FINGER FOLLOWER WITH OIL SPRAY HOLE
A switching roller finger follower, including: first and second body portions; a resilient element connected to the body portions; and a locking assembly. The first body portion includes: a first bore; a second bore including a first orifice arranged to receive a pressurized fluid; and a second orifice arranged to expel the fluid. The locking assembly includes: a locking pin disposed in the first bore; and a shuttle pin engaged with the locking pin. The shuttle pin is displaceable transverse to the locking pin to: displace the locking pin in a first axial direction to contact the second body portion with the locking pin; and displace the locking pin in a second axial direction to disengage the locking pin from the second body portion. The second bore includes the second orifice; or the second bore does not include the second orifice and is in fluid communication with the second orifice.
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The present disclosure relates to a finger follower h an oil spray hole.
BACKGROUNDA known switchable roller finger follower includes a cam roller that is contacted by a cam shaft lobe. It would be desirable to provide additional lubrication to the interface of the cam shaft lobe and the cam roller.
SUMMARYAccording to aspects illustrated herein, there is provided a switching roller finger follower, including: a first body portion; a second body portion; a pin pivotably connecting the second body portion to the first body portion; at least one first resilient element connected to the first body portion and to the second body portion; and a locking assembly. The first body portion includes: a first bore including a first longitudinal axis; an outer surface; a second bore including a first orifice in the outer surface, the first orifice arranged to receive a pressurized fluid; and a second orifice in the outer surface, the second orifice arranged to expel the pressurized fluid. The locking assembly includes: a locking pin at least a portion of which is disposed in the first bore; and a shuttle pin transverse to the locking pin and engaged with the locking pin. The shuttle pin is arranged to be displaced transverse to the locking pin to: displace the locking pin in a first axial direction parallel to the first longitudinal axis, to contact the second body portion with the locking pin; and displace the locking pin in a second axial direction, opposite the first axial direction, to disengage the locking pin from the second body portion. The second bore includes the second orifice; or the second bore does not include the second orifice and is in fluid communication with the second orifice.
According to aspects illustrated herein, there is provided a switching roller finger follower, including: a first body portion; a second body portion; a pin pivotably connecting the second body portion to the first body portion; at least one first resilient element connected to the first body portion and to the second body portion; a passageway open only at the first orifice and at the second orifice and from the first orifice to the second orifice through the groove; and a locking assembly. The first body portion includes: an outer surface; a bore; a side wall bounding the bore; a groove in the side wall; a first through-bore including a first orifice at the outer surface, the first through-bore arranged to receive a pressurized fluid; and a second through-bore including a second orifice at the outer surface, the second orifice arranged to expel the pressurized fluid. The locking assembly includes: a locking pin at least a portion of which is disposed in the bore; and a shuttle pin transverse to the locking pin and engaged with the locking pin. The shuttle pin is arranged to be displaced: in a first direction, orthogonal to the longitudinal axis, to displace the locking pin in a first axial direction, parallel to the longitudinal axis, to contact the second body portion with the locking pin; and in a second direction, opposite the first direction, to displace the locking pin in a second axial direction, opposite the first axial direction, to disengage the locking pin from the second body portion.
According to aspects illustrated herein, there is provided switching roller finger follower, including: a first body portion; a second body portion; a pin pivotably connecting the second body portion to the first body portion; at least one first resilient element connected to the first body portion and to the second body portion; and a locking assembly. The first body portion includes: an outer surface and a second bore. The second bore includes: a first orifice in the outer surface, the first orifice arranged to receive a pressurized fluid; a second orifice in the outer surface, the second orifice arranged to expel the pressurized fluid; and a second longitudinal axis, the second longitudinal axis non-co-linear with the first longitudinal axis. The locking assembly includes: a locking pin at least a portion of which is disposed in the first bore; and a shuttle pin transverse to the locking pin and engaged with the locking pin. The shuttle pin is arranged to displaced: in a first direction, orthogonal to the longitudinal axis, to displace the locking pin in a first axial direction, parallel to the longitudinal axis, to contact the second body portion with the locking pin; and in a second direction, opposite the first direction, to displace the locking pin in a second axial direction, opposite the first axial direction, to disengage the locking pin from the second body portion.
