JPS5898548A - Insulating construction by reactive acrylic adhesive - Google Patents

Insulating construction by reactive acrylic adhesive

Info

Publication number
JPS5898548A
JPS5898548A JP19536681A JP19536681A JPS5898548A JP S5898548 A JPS5898548 A JP S5898548A JP 19536681 A JP19536681 A JP 19536681A JP 19536681 A JP19536681 A JP 19536681A JP S5898548 A JPS5898548 A JP S5898548A
Authority
JP
Japan
Prior art keywords
adhesive
acrylic adhesive
reactive acrylic
insulating construction
construction
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP19536681A
Other languages
Japanese (ja)
Inventor
野川 隆志
磯部 完二
加島 淳吉
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
NOGAWA CHEMICAL KK
Original Assignee
NOGAWA CHEMICAL KK
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by NOGAWA CHEMICAL KK filed Critical NOGAWA CHEMICAL KK
Priority to JP19536681A priority Critical patent/JPS5898548A/en
Publication of JPS5898548A publication Critical patent/JPS5898548A/en
Pending legal-status Critical Current

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Abstract

(57)【要約】本公報は電子出願前の出願データであるた
め要約のデータは記録されません。
(57) [Summary] This bulletin contains application data before electronic filing, so abstract data is not recorded.

Description

【発明の詳細な説明】 インサルピン工法とは、断熱、防音を目的として建物の
屋根裏にグラスウールを取付ける工法で、インサルピン
と呼ばれる第1図の様なピンを屋根材にまず接着し、次
にピンにグラスウール板を差し込んだ後ピン先を曲げて
グラスウールを保持する工法である。
[Detailed description of the invention] The Insulpin method is a method of attaching glass wool to the attic of a building for the purpose of heat insulation and soundproofing. A pin called an Insulpin, as shown in Figure 1, is first glued to the roofing material, and then the pin is attached to the roofing material. This method involves inserting a glass wool plate and then bending the tip of the pin to hold the glass wool.

本発明は、このピンの屋根材への接着を接触反応製アク
リル系接着剤を用いて施行することを特徴とするもので
ある。
The present invention is characterized in that the pin is adhered to the roofing material using a contact reaction acrylic adhesive.

インサルピン工法そのものは特に新しい工法ではな〈従
来は、エポキシ系接着剤、速乾型ゴム系接着剤等で接着
が行なわれていたが、作業性の面で、あるいは接着性の
面で不満足であり、実際に、施工後航空磯の衝撃波等で
インサルビンがはがれて落ちた例も報告されている。
The Insulpine method itself is not particularly new. Previously, bonding was done with epoxy adhesives, quick-drying rubber adhesives, etc., but they were unsatisfactory in terms of workability and adhesion. In fact, there have been reports of Insulvin peeling off and falling off due to shock waves from aerial rocks after construction.

本発明の利点は、第1に作業性にすぐれている事である
。このタイプの接着剤は、本則とプライマー(反応開始
剤)から成っているものと、両主剤から成っているもの
とあるが、いずれの場合も2液を塗り分けて接触させる
だけで反応硬化、短時間に接着が完了するものである。
The first advantage of the present invention is that it has excellent workability. This type of adhesive can be made up of a main ingredient and a primer (reaction initiator) or it can be made up of both main ingredients. Adhesion can be completed in a short time.

その為エポキシ系接着剤の様に同じ2液でも事前計量混
合を必要とするものにくらべ、作業が省力化出来る。
Therefore, compared to epoxy adhesives, which require pre-measurement and mixing of the same two liquids, it can save labor.

又混合に伴う計量ミス、ポットライフ切れによる接着剤
のコスも防げる。速乾のゴム系は比較的作業性は、良い
が、強度の発現にはやはり時間を要すし、肉やせの問題
もある。本発明でインサルピンを接着した場合、これら
作業性の問題ン士全てF・、′決する。
It also prevents measuring errors caused by mixing and cost of adhesive due to pot life expiration. Quick-drying rubber-based materials are relatively easy to work with, but they still require time to develop strength and have the problem of thinning. When the insulpin is bonded according to the present invention, all of these workability problems are resolved.

第2の利点は、接着性能がエポキシ系やゴム系にくらべ
てはるかにすぐれている事である。
The second advantage is that adhesive performance is far superior to epoxy and rubber systems.

インサルピン自体はそれ程強度はなく、50〜60 K
V′inの引張強度でピン破断もしくはピン抜けを起こ
してしまうが、実際の接着面には、先に述べた衝撃波、
振動、熱、寒さ、湿度等。
Insalpine itself is not very strong, 50-60 K
The tensile strength of V′in will cause the pin to break or fall out, but the actual bonding surface will be affected by the shock waves mentioned above,
Vibration, heat, cold, humidity, etc.

