TECHNICAL FIELD
[0001] Various embodiments relate generally to metal-mesh protective clothing, and more
specifically to such clothing that is easily donned and doffed.
BACKGROUND
[0002] Wire-mesh safety fabrics have a long and storied history. Wire-mesh safety fabrics
were called chainmail and used as a kind of armor in the middle ages. As the instruments
of war became more and more deadly, chainmail gave way to plate armor. And with today's
instruments of war, heavy armor is the norm for today's battle arenas. But these wire-mesh
safety fabrics have found use in other places in society, and continue to see use
even today. These wire-mesh fabrics are made into gloves and used by butchers and
woodworkers to provide cut-resistance. They are made into bodysuits and worn by scuba
divers to provide shark-resistance. They are made into bodysuits and worn by sword
fighting athletes to provide protection during competitions.
[0003] Fabrics made from metal links provide good protection from contact with sharp instruments,
while hanging well on the human form. Small links allow the necessary flexibility
that body movements require. But fabrics made from wire mesh can be difficult to don
and doff. When donning and doffing any garment, a user must cooperate with the design
of the garment. Butchers use metal-mesh garments to protect themselves from accidental
cuts and punctures from sharp knives and/or bones. Butchers often wear other safety
equipment as well. Many butchers wear helmets, earplugs, safety glasses, breathing
filters, and/or mobcaps. Butchers often work in a refrigerated environment, requiring
heavy clothing in addition to their butcher specific safety clothing.
SUMMARY
[0004] Apparatus and associated methods relate to a metal-mesh tunic having an apron region
and two full-length sleeves, the tunic presenting a closed-figure neck aperture through
which a user's head and neck project when worn, the neck aperture becoming an open-figure
to facilitate easy donning and doffing without requiring a pullover action. In an
illustrative embodiment, the tunic may present a contiguous protective surface from
the neck region of a user down to a knee region. In some embodiments, a closure system
may secure the tunic to a user by fixing the closed-figure neck aperture around the
user's neck. The closure system may have a buckle including a male member attached
to one side of the neck region and a female member on an other side of the neck region.
In an exemplary embodiment, the metal-mesh tunic may advantageously provide full frontal
armored protection in an easily donned garment.
[0005] Apparatus and associated methods may relate to a metal-mesh glove having a hand region
and a wrist region, the wrist region having a metal-mesh securing band attached to
the wrist region at a fixed end and having a magnet attached to a free end, wherein
the metal-mesh securing band may secure the glove to a user by circumscribing the
wrist of the user, the magnet attaching to an underlying circumscribed portion of
the securing band. In some embodiments, the wrist region of the metal-mesh glove may
be configured to receive a hand and wrist inserted into the metal-mesh glove. Metal-mesh
fabric at the wrist region may then be gathered as the securing band circumscribes
the wrist. The metal-mesh of the securing band may include interconnecting metal links
of ferromagnetic material. In an exemplary embodiment, the metal-mesh glove may advantageously
be easily removed by a metal-mesh gloved hand of a user.
[0006] Various embodiments may achieve one or more advantages. For example, some embodiments
may permit a wearer to don a protective metal-mesh garment without having to first
remove headgear. In some embodiments, safety masks may remain firmly in place throughout
the donning and/or doffing of metal-mesh safety clothing. In an exemplary embodiment,
a metal-mesh tunic may have comparatively light weight as optimally sized metal links
may be used. In some embodiments, metal-mesh protective clothing may be easily donned
and/or doffed by hand operations performed by a gloved wearer.
[0007] In some embodiments, an easily doffed tunic may be quickly removed from an injured
or unconscious wearer. For example, if a wearer experiences heart failure, it may
be necessary to quickly doff the wearer's tunic so as to provide immediate defibrillation
therapy. Or, in the case of a knife injury, it may be necessary to quickly doff the
injured persons' tunic so as to apply immediate compression to reduce the blood loss.
In some examples the quick removal may be facilitated by open figure of the neck aperture,
which may permit removal without an overhead maneuver.
