Force sense presenting apparatus
Granted 1 Mar 2022 · no office action yet
Assignee: ARACHNOFORCE CO., LTD.
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Attorney: Attorney · Log in to unlock
Inventors: Kenji Honda, Makoto Sato · Examiner: William Lu · AU 2624 · TC 2600
Life of the application
7 dated eventsAbstract
In a force sense presenting apparatus having a right-hand force sense presenting unit and a left-hand force sense presenting unit, one side of an upper frame of the right-hand force sense presenting unit is linearly coupled to the one side of the upper frame of the left-hand force sense presenting unit. A right-hand rear-coupled frame couples an approximately middle location of the upper frame in the right-hand force sense presenting unit to one side of a lower frame in the right-hand force sense presenting unit so that the upper frame and the lower frame are approximately T-shaped viewed from above. A left-hand rear-coupled frame couples an approximately middle location of the upper frame in the left-hand force sense presenting unit to the one side of the lower frame in the left-hand force sense presenting unit so that the upper frame and the lower frame are approximately T-shaped viewed from above.
Description
8 parts›TECHNICAL FIELD
The present invention relates to a wearable force sense presenting apparatus for wrists.
›BACKGROUND TECHNOLOGY
Recently, due to the development of head mounted displays (HMDs), an image of a virtual reality (VR) space is displayed right in front of a person, so that the person can feel as if he were in the VR space. That is, the HMD is a wearable visible apparatus mounted on the head of the person, where only the video information of the VR space is displayed while shutting out external information, so that the person can be absorbed in the VR space without seeing the external information.
In order to realize an experience for feeling the VR space as a real world, a force sense presenting apparatus (haptic interface) is required to provide a force sense for touching a virtual object or feeling the weight of the virtual object. Thus, the person enters the VR space using the two senses, i.e., the visible sense and the force sense, so that the person can intuitively operate and feel the virtual object in the VR space.
FIG. 12 is an overall perspective view illustrating a prior art force sense presenting apparatus (see: Patent Literature 1). In FIG. 12 , the force sense presenting apparatus is constructed by a right-hand force sense presenting unit and a left-hand force sense presenting unit symmetrically coupled by a rear-side coupling frame FR. Each of the right-hand force sense presenting unit and the left-hand force sense presenting unit is constructed by an end effector 1 R or 1 L having first, second, third and fourth wire contact points PAR, PBR, PCR and PDR, or PAL, PBL, PCL and PDL; an upper frame F 1 R or F 1 L and a lower frame F 2 R or F 2 L above and below of the end effector 1 R or 1 L; first and second motors M 1 R and M 2 R, or M 1 L and M 2 L on one side and the other side of the upper frame F 1 R or F 1 L; third and fourth motors M 3 R and M 4 R, or M 3 L and M 4 L on one side and the other side of the upper frame F 1 R or F 1 L; fifth and sixth motors M 5 R and M 6 R, or M 5 L and M 6 L on one side and the other side of the lower frame F 2 R or F 2 L; seventh and eighth motors M 7 R and M 8 R, or M 7 L and M 8 L on one side and the other side of the lower frame F 2 R or F 2 L; first and second wires W 1 R and W 2 R, or W 1 L and W 2 L connected between the wire exits of the first and second motors M 1 R and M 2 R, or M 1 L and M 2 L and the first wire contact point PAR or PAL; third and fourth wires W 3 R and W 4 R, or W 3 L and W 4 L connected between the wire exits of the third and fourth motors M 3 R and M 4 R, or M 3 L and M 4 L and the second wire contact point PBR or PBL; fifth and sixth wires W 5 R and W 6 R, or W 5 L and W 6 L connected between the wire exits of the fifth and sixth motors M 5 R and M 6 R, or M 5 L and M 6 L and the third wire contact point PCR or PCL; seventh and eighth wires W 7 R and W 8 R, or W 7 L and W 8 L connected between the wire exits of the seventh and eighth motors M 7 R and M 8 R, or M 7 L and M 8 L and the fourth wire contact point PDR or PDL, so that the end effector 1 R of the right-hand force sense presenting unit and the end effector 1 L of the left-hand force sense presenting unit can cooperate with each other. In FIG. 12 , note that reference numeral 1 designates a user, and reference numeral 2 designates an HMD.