種々な外的要因が加わる為、かなりの耐久性が接着剤に
要求される。これら耐久性能においてエポキシ系やゴム
系では不安があり、まして10年20年という長期にわ
たってこれらのショックがくり返されるのでちれば、安
全なインサルピン施工は得られないと言うのが現状であ
る。過去にもはがれ落下事故は何度か起きている。
Adhesives are required to have considerable durability due to various external factors. There are concerns about the durability of epoxy and rubber materials, and the current situation is that if these shocks are repeated over a long period of 10 to 20 years, safe insulpin construction cannot be achieved. A number of accidents involving peeling off and falling have occurred in the past.

本発明者らは、こうしたインサルピン工法の現状に注目
し、更に信頼性の高い、作業省力化のはかれる接着工法
を見つけるべく本発明を行なった。
The present inventors paid attention to the current state of the Insulpin construction method, and conducted the present invention in order to find a more reliable and labor-saving adhesive construction method.

S G A (5econd Generation 
Acrylic Adhesi+に代表されるこの接着
剤は、本来構造用途に使耐寒性、耐水性等により広〈産
業界で利用されており、信・唄されている。大きな特長
の1つは油面接着性を有す事で、これも施工現場では作
業省力化をはかる上で望まれていた事である。
SGA (5econd Generation
This adhesive, represented by Acrylic Adhesi+, is originally used for structural purposes, and is widely used in industry due to its cold resistance, water resistance, etc., and is widely believed and praised. One of its major features is its ability to adhere to oil surfaces, which is also desired at construction sites in order to save labor.

インサルピン工法の今後の発展拡大に必ず寄与するもの
と確信する。
We are confident that this will definitely contribute to the future development and expansion of the Insalpine method.

以下実施例において具体的な接着方法を記す。A specific adhesion method will be described below in Examples.

実施例 1 ダイアポンド5G−11によるインサルピン接着試験 ○ 屋根材 カラー鉄板(アクリル塗面)○ インサル
ビン 鋼製、ピンは銅 25 +1nm X 25 m
ff接着方法 カラー鉄板に5G−11の本則を塗布、インサルピン側
にプライマー(反応開始剤)を塗布し、インサルピンを
カラー鉄板に押し付ける様にし一1ee  て貼り合わ
せた後すぐに手を離す。この際インサルビンはぶら下っ
た状態になっているが1(手を離した直後の静荷重限界
は約20gである。ちなみにインサルビンは3〜5gが
普通テある。)接着剤の固着前に自重で落下する事はな
く、数分后には反応硬化して固着は完了する為非常に作
業性は良好である。
Example 1 Insulpin adhesion test using Diapond 5G-11 ○ Roofing material Colored iron plate (acrylic painted surface) ○ Insulvin Steel, pins are copper 25 +1 nm x 25 m
ff Adhesion method Apply the basic rule of 5G-11 to the colored iron plate, apply a primer (reaction initiator) to the insulpin side, press the insulpin against the colored iron plate, and immediately remove your hand after bonding. At this time, the insulbin is in a dangling state, but 1 (the static load limit immediately after releasing the hand is about 20 g. By the way, insulbin is normally 3 to 5 g). It does not fall and the reaction hardens and fixation is completed after a few minutes, so workability is very good.

室温 (を ]25°C 養 日間 今後 −200C (島 津) 引張速度 50mル/min 常態10分后ではピン破断までは至らないが、1日后、
4日后、熱老化后はすべてピン破断もしくはピン抜け、
実際の施工では、m2  当たり4〜5個のインサルビ
ンを接着する。
Room temperature: 25°C, Incubation period: -200°C (Shimadzu) Tensile speed: 50ml/min Under normal conditions, the pin will not break after 10 minutes, but after 1 day,
After 4 days, all pins broke or came out after heat aging.
In actual construction, 4 to 5 insulbins are glued per m2.

備考 (1)  ダイアポンド E3G−11の組成はクロル
スルフォン化ポリエチレン30 アクリル モノマー   65 有機過酸化物       l 安定剤 等        4 (2)  プライマーは アニリン−ブチルアルデヒド縮合物 である。
Notes (1) The composition of Diapond E3G-11 is chlorosulfonated polyethylene (30), acrylic monomer (65), organic peroxide (1), stabilizer, etc. (4) (2) The primer is an aniline-butyraldehyde condensate.