[0008] The details of various embodiments are set forth in the accompanying drawings and
the description below. Other features and advantages will be apparent from the description
and drawings, and from the claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
FIGS. 1A-1C depict an exemplary donning sequence of a butcher preparing to suit up
for a butchering session.
FIGS. 2A-2B depict a front view and a back view of an exemplary neck-opening metal-mesh
tunic.
FIG. 3 depicts a front view of an exemplary easily donned metal-mesh tunic worn by
a model.
FIG. 4 depicts a back view of an exemplary neck-opening metal-mesh tunic.
FIGS. 5A-5K depicts various embodiments of neck-opening metal-mesh tunics.
FIG. 6 depicts an exemplary easily donned metal-mesh glove worn by a model.
FIG. 7 depicts a close-up view of an exemplary magnetic wrist-securing metal-mesh
glove worn by a model.
FIG. 8 depicts a figure illustrating an exemplary comparison of respective puncture
depths for fabrics made of 7 mm outside diameter rings and 6 mm outside diameter rings.
FIG. 9 depicts a schematic showing exemplary relationships between an illustrative
knife blade angle, ring diameter and puncture depth.
FIG. 10 depicts a plot of exemplary performance to illustrate a relationship between
the ring diameter and stab test results.
[0010] Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0011] To aid understanding, this document is organized as follows. First, an exemplary
donning procedure is briefly introduced with reference to FIG. 1 to describe the attributes
that facilitate donning and doffing of exemplary metal-mesh clothing. Second, with
reference to FIGS. 2-5, various exemplary metal-mesh tunics will be described. Then,
with reference to FIGS. 6-7, the discussion turns to exemplary embodiments of metal-mesh
gloves that illustrate features that promote easy donning and doffing. Finally, with
reference to FIGS. 8-10, further explanatory discussion and experimental data is presented
to explain the various advantages of different metal-mesh fabric styles.
[0012] FIGS. 1A-1C depict an exemplary donning sequence of a butcher preparing to suit up
for a butchering session. In FIGS. 1A-1C, three exemplary steps for donning a metal-mesh
suit are shown. In a first step 101, as depicted in FIG. 1A, a butcher 110 has already
inserted both arms 115 into sleeves 120 of a metal-mesh tunic 125. The tunic 125 is
depicted draped onto the butcher 110 and supported by the arms 115. The butcher is
depicted wearing a face mask 130 and a helmet 135. In a second step 102, as depicted
in FIG. 1B, the butcher is releasably securing the metal-mesh tunic 125 to the butcher's
body. The butcher 110 is fastening a securing member 140 located near an upper back
region 145 of the butcher 110. When the securing member 140 is releasably secured,
a closed-figure neck aperture will be defined, through which a neck 150 and head 155
of the butcher 110 will project therethrough. Prior to releasably securing the securing
member 140, the neck aperture is an open-figure, permitting the butcher 110 to don
the metal-mesh tunic 125 without having to pull the metal-mesh tunic 125 over the
butcher's head 155.
[0013] In a third step 103, as depicted in FIG. 1C, the butcher 110 is depicted securing
a metal-mesh glove 160 to a left hand 165 of the butcher 110. The depicted butcher
110 may be right handed, and may only glove the left hand 165 with a metal-mesh glove
160. A right hand 170 may be the hand used for wielding a butcher's knife, and may
only be gloved with a latex glove 185, for example. In the third step 103, the butcher's
latex-gloved right hand 170 is depicted grasping a graspable magnetic securing member
175 attached to a metal-mesh securing strap 180. The strap has been placed circumferentially
around a wrist 180 of the butcher 110. The magnetic securing member 175 may be releasably
coupled to a portion of the metal-mesh securing strap directly beneath the magnetic
securing member 175. Both the metal-mesh tunic 125 and the metal-mesh glove 160 may
be easily donned by the butcher 110, who is depicted wearing latex gloves 185, a helmet
135, and a face mask 130.
[0014] FIGS. 2A-2B depict a front view and a back view of an exemplary neck-opening metal-mesh
tunic. In FIG. 2A, an exemplary metal-mesh tunic 200 is depicted from a frontal view.
