The present invention generally relates to the field of photographic and video systems and more specifically to a holding assembly and related method for enabling spherical or cubical 360 degree still photographs and/or moving video using a supported plurality of conventional photographic cameras that are independently supported and maintained by the holding assembly and in which images can be captured in a variety of different environments for processing a plurality of image formats.
It is known that 360 degree (e.g., spherical or cubical) still photographs or moving videos of a scene of interest can be obtained using very sophisticated equipment. Such equipment is prohibitively expensive and clearly not within the budget of average consumers or even small companies that are desirous of obtaining 360 degree images.
There is an ongoing and pervasive need to provide a more versatile and user friendly system that adaptively retains a plurality of conventional photographic cameras in order to permit 360 (spherical or cubical) degree still photographs or moving videos to be obtained, through compositely created images and in a plurality of image formats, such as HD and 3-dimensional, among others. It is a further desire to provide providing increased functionality and versatility for such a system, providing adaptability depending on the application or desires of a particular user, including functionality in a varied number of environments.
Therefore and according to one aspect, there is provided a holding assembly configured to releasably retain a plurality of cameras in a predetermined orientation, the holding assembly comprising a support and a plurality of camera receptacles disposed in a spaced arrangement covering a 360 degree field of view, the camera receptacles including being configured for supporting a camera and including at least one feature that enables a camera to be releasably secured. The system further is configured to synchronize each of the outputs of the supported cameras, in order to create either a 360 degree by 180 degree full spherical composite image or a 360 degree composite image, which can be either still (photograph) or moving (video) utilizing a plug and play configuration that permits removal of the cameras as well as access thereto, if needed.
According to at least one version, the frame can include at least four (4) camera receptacles, the at least four receptacles being disposed along a common plane of the holding assembly and defining a retaining cavity that is sized to retain a camera. Each of the camera receptacles further include at least one feature that permits securement and release of a retained camera, as needed, for replacement or repair. In one version, the camera receptacles include a latch that is configured to open and close to secure a camera within the holding assembly.
The holding assembly further comprises at least one and preferably three attachment features for enabling the holding assembly to be secured to another object, such as a connecting rod, a tripod, or other mounting apparatus.
In another version, a plurality of camera receptacles can be disposed along the common plane as well as above and/or below the defined plane, thereby enabling greater versatility of resulting images of at least one scene of interest. Still further and according to at least one version, the camera receptacles of the holding assembly can be selectively adjusted in terms of their relative position. For example, the camera receptacles can be attached to the ends of arms that are extendable from a center supporting structure of the holding assembly. According to another version, the extending arms can be pivotally attached to a supporting structure.
In at least one preferred version, images captured by the plurality of retained cameras are combined to create a composite 360 image using image stitching techniques, whether as a still image or as a video. The herein described holding fixture can be further configured to permit operation in a plurality of different environments, such as for aquatic and aerial scenes of interest, among others.
According to another aspect, there is provided a method for enabling a 360 degree by 180 degrees full spherical image of a scene of interest, the method comprising the steps of providing a holding assembly comprising a plurality of camera receptacles, each receptacles being configured for retaining a camera wherein the cameras are configured to provide a composite field of view of spherical 360 degrees.
In brief, the herein described apparatus differs from what currently exists. Other known devices require six (6) or more cameras in which the cameras are at least partially disassembled to be fitted within the confines of a defined enclosure in a fixed orientation. Moreover, the cameras are fixed into the assembly, not in a plug and play configuration. They are extremely expensive and their cameras cannot be removed and used for other purposes without tearing down the enclosure and reconstructing the cameras to allow serviceability.
The present holding assembly on the other hand is configured to retain a plurality of medium or small cameras, which are removable, thereby making the fixture and cameras more versatile in terms of their functionality and portability. The holding assembly also has multiple holding or attachment points located on the device, such as along edges, sides or corners to allow the device to be fixed in multiple positions to take either the best video or photo depending, upon the particular mode in which the cameras have been programmed. Providing multiple positions and opportunities for multiple holding or attachment positions permits the operator to be hidden at different distances in the eventual (final) photograph or video due to camera viewing parallax.
