The disclosed technology relates generally to rings, and more specifically, to combination rings.
Combination wedding and engagement rings are known in the art. They generally work by having an outer ring with an opening on top through which an inner ring is inserted. The inner ring typically then remains unsecured between the outer rings. This configuration works, but limits the configuration of each ring because the inner ring must fit entirely between a space between the two outer rings. Should one wish to use a wider inner ring, or wish to have the outer engagement ring have something other than a gaping hole between the two sides, he or she is out of luck.
What is needed in the industry is a way to provide a combination wedding and engagement ring where each ring can have a full setting and the top of the engagement ring can be connected so that it does not look like two separate rings and is aesthetically more pleasing even when worn without the wedding ring.
A halo effect ring has a halo on the top side thereof. For purposes of this disclosure, a top side is a side with the halo which is attached to various rings, the rings being adapted or configured to be placed around a finger or other part of the body. It should be understood that the body or parts of the body are not being claimed, but is used for descriptive purposes to describe parts of the ring or how the ring is placed on the body. A bottom side is a side with a hinge and is generally opposite the top side. “Generally” for purposes of this disclosure, is defined as what an ordinary observer would consider to be so. Thus “generally” on opposite sides refers to how a person would describe the halo and the hinge or far side of the rings as being on opposite sides. “Substantially” is defined as “at least 95%” of what the term describes or how two items are compared to each other.
A “halo” is defined as a jeweled ring with an open center in which there is a portal or other items placed there-in or there-through. The halo effect ring has halos which are perpendicular to the most elongated length, or direction of portions which pass-therethrough, of one or a plurality of rings. The rings, as used in this disclosure, are different from halos in that they are designed for, configured for, adapted for, or designated for a finger or other part of the body to pass through whereas the halos are for placement of ornamental features, such as gemstones to pass through and/or be fixed connected there-to.
A halo, in embodiments of the disclosed technology, is formed from both an inner concentric circle and an outer concentric circle. These concentric circles are, in turn, attached to respective rings. A first outer ring and a second outer ring each have substantially identical portals to each other and are connected to the outer concentric circle in two ways, in embodiments of the disclosed technology. In one instance, the outer concentric circle (or halo) is fixedly connected, and in some embodiments, substantially perpendicularly or acutely fixedly connected to the first outer ring. In another instance, the outer concentric circle is removably connected to the second outer ring. A hinge rotatably connects the first outer ring and the second outer ring to each other, generally at an opposite side (bottom side) of each outer ring from where the respective outer rings connect to the outer concentric circle. Meanwhile, the inner concentric circle is fixedly connected to the inner ring and has a portal substantially aligned with said identical portals of the first outer ring and the second outer ring when the rings are aligned with one another.
For purposes of this disclosure, “fixedly connected” is defined as “a connection between two different parts which is designed to stay together in a particular orientation with a particular connection for a period of greater than one year and which generally or substantially always requires breaking physical pieces not meant to be broken apart in order to disconnect the two different parts from one another.” Conversely, “removably connected” is defined as “able to connect and reconnect repeatedly, at least multiple times per day, without causing substantial harm or disfiguration of parts which are connected as such.”
In some embodiments, the inner ring is frictionally held against the hinge. The inner concentric circle (or halo) and/or the inner ring can additionally be frictionally held against the outer concentric circle. “Frictionally held” is defined as “abutted against another object such that movement further towards the other object is prevented” and generally functions without adhesive or mechanical connections of any kind, other than as described in the definition thereof. The term “and/or”, as used in this disclosure, includes one of, or both terms joined by the conjunction.
The inner concentric circle is further from the hinge than the outer concentric circle, in some embodiments, because the inner concentric circle rises through and past the outer concentric circle in these embodiments. The inner ring can be perpendicular to the inner concentric circle, and further, can be aligned with a diameter of the inner concentric circle. That is, if one took a diameter of the inner concentric circle and extended the line segment which is the diameter upwards and downwards, creating a two-dimensional plane, the inner ring would lie on this plane. The inner ring is thus centered with respect to the inner halo in such embodiments. As the inner halo is centered within the outer halo, viathe transitive property, one can also ascertain that the inner ring can be perpendicular to a diameter of the outer circle as well as be centered with respect to a plane which is perpendicular to the outer halo.