The depicted metal-mesh tunic 200 has an apron portion 205 and two full-length sleeves
210. The metal-mesh tunic has a neck aperture 215 through which a wearer's head and
neck may project therethrough. The metal-mesh tunic 200 may provide contiguous coverage
from the shoulders of a wearer down to the knee region of the wearer. This exemplary
metal-mesh tunic permits unprotected frontal exposure of only the lower legs of a
wearer, the hands of a wearer, and the neck and head of a wearer.
[0015] In FIG. 2B, the exemplary metal-mesh tunic 200 is depicted from a back-side view.
The depicted metal-mesh tunic has a rear closure system 220. The rear closure system
includes one or more closure members 225. The closure system may permit the neck aperture
215 to open. When the closure system secures the metal-mesh tunic 200 to the wearer,
the neck aperture is defined by a closed figure of surrounding metal-mesh. By opening
the neck aperture 215, the metal-mesh tunic may advantageously be donned without having
to perform a pull-over operation as may be necessitated with a permanently closed-figure
neck aperture. Such a pull-over operation may be difficult for wearer's who are already
wearing other head-gear. For example, if a wearer is wearing a helmet or a face-mask,
a fixed closed-figure neck aperture may be undersized to permit a helmeted heat to
project therethrough. In another example, by performing a pull-over operation to don
a metal-mesh tunic, a wearer's gas-mask may be inadvertently dislodged exposing the
wearer to potentially dangerous atmospheric toxins. An openable neck aperture may
permit a metal-mesh tunic to be simply draped over the wearer as the wearer inserts
both arms into the sleeves. Then the wearer may releasably secure a closure member
225 to close the figure of the neck aperture and releasably secure the garment to
the wearer's body. In the depicted embodiment, a wearer must reach behind the head
or back and secure one of the closure members 225.
[0016] FIG. 3 depicts a front view of an exemplary easily donned metal-mesh tunic worn by
a model. In FIG. 3, an exemplary metal-mesh tunic 300 includes a metal fabric 305
which includes interconnected metal rings. Each metal ring may interconnect with one
or more of its nearest neighbors. Various interconnect patterns may be used. In some
embodiments, a hexagonal close-pack arrangement may be used. In some embodiments,
each ring may interconnect with one or more of its nearest neighbors. For example,
each ring may link 3, 4, 6, 8, or more of its surrounding neighbors. The size and
diameter of each ring may affect the weight of the fabric as well as its resistance
to punctures and cuts.
[0017] FIG. 4 depicts a back view of an exemplary neck-opening metal-mesh tunic. In FIG.
4, the metal-mesh tunic 300 is depicted from the back-side. The depicted metal-mesh
tunic has four closure members 405. Each of the closure members has a male member
410 which is separable from a female member 415. The male and female members 410,
415 may be secured to each other by inserting the male member 410 into the female
member 415. The male member 410 may have locking tabs that engage the female member
415 when inserted.
[0018] In the depicted embodiment, four closure members are shown. Various means for releasably
securing the metal-mesh tunic to a wearer's body may be used. For example, various
types of buckles may be used to secure a metal-mesh tunic to a wearer's body. Zippers
may be used to secure a metal-mesh tunic to a body. Magnetic fasteners may be used
to join two regions of a metal-mesh garment to each other, for example. Buttons and/or
snaps may be used to releasably secure a metal-mesh garment to a wearer's body. The
releasable securement means may include a graspable feature. The graspable feature
may be sized to be easily grasped by a gloved hand.
[0019] FIGS. 5A-5K depicts various embodiments of neck-opening metal-mesh tunics. In FIG.
5, a variety of open neck-aperture designs are depicted. Each distinct embodiment
depicted demonstrates a means of releasably closing the open-figure neck aperture.