Various embodiments are disclosed, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, in which:
At the outset, it should be appreciated that like drawing numbers on different drawing views identify identical, or functionally similar, structural elements of the disclosure. It is to be understood that the disclosure as claimed is not limited to the disclosed aspects.
Furthermore, it is understood that this disclosure is not limited to the particular methodology, materials and modifications described and as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular aspects only, and is not intended to limit the scope of the present disclosure.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this disclosure belongs. It should be understood that any methods, devices or materials similar or equivalent to those described herein can be used in the practice or testing of the disclosure.
To clarify the spatial terminology, objects 12, 13, and 14 are used. As an example, an axial surface, such as surface 15A of object 12, is formed by a plane co-planar with axis 11. However, any planar surface parallel to axis 11 is an axial surface. For example, surface 15B, parallel to axis 11 also is an axial surface. An axial edge is formed by an edge, such as edge 15C, parallel to axis 11. A radial surface, such as surface 16A of object 13, is formed by a plane orthogonal to axis 11 and co-planar with a radius, for example, radius 17A. A radial edge is co-linear with a radius of axis 11. For example, edge 16B is co-linear with radius 17B. Surface 18 of object 14 forms a circumferential, or cylindrical surface. For example, circumference 19, defined by radius 20, passes through surface 18.
Axial movement is in axial direction AD1 or AD2. Radial movement is in radial direction RD1 or RD2. Circumferential, or rotational, movement is in circumferential direction CD1 or CD2. The adverbs “axially,” “radially,” and “circumferentially” refer to movement or orientation parallel to axis 11, orthogonal to axis 11, and about axis 11, respectively. For example, an axially disposed surface or edge extends in direction AD1, a radially disposed surface or edge extends in direction RD1, and a circumferentially disposed surface or edge extends in direction CD1.
In an example embodiment, bore 106 is a through-bore. Groove 112 is formed in portion 102, in particular, in side wall 118, which bounds bore 106. Bore 106 includes longitudinal axis LA. Through-bore 108 is open to, or alternately stated connects to, groove 112 and through-bore 110 is open to, or alternately stated connects to, groove 112. Locking assembly 114 includes locking pin 119, at least a portion of which is disposed in bore 106. Clutch 100 does not include a resilient element such as a spring, in contact with pin 119 or through which axis LA passes. Note that more than one reference character “102” may be shown in a particular drawing to identify segments of portion 102.
Portions 119A and 119B of locking pin 119 are in contact with side wall 118 and axially bracket groove 112 (“axial” is with respect to directions parallel to axis LA). For example: portion 119A extends past groove 112 in direction AD1, parallel to axis LA; and portion 119B extends past groove 112 in direction AD2, opposite direction AD1. Portion 119C of locking pin 119 is axially disposed between portions 119A and 119B and is not in contact with side wall 118. In an example embodiment, groove 112 is circumferentially continuous about axis LA. For example, circle C, disposed in groove 112: is centered on axis LA; is orthogonal to axis LA; and does not intersect body portion 102 or pin 119. Stated otherwise, groove 112 is in the form of a continuous circle centered about axis LA. In an example embodiment (not shown), groove 112 is not circumferentially continuous about axis LA.
In the locked configuration, locking pin 119 prevents portion 104 from pivoting about pin 116, and with respect to portion 102, in circumferential direction CD1. In the unlocked configuration of switching roller finger follower 100, pin 119 does not block body portion 104 from pivoting about pin 116 and with respect to body portion 102. In an example embodiment, in the unlocked configuration, locking pin 119 is free of contact with body portion 104. It is possible for pin 116 to be fixed to portion 104 such that portion 104 and pin 116 pivot with respect to portion 102.
Body portion 102 includes outer surface 121. Through-bore 108 includes: orifice 122 open to, or alternately stated connected to, groove 112; and orifice 124 in outer surface 121. Through-bore 110 includes: orifice 126 open to, or alternately stated connected to, groove 112; and orifice 128 in outer surface 121. Orifice 122 is arranged to receive a pressurized fluid. In the discussion that follows, the pressurized fluid is assumed to be oil O. Orifice 128 is arranged to expel oil O. Continuous, or alternately stated unobstructed, passageway 130 is formed by through-bore 108, groove 112, and through-bore 110. By “continuous, or alternately stated unobstructed passageway,” we mean that an open path is formed by channel 130 from orifice 124 to orifice 128, for example as further described below, oil O is able to flow from orifice 124 through passageway 130 to orifice 128. Passageway 130 is open only at orifice 124 and orifice 128. Stated otherwise, with the exception of orifices 124 and 128, passageway 130 is enclosed, or bounded, by portion 102 and pin 119. Thus, through-bore 108 is in fluid communication with orifice 128.