According to the prior art force sense presenting apparatus of FIG. 12 , the end effector 1 R of the right-hand force sense presenting unit and the end effector 1 L of the left-hand force sense presenting unit can cooperate with each other, to thereby give force sense to both hands of the user, thus realizing a wearable force sense presenting apparatus.
›PROCEEDING TECHNOLOGY LITERATURES
Patent Literature
Patent Literature 1: Japanese Patent Publication No. 2016-207005
›SUMMARY OF THE INVENTION
Problems to be Solved by the Invention
The above-mentioned prior art force sense presenting apparatus of FIG. 12 , however, has the following problems.
FIG. 13 is a perspective view illustrating the frames F 1 R, F 2 R, F 1 L and F 2 L of the force sense presenting apparatus of FIG. 12 , and FIG. 14 is for explaining the distances between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L of FIG. 13 , where (A) is a plan view and (B) is a right-side view. In FIG. 14 , the frames F 1 R, F 2 R, F 1 L and F 2 L are slanted by only 10° with respect to the normal direction. Thus, the force sense presenting apparatus is easily mounted on the user. In FIG. 14 , the distances between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L are 54 cm. In FIGS. 13 and 14 , note that an H-shaped front-side coupling frame FF is added to the frames F 1 R, F 2 R, F 1 L and F 2 L of FIG. 12 to maintain the overall rigidity.
FIG. 15 illustrates force sense presenting regions in which the force sense can be represented from all the directions in the case of the distances between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L, where (A) is a plan view and (B) is a right-side view. As illustrated in FIG. 15 , since the frames F 1 R, F 2 R, F 1 L and F 2 L are slanted by 10° toward the up direction, the force sense presenting regions are constructed by two 10°-slanted rectangular parallelepipeds with a size of 38.18 cm×38.18 cm×72.68 cm.
In FIG. 15 , a region defined by −21.32 cm <x<21.32 cm around the center (x=0) of the user is deviated from the force sense presenting regions. Therefore, there is a problem in that the efficiency of presenting the force sense is low.
Also, the frame structure is of a large size of about 40 cm×120 cm×70 cm, so that there is another problem in that the force sense presenting apparatus is large in size. As a result, a helper would be required when the force sense presenting apparatus is mounted on the user.
Means for Solving the Problems
In order to solve the above-mentioned problems, in a force sense presenting apparatus having a right-hand force sense presenting unit and a left-hand force sense presenting unit, one side of an upper frame of the right-hand force sense presenting unit is linearly coupled to the one side of the upper frame of the left-hand force sense presenting unit. The force sense presenting apparatus is constructed by a right-hand rear-coupled frame coupling an approximately middle location of the upper frame in the right-hand force sense presenting unit to one side of a lower frame in the right-hand force sense presenting unit so that the upper frame and the lower frame in the right-hand force sense presenting unit are approximately T-shaped viewed from the top, and a left-hand rear-coupled frame coupling an approximately middle location of the upper frame in the left-hand force sense presenting unit to the one side of the lower frame in the left-hand force sense presenting unit so that the upper frame and the lower frame in the left-hand force sense presenting unit are approximately T-shaped viewed from the top, thus making the end effector of the right-hand force sense presenting unit and the end effector of the left-hand force sense presenting unit cooperate with each other.
Effect of the Invention
According to the present invention, since the center region of the user can be also an effective force sense presenting region, the efficiency of presenting the force sense can be increased. Also, since the frame structure can be small in size, a small-sized and lighter force sense presenting apparatus can be realized. Therefore, the mounting of the force sense presenting apparatus can be easily carried out without a helper.
›BRIEF DESCRIPTION OF THE DRAWINGS
[ FIG. 1 ] An overall perspective view illustrating a first embodiment of the force sense presenting apparatus according to the present invention.
[ FIG. 2 ] A perspective view of the force sense presenting apparatus of FIG. 1 before mounting.
[ FIG. 3 ] Schematic views of the force sense presenting apparatus of FIG. 1 , where (A) is a plan view and (B) is a right-side view.