For example, an exemplary metal-mesh design 500 shows a closure system with closure
members 505 coupling each other at a front of the design 500. Closure straps 510 connect
from the back-side of the design 500 at an upper back region 515. Another exemplary
metal-mesh design 520 shows a closure system with closure members 505 separately coupled
at a right side and left side of the front of the design 520. In the depicted design
520, the closure members 505 may each couple at a non-horizontal angle at the lateral
frontal coupling locations. In a third exemplary design 525, the closure members 505
may separately couple at a horizontal angle at lateral frontal locations of the design
525. In a fourth metal-mesh tunic design 530, the coupling member may be a vertical
zipper located at the upper back region of the design 530. In a fifth design 535,
snap fasteners 540 may open the neck aperture figure at a frontal location 545. A
right sleeve 550 may be permanently attached only via a metal-mesh fabric located
across an upper back region of the design 540. In a sixth design 555, a zipper 560
may be used to releasably close the neck aperture. In a seventh design 565, a frontal
zipper 570 may releasably close the neck aperture. An openable neck-aperture figure
may advantageously facilitate easy donning and doffing of the garment, especially
when headgear is worn by the wearer.
[0020] FIG. 6 depicts an exemplary easily donned metal-mesh glove worn by a model. In FIG.
6, a metal-mesh glove 600 includes a hand portion 605 and a gauntlet portion 610.
The gauntlet portion 610 of the glove may be configured to receive a hand and wrist
of a human. At a wrist region 615, a wrist strap 620 is coupled to the metal-mesh
glove 600 at a fixed end. The depicted wrist strap has a length greater than a circumference
of the depicted wearer's wrist 625. The wrist strap is fashioned from metal-mesh fabric.
The metal-mesh fabric may include Ferro-magnetic material. A graspable magnetic fastener
630 is coupled to a free end 635 of the wrist strap 620. The wrist strap 620 is shown
partially circumscribing the wearer's wrist 625.
[0021] FIG. 7 depicts a close-up view of an exemplary magnetic wrist-securing metal-mesh
glove worn by a model. In the FIG. 7 depiction, an exemplary magnetic wrist-securing
metal-mesh glove 700 is being modeled on a human hand 705. A graspable magnetic fastener
710 may be releasably coupled to the wrist strap 620. Note that two different styles
of metal-mesh fabric are used in this exemplary embodiment, one for the wrist strap
620 and one for the hand portion 605 and gauntlet portion 610 of the metal-mesh glove
700. Some embodiments may use identical styles of metal-mesh fabric for the wrist
strap 620 as both the hand portion 605 and wrist portion 620. Various metal-mesh fabric
styles have different properties. For example, some metal-mesh fabric styles may be
lighter. Some metal-mesh fabric styles may provide better puncture protection, for
example.
[0022] FIG. 8 depicts a figure illustrating an exemplary comparison of respective puncture
depths for fabrics made of 7 mm outside diameter rings and 6 mm outside diameter rings.
In FIG. 8, two different wire-mesh (WMSF) safety fabrics are depicted. A 7 mm outside-diameter
rings safety-fabric 800 is shown on the left, and a 6 mm outside-diameter ring safety-fabric
805 is shown on the right. A first 30° knife blade 810 is shown protruding one of
the 7 mm outside-diameter rings 815. The first knife blade 810 protrudes the 7 mm
outside-diameter ring 815 to a depth of 9.9 mm. A second 30° knife blade 820 is shown
protruding one of the 6 mm outside-diameter rings 825. The second knife blade 820
protrudes the 6 mm outside-diameter ring 825 to a depth of 7.9 mm. This represents
approximately a 20% reduction in penetration depth.
[0023] FIG. 9 depicts a schematic showing exemplary relationships between an illustrative
knife blade angle, ring diameter and puncture depth. In FIG. 9, a knife 900 is depicted
in schematic form with a blade angle 905 represented by the symbol 'a'. A puncture
length 910 is depicted as the depth of the blade that protrudes through and beyond
a ring 915. An internal diameter 920 of the ring 915 is represented by the symbol
'd'. The knife's puncture length 910, 'L', can be represented in terms of the internal
ring diameter 920, and the knife's blade angle 905, by the following formula: L =
d/tan(a). A table 925 shows the penetration depth of a 5.7 mm inside diameter ring
to be 9.9 mm for a 30° knife blade. The table 925 also shows the penetration depth
of a 4.75 mm inside diameter ring to be 8.2 mm for a 30° knife blade.