In the example of
Axle 134 includes axis of rotation AR for outer race 136. In an example embodiment, plane P1 is: orthogonal to axis AR; is co-linear with axis LA; and bisects outer race 136. Plane P2 is co-linear with longitudinal axis LA and is orthogonal to plane P1. Through-bore 108 is disposed past plane P2 in a direction D1 parallel to plane P1. Through-bore 110 is disposed past plane P2 in direction D2, opposite direction D1.
In the example of
Locking pin 119 bounds at least a portion of groove 112 in both the locked mode and the unlocked mode. In an example embodiment, locking pin 119 bounds an entirety of groove 112 in both the locked configuration and the unlocked configuration of clutch 100. For example, portions 119A and 1198 extend 360 degrees about axis LA. Portions 119A and 119B bracket groove 112 in both the locked configuration and the unlocked configuration of clutch 100.
Ends 158 of resilient elements 156 contact shoulders 160 of portion 104 to urge portion 104 in circumferential direction CD2 about pin 116 and with respect to portion 102. Axle 134 contacts stops 162 in body portion 102 to limit an extent of pivoting of body portion 104 in direction CD1. As noted above and further described below, resilient elements 156 provide the force to displace body portion 104 from the position shown in
To transition from the configuration of
To transition from the configuration of
Channel 130 provides oil O from lash adjuster LSA to lubricate cam roller 132 without interfering with operation of assembly 114, in particular without interfering with operation of locking pin 119. For example, oil O flows through through-bore 108, groove 112, and through-bore 110 and onto cam roller 132 without hindering movement of locking pin 119 within bore 106.
In an example embodiment, bore 206 is a through-bore. Portion 202 includes side wall 216, which bounds bore 206. Bore 206 includes longitudinal axis LA1. In an example embodiment: bore 210 includes longitudinal axis LA2; and plug 218 blocks one end of bore 210. Axis LA2 is non-co-linear with axis LA2. In an example embodiment, axis LA2 is parallel to axis LA1.
Locking assembly 210 includes: locking pin 220 and shuttle pin 222. Pin 222 is: transverse to locking pin 220; engaged with locking pin 220; and arranged to be displaced to transverse to locking pin 220 Displacing pin 222 transverse to pin 220: displaces locking pin 220 in a axial direction AD1, parallel to longitudinal axis LA1, to contact body portion 204 with locking pin 220 (place clutch 200 in a locked configuration); and displaces locking pin 220 in axial direction AD2, opposite direction AD1, to disengage locking pin 220 from body portion 204 (place clutch 200 in an unlocked configuration). Pin 220 does not include bore 210; therefore, bore 210 is fixed with respect to body portion 202.
In the locked configuration, locking pin 220 prevents portion 204 from pivoting about pin 214, and with respect to portion 202, in circumferential direction CD1. In the unlocked configuration of switching roller finger follower 200, pin 220 does not block body portion 204 from pivoting about pin 214 and with respect to body portion 202. In an example embodiment, in the unlocked configuration, body portion 204 is free of contact with locking assembly 212. It is possible for pin 214 to be fixed to portion 204 such that portion 204 and pin 214 pivot with respect to portion 202.
Body portion 202 includes outer surface 224. Bore 210 includes: orifice 226 in outer surface 224; and orifice 228 in outer surface 224.
In the example of
In the example of
Ends 258 of resilient elements 256 contact shoulders 260 of portion 204 to urge portion 204 in circumferential direction CD1 with respect to pin 214 and body portion 202. Axle 234 contacts stops 262 in body portion 202 to limit an extent of pivoting of body portion 204 in direction CD1.