[ FIG. 4 ] A perspective view of the right-side end effector of FIG. 1 .
[ FIG. 5 ] Views for explaining the translational and rotational motions of the end effector of FIG. 1 .
[ FIG. 6 ] A view illustrating the operation state of the force sense presenting apparatus of FIG. 1 .
[ FIG. 7 ] A perspective view illustrating the frames of the force sense presenting apparatus of FIG. 1 .
[ FIG. 8 ] Views for explaining the distances between the DC motors on the frames of FIG. 7 , where (A) is a plan view and (B) is a right-side view.
[ FIG. 9 ] Views of the force sense presenting region which can represent the force senses from all the directions in the case of the distances between the DC motors on the frames of FIG. 8 , where (A) is a plan view and (B) is a right-side view.
[ FIG. 10 ] Right-side views illustrating a second embodiment of the force sense presenting apparatus according to the present invention.
[ FIG. 11 ] Right-side views illustrating a third embodiment of the force sense presenting apparatus according to the present invention.
[ FIG. 12 ] An entire perspective view illustrating a prior art force sense presenting apparatus.
[ FIG. 13 ] A perspective view illustrating the frames of the force sense presenting apparatus of FIG. 12 .
[ FIG. 14 ] Views for explaining the distances between the DC motors on the frames of FIG. 13 , where (A) is a plan view and (B) is a right-side view.
[ FIG. 15 ] Views of the force sense presenting region which can represent the force sense from all the directions in the case of the distances between the DC motors on the frames of FIG. 14 , where (A) is a plan view and (B) is a right-side view.
›EMBODIMENTS · 1 of 2
FIG. 1 is an overall perspective view illustrating a first embodiment of the force sense presenting apparatus according to the present invention, FIG. 2 is a perspective view of the force sense presenting apparatus of FIG. 1 before mounting, and FIG. 3 indicates schematic views of the force sense presenting apparatus of FIG. 1 , where (A) is a plan view and (B) is a right-side view. FIGS. 1 and 3 is of a type which is carried on a person's chest.
In FIGS. 1 and 3 , a right-hand force sense presenting unit formed by an end effector 1 R, an upper frame F 1 R and a lower frame F 2 R is symmetrically coupled to a left-hand force sense presenting unit formed by an end effector 1 L, an upper frame F 1 L and a lower frame F 2 L by rear-side coupling frames RFR and RFL. The rear-side coupling frames RFR and RFL are coupled to a shoulder band B which is attached to the shoulder of a user 1 . Note that the rear-side coupling frames RFR and RFL can be hung on the shoulder by a reverse U-shaped fixed tool instead of the shoulder band B.
The upper frame F 1 R of the right-hand force sense presenting unit is approximately linearly coupled to the upper frame F 1 L of the left-hand force sense presenting unit viewed from the top. Note that the upper frame F 1 R and the lower frame F 1 L can be formed in one body.
In the right-hand force sense presenting unit, an approximate intermediate position of the upper frame F 1 R is coupled to one side of the lower frame F 2 R in an approximately T-shaped configuration viewed from the top. Similarly, in the left-hand force sense presenting unit, an approximate intermediate position of the upper frame F 1 L is coupled to one side of the lower frame F 2 L in an approximately T-shaped configuration viewed from the top. Also, the lower frame F 2 R is coupled to the lower frame F 2 L by reinforced frames F 1 and F 2 .
In FIGS. 1 and 3 , provided between four wire contact points (fixed points) PAR, PBR, PCR and PDR of the end effector 1 R attached to the right-hand of the user 1 and rotary encoder associated DC motors (or coreless motors) M 1 R, M 2 R, . . . , M 8 R (precisely, pulleys as wire exits directly connected thereto) are wires W 1 R, W 2 R, . . . , W 8 R made of metal or fiber. Concretely, provided between the wire contact point PAR of the end effector 1 R and the rotary encoder associated DC motors M 1 R and M 2 R (precisely pulleys as wire exits directly connected thereto) are the wires W 1 R and W 2 R. Also, provided between the wire contact point PBR of the end effector 1 R and the rotary encoder associated DC motors M 3 R and M 4 R (precisely pulleys as wire exits directly connected thereto) are the wires W 3 R and W 4 R. Additionally, provided between the wire contact point PCR of the end effector 1 R and the rotary encoder associated DC motors M 5 R and M 6 R (precisely pulleys as wire exits directly connected thereto) are the wires W 5 R and W 6 R. Furthermore, provided between the wire contact point PDR of the end effector 1 R and the rotary encoder associated DC motors M 7 R and M 8 R (precisely pulleys as wire exits directly connected thereto) are the wires W 7 R and W 8 R.