Various embodiments are herein discussed. Commonly, each of these embodiment as discussed herein, preferably include the following features:
1. A plurality (preferably 6 or more) of small to medium photographic cameras.
2. A holder assembly;
3. a wired or wireless connection that connects each device via a remote control or actuable element in which each camera is synched for common operation by an operator; and
4. Various mounting positions for the holding assembly in order to enable different orientations.
In brief, the plurality of retained cameras snap into various receptacles that are defined in the holder assembly that accommodate each camera based on an interference or snap fit, enabling easy removal. Preferably, the receptacles are defined by a moldable plastic or other suitable material having adequate flexibility to permit a secure fit when the camera is attached. One preferred material is a flexible nylon. Each receptacle according to this embodiment accommodates the camera and includes a portal that further accesses the lensing portion of the attached camera, allowing for an unobstructed view of a scene/environment to be photographed or videotaped. A button on a remote control of the wireless connection is configured to synch with and power/control features of all of the retained cameras on and/or off at the same time. Alternatively, the cameras can be similarly controlled by means of cabling (not shown) interlinking each of the retained cameras.
The holding assembly allows the retained cameras to be positioned in a cubical or spherical manner so they can take video and photos facing in a plurality of different angled orientations depending on the number of cameras supported. By way of example, six, seven, ten and twelve cameras can be suitably retained. In at least one version, stereographic (3D) images can be realized. The wireless connection allows the device to turn on or off via a mechanical switch or remote control device separate from the wireless connection. The holder ensures that the cameras are positioned in the proper location.
It should be noted that the present design is exemplary. For example, the arms of the holding assembly can be designed to permit the length of the arms to extend. For example, a plurality of extending arms can be configured to extend proportionally in all directions simultaneously.
Each of the above noted holding assemblies are configured to retain a predetermined number of photographic cameras in a cubical or spherical fashion to allow the cameras to take video and/or photos simultaneously. The holding fixture as described herein in accordance with each of the prior described embodiments allows each of the retained photographic cameras to be releasably disposed into a repeatable position along with wireless remote control connection to operate each camera at the same time.
An advantage provided is that of providing an affordable apparatus that permits the use of a plurality of conventional photographic cameras in order to create 360 degree images, whether still photographs or moving video.
Other advantages that are realized are that the herein described apparatus is reliable, durable, adaptable for use in a variety of environments and is easy to assemble and use.
Yet another advantage realized is that the herein described assembly easily permits the inclusion of updated or replacement cameras and/or imaging software, as needed, and on the fly.
The holding assembly also can provide a number of accessible areas that permit easy access to attach data, video or power cabling as well as data cards, without having to remove the cameras from the assembly.
In addition, the herein described holding assembly provides a plug and play configuration that permits an operator to change cameras easily and without requiring external tools, such as a screwdriver.
The herein described holding assemblies can also be suitably used for purposes of underwater and aerial environments. In an underwater environment, a plurality of cameras can be suitably retained, each including the use of an adaptive dome converter, in order to permit a suitable field of view to be maintained in spite of the refractive effects created by water and enable full spherical images to be produced.
In an aerial environment, the herein described holding assemblies can be provided in at least one version as part of an assembly that is capable of flight akin to a helicopter and having a set of rotors that permits hovering. In at least one version and due to “blind” spots in an array of retained 360 degree spherical cameras, the resulting spherical or full 360 degree×180 degree full spherical image will appear without interference from the rotor assemblies, which are specifically disposed within the blind spots of the assembly. As a result, the resulting images, such as moving 360 degree spherical video, advantageously appear as though the apparatus is “floating” or levitating in air.
According to yet another version, a three-dimensional viewing effect can be created using holding assemblies that mount cameras in tandem (side by side) to produce a stereoscopic effect as to resulting images and create a depth of field with regard to each of the tandem camera lenses, which act in concert to produce the desired effect.