The outer concentric circle has a spherical projection, in some embodiments, which is aligned perpendicularly to the outer concentric circle and on a bottom side thereof. The bottom side is opposite a top side; the top side being one that pointed away from the portals if one were to move towards the top. The second outer ring can have a two sided clasp gripping the spherical projection. This two sided clasp is repeatedly removable and connectable to the spherical projection. The first outer ring and the second outer ring are rotatable with respect to one another by way of the hinge and are mirrored on either side of the inner ring when the two sided clasp is gripping the spherical projection. The inner concentric circle passes through the outer concentric circle before the second outer ring is attached to the outer concentric circle, in embodiments of the disclosed technology.
The inner ring is wider than a space enclosed by the outer concentric circle requiring that the inner concentric circle, which is fixedly attached to the inner ring, pass through a lower side of the outer ring in order for the inner concentric circle to be concentric to the outer concentric circle when the rings are in the same orientation. The inner ring rises through the inner concentric circle and the inner concentric circle is filled therewith, in embodiments of the disclosed technology. The outer concentric circle has a portal sized to fit around the inner concentric circle, in embodiments of the disclosed technology. “Size to fit” is defined as the two items having identical or substantially identically shaped sides, or portions of sides which are abutted against one another such that a space no wider than the narrowest portion of each item being sized to fit together is created there-between.
The inner and outer halo can each have a circle of identically sized gems. The first outer ring and the second outer ring have a rotatable range of motion with respect to one another of up to 90 degrees, in some embodiments. An outer diameter of the inner ring is substantially equal to the shortest distance between the hinge and the outer concentric circle in embodiments of the disclosed technology.
Three steps are formed at a top side of the halo effect ring in some embodiments. A step is defined as a generally or substantially flat side which is parallel to another generally or substantially flat side, with the two flat sides having different elevations. The steps can be connected by different vertical pieces. A first stepnis formed from the outer concentric circle which is both fixedly and removably attached to the outer ring, a second step is formed from the inner concentric circle which is fixedly attached to the inner ring, and a third step with gems is centered within a plane which extends perpendicularly to an inner region of the inner concentric circle.
A method of donning such a halo effect ring is carried out by separating the second outer ring from the outer concentric circle. This involves, in embodiments, rotating the hinge. Then one inserts the inner concentric circle into the outer concentric circle and rests the inner ring on the hinge. Then one attaches the second outer ring to the outer concentric circle such that the portal of the first outer ring, the second outer ring, and the inner ring are in alignment.
Any device or step to a method described in this disclosure can comprise or consist of that which it is a part of, or the parts which make up the device or step. The term “and/or” is inclusive of the items which it joins linguistically and each item by itself.
A halo effect ring has an inner halo fixedly connected to an inner ring, and an outer halo fixedly connected to an outer ring. Both rings can have gems in settings and other ornamentation, and when combined, the halos are in concentric circles, when viewed from above, with at least part of the inner ring or its setting or other attached parts rising through the outer halo. Another outer ring is hingedly connected to the first outer ring, and removably connected to the outer halo such that the halo can sit flush with a top side of the outer rings.
Embodiments of the disclosed technology are described below, with reference to the figures provided.
Discussing first
Referring to
The underside of the outer halo 10 is fixedly connected to a first ring 20, and fixedly connected to a spherical projection 86 which extends beneath the line 99 and generally or substantially downwards from the outer halo 10. The spherical projection 86 can be spherical, partially spherical, rounded, and/or otherwise act as a fixed-shaped connector. Meanwhile, as shown, for example in
Skipping to
While the disclosed technology has been taught with specific reference to the above embodiments, a person having ordinary skill in the art will recognize that changes can be made in form and detail without departing from the spirit and the scope of the disclosed technology. The described embodiments are to be considered in all respects only as illustrative and not restrictive. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope. Combinations of any of the methods, systems, and devices described hereinabove are also contemplated and within the scope of the disclosed technology.
Number | Name | Date | Kind |
---|---|---|---|
424211 | Kaas | Mar 1890 | A |
1245201 | DePollier | Nov 1917 | A |
5253490 | Doganay | Oct 1993 | A |
D680023 | Ho | Apr 2013 | S |
Number | Date | Country |
---|---|---|
2352510 | Dec 1977 | FR |
Number | Date | Country | |
---|---|---|---|
20180228255 A1 | Aug 2018 | US |