[0024] FIG. 10 depicts a plot of exemplary performance to illustrate a relationship between
the ring diameter and stab test results. In FIG. 10, a chart 1000 plots test points
on an x-y grid. An x-axis 1005 of this chart 300 represents the outside-diameter of
the ring. A y-axis 1010 of this chart 1000 represents the wire diameter used to make
the ring. The weight of the resulting garment is represented by the size of the circle
on the chart. The fill-pattern of each circle on the chart represents the safety result
of the stab test. A speckled fill-pattern indicates that the stab test failed, and
an unfilled circle indicates a passing stab test. A circle with a diagonal fill-pattern
represents the optimal solution with regard to both weight and stab test result. A
circle 1015 is located at the outside-diameter of 4 mm and a wire diameter of 0.5
mm. A garment made from this ring/wire combination passed the stab test as indicated
by the diagonal fill-pattern. The weight of a garment made of this ring/wire combination
is approximately the median of all tested. Thus circle 1015 represents an average
weight, but a failed stab test. Another circle 1020 is located at the outside-diameter
of 7 mm and a wire diameter of 0.7 mm. This circle 1020 has a speckled fill-pattern
indicating that the garment made of this ring/wire combination failed the stab test.
The size of circle 1020 is one of the larger circles of all those tested. Thus, the
garment made of this ring/wire combination is relatively heavy.
[0025] A number of ring/wire combinations are tested around the 6 mm ring diameter and 0.6
mm wire diameter region of the chart 1000. The goal of this testing is to find the
optimal combination of ring diameter and wire diameter that would both provide for
good stab protection and light weight. A circle 1025 with a diagonal fill-pattern
represents the combination of an outside ring diameter of 6.2 mm and a wire diameter
of 0.6 mm. This circle 1025 has a diagonal fill-pattern which represents a passing
stab test. The size of the circle 1025 is one of the smaller circles on the chart,
which means that a garment made of this ring/wire combination is relatively light,
especially when compared to the combinations represented by the circles 1015 and 1020.
Other acceptable combinations are presented on this figure 1000, such as the ring/wire
combination represented by circle 1030. Circle 1030 represents a ring/wire combination
of 0.6 mm outside ring diameter and 0.575 wire diameter. This combination 1030 also
passes the stab test and has a garment weight that is approximately that of the combination
represented by circle 1025. Thus both solutions are good solutions for producing stab
protection while simultaneously permitting the manufacture of light-weight garments.
[0026] Although various embodiments have been described with reference to the Figures, other
embodiments are possible. For example, some embodiments may relate to an earlier and
related
PCT/EP2011/061886 (filed 12 July 2011) application that describes examples of tensile strength of mesh metal.
[0027] Another improvement proposed concerned the steel used for making the rings. Actually,
the possibility of using very hard and very strong steel was thought to be limited
by the web making techniques, especially the necessary operations of metal particle
cutting, drawing, forming, bending and/or welding. If used, very hard and very strong
metals would enable obtaining webs having higher strength and hardness properties
than conventional webs, or having similar properties, but with a lighter weight because
a smaller thickness would be used.
[0028] FR-2898250 discloses a method for obtaining hard steel as a base material for making the steel
rings, of structurally hardened metal, namely metal presenting in a certain state
relatively low strength and hardness characteristics and, in any case, compatible
with the steel ring cutting and shaping operations (and possibly the metal web forming
operation) and supposedly presenting, after a heat treatment, higher strength characteristics,
especially higher than those compatible with the aforementioned cutting/shaping (and
possibly forming) operations.
[0029] The heat treated web is possibly not totally in the form that is used for making
the final garment. In this case, the corresponding web is finalized by any technique
appropriate to the strength and hardness of the metal rings. For example, the steel
attaching rings can be made of a conventional stainless steel the properties of which
satisfy to the standards in force and which can be bent without being dominantly harmful
to the strength of the web assembly. Optionally, before the steel particles or the
web are shaped, the steel is subjected to a mechanical deformation/elongation, such
as kneading, which enables obtaining a work hardening of the steel to approach the
shaping capability limits of the steel elements (according to the available equipment
and techniques). This particularity enables optimizing the later heat treatment to
obtain the highest possible strength and hardness characteristics.