These and other features and advantages will be readily apparent from the following Detailed Description, which should be read in conjunction with the accompanying drawings.
a) is a front perspective view of a camera holding assembly for a 360 degree imaging apparatus that is made in accordance with an exemplary embodiment;
b) is a top plan view of the camera holding assembly of
c) and 1(d) are side elevational views of the camera holding assembly of
e) is a bottom perspective view of the camera holding assembly of
f) is a perspective view of the camera holding assembly of
a) is a front perspective view of a camera holding assembly in accordance with another exemplary embodiment;
b) is a top plan view of the camera holding assembly of
c) and 2(d) are side elevational views of the camera holding assembly of
a) is a front perspective view of a camera holding assembly in accordance with another exemplary embodiment;
b) is a top plan view of the camera holding assembly of
c) and 3(d) are side elevational views of the camera holding assembly of
e) is a top perspective view of an alternative camera holding assembly similar to that shown in
f) is a top perspective view of another alternative camera holding assembly capable of retaining ten (10) cameras.
a) is a front perspective view of a camera holding assembly in accordance with yet another exemplary embodiment;
b) is a top plan view of the camera holding assembly of
c) and 4(d) are side elevational views of the camera holding assembly of
e) is a side perspective view of the camera holding assembly of
a) is a perspective view of a camera holding assembly in accordance with another exemplary embodiment having a plurality of photographic cameras retained thereon;
b) is a rotated perspective view of the camera holding assembly of
c), 5(d) and 5(e) depict various side views of the camera holding assembly of
f) is a rotated perspective view of the camera holding assembly of
g) is a perspective view of the camera holding assembly of
h) is the perspective view of the camera holding assembly of
a) is a portion of a support for a camera holding assembly made in accordance with another exemplary embodiment;
b) is a portion of an alternative design of a support for a camera holding assembly;
c) depicts the attachment of receptacles to the support of
d) is an assembled perspective view of camera holding assembly;
e) is a partially exploded view of the camera holding assembly of
f) is another assembled view of the camera holding assembly of
g) is an alternative exploded assembly view of a camera holding assembly;
a) is a perspective view of a portion of a camera holding assembly in accordance with another exemplary embodiment;
b) is a partially assembled isometric view of the camera holding assembly of
c) is another partially assembled perspective view of the camera holding assembly of
d) is a rotated perspective view of the camera holding assembly of
e) is a partially assembled perspective view of the camera holding assembly of
f) is the assembled camera holding assembly of
g) is a perspective view of a camera holding assembly of
a) and 8(b) are exploded views of a dome converter as used with a photographic camera housing enabling a retained photographic camera in the housing to be used in an aquatic environment;
c) is a exploded assembly view of various components of the dome converter of
a), 10(b) and 10(c) are various views of an apparatus including a camera holding assembly in accordance with another example and more specifically relative to an apparatus that enables use in an aerial environment with a plurality of supported cameras;
d) is an enlarged view of the apparatus of
a) is a bottom perspective view of a holding assembly used in another aerial enabling apparatus;
b) and 11(c) are perspective views of other aerial apparatus including multiple photographic camera holding assemblies;
a) is a front perspective view of an exemplary camera holding assembly that retains a plurality of photographic cameras and is configured for stereoscopic imaging;
b) is a top plan view of the camera holding assembly of
c) and (d) are side elevational views of the camera holding assembly of
The following describes various exemplary embodiments of a system employing a holding assembly that can be used to support a plurality of photographic cameras in order to obtain spherical 360 degree still photographs or moving video of a scene of interest, as well as contemplated modes involving same. Because the embodiments are exemplary in nature, it will be readily apparent to one of sufficient skill that certain variations and modifications will be possible employing the inventive concepts discussed herein. In addition and throughout the course of discussion, several terms are used in order to provide a suitable frame of reference with regard to the accompanying drawings. These terms, which can include “upper”, “lower”, “top”, “bottom”, “inner” “outer”, “above”, and “below” among others are therefore not intended to be limiting of the invention, except where so specifically and clearly indicated otherwise. The drawings are also provided to illustrate salient features of the present invention, but are not necessarily to scale for purposes of interpretation. Examples of dimensions that are noted in this disclosure are also intended to be merely exemplary as to the concepts discussed throughout and with regard to the appended claims.
