of claims 7 to 11.
13. The processing unit includes proportional control means capable of commanding the continuous control of the gripping force. A gripper according to any one of claims 7 to 12.
Citation Information
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