[0030] However, it has been found that the above known techniques are not always satisfactory.
Changing the conventional dimensions of the rings and the diameter of the steel wire
also change the way the fabric behaves and this may be not satisfactory in some instances.
As for the heating and mechanical treatment proposed, it has the disadvantage of making
the process longer and also, in case the treatment is not correctly performed, the
disadvantage of rendering the wire brittle or easily breakable.
[0031] An exemplary embodiment includes chain mail fabric for protective piece of garment
made of a mesh of interlocking rings which rings have an external diameter of between
3.98 and 4.02 mm and are made with a wire whose diameter is between 0.47 and 0.52
mm exhibiting a tensile strength between about 1300 and 1500 N/mm
2.
[0032] This is much above the usual tensile strength of conventional wires of 0.5 mm in
diameter, whose tensile strength is often comprised between 680 and 750 N/mm
2. It is even more that the conventional wires of 0.55 mm in diameter, whose tensile
strength is generally comprised between 900 and 1050 N/mm
2.
[0033] In accordance with an exemplary embodiment, such characteristics are exhibited by
rings formed from an embodiment of steel having an austeno-ferritic structure. One
exemplary composition includes Fe with:
- a C content not higher than 0.03 % by weight
- a Mn content not higher than 2.00% by weight
- a Si content not higher than 0.75% by weight
- a S content not higher than 0.01% by weight
- a P content not higher than 0.030% by weight
- a Ni content of between 4.50% by weight and 6.50% by weight
- a Cr content of between 21 % by weight and 23 % by weight
- a Mo content of between 2.50% by weight and 3.50% by weight
- a N content of between 0.15% by weight and 0.20% by weight
the balance being substantially Fe and incidental impurities.
[0034] An embodiment of steel comprising the above specified composition yields a wire of
high tensile strength without the need for thermal treatment. The wires were processed
according to a conventional method in web machines to form mail fabric which was found
to be comfortable, with good protection properties against perforation, and not too
heavy.
[0035] The pieces of garment can be, for example, gloves, sleeves, aprons, chasubles, jackets,
etc. If necessary, some parts of the protective garments can be made in other material,
according to the level of protection required for the different parts of the garment.
For example, a jacket can be made with a body and sleeves made from titanium in order
to have a lighter jacket.
[0036] In the case of gloves, by comparison with steel mesh gloves made with a 0.5 mm wire
having a tensile strength between 680 and 750 N/mm
2, it has been found that the use of a wire with higher tensile strength between 1300
and 1500 N/mm
2 substantially doubles the lifetime of the glove.
[0037] In various embodiments, devices may involve the WMSF being made in the form of a
glove. In another exemplary embodiment, the WMSF is made in the form of a sleeve.
In an exemplary embodiment the WMSF is made in the form of an apron. In accordance
with another embodiment, the WMSF is made in the form of a tunic. In still another
exemplary embodiment, the WMSF is made in the form of a pull-over (with a body and
sleeves). In another exemplary embodiment the WMSF is made in the form of body armor.
[0038] In an exemplary embodiment, a portion of a garment will be made using steel rings
and another portion of the garment may be made using titanium rings. Such a garment
may have increased strength in certain critical locations, while permitting light
weight in certain locations. In accordance with another embodiment, the steel may
have an austeno-ferritic structure, which may permit the metal to have both excellent
corrosion resistance and still be malleable at room temperatures.
[0039] In various embodiments, the ring arrangement may be such that each ring links multiple
adjacent rings. In some embodiments, the rings will have a hexagonal close-packed
structure, where each ring will link the two closest rings in the row above and the
two closest rings in the row below the one in which it resides. In other embodiments,
each ring may link a fewer or a greater number of adjacent rings.
[0040] In an illustrative embodiment, a metal-mesh tunic for easy donning and doffing without
the need for the removal of headgear may include a metal-mesh fabric having a plurality
of interconnecting metal rings. In some embodiments, the metal-mesh fabric may have
an apron portion extending from a neck region to a knee region. In some embodiments,
the metal-mesh fabric may have two sleeves, each of the two sleeves connecting to
the apron portion. In an exemplary embodiment, the metal-mesh tunic may include a
closure system having an open mode and a closed mode, wherein when in the closed mode,
a neck region is securely closed to present a closed-figure aperture through which
the user's neck and head project, when worn. In some embodiments, when in the open
mode, the neck region may be opened to present an open-figure aperture such that the
apron portion can be freely draped onto the front of a user, when the user inserts
each of a user's arms into each corresponding one of the tunic's two sleeves.