実施例 2 実際の建築現場で、ダイアポンド 5G−11を用いて
1000〜2000mの試験張りを行なった。良好な結
果が得られた。
Example 2 At an actual construction site, test tensioning was carried out for a distance of 1000 to 2000 m using Diapond 5G-11. Good results were obtained.

一年経過後においても全く接着のはがれは認められなか
った。それに対し、同時に行った従来の接着剤、す々わ
ちエポキシ系7友び合成ゴム系の接着剤を用いたものは
約3〜4割の補修を必要とした。
No peeling of the adhesive was observed even after one year had passed. On the other hand, the conventional adhesive used at the same time, which used an epoxy-based synthetic rubber adhesive, required about 30 to 40% repair.

【図面の簡単な説明】[Brief explanation of drawings]

第1図は本発明にか\るインサルピン工法を示すもので
ある。 l・・・・・・・・・・・屋根材 2・・・・・・・・・・・金属板 3・・・・・・・・・・・・ピ ン 4・・・・・・・・・・・・グラスウール板代理人 弁理士 塩 崎 正 広 給 trr 手   続   補   正   薔        
  7・昭和56年12月14日 2、発明の名称 反応型アクリル系接着剤によるインサルビン工法3、 
補正をする者 事件との関係  特許出願人 住 所  東京都中央区日本橋本町4−6名 称  ノ
ガワケミカル株式会社 代表者  野  川  隆  志 4、代理人 〒101 5、 補正命令の日付(、−一 自発補正 補正の内容 (11明細書の特許請求の範囲を別紙のとおりに補正し
ます。 (2)明細書第2頁第18行の 「接着剤Ωロス」を、 「接着剤のロス」に補正します。 特許請求の範囲 レドックス重合機構及びグラフト重合機構等による硬化
過程をとる2液非混合接触反応型アクリル系接着剤を用
いて施工することを特徴とするインサルビン工法。
FIG. 1 shows the insulpine construction method according to the present invention. l・・・・・・・・・Roof material 2・・・・・・・・・Metal plate 3・・・・・・・・・Pin 4・・・・・・・・・・・・Glass wool board representative patent attorney Tadashi Shiozaki Hiropay TRR Procedure Correction Rose
7. December 14, 1980 2. Name of the invention: Insulvin construction method using reactive acrylic adhesive 3.
Relationship with the case of the person making the amendment Patent Applicant Address 4-6 Nihonbashihonmachi, Chuo-ku, Tokyo Name Nogawa Chemical Co., Ltd. Representative Takashi Nogawa 4, Agent Address: 101-5 Date of amendment order (-1) Contents of the spontaneous amendment (The scope of claims in the 11th specification is amended as shown in the attached sheet. (2) "Adhesive Ω loss" on page 2, line 18 of the specification is changed to "adhesive loss" Amended. Claims: An insulvin construction method characterized by using a two-component non-mixable contact reaction type acrylic adhesive that undergoes a curing process using a redox polymerization mechanism, a graft polymerization mechanism, etc.

Claims (1)

【特許請求の範囲】[Claims] レドックス重合機構及びクラフト重合機構等による硬化
過程をとる2液非混合接触反応型アクリル系筬漸剤を用
いて施工することを特徴とするインサルピン工法。
The Insalpine construction method is characterized in that it is constructed using a two-component non-mixable contact reaction type acrylic reeding agent that undergoes a curing process using a redox polymerization mechanism, a kraft polymerization mechanism, etc.
JP19536681A 1981-12-04 1981-12-04 Insulating construction by reactive acrylic adhesive Pending JPS5898548A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP19536681A JPS5898548A (en) 1981-12-04 1981-12-04 Insulating construction by reactive acrylic adhesive

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP19536681A JPS5898548A (en) 1981-12-04 1981-12-04 Insulating construction by reactive acrylic adhesive

Publications (1)

Publication Number Publication Date
JPS5898548A true JPS5898548A (en) 1983-06-11

Family

ID=16339974

Family Applications (1)

Application Number Title Priority Date Filing Date
JP19536681A Pending JPS5898548A (en) 1981-12-04 1981-12-04 Insulating construction by reactive acrylic adhesive

Country Status (1)

Country Link
JP (1) JPS5898548A (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH02176056A (en) * 1988-12-27 1990-07-09 Funaki Shoji Kk Roof construction and method of roofing building

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5324102A (en) * 1976-08-18 1978-03-06 Mitsui Toatsu Chem Inc Shaft sealing device for compound multi stage pump

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5324102A (en) * 1976-08-18 1978-03-06 Mitsui Toatsu Chem Inc Shaft sealing device for compound multi stage pump

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH02176056A (en) * 1988-12-27 1990-07-09 Funaki Shoji Kk Roof construction and method of roofing building

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