The discussion for
Bore 210 provides oil O from lash adjuster ISA to lubricate cam roller 232 without interfering with operation of assembly 212, in particular without interfering with operation of locking pin 220. For example, oil O flows through aperture AP, orifice 226, and bore 210 to be expelled through orifice 228 onto cam roller 232 without hindering movement of locking pin 220 within bore 206. In an example embodiment, due to the configuration of orifice 226 and aperture AP, oil O is able to flow from lash adjuster ISA to bore 210 when follower 200 is in the locked position with valve lift.
The following should be viewed in light of
In an example embodiment: displacing shuttle pin 120 in direction D3 includes displacing shuttle pin 120 with resilient element 148; and displacing shuttle pin 120 in a direction D4 includes displacing shuttle pin 120 with actuator A.
The following should be viewed in light of
In an example embodiment: displacing shuttle pin 222 in direction D3 includes displacing shuttle pin 222 with resilient element 248; and displacing shuttle pin 222 in a direction D4 includes displacing shuttle pin 222 with actuator A.
The following should be viewed in light of
In an example embodiment: displacing shuttle pin 120 in direction D3 includes displacing shuttle pin 120 with resilient element 148; and displacing shuttle pin 120 in a direction D4 includes displacing shuttle pin 120 with actuator A.
It will be appreciated that various of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.
LIST OF REFERENCE CHARACTERS
- 10 cylindrical system
- 11 axis of rotation
- AD1 axial direction
- ADZ axial direction
- RD1 radial direction
- RD2 radial direction
- CD1 circumferential direction
- CD2 circumferential direction
- R radius
- 12 object
- 13 object
- 14 object
- 15A surface
- 15B surface
- 15C edge
- 16A surface
- 16B edge
- 17A radius
- 17B radius
- 18 surface
- 19 circumference
- 20 radius
- A actuator
- AR axis of rotation
- C circle
- CL cam lobe
- D1-D5 direction
- L1 line
- L2 line
- LA longitudinal axis
- LA1 longitudinal axis
- LA2 longitudinal axis
- LSA lash adjuster
- O pressurized fluid, oil
- P1 plane
- P2 plane
- 100 switching roller finger follower
- 102 body portion
- 104 body portion
- 106 bore
- 108 through-bore
- 110 through-bore
- 112 groove
- 114 locking assembly
- 116 pin
- 118 side wall
- 119 locking pin
- 119A portion, locking pin
- 119V portion, locking pin
- 119C portion, locking pin
- 120 shuttle pin
- 121 outer surface
- 122 end, through-bore 108
- 124 end, through-bore 108
- 126 end, through-bore 110
- 128 end, through-bore 110
- 130 continuous passageway
- 132 cam roller
- 134 axle
- 136 outer race
- 138 roller
- 140 indentation
- 146 switching pin
- 148 resilient element
- 150 ramped slot
- 152 through-bore
- 154 wall, slot 150
- 156 resilient element
- 158 end, resilient element 156
- 160 shoulder, portion 104
- 162 stop, portion 102
- 200 switching roller finger follower
- 202 body portion
- 204 body portion
- 206 bore
- 210 bore
- 212 locking assembly
- 214 pin
- 216 side wall
- 218 plug
- 220 locking pin
- 222 shuttle pin
- 224 outer surface
- 226 orifice, bore 210
- 228 orifice, bore 210
- 232 cam roller
- 234 axle
- 236 outer race
- 238 roller
- 240 indentation
- 246 switching pin
- 248 resilient element
- 250 ramped slot
- 252 through-bore
- 254 wall, slot 250
- 256 resilient element
- 258 end, resilient element 256
- 260 shoulder, portion 204
- 262 stop, portion 202
Claims
1. A switching roller finger follower, comprising:
- a first body portion including: a first bore including a first longitudinal axis; an outer surface; a second bore including a first orifice in the outer surface, the first orifice arranged to receive a pressurized fluid; and, a second orifice in the outer surface, the second orifice arranged to expel the pressurized fluid;
- a second body portion;
- a pin pivotably connecting the second body portion to the first body portion;
- at least one first resilient element connected to the first body portion and to the second body portion; and,
- a locking assembly including: a locking pin at least a portion of which is disposed in the first bore; and, a shuttle pin: transverse to the locking pin; engaged with the locking pin; and, arranged to be displaced transverse to the locking pin to: displace the locking pin in a first axial direction, parallel to the first longitudinal axis, to contact the second body portion with the locking pin; and, displace the locking pin in a second axial direction, opposite the first axial direction, to disengage the locking pin from the second body portion, wherein:
- the second bore includes the second orifice; or,
- the second bore: does not include the second orifice; and, is in fluid communication with the second orifice.