According to a first exemplary embodiment and with reference to
The supporting fixture 108 of the herein described holding assembly 100 is defined by a center axial column 112 having a plurality of radial arms 116 extending outwardly from the center column 112. According to this specific embodiment, a total of seven (7) radially extending arms 116 are provided, each of the arms 116 including a proximal end 117 that is integrated with the center column 112 and a distal end 119 that is integrated with a camera receptacle 124. A corresponding number of camera receptacles 124 are provided, each arranged circumferentially about the center column 112. Alternatively, the arms 116 could be connected by fasteners or other means to the center column 112 as discussed in greater detail in other embodiments. The shape and configuration of the radially extending arms 116 can also be suitably varied, provided the camera receptacles 124 are stably supported. For example and according to this embodiment, the extending arms 116 are each commonly defined by a substantially cylindrical configuration.
In this specific embodiment, the holding assembly 100 is entirely made from a durable lightweight material such as nylon or other flexible thermoplastic polymer, having sufficient stiffness for enabling stable retention of a plurality of cameras as discussed in greater detail infra. In at least one version, the supporting fixture 108 and receptacles 124 can be manufactured using a suitable molding process, as a one-piece assembly, such as shown more specifically in
According to this embodiment, each camera receptacle 124 is transversely disposed relative to the major axis of each corresponding radially extending arm 116 and circumferentially disposed within a single (horizontal) plane. The specific features of a camera receptacle 124 are herein described which includes an enclosure having an interior that is sized to receive a photographic camera 180,
An integral engagement latch 129 depends laterally and inwardly from the end of the outer side wall 136 opposite the open end 126 of the camera receptacle 124. This latch 129 includes a depending tab portion 130 having an outwardly tapering configuration at one end that releasably engages a slot 137 provided adjacent the inner side wall 134.
Referring to
According to this exemplary embodiment and as shown in
Referring to
A holding assembly 200 made in accordance with a second exemplary embodiment is shown with reference to
More specifically, each camera receptacle 224 is made from a durable and flexible material according to this exemplary embodiment and defined by an open end 226 and an opposing engagement latch 229 that is further connected to a top wall 232 and an outer side wall 236 that combine to define an enclosure along with an inner side wall 234. As in the preceding embodiment, the engagement latch 229 depends inwardly from the end of the outer side wall 236 that is opposite the open end 226 and is defined by a depending tab portion 230 having an outward taper that releasably engages a corresponding slot 237 adjacent the inner side wall 236. Also and as previously described, the outer side wall 236 includes an opening 244 that is sized to receive the lens barrel (not shown) of a retained photographic camera (not shown) and the top wall 232 also includes an opening 240 enabling access to connecting ports or to the data card of the retained camera and/or for cabling (not shown).
According to this version, another camera receptacle 224 having similar features is provided at the distal end of the supporting fixture 210 and above the defined horizontal plane, wherein each of the six camera receptacles 224 are configured to retain a corresponding photographic camera at a common radial distance relative to the center of the supporting fixture 210. In terms of operation, a camera can be releasably secured within a camera receptacle 224 by releasing the engagement latch 229 and more specifically the tab portion 230 from the slot 237 and bending the flexible flap-like section including the outer side wall 236 outwardly. A camera, such as a GoPro Hero, Hero2, Hero3 or other suitable camera can then be positioned by aligning the back side of the camera with the inner side wall 234 between the top wall 232 and a lower edge protrusion 247. Once positioned, the outer side wall 236 can be placed over the top surface of the camera with the lens barrel of the camera extending through the defined opening 244 and in which the engagement latch 229 can be reengaged with the slot 237 in order to secure the receptacle 224.