In FIGS. 1 and 3 , provided between four wire contact points (fixed points) PAL, PBL, PCL and PDL of the end effector 1 L attached to the right-hand of the user 1 and rotary encoder associated DC motors (or coreless motors) M 1 L, M 2 L, . . . , M 8 L (precisely, pulleys as wire exits directly connected thereto) are wires W 1 L, W 2 L, . . . , W 8 L made of metal or fiber. Concretely, provided between the wire contact point PAL of the end effector 1 L and the rotary encoder associated DC motors M 1 L and M 2 L (precisely pulleys as wire exits directly connected thereto) are the wires W 1 L and W 2 L. Also, provided between the wire contact point PBL of the end effector 1 L and the rotary encoder associated DC motors M 3 L and M 4 L (precisely pulleys as wire exits directly connected thereto) are the wires W 3 L and W 4 L. Additionally, provided between the wire contact point PCL of the end effector 1 L and the rotary encoder associated DC motors M 5 L and M 6 L (precisely pulleys as wire exits directly connected thereto) are the wires W 5 L and W 6 L. Furthermore, provided between the wire contact point PDL of the end effector 1 L and the rotary encoder associated DC motors M 7 L and M 8 L (precisely pulleys as wire exits directly connected thereto) are the wires W 7 L and W 8 L.
Mounted on the head of the user 1 is an HMD 2 . Note that a large-scale screen as a virtual video generating means can be used instead of the HMD 2 .
The rotary encoder associated DC motors M 1 R, M 2 R, . . . , M 8 R; M 1 L, M 2 L, . . . , M 8 L and the HMD 2 are connected to a DC motor controller (not shown) provided between the two rear-side coupling frames RFR and RFL. Further, the HMD 2 and the DC motor controller are connected to a personal computer (not shown).
FIG. 4 is a perspective view illustrating the end effector 1 L of FIGS. 1 and 3 .
In the end effector 1 L of FIG. 4 , linear members U 1 and U 2 formed by aluminum pipes are approximately perpendicularly cross-shaped viewed from the top, and a grip member U 3 is coupled between the members U 1 and U 2 . Therefore, the grip member U 3 is configured to be grasped by the left hand of the user 1 . In this case, as shown in the perspective view of FIG. 2 , the members U 1 and U 2 can be bent above or below to make the members U 1 and U 2 V-shaped. As a result, the member U 1 can be directly coupled to the member U 2 , and the grip member U 3 can be coupled to the members U 1 and U 2 . The same is applied to the end effector 1 R.
In the force sense presenting apparatus of FIG. 1 , as illustrated in FIG. 5 , the end effector 1 R ( 1 L) carries out 3-axis translational motions by 3 degrees of freedom and 3-axis rotational motions by 3 degrees of freedom, i.e., motions by six degrees of freedom as illustrated in FIG. 5 . Therefore, the end effector 1 R and the end effector 1 L cooperate, so that motions by translational and rotational motions by six degrees of freedom using two hands can be realized upon a virtual object P of FIG. 6 within the VR space. That is, the user 1 carries the force sense presenting apparatus in front of his body as a fore rucksack and the end effectors 1 R and 1 L are mounted on both hands of the user 1 . The HMD 2 is mounted on the head of the user 1 , so that the user 1 can be absorbed in the VR space and the user 1 can operate the virtual object P by his two hands. In this case, the force sense is fed back via the end effectors 1 R and 1 L to the user 1 , so that the user 1 can feel as if he grasped and moved the virtual object P.