[0041] In another illustrative embodiment, a metal-mesh glove for easy donning and doffing,
the metal-mesh glove may include a metal-mesh fabric comprising a plurality of interconnecting
metal rings, the metal-mesh fabric having an hand portion configured to receive a
user's hand such that each of a user's fingers are received into a corresponding finger
receptacle. In some embodiments, the metal-mesh fabric may have a wrist portion configured
provide continuous circumferential protection to a user's wrist, when worn. In an
exemplary embodiment, the metal-mesh glove may include a closure system having an
open mode and a closed mode, wherein when in the closed mode, a metal-mesh wrist strap,
having a fixed end attached to the wrist portion of the metal-mesh fabric, circumscribes
the wrist and a magnet attached to a free end of the metal-mesh wrist strap is affixed
to the metal-mesh wrist strap at the same circumferential location and directly beneath
the magnet. In some embodiments, the closure system may include a grasp handle coupled
to the magnet for providing a graspable feature by a metal-mesh gloved hand of a user.
[0042] A number of implementations have been described. Nevertheless, it will be understood
that various modification may be made. For example, advantageous results may be achieved
if the steps of the disclosed techniques were performed in a different sequence, or
if components of the disclosed systems were combined in a different manner, or if
the components were supplemented with other components. Accordingly, other implementations
are within the scope of the following claims.
1. A metal-mesh tunic for easy donning and doffing without the need for the removal of
headgear, the metal-mesh tunic comprising:
a metal-mesh fabric comprising a plurality of interconnecting metal rings, the metal-mesh
fabric having an apron portion extending from a neck region to a knee region, the
metal-mesh fabric having two sleeves, each of the two sleeves connecting to the apron
portion; and
a closure system having an open mode and a closed mode, wherein when in the closed
mode, a neck region is securely closed to present a closed-figure aperture through
which the user's neck and head project, when worn, and when in the open mode, the
neck region is opened to present an open-figure aperture such that the apron portion
can be freely draped onto the front of a user, when the user inserts each of a user's
arms into each corresponding one of the tunic's two sleeves.
2. The device of claim 1, wherein each ring has an external diameter of between 5.95 mm and 6.05 mm.
3. The device of claim 1, wherein each ring has a wire diameter of between 0.61 mm and 0.63 mm.
4. The device of claim 1, wherein the rings are made of stainless steel.
5. The device of claim 1, wherein at least some of the rings further comprise titanium.
6. The device of claim
1, wherein the rings are made of steel having an austeno-ferritic structure comprising
Fe with:
a C content not higher than 0.03% by weight;
a Mn content not higher than 2.00% by weight;
a Si content not higher than 0.75% by weight;
a S content not higher than 0.01 % by weight;
a P content not higher than 0.03% by weight;
a Ni content not higher than 0.03% by weight;
a Cr content not higher than 0.03% by weight;
a Mo content not higher than 0.03% by weight;
a N content not higher than 0.03% by weight; and
a balance being substantially Fe and incidental impurities.
7. The device of claim 1, wherein the closure system comprises a buckle having a male member and a female member,
the male member attaching to a first side of the neck region, and the female member
attached to a second side of the neck region.
8. A metal-mesh tunic for easy donning and doffing without the need for the removal of
headgear, the metal-mesh tunic comprising:
a metal-mesh fabric comprising a plurality of interconnecting metal rings, the metal-mesh
fabric having an apron portion extending from a neck region to at least a waist region,
the metal-mesh fabric having two sleeves, each of the two sleeves connecting to the
apron portion; and
a closure system having an open mode and a closed mode, wherein when in the closed
mode, a neck region is securely closed to present a closed-figure aperture through
which the user's neck and head project, when worn, and when in the open mode, the
neck region is opened to present an open-figure aperture such that the apron portion
can be freely draped onto the front of a user, when the user inserts each of a user's
arms into each corresponding one of the tunic's two sleeves.