Finally, the supporting fixture 210 according to this version further includes a plurality of attachment posts 218,
In use, the five (5) cameras disposed along the common plane (horizontal per the receptacles of
A holding assembly 300 according to a third exemplary embodiment is shown in
The construction of each of the camera receptacles according to this embodiment and the above-noted alternatives is similar to that previously described in the prior embodiments. More specifically, each camera receptacle 324 is made from a durable and flexible material according to this exemplary embodiment and defined by an open end 326 and an opposing engagement latch 329 that is further connected to a top wall 332 and an outer side wall 336 that combine to define an enclosure along with an inner side wall 334. As in the preceding embodiment, the engagement latch 329 depends inwardly from the end of the outer side wall 336 that is opposite the open end 326 and is defined by a depending tab portion 330 that releasably engages a slot 337 adjacent the inner side wall 336. Also and as previously described, the outer side wall 336 includes an opening 344 that is sized to receive the lens barrel 382,
A photographic camera 380 can be releasably secured within a camera receptacle 324 by releasing the engagement latch 329 and more specifically the tapered tab portion 330 from the slot 337 and bending the flexible flap-like section, including the outer side wall 336, outwardly. The camera 380 can then be positioned by aligning the back side of the camera 380 with the inner side wall 334 between the top wall 332 and a lower edge protrusion 347. Once positioned, the outer side wall 336 can be placed over the top surface of the camera 380 with the lens barrel 382 of the camera 380 extending through the defined opening 344 and in which the engagement latch 329 can be reattached to the slot 337 in order to secure the receptacle 324.
When attached and according to the embodiment of
Yet another variation of a camera holding assembly 400 is shown with reference to
More specifically, a photographic camera 480 such as a GoPro Hero, Hero2, Hero3 or other suitable camera, can be releasably secured within a camera receptacle 424 by releasing a flexible engagement latch 429 and more specifically the tab portion 430 thereof from a slot 437 adjacent an inner side wall 434 and bending the flexible flap-like section, including the outer side wall 436 outwardly. Each photographic camera 480 can then be positioned within the receptacle 424 by placing same in an open end 426 of a defined enclosure of the receptacle 424 and aligning the back side of the camera 480 with the inner side wall 434 between a top wall 432 and a parallel and correspondingly spaced lower edge protrusion 247. Once positioned, the outer side wall 436 can be placed over the top surface of the camera 480 with the lens barrel 482 of the camera 480 extending through a defined opening 444 in the outer side wall 436 and in which the engagement latch 429 can be reattached to the slot 437 in order to secure the receptacle 424.
Referring to
According to this specific embodiment and as noted, a total of six (6) camera receptacles 524 are provided in which four (4) of the camera receptacles 524 are disposed along a common (horizontal) plane and the remaining two (2) camera receptacles 524 are oppositely disposed at the top and bottom of the center supporting member 510. As discussed previously, the number of receptacles can be suitably varied provided a 360 degree plane is established by the retained cameras. The camera receptacles 524 and the center supporting member 510 can each be made from a durable and flexible material, such as nylon or a thermoplastic polymer which can be molded or otherwise formed.
According to this specific embodiment, the retaining cavity 532 is rectangularly shaped to substantially correspond with the shape of a corresponding photographic camera 580. The retaining cavity 532 is further defined with a planar bottom surface (not shown in this view), as well as a set of four peripheral or lateral walls defining an enclosure. Each of the lateral walls includes a height dimension that is considerably smaller than the height dimension of the photographic camera 580 with the exception of one of the walls 550 that includes an upper lip portion 554 that is sized to engage the top surface of the camera 580 when placed into the retaining cavity 532.
Respective top and multiple side views according to
Yet another version of a holding assembly is shown in
As shown in
d)-6(f) further illustrate the connectivity of the photographic cameras to the supporting member 610 and in which six (6) cameras are supported according to the embodiments shown by engagement of the sealed cases 660 containing the cameras 680 with the receptacles 624 and in which the cases 660 are releasably attached. As shown herein, four (4) of the photographic cameras 680 are disposed along a common horizontal plane, while individual cameras 680 are further supported above and below the common plane, respectively, thereby defining a spherical field of view of 360 degrees using this holder assembly 600.