›EMBODIMENTS · 2 of 2
FIG. 7 is a perspective view illustrating the frames F 1 R, F 1 L, F 1 L and F 2 L of the force sense presenting apparatus of FIG. 1 , FIG. 8 is for explaining the distances between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L of FIG. 7 , where (A) is a front view and (B) is a right-side view. In FIG. 8 , the distance between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L is 54 cm.
FIG. 9 illustrates a force sense presenting region representing the force sense from all the directions in the distances between the DC motors on the frames F 1 R, F 2 R, F 1 L and F 2 L of FIG. 8 . As indicated by a shaded portion in FIG. 9 , the force sense presenting region RR is a rectangular parallelepiped region of about 54 cm×108 cm×77 cm. In FIG. 9 , a region around the center of the user 1 is also included in the force sense presenting region RR. Therefore, the presenting efficiency can be increased. Also, the frame structure having a size of about 54 cm×108 cm×77 cm can be small in size, and therefore, the force sense presenting apparatus can be light in weight. As a result, the mounting of the force sense presenting apparatus can be carried out without a helper.
Even in the first embodiment, the same or large translational forces, torques and response characteristics than those of the prior art force sense presenting apparatus can be obtained.
FIG. 10 shows right-side views illustrating a second embodiment of the force sense presenting apparatus according to the present invention, where (A) shows a state immediately before mounting and (B) shows a state immediately after mounting. In FIG. 10 , the force sense presenting apparatus is of a type carrying it on the back of the user, and the upper frame is of a pivotal type.
In FIG. 10 , the upper frames F 1 R and F 1 L are rotatable for the axis A of the rear-side coupling frames RFR and RFL via intermediate upper frames IF 1 R and IF 1 L. On the other hand, the lower frames F 2 R and F 2 L are fixed to the rear-side coupling frames RFR and RFL via intermediate lower frames IF 2 R and IF 2 L.
The mounting of the force sense presenting apparatus of FIG. 10 will be now explained. First, as illustrated in (A) of FIG. 10 , the intermediate upper frame IF 1 R and IF 1 L are rotated above so that the upper frames F 1 R and F 1 L are located above. In this state, the user 1 carries the rear-side coupling frames RFR and RFL on his back. Next, as illustrated in (B) of FIG. 10 , the intermediate upper frame IF 1 R and IF 1 L are rotated below so that the upper frames F 1 R and F 1 L are located below. When demounting the force sense presenting apparatus of FIG. 10 , the reverse operations would be carried out.
FIG. 11 shows right-side views illustrating a third embodiment of the force sense presenting apparatus according to the present invention. The force sense presenting apparatus of FIG. 11 is of a floor-fixed type.
In FIG. 11 , rear-side coupling frames RFR′ and RFL′ extend to the floor and are fixed thereto and a support plate PL is provided instead of the rear-side coupling frames RFR and RFL of FIG. 1 . Therefore, the rear-side coupling frames RFR′ and RFL′ are fixed to the support plate PL, so that the rear-side coupling frames RFR′ and RFL′ can be fixed to the floor. In this case, since the mounting operation is unnecessary, the shoulder band B or the reverse U-shaped fixed tool are unnecessary.
Note that the present invention can be applied to any alterations within the obvious scope of the above-mentioned embodiments.
›DESCRIPTION OF THE SYMBOLS
1 : user
1 R: right-hand end effector
1 L: left-hand end effector
F 1 R, F 2 R, F 1 L, F 2 L: frames
RFR, RFL, RFR′, RFL′: rear-side coupling frames
F 1 , F 2 : frames
IF 1 R, IF 1 L: intermediate upper frames
IF 2 R, IF 2 L: intermediate lower frames
M 1 R, M 2 R, . . . , M 8 R; M 1 L, M 2 L, . . . , M 8 L: rotary encoder associated DC motors
W 1 R, W 2 R, . . . , W 8 R; W 1 L, W 2 L, . . . , W 8 L: wires
PAR, PBR, PCR, PDR, PAL, PBL, PCL, PDL: wire contact points
2 : head mounted display (HMD)
P: virtual object
PL: support plate
RR: force sense presenting region
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1 codes- G06F3/01
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