9. A metal-mesh glove for easy donning and doffing, the metal-mesh glove comprising:
a metal-mesh fabric comprising a plurality of interconnecting metal rings, the metal-mesh
fabric having an hand portion configured to receive a user's hand such that each of
a user's fingers are received into a corresponding finger receptacle, the metal-mesh
fabric having a wrist portion configured provide continuous circumferential protection
to a user's wrist, when worn; and
a closure system having an open mode and a closed mode, wherein when in the closed
mode, a metal-mesh wrist strap, having a fixed end attached to the wrist portion of
the metal-mesh fabric, circumscribes the wrist and a magnet attached to a free end
of the metal-mesh wrist strap is affixed to the metal-mesh wrist strap at the same
circumferential location and directly beneath the magnet, wherein a grasp handle is
coupled to the magnet for providing a graspable feature by a metal-mesh gloved hand
of a user.
10. The device of claim 9, wherein at least some of the rings have an external diameter of between 5.95 mm and
6.05 mm.
11. The device of claim 9, wherein at least some of the rings have a wire diameter of between 0.61 mm and 0.63
mm.
12. The device of claim 9, wherein at least some of the rings comprise stainless steel.
13. The device of claim 9, wherein at least some of the rings comprise titanium.
14. The device of claim
9, wherein at least some of the rings comprise steel having an austeno-ferritic structure
comprising Fe with:
a C content not higher than 0.03% by weight;
a Mn content not higher than 2.00% by weight;
a Si content not higher than 0.75% by weight;
a S content not higher than 0.01 % by weight;
a P content not higher than 0.03% by weight;
a Ni content not higher than 0.03% by weight;
a Cr content not higher than 0.03% by weight;
a Mo content not higher than 0.03% by weight;
a N content not higher than 0.03% by weight; and
a balance being substantially Fe and incidental impurities.
15. The device of claim 9, wherein the metal-mesh of the wrist strap comprises Ferro-magnetic material.
16. The device of claim 9, wherein the wrist strap has a length of at least four inches.
17. A metal-mesh protective outfit comprising:
a tunic for easy donning and doffing without the need for the removal of headgear,
the metal-mesh tunic comprising:
a metal-mesh fabric comprising a plurality of interconnecting metal rings, the metal-mesh
fabric having an apron portion extending from a neck region to a knee region, the
metal-mesh fabric having two sleeves, each of the two sleeves connecting to the apron
portion; and
a closure system having an open mode and a closed mode, wherein when in the closed
mode, a neck region is securely closed to present a closed-figure aperture through
which the user's neck and head project, when worn, and when in the open mode, the
neck region is opened to present an open-figure aperture such that the apron portion
can be freely draped onto the front of a user, when the user inserts each of a user's
arms into each corresponding one of the tunic's two sleeves; and
a metal-mesh glove for easy donning and doffing, the metal-mesh glove comprising:
a metal-mesh fabric comprising a plurality of interconnecting metal rings, the metal-mesh
fabric having an hand portion configured to receive a user's hand such that each of
a user's fingers are received into a corresponding finger receptacle, the metal-mesh
fabric having a wrist portion configured provide continuous circumferential protection
to a user's wrist, when worn; and
a closure system having an open mode and a closed mode, wherein when in the closed
mode, a metal-mesh wrist strap, having a fixed end attached to the wrist portion of
the metal-mesh fabric, circumscribes the wrist and a magnet attached to a free end
of the metal-mesh wrist strap is affixed to the metal-mesh wrist strap at the same
circumferential location and directly beneath the magnet, wherein a grasp handle is
coupled to the magnet for providing a graspable feature by a metal-mesh gloved hand
of a user.
18. The protective outfit of claim 17, wherein the metal-mesh of the wrist strap comprises Ferro-magnetic material.
19. The device of claim 17, wherein the wrist strap has a length of at least four inches.
20. The device of claim 17, wherein the metal-mesh of the wrist strap comprises Ferro-magnetic material.