An alternative set of cameras are shown as attached directly without protective cases or housings according to
Yet another version of a holding fixture in accordance with the present invention is herein described with regard to
The receptacles 724 according to this embodiment are defined by an arm 725 that extends transversely relative to the axis of the projecting arm portion 716. The arm 725 is cantilevered from the projecting end portion 716 and includes an outwardly projecting engagement end portion 727 having a set of parallel spaced plates 728 with an aligned mounting hole 729 extending therethrough.
As shown in
Various adaptive apparatus can be utilized in combination with the herein described holding assemblies, as previously discussed in regard to cameras previously shown in
As is known under Snell's Law, light is refracted when passing through different media, such as water. The effect of water can conceivably reduce the effective field of view by as much as 40 percent. The adaptive apparatus 800 is releasably coupled to a camera that is placed within a waterproof case or housing 860 and attached to a receptacle of a holding assembly 800, as shown in
Referring to
In accordance with this embodiment, an attachable housing adapter 850 may also be used to attach the dome converter 800 to the front of a camera housing 860. In certain embodiments, the attachable housing adapter 850 can be attached to the camera housing 860 using threads or by means of a snap-engagement. In embodiments such as shown in
According to the present embodiment, the adaptive apparatus 800 includes a set of external threads 814 at the base of the dome member 810. These threads 814 are configured for threaded engagement with a corresponding set of threads 832 that are provided on an inner peripheral surface 836 provided within the outer filter housing 830. According to this embodiment and referring to
The interchangeable filter 820 is a disk-like member that is inset within a groove 817 provided adjacent the base of the dome member 810 with the sealing member 840. Advantageously, the interchangeable filter 820 and the sealing member 840 are sized to fit within the groove 817 and assist in preventing external water pressure from collapsing the dome member 810, and thereby further increasing the effect of the sealing member 840.
Once the dome member 810 is threadingly attached to the outer filter housing 830, the outer filter housing 830 can then be threadingly attached according to this embodiment to the attachable housing adapter 850 after which the housing adapter 850 may then be attached to the front of the camera housing 860.
A plurality of adaptive apparatus 800 as herein described can be used in conjunction with a holding assembly, such as those previously described. Referring to
In each of the herein described embodiments, the cameras can be easily removed from the receptacles of the holder assembly and used for other purposes. The connecting rods or other members disposed between the supporting member of the holding assembly and the supported cameras can suitably vary in length to permit the assembly to be used for expansion and/or a plurality of different photographic/video applications.
The invention may also include other mounting points other than just the snap-in receptacles, allowing the cameras to be removable/replaceable/upgradeable, and wherein the connecting rods between the camera and body of the holder assembly can be variable in length. Providing at least one and more preferably at least three (3) mounting points permits an operator to be hidden at different distances in the eventual (final) video due to camera viewing parallax.
Reference is herein made to
The photographic cameras 1080 are angularly supported above and below the center housing 1008 and the rotor assemblies 1050 in which three (3) cameras shown herein in protective casings or housings 1080 are disposed at 120 degree intervals to one another above the rotor assemblies 1050 and an additional three (3) cameras, also provided in casings or housings 1080 are disposed below the rotor assemblies 1050. Each of the extending arms 1004 include an engagement end portion 1007 that is configured to engage a receptacle 1040 similar to that shown in
Alternative versions are shown in
In the version shown in
The version depicted in
The overall effect from video taken from the retained cameras 1180 in each of the above exemplary embodiments is that of an apparent levitated aerial scene. Other suitable configurations can further be utilized. The number of rotor assemblies, as supported in any assembly, can easily be varied depending on the application. The placement of the holding assemblies can also be varied depending, for example, on the number of rotor assemblies that are used and their relative distance from the center housing. For instance and as is apparent from the foregoing examples, the number of rotor assemblies can be easily varied.