2. The switching roller finger follower of claim 1, wherein there is no second resilient element:
- in contact with the locking pin; or,
- through which the first longitudinal axis passes.
3. The switching roller finger follower of claim 1, wherein:
- the second bore: does not include the second orifice; and is in fluid communication with the second orifice;
- the first body portion includes: a side wall bounding the first bore; a groove in the side wall; and, a first through-bore including: the first orifice; and, a second orifice connected to the groove; and, the second bore: is a second through-bore; and, includes a third orifice connected to the groove.
4. The switching roller finger follower of claim 3, wherein the locking pin bounds an entirety of the groove when:
- the locking pin is in contact with the second body portion; and,
- the locking pin is disengaged from the second body portion.
5. The switching roller finger follower of claim 4, wherein:
- a first portion of the locking pin, in contact with the side wall, and a second portion of the locking pin, in contact with the side wall, axially bracket the groove when: the locking pin is in contact with the second body portion; and, the locking pin is disengaged from the second body portion.
6. The switching roller finger follower of claim 5, wherein:
- the first portion: is located past the groove in the first axial direction; and, extends 360 degrees about the first longitudinal axis; and,
- the second portion: is located past the groove in the second axial direction; and, extends 360 degrees about the first longitudinal axis.
7. The switching roller finger follower of claim 3, wherein a circle, centered on the first longitudinal axis and orthogonal to the first longitudinal axis, passes through the groove without intersecting the locking pin or the first body portion.
8. The switching roller finger follower of claim 3, further comprising:
- a continuous passageway: open only at the first orifice and at the second orifice; from the first orifice to the second orifice; and, consisting of the first through-bore, the groove, and the second through-bore.
9. The switching roller finger follower of claim 3, wherein:
- the locking assembly includes a second resilient element;
- the second resilient element is arranged to displace the shuttle pin in a first direction, orthogonal to the first longitudinal axis, to displace the locking pin in the first axial direction; and,
- the shuttle pin is arranged to be displaced by an actuator in a second direction, opposite the first direction, to displace the locking pin in the second axial direction.
10. The switching roller finger follower of claim 1, wherein the second bore includes the first orifice and the second orifice.
11. The switching roller finger follower of claim 10,
- wherein: the second bore includes a second longitudinal axis; and, the second longitudinal axis is: parallel to the first longitudinal axis; and, non-co-linear with the first longitudinal axis; or,
- wherein the second bore is fixed with respect to the first body portion.
12. A switching roller finger follower, comprising:
- a first body portion including: an outer surface; a bore including a longitudinal axis; a side wall bounding the bore; a groove in the side wall; a first through-bore including a first orifice at the outer surface, the first through-bore arranged to receive a pressurized fluid; and, a second through-bore including a second orifice at the outer surface, the second orifice arranged to expel the pressurized fluid;
- a second body portion;
- a pin pivotably connecting the second body portion to the first body portion;
- at least one first resilient element connected to the first body portion and to the second body portion;
- a passageway: open only at the first orifice and at the second orifice; and, from the first orifice to the second orifice through the groove; and,
- a locking assembly including: a locking pin at least a portion of which is disposed in the bore; and, a shuttle pin: transverse to the locking pin; engaged with the locking pin; and, arranged to be displaced: in a first direction, orthogonal to the longitudinal axis, to displace the locking pin in a first axial direction, parallel to the longitudinal axis, to contact the second body portion with the locking pin; and, in a second direction, opposite the first direction, to displace the locking pin in a second axial direction, opposite the first axial direction to disengage the locking pin from the second body portion.
13. The switching roller finger follower of claim 12, wherein:
- the locking assembly includes a second resilient element;
- the second resilient element is arranged to displace the shuttle pin in the first direction to displace the locking pin in the first axial direction; and,
- the shuttle pin is arranged to be displaced by an actuator in the second direction to displace the locking pin in the second axial direction.