As noted, the various designs of holding assemblies that can be provided in accordance with the plug and play concepts discussed herein is not limited to the above described examples. That is, a myriad of other variations are possible depending, for example, upon the image resolution that is desired and in which additional cameras can be disposed and supported in a number of ways.
In addition, the types of applications and mounting arrangement that the holding assemblies is also limitless. For example, a head-worn holding apparatus is depicted in
According to other exemplary embodiments and referring to
The holding assembly 1300 includes a support member (not shown) having a plurality of radially extending arms, each of the arms having end engagement portions that are configured to fixedly retain protective camera housings 1330, as described above, in a preferred orientation. The configuration shown includes a total of 12 cameras in 6 housings, supported by the radially extending arms of the support member. According to this version, (4) four camera housings 1330 are disposed on a common (e.g., horizontal) plane with single and opposing tandem camera housings 1330 being disposed above and below the defined plane. As a result, a total of twelve (12) cameras are supported according to this embodiment, producing a combined set of images having a depth of field that creates 3-dimensional 360 degree by 180 degree full spherical images. It should be noted that the number of tandem camera housings or cameras provided in tandem can be varied.
According to another variation and with reference to
According to this embodiment, a plurality of camera receptacles 1524 are disposed. The receptacles 1524 are specifically arranged about respective sides of the holding assembly 1500 wherein each receptacle is defined by an open end 1526, a back wall 1532, an inner side wall 1534 and an outer side wall 1536 that is substantially parallel to the inner side wall 1534. Opposite the back wail 1532 and disposed against the inner side wall 1534 is an edge protrusion or stop 1547. In passing, it should be noted that the terms “back”, “inner” and “outer” are for purposes of this embodiment and in accordance with the views as they appear. The specific features of each camera receptacle 1524 defines an enclosure having an interior that is sized to receive a photographic camera 180,
An integral engagement latch 1529 depends laterally and inwardly from the end of the outer side wall 136 opposite the open end 1526 of the camera receptacle 1524. This engagement latch 1529 includes a depending tab portion 1530 having an outwardly tapering configuration at one end that releasably engages a slot 1537 provided adjacent the inner side wall 1534.
The outer side wall 136, according to this embodiment, is a partial wall section extending over only a portion of the length of the inner side wall which further includes an opening 1544. The back wall 1532 also includes a through opening 140.
Each of the receptacles 1536 are arranged in pairs according to this embodiment. More specifically, six (6) pairs of linearly disposed receptacles are provided along each of four lateral sides, a top side and a bottom side of the defined holding assembly 1500. In each formed pair, the back walls 1532 of each receptacle 1524 are aligned and adjacent to one another with the open ends 1526 being oppositely disposed. Each of the lateral side pairs according to
In terms of operation, the engagement latches 1529 of each receptacle are disengaged from the slots 1537 and the flap-like section including the outer side wall 1536 is pulled to open the defined enclosure. The cameras can then be placed into the receptacle through the open end 1526 and engaged between the back wall 1532, inner side wall 1534 and the edge protrusion 1547, the enclosure therein defined being sized for accommodating the camera. The outer side wall 1536 is then pulled over the front surface of the camera in which the opening 1540 is sized to accommodate the lens barrel 182,
Use of the herein described camera holding assemblies is described with reference to an exemplary work flow depicted in
It should be understood, of course, that the foregoing relates merely to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims.
It will be readily apparent that other variations and modifications are possible in addition to the numerous examples discussed herein that will be readily apparent in accordance with the following claims.
This application claims priority under relevant portions of 35 U.S.C. §119 to U.S. Ser. No. 61,722,497, entitled: A holder that supports six cameras in special configuration to allow the ability to shoot 360 degree video and photos, filed Nov. 5, 2012 and U.S. Ser. No. 61/750,491, entitled Dome Converter, filed on Jan. 9, 2013, the entire contents of each of the above-listed applications being incorporated by reference herein in their entirety.
Number | Date | Country | |
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61722497 | Nov 2012 | US | |
61750491 | Jan 2013 | US |