14. The switching roller finger follower of claim 13, wherein:
- a first portion of the locking pin, in contact with the side wall, and a second portion of the locking pin, in contact with the side wall, bracket the groove when: the locking pin is in contact with the second body portion; and, the locking pin is disengaged from the second body portion;
- the first portion is located past the groove in the first axial direction and extends 360 degrees about the longitudinal axis; and,
- the second portion is located past the groove in the second axial and extends 360 degrees about the longitudinal axis.
15. A switching roller finger follower, comprising:
- a first body portion including: a first bore including a first longitudinal axis; an outer surface; a second bore including: a first orifice in the outer surface, the first orifice arranged to receive a pressurized fluid; a second orifice in the outer surface, the second orifice arranged to expel the pressurized fluid; and a second longitudinal axis, the second longitudinal axis non-co-linear with the first longitudinal axis;
- a second body portion;
- a pin pivotably connecting the second body portion to the first body portion;
- at least one first resilient element connected to the first body portion and to the second body portion; and,
- a locking assembly including: a locking pin at least a portion of which is disposed in the first bore; and, a shuttle pin: transverse to the locking pin; engaged with the locking pin; and, arranged to be displaced: in a first direction, orthogonal to the first longitudinal axis, to displace the locking pin in a first axial direction, parallel to the first longitudinal axis, to contact the second body portion with the locking pin; and, in a second direction, opposite the first direction, to displace the locking pin in a second axial direction, opposite the first axial direction to disengage the locking pin from the second body portion.
16. The switching roller finger follower of claim 15, wherein:
- the locking assembly includes a second resilient element;
- the second resilient element is arranged to displace the shuttle pin in the first direction to displace the locking pin in the first axial direction; and,
- the shuttle pin is arranged to be displaced by an actuator in the second direction to displace the locking pin in the second axial direction.
17. The switching roller finger follower of claim 15, wherein there is no resilient element:
- in contact with the locking pin; or,
- through which the first longitudinal axis passes.
18. A method of operating the switching roller finger follower recited in claim 1, comprising:
- displacing the shuttle pin in a first direction orthogonal to the first longitudinal axis;
- displacing, with the shuttle pin, the locking pin in the first axial direction;
- contacting the second body portion with the locking pin;
- displacing the shuttle pin in a second direction opposite the first direction;
- displacing, with the shuttle pin, the locking pin in the second axial direction;
- disengaging the locking pin from the second body portion;
- receiving the pressurized fluid with the first orifice; and, expelling the pressurized fluid through the second orifice in the second bore; or, transmitting the pressurized fluid through the second bore, not including the second orifice and in fluid communication with the second orifice, and expelling the pressurized fluid through the second orifice.
19. A method of operating the switching roller finger follower recited in claim 12, comprising:
- displacing the shuttle pin in the first direction;
- displacing, with the shuttle pin, the locking pin in the first axial direction;
- contacting the second body portion with the locking pin;
- displacing the shuttle pin in the second direction;
- displacing, with the shuttle pin, the locking pin in the second axial direction;
- disengaging the locking pin from the second body portion;
- receiving, with the first orifice, a pressurized fluid;
- transmitting the pressurized fluid through the passageway; and,
- expelling the pressurized fluid from the second orifice.
20. A method of operating the switching roller finger follower recited in claim 15, comprising:
- displacing the shuttle pin in the first direction;
- displacing, with the shuttle pin, the locking pin in the first axial direction;
- contacting the second body portion with the locking pin;
- displacing, with an actuator, the shuttle pin in the second direction;
- displacing, with the shuttle pin, the locking pin in the second axial direction;
- disengaging the locking pin from the second body portion;
- receiving, with the first orifice, a pressurized fluid;
- transmitting the pressurized fluid through the second bore; and,
- expelling the pressurized fluid from the second orifice.
Type: Application
Filed: Aug 14, 2018
Publication Date: Feb 20, 2020
Applicant: Schaeffler Technologies AG & Co. KG (Herzogenaurach)
Inventors: Sumukha Nagaraj (Beverly Hills, MI), David Chandler (Windsor)
Application Number: 16/102,943